Transcutaneous analyte sensor system and method

The transcutaneous sensor system addresses the challenges of painful and unreliable sensor insertion by using a base, adhesive, and foldable support member with retractable designs, ensuring easy and safe application and removal.

JP2026027244APending Publication Date: 2026-02-18DEXCOM INC
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Patent Information

Application Number
JP2025171068
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2016-10-31
Filing Date
2025-10-09
Publication Date
2026-02-18

AI Technical Summary

Technical Problem

Existing analyte sensors face issues with unreliable, painful, and cumbersome insertion and removal processes, leading to incomplete or improper sensor placement and potential needle exposure.

Method used

A transcutaneous sensor system with a base, adhesive, transmitter, and foldable support member, featuring mechanisms like springs and pull tabs to facilitate easy, minimally painful insertion and safe removal, including retractable designs to protect the sensor tip.

Benefits of technology

Enables reliable, simple, and painless insertion and removal of analyte sensors, ensuring proper placement and safety, while reducing user discomfort and risk of injury.

✦ Generated by Eureka AI based on patent content.

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Abstract

The various systems and methods described herein allow for reliable, simple, and minimally painful transcutaneous insertion of an analyte sensor.SOLUTION: The sensor system can be used to measure an analyte concentration. The sensor system can include a base having a distal side configured to face toward a person's skin. The adhesive can couple the base to the skin. The transcutaneous analyte measurement sensor may be coupled to the base and positioned at least partially within the host. The transmitter can be coupled to the base and can transmit analyte measurement data to a remote device.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] INCORPORATION BY REFERENCE OF RELATED APPLICATIONS Any and all priority claims or any amendments thereto identified in the Application Data Sheet are incorporated herein by reference under 37 CFR § 1.57. This application claims the benefit of U.S. Provisional Application No. 62 / 415,419, filed October 31, 2016. The foregoing application is incorporated herein by reference in its entirety and expressly made a part hereof.

[0002] Various embodiments disclosed herein relate to measuring analytes in a person. Certain embodiments relate to systems and methods for applying a transcutaneous analyte measurement system to a person. [Background technology]

[0003] Diabetes mellitus is a disorder in which the pancreas cannot produce enough insulin (type I or insulin-dependent) and / or insulin is ineffective (type 2 or non-insulin-dependent).In the diabetic state, sufferers suffer from hyperglycemia, which can cause a series of physiological disorders associated with microvascular deterioration, such as renal failure, skin ulcers, or bleeding into the vitreous of the eye.Hypoglycemic reaction (hypoglycemia) can be triggered by inadvertent over-intake of insulin, or by extreme exercise or inadequate food intake after regular administration of insulin or glucose-lowering drugs.

[0004] Traditionally, individuals with diabetes carry self-monitoring blood glucose monitors, which typically require an uncomfortable finger-prick method. Due to a lack of comfort and convenience, individuals with diabetes typically measure their glucose levels only two to four times a day. Unfortunately, these time intervals are spread so far apart that individuals with diabetes may not realize they are experiencing a hyperglycemic or hypoglycemic condition until it is too late, sometimes resulting in dangerous side effects. Alternatively, glucose levels can be continuously monitored by a sensor system including an on-skin sensor assembly. The sensor system can have a transmitter that transmits measurement data to a receiver, which can process and display information based on the measurements.

[0005] The process of applying the sensor to a person is critical to the effectiveness and user accessibility of such a system: the application process allows the sensor assembly to be attached to a person in a state where it can sense glucose level information, communicate the glucose level information to a transmitter, and transmit the glucose level information to a receiver.

[0006] The analyte sensor can be positioned at least partially within subcutaneous tissue. A user can actuate the applicator to insert the analyte sensor into its functional location. This percutaneous insertion can lead to incomplete sensor insertion, improper sensor insertion, needle exposure, and / or unnecessary pain. Therefore, in some instances, a system that more reliably enables insertion and removal of percutaneous sensors while being easy to use and relatively painless may be advantageous. Summary of the Invention [Problem to be solved by the invention]

[0007] The various systems and methods described herein enable reliable, simple, and minimally painful transcutaneous insertion of analyte sensors. [Means for solving the problem]

[0008] Some embodiments include an on-skin sensor assembly. Some embodiments include a system for applying the on-skin sensor assembly to a person's skin. The sensor can be an analyte sensor, a glucose sensor, any sensor described herein and / or incorporated by reference, and / or any other suitable sensor.

[0009] In some embodiments (i.e., optional and capable of being independently combined with any of the aspects and embodiments identified herein), a sensor system for measuring an analyte concentration comprises: a base having a distal side configured to face toward the skin of a host; a first adhesive coupled to the base and configured to couple the base to the skin; a transmitter coupled to the base and configured to transmit analyte measurement data; a transcutaneous analyte measurement sensor coupled to the base; and a foldable support member configured to resist non-axial forces of the sensor, the foldable support member comprising a channel through which a portion of the sensor passes, the channel configured to resist buckling forces of the sensor as the sensor moves from a proximal position to a distal position.

[0010] In some embodiments (i.e., optional and capable of being independently combined with any of the aspects and embodiments identified herein), a sensor system for measuring an analyte concentration comprises a base having a distal side configured to face toward the skin of a host, a first adhesive coupled to the base and configured to couple the base to the skin, a transmitter coupled to the base and configured to transmit analyte measurement data, and a transcutaneous analyte measurement sensor coupled to the base, wherein the sensor is configured to be flexed relative to the first adhesive or the base after the base is removed from the skin.

[0011] In some embodiments (i.e., optional and capable of being independently combined with any of the aspects and embodiments identified herein), a sensor system for measuring an analyte concentration comprises a base having a distal side configured to face toward the skin of a host, a first adhesive coupled to the base and configured to couple the base to the skin, a transmitter coupled to the base and configured to transmit analyte measurement data, and a transcutaneous analyte measurement sensor coupled to the base.

[0012] In multiple embodiments (i.e., optional and independently combinable with any of the aspects and embodiments identified herein), the base is configured to store the distal tip of the sensor within an interior region of the base. The system can include a spring (e.g., a helical spring, a conical spring, a compression spring, an extension spring, a leaf spring, a torsion spring) configured to store the distal tip of the sensor within an interior region of the base.

[0013] In some embodiments, the system is configured to cover the distal tip of the sensor (eg, after the sensor has been removed from the tissue).

[0014] In embodiments, the system includes a latch. The latch can have a locked state configured to couple the transmitter to the base. The latch can also have an unlocked state configured to allow removal of the transmitter from the base.

[0015] In some embodiments, the sensor system is configured to retract at least a portion of the sensor into a receptacle in response to removing the sensor system from the skin. The sensor can include a retractable distal tip. The base includes an interior region configured to receive the distal tip in response to retraction of the distal tip. The system can include a spring configured to retract the distal tip. The spring can be coupled to the base.

[0016] In some embodiments, the system includes a first adhesive configured to couple the base to the skin, and a second adhesive configured to flex and / or deflect some of the sensors relative to the base.

[0017] In some embodiments, the sensor includes a section positioned distally relative to the base. The section can include a first portion and a second portion. The first portion of the sensor can be configured to facilitate maintaining the second portion in a straight configuration during insertion of the section into the skin. The first portion of the sensor can be configured to soften in response to being positioned in vivo.

[0018] In some embodiments, the first portion has a first buckling resistance before insertion and a second buckling resistance after 12 to 48 hours in vivo. The second buckling resistance can be less than the first buckling resistance. The second buckling resistance can be at least 30 percent and / or at least 70 percent less than the first buckling resistance.

[0019] In some embodiments, the system comprises a pull tab system including a pull tab, which can be configured to retract the sensor in response to actuating the pull tab.

[0020] In some embodiments, the pull tab system includes a channel and an intermediate portion connecting the channel to the pull tab. The pull tab can project away from the base. A first portion of the sensor can pass through the channel. The pull tab system can be configured such that pulling the pull tab moves the channel to retract the sensor.

[0021] In some embodiments, the channels are formed by holes, slots, hoops, hooks, valleys, and / or any suitable structure. The channels can be formed by walls configured to push and / or pull the sensor. The channels can be open on one side to facilitate assembly of the system (by allowing the sensor to be inserted into the channel through the open side).

[0022] In some embodiments, the base can include a second hole through which a second portion of the sensor can pass, and the pull tab system can be configured to retract the sensor by pulling the pull tab to pull the second portion of the sensor from the second hole into an interior region of the sensor system.

[0023] In some embodiments, the pull tab system is slidably coupled to the base such that the pull tab system is configured to slide in a first direction that is within 20 degrees (e.g., within ±20 degrees) and / or within 45 degrees (e.g., within ±45 degrees) of perpendicular to a proximal direction oriented away from the skin. (The pull tab system can be configured to slide in a direction that is within ±20 degrees and / or within ±45 degrees of perpendicular to a distal direction oriented toward the skin.)

[0024] In some embodiments, the transmitter is slidably coupled to the base such that the transmitter is configured to slide in a second direction that is within ±20 degrees and / or ±45 degrees of a perpendicular direction to the proximal direction. The second direction can be within ±20 degrees and / or ±45 degrees of a parallel direction to the first direction.

[0025] In some embodiments, the system includes a push button system having a push button. The push button system can be configured to retract the sensor in response to pressing the button. At least a portion of the push button system can protrude away from the base. The push button system can be configured to engage a sensor retraction hoop or hook that pulls and / or pushes the sensor into an interior region of the sensor system when a portion of the push button system is pressed into the base.

[0026] In some embodiments, the push button system includes a channel and an intermediate portion coupling the channel to the push button. The push button can protrude away from the base. A first portion of the sensor can pass through the channel. The push button system can be configured such that pressing the button moves the channel to retract the sensor.

[0027] In some embodiments, the channel is formed by holes, slots, and / or hooks. The channel can be formed by walls configured to push and / or pull the sensor. The channel can be open on one side to facilitate assembly of the system (by allowing the sensor to be inserted into the channel through the open side).

[0028] In some embodiments, the base includes a second hole through which a second portion of the sensor can pass, and the push button system can be configured to retract the sensor by pulling the second portion of the sensor from the second hole into an interior region of the sensor system by forming a third portion of the sensor into a U-shape.

[0029] In some embodiments, the push button system is slidably coupled to the base such that the push button system is configured to slide in a first direction that is within ±20 degrees and / or ±45 degrees of a perpendicular to a proximal direction oriented away from the distal side of the base.

[0030] In some embodiments, the transmitter is slidably coupled to the base such that the transmitter is configured to slide in a second direction that is within ±20 degrees and / or ±45 degrees of a perpendicular direction to the proximal direction. The second direction can be within ±20 degrees and / or ±45 degrees of a parallel direction to the first direction.

[0031] In some embodiments, the system includes a spring-loaded arm slidably coupled to a base, such that removing the sensor system from the skin automatically retracts the sensor as the arm slides relative to the base. The base can be configured to face toward the skin in a first direction. The arm can be configured to slide in a second direction that is within ±20 degrees and / or ±45 degrees of perpendicular to the first direction. At least a portion of the sensor can pass through a portion of the arm, such that moving the arm in the second direction causes the portion of the arm to retract the sensor into an interior region (e.g., cavity) of the sensor system.

[0032] In some embodiments, the system includes a separate or integrally molded spring and releasable interlocking mechanism (such as a pin). The spring can be in at least one of a compressed state and an extended state (e.g., a stretched state), such that moving the interlocking feature (e.g., removing the release pin) causes the spring to move at least a first portion of the sensor into the base.

[0033] In some embodiments, the system includes an arm slidably coupled to a base. The arm can include a first channel (e.g., formed by a hole, slot, hoop, and / or hook). The first channel can be aligned with a second hole in the base such that a second portion of the sensor passes through the first channel and the second hole. The spring can be in at least one of compression and tension (e.g., stretched) between the first wall of the base and the second wall of the arm. An interlocking feature (e.g., a release pin) can pass through a third hole in the base and interfere with a portion of the arm to prevent the spring from moving the arm to retract the sensor.

[0034] In some embodiments, the interlocking feature (e.g., a release pin) includes a distal surface having a second adhesive configured to be applied to the skin, such that removing the base from the skin decouples the first adhesive from the skin, but does not decouple the second adhesive from the skin, which causes the interlocking feature (e.g., a release pin) to be removed from the third hole, thereby allowing the spring to move the arm to retract the sensor. The first adhesive and the second adhesive can be two separate adhesive members or can be parts of a single adhesive. The first and second adhesives can be joined by a conformable adhesive backing member.

[0035] In some embodiments, the system includes a spring-loaded arm slidably coupled to a base and configured such that removing the sensor system from the skin causes the arm to contact a first portion of the sensor and bend the sensor such that a second portion of the sensor is positioned between the arm and the base.

[0036] In some embodiments, the base is configured to face toward the skin in a first direction. The sensor system can include a spring oriented within ±20 degrees and / or ±45 degrees of perpendicular to the first direction. The spring can be positioned within an interior region of the sensor system and can be configured to cause the arm to impact with the first portion of the sensor.

[0037] In some embodiments, the base is configured to face toward the skin in a first direction, and the arm is configured to slide in a second direction that is within ±20 degrees of perpendicular to the first direction, such that the second portion of the sensor is oriented within ±20 degrees of perpendicular to the first direction.

[0038] In some embodiments, the sensor passes through the hole in the base. A first portion of the sensor can be positioned distal to the hole in the base. The arm can be spring-loaded toward the first portion of the sensor. The arm can include a protrusion that projects toward the first portion of the sensor, such that sliding the arm causes the protrusion to impact the first portion of the sensor, positioning the protrusion directly distal to the hole in the base.

[0039] In some embodiments, the protrusion of the arm comprises a second adhesive configured to couple the arm to the skin, such that the second adhesive holds the arm in a first position in which the arm does not bend the sensor. Decoupling the second adhesive from the skin allows the arm to bend the sensor, such that a second portion of the sensor is positioned between the arm and the base.

[0040] In some embodiments, the system includes an arm rotatably coupled to a base by a hinge. The hinge can be configured such that decoupling the base from the skin rotates the hinge, causing the arm to bend over at least a first portion of the sensor and cover at least a second portion of the sensor. The system can include a spring (e.g., a torsion spring) coupled to the arm, such that the spring biases the arm in a rotational direction toward the second portion of the sensor.

[0041] In some embodiments, the hinge is positioned within an interior region of the sensor system. The arm can include a portion configured to cover a second portion of the sensor. The sensor system can have a first state in which the portion of the arm is positioned within the interior region and a second state in which the portion of the arm is positioned distal to the base.

[0042] In some embodiments, the sensor system includes a first portion and a second portion, the second portion coupled to the first portion by a hinge configured to retract the sensor by increasing or decreasing a pivot angle between the first portion and the second portion.

[0043] In some embodiments, the system includes a spring (e.g., a helical spring, a compression spring, an extension spring, a leaf spring, a torsion spring) that can be configured to increase or decrease the pivot angle (e.g., upon release by a trigger mechanism and / or any suitable mechanism).

[0044] In embodiments, the hinge includes a pin rotatably coupled to a sleeve, the sleeve configured to retain the pin as the second portion rotates relative to the first portion.

[0045] In some embodiments, the base comprises a first portion and a second portion, the first portion being capable of bonding a first adhesive to the second portion.

[0046] In some embodiments, the base comprises a first portion, and the second portion can comprise a transmitter.

[0047] In some embodiments, the distal portion of the sensor passes through a hole in the base, and the proximal portion of the sensor can be coupled to the second portion, such that increasing or decreasing the pivot angle retracts the distal portion of the sensor through the hole in the base and into the region between the first and second portions of the sensor system.

[0048] In some embodiments, the base comprises a left half and a right half. The left half can comprise the base hole. The right half can comprise at least a portion of the hinge.

[0049] In some embodiments, the second portion includes a lift tab configured to allow a user to grasp a distally facing surface to rotate the second portion relative to the first portion. The lift tab can include a protrusion that projects away from the hinge.

[0050] In some embodiments, the base comprises a first portion and a second portion. The second portion of the base can be coupled to the first portion of the base by a hinge configured to reduce a pivot angle between the first and second portions of the base, thereby positioning a portion of the sensor between the first and second portions of the base. The hinge can comprise a first pin rotatably coupled to a first hole configured to retain the first pin when the first portion of the base rotates relative to the second portion of the base. The hinge can comprise a second pin rotatably coupled to a second hole configured to retain the second pin when the first portion of the base rotates relative to the second portion of the base. The first pin can protrude in a first direction. The second pin can protrude in a second direction opposite the first direction.

[0051] In some embodiments, the first adhesive comprises a first section and a second section. The first section can be coupled to the first portion of the base, such that the first section is configured to adhere the first portion of the base to the skin. The second section can be coupled to the second portion of the base, such that the second section is configured to adhere the second portion of the base to the skin. The hinge can be configured to allow the first section of the first adhesive to face toward the second section of the first adhesive, while a portion of the sensor is at least partially trapped between the first and second portions of the base.

[0052] In some embodiments, the system is configured to bend and / or deflect a portion of the sensor in response to rotating the hinge, such that after the sensor system is removed from the skin, the portion of the sensor is bent between the first and second portions of the base to protect the distal tip of the sensor from penetrating tissue.

[0053] In some embodiments, the first portion of the base is rotationally spring loaded relative to the second portion of the base, such that the system is configured to reduce the pivot angle in response to the rotational spring bias. The system can include a torsion spring coupled to the hinge, such that the torsion spring is configured to reduce the pivot angle to position a portion of the sensor between the first and second portions of the base.

[0054] In some embodiments, the system includes an adhesive portion configured to bend at least a portion of the sensor toward the base. A distal tip of the sensor can be positioned between the base and the adhesive portion. The system can include an adhesive portion configured to fold at least a portion of the sensor relative to the base.

[0055] In some embodiments, the system includes a flexible sheet that covers the distal tip of the sensor and adheres to the first adhesive, such that after the sensor system is removed from the skin, the flexible sheet protects the distal tip of the sensor from penetrating tissue.

[0056] In some embodiments, a first adhesive bonds the flexible sheet to the base. The flexible sheet can have a first state in which the flexible sheet is folded and positioned proximally relative to the distal tip, does not cover the distal tip, and forms a tab configured to allow a user to unfold the flexible sheet.

[0057] In some embodiments, the flexible sheet has a second state in which the flexible sheet is at least partially unfolded relative to the first state and positioned at least partially distal to the distal tip, and the distal tip of the sensor is at least partially trapped between the flexible sheet and the first adhesive.

[0058] In some embodiments, the system includes a second sheet having a second puncture resistance greater than the first puncture resistance of the flexible sheet. The second sheet can be positioned between the distal tip and the flexible sheet to protect the flexible sheet from being punctured by the distal tip. The second sheet can be bonded to the flexible sheet such that the second sheet deforms the distal tip when the flexible sheet is folded over the distal tip.

[0059] In some embodiments, the distal tip of the sensor is at least partially trapped between the flexible sheet and the base, such that the flexible sheet holds at least a portion of the sensor in a bent position, and the flexible sheet is adhered to the first adhesive.

[0060] In some embodiments, the flexible sheet has a first state and a second state: in the first state, the flexible sheet can be positioned proximally relative to the first adhesive when the sensor system is coupled to the skin, and in the second state, the flexible sheet can be positioned distally relative to the first adhesive when the distal tip of the sensor is at least partially trapped between the flexible sheet and the base.

[0061] In some embodiments, the distal side of the base includes a slot configured to receive the distal end of the sensor after the sensor is detached from the host. The first portion of the sensor can be bent and / or deflected such that the distal end of the sensor is positioned within the slot. When the sensor is bent, the distal end of the sensor can be positioned proximal to the first adhesive.

[0062] In some embodiments, the base includes a channel (e.g., a hole). The second portion of the sensor can pass through the hole. The slot can be directly coupled to the hole (e.g., such that the hole and the slot are in fluid communication). The slot can be oriented within ±20 degrees of perpendicular to the central axis of the hole.

[0063] In some embodiments, the sensor system includes a first portion and a second portion. The first portion can be coupled to the second portion with a first adhesive. The second portion can be rotatably coupled to the first portion about an axis of rotation that is within ±20 degrees of a proximal direction, such that the sensor system is configured to retract the sensor in response to rotating the second portion relative to the first portion. The base can include the first portion. The second portion can include a transmitter.

[0064] In some embodiments, the system includes an interior region between the first portion and the second portion. The interior region can be configured to move relative to at least one of the first portion and the second portion by rotating the second portion relative to the first portion. The interior region can be configured to store at least a portion of the sensor into the interior region through the hole in the base by rotating the second portion relative to the first portion.

[0065] In some embodiments, the base comprises a distally facing hole. The sensor can comprise a proximal portion coupled to the second portion and a distal portion that passes through the hole in the base.

[0066] In some embodiments, the system includes a proximally facing recess configured to provide traction for a user to rotate the second portion relative to the first portion. The system can include a proximal protrusion configured to provide traction for a user to rotate the second portion relative to the first portion.

[0067] In some embodiments, the system includes an extensible cover having a first state configured to allow a distal end of the sensor to enter the host and a second state configured to cover the distal end of the sensor after the sensor is removed from the host. The first state can be a retracted state. The second state can be an extended state.

[0068] In some embodiments, the cover is a flexible sheath having a channel in which a portion of the sensor is positioned. The cover can be rolled up over the channel.

[0069] In some embodiments, the extended state is a relaxed state such that the cover is configured to unfold from the stored state in response to the sensor system being removed from the host.

[0070] In some embodiments, the retracted state stores more mechanical energy than the extended state, such that the cover is configured to unfold from the retracted state in response to the sensor system being removed from the host.

[0071] In some embodiments, the cover comprises a bellows (e.g., a pleated, expandable portion) configured to at least partially unfold to allow the cover to move from a retracted state to an extended state. The pleated, expandable portion can comprise a channel in which a first portion of the sensor is positioned. The expandable portion can comprise a pleated, foldable portion. The cover can comprise a distal hole through which a second portion of the sensor passes in the retracted state.

[0072] In some embodiments, the retracted state stores more mechanical energy than the extended state, and thus the pleated expandable portion is configured to expand from the retracted state in response to the sensor system being removed from the host.

[0073] In some embodiments, the system further comprises a cap that covers a distal end of the sensor, such that the cap is configured to prevent the distal end from penetrating a person after the sensor system is detached from the host, the cap being coupled to the distal side of the base.

[0074] In some embodiments, the cap includes a channel and / or cavity having a first central axis. The base can include a hole having a second central axis. A portion of the sensor can pass through the hole and into the channel. The first central axis can be within 20 degrees of parallel to the second central axis. The first central axis of the channel can pass through the hole in the base (e.g., when the first central axis extends beyond the proximal end of the channel).

[0075] In some embodiments, the system includes a cap coupled to the base. The cap can cover at least a majority of the first adhesive. The cap can cover a distal end of the sensor, such that the cap is configured to prevent the distal end from penetrating a person after the sensor system is detached from the host and the cap is coupled to the base. The cap can include a sidewall that protrudes proximally past at least a portion of the periphery of the sensor system (and / or past at least a portion of the periphery of the base).

[0076] In embodiments, the system includes a sensor cover having an interior region and a protrusion. At least a portion of the base can be positioned within the interior region of the sensor cover such that the distal end of the sensor is positioned between the base and the sensor cover. The protrusion can be positioned within the hole in the base such that the protrusion unlatches the transmitter from the base.

[0077] In some embodiments, the system includes a sensor cover configured to unlock the transmitter from the base in response to coupling the base to the sensor cover. The sensor cover can be configured to allow the transmitter to be uncoupled from the base in response to coupling the base to the sensor cover (e.g., by unlatching the transmitter from the base). The transmitter can be configured to be uncoupled from the base when the transmitter is unlocked from the base.

[0078] In some embodiments, the system includes a first flex arm and a wall, and the first flex arm can have a first state in which the first flex arm interferes with the wall to lock the transmitter to the base.

[0079] In some embodiments, the sensor cover includes a protrusion configured such that coupling the base to the sensor cover causes the protrusion to move the first flex arm to a second state in which the first flex arm does not interfere with the wall and thus does not lock the transmitter to the base.

[0080] In embodiments, the base includes an aperture through which at least a portion of the protrusion passes to bias the first flex arm to the second condition.

[0081] In some embodiments, the sensor cover includes a housing and a second flex arm. The housing can include an interior region. At least a portion of the base can be positioned inside the interior region of the housing. The second flex arm can couple the protrusion to the housing, such that the second flex arm is configured to bend and move the protrusion to facilitate insertion of the portion of the base into the interior region of the housing.

[0082] In some embodiments, the second flex arm is configured to move distally in response to coupling the base to the sensor cover. The first flex arm can be configured to move proximally in response to coupling the base to the sensor cover. A portion of the sensor can bend in response to coupling the base to the sensor cover, such that a distal end of the sensor is positioned between the base and the sensor cover.

[0083] In some embodiments, the sensor cover includes a first side and a second side. The first side can be oriented within ±30 degrees of perpendicular to the second side. The first side can include a first hole through which a portion of the base is inserted. The second side can include a second hole configured to provide access to a proximal surface of the transmitter to facilitate removal of the transmitter from the base.

[0084] In some embodiments, the system includes a rail that can slidably couple the base to the transmitter.

[0085] In embodiments, a system includes a sensor cover configured to unlatch a transmitter from a base in response to coupling the base to the sensor cover. The system can include a first flex arm configured to latch the base to the transmitter. The sensor cover can include a second flex arm configured to deflect the first flex arm to unlatch the transmitter from the base.

[0086] In some embodiments, the sensor cover includes a distally facing wall, and at least a portion coupled to the base (e.g., a proximal side of the base) can press against the distally facing wall, thereby causing the protrusion of the second flex arm to press against the hole in the base and deflect the first flex arm.

[0087] In some embodiments, the system includes a telescoping assembly coupled to a base, wherein at least a first portion of the sensor can be positioned between a portion of the telescoping assembly and a distal side of the base, such that the telescoping assembly is configured to move from a distal position to a proximal position to store a second portion of the sensor within a protective cavity of the system.

[0088] In some embodiments, the base includes an internal channel having a proximally facing opening, and the telescoping assembly can be positioned at least partially within the internal channel such that the telescoping assembly is configured to move at least partially proximally within the internal channel from a distal position to a proximal position.

[0089] In embodiments, when the nestable assembly is in a distal position, a first portion of the sensor can be positioned within the internal channel of the base and a second portion of the sensor can be positioned distal to the base, and when the nestable assembly is in a proximal position, the first and second portions of the sensor can be positioned within the internal channel of the base.

[0090] In some embodiments, the nestable assembly includes a first section and a second section, the first section being slidably coupled to the second section, and the second section being slidably coupled to an interior channel of the base, such that the nestable assembly is configured to nest relative to the base to house the sensor.

[0091] In embodiments, the internal channel includes a first overhang (which may be oriented radially inward) that may be configured to interfere with a second overhang of the second section (which may be oriented radially outward) to retain at least a portion of the second section within the internal channel.

[0092] In some embodiments, the second section includes a third overhang (which may be oriented radially inward), which may be configured to interfere with the fourth overhang of the first section (which may be oriented radially outward) to limit the distance the first section can move proximally relative to the second section.

[0093] In some embodiments, the system includes a spring and a locking mechanism. The locking mechanism can be configured to secure the nested assembly in a distal position. The locking mechanism can include a first overhang on the base and a second overhang on the first section. The first and second overhangs can be configured such that, in a first angular position of the first section relative to the base, the first overhang interferes with the second overhang to limit proximal advancement of the first section relative to the base. In some embodiments, in a second angular position of the first section relative to the base, the first overhang does not limit proximal advancement of the first section relative to the base, and thus the spring urges the nested assembly toward the proximal position.

[0094] In some embodiments, the base includes a first overhang configured to limit a first proximal advancement of the second section relative to the base. The base can include a second overhang configured to prevent proximal movement of the first section such that the nestable assembly is retained in a distal position.

[0095] In some embodiments, the base includes a first channel, and the second section can include a radially outward protrusion positioned within the first channel, such that the first channel limits a first angular movement of the second section relative to the base, while the second section allows a second angular movement of the first section relative to the second section and relative to the base.

[0096] In some embodiments, the sensor comprises a deformable connection portion that communicatively (and / or electrically) couples the subcutaneous portion of the sensor to a connection portion of the sensor, which may be located inside the base and communicatively couple the subcutaneous portion of the sensor to a communication module of the sensor system.

[0097] In some embodiments, at the proximal position, the subcutaneous portion of the sensor can be positioned within a central region of the coil (e.g., the deformable connection) of the sensor. In many embodiments, the deformable connection is configured such that the subcutaneous portion of the sensor is not positioned within the central region of the deformable connection.

[0098] In some embodiments, the deformable connection of the sensor does not apply a biasing force. In several embodiments, the coil of the sensor can apply a biasing force to urge the nested assembly toward a proximal position. In many embodiments, a spring applies a biasing force.

[0099] In some embodiments, the system includes a housing slidably coupled to a base, the housing being capable of moving proximally relative to the base to retract the sensor.

[0100] In some embodiments, at least a first portion of the sensor is positioned between a portion of the housing and a distal side of the base, such that the housing is configured to move from a distal position to a proximal position to store a second portion of the sensor.

[0101] In some embodiments, the base includes an internal channel having a proximally-facing opening, and the housing can be at least partially positioned within the internal channel such that the housing is configured to move at least partially proximally from a distal position to a proximal position in the internal channel to store the second portion of the sensor within the internal channel.

