Drug delivery devices
The drug delivery device addresses user confusion and discomfort by using cam features to convert rotational motion into axial motion for easy cap removal, improving user experience and reducing errors.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-09
- Publication Date
- 2026-03-25
AI Technical Summary
Drug delivery devices often require users to manually remove a detachable cap, which can be confusing and may require significant force, especially when the cap is securely attached, potentially leading to user discomfort and difficulty in operation.
A drug delivery device with a housing and a removable cap featuring cam features that convert rotational motion into axial motion, allowing easy detachment with minimal force, and visible cam features to guide users on the removal process.
Facilitates easy and comfortable removal of the detachable cap with reduced force requirements, enhancing user experience and reducing errors by providing visual cues for cap removal.
Smart Images

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Abstract
Description
Technical Field
[0001] Cross - Reference to Related Applications This application claims priority to U.S. Provisional Patent Application No. 63 / 159,335, filed Mar. 10, 2021, the entire content of which is hereby incorporated by reference in its entirety.
[0002] This disclosure relates to drug delivery devices, and more particularly to devices that automatically inject drugs into a patient's body.
Background Art
[0003] Due to the general aversion to exposed needles and, further, health and safety concerns, there has been a development of drug delivery devices that hide the needle or other insertion member before use and automate various aspects of the injection process. Such drug delivery devices offer various advantages compared to conventional drug delivery, including, for example, delivery via a conventional syringe.
Summary of the Invention
Problems to be Solved by the Invention
[0004] Drug delivery devices may incorporate various mechanisms for implementing various automated features. Such features may include, among other features, automatically covering the needle in a pre - delivery and / or post - delivery state, automatically inserting the needle and / or cannula into the user's body, automatically activating the drive mechanism, and automatically indicating to the user that drug delivery has been completed. The device may also include additional needle - covering features, such as a detachable cap that is utilized when the device is in a storage state. The detachable cap may be removable by the user manually, but may require a minimal amount of force and / or a removal force in a specific direction.
[0005] Furthermore, some users may not be familiar with all the features or functions of the drug delivery device. For example, some users may not easily understand that the cap should be removed before use, or how / should the cap be removed.
[0006] This disclosure provides a drug delivery device that implements an advantageous alternative to existing drug delivery devices and the detachable cap feature, and is capable of addressing one or more of the challenges or needs described herein. [Means for solving the problem]
[0007] One aspect of the present disclosure provides a drug delivery device comprising a housing, a drug storage container, and a removable cap. The housing may include a housing cam feature and a longitudinal axis and include an opening. The drug storage container may include a delivery member having an insertion end configured to at least partially extend through the opening while in a delivery state. The removable cap may define a cap cam feature and is configured to be detachably coupled to the housing such that it has a storage position in which the removable cap is coupled to the housing and at least partially covers the opening, and a removal position in which the removable cap is not coupled to the housing. The cap cam feature and the housing cam feature are configured to convert rotational motion into axial motion such that the cap cam feature and / or housing cam feature push the removable cap along the longitudinal axis when the removable cap rotates. The housing cam feature and the cap cam feature are each visible to the user of the drug delivery device to signal the cam function of the housing cam feature and / or cap cam feature.
[0008] The cap cam features the ability to define waveforms. The detachable cap may include a substantially cylindrical body portion that defines an annular leading edge rim and an end wall substantially perpendicular to the body portion, with the annular leading edge rim defining the waveform. The annular leading edge rim can define two waveforms.
[0009] The housing may define a substantially cylindrical outer surface, and the housing cam feature may include a projection extending in the opposite direction from the substantially cylindrical outer surface. The projection may be aligned with the waveform of the cap cam feature when the detachable cap is in the storage position. The projection may be in contact with the waveform of the cap cam feature when the detachable cap is in the storage position. The projection can define a wavefront corresponding to the waveform of the cap cam feature.
[0010] The housing may include two projections, each extending in opposite directions from a substantially cylindrical outer surface. The housing cam feature and the cap cam feature may be defined by or located on the outer surface of the drug delivery device, respectively.
