Variable Dose Syringe
The plunger rod assembly with fine and coarse dose settings and independent needle safety addresses the challenges of precise drug delivery and safety in syringes, offering accurate dosage control and safe handling.
Patent Information
- Application Number
- JP2022527852
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-11-14
- Filing Date
- 2020-11-13
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2040-11-13
AI Technical Summary
Conventional syringes and pen injectors face challenges in accurately and precisely delivering microliter-sized drug doses, leading to inaccuracy and imprecision, and require multiple SKUs for different dosages, increasing costs and logistical complexity. They also lack features for needle safety and user-friendly dosage settings, especially for potent drugs and home use.
A plunger rod assembly with fine and coarse dose settings, incorporating separate or combined dials for precise dosage control, and a needle safety mechanism that activates independently of the dose volume, ensuring accurate delivery and minimizing drug exposure.
The solution provides precise dosage control from microliters to milliliters, reduces the need for multiple SKUs, and ensures safe needle handling, enhancing user safety and reducing waste by preventing reuse of unused medication.
Smart Images

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Abstract
Description
[Technical Field]
[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This application claims priority to and the benefit of U.S. Provisional Patent Application No. 62 / 935,193, filed November 14, 2019, the disclosure of which is incorporated herein by reference in its entirety.
[0002] [Technical field] This disclosure relates generally to drug delivery devices, and more particularly to metered dosage systems for prefilled syringes. [Background technology]
[0003] Syringes are widely used for administering injectable medications or fluids. They typically consist of a cylindrical barrel with a smooth inner surface to allow an elastomeric plunger stopper to be axially manipulated with a plunger rod. There are several types of syringes designed with the intended application in mind. Some syringes can be used to store injectable medications for several months, including syringes that contain data specific to the syringe's construction and do not contain lubricants. Syringes designed for storing medications are called prefillable syringes (PFS). Some syringes have a needle pre-attached to the syringe barrel, while others have a Luer Lock feature that connects to other delivery conduits, such as catheters and injection ports. Some syringe barrels have dosage markings printed on their exterior surfaces to provide users with a reference for setting the dosage, which is a conventional dosage measurement.
[0004] Dosage measurement allows for the administration of different amounts of a drug (e.g., drug dosing) for a given concentration of a drug by simply changing the volume of that drug. The need to administer different drug dosages (i.e., dosage measurement) is driven by many factors; for example, in oncology dosing therapy, it is useful to administer an amount of drug depending on the patient's weight. Another illustrative example is the injection of insulin, where the amount of insulin injected is based on the patient's blood glucose level.
[0005] Most drugs have a therapeutic window that maximizes their effectiveness. Amounts of drug administered below the therapeutic window may result in suboptimal drug effects, while amounts above the therapeutic window may expose patients to the drug's toxic effects. Accuracy and precision of drug dosage delivery are important to ensure optimal therapeutic outcomes with a given drug. Accuracy and precision of drug delivery are more challenging with submilliliter injection volumes. Submilliliter injections are appropriate for applications involving the treatment of pediatric patients, injection of highly potent therapeutic agents (e.g., insulin, oncology agents, immunotherapy, etc.), and target organ delivery (e.g., the eye, brain, inner ear, etc.).
[0006] Concurrent with the need for accurate and precise dosing is the need to minimize the number of stock-keeping units (SKUs) that pharmaceutical manufacturers must maintain in order to streamline supply chain logistics for drugs that must be measured for the aforementioned reasons. Each drug SKU has common costs associated with formulation development, regulatory approval, testing, manufacturing, storage, customer support, etc. Maintaining multiple SKUs of the same drug will have inherent redundancy that results in increased costs of providing medication to patients.
[0007] Conventional dosage measurement using current syringes is limited by the range of volumes for a given syringe and is inaccurate and imprecise for dispensing microliter-sized volumes. Conventional syringes are also limited in the availability of features to maximize the safety of drug administration, such as needlestick protection, drug counterfeiting protection, and prevention of abuse of unused drugs.
[0008] Injection devices must also incorporate a needle safety to mitigate the risk of needlestick injuries, to comply with administration regulations, or to ensure suitability in a home setting. Activation of the needle safety should occur independently of the injected dose volume. It is also important to prevent premature activation of the needle safety mechanism, which could result in missed or underdosed doses.
[0009] Pen injectors are widely used for injecting insulin. They allow users to select the dosage (injection volume) and self-administer the medication. Several limitations limit the wide applicability of pen injectors: a) they incorporate cartridges (not syringes), b) they require specialized needles for injection, c) they are designed for multiple use, d) the maximum practically deliverable injection volume is approximately 1 mL, and e) they do not incorporate a needle safety.
[0010] In any injectable drug dose delivery system that includes a cylindrical barrel (syringe or cartridge), the volume of the injected dose is determined by the difference between the start dose position of the plunger stopper and the end dose position of the plunger stopper (see FIG. 1). Errors in the dose volume arise from variability in setting the aforementioned start dose position and / or from variability resulting from the end dose position. This variability ultimately leads to inaccuracy and imprecision in the final dose volume delivered. Sources of this variability include user error and / or tolerances of the components of the delivery system.
[0011] Conventional dosage delivery systems can deliver a range of volumes when manually operated. All conventional injection dosage delivery systems employ the same volume resolution for setting the dosage volume, regardless of whether the dosage volume is selected at the low or high end of the delivery volume range. As a result, devices with high injection volume resolution (e.g., pen injectors) either limit the maximum delivery volume or result in imprecision and inaccuracy in low volumes (microliter range) (e.g., conventional hypodermic and prefillable syringes). Simply increasing the volume range of such higher resolution devices would increase the overall size of the device to the point where it becomes impractical to use. Similarly, a large-volume device (e.g., a syringe with a maximum volume of 5 milliliters) would be inappropriate for delivering small volumes (e.g., a 10-microliter dosage). When employed, there is a trade-off between dosage volume resolution and volume range in the prior art for manually operated drug delivery systems.
[0012] The outer diameter of the elastomeric plunger stopper is slightly larger than the inner diameter of the syringe, which helps create a seal between prefilled and non-prefilled syringes. After insertion into the syringe, the plunger stopper continues to exert a radially outward force against the inner diameter of the syringe barrel during storage, creating a "stiction." After prolonged storage of this prefilled syringe, additional effort is required to overcome the stiction in order for the plunger stopper to free itself from its original position. The axially applied user force is commonly known as the "sliding yield" force. Overcoming stiction with the sliding yield force results in a temporary loss of user control of plunger rod movement. The consequences of this loss of control are particularly acute when a priming step is required before injection. Priming is important to ensure the patency of the delivery conduit, such as the needle. Priming helps minimize the risk of air being delivered as part of the injection, thus minimizing underdosing. Over-priming, which results in an overshoot of the minimum volume required to perform the priming step, can result in wasted medication and / or potential under-dosing of the maximum dose. Overcoming stiction of the plunger stopper can be uncomfortable for the user. Summary of the Invention
[0013] According to various embodiments, a plunger rod assembly for a syringe includes fine and coarse dose setting capabilities. The syringe can include one or more dials for effecting fine dose setting and coarse dose setting. According to various embodiments, the start of the dose delivery position of the plunger rod of the plunger rod assembly, which pushes the stopper within the syringe barrel to deliver the dose, is the same regardless of the dose setting, and the end of the dose setting, which controls the stop position of the plunger rod, is different for different doses. According to various embodiments, one or more rotational inputs can affect the fine and coarse dose settings. In some embodiments, different dials serve as user inputs for the fine and coarse dose settings, while in other embodiments, the same dial serves as user input for the fine and coarse dose settings.
[0014] According to various embodiments, a plunger rod assembly for a syringe includes a main body, a plunger rod at least partially received in the main body and including one or more sets of protrusions, and a dose setter operatively coupled to the plunger rod and including a rotatable body responsive to rotational positions of one or more sets of stops relative to the one or more sets of protrusions and including one or more sets of stops for engaging the one or more sets of protrusions on the plunger rod, wherein a first rotational adjustment associated with the dose setter is configured to set a first dosage increment by adjusting a relative axial position between the rotatable body and the plunger rod, and a second rotational adjustment associated with the dose setting assembly is configured to set a second dosage increment greater than the first dosage increment by adjusting the relative rotational alignment between the one or more sets of stops and the one or more sets of protrusions.
[0015] In any of these embodiments, the first rotational adjustment can include a rotatable dial that engages the rotatable body and is rotatable relative to the rotatable body to axially translate the rotatable body relative to the main body. In any of these embodiments, the rotatable dial can include threads that engage threads on the rotatable body.
[0016] In any of these embodiments, the second rotational adjustment can include a dial for rotating the rotatable body. In any of these embodiments, the rotatable body can translate relative to the dial. In any of these embodiments, the rotatable body and the dial can be fixed relative to one another.
[0017] In any of these embodiments, the first rotational adjustment may adjust the axial position of the rotatable body relative to the main body.
[0018] In any of these embodiments, the first rotational adjustment can adjust the axial position of the plunger rod relative to the body.
[0019] In any of these embodiments, the plunger rod may be rotationally fixed.
[0020] In any of these embodiments, the rotatable body may be laterally displaceable relative to the plunger rod.
[0021] In any of these embodiments, the axis of rotation of the rotatable body can intersect with the plunger rod.
[0022] In any of these embodiments, the one or more sets of protrusions may include a single protrusion, and the one or more sets of stops include multiple stops.