[0102] In some embodiments, the system includes a cap coupled to the base and positioned proximally relative to the base. A first portion of the sensor can be coupled to the cap. The system can be configured to retract the sensor by moving the cap proximally relative to the base.

[0103] In some embodiments, the cap is movable between a distal position and a proximal position. In the distal position, the second portion of the sensor can be positioned distally relative to the base. In the proximal position, the second portion of the sensor can be positioned proximally relative to the base. An interlock can removably secure the cap in the distal position.

[0104] In some embodiments, at least a portion of the outer periphery of the cap protrudes radially outward farther (relative to the central axis of the second part) than the base, such that the outer portion of the outer periphery provides a distally facing wall that allows the user to grip the cap as the user moves the cap from the distal position to the proximal position.

[0105] In some embodiments, the system includes a linkage between the cap and the base. The linkage can be configured to limit the distance the cap can move proximally relative to the base.

[0106] In some embodiments, the linkage comprises a foldable, pleated, expandable portion configured to at least partially unfold and move the cap from a distal position to a proximal position to store the second portion of the sensor within the pleated, expandable portion, and the cap can be rigidly coupled to the transmitter such that moving the transmitter stores the sensor proximally.

[0107] In some embodiments, a sensor system is configured to measure an analyte indication and can include a base having a distal side configured to face toward the skin of a host, a first adhesive coupled to the base and configured to couple the base to the skin, a transmitter coupled to the base and configured to transmit analyte measurement data, and a transcutaneous analyte measurement sensor coupled to the base.

[0108] In some embodiments, the system includes a collapsible support member configured to resist non-axial forces on the sensor. The collapsible support member can have a proximal end, a distal end, and a length measured from the proximal end to the distal end. The system can be configured to reduce the length in response to the sensor moving from the proximal position to the distal position.

[0109] In some embodiments, the collapsible support member includes a channel through which at least a portion of the sensor can pass, and the channel can be configured to resist buckling forces of the sensor as it moves from a proximal position to a distal position.

[0110] In some embodiments, the collapsible support member comprises a foam block having a channel through which at least a portion of the sensor can pass.

[0111] In some embodiments, the collapsible support member comprises a bellows having a channel through which a portion of the sensor passes.

[0112] In some embodiments, the system includes a tab coupled to the collapsible support member, and the system can be configured such that actuating (e.g., pulling, pushing, moving, or squeezing) the tab causes the collapsible support member to collapse and move at least a portion of the sensor distally relative to the base.

[0113] In some embodiments, the system includes a base-bonded foam portion (e.g., a foam block) and a channel mechanically supported by the foam portion. At least a portion of the sensor can be positioned within the channel. The portion of the sensor can include a central axis. The channel can be configured to resist horizontal displacement of the portion of the sensor relative to the central axis. The foam portion can be configured to compress in response to the system moving the sensor from a proximal position (e.g., a proximal start position) to a distal position (e.g., a distal end position).

[0114] In some embodiments, the base includes a distal portion and a proximal portion. The system can include a channel having walls configured to compress in response to the system moving the sensor from a proximal position to a distal position. The channel can be positioned at least partially between the distal and proximal portions of the base, such that a portion of the sensor is positioned within the channel. The walls of the channel can be configured to resist horizontal displacement of a portion of the sensor.

[0115] In embodiments, the wall comprises foam configured to compress in response to distal movement of the proximal portion toward the distal portion of the base. The wall can be made of a collapsible structure and / or compressible material other than foam.

[0116] In some embodiments, the wall comprises a proximal section having a first material, a middle section having a second material, and a distal section having a third material. The second material is stiffer than the first and third materials, such that the middle section is configured to resist horizontal displacement. The second material can be stiffer than the first and third materials, such that the middle section is configured to resist horizontal displacement. The second material can be less compressible than the first and third materials.

[0117] In several embodiments, the system includes an interlock (e.g., a mechanical interlock) configured to secure the proximal portion of the base to the distal portion of the base in response to the system moving the sensor from a proximal position to a distal position.

[0118] In some embodiments, the system includes a bellows coupled to the base. At least a portion of the sensor can be positioned within an interior region of the bellows. The portion of the sensor can include a central axis. The bellows can be configured to resist horizontal displacement of the portion relative to the central axis. The bellows can be configured to compress in response to the system moving the sensor from a proximal position to a distal position.

[0119] In embodiments, the system includes an interlock coupled to the base and configured to secure the bellows in compression. The interlock can be a snap fit formed by an undercut.

[0120] In some embodiments, the system includes a base proximal portion and a distal portion. A bellows can couple the distal portion to the proximal portion. The system can include a removable interference member (e.g., a safety member) positioned between the distal and proximal portions, whereby the removable interference member is configured to prevent the system from moving the sensor from a proximal position (e.g., a proximal start position) to a distal position (e.g., a distal end position).

[0121] In some embodiments, the system includes a pull tab and a slot configured to position at least a portion of the sensor within the slot, and the system can be configured such that pulling the pull tab causes the system to move the sensor from a proximal position to a distal position.

[0122] In some embodiments, the system includes a compliant sheet positioned within the slot and coupled to the pull tab, such that the compliant sheet is configured to move (e.g., push, pull) a portion of the sensor distally in response to actuating (e.g., pulling) the pull tab.

[0123] In embodiments, the system includes a housing coupled to the base. The housing can include a slot and can be configured to cause the compliant sheet to push a portion of the sensor distally in response to pulling the pull tab. The slot can include a distally facing opening configured to allow a portion of the sensor to distally exit the slot and enter subcutaneous tissue of the host.

[0124] In some embodiments, the system includes a guide member configured to resist non-axial forces on the sensor. The guide member can include an engagement feature releasably coupled to the sensor. The engagement feature can be configured to decouple from the sensor in response to the sensor moving from a proximal position to a distal position.

[0125] In some embodiments, the guide member includes a first portion and a second portion, and at least a portion of the sensor can be positioned between the first and second portions of the guide member, such that the first and second portions of the guide member are configured to resist a buckling force of the sensor.

[0126] In some embodiments, the first portion can be configured such that the guide member moves relative to the second portion in response to the system moving the sensor from a proximal position to a distal position. The guide member can be configured such that displacement of the first portion relative to the second portion allows the sensor to move from the proximal position to the distal position.

[0127] In some embodiments, a portion of the sensor (i.e., positioned between the first and second portions of the guide member) comprises a central axis. The first and second portions of the guide member can form a channel. A portion of the sensor can be positioned within the channel. The channel can be configured to resist displacement of the portion of the sensor in a direction perpendicular to the central axis.

[0128] In some embodiments, the system includes a channel having a first side and a second side, the first side and the second side configured to at least partially separate in response to the system moving the sensor from a proximal position to a distal position. A portion of the sensor can be positioned within the channel, such that the channel is configured to at least partially separate to move the sensor from the proximal position to the distal position. The portion of the sensor can include a central axis. The channel can be configured to resist displacement of the portion of the sensor in a direction perpendicular to the central axis.

[0129] In some embodiments, the sensor is coupled to a housing that is slidably coupled to the base, and the system can be configured to move a portion of the sensor away from the distal side of the base in response to moving the housing in a first direction within ±20 degrees and / or ±45 degrees of a perpendicular direction to the distal direction.

[0130] In some embodiments, the system includes a housing slidably coupled to a base. The base can include a curved channel and / or a channel oriented at an angle of no more than ±45 degrees parallel to a distal direction. A portion of the sensor can be positioned within the channel. The channel can be configured to deflect and redirect a portion of the sensor distally in response to moving the housing relative to the base.

[0131] In some embodiments, the sensor path has a first section and a second section. The first section can be oriented within ±20 degrees of perpendicular to the distal direction and / or within ±45 degrees of perpendicular to the distal direction. The second section can be oriented within ±45 degrees of parallel to the distal direction. The system can be configured to deflect the sensor to cause the sensor to follow the sensor path, such that the channel redirects the sensor toward the host's skin.

[0132] In some embodiments, the base comprises a first portion and a second portion. The first portion can be configured to couple the second portion to the skin. The second portion can be slidably coupled to the first portion. The base can be configured such that movement of the second portion in a first direction within ±20 degrees of a perpendicular to the distal direction (and / or within ±45 degrees of a perpendicular to the distal direction) causes movement of the distal tip of the sensor in a second direction parallel to the distal direction within ±45 degrees.

[0133] In some embodiments, the sensor comprises a distal section and a proximal section. The proximal section can be rigidly coupled to the second portion of the base. The distal section can pass through a channel in the first portion of the base. The channel can comprise a radius configured to deflect at least a portion of the sensor, thereby redirecting the portion of the sensor distally toward the host's skin.

[0134] In some embodiments, the sensor is a glucose sensor and / or any type of sensor described herein and / or incorporated by reference. The transmitter can be coupled to the second portion of the base, whereby the second portion slidably couples the transmitter to the first portion of the base. The system can include at least one rail slidably coupling the second portion to the first portion of the base.

[0135] In embodiments, the system includes a detachable applicator coupled to the base. The applicator can be any type of applicator described herein and / or incorporated by reference.

[0136] In some embodiments, the applicator comprises a curved channel configured to guide the portion of the sensor along a curved path as the portion of the sensor moves from the proximal position to the distal position, and the applicator can comprise a leaf spring configured to drive the portion of the sensor along the curved path through the curved channel.

[0137] In embodiments, the curved channel is coupled to the base. The curved portion of the sensor can be positioned within the curved channel. The curved channel can be configured to resist buckling forces of the curved portion when the system moves the curved portion from a proximal position to a distal position. The applicator can be configured to facilitate moving the curved portion from a proximal position to a distal position.

[0138] In some embodiments, the system includes a spring configured to move the curved portion from a proximal position to a distal position. The spring can be any type of spring described herein and / or incorporated by reference. The spring can be a leaf spring in a flexed state.

[0139] In some embodiments, the system includes an interlock (e.g., a mechanical interlock) configured to releasably hold the spring (e.g., a leaf spring) in a flexed state. The system can be configured to move the curved portion from a proximal position to a distal position in response to releasing the interlock. The system can include a tab (e.g., a pull tab) coupled to the interlock, such that the system is configured to disengage the interlock in response to actuating (e.g., pulling) the tab to allow the spring to move the curved portion from the proximal position to the distal position.

[0140] In some embodiments, the system includes a first arm coupled to a base and a wall, wherein a portion of the sensor can be secured between the first arm and the wall such that the first arm is configured to resist a buckling force of the sensor when the system moves the portion of the sensor from a proximal position to a distal position.

[0141] In several embodiments, the first arm is movably coupled to the base, such that at least a portion of the first arm is configured to move (e.g., relative to the base, relative to the applicator housing) to enable the system to move a portion of the sensor from a proximal position to a distal position.

[0142] In some embodiments, at least one of the first arm and the wall forms a channel. A portion of the sensor can be positioned at least partially within the channel, such that the channel is configured to resist buckling forces. The system can include a distal protrusion configured to move the first arm away from the wall, allowing the system to move the portion of the sensor from a proximal position to a distal position. The portion of the sensor can include a central axis. The first arm can protrude in a direction within ±45 degrees of a normal to the central axis.

[0143] In some embodiments, the system includes a removable applicator having a telescoping assembly removably coupled to a base, the telescoping assembly can include a first set of tongues configured to resist a first buckling force of a first section of the sensor.

[0144] In some embodiments, the telescoping assembly includes a second set of tongues configured to resist a second buckling force of the second section of the sensor. The telescoping assembly can include a distal protrusion configured to move distally into a first region between the first set of tongues and into a second region between the second set of tongues to expand the first and second sets of tongues.

[0145] In some embodiments, the system includes a removable applicator coupled to the base. The applicator can have a pair of biasing members (e.g., a pair of tongs). A portion of the sensor can be positioned within a region between the pair of biasing members, such that the pair of biasing members are configured to resist a buckling force of the sensor.

[0146] In some embodiments, the pair of biasing members are held in a compressed state by a channel configured to allow the pair of biasing members to expand in response to moving the pair of biasing members distally enough that the distal end of the sensor is positioned distally relative to the distal end of the applicator. The pair of biasing members can be a set of tongues.

[0147] In some embodiments, the system includes a first arm and a second arm extending distally. A portion of the sensor can be positioned between the first and second arms, such that the first and second arms are configured to resist a buckling force of the sensor. The first and second arms can be positioned within a channel of the system. The channel can hold the first and second arms in a compressed state. The channel can be configured such that moving the first and second arms distally causes the first and second arms to spread apart, facilitating the system moving the portion of the sensor from a proximal position to a distal position.

[0148] In some embodiments, the system includes a distally extending first arm and a second arm. The first and second arms can be configured to have a closed state, and in the closed state, the first and second arms can be configured to resist a buckling force of a portion of the sensor positioned between the first and second arms. The first and second arms can be configured to have an open state to allow the system to move the portion of the sensor from a proximal position to a distal position.

[0149] In some embodiments, the system includes a tube coupled to a base. The tube can include a slot from a proximal portion of the tube to a distal portion of the tube. The tube can be configured to resist a buckling force of the sensor. The slot can be configured to move a first portion of the sensor distally outside the tube while moving a second portion of the sensor distally inside the tube.

[0150] In some embodiments, the system includes a removable applicator coupled to a base. The applicator can couple a tube to the base, such that the system is configured to pierce the skin with the distal end of the sensor by moving the base distally relative to the tube. The tube can include a first side of a slot and a second side of the slot. The first and second sides of the slot can be coupled together by a linkage configured to fold open in response to moving the first portion of the sensor distally. The tube can be at least 4 millimeters long when measured along a central axis of the tube.

[0151] In some embodiments, the system includes an applicator having a channel configured to resist a buckling force of the sensor. A distal portion of the sensor can be positioned inside the channel. A proximal portion of the sensor can be positioned outside the channel. An intermediate portion of the sensor can connect the distal and proximal portions of the sensor. The intermediate portion of the sensor can be positioned within a slot in the channel.

[0152] In some embodiments, the slot is configured to allow an intermediate portion of the sensor to move distally through the slot when the sensor moves from a proximal position to a distal position. The channel can have a distally oriented central axis, such that the channel is configured to guide the distal portion of the sensor toward the skin. The slot can be oriented radially outward from the central axis.

[0153] In embodiments, the slot includes at least one linkage coupling a first side of the slot to a second side of the slot, and the at least one linkage can be configured to break in response to moving an intermediate portion of the sensor distally through the slot.

[0154] In some embodiments, the slot is configured to expand (eg, widen) in response to moving an intermediate portion of the sensor distally through the slot.

[0155] In some embodiments, a telescoping assembly is coupled to the base. The telescoping assembly can include a distal portion, a proximal portion slidably coupled to the distal portion, and a spring compressed between the proximal portion and the base. The proximal portion can releasably secure the sensor in a first proximal start position, such that the spring is configured to urge the base and sensor distally in response to the system unlatching the base from the proximal portion.

[0156] In some embodiments, the proximal portion of the nestable assembly includes a latch configured to releasably secure the base in the second proximal start position. The latch can be configured to release the base in response to moving the proximal portion distally relative to the distal portion to allow the spring to push the base and sensor distally.

[0157] In some embodiments, the sensor is configured to move along a first path from a first proximal start position to a first distal end position. The proximal portion can be configured to move along a second path from a third proximal start position to a third distal end position. The first path of the sensor can be at least 40 percent longer than the second path of the proximal portion.

[0158] In some embodiments, the system is configured to cause the sensor to move the first distance in response to the proximal portion moving a second distance that is at least 50 percent less than the first distance.

[0159] In some embodiments, the proximal portion includes a distally extending arm having an inward protrusion that passes through an aperture in the distal portion and can be coupled to the base to secure the sensor in a first proximal starting position.

[0160] In some embodiments, the system is configured such that moving the proximal portion distally relative to the distal portion bends the distally extending arms outward, releasing the inward projections from the base and allowing the spring to push at least a portion of the sensor into the skin.

[0161] In some embodiments, the system is configured to move the sensor a first distance in response to moving the proximal portion a second distance to unlatch the base. The first distance can be at least twice as long as the second distance, such that the system is configured to augment a first movement of the proximal portion into a larger second movement of the sensor and / or base. The distal portion can include a channel configured to orient the base when the spring pushes the base distally.

[0162] In some embodiments, the first housing is rotatably coupled to the base. A spring can be compressed between a portion of the first housing and the sensor. The system can be configured to unlatch the sensor from the first housing to allow the spring to move the sensor distally in response to rotating the first housing relative to the base.

[0163] In some embodiments, the first housing comprises a first central axis (e.g., an axis of rotation of the first housing). The sensor can comprise a portion configured to pierce the skin. The portion can comprise a second central axis. The first central axis can be oriented within ±20 degrees of parallel to the second central axis.

[0164] In some embodiments, the spring is a helical spring and / or a conical spring configured to expand distally to move the sensor distally. The first housing can be rotatably coupled to the base. The second housing can be coupled to the sensor. The spring can be compressed between the proximal end of the first housing and the sensor, such that the spring is configured to urge the second housing and sensor distally relative to the base and the first housing in response to rotating the first housing relative to the base.

[0165] In some embodiments, the second housing is positioned within the interior region of the first housing. The first adhesive can be configured to secure the base to the skin and allow the first housing to rotate relative to the base and relative to the second housing.

[0166] In some embodiments, the first housing includes a first central axis (e.g., axis of rotation). The sensor can include a portion configured to pierce the skin. The portion can include a second central axis. The first central axis can be oriented within ±10 degrees of parallel to the second central axis.

[0167] In some embodiments, the spring is a conical spring configured to expand in response to rotating the first housing relative to the base. The system can include a mechanical interlock between the first housing and the second housing. The mechanical interlock can be configured to releasably hold the spring in a compressed state, thereby ensuring that the sensor is in a proximal start position. The mechanical interlock can include a first protrusion on the first housing that interferes with distal movement of a second protrusion on the second housing.

[0168] In some embodiments, the mechanical interlock is configured to allow rotation of the first protrusion relative to the second protrusion to cause the second protrusion to drop distally from the first protrusion, thereby moving the second housing distally relative to the first housing. The first protrusion can be oriented radially outward and the second protrusion can be oriented radially inward. The first protrusion can be oriented radially inward and the second protrusion can be oriented radially outward. The mechanical interlock can include a ridge and a groove configured to require rotation of the first housing relative to the base to overcome a torque threshold to move the ridge out of the groove.

[0169] In some embodiments, the system includes an interface between the second housing and the base. The interface can include a ridge positioned within the groove configured to limit rotation of the second housing relative to the base during rotation of the first housing relative to the base. The interface can be oriented from a proximal portion of the second housing to a distal portion of the second housing.

[0170] In some embodiments, a removable applicator is coupled to the base. The applicator can include a rotating housing configured to push the first and second arms distally. A second adhesive can couple the base to the first arm. The second arm can be configured to hold the base in a distal position, while the first arm moves proximally to decouple the first arm from the base.

[0171] In some embodiments, the applicator includes a locking mechanism configured to prevent distal movement of the first arm and / or the second arm until the locking mechanism is disengaged. The applicator can include a locking mechanism configured to prevent rotational movement of the rotating housing. The system can be configured to disengage the locking mechanism in response to linear movement of the rotating housing.

[0172] In some embodiments, the system includes a removable applicator coupled to the base. The applicator can include a first housing, a second housing rotatably coupled to the first housing, and a torsion spring. The torsion spring can have a first portion coupled to the first housing and a second portion coupled to the second housing, such that the torsion spring is configured to rotate the second housing relative to the first housing.

[0173] In some embodiments, the applicator has a first arm slidably coupled to the first housing and coupled to the second housing, such that the first arm is configured to push the sensor linearly from a proximal start position to a distal end position in response to rotation of the second housing relative to the first housing.

[0174] In several embodiments, the applicator is slidably coupled to the first housing and has a second arm coupled to the second housing, such that the second arm is configured to prevent proximal movement of the sensor when the system uncouples the first arm from the base after the sensor reaches a distal end position.

[0175] In some embodiments, a second adhesive bonds the first arm to the base, and the first and second arms can be configured to move linearly and distally in response to rotation of the second housing relative to the first housing.

[0176] In some embodiments, the second arm is configured to prevent proximal movement of the sensor when rotation of the second housing relative to the first housing decouples the second adhesive from the base, allowing the first arm to move proximally relative to the base and relative to the second arm.

[0177] In some embodiments, the first arm is coupled to a first linear channel. The first protrusion can couple the first linear channel to the second housing. The first linear channel can be configured such that a first rotational movement of the second housing relative to the first housing results in a first distal linear movement of the first arm relative to the first housing.

[0178] In some embodiments, the second arm is coupled to a second channel having a curved portion. The first protrusion can couple the second channel to the second housing. The second channel can be configured such that a first rotational movement of the second housing relative to the first housing results in a second distal linear movement of the second arm relative to the first housing.

[0179] In some embodiments, the curved portion of the second channel is configured such that continued rotational movement of the second housing relative to the first housing after the sensor reaches a distal end position does not result in proximal movement of the second arm, when continued rotational movement causes the first arm to move proximally, thereby unbinding the second adhesive from the base.

[0180] In some embodiments, the second housing is coupled to the first housing by a second protrusion, and is configured to rotate relative to the first housing about the second protrusion. The second housing can be slidably coupled to the second protrusion, and thus the second housing is configured to move along the second protrusion from a first position to a second position. In the first position, the third protrusion can prevent rotational movement of the second housing relative to the first housing, preventing distal movement of the sensor.

[0181] In some embodiments, the system includes a release mechanism configured to allow the second housing to rotate relative to the first housing. The release mechanism can include a button and / or any suitable trigger. The first housing can include a button configured to move the second housing from a first position to a second position, where the second housing is configured to rotate relative to the first housing to move the sensor distally.

[0182] In some embodiments, the base comprises a proximal portion coupled to a distal portion by a flex arm configured to rotate the proximal portion relative to the distal portion in response to moving the proximal portion distally (relative to the distal portion) to insert at least a portion of the sensor into the skin. The proximal portion can couple a transmitter to the distal portion.

[0183] In some embodiments, the flex arm comprises at least one living hinge configured to rotate the proximal portion relative to the distal portion in response to moving the sensor distally. The flex arms can be spaced apart around the distal end of the sensor, such that the flex arms are configured to rotate the distal end as the distal end moves from a proximal start position to a distal end position.

[0184] In some embodiments, a removable interference member is positioned between the distal portion and the proximal portion, such that the removable interference member is configured to prevent the system from moving the sensor from the proximal start position to the distal end position. Removal of the interference member can allow the system to move the sensor to the distal end position.

[0185] In some embodiments, the base includes a proximal portion connected to a distal portion by a first arm and a second arm. The distal end portion of the sensor includes a central axis. The first arm can be oriented at a first angle of ±45 degrees perpendicular to the central axis. The second arm can be oriented at a second angle of ±45 degrees perpendicular to the central axis.

[0186] In some embodiments, the first and second arms are configured to linearly guide the proximal portion relative to the distal portion as the proximal portion moves toward the distal portion. The first and second arms can be configured to rotate the proximal portion relative to the distal portion in response to moving the distal end portion of the sensor from a proximal start position to a distal end position. The second arm can be tilted away from the first arm, such that the first and second arms are configured to rotate the distal end portion of the sensor as the system moves the sensor from the proximal start position to the distal end position.

[0187] In some embodiments, the base includes a first portion and a second portion joined by a hinge, such that pivoting the second portion toward the first portion moves the sensor from a proximal start position to a distal end position. The second portion can couple the transmitter to the first portion. The first portion can couple a first adhesive to the second portion.

[0188] In some embodiments, the base can be configured to move a distal end of the sensor out of an aperture in a distal portion of the base to facilitate piercing the skin by decreasing the pivot angle between the first and second portions. A proximal segment of the sensor can be coupled to the second portion, such that the system can be configured to move a portion of the sensor distally from the region between the first and second portions through the aperture in the base in response to decreasing the pivot angle.

[0189] In some embodiments, the base comprises a left half and a right half. The left half can comprise the hole in the base. The right half can comprise the hinge (whereby the hole and hinge are located on different halves of the base). The hinge can comprise a pin rotatably coupled to a sleeve, the sleeve configured to retain the pin when the second portion rotates relative to the first portion.

[0190] In some embodiments, the base includes a first portion and a second portion connected by a hinge, such that pivoting the second portion toward the first portion moves the sensor from a proximal start position to a distal end position. A spring can be coupled to the base. The spring can be configured to facilitate pivoting the second portion relative to the first portion. The spring can be a torsion spring, a leaf spring, and / or any other type of spring described and / or incorporated by reference herein. The spring can be configured to apply a torque about the hinge.

[0191] In some embodiments, the system includes a removable applicator. The applicator can include a housing, a first arm rotatably coupled to the housing by a hinge having a hinge axis, a second arm rotatably coupled to the housing about the hinge axis, a first spring configured to rotate the first arm in a first rotational direction to move the sensor from a proximal start position to a distal end position, and a second spring configured to rotate the second arm in a second rotational direction opposite the first rotational direction.

[0192] In some embodiments, the second arm is configured to couple the base to the housing when the first arm is rotated in a first rotational direction. The first arm can be configured to hold the sensor in a distal end position, while the second arm uncouples the base from the applicator by rotating in a second rotational direction.

[0193] In some embodiments, the applicator includes a first mechanical interlock that releasably couples the second arm to the base, such that the first arm is configured to move the second arm and the base in a first rotational direction. The first arm can be positioned at least partially between the base and the second arm. The first mechanical interlock can include a third flex arm that at least partially secures the first arm between the base and the second arm. The first mechanical interlock can be configured to uncouple from the base and allow the second arm to rotate in a second rotational direction in response to the first arm moving the second arm in the first rotational direction.

[0194] In some embodiments, the housing (or another portion of the applicator) includes a second mechanical interlock configured to hold the first arm in a distal position while the second arm rotates in a second rotational direction. The second mechanical interlock can include a fourth flex arm configured to couple to at least a portion of the first arm.

[0195] In some embodiments, the applicator includes a fifth flex arm that couples the first arm (and / or the second arm) to the housing so that the sensor is in a proximal start position. The fifth flex arm can be configured to resist the rotational force of the first spring. The fifth flex arm can protrude from the exterior of the housing, with a portion comprising an actuation tab and / or an actuation lever. The fifth flex arm can be configured to disengage from the housing in response to moving the actuation tab and / or the actuation lever, allowing the first arm to rotate.

[0196] In some embodiments, a sensor system configured to measure an analyte concentration can include a base having a distal side configured to face toward the skin of a host, a first adhesive coupled to the base and configured to couple the base to the skin, a transmitter coupled to the base and configured to transmit analyte measurement data, and a transcutaneous analyte measurement sensor coupled to the base.

[0197] In some embodiments, the sensor includes a distal end portion having a central axis and a planar profile coincident with the central axis. The planar profile of the distal end portion may be parabolic.

[0198] In some embodiments, the distal end portion of the sensor is coated with a membrane. The distal tip of the sensor can be configured to pierce the skin and can be rounded to resist membrane ablation.

[0199] In some embodiments, the distal end portion of the sensor is coated with a membrane. The parabolic distal end portion can be configured to provide a gradual increase in diameter to reduce tissue trauma and a curved distal tip to resist membrane peeling. The slope of the parabolic distal end portion can include a linear derivative.

[0200] In some embodiments, the sensor segment is configured to be inserted into the skin, the segment can have a first maximum width, and the parabolic distal end portion can have a second maximum width that is at least 50 percent of the first maximum width.

[0201] In some embodiments, the distal end portion is coated with a membrane configured to enable the sensor system to measure a glucose indication. The membrane can have a thickness that varies less than ±30 percent relative to the average thickness of the membrane.

[0202] In some embodiments, the parabolic distal end portion comprises a distal section and a proximal section. The distal section can be oriented at a first angle relative to a central axis. The proximal section can be oriented at a second angle relative to the central axis. The first angle is at least two times larger than the second angle such that the first angle is configured to resist membrane peeling, and the second angle is configured to gradually increase the width of the profile.

[0203] In some embodiments, the sensor includes a distal end portion having a central axis and a planar profile coincident with the central axis. The distal tip of the sensor can be curved such that the planar profile includes a curved distal end joining a first curved side to a second curved side.

[0204] In some embodiments, the distal end portion of the sensor is coated with a membrane. The curved distal end portion can be configured to resist peeling of the membrane. The first and second curved sides can be configured to provide a smooth transition from the distal tip to resist peeling and to provide a gradual transition from the first diameter of the distal tip to the maximum diameter of the distal end portion.

[0205] In some embodiments, the sensor is a glucose sensor having a conductive core and a conductive layer configured to allow the system to apply a voltage between the conductive core and the conductive layer to measure a glucose indication.

[0206] In some embodiments, the sensor includes a first electrically insulating layer positioned around a first section of the conductive core. The sensor can include a second electrically insulating layer positioned around a second section of the conductive core. The conductive layer can be positioned radially outward from the first insulating layer. The first insulating layer is spaced from the second insulating layer to form a gap configured to allow the system to apply a voltage between the conductive core and the conductive layer. The sensor can include an electrically insulating cap covering a distal end of the conductive core.

[0207] In some embodiments, the sensor includes a distal end portion that is a cone with a rounded distal tip. The rounded distal tip can be configured to resist peeling of a film coating the distal end portion. The distal end portion can be conical to facilitate piercing the skin.