[0011] The housing cam features and / or cap cam features may include embodiments that improve their visibility. For example, embodiments that improve visibility may include bright colors.
[0012] The detachable cap may include at least one rotation-supporting feature, such as a fin.
[0013] Another aspect of the present disclosure provides a drug delivery device comprising a housing, a drug storage container, and a removable cap. The housing may include a housing cam feature and a longitudinal axis and include an opening. The drug storage container may include a delivery member having an insertion end configured to extend at least partially through the opening while in a delivery state. The removable cap may define a cap cam feature and is configured to be detachably coupled to the housing such that it has a storage position in which the removable cap is coupled to the housing and at least partially covers the opening, and a removal position in which the removable cap is not coupled to the housing. The cap cam feature and the housing cam feature are configured to convert rotational motion into axial motion such that the cap cam feature and / or housing cam feature push the removable cap along the longitudinal axis during rotational motion of the removable cap. The housing cam feature and the cap cam feature may each be defined by or disposed on the outer surface of the drug delivery device to signal the cam function of the housing cam feature and / or cap cam feature.
[0014] It is believed that the following description, in conjunction with the attached drawings, will further enhance your understanding of this disclosure. Some drawings have been simplified by omitting elements selected for the purpose of making other elements clearer. Such omissions of elements in some drawings do not indicate the presence or absence of a particular element in any of the exemplary embodiments, unless explicitly indicated in the corresponding description. Furthermore, none of the drawings are necessarily drawn to a fixed scale. [Brief explanation of the drawing]
[0015] [Figure 1] This is a perspective view of an exemplary drug delivery device in various embodiments, the device having a removable cap that is coupled to a housing. [Figure 2] Figure 1 is a front view of the drug delivery device. [Figure 3A] This is a perspective view of the distal portion of the drug delivery device shown in Figure 1, with the detachable cap being removed. [Figure 3B] This is a perspective view similar to Figure 3A, but with the detachable cap rotated more than in Figure 3A to further separate the cap from the housing. [Figure 4] This is a perspective view of the distal portion of the drug delivery device shown in Figure 1, with the detachable cap removed. [Figure 5] This is a cross-sectional view of a portion of the drug delivery device shown in Figure 1, which has a detachable cap that is attached to the housing. [Figure 6] This is a front view of another exemplary drug delivery device housing according to various embodiments. [Figure 7] Figure 6 is a side view of the drug delivery device housing. [Figure 8] This is a perspective view of the distal portion of the housing shown in Figure 6, positioned adjacent to a detachable cap that is configured to be detachably connected to the housing. [Figure 9]A perspective view of the distal portion of a device having a detachable cap coupled to a housing in another exemplary drug delivery device according to various embodiments. [Figure 10] A perspective view showing the distal portion of a device having a detachable cap coupled to a housing in yet another exemplary drug delivery device according to various embodiments. [Figure 11] A perspective view showing the distal portion of a device having a detachable cap coupled to a housing in yet another exemplary drug delivery device according to various embodiments. [Figure 12] A perspective view showing the distal portion of a device having a detachable cap coupled to a housing in yet another exemplary drug delivery device according to various embodiments. [Figure 13] A perspective view showing the distal portion of a device having a detachable cap coupled to a housing in yet another exemplary drug delivery device according to various embodiments. [Figure 14] A perspective view showing the distal portion of a detachable cap of yet another exemplary drug delivery device according to various embodiments.
Modes for Carrying Out the Invention
[0016] The present disclosure generally relates to a drug delivery device operable to administer a drug by a user or, if the patient is the user, to self-administer the drug. The device includes a housing having a housing cam feature and a longitudinal axis, and includes an opening. The device also includes a detachable cap having a cap cam feature, and is configured to be removably coupled to the housing such that the detachable cap has a storage position in which it is coupled to the housing and at least partially covers the opening, and a removal position in which the detachable cap is not coupled to the housing. The cap cam feature and the housing cam feature are configured to convert a rotational movement into an axial movement such that the cap cam feature and / or the housing cam feature push the detachable cap along the longitudinal axis during rotation of the detachable cap. The housing cam feature and the cap cam feature are each visible to a user of the drug delivery device to signal the cam function of the housing cam feature and the cap cam feature.