[0023] In any of these embodiments, the one or more sets of protrusions can include multiple protrusions and the one or more sets of stops comprises a single stop.
[0024] In any of these embodiments, the first rotational adjustment can include a slot in the rotatable body that receives a portion of the plunger rod, the slot including an inclined surface that axially compresses the portion of the plunger rod received in the slot as the rotatable body rotates. In any of these embodiments, the set of one or more protrusions can include a single protrusion, and the portion of the plunger rod is the single protrusion. In any of these embodiments, the portion of the plunger rod can escape one circumferential end of the slot such that continued rotation of the rotatable body does not cause further axial translation of the plunger rod relative to the rotatable body.
[0025] According to various embodiments, the plunger rod assembly includes a main body, a plunger rod at least partially received in the main body and having one or more protrusions, a rotatable body having one or more first stops that align with the one or more protrusions to define a dose delivery end position of the plunger rod, wherein different alignments of the one or more first stops with the one or more first protrusions define different dose settings, and a dose setter that includes a second stop that engages the one or more protrusions of the plunger rod to define a dose delivery start position of the plunger rod, wherein the dose delivery start position of the plunger rod is the same for different dose settings.
[0026] In any of these embodiments, the one or more protrusions on the plunger rod can include a first protrusion, wherein engagement between the first protrusion and the second stop defines a dosage delivery start position, and engagement between the first protrusion and the one or more first stops defines a dosage delivery end position.
[0027] In any of these embodiments, the one or more protrusions on the plunger rod can include a first protrusion and a second protrusion, and engagement between the first protrusion and the second stop defines a dosage delivery start position, and engagement between the second protrusion and the one or more first stops defines a dosage delivery end position.
[0028] In any of these embodiments, the second stop may include a slot that receives a first of the one or more protrusions.
[0029] In any of these embodiments, the slot may include a ramp that compresses the first protrusion received within the slot as the rotatable body rotates in the rotational direction.
[0030] In any of these embodiments, the first protrusion escapes the slot as the rotatable body continues to rotate in the rotational direction.
[0031] In any of these embodiments, the first rotational adjustment can include a rotatable dial that engages the rotatable body and is rotatable relative to the rotatable body to axially translate the rotatable body relative to the main body.
[0032] In any of these embodiments, the rotatable dial may include threads that engage threads on the rotatable body.
[0033] In any of these embodiments, the dose setter may include a dial for rotating the rotatable body.
[0034] In any of these embodiments, the rotatable body can translate relative to the dial.
[0035] In any of these embodiments, the rotatable body and dial may be fixed relative to one another.
[0036] In any of these embodiments, the rotatable body can translate relative to the main body to define a dosage delivery end position for the plunger rod.
[0037] In any of these embodiments, translation of the rotatable body can provide a first resolution of dose setting, and rotation of the rotatable body defines a second resolution of dose setting.
[0038] In any of these embodiments, the plunger rod may be rotationally fixed.
[0039] In any of these embodiments, the rotatable body may be laterally displaceable relative to the plunger rod.
[0040] In any of these embodiments, the axis of rotation of the rotatable body can intersect with the plunger rod.
[0041] In any of these embodiments, the rotatable body may include a second stop.
[0042] In any of these embodiments, the assembly may include a locking mechanism that rotationally restrains the dose setting dial at the end of dose delivery position of the plunger rod.
[0043] According to various embodiments, a syringe includes any of the plunger rod assemblies described above.
[0044] In any of these embodiments, the syringe may be a pre-filled syringe.
[0045] In any of these embodiments, the syringe may be a single-use syringe for injection of only one dosage.
[0046] Any of these embodiments may include a retractable needle cover that is locked in an extended position at the end of medication delivery.
[0047] According to various embodiments, a method of setting and delivering a dose with a prefilled syringe includes applying a first rotational input to the dose setter of the syringe to adjust a relative axial position between at least a portion of the dose setter and a plunger rod of the syringe to set a first dose increment, applying a second rotational input to the dose setter of the syringe to adjust a rotational position of at least a portion of the dose setter to set a second dose increment, the second dose increment being greater than the first dose increment, and axially advancing the plunger rod to deliver the dose from a unique start of dose at a dosing position.
[0048] In any of these embodiments, the first rotational input may be applied to a dial that is rotatable relative to at least a portion of the dosage setter.
[0049] In any of these embodiments, the second rotational input may be applied to a second dial that is rotationally coupled to at least a portion of the dosage setter.
[0050] In any of these embodiments, at least a portion of the dose setter may be axially translatable relative to the second dial.
[0051] In any of these embodiments, at least a portion of the dose setter may be axially translatable relative to the first dial.
[0052] In any of these embodiments, the first rotary input and the second rotary input may be applied to at least a portion of a dial on the dosage setter.
[0053] In any of these embodiments, applying a first rotational input axially can advance the plunger rod relative to the barrel of the syringe.
[0054] In any of these embodiments, applying a first rotational input axially can advance at least a portion of the dose setter relative to the barrel of the syringe.
[0055] In any of these embodiments, at least a portion of the dose setter can include at least one stop, the plunger rod can include at least one protrusion, and adjusting the rotational position of at least a portion of the dose setter can include aligning the at least one stop with the at least one protrusion.
[0056] In any of these embodiments, the second rotational input may be applied after the first rotational input is completed.
[0057] In any of these embodiments, the method may further include constraining the dose setter after delivering the dose.
[0058] According to various embodiments, a method of setting and delivering a dosage using a prefilled syringe includes adjusting a relative axial position between at least a portion of a dosage setter of the syringe and a plunger rod of the syringe; rotating at least a portion of the dosage setter to align at least one stop of the at least a portion of the dosage setter with at least one protrusion of the plunger rod; and axially aligning the plunger rod to deliver the dosage until the at least one protrusion of the plunger rod engages the at least one stop of the at least a portion of the dosage setter.
[0059] 51. The method of claim 50, wherein adjusting the relative axial position between the at least part of the dose setter and the plunger rod comprises adjusting the axial position of the at least part of the dose setter relative to the barrel of the syringe.
[0060] In any of these embodiments, adjusting the relative axial position between at least a portion of the dose setter and the plunger rod may include adjusting the axial position of the plunger rod relative to the barrel of the syringe.
[0061] In any of these embodiments, adjusting the relative axial position between at least a portion of the dose setter and the plunger rod may include a user-applied rotational input to the dose setter.
[0062] In any of these embodiments, a rotational input may be applied to a dial on the dose setter that rotates relative to and engages at least a portion of the dose setter such that at least a portion of the dose setter translates axially via rotation of the dial.
[0063] In any of these embodiments, the rotational input may be applied to a dial that is fixed in parallel to at least a portion of the dose setter.
[0064] In any of these embodiments, rotating at least a portion of the dose setter may include a user-applied rotation input.
[0065] In any of these embodiments, the plunger rod may remain fixed in juxtaposition so that at least a portion of the dosage setter rotates.
[0066] In any of these embodiments, at least a portion of the dose setter may remain fixed in juxtaposition such that at least a portion of the dose setter rotates.
[0067] In any of these embodiments, the method may further include axially restraining the plunger rod at the end of dosage delivery.
[0068] According to various embodiments, a method of delivering a dosage using a prefilled syringe includes setting a dosage for the syringe by setting an end of travel of a plunger rod of the syringe, axially translating the plunger rod of the syringe to deliver the dosage from a unique start position of the dosage, and revealing an indicator of completion of dosage delivery at the end of travel of the plunger rod.
[0069] Any of these embodiments may further include generating an audible indication of completion of dosage delivery at the end of plunger rod movement.
[0070] Any of these embodiments may further include locking the dose setter of the syringe device at the end of the plunger rod movement.
[0071] Any of these embodiments may further include withdrawing the syringe from the injection site after completion of dosage delivery and locking the needle shield in place.
[0072] In any of these embodiments, a fraction of the dosage corresponding to the difference between the total dosage and the delivered dosage may be retained in the syringe after dosage delivery is complete.
[0073] It will be appreciated that any of the variations, aspects, features and options described in terms of the apparatus and assembly apply equally to the present method, and vice versa. It will also be apparent that any one or more of the above variations, aspects, features and options may be combined. [Brief explanation of the drawings]
[0074] The invention will now be described, by way of example only, with reference to the accompanying drawings, in which:
[0075] [Figure 1] FIG. 1 shows a conventional syringe.
[0076] [Figure 2] FIG. 2 illustrates a syringe according to various embodiments.
[0077] [Figure 3] 3 is an exploded view of various aspects of the syringe of FIG. 2, according to various embodiments.
[0078] [Figure 4] 4a and 4b illustrate various aspects of a medication stop according to various embodiments.
[0079] [Figure 5] , and [Figure 6] 5 and 6 are examples of dosage setting dials according to various embodiments.
[0080] [Figure 7] FIG. 7 illustrates a plunger rod according to various embodiments.
[0081] [Figure 8] FIG. 8 illustrates a housing for a plunger rod assembly according to various embodiments.
[0082] [Figure 9] FIG. 9 illustrates various features for retention of the plunger rod assembly on the syringe body, according to various embodiments.
[0083] [Figure 10] FIG. 10 illustrates a dosage setter according to various embodiments.
[0084] [Figure 11] 11a-c illustrate various dosage settings according to various embodiments.
[0085] FIG. 11a' illustrates the position of the plunger rod relative to the groove, according to various embodiments.
[0086] [Figure 12] FIG. 12 illustrates a process for setting and delivering a dosage, according to various embodiments.