[0208] In some embodiments, the sensor comprises a distal end portion that is a cone with a blunt tip that can be configured to resist peeling of a film coating the distal end portion.

[0209] In some embodiments, the sensor includes a distal end portion having a central axis and a planar profile coincident with the central axis. The distal tip of the sensor can be curved such that the planar profile includes a curved distal end joining a first linear side to a second linear side.

[0210] In some embodiments, the distal end portion can be coated with a membrane. The distal tip can be curved, such that the distal tip is configured to resist membrane peeling. The first and second sides can be straight, such that the sides are configured to linearly increase the diameter of the distal end portion to reduce tissue trauma caused by inserting the distal end portion into the skin.

[0211] In some embodiments, the curved distal end has a radius that is greater than 10 micrometers and less than 35 micrometers, such that the curved distal end is configured to be large enough to resist peeling of the film coating the curved distal end, and small enough to reduce patient discomfort associated with piercing the skin.

[0212] In some embodiments, the curved distal end has a maximum width that is greater than 10 micrometers and less than 35 micrometers, such that the curved distal end is large enough to resist peeling of a film coating the curved distal end and small enough to reduce patient discomfort associated with piercing the skin. The angle between the first and second straight sides can be greater than 15 degrees and less than 25 degrees, such that the angle is configured to reduce patient discomfort associated with piercing the skin.

[0213] In some embodiments, the sensor includes a distal end portion having a central axis and a planar profile coincident with the central axis. The planar profile can include a left portion having a first side joined to a second side. The planar profile can include a right portion having a third side joined to a fourth side. A first angle between the first and third sides can be smaller than a second angle between the second and fourth sides, thereby providing a proximal section of the end portion with a more gradual increase in width than a distal section of the end portion. The first, second, third, and fourth sides can be straight. The first, second, third, and fourth sides can be curved.

[0214] In some embodiments, the curved distal end joins the second side to the fourth side. The curved distal end can be configured to resist peeling of a film coating the distal end portion of the sensor.

[0215] In some embodiments, the sensor is a glucose sensor that includes a membrane coating a distal end portion of the sensor, which can be configured to resist membrane peeling, reduce tissue trauma, and / or reduce patient discomfort caused by piercing the skin.

[0216] In some embodiments, the sensor includes a distal end portion having a central axis and a first facet oriented at a first angle less than 25 degrees relative to the central axis, whereby the first facet is configured to facilitate piercing the skin. The distal end portion of the sensor can include a second facet oriented at a second angle less than 25 degrees relative to the central axis. The first facet can be oriented at a third angle relative to the second facet. The third angle can be greater than 10 degrees and less than 25 degrees.

[0217] In some embodiments, the first and second facets form a wedge configured to facilitate piercing the skin. The distal end portion of the sensor can be coated with a membrane. A rounded ridge can connect the first facet to the second facet, whereby the rounded ridge is configured to resist membrane peeling.

[0218] In some embodiments, the distal end portion of the sensor includes a third facet oriented at a fourth angle of less than 25 degrees relative to the central axis. The first, second, and third facets can form a triangular pyramid configured to facilitate piercing the skin. The distal end portion of the sensor can be coated with a membrane. The triangular pyramid can include a rounded distal tip configured to resist membrane peeling.

[0219] In some embodiments, the first rounded ridge can connect the first facet to the second facet. The second rounded ridge can connect the second facet to the third facet. The first rounded ridge and the second rounded ridge can be configured to reduce tissue trauma caused by inserting the distal end portion of the sensor into a host.

[0220] In some embodiments, the distal end portion of the sensor includes a fourth facet oriented at a fifth angle of less than 25 degrees relative to the central axis, and the first, second, third, and fourth facets can form a square pyramid configured to facilitate piercing the skin.

[0221] In some embodiments, the sensor comprises a conductive distal end portion coated with a membrane. The conductive distal end portion can comprise a first step configured to resist proximal movement of the membrane relative to the first step.

[0222] In some embodiments, the sensor includes a tapered end section coated with a membrane and having a distal tip, The tapered end section can include a first step configured to resist proximal movement of the membrane relative to the first step.

[0223] In some embodiments, the sensor includes a tapered end section coated with a membrane. The tapered end section comprises a distal tip of the sensor. The sensor includes a first step positioned within ±1 millimeter and / or ±2.1 millimeters of the tapered end section. The first step can be configured to resist proximal movement of the membrane relative to the first step.

[0224] In some embodiments, the sensor is coated with a membrane. A portion of the sensor can include a first shoulder. The sensor can include a groove configured for insertion into host tissue. The first shoulder can be positioned distal to the groove. The first shoulder can be configured to resist proximal movement of the membrane relative to the first shoulder.

[0225] In some embodiments, the sensor includes a portion coated with a membrane. The sensor portion can include a first conductive layer electrically insulated from a second conductive layer by an insulating layer. The first conductive layer can be configured to be electrically coupled to the second conductive layer through host tissue. The first conductive layer can extend further distally than the second conductive layer. The first conductive layer can include a first step configured to resist proximal movement of the membrane relative to the first step. The first step can be positioned further distally than the second conductive layer.

[0226] In some embodiments, the distal portion of the sensor includes a first step and a second step. The second step can be spaced proximally relative to the first step. The distal portion of the sensor can be coated with a membrane. The first step and the second step face distally. The first step can be configured to resist proximal movement of the membrane relative to the first step.

[0227] In embodiments, the first step comprises a surface oriented within ±25 degrees of normal to a central axis of the portion of the sensor. The first step can comprise a surface oriented within ±15 degrees of normal to a central axis of the portion of the sensor. The surface can form an interferometric feature configured to impede proximal movement of the membrane relative to the surface by creating a compressive force in the membrane in response to proximal movement of the membrane.

[0228] In some embodiments, the sensor can include a first conductive layer electrically isolated from a second conductive layer by an insulating layer, and the first conductive layer can be conductively coupled to a conductive distal end portion such that the conductive distal end portion is configured to be conductively coupled to the second conductive layer through host tissue.

[0229] In some embodiments, the sensor includes a distal end portion coated with a membrane. The distal end portion can include a gap between a conductive core and a conductive layer of the sensor. The gap can be configured to allow subcutaneous current flow between the conductive core and the conductive layer. The distal end portion can include a shoulder positioned distal to the gap and configured to resist proximal movement of the membrane relative to the shoulder.

[0230] In some embodiments, the step can comprise a surface oriented within ±25 degrees of perpendicular to a central axis of the distal end portion. The surface can form an interference feature configured to impede proximal movement of the membrane relative to the surface by creating a compressive force in the membrane in response to proximal movement of the membrane. The conductive core can comprise the step. An insulating layer positioned around the conductive core can form the step.

[0231] In some embodiments, the distal end portion comprises at least one of a rounded distal tip, a parabolic shape, a conical shape, a wedge shape, a triangular pyramid shape, and a square pyramid shape, such that the distal end portion is configured to facilitate piercing the skin.

[0232] In some embodiments, the sensor comprises a distal end portion coated with a membrane. The distal end portion of the sensor can comprise a central axis, a distal tip, and a distal-facing surface spaced proximally away from the distal tip. The distal-facing surface can form a mechanical interlock with the membrane, such that the mechanical interlock is configured to prevent proximal movement of the membrane relative to the distal-facing surface.

[0233] In some embodiments, the sensor can include a conductive core, a conductive layer, and an insulating layer configured to electrically insulate the conductive core from the conductive layer. The conductive core can extend distally beyond the insulating layer to form a shortest conductive path between the conductive core and the conductive layer. The distal-facing surface can be positioned distal to the shortest conductive path.

[0234] In some embodiments, the sensor includes a conductive core and a conductive layer configured to enable a system to apply a voltage between the conductive core and the conductive layer to measure an analyte indication. The sensor can include a first electrically insulating layer positioned around a first section of the conductive core and a second electrically insulating layer positioned around a second section of the conductive core. The conductive layer can be positioned radially outward from the first insulating layer. The first insulating layer is spaced from the second insulating layer to form a gap configured to enable the system to apply a voltage between the conductive core and the conductive layer. The distal-facing surface can be positioned distal to the gap. The distal-facing surface can be oriented within ±20 degrees of normal to the central axis.

[0235] Any of the features of an aspect set forth herein is applicable to all other aspects and embodiments identified herein. Moreover, any of the features of one embodiment can be combined in any way, partially or wholly, independently with other embodiments described herein (e.g., one, two, three, or more embodiments may be combined in whole or in part). Furthermore, any of the features of one embodiment can be optional with respect to other aspects or embodiments. Any aspect or embodiment of a method can be performed by a system or device of another aspect or embodiment, and any aspect or embodiment of a system can be configured to perform a method of another aspect or embodiment.

[0236] These and other features, aspects, and advantages are described below with reference to the drawings, which are intended to illustrate, but not limit, the invention, in which like reference characters indicate corresponding features consistently throughout similar embodiments. [Brief explanation of the drawings]

[0237] [Figure 1] FIG. 1 is a schematic diagram of an analyte sensor system, according to some embodiments. [Figure 2] FIG. 1 is a perspective view of a sensor system, according to some embodiments. [Figure 3] 3 is a cross-sectional view taken along line 3-3 of FIG. 2, according to some embodiments. [Figure 4] FIG. 4 is a cross-sectional view similar to FIG. 3 except that the arm has been moved, according to some embodiments. [Figure 5] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 6] FIG. 6 is a cross-sectional view taken along line 6-6 of FIG. 5, according to some embodiments. [Figure 7] FIG. 7 is the same cross-sectional view as shown in FIG. 6 except the sensor is retracted, according to some embodiments. [Figure 8] 1 is a perspective view of a system having a spring-loaded arm according to some embodiments. FIG. [Figure 9] 9 is a cross-sectional view of the perspective view shown in FIG. 8 according to some embodiments. [Figure 10] FIG. 10 is the same cross-sectional view as illustrated in FIG. 9 except that the sensor is retracted, according to some embodiments. [Figure 11] FIG. 10 is a perspective view of an embodiment having a spring-loaded arm, according to some embodiments. [Figure 12] FIG. 12 is a cross-sectional perspective view of the embodiment shown in FIG. 11, according to some embodiments. [Figure 13] FIG. 13 is a cross-sectional perspective view of the embodiment shown in FIG. 12, except that the arm has been moved relative to the base, according to some embodiments. [Figure 14] FIG. 1 illustrates a perspective view of a system having an arm rotatably coupled to a base, according to some embodiments. [Figure 15] FIG. 15 is a cross-sectional side view of the system shown in FIG. 14, according to some embodiments. [Figure 16] FIG. 15 is a perspective view of the system shown in FIG. 14 according to some embodiments. [Figure 17]FIG. 1 illustrates a perspective view of a system including a hinge configured to store a sensor, according to some embodiments. [Figure 18] FIG. 10 is a cross-sectional side view of a system prior to sensor storage, according to some embodiments. [Figure 19] FIG. 10 is a cross-sectional side view of the system after sensor storage, according to some embodiments. [Figure 20] FIG. 1 is a perspective view of a base comprising a first portion and a second portion, according to some embodiments. [Figure 21] FIG. 21 is a perspective view of the base after the first portion illustrated in FIG. 20 has rotated, according to some embodiments. [Figure 22a] FIG. 21 is a top view of the system illustrated in FIG. 20, according to some embodiments. [Figure 22b] FIG. 21 is a side view of the system illustrated in FIG. 20, according to some embodiments. [Figure 23] FIG. 1 illustrates a perspective view of a sensor system including a flexible sheet, according to some embodiments. [Figure 24] FIG. 1 illustrates a perspective view of a sensor system including a flexible sheet, according to some embodiments. [Figure 25] 1 is a perspective view of a flexible sheet as it unfolds, according to some embodiments. FIG. [Figure 26] FIG. 1 is a side view of a flexible sheet, according to some embodiments. [Figure 27] FIG. 10 is a perspective view of a flexible sheet as it covers a sensor tip, according to some embodiments. [Figure 28] FIG. 1 illustrates a top view of a system configured to store a sensor, according to some embodiments. [Figure 29] FIG. 29 is a perspective view of the system illustrated in FIG. 28, according to some embodiments. [Figure 30] FIG. 1 is a perspective view of the system after the sensor has been retracted into the housing, according to some embodiments. [Figure 31]FIG. 1 illustrates a side view of a system with an extensible sensor cover, according to some embodiments. [Figure 32] FIG. 1 illustrates a side view of a system with an extensible sensor cover, according to some embodiments. [Figure 33] FIG. 2 is a perspective view of a system 202k according to some embodiments. [Figure 34] FIG. 2 is a perspective view of a system 202k according to some embodiments. [Figure 35] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 36] FIG. 36 is a side cross-sectional view of the system shown in FIG. 35 according to some embodiments. [Figure 37] FIG. 1 illustrates a side view of a system, according to some embodiments. [Figure 38] FIG. 1 illustrates a perspective view of a sensor system moving towards a tool, according to some embodiments. [Figure 39] 1 is a perspective cross-sectional view of a sensor system moving towards a tool according to some embodiments. FIG. [Figure 40] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 41] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 42] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 43] FIG. 1 illustrates a top view of a system, according to some embodiments. [Figure 44] FIG. 44 is a perspective cross-sectional view taken along line 44-44 of FIG. 43, according to some embodiments. [Figure 45] 1A-1C are perspective cross-sectional views according to some embodiments. [Figure 46] FIG. 46 is a cross-sectional side view taken along line 46-46 of FIG. 43, according to some embodiments. [Figure 47] FIG. 47 is a perspective view of the cross section shown in FIG. 46 according to some embodiments. [Figure 48] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 49] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 50] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 51] 1 is a cross-sectional side view of a system having a biased sensor, according to some embodiments. [Figure 52] 1 is a side cross-sectional view of a nested applicator, according to some embodiments. [Figure 53] 1 is a side cross-sectional view of a nested applicator, according to some embodiments. [Figure 54] 1 is an equation, according to some embodiments. [Figure 55] 1 is an equation, according to some embodiments. [Figure 56] 1 is an equation, according to some embodiments. [Figure 57] FIG. 1 is a perspective view of a system having a foldable support, according to some embodiments. [Figure 58] FIG. 1 illustrates a side view of a system, according to some embodiments. [Figure 59] FIG. 1 illustrates a side view of a system, according to some embodiments. [Figure 60] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 61] FIG. 10 is a side view of the system before folding the bellows, according to some embodiments. [Figure 62] 1 is a side cross-sectional view according to some embodiments. [Figure 63] 1 is a side cross-sectional view according to some embodiments. [Figure 64] 1 is a side cross-sectional view according to some embodiments. [Figure 65] 1 is a side cross-sectional view according to some embodiments. [Figure 66] FIG. 1 is a side view of a housing according to some embodiments. [Figure 67] FIG. 1 is a perspective view of a system without a housing, according to some embodiments. [Figure 68] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 69] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 70] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 71] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 72] FIG. 1 is a perspective cross-sectional view of a system according to some embodiments. [Figure 73] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 74] FIG. 10 is a side view of a base according to some embodiments. [Figure 75] 1A and 1B are perspective cross-sectional views of a nested applicator, according to some embodiments. [Figure 76] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 77] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 78] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 79] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 80] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 81] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 82] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 83] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 84] FIG. 83 is a partial perspective view of the perspective view shown in FIG. 82 according to some embodiments. [Figure 85] 1 is a perspective view of an applicator according to some embodiments. FIG. [Figure 86] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 87] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 88] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 89] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 90] FIG. 1 is a perspective view of a portion of a system, according to some embodiments. [Figure 91] FIG. 1 illustrates a top cross-sectional view of a system, according to some embodiments. [Figure 92] FIG. 1 illustrates a perspective side cross-sectional view of a system according to some embodiments. [Figure 93] FIG. 1 illustrates a perspective side cross-sectional view of a system according to some embodiments. [Figure 94] FIG. 1 is a side view of an applicator, according to some embodiments. [Figure 95] FIG. 1 is a perspective cross-sectional view of a system according to some embodiments. [Figure 96] FIG. 1 is a perspective cross-sectional view of a system according to some embodiments. [Figure 97] FIG. 1 is a perspective cross-sectional view of a system according to some embodiments. [Figure 98] FIG. 1 is a perspective cross-sectional view of a system according to some embodiments. [Figure 99] FIG. 1 illustrates a side view of a portion of a system, according to some embodiments. [Figure 100] FIG. 1 illustrates a side view of a portion of a system, according to some embodiments. [Figure 101] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 102] 1 is a cross-sectional side view of a system according to some embodiments. [Figure 103] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 104] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 105] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 106] FIG. 1 illustrates a perspective view of a system, according to some embodiments. [Figure 107] 10A-10C illustrate a sensor insertion chart and a distal portion of a sensor, according to some embodiments. [Figure 108] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 109] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 110] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 111] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 112] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 113] FIG. 10 is a bottom view of a distal portion of the sensor, according to some embodiments. [Figure 114] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 115] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 116] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 117] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 118] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 119] FIG. 10 is a bottom view of a distal portion of the sensor, according to some embodiments. [Figure 120] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 121] FIG. 1B is a bottom view of a sensor, according to some embodiments. [Figure 122] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 123] FIG. 10 is a perspective view of a distal portion of a sensor according to some embodiments. [Figure 124] FIG. 10 is a side view of a distal portion of a sensor, according to some embodiments. [Figure 125] FIG. 125 is a cross-sectional view taken along line 125-125 of FIG. 124, according to some embodiments. [Figure 126] FIG. 126 is a cross-sectional view taken along line 126-126 of FIG. 116, according to some embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0238] Although specific embodiments and examples are disclosed below, the subject matter of the present invention extends beyond the specifically disclosed embodiments to other alternative embodiments and / or uses, as well as modifications and equivalents thereof. Accordingly, the scope of the claims appended hereto is not limited by any of the specific embodiments described below. For example, in any method or process disclosed herein, the activities or operations of the method or process may be performed in any suitable sequence and are not necessarily limited to any particular sequence disclosed. Although various operations may be described one by one as multiple separate operations, in a manner that may be helpful in understanding particular embodiments, the order of description should not be construed to imply that these operations are order-dependent. Additionally, the structures, systems, and / or devices described herein may be embodied as integrated components or as separate components.

[0239] For purposes of comparing various embodiments, certain aspects and advantages of those embodiments are described. Not necessarily all such aspects or advantages are achieved by any particular embodiment. Thus, for example, various embodiments may be implemented in a manner that achieves or optimizes one advantage or group of advantages taught herein, without necessarily achieving other aspects or advantages that may be taught or suggested herein.

[0240] System Introduction U.S. Patent Application Publication No. 2013 / 0267811 A1, the entire contents of which are incorporated herein by reference, illustrates how FIG. 1 is a schematic diagram of a continuous analyte sensor system 100 attached to a host (e.g., a person). The analyte sensor system 100 communicates with other devices 110-113 (which may be located remotely from the host). The transcutaneous analyte sensor system 102, which includes an on-skin sensor assembly 600, is coupled to the host's skin by a base (not shown), which may be a disposable housing with several parts that can move relative to each other.

[0241] Any of the features described in the context of FIG. 1 may be applied to all aspects and embodiments identified herein. For example, an embodiment described in the context of FIG. 1 may be combined with an embodiment described in the context of FIGS. 2-126. Furthermore, any of the features of one embodiment may be independently combinable in some way, partially or wholly, with other embodiments described herein (e.g., one, two, or more embodiments may be combinable in whole or in part). Furthermore, any of the features of one embodiment may be optional with respect to other aspects or embodiments. Any aspect or embodiment of a method may be performed by a system or device of another aspect or embodiment, and any aspect or embodiment of a system may be configured to perform a method of another aspect or embodiment.

[0242] 1, system 102 includes a transcutaneous analyte sensor 200 and an electronics unit (interchangeably referred to as "sensor electronics" or "transmitter") 500 for wirelessly transmitting analyte information to a receiver. The transmitter may be removably coupled (e.g., by a user) to a base. In some embodiments, the transmitter is not removable (e.g., by a user). The transmitter may be built into the base (e.g., at the factory).

[0243] The receiver can be located remotely relative to the system 102. In some embodiments, the receiver includes a display screen capable of displaying information to a person, such as a host. Exemplary receivers include computers, such as smartphones, smartwatches, tablet computers, laptop computers, and desktop computers. In some embodiments, the receiver may be an Apple Watch, iPhone®, and iPad® manufactured by Apple Inc. In further embodiments, the system 102 can be configured for use in applying a drug delivery device, such as an infusion device, to a patient's skin. In such embodiments, the system can include a catheter, instead of or in addition to a sensor, connected to an infusion pump configured to deliver a liquid medication or other fluid into the patient's body. In embodiments, the catheter can be deployed into the skin in much the same manner as a sensor is deployed, for example, as described herein.

[0244] In some embodiments, the receiver is mechanically coupled to the electronics unit 500, allowing the receiver to receive data (e.g., analyte data) from the electronics unit 500. For increased user convenience, in some embodiments, the receiver does not need to be mechanically coupled to the electronics unit 500 and can still receive data from the electronics unit 500 over long distances (e.g., when the receiver is a few feet or even miles from the electronics unit 500).

[0245] In use, the sensing portion of the sensor 200 can be placed under the skin of the host, and the contact portion of the sensor 200 can be electrically connected to the electronics unit 500. The electronics unit 500 can be engaged with a housing (e.g., a base) attached to an adhesive patch that is adhered to the skin of the host.

[0246] The on-skin assembly 600 can be attached to a host using an applicator adapted to provide convenient and safe application. Such an applicator can also be used to attach the electronics unit 500 to a base, to insert the sensor 200 through the skin of the host, and / or to connect the sensor 200 to the electronics unit 500. Once the electronics unit 500 is engaged with the base and the sensor 200 is inserted into the skin (and connected to the electronics unit 500), the sensor assembly can be detached from the applicator.

[0247] The continuous analyte sensor system 100 can include a sensor configuration that provides an output signal indicative of an analyte concentration. The output signal (including sensor data, such as a raw data stream, filtered data, smoothed data, and / or otherwise transformed sensor data, for example) is transmitted to a receiver.

[0248] In some embodiments, the analyte sensor system 100 includes a transcutaneous glucose sensor, as described in U.S. Patent Application Publication No. 2011 / 0027127 A1, the contents of which are incorporated herein by reference in their entirety. In some embodiments, the sensor system 100 includes a continuous glucose sensor (e.g., as described in U.S. Patent No. 6,565,509, as described in U.S. Patent No. 6,579,690, or as described in U.S. Patent No. 6,484,046) and also includes a transcutaneous sensor. The contents of U.S. Patent Nos. 6,565,509, 6,579,690, and 6,484,046 are incorporated herein by reference in their entirety.

[0249] In some embodiments, sensor system 100 includes a continuous glucose sensor (e.g., as described in U.S. Pat. No. 6,512,939) and also includes a replaceable subcutaneous sensor. In some embodiments, sensor system 100 includes a continuous glucose sensor (e.g., as described in U.S. Pat. No. 6,477,395, as described in U.S. Pat. No. 6,424,847) and also includes an intravascular sensor. The contents of U.S. Pat. Nos. 6,512,939, 6,477,395, and 6,424,847 are incorporated herein by reference in their entireties.

[0250] Various signal processing techniques and glucose monitoring system embodiments suitable for use with the embodiments described herein are described in U.S. Patent Application Publication Nos. 2005 / 0203360A1 and 2009 / 0192745A1, the contents of which are incorporated herein by reference in their entireties. The sensor can extend through a housing that can maintain the sensor on the skin and provide an electrical connection for the sensor to sensor electronics, which can be provided in electronics unit 500.

[0251] In some embodiments, the sensor is formed from or in the form of a wire. The distal end of the wire can be sharpened to form a conical shape (to facilitate insertion of the wire into host tissue). The sensor can include an elongated conductor, such as an exposed elongated conductive core (e.g., a metal wire) or an elongated conductive core coated with one, two, three, four, five, or more layers of material, each of which may or may not be conductive. An elongated sensor can be long and thin, yet flexible and strong. For example, in some embodiments, the smallest dimension (e.g., diameter) of the elongated conductor is less than 0.1 inches, less than 0.075 inches, less than 0.05 inches, less than 0.025 inches, less than 0.01 inches, less than 0.004 inches, and / or less than 0.002 inches.

[0252] The sensor can have a circular cross-section. In some embodiments, the cross-section of the sensor and / or elongated conductor can be oval, rectangular, triangular, polygonal, star-shaped, C-shaped, T-shaped, X-shaped, Y-shaped, irregular, or the like. In some embodiments, a conductive wire electrode is used as the core. Such electrodes can be supplemented with one or two additional conductive layers (e.g., with an intervening insulating layer provided for electrical isolation). The conductive layers can be composed of any suitable material. In certain embodiments, it may be desirable to use a conductive layer comprising conductive particles (i.e., particles of a conductive material) in a polymer or other binder.

[0253] In some embodiments, the materials used to form the elongated conductors (e.g., stainless steel, titanium, tantalum, platinum, platinum-iridium, iridium, certain polymers, and / or similar materials) can be strong and rigid, and therefore resistant to breakage. For example, in some embodiments, the ultimate tensile strength of the elongated conductors is greater than 80 kPsi and less than 500 kPsi, and / or the Young's modulus of the elongated conductors is greater than 160 GPa and less than 220 GPa. In some embodiments, the yield strength of the elongated conductors can be greater than 60 kPsi and less than 2200 kPsi.

[0254] The electronics unit 500 can be releasably coupled to the sensor 200. The electronics unit 500 can include electronic circuitry associated with measuring and processing continuous analyte sensor data. The electronics unit 500 can be configured to perform algorithms associated with processing and calibrating sensor data. For example, the electronics unit 500 can provide various aspects of the functionality of a sensor electronics module, as described in U.S. Patent Application Publication Nos. 2009 / 0240120 A1 and 2012 / 0078071 A1, the contents of which are incorporated herein by reference in their entireties. The electronics unit 500 can include hardware, firmware, and / or software that enables measurement of analyte levels via a glucose sensor, such as the analyte sensor 200.

[0255] For example, the electronics unit 500 may include a potentiostat, a power supply for powering the sensor 200, signal processing components, data storage components, and a communications module (e.g., a telemetry module) for one-way or two-way data communication between the electronics unit 500 and one or more receivers, repeaters, and / or display devices, such as devices 110-113. The electronics may be affixed to a printed circuit board (PCB) or the like and may take a variety of forms. The electronics may take the form of integrated circuits (ICs), such as application specific integrated circuits (ASICs), microcontrollers, and / or processors. The electronics unit 500 may include sensor electronics configured to process sensor information, such as storing data, analyzing data streams, calibrating analyte sensor data, estimating analyte values, comparing estimated analyte values ​​with measured analyte values ​​over time, analyzing fluctuations in estimated analyte values, and the like. Examples of systems and methods for processing sensor analyte data are described in U.S. Pat. No. 7,310,544, U.S. Pat. No. 6,931,327, U.S. Patent Application Publication No. 2005 / 0043598A1, U.S. Patent Application Publication No. 2007 / 0032706A1, U.S. Patent Application Publication No. 2007 / 0016381A1, U.S. Patent Application Publication No. 2005 / 0033254A1, U.S. Patent Application Publication No. 2005 / 0016381 ... Nos. 0203360A1, 2005 / 0154271A1, 2005 / 0192557A1, 2006 / 0222566A1, 2007 / 0203966A1, and 2007 / 0208245A1, the contents of which are incorporated herein by reference in their entireties.

[0256] One or more repeaters, receivers, and / or display devices, such as a key fob repeater 110, a medical device receiver 111 (e.g., an insulin delivery device and / or a dedicated glucose sensor receiver), a smartphone 112, a portable computer 113, and the like, can be communicatively coupled to the electronics unit 500 (e.g., to receive data from the electronics unit 500). The electronics unit 500 can also be referred to as a transmitter. In some embodiments, the devices 110-113 transmit data to the electronics unit 500. Sensor data can be transmitted from the sensor electronics unit 500 to one or more of the key fob repeater 110, the medical device receiver 111, the smartphone 112, the portable computer 113, and the like. In some embodiments, the analyte value is displayed on a display device.

[0257] The electronics unit 500 can communicate with the devices 110-113 and / or any number of additional devices via any suitable communication protocol. Exemplary communication protocols include radio frequency, Bluetooth, Universal Serial Bus, any of the Wireless Local Area Network (WLAN) communication standards including IEEE 802.11, 802.15, 802.20, 802.22, and other 802 communication protocols, ZigBee, wireless (e.g., cellular) telecommunications, paging network communications, magnetic induction, satellite data communications, and / or proprietary communication protocols.

[0258] Additional sensor information is provided in U.S. Patent Nos. 7,497,827 and 8,828,201, the entire contents of which are incorporated herein by reference.

[0259] Any sensor shown and / or described herein can be an analyte sensor, a glucose sensor, and / or any other suitable sensor. A sensor described in the context of any embodiment can be any sensor described herein and / or incorporated by reference. A sensor shown or described herein can be configured to sense, measure, detect, and / or interact with any analyte.

[0260] As used herein, the term "analyte" is a broad term given its ordinary and customary meaning to those skilled in the art (and is not limited to any special or customized meaning), and further refers to, but is not limited to, a substance or chemical constituent in a biological fluid (e.g., blood, interstitial fluid, cerebrospinal fluid, lymphatic fluid, urine, sweat, saliva, etc.) that can be analyzed. Analytes can include naturally occurring substances, man-made substances, metabolites, or reaction products.