[0017] Figures 1-5 show, from multiple perspectives, an embodiment of a drug delivery device 10 that delivers a drug, which may sometimes be referred to herein as a pharmaceutical or a formulation. The drug may be, but is not limited to, various biological substances such as peptibodies, peptides, or antibodies. The drug may be a fluid or a liquid, but the present disclosure is not limited to a particular state.
[0018] Various implementations and configurations of the drug delivery device 10 are possible. This embodiment of the drug delivery device 10 is configured as a single-use disposable syringe. In other embodiments, the drug delivery device 10 may be configured as a multi-use reusable syringe. The drug delivery device 10 is operable for self-administration by a patient or for administration by a caregiver or a healthcare provider (e.g., a physician or a nurse) who has received proper training. The exemplary drug delivery device shown may be in the form of an autoinjector or a pen-type injector and may thus be held in a user's hand over the duration of drug delivery, but may be suitable for other drug delivery devices and / or configurations. <9999999> The configuration of various elements included in the drug delivery device 10 may depend on the operating state of the drug delivery device 10. The drug delivery device 10 may have a storage state, a pre-delivery state, a delivery or administration state, and a post-delivery state, but there may be fewer or more types of states. For example, each state may have several substates or stages. The storage state may correspond to the configuration of the drug delivery device 10 in Figures 1-2 and 5, where the delivery device includes a removable cap in the storage position. In some embodiments, the storage state may exist from the time the drug delivery device 10 leaves the manufacturing facility until the patient or user removes the cap. The pre-delivery stage may correspond to the configuration of the drug delivery device 10 after the removable cap has been removed but before the user activates the device. This may include the time after the user removes the removable cap while the user is initially aligning the drug delivery device 10 to the injection site, but before administration begins. The delivery state may correspond to the configuration of the drug delivery device 10 while drug delivery, also referred to herein as administration, is in progress. The post-delivery state may correspond to the configuration of the drug delivery device 10 after drug delivery is complete and / or when the stopper is placed at the end of administration position in the drug storage container.
[0020] As shown in Figures 1-5, the drug delivery device 10 includes an outer casing or housing 12. In some embodiments, the housing 12 may be sized and sized so that a person can grasp the syringe 10 with one hand. The housing 12 has a substantially elongated shape, such as a cylinder, and can extend along the longitudinal axis A between the proximal and distal ends. An opening 14 (Figure 5) is formed at the distal end to allow the insertion end 28 of the delivery member 16 to extend to the outside of the housing 12. A transparent or translucent inspection window 17 is positioned in the wall of the housing 12 to allow the user to view the internal elements of the drug delivery device 10, including the drug storage container 20. By viewing the drug storage container 20 through the window 17, the user can confirm that drug delivery is in progress and / or completed. The detachable cap 19 can cover the opening 14 at the distal end of the drug delivery device 10 before use, and in some embodiments, may include a gripper 13 (Figure 5) configured to assist in the removal of a sterile barrier 21 (e.g., rigid needle shield (RNS), non-rigid needle shield (nRNS), etc.) placed on the insertion end 28 of the delivery member 16. The gripper 13 may include one or more inwardly projecting barbs or arms that frictionally or separately mechanically engage with the sterile barrier 21 to pull the sterile barrier 21 together with the detachable cap 19 when the user separates the detachable cap 19 from the housing 12. Thus, the removal of the detachable cap 19 has the effect of removing the sterile barrier 21 from the delivery member 16.
[0021] The device may include a drive mechanism configured to store energy and, when activated by the user, or in response to activation, release or output said energy to drive a plunger, thereby delivering the drug from the drug storage container 20 to the patient's body through the delivery member 16.