[0087] [Figure 13] FIG. 13 illustrates locking of the dose setting dial at the end of dose delivery, according to various embodiments.
[0088] [Figure 14] FIG. 14 illustrates an exemplary plunger stopping force according to various embodiments.
[0089] [Figure 15] FIG. 15 illustrates a syringe according to various embodiments.
[0090] [Figure 16] FIG. 16 illustrates a plunger rod according to various embodiments.
[0091] [Figure 17] FIG. 17 illustrates a housing according to various embodiments.
[0092] [Figure 18] FIG. 18 illustrates a clicker according to various embodiments.
[0093] [Figure 19] , and [Figure 20] 19 and 20 illustrate aspects of a dosage setter according to various embodiments.
[0094] [Figure 21] , and [Figure 22] 21 and 22 illustrate covers according to various embodiments.
[0095] [Figure 23] FIG. 23 illustrates a process for setting and delivering a dosage, according to various embodiments.
[0096] [Figure 24] FIG. 24 illustrates a process for setting and delivering a dosage, according to various embodiments.
[0097] [Figure 25] FIG. 25 illustrates high resolution plunger rod movement, according to various embodiments.
[0098] [Figure 26] FIG. 26 illustrates plunger rod movement for two different dosage settings, according to various embodiments.
[0099] [Figure 27] , and [Figure 28] 27 and 28 illustrate syringe covers according to various embodiments.
[0100] [Figure 29] FIG. 29 illustrates a syringe according to various embodiments.
[0101] [Figure 30] FIG. 30 illustrates a plunger rod according to various embodiments.
[0102] [Figure 31] FIG. 31 illustrates a plunger rod according to various embodiments.
[0103] [Figure 32] , and [Figure 33] 32 and 33 illustrate dosage setters according to various embodiments.
[0104] [Figure 34] FIG. 34 illustrates a cover according to various embodiments.
[0105] [Figure 35]FIG. 35 illustrates a housing according to various embodiments.
[0106] [Figure 36] FIG. 36 illustrates an end-of-dosage indicator according to various embodiments.
[0107] [Figure 37] FIG. 37 illustrates a disk for preventing rotation of the plunger rod, according to various embodiments.
[0108] [Figure 38] FIG. 38 illustrates a window covering according to various embodiments.
[0109] [Figure 39] FIG. 39 illustrates a syringe according to various embodiments.
[0110] [Figure 40] , [Figure 41] , and [Figure 42] 40-42 illustrate various dosage settings and dosage deliveries according to various embodiments.
[0111] [Figure 43] FIG. 43 illustrates a syringe with a needle shield, according to various embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0112] The devices and methods described herein, in various embodiments, are directed to controlling dosage delivery, such as with a syringe or cartridge. To provide adequate resolution in setting dosages for either low volumes (less than 100 microliters) or high volumes (greater than 100 microliters to milliliters), various embodiments include separate features for high-volume and low-volume dosage settings (often referred to below as coarse and fine dosage settings, respectively). Combining the two settings provides a wide range of dosage setting options, from low microliters to milliliters, in a compact configuration that may be practical to use. Separating the coarse and fine injection dosage volume settings avoids the redundancy of having microliter-level resolution for milliliter dosage volumes, yet provides the resolution necessary to inject microliter volumes.
[0113] According to various embodiments, the controlled dosage delivery device can include a syringe, a plunger stopper, a plunger rod, a dosage stop, and one or more dosage setting dials, which can include a fine dosage setting dial and a coarse dosage setting dial, or a single dial that can control both fine and coarse dosage settings. According to various embodiments, the syringe can be a prefilled syringe with an elastomeric plunger stopper that is translated by the plunger rod. Axial translation of the plunger rod fills the syringe with the injection medication. The amount of axial translation of the plunger rod defines the volume of the injection dosage. The plunger rod translates axially until a design feature on the plunger rod comes to rest against a "stop" feature on the dosage stop.
[0114] According to various embodiments, the dose stop can have one or more radially disposed "stop" features, and the plunger rod can have one or more radially disposed protrusions with respective alignments between the stop features and the protrusions corresponding to the dose settings. The "stop" features and / or protrusions can be located at different longitudinal / axial positions. For example, the dose stop may include multiple stop features at different axial and circumferential positions, and rotation of the dose stop can align a particular stop feature with a protrusion on the plunger rod to set the dose corresponding to the particular stop feature. Aligning another stop feature with the protrusion sets a different dose.
[0115] According to various embodiments, the fine dose setting dial can engage a dose stop such that rotation of the fine dose setting dial results in axial translation of the dose stop, axially translating one or more stop features of the dose stop to provide fine dose setting adjustment. The dose stop and / or dial can have a thread, and the thread angle and thread pitch can define the resolution of the fine dose adjustment. Selectability of the alignment of a particular stop feature with a particular protrusion can provide coarse dose setting adjustability, while the axial / longitudinal position of the dose stop can provide fine dose setting adjustability. Thus, the amount of dosage is user selectable by a combination of the fine and coarse dose setting dials.
[0116] According to various embodiments, higher resolution of plunger rod movement is reserved for a portion of the total plunger rod movement, such as for priming the syringe and / or for slightly advancing the plunger rod to help overcome plunger stopper stiction in a controlled manner. According to various embodiments, a single dose setting dial incorporates features for both high-resolution and coarse-resolution of plunger rod axial translation. One or more stop features corresponding to various user-selectable dosage amounts can be incorporated into the dose setting dial or plunger rod, as described above. The plunger rod may include one or more radially extending protrusions, one or more of which may serve a dual purpose of interacting with one or more stop features on the dose setting dial and enabling slight advancement (high-resolution movement) of the plunger rod caused by partial rotation of the dose setting dial. The plunger rod can incorporate features that provide an audible and visible end of the dosage indication in addition to the tactile end of the dosage indication resulting from a protrusion on the plunger rod that rests against a stop feature on the dose setting dial. The visible and audible end of the dosage indicator can be important to assure the user that the injection procedure is complete in systems where the end of the dosage position of the plunger rod changes depending on the dosage selected by the user.
[0117] According to various embodiments, stop features corresponding to various user-selectable dosage amounts are incorporated onto the plunger rod. Depending on the selected dosage volume, one of these stop features can translate until it reaches a dosage stop stop feature to define the end of the intended dosage delivery (end of dosage). According to some embodiments, this end of the dosage is accompanied by an audible and / or visible end of a dosage instruction to the user. The visible end of the dosage instruction includes an end of the dosing drum that translates axially toward the end of the injection stroke and can have a distinctive colored feature that becomes visible to the user toward the end of the injection stroke.
[0118] According to various embodiments, the syringe is a pre-filled, single-use syringe for injecting only one dosage. According to various embodiments, in instances where the maximum possible volume of medication in the syringe is not administered, any undelivered medication remaining in the syringe is considered a biohazard. To minimize the potential for abuse of this unused medication by reusing the device, the plunger rod and dosage setting dial can be locked in place.
[0119] According to various embodiments, the drug delivery device can include one or more needle safety features for any of the device embodiments described above that pre-stake the needle on the syringe. According to various embodiments, the needle safety is activated independently of the dispensing mechanism. According to other embodiments, the needle safety is activated by the injection stroke, such as toward the end of the dosage. Activation of the needle safety can disable the injection device. Thus, according to various embodiments, activation of the needle safety upon completion of the injection can disable the injection device, ensuring that the needle safety is activated only when the user-selected dosage has been delivered.
[0120] According to various embodiments, the pre-fillable syringe can have a flange that is rounded or has diametrically opposed flat surfaces, and one or more features on elements incorporated into the syringe holding component within the device minimize syringe rotation regardless of the syringe flange design.
[0121] In the following description of the present disclosure and embodiments, reference is made to the accompanying drawings in which it is shown, by way of illustration, specific embodiments which may be practiced. It is to be understood that other embodiments and examples may be practiced and changes may be made without departing from the scope of the disclosure.
[0122] Furthermore, it should be understood that the singular forms "a," "an," and "the" used in the following description are intended to include the plural forms as well, unless the context clearly dictates otherwise. The term "and / or," as used herein, should also be understood to refer to and include any and all possible combinations of one or more of the associated listed items. Furthermore, it should be understood that the terms "include," "comprise," and / or "comprising," when used herein, specify the presence of stated features, integers, steps, operations, elements, components, components, and / or units, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, units, and / or groups thereof.
[0123] FIG. 1 illustrates a conventional syringe-based delivery system, including a cylindrical barrel 1 that may have an elastomeric plunger stopper 2 smoothed on its interior surface to allow translation along the barrel axis by a standard plunger rod 3. The user can select a dosage by aligning the tip of the stopper with a dosage volume marking 4 printed on the exterior surface of the barrel 1. This will be the starting dosage position. The user then inserts a delivery conduit (e.g., a syringe-connected or pre-loaded needle, catheter, etc.) into the injection site and depresses the plunger rod 3 axially until the plunger stopper bottoms out. The aforementioned dosage marking 4 provides the same resolution for dosage setting regardless of whether the user selects a dosage at the low or high end of the volume range. In the example illustrated in FIG. 1, if the intended dosage were less than 0.1 ml, it would be desirable to have more resolution to ensure accurate and precise delivery. Conversely, the resolution required for accurate and precise delivery of a 0.9 ml dosage is sufficient in the illustrated example. Additionally, if a small amount (e.g., 0.1 ml in the current example of Figure 1) needed to be administered using a prefilled syringe (where 1 ml of drug was prefilled by the drug manufacturer), the user would have to squeeze out 0.9 ml of drug before administering the injection. This exposure to unwanted drug can be potentially harmful to the user, caregivers, and family members, especially for potent drugs such as chemotherapy drugs, oncolytic viruses, and gene therapies. This situation is inherent in all non-pen injector-based drug delivery device solutions in the prior art. When delivering a fraction of the total drug enclosed in the syringe, it is desirable to administer only the intended dose and retain the remaining dose within the syringe. Used syringes with undelivered drug can be safely disposed of without unnecessary drug exposure.