[0261] In some embodiments, the analyte for measurement by the sensing region, device, system, and method is glucose. However, other analytes are also contemplated, including ketone bodies, acetyl-CoA, acarboxyprothrombin, acylcarnitines, adenine phosphoribosyltransferase, adenosine deaminase, albumin, alpha-fetoprotein, amino acid profiles (arginine (Krebs cycle), histidine / urocanic acid, homocysteine, phenylalanine / tyrosine, tryptophan), andrenostenedione, antipyrine, arabinitol enantiomers, arginase, benzoylecgonine (cocaine), and the like. ), biotinidase, biopterin, c-reactive protein, carnitine, carnosinase, CD4, ceruloplasmin, chenodeoxycholic acid, chloroquine, cholesterol, cholinesterase, cortisol, testosterone, choline, creatine kinase, creatine kinase MM isoenzyme, cyclosporin A, d-penicillamine, de-ethylchloroquine, dehydroepiandrosterone sulfate, DNA (acetylation polymorphisms), alcohol dehydrogenase, α1-antitrypsin, cystic fibrosis, Duchenne syndrome / Becker muscular dystrophy, analyte-6-phosphate dehydrogenase, hemoglobin A, hemoglobin S, hemoglobin C, hemoglobin D, hemoglobin E, hemoglobin F, D Punjab, β-thalassemia, hepatitis B virus, HCMV, HIV-1, HTLV-1, Leber's hereditary optic neuropathy, MCAD, RNA, PKU, Plasmodium vivax, sex differentiation, 21-deoxycortisol), desbutylhalofantrine, dihydropteridine reductase, diphtheria / tetanus antitoxin, erythrocyte arginase, erythrocyte protoporphyrin phyrin, esterase D, fatty acids / acylglycines, triglycerides, glycerol, free β-human chorionic gonadotropin, free erythrocyte porphyrins, free thyroxine (FT4), free tri-iodothyronine (FT3), fumarylacetoacetase, galactose / gal-1-phosphate, galactose-1-phosphate uridyltransferase, gentamicin, analyte-6-phosphate dehydrogenase, glutathione, glutathione peroxidase, glycocholate, glycosylated hemoglobin, halofantrine,Hemoglobin variants, hexosaminidase A, human erythrocyte carbonic anhydrase I, 17-α-hydroxyprogesterone, hypoxanthine phosphoribosyltransferase, immunoreactive trypsin, lactate, lead, lipoproteins ((a), B / A-1, β), lysozyme, mefloquine, netilmicin, phenobarbitone, phenytoin, phytanic acid / pristanic acid, progesterone, prolactin, prolidase, purine nucleoside phosphorylase, quinine, triiodothyronine (rT3), selenium, serum pancreatic lipase, sisomicin, somatomedin C, specific antibodies (adenovirus, antinuclear antibody, anti-zeta antibody, arbovirus, Aujeszky's disease virus, dengue virus, Dracaena spp., Echinococcus granulosus, Entamoeba histolytica, enterovirus, Giardia lamblia duodenalisa), Helicobacter pylori, Hepatitis B virus, Herpes virus, HIV-1, IgE (atopic disease), Influenza virus, Leishmania donovani, Leptospirosis, Measles / Mumps / Rubella, Mycobacterium leprae, Mycoplasma pneumoniae, Myoglobin, Onchocerciasis volvulus, Parainfluenza virus, Plasmodium falciparum, Poliovirus, Pseudomonas aeruginosa, Respiratory syncytial virus, Rickettsia (scrub typhus), Schistosoma mansoni, Toxoplasma gondii, Treponema pallidum, Trypanosoma cruzi / Langer, Vesicular stomatitis virus These include, but are not limited to, thrombolytic enzymes (anticoagulants), ...

[0262] Salts, sugars, proteins, lipids, vitamins, and hormones naturally occurring in blood or intestinal fluids may also constitute analytes in certain embodiments. Analytes may be naturally occurring in biological fluids or may be endogenous, such as metabolites, hormones, antigens, antibodies, etc. Alternatively, analytes may be introduced into the body or may be exogenous, such as contrast agents for imaging, radioisotopes, chemical agents, fluorocarbon-based synthetic blood, or drugs or pharmaceutical compositions, including insulin, glucagon, ethanol, cannabis (marijuana, tetrahydrocannabinol, hashish), inhalants (nitrous oxide, amyl nitrite, butyl nitrite, chlorinated hydrocarbons, hydrocarbons), cocaine (crack cocaine), stimulants (amphetamines, methamphetamines, Ritalin, Cylert, Preludin, Didrex, PreState, Voranil, Sandrex, Plegine), depressants (barbiturates, methamphetamines, etc.). These include, but are not limited to, tranquilizers (e.g., Calone, Valium, Librium, Miltown, Serax, Equanil, Tranxene, etc.), hallucinogens (phencyclidine, lysergic acid, mescaline, peyote, psilocybin), narcotics (heroin, codeine, morphine, opium, meperidine, Percocet, Percodan, Tussionex, Fentanyl, Darvon, Talwin, Lomotil), designer drugs (fentanyl, meperidine, amphetamine, methamphetamine, and phencyclidine analogs, e.g., Ecstasy), anabolic steroids, and nicotine. Metabolites of drugs and pharmaceutical compositions are also potential analytes. Analytes such as neurochemicals and other chemicals produced in the body, such as ascorbic acid, uric acid, dopamine, noradrenaline, 3-methoxytyramine (3MT), 3,4-dihydroxyphenylacetic acid (DOPAC), homovanillic acid (HVA), 5-hydroxytryptamine (5HT), and 5-hydroxyindoleacetic acid (FHIAA), can also be analyzed.

[0263] Embodiments may use a needle to facilitate insertion of the sensor into the host's tissue. Some embodiments are illustrated without a needle but may be combined with other needle embodiments that include a needle. Some embodiments do not use a needle but include a separate portion configured to facilitate piercing the sensor and / or the host's skin. Each embodiment may be configured to use a needle or not use a needle.

[0264] Many of the embodiments described herein use an adhesive. One purpose of the adhesive is to allow the base, sensor module, and / or sensor to be coupled to the host (e.g., to the skin of the host). The adhesive can be configured to adhere to the skin. The adhesive can include a pad (e.g., positioned between the adhesive and the base). Additional adhesive information, including adhesive pad information, is described in U.S. Patent Application No. 14 / 835,603, filed August 25, 2015. The entire contents of U.S. Patent Application No. 14 / 835,603 are incorporated herein by reference.

[0265] U.S. Patent Application Publication No. 2013 / 0267811A1, U.S. Patent Application No. 62 / 165,837, filed May 15, 2015, and U.S. Patent Application No. 62 / 244,520, filed October 21, 2015, contain details regarding embodiments of the applicator system. The entire contents of U.S. Patent Application Publication No. 2013 / 0267811A1, U.S. Patent Application No. 62 / 165,837, and U.S. Patent Application No. 62 / 244,520 are incorporated herein by reference. The entire contents of U.S. Patent Application Publication No. 2009 / 0076360A1 are incorporated herein by reference.

[0266] U.S. Patent Application Publication Nos. 2011 / 0077490A1, 2014 / 0107450A1, and 2014 / 0213866A1 describe several needleless embodiments, the entire contents of which are incorporated herein by reference.

[0267] The entire contents of the following applications are incorporated herein by reference: U.S. patent application Ser. No. 12 / 893,850, filed Sep. 29, 2010, and entitled "Transcutaneous Analyte Sensor." The entire contents of the following applications are incorporated herein by reference: U.S. patent application Ser. No. 14 / 250,320, filed April 10, 2014, and entitled "Sensors for Continuous Analyte Monitoring, and Related Methods." The entire contents of the following applications are incorporated herein by reference: U.S. patent application Ser. No. 13 / 780,808, filed February 28, 2013, and entitled "Sensors for Continuous Analyte Monitoring, and Related Methods."

[0268] As used herein, the term "base" is used very broadly and is not limited to a single component, but can include many components. The base can include components that move relative to each other. The base can include a distal portion and a proximal portion. The transmitter can be coupled to the proximal portion of the base, the distal portion of the base, and / or any portion of the base. The transmitter can be integrated into the base. The transmitter can be removably coupled to the base. The transmitter can be configured to transmit analyte measurement data (e.g., analyte indication) to a receiver.

[0269] As used herein, "path" is used in a manner that does not require movement. For example, a sensor can pass through a channel without movement (e.g., by being located within the channel).

[0270] As used herein, a transcutaneous analyte measurement sensor (e.g., a sensor) can include a subcutaneous portion and a portion not configured to enter tissue. A first segment of the sensor can be outside the host, and a second segment of the sensor can be inside the host. Because at least a portion of the sensor can be configured to enter the host, the sensor can be a transcutaneous sensor. The sensor can be a sensor assembly having multiple layers, conductors, insulators, membranes, and components.

[0271] Some embodiments include one or more springs. These springs can be torsion springs, leaf springs, helical springs, conical springs, compression springs, extension springs, integral deformation bodies, flex arms, any suitable type of spring or combination of springs, any springs described herein, and / or any springs incorporated by reference. While some embodiments are shown with particular types of springs, embodiments can be created by substituting one type of spring for another type of spring.

[0272] 1-126 illustrate a sensor system, or at least a portion of a sensor system, that may be configured to measure an analyte indication. The sensor system may include a base having a distal side configured to face the skin of a host, a first adhesive coupled to the base and configured to couple the base to the skin, a transmitter coupled to the base and configured to transmit analyte measurement data, and / or a transcutaneous analyte measurement sensor coupled to the base. Many of the drawings focus on particular features (rather than all features described herein) to reduce unnecessary redundancy and enhance clarity of the description related to particular features. However, each feature may be combined with all other features described in the context of the drawings contained herein and / or incorporated by reference.

[0273] Sharp Protection Measuring analyte data often involves inserting an analyte sensor into subcutaneous tissue. Some embodiments use a needle to facilitate inserting the sensor into the subcutaneous tissue. Some embodiments have a sensor configured to be inserted into the subcutaneous tissue without the aid of a needle. Each embodiment may be configured with or without a needle.

[0274] Once the sensor is removed from the tissue, it becomes a biohazard that can transfer viruses, bacteria, and other pathogens from the tissue to another person who is inadvertently pierced by the sensor. Another undesirable side effect is that the user may accidentally pierce themselves. Therefore, in some cases, it would be advantageous for systems and methods to protect people from "used" sensors (and / or needles).

[0275] chemical solutions In some embodiments, at least a portion of the sensor is configured to soften in vivo, such that when the sensor is removed from tissue, the sensor is sufficiently susceptible to buckling such that the sensor does not pose a substantial risk of accidental, unintentional perforation (because the sensor column is not strong enough to easily perforate the skin).

[0276] A coating can be applied to the sensor. The coating can be configured to reinforce the sensor and increase the maximum buckling load of the sensor. The coating can be configured to soften and / or dissolve in response to being positioned within tissue. As a result, the coating can soften and / or dissolve after a period of in vivo exposure such that the sensor is no longer configured to pierce tissue.

[0277] In some embodiments, the wire of the sensor (and / or another portion of the sensor) remains sharp enough to pierce tissue after the coating softens and / or dissolves, but the softening and / or dissolution of the coating causes the sensor to buckle sufficiently that the sensor is no longer configured to pierce tissue. In other words, rather than piercing tissue, the sensor buckles.

[0278] In some embodiments, the sharp distal end of the sensor is made of a material that softens and / or dissolves in vivo. As a result, the sensor is initially sharp enough to pierce skin, but once the sharp distal end softens and / or dissolves, the sensor is no longer configured to pierce skin. In other words, the distal end of the sensor becomes dull (e.g., less sharp) in response to exposure in vivo. The cross-sectional area of ​​the distal tip increases so that the force required to pierce skin is greater than the buckling strength of the wire.

[0279] Some embodiments include a structure configured to support the sensor against buckling forces. The support structure can be positioned alongside the sensor. The sensor can pass through a channel in the support structure. The sensor can be at least partially contained within the channel in the support structure.

[0280] The support structure can have a tubular, C-shaped, cylindrical, and / or any other shape suitable to help prevent buckling of the sensor. The support structure can be made from a material that softens and / or dissolves in vivo so that the support structure becomes less stiff in vivo. This change can be the result of fluid exposure to interstitial fluid (e.g., hydration) or elevated temperature.

[0281] As used herein, the term "C-shaped" is used broadly to mean that the structure has an open side, such that a C-shape can include U-shapes, V-shapes, and other similar shapes.

[0282] The bond between the sensor and the support structure can be made from a material that softens and / or dissolves in vivo. As a result, the support structure can be configured to resist buckling when the sensor is initially inserted into tissue, but can then have a lower buckling resistance capability.

[0283] The support structure and / or the sensor may include a sharp tip, which may be configured to pierce the skin of the host.

[0284] The purpose of the softening and / or dissolving material may be to add column strength and / or buckling resistance to the sensor for ease of insertion. The material may be mechanically (e.g., constrained within a tube) or chemically (e.g., adhesive) bonded to the sensor.

[0285] The material can reduce the risk of accidental perforation through one or more of the following mechanisms: The material can degrade to a state where it is no longer capable of holding the sensor rigidly enough to perforate the skin; In vivo exposure can cause the secondary material to no longer be sharp enough to perforate the skin (e.g., at the distal tip); The material can soften and / or dissolve such that the sensor and support structure separate and / or the support structure is no longer configured to hold the sensor in a rigid and / or substantially straight state.

[0286] The following applications, the entire contents of which are incorporated herein by reference, contain information regarding softening and dissolving materials: U.S. Patent Application No. 14 / 250,320, filed April 10, 2014, and entitled Sensors for Continuous Analyte Monitoring, and Related Methods.

[0287] The coating material and / or the support structure material may be biodegradable and / or dissolve upon insertion into the host, for example, the material may include at least one of a salt, a metal salt, a sugar, a synthetic polymer, a glue or adhesive (such as cyanoacrylate), polylactic acid (PLA), polyglycolic acid, polylactic-co-glycolic acid (PLGA), a polyanhydride, a polyphosphazene, or any material having a glass transition temperature of 37±10°C.

[0288] FIG. 2 shows a perspective view of sensor system 202a. FIG. 3 shows a cross-sectional view taken along line 3-3 in FIG. 2. Referring now to FIG. 3, sensor 206a can include a section disposed distally relative to base 204a. That section of sensor 206a can include a first portion 255 and a second portion 256. First portion 255 of sensor 206a can be configured to facilitate maintaining second portion 256 in a straight configuration during insertion of the section into the skin. First portion 255 of sensor 206a can be configured to soften in response to being placed in vivo.

[0289] First portion 255 can include a first buckling resistance before insertion and a second buckling resistance after 1 hour, 12 hours, and / or 48 hours in vivo placement. The second buckling resistance can be less than the first buckling resistance. The second buckling resistance can be at least 30% and / or at least 70% less than the first buckling resistance.

[0290] Figure 126 shows a cross-sectional view taken along line 126-126 of Figure 116. Any of the sensors described herein and / or incorporated by reference may include features described in the context of Figure 126. Features described in the context of Figure 126 will not be described in the context of each sensor embodiment to avoid unnecessary redundancy.

[0291] 126 illustrates an embodiment in which a portion of the sensor 616 (e.g., 692c, 683a, 691a, 690a, sensor core, sensor layer, sensor support structure) is configured to soften in vivo such that, once the sensor 616 is removed from the host's tissue, the sensor 616 is sufficiently susceptible to buckling and does not pose a substantial risk of the sensor 616 perforating another person.

[0292] The sensor 616 can include a first conductive layer 690a (e.g., platinum), a first insulating layer 692c (e.g., a polyurethane coating), and a second conductive layer 691a (e.g., a silver / silver chloride coating). The first insulating layer 692c can block direct electrical conductivity between the first conductive layer 690a and the second conductive layer 691a (e.g., such that the first conductive layer 690a and the second conductive layer 691a are electrically coupled only by host tissue and / or bodily fluids, as illustrated in the context of FIG. 125). The sensor 616 can include an outer membrane 683a.

[0293] The insulating layer 692a may be formulated to soften in response to being placed in vivo. Softening of the insulating layer 692a (and / or other portions of the sensor 616) makes the sensor 616 more likely to buckle and therefore less prone to accidentally puncturing the skin (e.g., of the wrong person).

[0294] Sliding Arm Once the sensor is removed from the tissue, it may accidentally puncture another person's skin. Some embodiments overcome this potential hazard by retracting at least a portion of the sensor (e.g., as the sensor is removed from the skin and / or after the sensor is removed from the skin). Some embodiments cover a distal portion of the sensor to protect it from puncturing a person after the sensor is removed.

[0295] Some embodiments include an arm slidably coupled to the base, which can be configured to house and / or cover a distal portion of the sensor.

[0296] Horizontal pull tab One way to prevent a "used" sensor from inadvertently piercing a person's skin is to store the sensor (e.g., within an internal cavity of the system). The system (e.g., wearable and / or applicator) can include a portion configured to slide approximately parallel to the skin. Sliding this portion can retract the sensor. The sliding portion can be a pull tab and / or a transmitter. For example, pulling the pull tab and / or removing the transmitter can cause the system to retract the sensor.

[0297] 2-4 show a sensor system 202a that includes an arm 203 slidably coupled to a base 204a. Arm 203 can be slid in the direction indicated by arrow 205 to retract sensor 206a and prevent sensor 206a from piercing a person.

[0298] Figure 2 shows a perspective view of sensor system 202a. Figure 3 shows a cross-sectional view taken along line 3-3 in Figure 2. Figure 4 also shows a cross-sectional view similar to Figure 3, except that arm 203 has been moved in the direction indicated by arrow 205 in Figure 2 to retract sensor 206a.

[0299] 2-4, some embodiments include a sensor system 202a for measuring an analyte concentration. The sensor system 202a can include a base 204a having a distal side 207a configured to face the skin of a host. Figures 3 and 4 show a proximal direction 208 (e.g., away from the skin) and a distal direction 209 (e.g., toward the skin).

[0300] The sensor system 202a may include a first adhesive 210 coupled to the base 204a and configured to couple the base 204a to the skin, a transmitter 211a coupled to the base 204a and configured to transmit analyte measurement data, and / or a transcutaneous analyte measurement sensor 206a coupled to the base 204a.

[0301] The system can include a pull tab system 213 that includes a pull tab 214. The pull tab system 213 can be configured to retract the sensor 206a in response to moving the pull tab 214 relative to the base 204a.

[0302] The pull tab system 213 can include a channel 215 and an intermediate portion 216 that couples the channel 215 to the pull tab 214. The pull tab 214 can protrude away from the base 204a. A first portion of the sensor 206a can pass through the channel 215. The pull tab system 213 can be configured such that pulling the pull tab 214 moves the channel 215 to retract the sensor 206a.

[0303] The channel 215 may be formed by holes, slots, and / or hooks. The channel 215 may be formed by walls configured to push and / or pull the sensor 206a. The channel 215 may be open on one side to facilitate assembly of the system (by allowing the sensor 206a to be inserted into the channel 215 through the open side).

[0304] The base 204a can include a channel (e.g., a second hole 219). A second portion of the sensor 206a can pass through the second hole 219. The pull tab system 213 can be configured to store the sensor 206a by pulling the pull tab to pull the second portion of the sensor 206a out of the second hole 219 and into the interior region 220 of the sensor system 202a.

[0305] Pull tab system 213 may be slidably coupled to base 204a such that pull tab system 213 is configured to slide in a first direction 205 that is within 20 degrees (e.g., within ±20 degrees) and / or within 45 degrees (e.g., within ±45 degrees) of perpendicular to proximal direction 208 oriented away from the skin. (Pull tab system 213 may be configured to slide in a direction 205 that is within ±20 degrees and / or within ±45 degrees of perpendicular to distal direction 209 oriented toward the skin.)

[0306] Transmitter 211a may be slidably coupled to base 204a such that transmitter 211a is configured to slide in a second direction 221 that is within ±20 degrees and / or ±45 degrees of perpendicular to proximal direction 208. Second direction 221 may be within ±20 degrees and / or ±45 degrees of parallel to first direction 205. (In some embodiments, the transmitter is coupled to the base by a user or by permanent attachment to the base at the factory.)

[0307] Horizontal push tab or button The embodiment shown in Figures 5-7 is also configured to store the sensor 206b to prevent the sensor 206b from perforating the skin (e.g., after the sensor 206b is removed from the host).

[0308] 5-7 includes a button 222, which may be a push tab or an electronic button. The system 202b may be configured such that the sensor 206b is stored within the outer housing by depressing the button 222 (e.g., a push tab) into the outer housing. Thus, by storing the sensor 206b (e.g., within an internal cavity of the system 202b), the system 202b prevents a "used" sensor 206b from inadvertently piercing a person's skin.

[0309] Figure 5 illustrates a perspective view of system 202b. Figure 6 shows a cross-sectional view along line 6-6 in Figure 5. Figure 6 shows sensor 206b before it is stored in the interior region of sensor system 202b. Figure 7 shows the same cross-sectional view as shown in Figure 6, except that sensor 206b has been stored within system 202b.

[0310] 5-7, system 202b can include a push button system having push button 222. The push button system can be configured to retract sensor 206b in response to pressing button 222 (e.g., in the direction indicated by arrow 223 in FIG. 5). In some embodiments, button 222 is electrically actuated rather than mechanically actuated.

[0311] At least a portion 225 of the push button system can protrude away from the base 204b. The push button system can be configured to engage a sensor storage hoop or hook 226 that draws and / or pushes the sensor 206b into an interior region of the sensor system 202b by pushing the portion 225 of the push button system into the base 204b.

[0312] The push button system can further include a channel 227 and an intermediate portion 228 coupling the channel 227 to the push button 222. The push button 222 can protrude away from the base 204b. A first portion of the sensor 206b can pass through the channel 227. The push button system can be configured to move the channel 227 to retract the sensor 206b by pressing the button 222.

[0313] The channel 227 may be formed by holes, slots, and / or hooks 226. The channel 227 may be formed by walls configured to push and / or pull the sensor 206b. The channel 227 may be open on one side to facilitate assembly of the system 202b (by allowing the sensor 206b to be inserted into the channel 227 through the open side).

[0314] The base 204b can include a second channel formed by a second hole 229. A second portion of the sensor 206b can pass through the second hole 229. The push button system can be configured to retract the sensor 206b by pressing the button 222, causing a third portion of the sensor 206b to form a U-shape and / or a serpentine shape, thereby pulling the second portion of the sensor 206b out of the second hole 229 and into an interior region of the sensor system 202b.

[0315] The push button system may be slidably coupled to the base 204b such that the push button system is configured to slide in a first direction 223 that is within ±20 degrees and / or ±45 degrees of perpendicular to a proximal direction oriented away from the distal side of the base 204b. (The proximal direction is opposite to the distal direction 209.)

[0316] The push button system can include a first arm (e.g., a portion including a channel 227) and an intermediate portion 228 that couples the first arm to the push button 222. The push button 222 can protrude away from the base 204b. A first portion of the sensor 206b can pass through the channel 227 of the first arm (e.g., as shown in FIG. 6). The push button system can be configured such that pressing the button moves the first arm to retract the sensor 206b (e.g., as shown in FIG. 7).

[0317] The transmitter 211b can be slidably coupled to the base 204b such that the transmitter 211b is configured to slide in a second direction 230 that is within ±20 degrees and / or ±45 degrees of perpendicular to the proximal direction. The second direction 230 can be within ±20 degrees and / or ±45 degrees of parallel to the first direction 223.

[0318] In some embodiments, the first adhesive 210 coupling the system 202b to the skin can have a tab 231 configured to assist a person in removing the first adhesive 210 from the skin. This adhesive removal tab 231 can be at least partially covered by a push tab 222 to encourage a user to press the push tab 222 into the outer housing before using the adhesive removal tab 231 to remove the first adhesive 210 from the skin.

[0319] Trigger-Sliding Arm Some embodiments automatically retract the sensor into an internal region of the system. For example, when the system is separated from the skin, the sensor automatically retracts. Automatic retraction is advantageous because it does not depend on a person remembering to perform an additional step. For example, the system can retract the sensor in response to a person separating at least a portion of the system from the skin.

[0320] Embodiments may include a trigger that, when activated, may cause the sensor to retract (e.g., within an internal cavity of the system).

[0321] The trigger may be spring loaded such that separating the base from the skin moves and / or removes the pin, releasing a compressed and / or extended spring (e.g., a stretched spring). The spring may be in a high-energy state such that the system is configured to release the spring force in response to moving the pin. The spring may be any type of spring described herein and / or incorporated by reference. The spring may be a leaf spring, a flex arm (e.g., a single-piece flex arm), a conical spring, and / or any suitable type of spring and / or a combination of multiple springs.

[0322] When the spring is released, the spring force can retract the sensor into an interior region of the system. The movement caused by releasing the spring can cause a pushing and / or pulling action to retract the sensor.

[0323] The system can have a first adhesive for coupling the base to the skin. The system can also have a second adhesive for coupling the release pin to the skin. As a result, upon separation of the base from the skin, the release pin can be pulled out of the base and / or at least partially pulled away from the base (as the release pin continues to adhere to the skin). In some embodiments, the first and second adhesives can be on the same body.

[0324] In some embodiments, the pin may be configured to remain coupled to the base even after the base is separated from the skin. For example, the pin may be configured to nest a limited distance and be retained by an undercut feature. Thus, the post may remain attached to the base while moving to a position that releases the spring.

[0325] FIG. 8 shows a perspective view of one embodiment having a spring-loaded arm 233 configured to retract sensor 206c upon release of arm 233. A release mechanism (e.g., pin 235) can be used to hold arm 233 in a starting position before arm 233 retracts sensor 206c. FIG. 9 shows a cross-sectional view from the perspective view shown in FIG. 8. In FIG. 9, arm 233 is in a high-energy state (due to the energy stored in spring 234). Moving pin 235 releases spring 234, driving arm 233 to retract sensor 206c (as shown in FIG. 10).

[0326] 8-10, some embodiments include a spring-loaded arm 233 slidably coupled to the base 204c such that removing the sensor system 202c from the skin causes the sensor 206c to automatically retract in response to the arm 233 sliding relative to the base 204c.

[0327] Base 204c can be configured to face the skin in a first direction 209 (e.g., a distal direction). Arm 233 can be configured to slide in a second direction 237 that is within ±20 degrees and / or ±45 degrees of perpendicular to first direction 209. At least a portion of sensor 206c can pass through portion 238 of arm 233, such that by moving arm 233 in second direction 237, portion 238 of arm 233 stores sensor 206c in an interior region 239 (e.g., a cavity) of sensor system 202c.

[0328] Some embodiments include a spring 234 and a release pin 235. The spring 234 may be in at least one of a compressed state and an extended state (e.g., a stretched state) such that removing the release pin 235 causes the spring 234 to move at least a first portion of the sensor 206c into the base 204c.

[0329] Some embodiments include an arm 233 slidably coupled to the base 204c. The arm 233 can include a first channel 238 (e.g., formed by a hole, slot, and / or hook). The first channel 238 can align with a second channel 242 (e.g., a second hole) in the base 204c such that a second portion of the sensor 206c passes through the first channel 238 and the second hole. The spring 234 can be in at least one of a compressed state and an elongated state (e.g., stretched state) between the first wall of the base 204c and the second wall of the arm 233. The release pin 235 can pass through a third channel 243 (e.g., a third hole) in the base 204c and interfere with a portion of the arm 233 to prevent the spring 234 from moving the arm 233 and retracting the sensor 206c.

[0330] The release pin 235 can include a distal face having a second adhesive 240 configured to be applied to the skin such that removing the base 204c from the skin separates the first adhesive from the skin, but does not separate the second adhesive 240 from the skin, thereby removing the release pin 235 from the third hole, which causes the spring 234 to move the arm 233 to retract the sensor 206c. In some embodiments, the pin 235 moves relative to the base 204c but remains coupled to the base 204c after the pin 235 releases the arm 233 to retract the sensor 206c into the system 202c.

[0331] The spring 234 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0332] The transmitter 211c may be removably coupled to and / or incorporated into the base 204c. The base 204c may include a battery 430 configured to power the sensor 206c and / or the transmitter 211c.

[0333] Trigger-External Arm Some embodiments include a spring-loaded arm configured to flex and deflect a distal portion of the sensor, which can prevent the sensor from piercing a person's skin.

[0334] The arm can slide approximately perpendicular to the distal direction (rather than approximately parallel to the distal direction as used in some embodiments). The sliding arm can be disposed at least partially outside the housing of the system.

[0335] Upon actuation of the trigger, the system can bend and deflect the distal portion of the sensor so that the distal portion can no longer pierce the skin. The distal portion of the sensor can be held between a sliding arm (actuated by a trigger mechanism) and a base. An adhesive can secure the trigger in a starting position, such that separating the adhesive from the skin activates the trigger to bend the distal portion of the sensor.

[0336] FIG. 11 shows a perspective view of an embodiment having a spring-loaded arm 248 configured to bend a portion of the sensor 206d relative to the distal side 207d of the base 204d to prevent the sensor 206d from inadvertently puncturing a person after the sensor 206d is removed from the host's tissue. FIG. 12 shows a cross-sectional perspective view of the embodiment shown in FIG. 11. In FIG. 12, the arm 248 has not yet bent the sensor 206d. For example, the sensor configuration shown in FIG. 12 may be when the sensor 206d is at least partially disposed within the host's tissue. FIG. 13 shows a cross-sectional perspective view of the embodiment shown in FIG. 11, except that the arm 248 has moved relative to the base 204d to bend the sensor 206d. In FIG. 13, the transmitter 211d has been separated from the base 204d.