[0022] As best illustrated in Figures 1-2, in one embodiment, the housing 12 may include two separate and interconnected structures: a rear end cap 23 (e.g., a rear end cover) at the proximal end of the drug delivery device 10 and a tubular housing 25 that extends substantially completely along the length of the drug delivery device 10 and defines the opening 14. Additionally or alternatively, the housing 12 may include fewer or more elements, such as a two-piece tubular housing having a front and a rear section. The tubular housing 25 may be hollow and have a substantially cylindrical or tubular shape, and the rear end cap 23 may have a substantially hemispherical or hollow cylindrical shape with an open end and a closed end. In some embodiments, the rear end cap 23 and the tubular housing 25, and any elements placed inside them, can be assembled together to define different subassemblies. In some alternative embodiments, the housing 12 may be a one-piece configuration defined by a single monolithic structure in which the rear end cap and the tubular housing are integrated into a single element.
[0023] The drug storage container 20 is located within the internal space of the housing 12 and is configured to contain the drug. The drug storage container 20 may be pre-filled by the manufacturer and shipped to a location where it will be combined with the rest of the drug delivery device 10. For example, the drug 22 may be delivered and / or injected into the patient's body in multiple use cases, such as in a pre-filled syringe or an auto-injector containing a pre-filled syringe. In any case, by using the same or similar syringe elements, at least some of the steps described above, such as filling, labeling, packaging, shipping, and delivery, can be made more efficient or simpler in two different use cases. As another example, if multiple use cases utilize some or all of the same syringe elements, then for at least one of the use cases, some of the regulatory channels for the marketing and / or distribution of the drug may be made more efficient and / or simpler.
[0024] In some embodiments, the volume of drug 22 contained in the storage tank of drug storage container 20 is equal to 1 mL, or approximately (e.g., ±10%) equal to 1 mL, or equal to 2.5 mL, or approximately (e.g., ±10%) equal to 2.5 mL, or equal to 3 mL, or approximately (e.g., ±10%) equal to 3 mL, or approximately (e.g., ±10%) less than or equal to 1 mL, or approximately (e.g., ±10%) less than or equal to 2 mL, or approximately (e.g., ±10%) less than or equal to 3 mL, or approximately (e.g., ±10%) less than or equal to 4 mL, or approximately (e.g., ±10%) less than or equal to 5 mL, or approximately (e.g., ±10%) less than or equal to 10 mL, or approximately (e.g., ±10%) within the range of 1 to 10 mL, or approximately (e.g., ±10%) within the range of 1 to 5 mL, or approximately (e.g., ±10%) within the range of 1 to 4 mL, or approximately (e.g., ±10%) within the range of 1 to 3 mL, or approximately (e.g., ±10%) within the range of 1 to 2.5 mL.
[0025] The delivery member 16 is connected to or operable to be connected to the storage tank of the drug storage container 20 for fluid communication. The distal end of the delivery member 16 can define the insertion end 28 of the delivery member 16. The insertion end 28 may include other pointed or sharp tips that allow the insertion end 28 to penetrate the patient's skin 5 and subcutaneous tissue during insertion of the delivery member 16. The delivery member 16 may be hollow and have an internal passage. One or more openings may be formed in the insertion end 28 to allow the drug to flow from the delivery member 16 into the patient's body.
[0026] In one embodiment, the drug storage container 20 is a pre-filled syringe having a stake-shaped hollow metal needle for the delivery member 16. Here, the needle may be fixed to the wall of the drug storage container 20 and may be in permanent fluid communication with the storage tank of the drug storage container 20. In another embodiment, the needle may be coupled to the drug storage container 20 via a Luer lock or other suitable connection. In several other embodiments, the drug storage container 20 may be a needleless cartridge and therefore may not initially be in fluid communication with the delivery member 16. In such embodiments, the drug storage container 20 may move toward or backward the proximal end of the delivery member 16 to establish fluid communication between the storage tank of the drug storage container 20 and the delivery member 16 by the proximal end of the delivery member 16 penetrating a partition wall covering the opening of the drug storage container 20.