[0124] According to various embodiments, a variable dose syringe 100 configured to provide user control over the resolution of the dose setting, allowing the user to select the volume of injection and prevent unnecessary exposure to excess drug, is shown in FIG. 2. This variable dose syringe embodiment provides separate fine and coarse settings for the intended dose volume. An embodiment intended to deliver down to 1 milliliter is shown, with the dose resolution set to either 0.1 milliliter or 0.01 milliliter (i.e., 10 microliters), depending on the desired volume to be injected. Thus, 100 dose volume levels (from a minimum dose of 0.01 milliliter to a maximum dose of 1 milliliter in 0.01 milliliter increments) can be achieved with the various dose syringes illustrated herein. Components of the variable dose syringe 100 according to various embodiments are shown in FIG. 3. By way of example, a standard pre-fillable syringe 9 with a pre-attached (staked) needle and a maximum fill volume of 1 ml may be used, although it should be understood that the devices, methods, and principles described herein can be used with any syringe size and with any syringe configuration.
[0125] Variable dose syringe 100 includes a plunger rod assembly that can be attached to the proximal end of syringe 9, such as via clip 14 and x-ring 15. The plunger rod assembly can include housing 16 (also referred to herein as the main body), plunger rod 10, rotatable body 13 (also referred to as the "dose stop"), and a dose setter including one or more dials (dials 11 and 12 shown). Syringe 9 can be filled with an injectable drug 8 and includes an elastomeric plunger stopper 7. According to various embodiments, fine and coarse dose volume setting is facilitated by fine dose setting dial 11 and coarse dose setting dial 12, respectively. The device includes dose stop 13. The above-mentioned components are supported or enclosed within housing 16. Retention of prefillable syringe 9 to housing 16 is achieved with clip 14 and elastomeric x-ring 15.
[0126] Prefilled syringes with a pre-attached (or staked) needle are typically available to the user with the leading end ready for injection. Similarly, according to various embodiments, a variable dose syringe 100 can have a prefilled syringe 9 in which the axial position of the plunger rod 10 is at the beginning of the dosage position as provided to the end user. The end of the dosage position can be defined by a dosage stop 13. An embodiment of a dosage stop 13 is shown in FIG. 4a. As shown in FIG. 4a, the end of the dosage is facilitated by stop surfaces 18 on the dosage stop 13. Each stop surface 18 is circumferentially arranged and corresponds to a coarse dose volume that can be set. The axial position of each stop surface 18 is defined by the dosage volume on the coarse dose setting dial 12. The dosage stop 13 includes four spline segments 19 of equal length, each located at the same axial position on the dosage stop 13 and arranged at 90 degrees relative to one another. These splined sections 19 interact with the coarse dose setting dial 12. The dose stop 13 also includes threads 20 that interact with the fine dose setting dial 11. Expanding the dose stop surface portions of the cylindrical dose stop 13 shown in FIG. 4b, stop surface 18a corresponds to the smallest volume on the coarse dose setting dial 12, and stop surface 18j corresponds to the largest volume on the coarse dose setting dial 12. The end of the dose position of the plunger rod 10 is determined by one of the stop surfaces 18, and its axial position is a combination of the coarse dose setting amount and the axial advancement of the dose stop 13 mediated by the rotation of the fine dose setting dial 11. The resolution of the fine dose setting is determined by the angle of the internal threads 20.
[0127] Shown in FIG. 5 is an example of a fine dose setting dial 11, which includes external threads 21 to match the pitch and thread angle of the internal threads 20. Markings 22 corresponding to fine dose levels providing finer resolution of dose setting are printed on the cylindrical surface of the fine dose setting dial 11. Radial grooves 23f are present on the bottom surface. Each groove 23f is spaced at an angle defined by the amount of rotation of the fine dose setting dial 11, causing axial translation of a dose stop 13 corresponding to the dose volume resolution provided by the fine dose setting dial 11. The grooves 23f serve to fix the rotational position of the fine dose setting dial 11. The dose stops 13 are disposed within a cavity 24. The grooves 27f in the cylindrical surface of the fine dose setting dial 11 are separated by the same angle as 23f and play a role in locking the fine dose setting dial at the end of injection. Friction between mating screws 20 and 21 axially restrains the dose stop 13.
[0128] FIG. 6 shows an example of a coarse dose setting dial 12 that includes an axial keyway 25 that aligns with and accommodates the splined section 19 on the dose stop 13. Radial grooves 23c are present on the top surface. The grooves 23c serve to secure the rotational position of the coarse dose setting dial 12. Each groove 23f is spaced at the same angle as the angle between the stop faces 18, and there is one more groove 23c than there are stop faces 18. The longitudinal grooves 27c on the cylindrical surface of the coarse dose setting dial 12 are separated by the same angle as 23c, and these longitudinal grooves serve to lock the fine dose setting dial at the end of injection. The dose stop 13 is disposed within a cavity 28. Markings 26 corresponding to the coarse dose levels, which provide a coarser resolution for the dose setting, are printed on the cylindrical surface of the fine dose setting dial 12.
[0129] According to various embodiments, features of plunger rod 10 are illustrated in FIG. 7 . Locking blade 29 and low-dose locking blade 30 are longitudinally aligned but axially separated from each other and from dose stop flag 31. The user administers an injection by pressing finger seat 32, which serves to translate plunger 10 axially until dose stop flag movement is interrupted by stop surface 18 on dose stop 11, the axial distance from which is defined by fine dose setting dial 11 and coarse dose setting dial 12. A distal end 43 of the plunger rod interacts with the side of plunger stopper 7 opposite the drug-contacting side. This distal end 43 may be adapted to mate with plunger stopper 7 in some applications.
[0130] Features of housing 16 are shown in Figure 8. Axial cavities 33 and 34 contain dose stop 13 and plunger rod 10, respectively. Fine dose setting dial 11 is located in side slot 35, while coarse dose setting dial 12 is located in side slot 36. Along the axis of the device, side slot 35 is constrained by a hollow circular beam with a marked tip 17f. When located within the trough of radial groove 23f, the tip of 17f serves to register a dose setting position for fine dose setting dial 11. Along the axis of the device, side slot 36 is also constrained by a hollow circular beam with a marked tip 17c. When located within the trough of radial groove 23c, the tip of 17c serves to register a dose setting position for coarse dose setting dial 12. Both circular beams deflect sufficiently to allow rotation of the fine and coarse dose setting dials. The fine and coarse dose setting dials are axially constrained by the housing 16 and radially constrained by the dose stop 13. The syringe is attached to the housing 16 by being placed in the cavity 38.
[0131] Clip 14 and x-ring 15 may be involved in attaching prefilled syringe 9 to housing 16 (see FIG. 9). This x-ring is located in cavity 38. To attach syringe 9 to housing 16, syringe flange 41 is inserted into cavity 38 so that tab 39 on clip 14 aligns with axial keyway on housing 16 until inclination angle 37 is reached, thereby placing it between clip 14 and housing 16. Using a torque wrench with adapter, the clip was rotated until it was tight along the inclination defined by slot 37, engaging slot 39. The prefilled syringe is now secured to housing 16 and therefore secured to the device.
[0132] Interface features 19 and 25 may be used to allow coarse dose setting dial 12 to rotationally align relative to dose stop 13 and to allow coarse dose setting dial 12 to slide axially relative to dose stop 13. Stop surfaces 18 on dose stop 13 define end dose positions relative to plunger rod dose stop flag 31. Rotation of fine dose setting dial 11 causes axial translation of dose stop 13. The end dose positions are defined by the axial position of stop surface 18, which in turn depends on the combination of the volume selected on coarse dose setting dial 12 and the volume selected on fine dose setting dial 11. Operation of fine dose setting dial 11 adjusts the axial position of stop surface 18 corresponding to each setting of coarse dose setting dial 12. Thus, a user can selectively deploy a finer resolution of the dose setting, a coarse resolution of the dose setting, or a combination thereof, to effectively set the dose volume to be injected. Another dose setting advantage over variable dose systems, such as prior art pen injectors, is that the user does not need to translate through all dose levels to set the target dose volume. For example, to set a 0.2 milliliter dose, the user does not need to go through 0.01 milliliter increments to 0.2 milliliters, but simply rotate the coarse dose setting dial 12 to set the 0.2 milliliter dose.
[0133] FIG. 11a shows the positions of the coarse and fine dose setting dials 12 and 11 before user manipulation to set a dose, according to various embodiments. According to various embodiments, the start of the dose position of the plunger rod 10 is defined by the junction between the locking blade 29 of the plunger rod 10 and the proximal end of the dial 11, which prevents the plunger rod 10 from being advanced by the user. Marks 17c and 17f on the circular beam on the housing 16 provide the user with a visual reference for setting the dose volume based on marks 22 and 26 on the fine and coarse setting dials, respectively. Shown in the examples of FIGS. 11a, 11b, and 11c are dose volumes set for 0.000, 0.460, and 1.000 milliliter injections. Corresponding to a dose volume of 0.000, the locking blade 29 of the plunger rod 10 is longitudinally offset from groove 27f, as seen in FIG. 11a'. Setting the dose aligns the locking blade with groove 27f. The plunger rod 10 is now in the start of dose position.