[0337] 11-13, some embodiments include a spring-loaded arm 248 slidably coupled to the base 204d and configured such that upon removal of the sensor system 202d from the skin, the arm 248 impacts a first portion of the sensor 206d, bending the sensor 206d so that a second portion of the sensor 206d is positioned between the arm 248 and the base 204d (e.g., as shown in FIG. 13).

[0338] The base 204d can be configured to face the skin in a first direction 209 (e.g., a distal direction). The sensor system 202d can include a spring 234d oriented within ±20 degrees and / or ±45 degrees of perpendicular to the first direction 209. The spring 234d can be disposed within an interior region of the sensor system 202d and configured to urge the arm 248 against a first portion of the sensor 206d.

[0339] Spring 234d may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0340] The base 204d can be configured to face the skin in a first direction 209. The arm 248 can be configured to slide in a second direction 249 that is within ±20 degrees of perpendicular to the first direction 209, such that the second portion of the sensor 206d is oriented within ±20 degrees of perpendicular to the first direction 209.

[0341] The sensor 206d can pass through a channel 251 (e.g., a hole) in the base 204d. A first portion of the sensor 206d can be disposed distal to the hole in the base 204d. The arm 248 can be spring-loaded toward the first portion of the sensor 206d. The arm 248 can include a protrusion 252 that protrudes toward the first portion of the sensor 206d, such that the arm 248 is slid to impact the protrusion 252 with the first portion of the sensor 206d, positioning the protrusion 252 directly distal to the channel 251 (e.g., a hole) in the base 204d.

[0342] The protruding portion of arm 248 can include a second adhesive 253 configured to couple arm 248 to the skin, such that second adhesive 253 holds arm 248 in a first position in which arm 248 does not bend sensor 246. Separating second adhesive 253 from the skin can cause arm 248 to bend sensor 206d, such that a second portion of sensor 206d is positioned between arm 248 and base 204d.

[0343] Rotating arm Some embodiments include an arm rotatably coupled to the base, which can prevent the sensor (and / or needle) from posing a risk of perforating the skin.

[0344] The rotating arm may be configured to retract and / or cover the distal portion of the sensor to protect it from inadvertently piercing a person. The rotating arm may be manually or automatically triggered. In some embodiments, the arm automatically rotates in response to separating the base from the skin.

[0345] Spring flap Some embodiments include an arm rotatably coupled to the base such that decoupling the system from the skin releases the arm to rotate toward a distal portion of the sensor, which can bend the sensor and / or trap the distal portion of the sensor between the arm and the base to prevent the sensor from unintentionally piercing the skin.

[0346] The arm may be driven (e.g., pushed directly or indirectly, pulled directly or indirectly) by a spring configured to rotate the arm toward the distal portion of the sensor. The spring may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0347] The system can have a first state in which the skin interferes with the rotation of the arm. Once the system is separated from the skin, the arm is free to rotate and flex the sensor. For example, once the skin and / or locking mechanism no longer constrain the spring, the spring force can rotate the arm.

[0348] Figure 14 shows a perspective view of system 202e having arm 260 rotatably coupled to base 204e by hinge 261. Figure 15 shows a side cross-sectional view of system 202e shown in Figure 14. To facilitate a clear view of rotating arm 260, transmitter 211e is hidden in Figures 14 and 15. An optionally removable transmitter 211e is shown in Figure 16. Figure 16 illustrates a perspective view of system 202e.

[0349] 14-16, arm 260 may be spring loaded such that arm 260 is configured to rotate about hinge 261 in the direction indicated by arrow 265. FIG. 15 shows portion 264 of sensor 206e. Portion 264 is disposed distally relative to distal side 207e. At least one section of portion 264 may bend and / or deflect with rotation of arm 260 such that the section is disposed between arm 260 and distal side 207e (e.g., as shown in FIG. 16).

[0350] The arm 260 can have a start position where the arm 260 is positioned within a recess in the base 204e (e.g., as shown in FIGS. 14 and 15). The arm 260 can have an end position where the arm 260 protects the sensor 206e from penetrating the skin (e.g., as shown in FIG. 16).

[0351] The hinge 261 can be configured to separate the base 204e from the skin, thereby rotating the hinge 261 so that the arm 260 bends at least a first portion of the sensor 206e and covers at least a second portion of the sensor 206e.

[0352] The system 202e can include a torsion spring 262 coupled to the arm 260 such that the torsion spring 262 biases the arm 260 in a rotational direction 265 toward the second portion of the sensor 206e.

[0353] The hinge 261 can be disposed within an interior region of the sensor system 202e (as shown in FIGS. 14 and 15). The arm 260 can include a portion configured to cover a second portion of the sensor 206e. The sensor system 202e can include a first state in which a portion of the arm 260 is disposed within the interior region (as shown in FIGS. 14 and 15). The transmitter 211e is hidden in FIGS. 14 and 15, but a portion of the arm 260 is disposed within the interior region of FIGS. 14 and 15. The sensor system 202e can include a second state in which a portion of the arm 260 is disposed distally relative to the base 204e (as shown in FIG. 16).

[0354] Pivoting System In some embodiments, a hinge is used to retract the sensor and protect it from perforating the skin. Movement of the hinge can pull the sensor out of the host's tissue and into the area between the first part of the system and the second part of the system.

[0355] The system can include a lift tab configured to allow a user to easily move a proximal portion of the system to rotate the hinge, which can pivot the proximal portion relative to a distal portion of the system to retract the sensor.

[0356] Figure 17 shows a perspective view of system 202f including hinge 270 configured to store sensor 206f. Figure 18 shows a side cross-sectional view of system 202f before sensor storage. Figure 19 shows a side cross-sectional view of system 202f after sensor storage.

[0357] 17-19, some systems 202f include a first portion 272 coupled to a second portion 273 by a hinge 270. The first portion 272 can be pivoted relative to the second portion 273 to retract the sensor 206f and prevent the sensor 206f from perforating another person's skin. The second portion 273 can be coupled to the first portion 272 by the hinge 270 configured to increase the pivot angle 271 between the first portion 272 and the second portion 273 to retract the sensor 206f.

[0358] The sensor system 202f can include a base 204f, a transmitter 211f, and a distal side 207f. The spring 275 (e.g., a helical spring, a compression spring, an extension spring, a leaf spring, a torsion spring) can be configured to increase the pivot angle 271 (e.g., once released by a trigger mechanism and / or any suitable mechanism).

[0359] Spring 275 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0360] The hinge 270 can include a pin 276 rotatably coupled to a sleeve 277 configured to retain the pin 276 as the second portion 273 rotates relative to the first portion 272. As used herein, the term "sleeve" is used broadly and can refer to a tubular piece, hollow shaft, and / or bushing designed to fit over another portion to retain the other portion during pivoting. A sleeve can be an open-ended flat or tubular wrapping or covering. Some sleeves are cylindrical or not a perfect cylinder (e.g., the sleeve can have a slot).

[0361] The base 204f can include a first portion 272 and a second portion 273. The first portion 272 can bond the first adhesive 210 to the second portion 273.

[0362] The base 204f can include a first portion 272. The second portion 273 can include a transmitter 211f.

[0363] A distal portion of sensor 206f can pass through a channel 278 (e.g., a hole) in base 204f. A proximal portion of sensor 206f can be coupled to second portion 273, such that an increase in pivot angle 271 retracts the distal portion of sensor 206f through channel 278 in base 204f and into the region between first portion 272 and second portion 273 of sensor system 202f.

[0364] The base 204f can comprise a left half 279 and a right half 280. The left half 279 can comprise the channel 278 of the base 204f. The right half 280 can comprise at least a portion of the hinge 270.

[0365] The second portion 273 can include a lift tab 281 configured to allow a user to grip a distally facing surface 282 to rotate the second portion 273 relative to the first portion 272. The lift tab 281 can include a protrusion that protrudes away from the hinge 270. The lift tab can be coupled to a flex arm that releasably couples the first and second portions. Applying force to the lift tab can actuate the separation.

[0366] Hinged Base Plate In some embodiments, the system includes a hinged base configured to fold over the sensor to prevent the sensor from piercing another person. A user can fold one side of the base over the sensor. A spring can move one side of the base over the sensor.

[0367] 20 shows a perspective view of a base 204g comprising a first portion 294 and a second portion 295. The first portion 294 of the base 204g is configured to rotate relative to the second portion of the base 204g to shield a distal portion of the sensor 206g and prevent the sensor 206g from penetrating a person. The first portion 294 can rotate about a hinge 297 in the direction indicated by arrow 291 in FIG. 20.

[0368] Figure 21 shows a perspective view of base 204g after first portion 294 has been rotated approximately 90 degrees relative to second portion 295. First portion 294 can continue to rotate in the direction indicated by arrow 292 to reach the state shown in Figures 22a and 22b.

[0369] Figure 22a shows a top view of system 202g. Figure 22b shows a side view of system 202g. In Figures 22a and 22b, sensor 206g is protected from puncturing the skin by first portion 294 of base 204g.

[0370] 20-22b, base 204g can include a first portion 294 and a second portion 295. Second portion 295 of base 204g can be coupled to first portion 294 of base 204g by a hinge 297 configured to position a portion of sensor 206g between first portion 294 and second portion 294 of base 204g by reducing a pivot angle between first portion 294 and second portion 295 of base 204g. Transmitter 211g can be coupled to base 204g.

[0371] The hinge 297 can include a first pin rotatably coupled to a first hole configured to retain the first pin when the first portion 294 of the base 204g rotates relative to the second portion 295 of the base 204g.

[0372] The hinge 297 can include a second pin rotatably coupled to a second hole configured to retain the second pin when the first portion 294 of the base 204g rotates relative to the second portion 295 of the base 204g. The first pin can protrude in a first direction. The second pin can protrude in a second direction opposite the first direction.

[0373] The first adhesive can include a first section 290b and a second section 290a coupled to the distal side 207g of the base 204g. The first section 290b can be coupled to a first portion 294 of the base 204g, such that the first section 290b is configured to adhere the first portion 294 of the base 204g to the skin. The second section 290a can be coupled to a second portion 295 of the base 204g, such that the second section 290a is configured to adhere the second portion 295 of the base 204g to the skin. The hinge 297 can be configured to allow the first section 290b of the first adhesive to face the second section 290a of the first adhesive, while a portion of the sensor 206g is at least partially trapped between the first portion 294 and the second portion 295 of the base 204g.

[0374] The system 202g can be configured to flex a portion of the sensor 206g in response to rotation of the hinge 297. The portion of the sensor 206g can flex between the first portion 294 and the second portion 295 of the base 204g to prevent the distal tip of the sensor 206g from penetrating tissue after the sensor system 202g is removed from the skin.

[0375] The first portion 294 of the base 204g may be rotationally spring loaded relative to the second portion 295 of the base 204g such that the system 202g is configured to reduce the pivot angle in response to the rotational spring bias.

[0376] The system 202g can include a torsion spring 298 coupled to the hinge 297 such that the torsion spring 298 is configured to reduce the pivot angle to position the portion of the sensor 206g between the first portion 294 and the second portion 295 of the base 204g.

[0377] Spring 298 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0378] Folding the patch over the sensor One way to prevent the sensor from being unsafe is to fold a portion of the adhesive over the sensor. For example, the adhesive can have a larger area than is typically used to bond the base to the skin. A portion of the larger area can be folded over the sensor.

[0379] In some embodiments, the system can include a deformable, flexible sheet configured to fold over the sensor after the sensor is removed from the tissue. The sheet can be compactly folded before being used to shield the sensor. Unfolding the sheet over the sensor can include unfolding the sheet.

[0380] The sheet can include a puncture-resistant material, such as foil, so that the sheet can be very easy to fold, while the puncture-resistant material can be optimized to prevent the distal tip of the sensor from puncturing the puncture-resistant material.

[0381] In some embodiments, the sheet is puncture-resistant to prevent the sensor from puncturing the sheet during normal operating conditions, and as a result, no additional puncture-resistant material is required.

[0382] Figure 23 shows a perspective view of sensor system 202h including flexible sheet 300 configured to cover the distal tip of sensor 206h. Figure 24 shows another perspective view of system 202h when flexible sheet 300 is folded in a storage position. Figure 25 shows a perspective view of flexible sheet 300 when it is unfolded. Flexible sheet 300 continues to move toward the distal tip of sensor 206h until it reaches the state shown in the side view shown in Figure 26. Flexible sheet 300 can then continue to move toward the distal tip of sensor 206h until it covers the distal tip of sensor 206h (as shown in the perspective view shown in Figure 27).

[0383] 23-27, system 202h can include an adhesive portion of sheet 300 configured to cause at least a portion of sensor 206h to bend toward base 204h. A distal tip of sensor 206h can be disposed between base 204h and the adhesive portion. Transmitter 211h can be coupled to base 204h.

[0384] The system 202h can include a flexible sheet 300 that covers the distal tip of the sensor 206h and adheres to the first adhesive 210h, such that the flexible sheet 300 prevents the distal tip of the sensor 206h from penetrating tissue after the sensor system 202h is removed from the skin. The flexible sheet 300 can be coupled to the distal side 207h of the base 204h (e.g., as shown in FIG. 27).

[0385] First adhesive 210h can bond flexible sheet 300 to base 204h. Flexible sheet 300 can include a first state in which flexible sheet 300 is folded and positioned proximally relative to the distal tip, does not cover the distal tip, and forms a tab configured to allow a user to open flexible sheet 300 (e.g., as shown in FIGS. 23 and 24).

[0386] The flexible sheet 300 may include a second state in which the flexible sheet 300 is at least partially unfolded relative to the first state and positioned at least partially distal to the distal tip, and the distal tip of the sensor 206h is at least partially trapped between the flexible sheet 300 and the first adhesive 210h (e.g., as shown in FIG. 27).

[0387] System 202h can include second sheet 301 having a second puncture resistance greater than the first puncture resistance of flexible sheet 300. Second sheet 301 is disposed between the distal tip and flexible sheet 300 to protect flexible sheet 300 from being punctured by the distal tip. Second sheet 301 can be bonded to flexible sheet 300 such that when flexible sheet 300 is folded over the distal tip, second sheet 301 deforms the distal tip.

[0388] The distal tip of the sensor 206h can be at least partially trapped between the flexible sheet 300 and the base 204h, such that the flexible sheet 300 holds at least a portion of the sensor 206h in a bent position, and the flexible sheet 300 is adhered to the first adhesive 210h.

[0389] The flexible sheet 300 can have a first state and a second state. In the first state, the flexible sheet 300 can be positioned proximal to the first adhesive 210h when the sensor system 202h is coupled to the skin. In the second state, the flexible sheet 300 can be positioned distal to the first adhesive 210h when the distal tip of the sensor 206h is at least partially trapped between the flexible sheet 300 and the base 204h. As used herein, the term "flexible" means capable of at least one of bending and folding. The sheet can also be easily deformed.

[0390] Protective slot to hold the sensor The distal side of the base can include a slot configured to retain the distal end of the sensor after the sensor is removed from the tissue. The distal end of the sensor can be manually pressed into the slot.

[0391] The sensor can be permanently deformed to retain the distal end of the sensor within the slot. Once the distal end of the sensor is positioned within the slot, the sensor is prevented from piercing another person. In some embodiments, the sensor is elastically deformed to at least partially enter the slot.

[0392] 24, the distal side 207h of the base 204h can include a slot 302 configured to receive the distal end of the sensor 206h after the sensor 206h is removed from the host. A first portion of the sensor 206h can bend and / or deflect such that the distal end of the sensor 206h is disposed within the slot 302. Once the sensor 206h is bent, the distal end of the sensor 206h can be disposed proximal to the first adhesive 210h.

[0393] Base 204h (labeled in FIG. 23) can include a channel 303 (e.g., a hole). A second portion of sensor 206h can pass through channel 303. Slot 302 can be directly coupled to channel 303 (e.g., such that channel 303 and slot 302 are in fluid communication). Slot 302 can be oriented within ±20 degrees of perpendicular to the central axis of channel 303.

[0394] Spin storage There are many ways to store the sensor to prevent it from piercing the skin. In some embodiments, a portion of the system can rotate (relative to the base) to store (e.g., "roll") the sensor within an internal cavity of the system.

[0395] The rotating portion can include a transmitter. The rotating portion can be a spin dial that can be positioned radially inward or outward relative to a portion of the base that couples the rotating portion to the first adhesive. The rotating portion can include a traction feature (e.g., a divot, a protrusion, a roughened surface finish) to allow a user to grip the rotating portion.

[0396] Figure 28 shows a top view of system 202i configured to "roll up" sensor 206i. Figure 29 illustrates a perspective view of system 206i. In Figure 29, the sensor is deployed (e.g., extending distally from distal side 207i and positioned within the host's tissue). Figure 30 shows a perspective view of system 206i after sensor 206i has been retracted into the housing.

[0397] 28-30, the sensor system 202i can include a first portion 310 and a second portion 311. The first portion 310 can couple a first adhesive 210i to the second portion 311. The second portion 311 can be rotatably coupled to the first portion 310 about an axis of rotation that is ±20 degrees parallel to the proximal direction, such that the sensor system 202i is configured to retract the sensor 206i in response to rotating the second portion 311 relative to the first portion 310. The base 204i can include the first portion 310. The second portion 311 can include a transmitter 211i. The sensor 206i can exit a distal side 207i of the base 204i.

[0398] The system 202i can include an interior region 312 between the first portion 310 and the second portion 311. The interior region 312 can be configured to move the interior region 312 relative to at least one of the first portion 310 and the second portion 311 by spinning the second portion 311 relative to the first portion 310. The interior region 312 can be configured such that by spinning the second portion 311 relative to the first portion 310, at least a portion of the sensor 206i is stored in the interior region 312 through a channel 313 (e.g., a hole) in the base 204i.

[0399] The base 204i can include a distally facing hole 313. The sensor 206i can include a proximal portion coupled to the second portion 311 and a distal portion that passes through the hole 313 in the base 204i (e.g., as shown in FIG. 29).

[0400] System 202i can include a proximally facing recess 314 configured to provide a pulling force to a user to rotate second portion 311 relative to first portion 310. System 202i can include a proximal protrusion 315 configured to provide a pulling force to a user to rotate second portion 311 relative to first portion 310.

[0401] Sensor cover One way to prevent the sensor from inadvertently perforating tissue is to cover the sensor (e.g., before or after use). The system can include a cover coupled to a base such that the distal tip of the sensor is disposed between the cover and the distal side of the base. The sensor cover can have many different shapes. The cover can be coupled to the base such that the distal tip of the sensor is disposed within an interior region of the cover.

[0402] A cover (e.g., a shroud) can be coupled to the distal side of the base. Once the sensor is removed from the tissue, the cover can be manually opened over the sensor. In some embodiments, the relaxed state of the cover is an open state such that the cover automatically opens when the tissue (or part of the system) no longer prevents the cover from opening. The cover can be a shroud configured to cover a portion of the sensor.

[0403] 31 and 32 show side views of a system 202j including an extensible sensor cover 318. The system 202j can include a transmitter 211j and a base 204j. The base 204j can include a distal side 207j having an adhesive 210 configured to couple the base 204j to the skin of a host.

[0404] The extensible cover 318 has a contracted state (e.g., a retracted state shown in FIG. 31 ) configured to allow the distal end of the sensor 206j to enter the host. The extensible cover 318 has an extended state (e.g., as shown in FIG. 32 ) configured to cover 318 the distal end of the sensor 206j after the sensor 206j is removed from the host.

[0405] As used herein, the term "retracted" is used broadly and can mean moved, pulled, and / or retracted. The cover can also be retracted (e.g., made smaller or shorter).

[0406] The cover 318 may be a flexible sheath having a channel 319 in which a portion of the sensor 206j is disposed. The cover 318 may be rolled up along the channel 319.

[0407] In some embodiments, the extended state is a relaxed state such that the cover 318 is configured to open from the stored state in response to the sensor system 202j being removed from the host.

[0408] The stowed state may have a higher stored mechanical energy than the extended state such that the cover 318 is configured to open from the stowed state in response to the sensor system 202j being removed from the host.

[0409] In some embodiments, the bellows is configured to expand from a contracted state to cover the distal end of the sensor, and can help protect the distal end of the sensor from perforating the skin.

[0410] 33 and 34 show another type of sensor cover 318k that can be part of system 202k, including base 204k, transmitter 211k, sensor 206k, adhesive 210, and distal side 207k. Cover 318k can include bellows (e.g., pleated expandable portion 322) configured to at least partially expand to allow cover 318k to move from a contracted state to an extended state. Pleated expandable portion 322 can be configured to collapse to expose the distal end of sensor 206k. Expandable portion 322 can include a pleated foldable portion.

[0411] 33 and 34 show perspective views of system 202k. In FIG. 33, cover 318k is in an extended state to cover sensor 206k. In FIG. 34, cover 318k is in a retracted state (e.g., when base 204k is coupled to the host's skin). In cover 318k's retracted state, the distal end of sensor 206k is disposed distal to the distal end of cover 318k.

[0412] The pleated expandable portion 322 can include a channel 319k through which a first portion of the sensor 206k is disposed, and the cover 318k can include a distal hole 323 through which a second portion of the sensor 206k passes in the retracted state.

[0413] The stored state can have a higher stored mechanical energy than the extended state, such that the pleated expandable portion 322 is configured to expand from the stored state in response to the sensor system 202k being removed from the host. The formed channel 319k can constrain the sensor 206k within the coaxial column.

[0414] A cap, such as a tube or silicone stopper, can be placed over the distal end of the sensor and coupled to the base. The cap can protect the sensor from piercing the skin.

[0415] The cap can be shaped like a thimble that covers a small area immediately surrounding the portion of the sensor that is configured to be placed in tissue. In some embodiments, the cap is much larger and can be attached to the periphery of the base. In some cases, a larger cap is easier for people to handle.

[0416] 35 shows a perspective view of the system 202m. The system 202m can include a cap 325 that covers the distal end of the sensor 206m such that the cap 325 is configured to prevent the distal end from penetrating a person after the sensor system 202m is removed from the host and the cap 325 is coupled to the distal side 207m of the base 204m. The transmitter 211m can be coupled to the base 204m.

[0417] Figure 36 shows a side cross-sectional view of the system 202m shown in Figure 35. Figure 37 shows a side view of the system 202m, with the cap 325 removed in Figure 37.

[0418] 35-37, the cap 325 can include a channel 319m and / or a cavity having a first central axis. The base 204m can include a hole 327 having a second central axis. A portion of the sensor 206m can enter the channel 319m through the hole 327. The first central axis can be within 20 degrees of being parallel to the second central axis. The first central axis of the channel 319m can pass through the hole 327 of the base 204m (e.g., when the first central axis extends beyond the proximal end of the channel 319m).

[0419] 35 and 36 show a relatively small cap 325. FIG. 37 shows a much larger cap 37. Referring now to FIG. 37, the system 202m can include a cap 326 coupled to the base 204m. The cap 326 can cover at least a majority of the first adhesive 210. The cap 326 can cover a distal end of the sensor 206m such that after the sensor system 202m is removed from the host and the cap 326 is coupled to the base 204m, the cap 326 is configured to prevent the distal end from penetrating a person.

[0420] The cap 326 can include a sidewall 328 that projects proximally past at least a portion of the periphery of the sensor system 202m (and / or past at least a portion of the periphery of the base 204m). The cap 326 can be empty or filled with an easily puncturable (e.g., penetrable) material (e.g., foam). The material can help hold the cap 326 in place by friction.

[0421] Sensor cover-unlocking device The transmitter may be coupled to the base. A tool may be configured to facilitate separation of the transmitter from the base. The tool may also cover the distal end of the sensor to prevent the sensor from inadvertently perforating a person. Thus, the tool may serve two purposes: separation of the transmitter and covering a "used" sensor.

[0422] The tool may be part of the packaging for the insertion device and / or the replacement sensor. In some embodiments, the tool is packaged with the replacement sensor.

[0423] Users often want to reuse their transmitters. Tools that allow users to detach their transmitters for reuse with another base also cover the sensors. Thus, the system requires users to cover their sensors in order to reuse their transmitters. The dual purpose of the tool encourages more consistent use of the tool than if the tool only covered the sensor (but did not unlock the transmitter).

[0424] The flex arm can couple the transmitter to the base. The tool can include a protrusion that fits into a hole in the base to unlatch the flex arm (to separate the transmitter from the base). The sensor can be shielded within an interior region of the tool.

[0425] 38-41 show a tool configured to facilitate separation of the transmitter from the base. The tool can also cover the distal end of the sensor to prevent the sensor from inadvertently puncturing a person.

[0426] Figure 38 shows a perspective view of the sensor system 202n as it is being moved towards a tool, but before it is at least partially inserted into the tool. Figure 39 shows a perspective cross-sectional view of the sensory system 202n being moved towards a tool.

[0427] 40 shows a side cross-sectional view of the sensor system 202n "docked" with a tool to unlatch the transmitter 211n from the base 204n and cover the sensor 206n. Once the transmitter 211n is unlatched from the base 204n, the transmitter 211n can be moved away from the base 204n and out of the tool (e.g., as shown in the perspective view of FIG. 41).

[0428] Once the transmitter 211n is unlatched from the base 204n, a user can apply a force to manually separate the transmitter 211n from the base 204n. In some embodiments, once the transmitter 211n is unlatched from the base 204n, the transmitter 211n automatically separates from the base 204n, moves away from the base 204n, and / or moves relative to the base 204n in response to inserting the sensor system 202n into the tool. The tool may include a spring or biasing member to assist in the automatic separation by biasing the transmitter away from the tool.

[0429] Some embodiments include a sensor cover 330 having an interior region 331 and a protrusion 333. At least a portion of the base 204n can be disposed within the interior region 331 of the sensor cover 330 such that a distal end of the sensor 206n is disposed between the base 204n and the sensor cover 330. The protrusion 333 can be disposed within a channel 334 (e.g., a hole) in the base 204n such that the protrusion 333 unlatches the transmitter 211n from the base 204n.

[0430] The system 202n can include a sensor cover 330 configured to unlock the transmitter 211n from the base 204n in response to coupling the base 204n to the sensor cover 330. Once the transmitter 211n is unlocked from the base 204n, the transmitter 211n can be configured to be separated from the base 204n.

[0431] The system 202n can include a first flex arm 335 and a wall 336. The first flex arm 335 and the wall 336 can form a latch assembly. The first flex arm 335 can include a first state in which the first flex arm 335 interferes with the wall 336 to lock the transmitter 211n to the base 204n.

[0432] The sensor cover 330 can include a protrusion 333 configured such that coupling the base 204n to the sensor cover 330 moves the first flex arm 335 to a second state in which the protrusion 333 does not interfere with the wall 336 such that the first flex arm 335 does not lock the transmitter 211n to the base 204n.

[0433] The base 204n can include a channel 334 (e.g., a hole) on a distal side 207n of the base 204n. At least a portion of the protrusion 333 can pass through the hole to deflect the first flex arm 335 to the second state. The distal side 207n can include an adhesive 210 for bonding the base 204n to the skin of a host.

[0434] The sensor cover 330 may include a housing 338 and a second flex arm 339. The housing 338 may include an interior region 331. At least a portion of the base 204n may be disposed inside the interior region 331 of the housing 338. The second flex arm 339 may couple the protrusion 333 to the housing 338 such that the second flex arm 339 is configured to flex and move the protrusion 333 to facilitate insertion of the portion of the base 204n into the interior region 331 of the housing 338.

[0435] The second flex arm 339 may be configured to move in a distal direction in response to coupling the base 204n to the sensor cover 330. The first flex arm 335 may be configured to move in a proximal direction in response to coupling the base 204n to the sensor cover 330. A portion of the sensor 206n may bend in response to coupling the base 204n to the sensor cover 330 such that a distal end of the sensor 206n is disposed between the base 204n and the sensor cover 330.

[0436] The sensor cover 330 can include a first side 340 and a second side 341 (labeled in FIG. 40). The first side can be oriented within ±30 degrees of perpendicular to the second side. The first side can include a first channel 343 (e.g., a first hole) into which a portion of the base 204n is inserted. The second side can include a second channel 344 (e.g., a second hole) configured to provide access to a proximal surface 342 of the transmitter 211n to facilitate removal of the transmitter 211n from the base 204n. (The first channel 343 and the second channel 344 are labeled in FIG. 41.)

[0437] The system 202n can include a rail 347. The rail 347 can slidably couple the base 204n to the transmitter 211n.

[0438] The system 202n can include a sensor cover 330 configured to unlatch the transmitter 211n from the base 204n in response to coupling the base 204n to the sensor cover 330. The system 202n can include a first flex arm 335 configured to latch the base 204n to the transmitter 211n. The sensor cover 330 can include a second flex arm 339 configured to deflect the first flex arm 335 to unlatch the transmitter 211n from the base 204n.

[0439] The sensor cover 330 can include a distally facing wall 336. At least a portion coupled to the base 204n (e.g., a proximal side of the base 204n) presses against the distally facing wall 336, causing the protrusion 333 of the second flex arm 339 to press against the channel 334 (e.g., hole) in the base 204n, deflecting the first flex arm 335.