[0027] The drug storage container 20 may include a main body portion having a distal end 20a and a proximal end (not shown). The drug storage container 20 may be fixed to the housing 12 so as not to move relative to the housing 12 once the drug storage container 20 is installed inside the housing 12. In this way, the insertion end 28 of the delivery member 16 continues to extend through the opening 14 of the housing 12 in the pre-delivery, delivery, and post-delivery states. For example, as shown in Figure 2, the delivery member 16 extends beyond the distal end of the housing 12 that defines the opening 14. However, in some configurations, such as the storage configuration shown in Figure 2, the delivery member 16 is covered / protected by a sterile barrier 21 and a protective member 32 surrounding the delivery member 16 to protect against or reduce the likelihood of unintended or premature needle stick injuries.
[0028] The device may also include a container holder 33 configured to fix the drug storage container 20 to the housing 12, for example, by preventing distal movement of the drug storage container 20 during plunger operation. The container holder 33 may include a plurality of flanges 33c, each containing an arc-shaped inclined surface 33a that substantially matches the arc shape of the shoulder of the drug storage container 20. In a more specific example, when the drug storage container 20 is inserted into the container holder 33, the flanges 33c cooperate to support the shoulder and restrict distal movement of the drug storage container 20. The housing 12 includes a plurality of lock slots 12c, each receiving a flange 33c of the container holder 33, which can prevent and / or restrict relative movement between each element 12, 33. As a result, when fully assembled, the storage container 20, container holder 33, and housing 12 are all substantially or completely fixed to each other.
[0029] The device may also include a locking ring 40 configured to lock the protective member 32 in an extended position once a specific state is reached, such as the injection state or post-injection state. The locking ring 40 shown in Figure 5 is centrally located and rotates around the longitudinal axis A. In some embodiments, the locking ring bias member 51 may include a compression spring (e.g., a helical compression spring). The locking ring 40 can also serve to provide initial resistance to the movement of the protective member 32. For example, the initial resistance may be configured to facilitate the insertion of the delivery member 16 into the patient's body by utilizing a harness or by utilizing inertial force separately. In other words, the locking ring 40 and / or other elements can provide initial resistance to the movement of the protective member 32, thereby amplifying the force applied by the user.
[0030] These and other embodiments relating to the operation of exemplary drug delivery devices are discussed in detail in U.S. Patent Application No. 17 / 035,851, filed September 29, 2020, which is incorporated by reference in its entirety.
[0031] As described above, the detachable cap 19 may have a storage position in which the detachable cap 19 is coupled to the housing 12 (Figures 1, 2, and 5), and a removal position in which the detachable cap 19 is removed from the housing 12 and not coupled to the housing 12 (Figure 4). Also as described above, the device 10 may include a sterile barrier 21 that is removed from the delivery member 16 when the detachable cap is removed from the housing 12. The sterile barrier 21 can be fitted to the drug storage container 20 with relatively tight or relatively high friction in order to maintain the sterility of the delivery member 16 and / or to prevent air from entering the drug storage container 20. For example, it may be desirable to prevent or reduce the possibility of air entering the drug storage container and / or delivery member 16 in order to reduce the possibility of contamination and / or clogging of evaporated drug. Additionally or alternatively, it may be desirable to fit the sterile barrier 21 and the drug storage container 20 with relatively tight or relatively high friction in order to prevent or reduce the possibility of accidental needle stick injuries. For these or other reasons, it may also be desirable, or alternatively, to fit the detachable cap 19 and the housing 12 together relatively tightly or with relatively high friction. The sterile barrier 21 and the detachable cap 19 may also be coupled to each element (e.g., drug storage container 20 and housing 12) via other suitable features, such as bonded tab / slot connections, breakable connections such as perforated seals, screw connections, or other features that provide a relatively secure but detachable connection between each element.
[0032] As a result of these bonding forces, characteristics, and / or other factors, some device users may find it difficult or uncomfortable to remove the detachable cap 19. For example, some device users may have difficulty removing the cap 19 using only axial force (along axis A). In other words, some device users may have difficulty pulling / removing the cap 19 from the housing 12. The cap 19 shown in Figures 1-5 includes multiple ribs to make it easier for the user to grip the surface of the cap when removing it.