[0134] FIG. 12 illustrates various aspects of the internal mechanism for dose setting and dose termination for an exemplary 0.440 milliliter injection, according to various embodiments. The internal mechanism, including the fine dose setting dial 11, the coarse dose setting dial 12, the dose stop 13, and the plunger rod 10, which correspond to the device status received by the user, are depicted in "a." Rotating the fine dose setting dial to align the "40" mark with mark 17f on the housing 16 and rotating the coarse dose setting dial to align the "0.4" mark with mark 17c on the housing 16 rotationally aligns and serves to axially position the stop surface 18 on the dose stop 13. This is shown in "b." "c" illustrates the plunger rod 10 after the user depresses it, resulting in axial translation until the end of the dose flag 31 rests against the stop surface 18, which also provides tactile feedback to the user that the intended dose has been delivered. The full axial movement described above is the injection stroke 42 .
[0135] It may be beneficial to lock the dose setting dials after an injection is complete. This option is illustrated in FIG. 13. Using the same 0.440 milliliter example discussed above, "b" in FIG. 13 illustrates the internal mechanism when the dose is set by the user. After the injection stroke 42 is complete, the locking blade 29 translates axially within grooves 27c and 27f of the coarse dose setting dial 12 and the fine dose setting dial 11. The presence of the locking blade 29 prevents further rotation of either the fine dose setting dial 11 or the coarse dose setting dial. This renders the device unusable for delivery of any undelivered medication in the syringe 9 after the intended dose is complete. The low dose locking blade 30 functions to lock the coarse dose setting dial only for low dose volumes.
[0136] In embodiments involving prefilled syringes or cartridges, the syringe (or cartridge) is aseptically filled with medication and then stoppered with an elastomeric plunger stopper. This plunger stopper is radially larger relative to the inner diameter of the syringe (or cartridge) to provide and maintain a sterile barrier. Over time and during storage of the prefilled medication, the elastomeric plunger stopper develops inertia in the movement, called stiction, in which the plunger stopper must slide and yield before axial translation occurs. Figure 14 shows an example injection force profile illustrating this phenomenon. There are several practical implications of stiction. Increasing the amount of axial force 5 applied to overcome stiction can result in a loss of user control (due to momentum) over the plunger stopper's movement. This loss of user control can ultimately result in wasted medication. An increase in force 5 can also trigger an occlusion alarm in automated delivery systems, such as infusion pumps. Also shown in Figure 14 is that the amount of plunger stopper movement that corresponds to when stiction begins to activate is very small relative to the total expected plunger stopper movement to administer the intended drug volume. It is desirable to be able to controllably advance the plunger stopper to overcome sticking before advancing the drug with a predictable force 6.
[0137] Therefore, in prefilled syringe (or cartridge)-based drug delivery applications, it is desirable to provide a higher resolution of plunger stopper movement to overcome stiction, i.e., the amount of plunger stopper movement is reserved solely for overcoming plunger stopper stiction. Coarser resolution can then be provided for other pre-set dosage volumes. Pre-setting of dosage volumes is only possible if various dosages are known in advance for a given injection drug 8. FIG. 15 illustrates a variable dosage syringe 43 that can overcome plunger stopper stiction and provide both fine and coarse resolution, according to various embodiments. The syringe 43 can be used, for example, to deliver volumes as small as 0.2 milliliters and as large as 2.0 milliliters in 0.2 milliliter increments (i.e., 10 dosage volume levels: 0.2, 0.4, 0.6, 0.8, 1.0, 1.2, 1.4, 1.6, 1.8, and 2.0 milliliters). It should be understood that these delivery amounts and increments are merely exemplary and that syringe 43 may be configured to deliver any suitable amount and increment.
[0138] Syringe 43 includes a plunger rod assembly that can be assembled into syringe 9. The plunger rod assembly can include plunger rod 44, housing 45, cover 46, and dose setter 47 (also referred to herein as dose setting dial 47). The illustrated embodiment incorporates a pre-filled syringe 9 containing an injectable medication 8 stoppered by plunger stopper 7. It secures pre-filled syringe 9 to housing 45 using clip 14 and an elastomeric x-ring similar to syringe 100 of FIG. 2.
[0139] A plunger rod 44 according to various embodiments is shown in FIG. 16. The patient end of the plunger rod 44 includes a disk 48, allowing the user to manually advance the plunger rod 44 after the dose is set. A cylindrical patient end 49 abuts the plunger stopper 7 during assembly. This end 49 can also be modified to have threads to interface with the axial, non-drug-contacting side of the plunger stopper 7. A drug latch 47 may be employed to provide control of the axial plunger rod 44 movement. The plunger rod 44 includes four longitudinal ribs 50, which, along with features on the housing 45 and cover 46, help prevent rotation of the plunger rod 44 during device actuation. A flag 51 consists of a high-resolution drive surface 52 on the non-patient end and a stop surface 53 on the patient end. The plunger rod 44 also comprises a beam 54 that helps provide an audible dose indication and locks the plunger rod 44 axially when the selected dose is fully delivered (end of dose). The plunger rod 44 also comprises a flat surface terminating in dosage markings 55 corresponding to various deliverable dosage volumes, the spacing between the dosage volume marks corresponding to the injection stroke for each dosage volume.
[0140] Various embodiments of the housing 45 are shown in FIG. 17. It comprises a dose-setting clicker ratchet 56. A flanged portion 57 is provided for the user to hold the device during injection. A cavity 58 radially restrains the plunger rod 44. A side slot 59 allows the user access to the dose-setting dial 47. An axial slot 60 provides alignment for inserting the tab 40 on the clip 14 during syringe 9 insertion prior to installation. A slit 61 provides an angled slot for the tab 40 when the clip 14 is rotated to securely attach the syringe 9 to the housing 45. Various embodiments of the clicker 56 are shown in detail in FIG. 18, consisting of a hemispherical peg 63 and a click peg 62. The height of the hemispherical peg is slightly greater than the height of the click peg 62. Clicker 56 provides tactile and audible feedback to the user during dose setting and interacts with features on dose setting dial 47 contained within a recessed cylindrical section 66 of housing 45. Surfaces 64 and 65 serve to axially restrain dose setting dial 47.
[0141] A dose setting dial 47 according to various embodiments is shown in FIG. 19 . The dose setting dial 47 includes a rotatable body having multiple dose stops 76 that engage flags 51 on the plunger rod 44 to stop the axial movement of the plunger rod 44 to control the end of the dose delivery. Portion 67 of the dose setting dial 47 is housed within segment 66 of the housing 45. Dose markings 68 are printed on the surface 69 to allow the user to select the injection amount (dose setting). Some of the markings 69 include a “→” mark to indicate the user's initial direction of rotation of the dose setting dial 47. Only one of these markings 68 is visible to the user through the cover 46. Surface 69 rests against surface 64 of the housing 45, which axially constrains the dose setting dial 47 toward the patient end. Surface 70 is constrained by surface 65 of the housing 45, thus constraining the dose setting dial 47 toward the non-patient end. The dose setting dial 47 is comprised of a number of longitudinal splines 71. Captivated within these splines 71 is the flag 51 of the plunger rod 44. A longitudinal groove 72 on a portion 67 of the surface of the dose setting dial 47 interacts with the pegs 62 and 63 of the clicker 56. Among these, grooves 72a, 72b, and 72c are longer than the other grooves to accommodate both pegs 62 and 63. The remainder of the groove 72 accommodates only peg 63. When unused, pegs 62 and 63 reside in groove 72a. The shape of groove 72a ensures that the dose setting dial 47 rotates only in the direction indicated by the "→" portion of marking 68. Rotating the setting dial 47 through the angle corresponding to 74 until it reaches groove 72b sets the dose volume to 0.2 milliliters. The shape of groove 72b (identical to 72a) prevents the user from returning to the "→" position. This groove 72 accommodates both pegs 62 and 63. Continued rotation toward the other hemispherical groove 72 engages only hemispherical peg 63. The hemispherical shape of the other grooves 72 allows for bidirectional rotation of the dose setting dial 47, except for those corresponding to 0.2 and 2.0 milliliters.This arrangement prevents either a transition from 2.0 milliliters to the "→" position or a transition from 0.2 milliliters to the "→" position, while simultaneously allowing the user the flexibility to navigate between other dosage levels before injection. Side slot 73 provides and defines high resolution for this embodiment. This slot restrains flag 51 on plunger rod 44. When the device is unused, flag 51 is at position 75a. Surface 52 of flag 51 contacts surface 73a. As dose setting dial 47 is rotated, flag 51 translates axially a distance 75 to position 75b. When flag 51 reaches 75b, there is further axial restraint from stop surface 53 on plunger rod 44. Plunger rod 44 is at the axial start of the dosage position for any of the dosage volumes that can be set with this embodiment. The dosage at this rotational position of dose setting dial 47 is set to 0.2 milliliters in this example. Distance 75 provides a high resolution of the axial translation of plunger rod 44 that helps overcome stiction of plunger stopper 7 and, in some cases, aids in priming a delivery conduit, such as an injection needle. The ends of the dosage positions are defined by surfaces 76 that are axially separated based on the injection stroke corresponding to the dosage volume selected by the user by rotation of dosage setting dial 47. Surface 76 corresponding to the user-set dosage volume is longitudinally aligned with stop surface 53 on plunger rod 44. Plunger rod 44 is contained within cavity 78.