[0440] Nested Assemblies 42-47 show system 202p including spring 350 configured to retract the distal end of sensor 206p into base 204p (e.g., after sensor 206p has been deployed). Once sensor 206p is retracted, sensor 206p cannot pierce another person's skin.

[0441] Spring 350 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0442] The system 202p can include an assembly 351 configured to move distally to insert the sensor 206p and move proximally to retract the sensor 206p. The assembly 351 can be locked in a distal position configured to retain the sensor 206p within the host's tissue 352 (e.g., as shown in FIG. 46 ). The assembly 351 can be unlocked to allow the spring 350 to move the sensor 206p proximally into the interior region 353 of the base 204p. In some embodiments, rotating the assembly 351 relative to the base 204p unlocks and moves the assembly 351 proximally. The assembly 351 can be a telescoping assembly.

[0443] FIG. 42 illustrates a perspective view of system 202p. FIG. 43 shows a plan view of system 202p. FIG. 44 shows a perspective cross-sectional view taken along line 44-44 of FIG. 43. In FIG. 44, assembly 351 is positioned in a proximal position. FIG. 45 shows the same perspective cross-sectional view as FIG. 44, except that assembly 351 is positioned in a distal position with sensor 206p deployed. FIG. 46 shows a side cross-sectional view taken along line 46-46 of FIG. 43. In FIG. 46, assembly 351 is positioned in a distal position. FIG. 47 shows a perspective view of the cross-section shown in FIG. 46. In FIG. 47, many components have been hidden so that certain features can be clearly viewed.

[0444] 42-47, the transmitter 211p may be incorporated into the base 204p. The transmitter 211p may include a battery (e.g., such that the battery is incorporated into the base 204p). The transmitter 211p may include a communication system configured to communicate with a remote computing device.

[0445] The transmitter 211p may be removable from the base 204p or may be permanently coupled to the base 204p. The base 204p may include a distal side 207p. An adhesive 210p may couple the distal side 207p to the skin 352 of the host.

[0446] The spring 350 can store the sensor 206p through a channel 354 (e.g., a hole) in the base 204p in a direction 355 within ±30 degrees of the proximal direction 208 and / or within ±30 degrees of the central axis of the distal end of the sensor 206p.

[0447] The system 202p can include a locking mechanism configured to secure the spring 350 and the sensor 206p in a distal position (e.g., where the sensor 206p is configured to be placed in tissue). Pressing the locking mechanism distally (relative to the base 204p) can move the sensor 206p distally, insert the sensor 206p into tissue, and secure the locking mechanism in the distal state.

[0448] Pressing the locking mechanism distally a second time, moving the removable pull tab, manually actuating the radially deflecting arm, and / or rotating the locking mechanism (relative to base 204p) can release the locking mechanism and allow spring 350 to move proximally, retracting sensor 206p proximally out of the tissue and into protective cavity 353 of system 202p.

[0449] System 202p can include a nested assembly 351 coupled to base 204p. At least a first portion of sensor 206p can be disposed between a portion of nested assembly 351 and a distal side 207p of base 204p, such that nested assembly 351 is configured to move from a distal position to a proximal position to store a second portion of sensor 206p in protective cavity 353 of system 202p.

[0450] Base 204p can include an internal channel 357 having a proximally facing opening. Nested assembly 351 can be at least partially disposed in internal channel 357 such that nested assembly 351 is configured to move proximally at least partially within internal channel 357 from a distal position to a proximal position.

[0451] When the nested assembly 351 is in a distal position, a first portion of the sensor 206p can be disposed within the internal channel 357 of the base 204p and a second portion of the sensor 206p can be disposed distal to the base 204p. When the nested assembly 351 is in a proximal position, the first and second portions of the sensor 206p can be disposed within the internal channel 357 of the base 204p.

[0452] The nestable assembly 351 can include a first section 358 and a second section 359. The first section 358 can be slidably coupled to the second section 359. The second section 359 can be slidably coupled to an interior channel 357 of the base 204p such that the nestable assembly 351 is configured to nest relative to the base 204p to store the sensor 206p.

[0453] Internal channel 357 can include a first overhang 360 (which can be oriented radially inward, radially outward, and / or in any suitable direction). First overhang 360 can be configured to interfere with a second overhang 361 (which can be oriented radially outward, radially inward, and / or in any suitable direction) of second section 359 to retain at least a portion of second section 359 within internal channel 357. First overhang 360 and second overhang 361 can form an interlock configured to couple assembly 351 to base 204p. (First overhang 360 and second overhang 361 are labeled in FIG. 44 .)

[0454] The second section 359 can include a third overhang 363 (which can be oriented radially inward). The third overhang 363 can be configured to interfere with a fourth overhang 364 (which can be oriented radially outward) of the first section 358 to limit the distance the first section 358 can move proximally relative to the second section 359. (The third overhang 363 and the fourth overhang 364 are labeled in FIG. 44.) The third overhang 363 and the fourth overhang 364 can form an interlock configured to couple the first section 358 to the second section 359.

[0455] System 202p can include spring 350 and a locking mechanism. The locking mechanism can be configured to lock nested assembly 351 in a distal position. The locking mechanism can include a first overhang 368 (labeled in FIG. 44 ) on base 204p and a second overhang 369 on first section 358. The first and second overhangs can be configured such that, in a first angular position of first section 358 relative to base 204p, first overhang 368 interferes with second overhang 369 to limit proximal movement of first section 358 relative to base 204p. In some embodiments, in the second angular position of the first section 358 relative to the base 204p, the first overhang 368 does not restrict the proximal movement of the first section 358 relative to the base 204p, causing the spring 350 to push the nested assembly 351 to a proximal position. Rotating the first section 358 relative to the base 204p can position the first overhang 368 within an open area 370 (labeled in FIG. 47 ) of the first section 358, which can allow the first section 358 to move proximally relative to the base 204p.

[0456] The base 204p can include a first overhang 360 configured to limit a first proximal movement of the second section 359 relative to the base 204p. The base 204p can include a second overhang 368 configured to prevent proximal movement of the first section 358 such that the nestable assembly 351 is retained in a distal position.

[0457] Base 204p can include a first channel 372. Second section 359 can include a radially outward protrusion 373 disposed within first channel 372 such that first channel 372 limits a first angular movement of second section 359 relative to base 204p, while second section 359 allows a second angular movement of first section 358 relative to second section 359 and relative to base 204p.

[0458] The sensor 206p can include a deformable connection 375 that communicatively couples (and / or electrically couples) the subcutaneous portion of the sensor 206p to the connection portion of the sensor 206p. (The deformable connection 375 is labeled in FIG. 47.) The connection portion of the sensor 206p can be disposed inside the base 204p, and the subcutaneous portion of the sensor 206p can be communicatively coupled to a communication module of the sensor system 202p.

[0459] In the proximal position, the subcutaneous portion of the sensor 206p can be located within a central region of the coil (e.g., deformable connection) of the sensor 206p. In many embodiments, the deformable connection 375 is configured such that the subcutaneous portion of the sensor 206p is not located within the central region of the deformable connection.

[0460] In some embodiments, the deformable connection 375 of the sensor 206p does not apply a biasing force. In some embodiments, the coil of the sensor 206p can apply a biasing force to urge the nestable assembly 351 into a proximal position. In many embodiments, the spring 350 applies the biasing force.

[0461] The system 202p can include a housing (e.g., assembly 351) slidably coupled to the base 204p. The housing can move proximally relative to the base 204p to house the sensor 206p.

[0462] At least a first portion of the sensor 206p can be disposed between a portion of the housing and the distal side 207p of the base 204p, such that the housing is configured to move from a distal position to a proximal position to store a second portion of the sensor 206p.

[0463] Base 204p can include an internal channel 357 having a proximally facing opening. A housing can be at least partially disposed within internal channel 357 such that the housing is configured to move proximally from a distal position to a proximal position, at least partially within internal channel 357, to store a second portion of sensor 206p therein.

[0464] Top Cap 48-50 show system 202q including top cap 381. Top cap 381 can include a radially outward overhang that allows a user to "grasp" top cap 381 and pull top cap 381 proximally (e.g., as indicated by proximal arrow 208). By moving top cap 381 proximally relative to base 204q, sensor 206q can be retracted into the area between top cap 381 and base 204q. Once sensor 206q is retracted, system 202q prevents sensor 206q from puncturing an object.

[0465] Figure 48 illustrates a perspective view of system 202q. Figure 49 shows a side cross-sectional view of system 202q in a compressed (e.g., collapsed) state. By moving top cap 381 proximally relative to base 204q, sensor 206q can be stored in an expandable housing (e.g., bellows), as shown in Figure 50, a side cross-sectional view of system 202q in an expanded state.

[0466] 48-50, a proximal portion of sensor 206q may be coupled to cap 381 such that pulling cap 381 away from base 204q retracts a distal portion of sensor 206q into the area between base 204q and cap 381 (e.g., as shown in FIG. 50). Once the distal portion is positioned within cavity 382 of system 202q, sensor 206q cannot pierce another person's skin. A bellows may couple proximal cap 381 to base 204q.

[0467] The cap 381 may be a proximal portion of the base 204q. The base 204q may also include a distal portion that couples the proximal portion of the base 204q to the adhesive 210q and / or the host's skin. The adhesive 210q may be coupled to the distal side 207e of the base 204q.

[0468] The system 202q can include a cap 381 coupled to the base 204q and positioned proximally relative to the base 204q. A first portion of the sensor 206q can be coupled to the cap 381. The system 202q can be configured to store the sensor 206q by moving the cap 381 proximally relative to the base 204q.

[0469] Cap 381 may be movable between a distal position (e.g., as shown in FIG. 49) and a proximal position (e.g., as shown in FIG. 50). In the distal position, the second portion of sensor 206q may be disposed distally relative to base 204q. In the proximal position, the second portion of sensor 206q may be disposed proximally relative to base 204q. Interlock 384 may removably secure cap 381 in the distal position.

[0470] At least a portion of the outer periphery 385 of cap 381 can protrude radially outward further (relative to the central axis of the second portion) than base 204q, such that the outer portion of outer periphery 385 provides a distally facing wall 386 that allows a user to grip cap 381 as the user moves cap 381 from a distal position to a proximal position.

[0471] The system 202q can include a linkage 388 between the cap 381 and the base 204q. The linkage 388 can be configured to limit the distance that the cap 381 can move proximally relative to the base 204q.

[0472] Linkage 388 can include a pleated collapsible and expandable portion 389 (e.g., a bellows) configured to at least partially expand to allow cap 381 to move from a distal position to a proximal position to store a second portion of sensor 206q in pleated collapsible and expandable portion 389. Cap 381 can be rigidly coupled (and / or removably coupled) to transmitter 211q so as to store sensor 206q proximally by moving transmitter 211q.

[0473] energized sensor The sensor can be biased so that the relaxed state of the distal portion of the sensor is approximately perpendicular to the distal direction. As a result, when the sensor is removed from tissue, the sensor automatically bends toward its lowest energy state (e.g., so that the sensor points to the side rather than distally). In this orientation, the sensor is less likely to puncture another person's skin.

[0474] The sensor, needle, and / or fixation structure coupled to the sensor and / or needle can be elastically deformed for insertion by the applicator. The applicator can hold the distal portion of the sensor in an orientation in which the sensor is pointed distally. As a result, the biased sensor can be held in the insertion orientation by the applicator. Once the applicator and any other obstructions (e.g., tissue) are removed, the biased sensor and / or needle can automatically move toward its relaxed state.

[0475] Figure 51 shows a side cross-sectional view of a system 202r with a biased sensor 206r, in which the sensor 206r is in a relaxed state (or at least a lower energy state than when the sensor 206r is held in a distally pointing orientation).

[0476] 52 shows a side cross-sectional view of a nested applicator 402 configured to hold the sensor 206r in a distally oriented state (e.g., a restrained state). The applicator 402 includes a channel 403 configured to prevent the sensor 206r from returning to the state of the sensor 206r shown in FIG.

[0477] Moving the proximal portion of the applicator 402 distally (e.g., in the distal direction 209) moves the sensor 206r into the host tissue 352. Once the applicator 402 reaches a distal end position (e.g., as shown in FIG. 53), the applicator 402 can be removed because the tissue 352 resists the sensor 206r moving in the orientation of the sensor 206r shown in FIG. 51. FIG. 53 shows a side cross-sectional view of the sensor 206r in a deployed state before the applicator 402 has been removed from the sensor 206r.

[0478] The applicator 402 can be separated from the base 204r. Removing the base 204r from the tissue 352 allows the sensor 206r to return to the state shown in FIG. 51. As shown in FIG. 51, a portion of the sensor 206r is disposed within a protective slot 302r in the base 204r. (The protective slot 302 is also shown in FIG. 24.) The transmitter 211r can be coupled to the base 204r. The adhesive 210 can bond the base 204r to the host tissue 352.

[0479] In some embodiments, the system 202r includes a central axis 404 oriented from the proximal end of the system 202r to the distal side 207r of the base 204r. The distal portion of the sensor 206r can include a relaxed state in which the distal portion is oriented within ±45 degrees of perpendicular to the central axis 404 of the system 202r, such that the relaxed state is configured to reduce the likelihood of the distal portion penetrating a person (e.g., as shown in FIG. 51 ).

[0480] The distal portion of sensor 206r can include a constrained state oriented within ±20 degrees of parallel to central axis 404 (labeled in FIG. 51), such that the distal portion is oriented distally (e.g., as shown in FIG. 52). The constrained state has a higher stored mechanical energy than the relaxed state.

[0481] System 202r can include a channel 403 oriented within ±20 degrees of parallel to a central axis 404 (labeled in FIG. 51 ). A section of sensor 206r can be disposed within channel 403, such that channel 403 constrains and orients a distal portion of sensor 206r (as shown in FIG. 52 ).

[0482] 52, the channel 403 can include a slot 302r. A distal portion of the sensor 206r can be biased away from the slot 302r, whereby the biasing of the distal portion of the sensor 206r is configured to facilitate maintaining the distal portion of the sensor 206r within the channel 403. The sensor 206r can be biased directly away and / or at least partially away from the slot 302r. As used herein, "away" does not necessarily mean "directly away."

[0483] The system 202r can include a nested applicator 402 having a channel 403. The applicator 402 can be removably coupled (and / or permanently coupled) to the base 204r such that the applicator 402 is configured to orient a distal portion of the sensor 206r in a constrained state. The applicator 402 can be configured to be separated from the base 204r such that the distal portion of the sensor 206r can enter a relaxed state.

[0484] The system 202r can include a telescoping applicator 402 having a distal portion 405 and a proximal portion 406. The proximal portion 406 of the applicator 402 can be configured to move distally relative to the distal portion 405 of the applicator 402 to insert a distal portion of the sensor 206r into the skin.

[0485] The distal portion 405 of the applicator 402 can include a C-shaped channel 403 (e.g., as shown in FIG. 52 ). A section of the sensor 206r can be disposed within the C-shaped channel 403, such that the C-shaped channel 403 constrains and orients the distal portion of the sensor 206r. The applicator 402 can be configured such that the proximal portion 406 of the applicator 402 moves distally relative to the C-shaped channel 403 to insert the distal portion of the sensor 206r into the skin.

[0486] The base 204r may be coupled to the proximal portion 406 of the applicator 402 such that when the sensor 206r is inserted into the skin, the base 204r is configured to move distally relative to the C-shaped channel 403 and relative to the distal portion 405 of the applicator 402.

[0487] Any of the features described in the context of Figures 2-53 may be applied to all aspects and embodiments identified herein. For example, an embodiment described in the context of Figures 2-53 may be combined with an embodiment described in the context of Figure 1 and Figures 54-126. Furthermore, any of the features of one embodiment may be independently combinable in some way, partially or wholly, with other embodiments described herein (e.g., one, two, or more embodiments may be combinable in whole or in part). Furthermore, any of the features of one embodiment may be optional with respect to other aspects or embodiments. Any aspect or embodiment of a method may be performed by a system or device of another aspect or embodiment, and any aspect or embodiment of a system may be configured to perform a method of another aspect or embodiment.

[0488] buckling support Measuring analyte data often involves inserting an analyte sensor into subcutaneous tissue. Some embodiments use a needle to facilitate inserting the sensor into the subcutaneous tissue. Some embodiments have a sensor configured to be inserted into the subcutaneous tissue without the aid of a needle. (Embodiments may be used with or without a needle.)

[0489] When a sensor is inserted into a person, the sensor may buckle due to resistance to sensor insertion from the skin and subcutaneous tissue. For example, the sensor may buckle when the distal tip of the sensor attempts to pierce the skin and / or when the sensor is moved deeper into the person after the distal tip has pierced the skin. Many systems solve this problem by using a needle to aid in inserting the sensor into the person. However, needles can cause long-term patient discomfort and are therefore typically removed (while leaving the sensor at least partially within the person).

[0490] In some embodiments, using a needle may have some drawbacks. For example, storing the needle may require extra steps, time, and / or hardware. Additionally, the presence of the needle may cause a larger wound than is necessary to insert the sensor. For example, the wound caused by the needle to insert the sensor may be larger than the wound caused to insert the sensor without the needle. Therefore, in some cases, systems and methods that eliminate the need to use a needle to insert a sensor into a person would be advantageous.

[0491] In some embodiments, one key to enabling needle-free systems and methods is the elimination of sensor buckling. Systems that eliminate sensor buckling typically do not require a needle. Thus, in some cases, there is a need for systems and methods that eliminate sensor buckling so that a needle is not required to insert the sensor into a person.

[0492] The entire contents of the following applications are incorporated herein by reference: U.S. patent application Ser. No. 12 / 893,850, filed Sep. 29, 2010, entitled Transcutaneous Analyte Sensor; U.S. patent application Ser. No. 14 / 250,320, filed Apr. 10, 2014, entitled Sensors for Continuous Analyte Monitoring, and Related Methods; U.S. patent application Ser. No. 13 / 780,808, filed Feb. 28, 2013, entitled Sensors for Continuous Analyte Monitoring, and Related Methods; and U.S. patent application Ser. No. 62 / 244,520, filed Oct. 21, 2015, entitled Transcutaneous Analyte Sensors, Applicators Therefor, and Associated Methods.

[0493] Material type and dimensions Some embodiments enable needleless sensor insertion by using sensors made from materials that have sufficient resistance to buckling. For example, the sensor material can have a high elastic modulus and / or high bending stiffness. While these embodiments can reduce the likelihood of sensor buckling, they can also cause discomfort to the patient in vivo (because a stiff sensor is less likely to buckle, but may still be stiff enough to be uncomfortable for the patient during chronic use).

[0494] Some embodiments enable needleless sensor insertion by using sensor dimensions that make the sensor less likely to buckle. Some embodiments have sensors that are less likely to buckle due to their short length and / or large width (e.g., diameter).

[0495] When force is applied to insert a sensor (e.g., a self-insertion sensor), buckling can occur before, during, and / or after skin penetration. A sensor's resistance to buckling typically depends on several variables, such as material properties and geometry (e.g., overall shape, cross-sectional geometry, beam thickness, beam length). Subtle factors such as beam straightness and induced moments from loads can significantly affect a sensor's buckling performance.

[0496] The maximum buckling load of the sensor can be predicted using an Eulerian model (shown in Figure 54). The variables of the Eulerian model can be used to represent a wide variety of column shapes and support scenarios. F = maximum or limiting force (vertical load on the column) E = Elastic modulus I = area moment of inertia of the rod cross section L = unsupported length of column K = column effective length factor, whose value depends on the condition of the column end supports.

[0497] For one end fixed and the other free to move laterally, K = 2.0. KL is the effective length of the column.

[0498] The sensor may have a circular cross section, in which case the area moment of inertia of the cross section of the rod may be approximated by the formula shown in Figures 55 and 56.

[0499] As can be seen from the Euler model, the maximum buckling load of a beam with a circular cross section increases (for a given material) as the fourth power of the radius. The maximum buckling load of a beam is divided by the square of the length. As a result, doubling the length results in a maximum buckling load (for a given support condition) that is only 25% of the buckling load before doubling the length.

[0500] A sensor's ability to resist buckling is typically not the only consideration. The sensor may have to remain flexible enough to avoid causing patient discomfort when the sensor is placed at least partially inside the patient. The sensor must also reach deep enough below the skin surface to reliably measure an analyte indication (e.g., to measure glucose in interstitial fluid). A sensor that buckles during insertion will not be able to penetrate the skin. A sensor that buckles after insertion may cause uncertain analyte measurements.

[0501] In some embodiments, the sensor comprises a diameter greater than 0.004 inches and / or less than 0.015 inches. In some embodiments, the sensor comprises a non-circular cross-section but has a width greater than 0.004 inches and / or less than 0.015 inches. The sensor can have an insertion depth (below the skin surface) greater than 2 mm and / or less than 8 mm.

[0502] Collapsible support Long, thin sensors can minimize patient discomfort, but can be highly susceptible to buckling. Some embodiments include a support structure configured to resist lateral movement of the sensor as it is inserted into a patient. However, one challenge is creating a support structure that resists buckling forces on the sensor without inhibiting distal movement of the sensor. In other words, a support structure that holds the sensor so that it does not buckle during insertion may impede the sensor as it moves distally. Therefore, in some cases, a support structure that resists buckling without inhibiting distal movement of the sensor is needed.

[0503] Some embodiments include a collapsible support member configured to resist non-axial forces on the sensor. The collapsible support member can resist buckling forces and can compress, deflect, and / or release to allow distal movement of the sensor.

[0504] In some embodiments, the system includes a collapsible support member configured to resist non-axial forces on the sensor. The collapsible support member can include a proximal end, a distal end, and a length measured from the proximal end to the distal end. The system can be configured to shorten the length in response to moving the sensor from the proximal position to the distal position.

[0505] As used herein, an axial force places the central axis of the sensor in compression or tension. A non-axial force acts in a direction other than along the central axis.

[0506] In some embodiments, the collapsible support member comprises a channel through which at least a portion of the sensor can pass, and the channel can be configured to resist buckling forces of the sensor as the sensor moves from a proximal position to a distal position.

[0507] Collapsible foam 57 shows a perspective view of a system 202s having a collapsible support that resists buckling of the sensor 206s. The collapsible support may be a collapsible block 412 having a channel 413. The sensor 206s can pass through the channel 413, which resists buckling forces, while the collapsible block 412 compresses to allow the sensor 206s to move distally.

[0508] Figure 58 shows a side view of system 202s before compressing collapsible block 412. Figure 59 shows a side view of system 202s after compressing collapsible block 412 to deploy sensor 206s.

[0509] The channel 413 begins at the proximal portion 411 of the base and ends at the distal portion 204s of the base such that the channel 413 passes through the block 412. The block 412 may be a cube, a cylinder, a cone, and / or any suitable shape.

[0510] Figure 58 shows the distal side 207s of the system 202s. An adhesive 210s can bond the distal side 207s to the skin of a host. Figure 58 also shows the distal direction 209 and the proximal direction 208.

[0511] The block 412 prevents buckling of the sensor 206s while the proximal base portion 411 can move toward the distal base portion 204s (e.g., in the direction indicated by arrow 209). The block 412 can compress to allow the system 202s to deploy the sensor 206s. The transmitter 211s can be coupled to the proximal base portion 411.

[0512] One advantage of the collapsible block 412 is that the structure provides rigid lateral support so that the block 412 prevents buckling of the sensor 206s. For example, FIG. 58 shows lateral direction 414. Once the sensor 206s begins to move in this lateral direction 414, further lateral movement of the sensor 206s is prevented by the walls of the channel 413. (The channel 413 may look like the inside of a tube.)

[0513] Another advantage is that the structure of block 412 is also highly compressible, which can dramatically reduce the height of block 412, allowing system 202s to move sensor 206s distally.

[0514] 57-59, the block 412 may be made from foam and / or any other suitable material. The foam may be open- or closed-cell foam. Open-cell foam may be highly compressible. High compressibility can reduce the minimum height of the system 202s in a compressed state. Each foam allows for a compression ratio (i.e., the ratio between the uncompressed height of the foam and the compressed height of the foam). In some embodiments, the compressed height of the foam is at least 1 percent, at least 10 percent, at least 20 percent, less than 25 percent, less than 35 percent, and / or less than 50 percent of the uncompressed height of the foam.

[0515] The foam may be anisotropic or isotropic. The foam may use a wide range of materials, including polyurethane, polystyrene, polymers, silicones, and / or any suitable material.

[0516] The system 202s can include a foam coupled to the base 204s and a channel 413 mechanically supported by the foam. At least a portion of the sensor 206s can be disposed within the channel 413. The portion of the sensor 206s can include a central axis. The channel 413 can be configured to resist lateral displacement of the portion of the sensor 206s relative to the central axis. The foam can be configured to compress in response to the system 202s moving the sensor 206s from a proximal position (e.g., as shown in FIG. 58) to a distal position (e.g., as shown in FIG. 59).

[0517] In some embodiments, the base comprises a distal portion 204s and a proximal portion 411. The system 202s can comprise a channel 413 having walls configured to compress in response to the system 202s moving the sensor 206s from a proximal position to a distal position. The channel 413 can be disposed at least partially between the distal portion 204s and the proximal portion 411 of the base, such that a portion of the sensor 206s is disposed in the channel 413. The walls of the channel 413 can be configured to resist lateral displacement of a portion of the sensor 206s. This lateral displacement is defined relative to the distal direction 209 along a central axis of the portion of the sensor 206s disposed within the channel 413.

[0518] In some embodiments, the wall comprises foam configured to compress in response to moving the proximal portion 411 distally toward the distal portion 204s of the base. The wall may be made of a collapsible structure and / or a compressible material other than foam.

[0519] The foam block 412 can have one or more intermediate layers made of a harder and / or less compressible material. The layers of the foam block 412 can adhere to each other. The intermediate layer 416 may be a harder foam. The intermediate layer 416 may be plastic, silicone, thermoplastic elastomer ("TPE"), and / or elastomer such that the intermediate layer 416 compresses less than 25 percent, while the foam compresses at least 50%.

[0520] The intermediate layer 416 can be disposed between the proximal layer 417 and the distal layer 418. The intermediate layer 416 can have a different material than the distal layer 418 and the proximal layer 417. The intermediate layer 416 can have a higher density, can be less compressible, can be stiffer (e.g., as measured on the Shore A scale), can have a higher modulus of elasticity, can be more rigid, and / or can be harder than the distal layer 418 and / or the proximal layer 417. The intermediate layer 416 can have a closed cell structure, while the distal layer 418 and / or the proximal layer 417 can have an open cell structure.

[0521] In some embodiments, the wall comprises a proximal section (e.g., a portion of proximal layer 417) having a first material, a mid-section (e.g., a portion of mid-layer 416) having a second material, and a distal portion (e.g., a portion of distal layer 418) having a third material. The second material can be harder than the first and third materials, such that the mid-section is configured to resist lateral displacement. The second material can be stiffer than the first and third materials, such that the mid-section is configured to resist lateral displacement. The second material can be less compressible than the first and third materials.

[0522] In some embodiments, the system 202s includes an interlock 420 (e.g., a mechanical interlock) configured to secure the proximal portion 411 of the base to the distal portion 204s of the base in response to the system 202s moving the sensor 206s from a proximal position to a distal position.

[0523] The mechanical interlock 420 can secure the system 202s in a compressed state (as shown in FIG. 59). The mechanical interlock 420 can include an arm and a snap fit that mates with an undercut or channel 413. The channel 413 can be formed by a hole, pass-through, or slot.

[0524] Collapsible Bellows 60-63 show a system 202t having a collapsible support that resists buckling of the sensor 206t. The collapsible support may be formed by a bellows 421 having a channel 422. A portion of the sensor 206t may be disposed within the channel 422 of the bellows 421. The sensor 206t may pass through the channel 422 such that the channel 422 resists buckling forces while the bellows 421 compresses to allow the sensor 206t to move distally. An adhesive 210t may couple the system 202t to a person.

[0525] FIG. 60 shows a perspective view of system 202t before collapsing bellows 421 (shown in FIG. 61). FIG. 61 shows a side view of system 202t before collapsing bellows 421. FIG. 62 shows a side cross-sectional view of the state shown in FIGS. 60 and 61. Bellows 421 resists buckling of sensor 206t, while sensor 206t can move in distal direction 209 relative to base 204t to compress bellows 421. FIG. 63 shows a side cross-sectional view of the state after collapsing bellows 421 to deploy sensor 206t.

[0526] 60-63, bellows 421 can comprise a pleated, expandable member made from an elastomeric material, a hard plastic, a flexible plastic, a silicone, and / or a flexible polymer. Bellows 421 can include a foldable section configured to fold to allow bellows 421 to compress from an initial height to a compressed height that is less than 50 percent and / or less than 35 percent (measured in proximal direction 208) of the initial height.

[0527] System 202t can include an arm 427 configured to guide a top portion (e.g., transmitter 211t) toward base 204t to control the collapse of bellows 421. Arm 427 can support and position the top portion when bellows 421 collapses, such that movement of arm 427 translates into movement of the top portion relative to base 204t and at least partial collapse of bellows 421. Arm 427 can be configured to linearly guide the top portion toward base 204t or can be configured to rotate the top portion relative to base 204t when bellows 421 is compressed.

[0528] Bellows 421 may be configured to laterally support at least a portion of sensor 206t as it passes through an interior region (e.g., channel 422) of bellows 421. System 202t may be configured such that moving system 202t from an initial state (sensor 206t not at least partially positioned within a person) to a final state (sensor 206t at least partially positioned within a person) allows bellows 421 to collapse.