[0033] The device 10 shown in Figures 1-5 also includes a cam feature that converts rotational motion into axial motion so that the detachable cap 19 can be removed and / or facilitated by being pushed in the opposite direction from the housing 12 during the rotational motion of the detachable cap 19. For example, the housing 12 includes a housing cam feature 12a and a cap cam feature 19c. As a more specific example, to remove the cap 19 from the housing 12 via only axial force / movement (e.g., "linear tensile force"), the user may be required to exert a force of 45 Newtons or less, about 40-45 Newtons, about 35-40 Newtons, about 30-35 Newtons, about 25-30 Newtons, about 20-25 Newtons, about 15-20 Newtons, about 10-15 Newtons, about 5-10 Newtons, or less than about 5 Newtons. In the device 10 shown in Figures 1-5, a linear tensile force of about 10-15 Newtons is required to remove the cap 19.
[0034] The cap cam features 19c shown in Figures 1-5 define a waveform such as an arc-shaped surface. As a more specific example, the detachable cap 19 shown includes a substantially cylindrical body portion 19d and a terminal wall 19e that is substantially perpendicular to the body portion 19d at the distal end of the cap 19. The body portion 19d defines a substantially annular leading edge rim 19f at the proximal end of the cap 19. The leading edge rim 19f defines the waveform cap cam features 19c. As an even more specific example, the leading edge rim 19f shown defines two waveform cam surfaces 19c and two relatively flat surfaces 19c' extending between the waveform cam surfaces 19c. In other words, the two waveform cam surfaces 19c and the two relatively flat surfaces 19c' work together to define the leading edge rim 19f. Alternatively, the leading edge rim 19f can define a continuous waveform such as a continuous sine wave or another continuous waveform. For the purposes of this application, the term “continuous” should be interpreted to mean that the waveform continues around the entire circumference of the leading edge, rather than alternating between wavy and flat surfaces.
[0035] The housing cam feature 12a shown in Figures 1-5 defines a waveform such as an arc-shaped projection extending in the opposite direction from the outer surface 25 of the housing 12. As a more specific example, the housing cam feature 12a is a projection that has a shape somewhat similar to a "smile" or a "crescent moon". As an even more specific example, the illustrated housing 12 defines two waveform cam features 12a.
[0036] When the detachable cap 19 is in the storage position 19a shown in Figures 1, 2, and 5, the cap cam feature 19c engages with or contacts the housing cam feature 12a. Furthermore, each of the illustrated cam features 12a and 19c has a mirror-like shape, with each surface 12a and 19c fitting together smoothly / easily sliding against each other. For example, when the detachable cap 19 rotates (clockwise or counterclockwise) relative to the housing 12, the housing cam features 12a and 19c rotate relative to each other, pushing the detachable cap 19 backward along axis A away from the housing 12. In other words, the cam features 12a and 19c convert rotational motion into axial motion to remove or assist in removing the cap 19. As a more specific example, Figure 3A shows the distal portion of the device 10 after the detachable cap 19 has been pushed distally and backward from the housing 12 by rotation relative to the housing 12. The rotation shown in Figure 3A is a relatively small rotation (5-10 degrees around axis A), but may be sufficient to overcome at least the initial bonding force between the detachable cap 19 and the housing 12, and between the sterile barrier 21 and the drug storage container 20. As a result, even a relatively small rotation can make it possible and / or easy to remove the cap 19. Figure 3B shows the distal portion of the device 10 after the detachable cap 19 has been pushed distally and away from the housing 12 by a larger rotation. The rotation shown in Figure 3B is a larger rotation than that shown in Figure 3A (10-20 degrees around axis A), and may be sufficient to separate the detachable cap 19 and the housing 12, and the sterile barrier 21 and the drug storage container 20. For example, in Figure 3B, the cap 19 is rotated sufficiently so that the protective member 32 is visible between the cap 19 and the housing 12.