[0142] FIG. 20 provides a cross-sectional view of features on dose setting dial 47. Surface 77 engages the tip of beam 54 of plunger rod 44. At the end of the dose, beam 54 strikes surface 77 to provide an audible dose indication. Surface 79 engages beam 54 to axially lock plunger rod 44 in the non-patient direction at the end of the dose. Thus, at the end of the dose, the plunger rod is axially locked in the patient direction by the engagement of surfaces 53 and 76 and in the patient direction by the interaction of beam 54 with surface 79. User interface 80 on dose setting dial 47 may include grooves or texture for gripping to rotate it. Unlike the previous embodiment shown in FIG. 2, high-resolution travel and dose stops are encoded on dose setting dial 47.
[0143] The interaction between surfaces 73a and 52 is similar to the high resolution movement adjustment between screws 21 and 20 in syringe 100 of Figure 2. The coarse dose setting interaction between surfaces 53 and 76 is similar to features 18 and 31 for the embodiment of Figure 2.
[0144] The device cover 46, according to various embodiments, is shown in FIG. 21 . The device cover 46 includes the remaining half of the flange 57 and a slot 59 for the dose setting dial 47. Surfaces 64 and 65, along with those within the housing 45, provide axial restraint for the dose setting dial 47 internally. A slot 81 on the top surface rotationally restrains the rib 50 on the plunger rod 44. Because the plunger rod 44 is axially locked upon reaching the end of the dose, the rotational locking of the plunger rod 44 by the ramp 81 prevents rotation of the dose setting dial 47 because its spline 71 is rotationally aligned with the flag 51 on the plunger rod 44. Thus, in addition to the plunger rod 44 being axially locked, the dose setting dial 47 is rotationally locked, thereby disabling the device and preventing reuse, even though a quantity of undelivered medication 8 remains in the syringe 9 contained within the device 43. At the end of the dose, window 82 provides visibility to marking 55 corresponding to the injected dose volume. During dose setting, only marking 68 corresponding to the set dose volume is visible to the user through window 83. Upon receiving device 43, the user sees the "→" in window 83. Pinhole 85 is used during assembly as shown in FIG. 22. A dowel pin 85 that is slightly larger (radially) than pinhole 85 is used to assemble cover 46 onto housing 45. This dowel pin 85 may also be incorporated as a post and molded as part of either cover 46 or housing 45.
[0145] Device operation for setting and delivering a 0.2 milliliter dose is shown in FIG. 23. The user receives a device indication represented by "a." This "→" is visible in window 83. The corresponding axial position of plunger rod 44 is displayed as "86." The user rotates dial 47 in the direction indicated by "→" mark 68. Once the dose setting dial has rotated through angle 74, the dose volume is now set to "0.2" milliliters (represented by "b"). The corresponding axial position of plunger rod 44 is the start of the dose position. Once the delivery conduit, such as a syringe needle, has entered the injection site, the user then uses disk 48 to depress plunger rod 44 until plunger rod 44 cannot translate any further. This is the end of the dose position represented by 88. At this position, mark 55 is also visible in window 82, providing the user with the visible end of the dosage indication. At the end of the dose, marks 68 and 55 are the same dose volume. Also shown are the positions of the patient end 49 of the plunger rod 44 at the start of dose 87' and the end of dose 88'. The difference in axial position between 88 and 87 and between 88' and 87' is the same and represents the injection stroke for the user-set dose, in this case 0.2 milliliters. The distance traversed by the plunger rod 44 between positions 86 and 87 is a high-resolution movement that helps overcome stiction of the plunger stopper 7. This movement is the same as 75 shown in FIG. 19. In some instances, this high-resolution movement may also be useful for priming the delivery conduit to minimize the risk of underdosing.
[0146] 24 illustrates the operation of the device to set and deliver a 2.0 milliliter dose, according to various embodiments. When the dose is set to 2.0 milliliters, the beginning of the corresponding dose position 87 is the same as when a 0.2 milliliter dose is set. This is also true for all other dose volumes in between. The end of the dose position corresponding to the 2.0 milliliter dose is depicted by 89, and the corresponding position of the patient end of the plunger rod is 89'. The axial difference between 89 and 87 and 89' and 87' is the injection stroke for a 2.0 milliliter dose in syringe 9.
[0147] Figure 25 further illustrates high resolution movement to overcome stiction (and potential priming) of plunger stopper 7. The front and rear views (housing not shown) show how rotation of dose setting dial 47 moves flag 51 from 75a to 75b, providing higher resolution axial movement 75 (shown in Figure 19).
[0148] The cross-sectional view of FIG. 26 illustrates device operation (dose start and dose end) for delivering exemplary 0.2 milliliter and 2.0 milliliter doses, according to various embodiments. Once the 0.2 milliliter dose is set, the plunger rod 44 flag 51 and beam 54 are then longitudinally aligned with the end of the dose position 76, which corresponds to the 0.2 milliliter dose volume. The plunger rod 44 is now at position 87. When the user depresses the plunger rod 44, the plunger rod 44 translates axially until the stop surface 53 reaches the end of the dose position 76. At the same time, the beam 54 deflects onto surface 79. The surface 90 of the beam 54 is axially constrained in the non-patient direction by surface 78. User rotation of dose setting dial 47 sets the 2.0 milliliter dose until the rotational position of the end of dose position 76 corresponding to the 2.0 milliliter dose is longitudinally aligned with stop surface 53 of plunger rod 44 .
[0149] It may be desirable to include a cover to protect the syringe 9 incorporated into the device. It may also be desirable to incorporate a safety mechanism to shield the needle after use to minimize the risk of needlestick injuries and comply with regulations (or facilitate home injections). An exemplary cover 91 is shown in FIG. 27. The syringe cover 91 may be an extension of the housing 45 and has diametrically opposed windows 94 to allow the user to inspect the medication in the syringe 9 before injection. The needle safety clip 92 pivots on a hinge 95. When the user receives the device with the enclosed medication, the needle safety clip is aligned as shown in "a." When the cap 93 is removed (shown in "b"), a spring beam 98 moves the needle safety clip 92 in direction 99. Surface 96 ensures that the insertion angle of the needle 97 is perpendicular to the injection site to ensure the correct depth of insertion of the exposed needle. Once the injection has been fully administered and the device removed from the injection site, the user can push the needle safety clip 92 in direction 99' (shown at "c") until it locks onto the needle 97. The tip of the needle 97 is now fully enclosed within the safety clip 92. Figure 28 shows a latch 100 that grips the needle 97, preventing exposure to the used needle 97.
[0150] Unlike syringe 100 shown in FIG. 2, syringe 43 includes a continuous progression of high and coarse resolution. The syringe 43 described herein includes an initial higher resolution, followed by various dosage levels (coarse resolution) defined by the ends of dosage location 76. Also, syringe 43 is illustrated here as having 10 dosage volume levels. However, various embodiments including fewer than 10 or more than 10 dosage levels are within the scope of this disclosure.
[0151] According to various embodiments, a coarse resolution can be developed prior to the high resolution of plunger rod 44 movement. This may be appropriate in applications where the delivery conduit has a large dead space (e.g., delivery using a catheter tube) and where the dosage volume is very small relative to the volume required to prime the catheter. In this case, when a dosage setting dial such as 47 is set to the prime position, the end of dosage position 76, at a distance corresponding to the stroke required for the prime volume, is aligned longitudinally with stop face 53 of plunger rod 44. This priming stroke is a coarse resolution. At the end of the priming stroke, there is no locking of beam 54. There is also no spline 71, allowing rotation of dosage dial 47 at the end of priming to set the desired dosage volume. The axial position of the end of dosage position 76 relative to the small dosage provides a high resolution.
[0152] Also envisioned are embodiments in which sequential delivery of several equal or unequal volumes is desired, which can be accomplished by removing splines 71 in dose setting dial 47 in syringe 43 to achieve sequential delivery of several equal or unequal volumes.
[0153] The various embodiments described above have fine and coarse resolution encoded on the dose setting dial 47. Figure 29 shows a syringe 101 according to various embodiments in which the fine and coarse resolution are encoded on the plunger rod 102, with the stop surface being on the dose setting dial 103, as opposed to embodiment 43.
[0154] The syringes 100 and 43 described above can have high and coarse resolution for dose volume and plunger rod travel encoded on the dose setting dial. Alternatively, the high and coarse resolution for dose volume and plunger rod travel can be encoded on the plunger rod, as described below with respect to the syringe 101 illustrated in FIG. 29 . The syringe 101 can include a plunger rod assembly attached to a syringe 9. The plunger rod assembly can include a plunger rod 102, a dose setter 103 (also referred to herein as the dose setting dial 103), a cover 104, a housing 105, an end of a dose drum 106, a disk 107, and a window cover 108. The illustrated embodiment incorporates a pre-fillable syringe 9 filled with an injectable medication 8 enclosed by an elastomeric plunger stopper 7. The syringe has a pre-staked needle 97 as a delivery conduit. The filled syringe is secured to the device using clip 14 and elastomeric x-ring 15. Embodiment 101 is illustrated delivering a minimum of 0.2 milliliters and a maximum of 2.0 milliliters in 0.2 milliliter increments for dosage volume levels of total mold 10.