[0529] Some embodiments do not include a needle. Some embodiments include a needle stored in bellows 421 (e.g., as shown in the embodiments incorporated by reference). System 202t can include a spring having a relaxed state such that bellows 421 is expanded (e.g., the needle is stored and / or sensor 206t is not deployed). Arm 427 can act as a spring system.

[0530] System 202t can include a mechanical interlock 429 configured to releasably hold bellows 421 and / or spring in a compressed state. By releasing mechanical interlock 429, sensor 206t can be retracted from the skin, causing a portion of sensor 206t disposed distally relative to distal side 207t of base 204t to move proximally into an interior region of system 202t. Interlock 429 can be a snap fit formed by an undercut (e.g., as shown in FIG. 63).

[0531] In some embodiments, the system 202t includes a bellows 421 coupled to the base 204t. At least a portion of the sensor 206t may be disposed within an interior region of the bellows 421. The portion of the sensor 206t may include a central axis. The bellows 421 may be configured to resist lateral displacement of the portion relative to the central axis. The bellows 421 may be configured to compress in response to the system 202t moving the sensor 206t from a proximal position to a distal position.

[0532] System 202t can include a removable safety feature 424 configured to prevent premature and / or inadvertent sensor deployment. A tab 425 can be coupled to the safety feature such that moving tab 425 (e.g., in the direction indicated by arrow 426) moves safety feature 424 relative to base 204t, separating safety feature 424 from base 204t. Safety feature 424 can be C-shaped. For example, safety feature 424 can be shaped like a hoop with an open section configured to allow bellows 421 to pass through the open section when safety feature 424 is removed.

[0533] Some embodiments include a base 204t having a distal portion and a proximal portion (which may include a transmitter 211t). A bellows 421 can couple the distal portion to the proximal portion. The system 202t can include a removable interference member 424 (e.g., a safety member) disposed between the distal and proximal portions, such that the removable interference member 424 is configured to prevent the system 202t from moving the sensor 206t from a proximal position (e.g., a proximal start position) to a distal position (e.g., a distal end position).

[0534] In some embodiments, the system includes a tab coupled to the collapsible support member, and the system can be configured such that actuating (e.g., pulling, pushing, moving, squeezing, touching) the tab causes the collapsible support member to collapse and move at least a portion of the sensor distally relative to the base.

[0535] Folded flex tabs 64-67 illustrate a system 202u having a collapsible support that resists buckling of the sensor 206u. The collapsible support may be formed by a deformable sheet 438 disposed within a slot 439 (e.g., a passageway, hole, channel) in a housing 440. The sensor 206u may be moved distally (e.g., into the host's tissue) by moving the sheet 438 distally. The housing 440 may include slot 439 configured to resist buckling forces of the sensor 206u as the sensor 206u moves distally (e.g., as indicated by the distal arrow 209 shown in FIG. 66).

[0536] FIG. 64 shows a perspective view of system 202u, which can include battery 430u and transmitter 211u, which can be electrically coupled to flex circuit 431 at least partially disposed within slot 439. FIG. 65 shows a different perspective view of system 202u. Moving sheet 438 in a direction within ±45 degrees of perpendicular to distal direction 209 (shown in FIG. 66) can move a portion of sheet 438 disposed within slot 439 distally, thereby moving sensor 206u distally. For example, sheet 438 can be moved in direction 432 and / or direction 433, which can cause sheet 438 to move sensor 206u in direction 434 (e.g., distally).

[0537] The base 202u can include a distal side 207u having an adhesive 210u configured to bond the base 202u to the skin of a host. A sheet 438 can bond the adhesive 210u to the base 204u and / or the housing 440.

[0538] Figure 66 shows a side view of housing 440 including slot 439. Slot 439 can pass completely through housing 440 (e.g., from the left side to the right side of housing 440) as shown in Figure 66. In some embodiments, slot 439 does not pass completely through housing 440.

[0539] 67 shows a perspective view of system 202u without housing 440. Proximally protruding portion 436 of seat 438 is configured to fit within slot 439 (shown in FIG. 66) of housing 440. By moving this portion 436 distally, system 202u moves sensor 206u distally.

[0540] 64-67, some embodiments include at least one tab 446, 447 coupled to the flexible member (e.g., sheet 438). The flexible member and a portion of sensor 206u can be positioned within slot 439 such that moving tab 446, 447 causes the flexible member to move, push, and / or pull a portion of sensor 206u out of slot 439 and / or into the person's tissue.

[0541] The slot 439 can support the sensor 206u by resisting buckling forces of the sensor 206u. The slot 439 can have a distally facing opening 448 (labeled in FIG. 66). The slot 439 can support at least 80% of the extracorporeal portion of the sensor 206u (e.g., when the sensor 206u is in a proximal starting position prior to sensor deployment). The slot 439 can be disposed within a housing 440, which may be a removable applicator.

[0542] The system 202u can include pull tabs 446, 447 and a slot 439 configured such that at least a portion of the sensor 206u is disposed within the slot 439. The system 202u can be configured such that pulling the pull tabs 446, 447 causes the system 202u to move the sensor 206u from a proximal position to a distal position.

[0543] System 202u can include a deformable sheet 438 disposed within slot 439 and coupled to pull tabs 446, 447, such that deformable sheet 438 is configured to move (e.g., push, pull) a portion of sensor 206u distally in response to actuating (e.g., pulling) pull tabs 446, 447. As used herein, sheet 438 is “deformable” if it is capable of conforming and / or flexing to fit within slot 439.

[0544] System 202u can include a housing 440 coupled to base 204u. Housing 440 can include a slot 439 and can be configured such that, in response to pulling pull tabs 446, 447, deformable sheet 438 pushes a portion of sensor 206u distally. Slot 439 can include a distally facing opening 448 (labeled in FIG. 66 ) configured to allow a portion of sensor 206u to exit slot 439 distally and enter the subcutaneous tissue of the host.

[0545] High-level claim - guide members and split channels As noted above, long, thin sensors can be highly susceptible to buckling. Some embodiments include a support structure configured to resist lateral movement of the sensor as it is inserted into a patient. However, one challenge is creating a support structure that resists buckling forces on the sensor without inhibiting distal movement of the sensor. Some embodiments avoid inhibiting distal movement of the sensor by not interfering with the sensor as it moves distally.

[0546] In some embodiments (e.g., as illustrated in the context of Figures 74-84), the system can include a guide member configured to resist non-axial forces on the sensor, thus supporting the sensor against buckling.

[0547] The guide member can include an engagement feature releasably coupled to the sensor, The engagement feature can be configured to disengage from the sensor in response to moving the sensor from the proximal position to the distal position.

[0548] In some embodiments, the guide member comprises a first portion and a second portion, and at least a portion of the sensor can be disposed between the first portion and the second portion of the guide member, such that the first portion and the second portion of the guide member are configured to resist a buckling force of the sensor.

[0549] In some embodiments, the first portion can be configured to move relative to the second portion of the guide member in response to the system moving the sensor from a proximal position to a distal position. The guide member can be configured such that displacement of the first portion relative to the second portion allows the sensor to move from the proximal position to the distal position.

[0550] In some embodiments, a portion of the sensor (disposed between the first and second portions of the guide member) includes a central axis. The first and second portions of the guide member can form a channel. A portion of the sensor can be disposed within the channel. The channel can be configured to resist displacement of the portion of the sensor in a direction perpendicular to the central axis.

[0551] Split Channel In some embodiments (e.g., as illustrated in the context of Figures 74-84), the system can include a channel having a first side and a second side configured to at least partially separate in response to the system moving the sensor from a proximal position to a distal position. A portion of the sensor can be disposed within the channel such that the channel is configured to at least partially separate to allow the sensor to move from the proximal position to the distal position. The portion of the sensor can include a central axis. The channel can be configured to resist displacement of the portion of the sensor in a direction perpendicular to the central axis.

[0552] Sprinter Insertion 68-70 illustrate a system 202v that includes a guide member (e.g., a channel disposed at least partially between a first portion and a second portion of a base 204v). The guide member can support the sensor 206v to prevent harmful buckling. The guide member can include a curved and / or angled portion configured to deflect a distal portion of the sensor 206v into the host's skin. As a result, moving the second portion of the base 204v relative to the first portion of the base 204v can change direction of the distal portion of the sensor 206v.

[0553] 68 illustrates a perspective view of the system 202v. Moving the second portion of the base 204v relative to the first portion of the base 204v (e.g., as shown by arrow 451) can cause the sensor 206v to deflect through the system 202v and exit the distal side 207v of the base 204v. The adhesive 210 can bond the distal side 207v to the host's skin.

[0554] Figure 69 shows the same pre-deployment state as shown in Figure 68. Figure 69 shows a side cross-sectional view. By sliding the second portion of the base 204v in the direction indicated by arrow 452, the sensor 206v is pushed along the interior region between the first and second portions of the base 204v. By continuing to slide the second portion of the base 204v in the direction indicated by arrow 452, the distal portion of the sensor 206v protrudes from the distal side 207v of the base 204v (e.g., as shown in Figure 70). Figure 70 shows a side cross-sectional view of the system 202v with the sensor 206v deployed.

[0555] 68-70 , the first portion of the system 202v can move substantially horizontally to push the sensor 206v out of the distal side 207v of the base 204v. In some embodiments, the first portion of the system 202v can be configured to move in a direction that is within ±45 degrees and / or within ±25 degrees of perpendicular to the distal direction 209. The first portion can be coupled to the base 204v by rails 457 such that the first portion is slidably coupled to the base 204v.

[0556] The curved channel 455 (which may be a slot) allows movement of the top portion to deflect the sensor 206v so that it exits the distal side 207v of the base 204v. This movement may be in a direction that is within ±45 degrees and / or ±25 degrees of perpendicular to the distal direction 209.

[0557] The sensor 206v is prevented from inadvertently buckling by being constrained between the first and second portions of the base 204v. The system 202v can include a channel 456 configured to resist buckling forces of the sensor 206v when the sensor 206v is deployed. The channel 456 can be substantially straight or can be combined with a curved and / or angled channel 455.

[0558] In some embodiments, the sensor 206v is coupled to a housing 454 that is slidably coupled to the base 204v. The system 202v can be configured to move a portion of the sensor 206v away from the distal side 207v of the base 204v (and into the skin) in response to moving the housing 454 in a first direction (e.g., as indicated by arrow 452) within ±10 degrees, ±20 degrees, ±45 degrees, and / or ±60 degrees of perpendicular to the distal direction 209.

[0559] The system 202v can include a housing 454 slidably coupled to the base 204v. The base 204v can include a channel 455 (e.g., a curved channel and / or a channel oriented at an angle within ±45 degrees of parallel to the distal direction 209). A portion of the sensor 206v can be disposed within the channel 455. The sensor 206v can move through the curved and / or angled channel 455 when the sensor 206v is deployed within the skin. The channel 455 can be configured to deflect a portion of the sensor 206v, redirecting the portion distally, in response to moving the housing 454 relative to the base 204v.

[0560] The sensor path can have a first section 456 and a second section 455. At least a portion of the sensor 206v can move along the first section 456 and the second section 455 of the sensor path. The first section 456 can be oriented within ±20 degrees of perpendicular to the distal direction 209 and / or within ±45 degrees of perpendicular to the distal direction 209. The second section 455 can be oriented within ±45 degrees of parallel to the distal direction 209. The system 202v can be configured to deflect the sensor 206v to cause the sensor 206v to advance along the sensor path, which causes the channel 455 to redirect the sensor 206v toward the host's skin.

[0561] The base 204v can include a first portion (e.g., a portion including the distal side 207v) and a second portion (e.g., a portion including the transmitter 211v). The first portion can be configured to couple the second portion to the skin. The second portion can be slidably coupled to the first portion. The base 204v can be configured such that moving the second portion (relative to the first portion) in a first direction (e.g., as shown by arrow 452) within ±20 degrees perpendicular to the distal direction 209 (and / or within ±45 degrees perpendicular to the distal direction 209) moves the distal tip of the sensor 206v in a second direction within ±45 degrees parallel to the distal direction 209.

[0562] The sensor 206v can comprise a distal section and a proximal section. The proximal section can be rigidly coupled to a second portion of the base 204v. The distal section can pass through channels 455, 456 in a first portion of the base 204v. The channels 455, 456 can comprise a radius configured to deflect at least a portion of the sensor 206v such that the portion is redirected distally toward the host's skin.

[0563] The sensor 206v may be a glucose sensor and / or any type of sensor described herein and / or incorporated by reference. The transmitter 211v may be coupled to a second portion of the base 204v such that the second portion slidably couples the transmitter 211v to the first portion of the base 204v. The system 202v may include at least one rail 457 that slidably couples the second portion to the first portion of the base 204v. In some embodiments, the first and second portions may be coupled to a spring. In some embodiments, the sliding member may be internally covered to protect the mechanism from external influences.

[0564] Curved Support Channel 71-73 illustrate a system 202w that includes a guide member (e.g., channel 463). Some embodiments maintain the sensor 206w in a generally straight orientation to minimize buckling. However, other embodiments (e.g., as shown in FIGS. 71-73) intentionally bend the sensor 206w along a curved path to enable buckling forces that actually facilitate successful sensor 206w insertion. Thus, the system 202w can direct the buckling forces in a known, repeatable, and predictable direction. The walls of the channel 463 can support the sensor 206w in this direction to prevent detrimental buckling.

[0565] Figure 71 illustrates a perspective view of system 202w. Figure 72 illustrates a perspective cross-sectional view of system 202w before sensor 206w is deployed (e.g., when sensor 206w is in a proximal start position). Figure 73 illustrates a side cross-sectional view of system 202w after sensor 206w is deployed (e.g., when sensor 206w is in a distal end position).

[0566] The base 204w can be rotated distally relative to the applicator 462 (e.g., as shown by arrow 461 in FIG. 72) to move the sensor 206w into the tissue (e.g., as shown in FIG. 73). An adhesive 210w can bond the distal side 207w of the base 204w to the host's skin.

[0567] The system 202w can include a curved channel 463 configured to support the sensor 206w when the sensor 206w is deployed within the person's skin. The curved channel 463 can be part of an applicator 462 that is removably coupled to the base 204w.

[0568] System 202w can include a spring 464 (e.g., a leaf spring 464) that is in a deflected state when sensor 206w is in a proximal start position (e.g., as shown in FIG. 72 ). A mechanical interlock 467 (e.g., an inward protrusion) can hold spring 464 in the deflected state. Releasing mechanical interlock 467 allows spring 464 to push sensor 206w to a distal position as a portion of sensor 206w travels a curved path through curved channel 463. Mechanical interlock 467 can be released by deflecting the protrusion (e.g., by pulling pull tab 465 or by other suitable means).

[0569] Spring 464 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0570] The curved characteristics of channel 463 determine the primary direction of the buckling force. As a result, the buckling force pushes sensor 206w toward the bottom of channel 463 (rather than out of channel 463). The support provided by curved channel 463 primarily on one hemisphere of the cross-section of sensor 206w allows more of the force to be transferred to the distal tip of sensor 206w. The result is very reliable insertion of sensor 206w.

[0571] The system 202w can include a removable applicator 462 coupled to a base 204w. The base 204w can include a transmitter (e.g., as shown in other embodiments). The applicator 462 can be any type of applicator 462 described herein and / or incorporated by reference.

[0572] The applicator 462 can include a curved channel 463 configured to guide a portion of the sensor 206w along a curved path as the portion moves from a proximal position (e.g., as shown in FIG. 72) to a distal position (e.g., as shown in FIG. 73). (In some embodiments, the channel 463 is straight rather than curved.) The applicator 462 can include a leaf spring 464 configured to drive a portion of the sensor 206w along a curved path through the curved channel 463.

[0573] The curved channel 463 may be coupled to the base 204w. The curved portion of the sensor 206w may be disposed within the curved channel 463. The curved channel 463 may be configured to resist a buckling force of the curved portion when the system 202w moves the curved portion from a proximal position (e.g., as shown in FIG. 72) to a distal position (e.g., as shown in FIG. 73). The applicator 462 may be configured to facilitate moving the curved portion of the sensor 206w from the proximal position to the distal position.

[0574] The system 202w can include a spring 464 configured to move the curved portion of the sensor 206w from a proximal position to a distal position. The spring 464 can be any type of spring 464 described herein and / or incorporated by reference. The spring 464 can be a leaf spring in a flexed state.

[0575] The system 202w can include an interlock 467 (e.g., a mechanical interlock) configured to releasably hold the spring 464 (e.g., a leaf spring) in a deflected state. Figure 72 shows the interlock 467 comprising an inward protrusion of the applicator 462 that interferes with distal movement of a portion of the system 202w (e.g., a portion of the spring 464, a portion of the base 204w).

[0576] The system 202w can be configured to move the curved portion of the sensor 206w from a proximal position to a distal position in response to disengaging the interlock 467. The system 202w can include a tab 465 (e.g., a pull tab) coupled to the interlock 467 such that the system 202w is configured to disengage the interlock 467 and allow the spring 464 to move the curved portion of the sensor 206w from the proximal position to the distal position in response to actuating (e.g., pulling, pushing, moving) the tab 465.

[0577] SensorGrip-Zipper Embodiment Some embodiments use a movable arm to support the sensor against buckling forces, which can move out of the way as the sensor moves from a proximal start position to a distal end position.

[0578] The movable arm can have many different shapes. In some embodiments, the movable arm can be shaped like a clothespin, opposing fingers, and / or a set of tongs. The movable arm can have a relaxed state in which the movable arm forms a channel through which at least a portion of the sensor passes when the sensor is deployed.

[0579] In some embodiments, the movable arms have a relaxed state in which the arms are spread apart from each other, and the applicator can hold the arms together to support the sensor against buckling.

[0580] 74-77 illustrate a system 202x that includes a guide member, e.g., a channel 473. The system 202x can include a channel 473 having a first side and a second side configured to be at least partially separated in response to the system 202x moving the sensor 206x from a proximal position to a distal position.

[0581] 74 shows a side view of base 204x. Transmitter 211x is disposed inside base 204x. Sensor 206x is coupled to base 204x. Adhesive 210x is coupled to distal side 207x of base 204x, such that adhesive 210x is configured to couple base 204x to the skin of a host.

[0582] FIG. 75 shows a perspective cross-sectional view of a nested applicator 475 removably coupled to a base 204x. The applicator 475 includes four sets of arms 474. Each set of arms 474 includes a first arm 474 and a second arm 474. The first arm 474 and the second arm 474 of each set can be pressed against each other (whereby the relaxed state of the first arm 474 and the second arm 474 is when the end portions of the first arm 474 and the second arm 474 contact each other). In the area where the first arm 474 and the second arm 474 contact each other, the arms 474 can form a channel 473. At least a portion of the sensor 206x can be configured to pass through the channel 473. Channel 473 can resist buckling forces of sensor 206x and help maintain a portion of sensor 206x in a generally straight configuration when sensor 206x is deployed.

[0583] The proximal portion 476 of the applicator 475 may include a distal protrusion 478 configured to enter an area 479 between each pair of arms 474 when the proximal portion 476 of the applicator 475 moves toward the distal portion 477 of the applicator 475. When the distal protrusion 478 enters the area 479 between each pair of arms 474, the distal protrusion 478 may move the first arm 474 away from the second arm 474 to open the channel 473 and allow the angled portion 469 of the sensor 206x to pass between each pair of arms 474.

[0584] 76 shows a side cross-sectional view of system 202x when system 202x is in a proximal start position. Distal protrusion 478 can move in the direction indicated by arrow 470 when system 202x moves base 204x in distal direction 209 (e.g., as indicated by arrow 471).

[0585] 77 shows a side cross-sectional view of system 202x as system 202x moves sensor 206x distally. The end portion of each arm 474 can include a recess facing the recess of the opposing arm 474. When the end portions of the arms 474 contact each other (and / or are proximate to each other), the recesses can form channels 473 configured to support sensor 206x against buckling forces. Sensor 206x can be at least partially disposed within each channel 473 formed by each set of arms 474. Thus, the system can include multiple concentric channels 473.

[0586] The first channel can have a central axis passing through a second channel disposed distally relative to the first channel (e.g., as shown in FIG. 77). The first channel can be formed by a first set of arms. The second channel can be formed by a second set of arms.

[0587] 74-77, system 202x can include multiple pairs of movable flexible arms 474. As system 202x moves sensor 206x from a proximal start position to a distal end position, system 202x can push each set of arms 474 apart to allow a curved portion of sensor 206x (e.g., angled portion 469) to pass through each set of arms 474. Each set of movable arms 474 can be released before the curved portion of sensor 206x reaches each set of movable arms 474.

[0588] A distal protrusion 478 (e.g., a portion of the applicator 475 and / or a portion of the sensor module support) can enter an area 479 between each set of movable arms 474 and flex the arms 474 to an extended state. The telescoping assembly 475 can move the protrusion distally relative to the movable arms 474 to extend each set of arms 474.

[0589] System 202x can include a first arm 474 and a wall coupled to base 204x. (The wall can be a surface of second arm 474.) A portion of sensor 206x can be secured between first arm 474 and the wall, such that first arm 474 is configured to resist a buckling force of sensor 206x when system 202x moves that portion of sensor 206x from a proximal position to a distal position.

[0590] The first arm 474 may be movably coupled to the base 204x such that at least a portion of the first arm 474 is configured to move (e.g., relative to the base 204x, relative to the housing of the applicator 475) to enable the system 202x to move a portion of the sensor 206x from a proximal position to a distal position.

[0591] At least one of the first arm 474 and the wall can form a channel 473. A portion of the sensor 206x can be at least partially disposed within the channel 473, such that the channel 473 is configured to resist buckling forces. The system 202x can include a distal protrusion 478 configured to move the first arm 474 away from the wall, allowing the system 202x to move a portion of the sensor 206x from a proximal position to a distal position. The portion of the sensor 206x can include a central axis. The first arm 474 can protrude in a direction within ±45 degrees of a perpendicular to the central axis.

[0592] The system 202x can include a removable applicator 475 having a telescoping assembly removably coupled to the base 204x. The telescoping assembly can include a first set of tongues configured to resist a first buckling force of a first section of the sensor 206x.

[0593] Each set of arms 474 can form a set of tongs. As used herein, "tongs" is used broadly. A tong can refer to a tool used to hold an object, where the tool is made of two pieces connected at one end, approximately in the middle, and / or any suitable location. The tongs can hold a sensor. In some embodiments, the tongs form a channel but may not contact the sensor unless the sensor begins to buckle slightly, such that buckling causes the sensor to contact the tongs.

[0594] The telescoping assembly can include a second set of tongues (e.g., second set of arms 474) configured to resist a second buckling force of the second section of sensor 206x. The telescoping assembly can include a distal protrusion 478 configured to move distally into a first region between the first set of tongues and into a second region between the second set of tongues to expand the first and second sets of tongues.

[0595] Sensor Grip-Clamp embodiment In some embodiments, the arms are oriented at angles within ±60 degrees of perpendicular to distal direction 209 (e.g., as shown in FIGS. 75-77). In some embodiments, arms 474y are oriented at angles within ±45 degrees of parallel to distal direction 209 (e.g., as shown in FIGS. 78-81).

[0596] 78-81 show a clamp 480 configured to support the sensor 206y as it moves distally. This support can prevent the sensor 206y from buckling when the sensor 206y is at least partially inserted into the host.

[0597] The clamp 480 can be configured to release after the distal end of the sensor 206y pierces the skin. Thus, the clamp 480 can support the sensor 206y against buckling forces until the system 202y overcomes the peak buckling force of sensor insertion. The clamp 480 restrains and / or supports at least a portion of the sensor 206y. As a result, the clamp 480 reduces the effective column length of the sensor 206y. As described herein, reducing the column length can dramatically increase the buckling resistance of the sensor 206y.

[0598] In some embodiments, the clamp 480 does not compress the sensor 206y, but instead allows the sensor 206y to move distally between a first arm 474y of the clamp 480 and a second arm 474y of the clamp 480. The first and second arms 474y can form a first channel 484 through which the sensor 206y can pass as the sensor 206y moves distally. Other embodiments prevent movement of the sensor (relative to the arm 474y) by tightening the sensor 206y until the clamp 480 releases the sensor 206y. In other words, the clamp 480 can apply a compressive force to the sensor 206y to help secure the sensor 206y.

[0599] The system 202y can include a second channel 483 configured to hold the first and second arms 474y of the clamp 480 in a compressed state until the first and second arms 474y reach a distal point where the second channel 483 widens or terminates. At this point, the first and second arms 474y can move away from each other toward their relaxed state. (The second channel 483 can be a lumen.)

[0600] In some embodiments, the clamp 480 is biased such that the lowest energy state of the clamp 480 is when the first arm 474y contacts the second arm 474y. The system 202y can include features (e.g., protrusions on the applicator 475y) configured to deflect the arms 474y away from each other, opening the clamp 480 (and moving it to a higher energy state). Thus, the arms 474y can flex outward due to input applied by a user.

[0601] By moving the first and second arms 474y away from each other, the structure supporting the curved section of the sensor 206y can move between the first and second arms 474y, allowing the sensor 206y to continue to press deeper into the person. (FIG. 74 shows the curved section 469.)

[0602] Figure 78 shows a perspective view of system 202y in a proximal start position. Figure 79 shows a side cross-sectional view of system 202y in a proximal start position. Clamp 480 supports sensor 206y against buckling forces and helps maintain at least a portion of sensor 206y in a generally straight configuration.

[0603] FIG. 80 shows a side cross-sectional view of system 202y in a position between the proximal start position and the distal end position. As shown in FIG. 80, clamp 480 has opened to allow system 202y to continue moving base 204y distally relative to distal portion 477y of applicator 475y. Sensor 206y has already pierced the skin. As a result, sensor 206y has typically already passed the peak buckling force of the sensor insertion cycle. Therefore, in some embodiments, it is no longer necessary to support sensor 206y with clamp 480 after sensor 206v pierces skin 352.

[0604] The applicator 475y can include a proximal portion 476y and a distal portion 477y. The proximal portion 476y can be configured to move (e.g., nest) relative to the distal portion 477y to move the sensor 206y and / or the base 204y distally toward the host's skin.

[0605] Figure 81 shows a side cross-sectional view of system 202y as it approaches a distal end position. In some embodiments, adhesive 210y (labeled in Figure 78) is configured to adhere to skin 352 (shown in Figure 81) at the distal end position.

[0606] 78-81, the system 202y can include a removable applicator 475y coupled to a base 204y. The base 204y can include a transmitter. The applicator 475y can have a pair of biasing members (e.g., a pair of tongs). The pair of biasing members can be a pair of arms 474y configured to move relative to one another and configured to resist buckling of at least a portion of the sensor 202y.

[0607] The pair of biasing members includes a first arm 474y coupled to a second arm 474y such that the arms 474y are configured to flex relative to one another. A portion of the sensor 206y can be disposed within a region between the pair of biasing members such that the pair of biasing members are configured to resist a buckling force of the sensor 206y (e.g., as shown in FIG. 79).

[0608] The pair of biasing members may be held in a compressed state by a channel 483 configured to allow the pair of biasing members to expand in response to moving the pair of biasing members distally far enough so that the distal end of the sensor 206y is disposed distally relative to a distal side 485 (labeled in FIG. 80) of the applicator 475y. The pair of biasing members may be a set of tongs.

[0609] The system 202y can include a first arm 474y and a second arm 474y extending distally. A portion of the sensor 206y can be disposed between the first arm 474y and the second arm 474y, such that the first and second arms 474y are configured to resist a buckling force of the sensor 206y. The first and second arms 474y can be disposed within a channel 483 of the system 202y. The channel 483 can hold the first and second arms 474y in a compressed state. The channel 483 can be configured such that moving the first and second arms 474y distally causes the first and second arms 474y to spread apart from each other, facilitating the system 202y moving a portion of the sensor 206y from a proximal position to a distal position.

[0610] The system 202y can include a first arm 474y and a second arm 474y extending distally. The first and second arms 474y can be configured to have a closed state in which the first and second arms 474y resist a buckling force of a portion of the sensor 206y disposed between the first and second arms 474y. The first and second arms 474y can be configured to have an open state to allow the system 202y to move the portion of the sensor 206y from a proximal start position to a distal end position.

[0611] mitotic tube 82-84 show a system 202z that includes a guide member, such as a tube 491. The tube 491 can support the sensor 206z as the sensor 206z is inserted into tissue and prevent the sensor 206z from buckling.

[0612] The system 202z comprises a channel (e.g., of a tube 491) having a first side and a second side (formed by a slot 492) configured to at least partially separate in response to the system 202z moving the sensor 206z from a proximal position (e.g., as shown in FIG. 83) to a distal position (e.g., as shown in FIGS. 82 and 84).

[0613] Figure 82 shows a perspective view of system 202z in a distal position (e.g., with the distal end of sensor 206z positioned further distally than applicator 475z). Figure 83 shows a side cross-sectional view of system 202z in a proximal starting position (e.g., prior to sensor deployment). Figure 84 shows a partial view from the perspective view shown in Figure 82.

[0614] 82-84, the system 202z includes a tube 491 through which at least a portion of the sensor 206z can move as the sensor 206z is actuated from a proximal start position (e.g., as shown in FIG. 83) to a distal end position (e.g., as shown in FIGS. 82 and 84). The tube 491 can resist buckling forces on the sensor 206z and help maintain the portion of the sensor 206z in a generally straight configuration. An adhesive 210z can couple the distal side 207z of the base 204z to the host's skin.