[0037] As described above, device 10 requires a direct tensile force of approximately 10 to 15 Newtons to move the cap 19 from the storage position shown in Figure 1 to the removal position shown in Figure 4. In contrast, the rotational force (e.g., "rotational removal force") required to move the cap from the storage position shown in Figure 1 to the partially removed position shown in Figure 3 is less than approximately 5 Newtons. As another example, the rotational removal force may be less than approximately 10 Newtons, less than approximately 8 Newtons, less than approximately 6 Newtons, less than approximately 4 Newtons, less than approximately 3 Newtons, less than approximately 2 Newtons, less than approximately 1.5 Newtons, less than approximately 1 Newton, less than approximately 0.5 Newtons, or approximately 0.5 Newtons. In device 10 shown in Figures 1 to 5, a rotational removal force of approximately 0.5 Newtons is required to remove the cap 19.
[0038] The device may also include features that signal the cam function of the housing cam feature 12a and / or the cam function of the cap cam feature 19c. For example, the housing cam feature 12a and / or the cap cam feature 19c may be visible to the user in order to signal the cam functions of the cam features 12a and 19c. More specifically, there may be users who do not readily understand that the detachable cap 19 can be removed / should be removed and / or that the detachable cap 19 can be rotated / should be rotated. For example, there may be users who are unfamiliar with all the features or functions of the drug delivery device. More specifically, there may be users who do not readily understand that the cap should be removed before use, or how / should be removed. The device typically includes instructions for use ("IFU"), but visible cam features can supplement the IFU and / or provide visual signals to the user on or near the terminal cap 19. As a result, improved visibility of cam features can enhance ease of use, reduce user errors, improve user comfort with the device, reduce user complaints, and improve overall device compliance and user experience.
[0039] One or both of the cam features 12a and 19c may include additional features that improve visibility. For example, one or both of the cam features 12a and 19c may be brightly colored, highlighted, or a different color from the surrounding features. As another example, the detachable cap 19 may be translucent or transparent and the housing may have an opaque color. In such embodiments, the protective member may be a bright color such as yellow or green so that it is visible through the translucent or transparent detachable cap. As yet another example, one or both of the cam features 12a and 19c may include a mark such as an arrow or other symbol, word, or other sign that encourages or instructs the user to rotate the detachable cap. As yet another example, the housing 12 may be a bright color such as white and the housing cam feature 12a may be a color that stands out from the rest of the housing 12 and cap 19 (such as yellow, bright green, or bright orange).
[0040] As an additional or alternative example, one or both of the cam features 12a, 19c may be defined by or positioned on the outer surface 25 of the drug delivery device 10 to signal the cam function of features 12a, 19c. As another example, one or both of the cam features 12a, 19c may include markings such as arrows or other symbols, words, or other signs to prompt or instruct the user to rotate the detachable cap. As yet another example, one of the cam features may be distinguished by color. Additional or alternatively, the cam features 12a, 19c may be visually concentric and / or close to each other to help indicate the rotating cam function of the feature.
[0041] Features that signal the cam function of housing cam features and cap cam features may be advantageous or more desirable than cam features that are built into the device or are not visible to the user. For example, if cam features are not visible, the user may not be able to easily see or understand them.
[0042] As described above, the design of cam features 12a and 19c may affect various aspects of cap removal, such as the rotational removal force at which the feature signals the cam function of features 12a and 19c, the longitudinal distance the cap moves during rotation (e.g., "cap lift"), and / or other aspects. For example, the coefficient of friction and / or cam angle of cam features 12a and 19c may affect the rotational removal force. As a more specific example, the coefficient of friction of cam features 12a and 19c shown in Figures 1-5 may be approximately 0.25. As another example, the coefficient of friction of cam features 12a and 19c may be approximately 0.15-0.35, approximately 0.15-0.5, approximately 0.15-0.65, or approximately 0.05-0.75. The coefficient of friction may be affected by the material, surface roughness, and / or surface finish that constitute the cam shape. To minimize the rotational removal force, it may be desirable to minimize the coefficient of friction of the desired material used in the device.