[0155] The plunger rod 102 of the embodiment of FIG. 29 includes a patient end 111p and a non-patient end 111np (see FIG. 30). The user controls the dosage by depressing the circular disk 111np axially. The plunger rod 102 comprises a cylindrical high-resolution peg 109 and a number of pegs 110 corresponding to the various dosage volumes that can be set and injected using the device 101. Peg 110a corresponds to the lowest deliverable dosage volume, and peg 110c corresponds to the highest deliverable dosage volume. Also shown in FIG. 30 are axial slots 112d and 112a, both of which help prevent rotation of the plunger rod 102 during device operation. Slots 112b and 112c help improve manufacturability of the plunger rod 102. The surface area 110s of the peg 110 is responsible for the end of the dosage. Peg 110 surface 100l is responsible for axial fixation of plunger rod 102 in the non-patient direction after the dosage is completed. Figure 31 shows modifications to plunger rod 102 within device 101. High resolution peg 109a may have a flat surface, and patient end 111p-a of plunger rod 102 may have a flat surface (as shown in Figure 31) that is closer to plunger stopper 7 than patient end 111p of plunger rod 102. It is possible that this end of the plunger rod may have other modifications for engaging plunger stopper 7.
[0156] According to various embodiments, the features of the dose setting dial 103 are detailed in FIG. 32 . The dose setting dial 103 includes a rotatable body with a first stop with surface 118 a that defines the beginning of the dose delivery position of the plunger rod 102 and a second stop with surface 122 a that defines the end of the dose delivery position of the plunger rod 102. The dose setting dial 103 can include three sections: a user contact and dose setting 113, a dose volume reference 114, and an end of the dosing device 115. Markings 116 that provide a visual aid to the user regarding the dose volume to be set are printed on the cylindrical section 114. The dose setting dial 103 has an axial cavity 117 within which the plunger rod 102 is positioned. The end of the dosing device 115 consists of a portion of the cylinder 114 with circular surface features that extend sharply toward the axis of the dose setting dial 103. Through-side slots 118 and 119 are present on cylinder 114. Slot 118 engages high-resolution peg 109 (or 109a). Surface 118a contacts the surface of peg 109 on its non-patient side. Slot 119 is divided by beam 120 into a dosage slot first end 121e, a dosage slot start 121s, and a dosage slot second end 122. When a user selects and sets a dosage for injection, peg 110 corresponding to the selected dosage on plunger rod 102 is vertically aligned with slot 121e. Peg 110 corresponding to the dosage amount immediately smaller than the dosage amount selected by the user, except for the minimum dosage volume setting and all other dosage volumes set by the user, is vertically aligned with dosage slot second end 122. At the end of the aforementioned user-selected dose, the aforementioned peg corresponding to the immediately smaller volume is contained within and restrained at the second end of the dose slot 122 and axially restrained by surface 122a. The deflection of the beam 120 just prior to the end of the dose by the peg corresponding to the selected dose volume and its subsequent return to the position illustrated in Figure 32 provides an audible dose indication. The user can rotate the dose setting dial 103 by manipulating the user touch and the dose setting section 113.The bottom of the dose setting dial 103 contains features for controlling and aligning the dose setting dial. Rectangular groove segments 124 each correspond to a different dose volume that can be set using this embodiment. There is also one rectangular groove segment 124a, which corresponds to the "→" mark 116. Groove 124b corresponds to the lowest injection volume (0.2 milliliters), and groove 124c corresponds to the highest injection volume (2.0 milliliters) that can be set in the embodiment 101 illustrated here. Circular groove segment 123 covers the cumulative angle of rotation traversed by the dose setting dial 103 between the lowest and highest dose volumes, i.e., the angle between 123b and 123c. 123a corresponds to the position of the "→" mark 116. Slope 125 allows beam 138 on housing 105 to traverse from the inside of the groove starting at 123a to the outside of the groove. The interaction between surfaces 118 and 109 is similar to the high resolution movement adjustment between screws 21 and 20 in the embodiment of Figure 2. The coarse dose setting interaction between peg 110 and surface 122a is similar to features 18 and 31 in the embodiment of Figure 2.
[0157] Various views of beam 120 by creating a section of dose setting dial 103 are shown in FIG. 33. Surface 120a contacts plunger rod 102. Protrusion 120-1 on beam 120 serves to axially restrain peg 110 (and therefore plunger rod 102) corresponding to the dose volume set for injection in the non-patient direction. At the end of dose delivery, peg 110 corresponding to the dose volume setting and beam 140 at the end of dose drum 106 are restrained together between surfaces 120b and 121a. Immediately before the end of delivery, the angled feature on 120-1 allows beam 140 to deflect beam 120 from "b" to "a." After peg 110 corresponding to the dose volume setting reaches the end of the dose position, beam 120 returns to position "a" with surface 120b locking the retraction of plunger rod 102. This also produces an audible sound indicating the end of the dosage. For all dosage volumes except the lowest dosage volume, the peg 110 corresponding to the volume immediately less than the set volume is restrained between surfaces 120c and 122a at the end of the dosage volume. Just before the end of dosage for all dosage volume levels except the lowest settable volume, the peg 110 also deflects the beam 120 from "d" to "c." Upon reaching the end of the dosage, the peg 110 escapes from this beam 120, allowing it to return to the "d" position, which also creates an audible indication of the end of the dosage.
[0158] A cover 104 according to various embodiments is shown in FIG. 34. A cutout 126 on the cover 104 provides a window only for the dose marking 116 corresponding to the dose volume set by the user. The other markings are hidden by the stationary cover 104. Slot 127c provides user access to section 114 of the dose setting dial 103, allowing the user to rotate the dose setting dial 103 to set the dose. To facilitate attachment to the housing 105, the cover 104 has multiple cylindrical posts 128p. Together with identical slots 129h in the housing 105, slots 129c allow for the placement and axial restraint of the disk 107. Anti-rotation feature 112a and plunger rod angled slot 131c are used to engage tab 40 of clip 14 used to attach syringe 9 in a manner identical to previously disclosed embodiments. 132c are used to engage the feature on the end of the dose drum 106. The end of the dosage drum is visible through slot 133. A semi-circular transverse slot 134c is also incorporated into cover 104 to aid in the attachment of a needle shield device.
[0159] Various embodiments of the housing 105 are shown in FIG. 35. Slot 129h complements slot 129c to secure the disk 107 and axial restraint. 131h is used to engage one of the 40 tabs on the clip 14 used to attach the syringe 9, similar to slot 131c. During assembly, tab 40 on the cup 14 axially aligns with axial keyway 135 until it reaches slots 131h and 131c. The clip 14 is pulled to securely attach the syringe 9 to the housing 105. Slot 132h is identical to and corresponds to slot 132c on the cover 104. Semicircular transverse slot 134h can assist in the attachment of a needle shield device. The housing 105 also includes two symmetrical slots 136 diametrically intersecting each other to allow the user to inspect the medication 8 in the syringe 9 before injection. Features 136a and 136b are formed by the intersection of slot 136 and axial keyway 135. Clicker beam 137 interacts with rectangular groove section 124 on dose-setting dial 103. Surfaces 137a and 137c are angled so that clicker beam 137 can transition into or out of rectangular groove section 124, depending on the direction of rotation of dose-setting dial 103. Each time clicker beam 137 transitions into rectangular groove section 124, the user hears an audible sound and is provided with tactile feedback. When clicker beam 137 is received within a rectangular groove section, the corresponding dosage marking 116 is visible to the user through cutout 126 on cover 104. For example, when clicker beam 137 is received within rectangular groove section 124a, a "→" is visible through cutout 126. When clicker beam 137 is received within rectangular groove section 124b, a "0.2" is visible through cutout 126. Also in this example, when clicker beam 137 is received in rectangular groove section 124c, "2.0" is visible through cutout 126. Clicker beam 138 is positioned in circular groove section 123. When first received by a user, clicker beam 138 is positioned with surface 138a and contact edge 123a. At the same time, "→" mark 116 is visible through cutout 126.Surface 138a ensures that a user's rotational input to dose setting dial 103 can only be applied in the direction of ramps 125 to 123b by deflecting clicker beam 138. When surface 138a reaches 123b, the "0.2" portion of marking 116 is visible through cutout 126. Once at 123b, the clicker beam returns to its undeflected state, and surface 138a prevents dose setting dial 103 from rotating in the direction of ramp 125. The angle of rotation between 123a and 123b is the same as the angle of rotation between the "→" and "0.2" markings 116. Thus, surface 138b prevents dose setting dial 103 from transitioning from "0.2" to "→." After the transition from "→" to "0.2", continued rotation of dose setting dial 103 is permitted until surface 138c contacts 123c, at which point "2.0" (maximum deliverable dose for the illustrated embodiment) marking 116 is visible through cutout 126. Dose setting dial 103 may be rotated in either direction except during times when clicker beam 138 is at 123b and 123c. The interaction between surface 138c and the surface by edge 123c prevents the transition from "2.0" to "→" marking 116 on dose setting dial 103.