[0615] The tube 491 may be a feature of the distal portion 477z of the nested assembly. For example, a single piece may be molded. This piece may include the tube 491 and other features of the distal portion 477z.

[0616] Tube 491 may be a separate component coupled to distal portion 477z or any other portion of the nested assembly, hi some embodiments, distal portion 477z includes an arm that couples tube 491 to distal portion 477z.

[0617] The tube 491 can support at least a majority of the length of the sensor 206z between (A) the sensor 206z module and / or the base 204z and (B) the distal side 490 of the applicator 475z. The base 204z can include a transmitter (e.g., as shown in other embodiments).

[0618] The applicator 475z can include a telescoping assembly (e.g., applicator 475z). The tube 491 can be coupled to a distal portion 477z of the telescoping assembly. The sensor 206z can be coupled to a proximal portion 476z of the telescoping assembly such that moving the distal portion 476z distally relative to the distal portion 477z moves a portion of the sensor 206z through a channel of the tube 491.

[0619] The tube 491 can include a slot 492 oriented approximately parallel to a central axis of the tube 491. The slot 492 can extend from the distal end of the tube 491 to the proximal end of the tube 491. In some embodiments, the slot 492 does not necessarily extend from the distal end to the proximal end of the tube 491, but extends from at least a distal portion to a proximal portion of the tube 491.

[0620] Slot 492 can allow bent portion 469 of sensor 206z to move distally (through slot 492) when a portion of sensor 206z moves distally within the channel of tube 491. In some embodiments, slot 492 is held in an at least partially closed state until slot 492 opens (e.g., by partially opening tube 491, breaking the linkage between the sides of slot 492) by moving bent portion 469 through slot 492.

[0621] Tube 491 may be manufactured using any suitable process. Tube 491 may be formed by an extrusion process (having a hoop-shaped cross-section to form a channel). The side of tube 491 may be cut (e.g., by a laser and / or by a mechanical cutting blade) to form slots 492. The cut may extend from the distal end of tube 491 to the proximal end of tube 491. In some embodiments, only a portion of the length of tube 491 is cut.

[0622] The sides of the tube 491 can be perforated to allow the system 202z to move the bent portion 469 of the sensor 206z distally (by breaking the area of ​​the tube 491 weakened by the perforations). The tube 491 can be formed by creating a flat sheet and then rolling the sheet into a tubular shape. In this configuration, the ends of the tubular shape can overlap or gaps can be created. The tube 491 can be made from a polymer (e.g., polyimide), metal foil, silicone, and / or any suitable material.

[0623] The system 202z may include a cutting edge (e.g., a blade made from metal or plastic) configured to cut the tube 491 when the system 202z moves the sensor 206z distally, allowing the bent portion 469 of the sensor 206z to move distally through a cutting path of the cutting edge.

[0624] The system 202z can include a tube 491 coupled to the base 204z. The tube 491 can include a slot 492 from a proximal portion of the tube 491 to a distal portion of the tube 491. The tube 491 can be configured to resist buckling forces of the sensor 206z. The slot 492 can be configured to allow a first portion (e.g., 469) of the sensor 206z to move distally outside of the tube 491 while allowing a second portion of the sensor 206z to move distally inside the tube 491.

[0625] The system 202z can include a removable applicator 475z coupled to the base 204z. The applicator 475z can couple a tube 491 to the base 204z, such that the system 202z is configured to pierce the skin with the distal end of the sensor 206z by moving the base 204z distally relative to the tube 491. The tube 491 can include a first side of a slot 492 and a second side of the slot 492. The first and second sides of the slot 492 can be coupled together by a linkage 493 configured to be pried apart in response to moving the first portion of the sensor 206z distally. The tube 491 can be at least 4 millimeters long, as measured along a central axis of the tube 491.

[0626] The system 202z can include an applicator 475z having a channel 494 configured to resist buckling forces of the sensor 206z. A distal portion of the sensor 206z can be disposed inside the channel 494. A proximal portion of the sensor 206z can be disposed outside the channel 494. An intermediate portion of the sensor 206z can connect the distal and proximal portions of the sensor 206z. The intermediate portion of the sensor 206z can be disposed within a slot 492 of the channel 494.

[0627] The slot 492 can be configured to allow an intermediate portion of the sensor 206z to move distally through the slot 492 when the sensor 206z moves from a proximal position to a distal position. The channel 494 can include a distally oriented central axis such that the channel 494 is configured to guide the distal portion of the sensor 206z toward the skin. The slot 492 can be oriented radially outward from the central axis.

[0628] The slot 492 can include at least one linkage 493 coupling a first side of the slot 492 to a second side of the slot 492. The at least one linkage can be configured to break in response to moving an intermediate portion of the sensor 206z distally through the slot 492. In some embodiments, the slot 492 is configured to expand (e.g., widen) in response to moving an intermediate portion of the sensor 206z distally through the slot 492.

[0629] Any of the features described in the context of Figures 54-84 may be applied to all aspects and embodiments identified herein. For example, the embodiments described in the context of Figures 54-84 may be combined with the embodiments described in the context of Figures 1-53 and Figures 85-126. Furthermore, any of the features of one embodiment may be independently combinable in some way, partially or wholly, with other embodiments described herein (e.g., one, two, or more embodiments may be combinable in whole or in part). Furthermore, any of the features of one embodiment may be optional with respect to other aspects or embodiments. Any aspect or embodiment of a method may be performed by a system or device of another aspect or embodiment, and any aspect or embodiment of a system may be configured to perform a method of another aspect or embodiment.

[0630] Additional applicators Measuring analyte data often involves inserting an analyte sensor into subcutaneous tissue. A user can actuate an applicator to insert the analyte sensor into its functional location (e.g., within the host's tissue). This percutaneous insertion can lead to incomplete sensor insertion, improper sensor insertion, and unnecessary pain.

[0631] When a sensor is inserted into a person, the sensor may buckle due to resistance to sensor insertion from the skin and subcutaneous tissue. For example, the sensor may buckle when the distal tip of the sensor attempts to pierce the skin and / or when the sensor is moved deeper into the person after the distal tip has pierced the skin. Many systems solve this problem by using a needle to aid in inserting the sensor into the person. However, needles can cause long-term patient discomfort and are therefore typically removed (while leaving the sensor at least partially within the person).

[0632] The use of needles has several drawbacks. For example, retracting the needle may require extra steps, time, and / or hardware. Placing the sensor inside or next to the needle creates a larger wound and therefore a larger wound response in vivo. Therefore, in some cases, there is a need for systems and methods that eliminate the need to use needles to insert sensors into a person. Many embodiments described herein and / or incorporated by reference allow a user to insert a sensor into tissue without the use of a needle.

[0633] Many embodiments do not include a needle. However, all of the embodiments described herein can optionally use a needle to facilitate insertion of the sensor into tissue. In some embodiments, the sensor comprises a needle and the additional features described herein.

[0634] Some embodiments rely on distal movement of the applicator in a direction generally parallel to the central axis of the sensor to insert the sensor into the person's tissue. All of the applicators described herein and / or incorporated by reference may be used with all of the systems and features described herein and / or incorporated by reference.

[0635] Preload spring 85-88 show an applicator 475aa including a distal portion 477aa and a proximal portion 476aa. The proximal portion 476aa can hold the base 204aa in a proximal starting position. The base 204aa can be unlatched by moving the proximal portion 476aa distally, allowing the compression spring 513 to push the base 204aa and sensor 206aa distally. A transmitter can be coupled to the base 204aa.

[0636] The spring 513 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0637] 85 shows a perspective view of applicator 475aa in a proximal start position. Applicator 475aa is configured such that moving proximal portion 476aa distally (e.g., as shown by arrow 512) relative to distal portion 477aa unlatches base 204aa from proximal portion 476aa, allowing compression spring 513 to move base 204aa and sensor 206aa distally (e.g., into the host's skin 352).

[0638] 86 shows a side cross-sectional view of system 202aa in a proximal start position. In some embodiments, spring 513 is in a compressed state when system 202aa is in the proximal start position. In some embodiments, moving proximal portion 476aa of applicator 475aa distally relative to distal portion 477aa compresses spring 513, providing a force that moves base 204aa and sensor 206aa distally. Arrow 208 indicates the proximal direction. Arrow 209 indicates the distal direction.

[0639] 87 shows a side cross-sectional view of system 202aa as proximal portion 476aa releases base 204aa in response to proximal portion 476aa moving distally relative to distal portion 477aa. Proximal portion 476aa can move distally (e.g., as indicated by arrow 514) relative to distal portion 477aa, causing flex arms 516 to be pushed radially outward due to interference with actuation feature 517 of distal portion 477aa. Flex arms 516 and / or actuation feature 517 can include ramps 518, 519 configured to push flex arms 516 radially outward (or radially inward) in response to proximal portion 476aa moving distally relative to distal portion 477aa. Arrows 522, 523 indicate arms 516 moving radially outward.

[0640] Arm 516 and / or other surfaces of proximal portion 476aa (e.g., proximally-facing surface 525 labeled in FIG. 86 ) can resist the distal force of spring 513. In other words, arm 516 can hold base 204aa in a proximal start position and / or prevent base 204aa from moving to a distal end position (e.g., as shown in FIG. 88 ) until arm 516 and / or other surfaces of proximal portion 476aa release base 204aa (e.g., separate from base 204aa). In FIG. 86 , arm 516 prevents base 204aa from moving distally. FIG. 87 shows arms 516 that flex radially outward and separate from base 204aa, allowing base 204aa to move distally (e.g., as indicated by arrow 526) relative to proximal and distal portions 476aa, 477aa of applicator 475aa.

[0641] FIG. 88 shows a side cross-sectional view of the base 204aa after it has been moved distally. In FIG. 88, the base 204aa is in a distal end position (e.g., such that the sensor 206aa is at least partially disposed within the host tissue 352). As shown by the progression from FIG. 86 to FIG. 87 to FIG. 88, the base 204aa moves a first distance in response to the proximal portion 476aa moving a much smaller distance. The increased movement of the proximal portion 476aa can enable a more favorable insertion experience because the user perceives the sensor insertion depth as being less than is actually the case (because the distance of movement of the proximal portion 476aa is perceived as equal to the sensor insertion depth).

[0642] The adhesive 210aa can bond the distal side 207aa of the base 204aa to the host's skin 352. The adhesive 210aa can have any suitable shape.

[0643] 85-88, a nested assembly (e.g., applicator 475aa) can be coupled to base 204aa. The nested assembly can include a distal portion 477aa, a proximal portion 476aa slidably coupled to distal portion 477aa, and a spring 513 compressed between proximal portion 476aa and base 204aa. Proximal portion 476aa can releasably secure sensor 206aa in a first proximal start position such that spring 513 is configured to push base 204aa and sensor 206aa distally in response to system 202aa unlatching base 204aa from proximal portion 476aa.

[0644] Proximal portion 476aa can include a latch configured to releasably secure base 204aa at the second proximal start position. The latch can include arm 516, first bevel 518, second bevel 519, actuation feature 517, proximally-facing surface 525, and / or any suitable feature configured to releasably secure base 204aa at a position proximal to the distal end position of base 204aa. The latch can be configured to release base 204aa in response to moving proximal portion 476aa distally relative to distal portion 477aa, allowing spring 513 to push base 204aa and sensor 206aa distally.

[0645] As described above, a relatively small movement of the applicator 475aa can result in a larger movement of the base 204aa and / or the sensor 206aa. The sensor 206aa can be configured to move along a first path from a first proximal start position to a first distal end position (e.g., as shown by the progression from FIG. 86 to FIG. 88). The proximal portion 476aa can be configured to move along a second path from a third proximal start position to a third distal end position (e.g., as shown by the progression from FIG. 86 to FIG. 88). The first path of the sensor 206aa may be at least 20% longer and / or at least 40% longer than the second path of the proximal portion 476aa. The system 202aa can be configured to move the sensor 206aa a first distance in response to the proximal portion 476aa moving a second distance that is at least 50 percent shorter than the first distance.

[0646] The system 202aa can include an arm 516 configured to release the base 204aa and / or the sensor 206aa to allow the base 204aa and / or the sensor 206aa to move distally relative to the proximal portion 476aa and / or the distal portion 477aa of the nested applicator 475aa. The proximal portion 476aa can include a distally projecting arm 516 having an inward protrusion (e.g., a portion of the bevel 518) that passes through a hole 528 (labeled in FIG. 86 ) in the distal portion 477aa. The hole 528 can be a through hole or a partial hole (e.g., a recess). The inward protrusion can be coupled to the base 204aa to secure the sensor 206aa in a first proximal starting position.

[0647] The system 202aa can be configured such that moving the proximal portion 476aa distally relative to the distal portion 477aa causes the distally projecting arms 516 to deflect outward, releasing the inward projections from the base 204aa and allowing the springs 513 to press at least a portion of the sensor 206aa into the skin 352.

[0648] The system 202aa can be configured to move the sensor 206aa a first distance in response to moving the proximal portion 476aa a second distance to unlatch the base 204aa. The first distance can be at least twice as long as the second distance, whereby the system 202aa is configured to magnify the first movement of the proximal portion 476aa into a larger second movement of the sensor 206aa and / or the base 204aa. The distal portion 477aa can include a channel 529 (labeled in FIG. 87 ) configured to orient the base 204aa when the spring 513 pushes the base 204aa distally.

[0649] Twist Tuck Some applicators move the sensor distally in response to distal movement of a portion of the applicator. However, other applicators can move the sensor into tissue in response to non-distal movement. For example, an applicator can move the sensor distally in response to rotation of a portion of the applicator. The rotation can be about a central axis of the applicator. Some applicators move the sensor distally in response to rotation of a dial. The dial can be part of the outer body of the applicator or can rotate independently of the outer body.

[0650] 89-93 illustrate an embodiment in which rotating the outer housing 532 relative to the base 204ab releases the compression spring 538, driving the sensor 206ab into the host's skin. The outer housing 532 may be a dial removably coupled to the base 204ab. The spring 538 may be a conical spring 538 to allow for a shorter compression height.

[0651] Spring 538 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0652] First housing 532 may be rotatably coupled to base 204ab. Second housing 533 may be coupled to sensor 206ab. Spring 538 may be compressed between a proximal end of first housing 532 and sensor 206ab. Spring 538 may be configured to urge second housing 533 and sensor 206ab distally relative to base 204ab and first housing 532 in response to rotating first housing 532 relative to base 204ab.

[0653] 89 illustrates a perspective view of system 202ab, which can move sensor 206ab distally into the skin in response to a user rotating first housing 532 of applicator 475ab relative to adhesive 210ab (e.g., when adhesive 210ab is coupled to the skin).

[0654] System 202ab inherently prevents inadvertent deployment of sensor 206ab because it is unlikely to rotate first housing 532 relative to adhesive 210ab and / or base 204ab unless base 204ab is coupled to the skin by adhesive 210ab. For example, if system 202ab is not coupled to the skin by adhesive 210ab, rotating first housing 532 also rotates adhesive 210ab, sensor 206ab, and base 204ab. In some embodiments, this rotation does not deploy sensor 206ab because deployment of sensor 206ab typically requires rotating first housing 532 relative to adhesive 210ab and / or base 204ab.

[0655] 90 shows a perspective view of at least a portion of the base 204ab. A transmitter 211ab can be coupled to the base 204ab. The transmitter 211ab can include a battery and a wireless communication system configured to communicate with a remote device. An adhesive 210ab can couple the base 204ab to the host's skin.

[0656] 91 shows a top cross-sectional view of system 202ab. First housing 532 can be configured to rotate (e.g., as indicated by arrow 541) relative to second housing 533 and base 204ab.

[0657] 92 is a side perspective cross-sectional view of system 202ab with sensor 206ab in a proximal start position. As shown in FIG. 92, spring 538 may be in a compressed state (e.g., a high-energy state) when sensor 206ab is in the proximal start position. In some embodiments, spring 538 is in an extended state (e.g., a high-energy state) when sensor 206ab is in the proximal start position.

[0658] Rotating first housing 532 relative to base 204ab and / or adhesive 210ab causes spring 538 to move second housing 533 and / or sensor 206ab distally to a distal end position (e.g., as shown in FIG. 93), which is a side perspective cross-sectional view of system 202ab.

[0659] 89-93, first housing 532 can be rotatably coupled to base 204ab. Spring 538 can be compressed between a portion of first housing 532 and sensor 206ab. System 202ab can be configured to unlatch sensor 206ab from first housing 532 in response to rotating first housing 532 relative to base 204ab and / or adhesive 210ab, allowing spring 538 to move sensor 206ab distally.

[0660] The first housing 532 can include a first central axis (e.g., an axis of rotation of the first housing 532). The sensor 206ab can include a portion configured to pierce the skin. The portion can include a second central axis. The first central axis can be oriented within ±20 degrees of parallel to the second central axis.

[0661] Spring 538 may be a helical and / or conical spring configured to expand distally to move sensor 206ab distally, hi some embodiments, spring 538 is any of the types of springs described herein and / or incorporated by reference.

[0662] The base 204ab can include a first portion 534 and a second portion 535. The applicator 475ab can be configured to be detached from the second portion 535 of the base 204ab (e.g., while the second portion 535 is coupled to the skin by the adhesive 210ab). The applicator 475ab can retain the first portion 534 of the base 204ab (e.g., such that the first portion 534 of the base 204ab remains within the applicator 475ab, while the second portion 535 of the base 204ab remains coupled to the skin after the applicator 475ab is separated from the second portion 535 of the base 204ab).

[0663] The transmitter 211ab can be removably coupled to at least a portion of the base 204ab. In some embodiments, the transmitter 211ab is integrated into the base 204ab. In some embodiments, the transmitter 211ab is part of the base 204ab.

[0664] First housing 532 may be rotatably coupled to base 204ab. Second housing 533 may be coupled to sensor 206ab. Spring 538 may be compressed between a proximal end of first housing 532 and sensor 206ab such that spring 538 is configured to urge second housing 533 and sensor 206ab distally relative to base 204ab and first housing 532 in response to rotating first housing 532 relative to base 204ab.

[0665] The second housing 533 can be disposed within an interior region of the first housing 532. The first adhesive 210ab can be configured to secure the base 204ab to the skin and allow the first housing 532 to rotate relative to the base 204ab and relative to the second housing 533.

[0666] The first housing 532 can include a first central axis (e.g., an axis of rotation). The sensor 206ab can include a portion configured to pierce the skin. The portion can include a second central axis. The first central axis can be oriented within ±10 degrees and / or ±45 degrees of parallel to the second central axis. The spring 538 can be a conical spring 538 configured to expand in response to rotating the first housing 532 relative to the base 204ab.

[0667] System 202ab can include a mechanical interlock between first housing 532 and second housing 533. The mechanical interlock can be configured to releasably hold spring 538 in a compressed state such that sensor 206ab is in a proximal start position (e.g., as shown in FIG. 92).

[0668] The mechanical interlock can include a first protrusion 542 of the first housing 532 interfering with distal movement of a second protrusion 543 of the second housing 533. The mechanical interlock can be configured such that rotating the first protrusion 542 relative to the second protrusion 543 causes the second protrusion 543 to drop distally away from the first protrusion 542, thereby allowing the second housing 533 to move distally relative to the first housing 532.

[0669] The first protrusion 542 can be oriented radially outward, and the second protrusion 543 can be oriented radially inward. (In some embodiments, the first protrusion 542 is oriented radially inward, and the second protrusion 543 is oriented radially outward.) The mechanical interlock can include a ridge 545 and a groove 546 configured such that rotation of the first housing 532 relative to the base 204ab requires exceeding a torque threshold to move the ridge 545 out of the groove 546. The ridge 545 and the groove 546 are shown in FIG. 93. In FIG. 92, the ridge 545 engages with the groove 546, but the ridge 545 and the groove 546 are not visible.

[0670] In some embodiments, system 202ab includes a safety feature configured to insert sensor 206ab and / or retract sensor 206ab in response to a distal force relative to first housing 532 and a rotation of first housing 532 relative to adhesive 210ab. Thus, system 202ab can be configured to insert sensor 206ab and / or retract sensor 206ab in response to a combination of a distal "push" and a rotational movement (e.g., applied during the "push").

[0671] 91 , system 202ab can include a rotation-stop interface 547 between second housing 533 and base 204ab. Interface 547 can include a ridge 548 disposed within a groove 549 configured to limit rotation of second housing 533 relative to base 204ab during rotation of first housing 532 relative to base 204ab. Interface 547 can be oriented from a proximal portion of second housing 533 to a distal portion of second housing 533.

[0672] Scotch York Some systems convert rotational motion into linear motion to insert the sensor. The system can hold the sensor in a distal position (e.g., so that the sensor is fully inserted into the tissue) while other parts of the system move proximally (e.g., to separate the applicator from the sensor). Thus, the system can ensure that full sensor insertion is not compromised by removal of the applicator.

[0673] Figure 74 shows the base 204x and the sensor 206x. In Figures 94-99, the base 204x and the sensor 206x are removably coupled to the applicator 475ac.

[0674] The applicator 475ac is configured to insert the sensor 206x into the skin of the host. The applicator 475ac can be configured to convert rotational motion (e.g., caused by a spring force) into linear motion that inserts the sensor 206x into the skin. The applicator 475ac can prevent the sensor 206x from moving distally until a user presses a button 567 (e.g., an actuation member). The button 567 can release the spring force, causing the rotational motion that the applicator 475ac converts into a generally linear motion that inserts the sensor 206x.

[0675] The applicator 475ac can include a button 567 configured to release a torsion spring 568. The torsion spring 568 creates a rotational motion that the system 202ac converts into a linear motion to move the sensor 206x distally into the skin.

[0676] Spring 568 may be a torsion spring, a leaf spring, a helical spring, a conical spring, a compression spring, an extension spring, a molded body, a flex arm, any type of spring described herein, any type of spring incorporated by reference, and / or any other suitable type of spring.

[0677] The system 202ac may include two bodies 557, 558 that can move distally together. The two bodies 557, 558 may be arms.

[0678] Once the sensor 206x reaches its distal end position, the first body 557 moves proximally (to separate the first body 557 from the base 204x and / or sensor 206x) while the second body 558 holds the sensor assembly distally (to prevent the base 204x and / or sensor 206x from moving proximally with the first body 557).

[0679] In some embodiments, the first adhesive 210x couples the sensor assembly to the skin. The second adhesive 554 couples the first body 557 to the sensor assembly (e.g., a wearable analyte monitor). The second body 558 prevents the first adhesive 210x from having to resist the second adhesive 554 when the first body 557 moves proximally. In other words, a substantial proximal force can be applied to the first adhesive 210x (causing the first adhesive 210x to separate from the skin) by moving the first body 557 proximally without the second body 558 blocking the proximal movement of the sensor assembly.

[0680] In some embodiments, a retention feature (e.g., a movable arm, a clamping arm, a snap fit) couples the first body 557 to the sensor assembly. The second body 558 prevents the first adhesive 210x from having to resist the retention feature when the first body 557 moves proximally. The unique shape allows the first body 557 to move proximally while the second body 558 presses down on the sensor assembly (to a distal position).

[0681] 94 shows a side view of applicator 475ac with sensor 206x at a distal end location (e.g., within the host's tissue). Applicator 475ac can move sensor 206x distally in response to a user actuating (e.g., pressing) button 567.

[0682] 95-98 show perspective cross-sectional views of system 202ac at various moments in the insertion cycle of sensor 206x. A portion of first housing 551 is hidden in FIGS. 95-98 so that internal features can be clearly viewed.

[0683] A spring 568 (shown in FIG. 99) located inside the rotating housing 552 applies a torsional force between the rotating housing 552 and the first housing 551. A protrusion 566 prevents rotational movement of the rotating housing 552 relative to the first housing 551. FIG. 95 shows the protrusion 566 located in a channel of the rotating housing 552 to prevent rotational movement of the rotating housing 552.

[0684] 96, the user has already pressed button 567 (shown in FIG. 94) to move rotating housing 552 away from protrusion 566. As a result, protrusion 566 is no longer in the channel of the rotating housing, and therefore protrusion 566 no longer obstructs the rotational movement of rotating housing 552 relative to first housing 551. As a result, rotating housing 552 rotates relative to first housing 551, causing first body 557 and second body 558 to move distally (e.g., as shown by arrow 570). The distal movement of first body 557 and / or second body 558 moves sensor 206x distally (e.g., as shown in FIG. 97).

[0685] 97 shows sensor 206x in a distal end position. Continued rotation of rotating housing 552 relative to first housing 551 moves first body 557 proximally (e.g., as indicated by arrow 571) but typically does not (at least immediately or initially) move second body 558 proximally due to the branched portion 563 (e.g., the proximally curved portion) of second channel 562 (shown in FIG. 100). As a result, second body 558 blocks proximal movement of base 204x and / or sensor 206x while first body 557 proximally decouples from base 204x and / or sensor 206x. FIG. 98 shows the system 202ac after the first body 557 has been moved proximally relative to the base 204x and the second body 558 to separate the first body 557 from the base 204x and / or the sensor 206x.

[0686] Fig. 99 shows a side view of a portion of system 202ac. First housing 551 is hidden in Fig. 99. Fig. 99 shows the same state as shown in Fig. 98.

[0687] FIG. 100 shows a side view of the second body 558. The bifurcated portion 563 of the second channel 562 is clearly visible in FIG. 100. In some embodiments, the second channel 562 includes a portion that curves more proximally than an associated portion of the first channel 561 such that when the first body 557 moves proximally relative to the base 204x, the sensor 206x, and / or the second body 558, the first body 557 is configured to impede proximal movement of the base 204x and / or the sensor 206x. A protrusion 564 on the rotating housing 552 identifies the associated portion.

[0688] 94-100, a removable applicator 475ac can be coupled to the base 204x. The applicator 475ac can include a rotating housing 552 configured to urge the first and second bodies 557, 558 distally. A second adhesive 554 can couple the base 204x to the first body 557. The second body 558 can be configured to hold the base 204x in a distal position while the first body 557 moves proximally to separate the first body 557 from the base 204x.

[0689] The applicator 475ac can include a locking mechanism configured to prevent distal movement of the first body 557 and / or the second body 558 until the locking mechanism is disengaged. The locking mechanism can include a button 567 and / or a protrusion 566 configured to prevent rotational movement of the rotating housing 552.

[0690] The applicator 475ac can include a locking mechanism configured to prevent rotational movement of the rotating housing 552. The system 202ac can be configured to disengage the locking mechanism in response to linear movement of the rotating housing 552 (e.g., in response to actuation of the button 567).

[0691] System 202ac can include a removable applicator 475ac coupled to base 204x. Applicator 475ac can include a first housing 551, a second housing 552 rotatably coupled to first housing 551, and a torsion spring 568. (Some embodiments use other types of springs.) Torsion spring 568 can have a first portion coupled to first housing 551 and a second po...

Claims

1. 1. A sensor system for measuring an analyte concentration, the sensor system comprising: a base having a distal side configured to face toward the skin of the host, the base including a transmitter configured to transmit analyte measurement data; a first adhesive coupled to the base and configured to couple the base to the skin; a transcutaneous analyte measurement sensor coupled to the base; a curved channel coupled to the base, the curved portion of the sensor being positioned within the curved channel, the curved channel being configured to resist a buckling force of the curved portion when the system moves the curved portion from the proximal position to the distal position; A sensor system comprising:

2. The sensor system of claim 1 , further comprising a spring configured to move the curved portion from the proximal position to the distal position.

3. The sensor system of claim 2 , wherein the spring is in a flexed state.

4. The sensor system of claim 2 , wherein the spring is a torsion spring.

5. 5. The system of claim 4, further comprising an interlock configured to releasably retain the leaf spring in the flexed state, the sensor system configured to move the curved portion from the proximal position to the distal position in response to releasing the interlock.

6. 6. The sensor system of claim 5, further comprising a tab coupled to the interlock, wherein the sensor system is configured, upon actuation of the tab, to disengage the interlock to allow the spring to move the curved portion from the proximal position to the distal position.

7. The sensor system of claim 1 , further comprising a removable applicator having the curved channel, the applicator configured to facilitate moving the curved portion from the proximal position to the distal position.

8. The sensor system of claim 7 , wherein the applicator is coupled to the base.

9. The sensor system of claim 1 , wherein the curved channel further comprises a wall configured to resist buckling forces.

10. The sensor system of claim 1 , wherein the curved channel is configured to transmit force to a distal end of the sensor.

11. The sensor system of claim 1 , wherein the curved characteristics of the curved channel define a primary direction of buckling force upon insertion.

12. The sensor system of claim 11 , wherein the buckling force pushes the sensor toward a bottom of the curved channel.

13. The sensor system of claim 1 , wherein the transmitter is integrally molded into the base.

14. The sensor system of claim 1 , wherein the transmitter includes a power supply for powering the sensor, a signal processing component, a data storage component, and a communication module.

15. The sensor system of claim 1 , wherein the transmitter is configured to communicate with a receiver.

16. The sensor system of claim 15 , wherein the transmitter is configured to communicate with the receiver via Bluetooth® communication.

17. The sensor system of claim 1 , wherein the sensor is configured to be inserted into the skin of a host without the use of a needle.

18. The sensor system of claim 1 , wherein the sensor comprises a sharp tip.

19. The sensor system of claim 1 , wherein the channel is a guide member.

20. The sensor system of claim 1 , wherein the bona fide transdermal analyte measurement sensor is a glucose sensor.