[0160] The end of the dose drum 106 is shown in Figure 36. It consists of two flexible beams 141 with hemispherical pegs that help it rotate within slots 132c and 132h, respectively, in the cover 104 and housing 105. A colored band 139 is printed on the outer cylindrical surface of the end of the dose drum 106. This band 139 provides a visible end-of-dose indication to the user and is visible to the user at the end of the dose through zone 133 on the cover 104. The inner diameter of the end of the dose drum 106 that defines the cavity 117 is slightly larger than the diameter of segment 115 on the dose setting dial 103, and its outer diameter is smaller than the diameter of segment 114 of the dose setting dial 103. The end of the dose drum 106 is aligned axially with the dose setting dial 103. The radially inward-facing beam 140 is positioned within slot 121 of the dose setting dial 103 at the beginning of dose setting. This rotationally aligns the end of the dose drum 106 with the dose setting dial 103. When the patient-facing side of peg 110 corresponding to the dose volume set by the user advances axially toward 121a of the dose setting dial 103 to deliver the dose, the beam 140 advances from slot 121s to slot 121e. At the end of the dose, the dose 140 resides between peg 110 and face 121a. This axial translation releases the hemispherical pegs of beam 141 from slots 132c, 132h, and the colored band 139 becomes visible to the user through slot 133 in cover 104 at the end of the dose. This method of indicating the end of the dose to the user is the same regardless of the volume injected. This provides uniformity in conveying information to the user. Alternatively, the ends of the dosage drum 106 can be thought of as portions of a cylinder.
[0161] 37 illustrates a disk 107 that may be located at 129c and 129h. It includes a radially inwardly facing protrusion 143 that is located within slot 112d of the plunger rod 102. The protrusion 143 helps prevent rotation of the plunger rod 102. An X-ring 15 is located around cylindrical feature 142. During assembly, the plunger rod 102 is located within cavity 117.
[0162] Two optically transparent window covers 108, shown in Figure 38, are attached to slots 136. Window covers 108 are attached to housing 105 by first placing feature 143 within 136a of housing 105, and then placing clip 142 within 136b, thereby locking it and covering slot 136.
[0163] The assembled syringe 101, according to various embodiments, is shown without its cover 104 as 101' in FIG.
[0164] In accordance with various embodiments, a portion of an external view of a dose setting using embodiment 101 is shown in FIG. 40. "a" corresponds to the view as the embodiment would appear when received by a user. The axial position of plunger rod 102 is labeled 144. As dose setting dial 103 is rotated by the user to obtain "b" (0.2 ml), "c" (0.4 ml), "d" (0.8 ml), "e" (1.0 ml), "f" (1.8 ml), or "g" (2.0 ml), the axial position of plunger rod 102 changes to 145. However, this axial position 145 is the same regardless of the dose volume set for "b," "c," "d," "e," or "f." The axial translation from 144 to 145 is a high resolution of plunger rod 102 movement, followed by a setting for a coarser resolution of plunger rod 102 movement.
[0165] The relative positions of plunger rod 102 and dose setting dial 103 after an initial translation facilitated by the high-resolution movement are shown in Figure 41. The high-resolution movement is completed when surface 118a advances peg 109a axially to the position shown in b', which corresponds to the start of the 0.2 milliliter dose volume for the dose in the illustrated embodiment. Immediate further rotation of dose setting dial 103, as shown in c', positions peg 109a after the maximum inner diameter of section 114, but at the same axial position as b'. Continued rotation of dose setting dial 103 results in positions d', e', f', and g', where peg 109a is at the axial positions depicted in b' and c'.
[0166] Dose setting and dose delivery for 0.2 and 2.0 milliliter dose volumes are illustrated in FIG. 42, which shows the interaction of the dose setting dial 103 and plunger rod 102. The position of the dose setting dial 103 relative to the plunger rod 102 before the dose setter is indicated by "a." Rotating the dose setting dial 103 to set a 0.2 milliliter dose volume (shown by "b") advances the plunger rod 102 from axial position 144 to position 145. This is a high-resolution movement that may help overcome plunger stopper 7 stiction in a controlled manner. At the same time, peg 110a on the plunger rod 102 is longitudinally aligned with stop surface 121a. After the user advances the plunger rod 102 axially to deliver the 0.2 milliliter set dose, as indicated by "c," axial position 146 of the plunger rod 102 is the end of the dose position. Concurrently with the completion of this dose position 146, peg 110a enters 121e. Between the patient-facing side of peg 110a and stop surface 121a is end beam 140 of dose drum 106 (not shown here for visual clarity). "d" depicts the configuration when a 2.0 ml dose (the maximum dose for the illustrated embodiment) is set. The axial position 145 of plunger rod 102 at the start of the dose at "d" is the same as that at "b." Pegs 110c and 110b on the plunger rod are longitudinally aligned with stop surfaces 121a and 122a, respectively, of dose setting dial 103. After the user axially advances plunger rod 102 to dispense the 2.0 ml set dose as indicated by "e," axial position 147 of plunger rod 102 is the end of the dose position. Upon completion of this dosage position 147, peg 110c enters 121e. Between the patient-facing side of peg 110c and stop surface 121a is end beam 140 of dosage drum 106 (not shown here for visual clarity). Also, peg 110b is now axially constrained within cavity 122, contacting surface 122a. Cavity 122 is only free for the minimum dosage volume (0.2 milliliters in this illustrated example).For all other dosages, cavity 122 axially and rotationally restrains peg 110 on the plunger rod corresponding to the immediately lower level volume of the set for injection.
[0167] In some applications, it may be desirable to shield the view of the needle before and after an injection. Embodiment 148 illustrates one such example in which a needle shield 149 hides the view of the injection needle 97. The needle shield 149 is guided within the track 135 of the housing 105. The end of the procedure indicator drum is contained within the needle shield 149. When the needle shield 149 is pressed against the injection site and the hidden needle 97 is inserted, the needle shield 149 rotates the slider 150 upon retraction into the housing 105, where the slider contains a track for guiding features on the needle shield 149. The slider 150 is axially constrained within slots 134c and 134h. After the injection procedure is completed, a spring 152 pushes the needle shield 149 over the needle 97, and a locking feature on the slider 150 axially locks the needle shield 149.
[0168] The foregoing description has been described with reference to specific embodiments for purposes of explanation. However, the illustrative discussion above is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the above teachings. The embodiments were chosen and described in order to best explain the principles of the technology and their practical application. Thus, those skilled in the art can best utilize the technology and various embodiments with various modifications suited to the particular use envisioned.
[0169] Although the present disclosure and embodiments have been fully described with reference to the accompanying drawings, it should be noted that various changes and modifications will become apparent to those skilled in the art. Such changes and modifications are to be understood as being included within the scope of the disclosure and embodiments as defined by the claims. Finally, the entire disclosures of the patents and publications mentioned in this application are hereby incorporated by reference.
Claims
1. 1. A plunger rod assembly comprising: The main body and a plunger rod at least partially received in the main body and including one or more sets of protrusions; a dose setter comprising a rotatable body operatively coupled to the plunger rod and comprising one or more sets of stops for engaging the one or more sets of protrusions of the plunger rod depending on at least a rotational position of the one or more sets of stops relative to the one or more sets of protrusions, wherein the one or more sets of protrusions include a plurality of protrusions or the one or more sets of stops include a plurality of stops, a first rotational adjustment associated with the dose setter configured to set a first dose increment by adjusting a relative axial position between the rotatable body and the plunger rod, and a second rotational adjustment associated with the dose setter configured to set a second dose increment greater than the first dose increment by adjusting the relative rotational alignment between the one or more sets of stops and the one or more sets of protrusions; A plunger rod assembly for a syringe comprising:
2. 2. The plunger rod assembly of claim 1, wherein the first rotational adjustment comprises a rotatable dial that engages the rotatable body and is rotatable relative to the rotatable body to translate the rotatable body axially relative to the main body.
3. The plunger rod assembly of claim 2 , wherein the rotatable dial includes threads that engage threads on the rotatable body.
4. 4. The plunger rod assembly of claim 1, wherein the second rotational adjustment comprises a dial for rotating the rotatable body.
5. 5. The plunger rod assembly of claim 4, wherein the rotatable body is axially translatable relative to the dial of the second rotational adjustment.
6. 5. The plunger rod assembly of claim 4, wherein the rotatable body and the dial of the second rotational adjustment are fixed relative to one another.
7. 7. The plunger rod assembly of claim 1, wherein the first rotational adjustment portion adjusts the axial position of the rotatable body relative to the main body.
8. The plunger rod assembly of claim 1 , wherein the first rotational adjustment portion adjusts the axial position of the plunger rod relative to the body.
9. 9. The plunger rod assembly of claim 1, wherein the plunger rod is rotationally fixed.
10. 10. The plunger rod assembly of claim 1, wherein the set of one or more protrusions comprises a single protrusion and the set of one or more stops comprises a plurality of stops.
11. 10. The plunger rod assembly of claim 1, wherein the set of one or more protrusions comprises a plurality of protrusions and the set of one or more stops comprises a single stop.
12. 2. The plunger rod assembly of claim 1, wherein the first rotational adjustment portion comprises a slot in the rotatable body that receives a portion of the plunger rod, the slot having an inclined surface that axially presses the portion of the plunger rod received in the slot when the rotatable body rotates.
13. 13. The plunger rod assembly of claim 12, wherein the set of one or more protrusions comprises a single protrusion, and wherein the portion of the plunger rod comprises the single protrusion.
14. A plunger rod assembly as described in claim 12 or claim 13, wherein the portion of the plunger rod can escape one circumferential end of the slot so that continued rotation of the rotatable body does not cause further axial translation of the plunger rod relative to the rotatable body.
15. A syringe comprising a plunger rod assembly according to any one of claims 1 to 14.
16. 16. The syringe of claim 15, wherein the syringe is a pre-filled syringe.
17. 17. The syringe of claim 15 or claim 16, further comprising a retractable needle cover that is locked in an extended position at the end of medication delivery.
Citation Information
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