[0043] The cam angle 19m shown in Figures 1-5 (e.g., the inclination of the tangent 19n to the cap cam feature 19c at the point of contact between cam features 12a and 19c) may be approximately 30 degrees. As another example, the cam angle 19m may be approximately 25-35 degrees, approximately 20-40 degrees, approximately 15-45 degrees, approximately 10-50 degrees, or approximately 5-55 degrees. Generally, a larger cam angle can result in a larger cap lift and a greater rotational removal force. Conversely, a smaller cam angle results in a smaller cap lift and a smaller rotational removal force. Therefore, it may be advantageous to select a cam angle that yields the desired cap lift, cap rotation, and rotational removal force. For example, rotating the cap 19 shown in Figures 1-5 by 90 degrees may result in a cap lift of approximately 5 mm and a rotational removal force of 0.5 Nm. As another example, rotating cap 19 by 90 degrees may result in a cap lift of approximately 4-6 mm and a rotational removal force of approximately 0.35 Nm-0.65 Nm, a cap lift of approximately 5-7 mm and a rotational removal force of approximately 0.25 Nm-0.75 Nm, a cap lift of approximately 3-8 mm and a rotational removal force of approximately 0.15 Nm-0.85 Nm, or a cap lift of approximately 3-8 mm and a rotational removal force of less than approximately 1 Nm.
[0044] The cam angle may vary at different points in the rotation of the cap. For example, the cam angle shown in Figure 3B may differ from the cam angle shown in Figure 3A. For example, the slope of the tangent to the cap cam feature 19c may vary at different points along the cap cam feature 19c, for example, if the cap cam feature 19c has a sinusoidal shape. A varying cam angle may be desirable to give the device a varying force profile. For example, it may be desirable to have a lower cam angle at the trough of the wave (e.g., a low point) to minimize the initial rotational removal force when the sterile barrier is still intact. The cap cam feature 19c may then have a higher cam angle at the midpoint of the wave to provide sufficient cap lift to separate the cap from the housing. Conversely, it may be desirable to have a higher cam angle at the trough of the wave to quickly separate the cap from the housing initially in order to remove the sterile barrier. The cap cam feature 19c may then have a lower rotational removal force by having a lower cam angle at the midpoint of the wave, indicating to the user that the cap has been separated from the housing.
[0045] Figures 6-8 show elements of another exemplary drug delivery device according to various embodiments. For example, Figures 6-7 show a housing 112 which may be coupled to other elements to assemble a device like the one shown in Figures 1-5. The housing 112 includes many of the same features as the housing 12 shown in Figures 1-5, such as the viewing window 117, the housing exterior 125, and the housing cam feature 112a. However, the housing cam feature 112a has a smaller curvature than the housing cam feature 12a shown in Figures 1-5. As mentioned above, the cam feature may have different shapes and sizes depending on the desired characteristics and attributes.
[0046] Furthermore, the housing 112 includes a fixing feature 112b that facilitates securing the detachable cap 119 to the housing 112. More specifically, the fixing feature 112b includes a recess or slot for receiving a fixing tab formed on the cap. Figure 8 shows the distal portion of the housing 112 positioned adjacent to the detachable cap 119 configured to be detachably coupled to the housing 112. For illustrative purposes, Figure 8 does not show all elements of a functioning device, but only the housing 112 and the detachable cap 119. The cap 119 includes a fixing tab 119g configured to fit into the recess 112b to facilitate securing the detachable cap 119 to the housing 112. The fixing features 112b, 119g help prevent accidental removal / detachment of the cap.
[0047] The fixing feature 112b may be configured to engage with the fixing tab 119g to hold the detachable cap 119 in a storage position. For example, the fixing tab 119g may receive the fixing feature 112b in a snap-fit connection that requires a baseline removal force to remove the fixing tab 119g from the fixing feature 112b (or vice versa). As a more specific example, the fixing tab 119g may have a size, shape, stiffness, and surface friction properties that require a removal force of 5N to remove the fixing tab 119g from the fixing feature 112b (or vice versa). Alternatively, the removal force may be approximately 4–6N, approximately 3–7N, approximately 2–8N, approximately 1–9N, approximately 0–10N, or another appropriate value or range.
[0048] As an additional or alternative example, the fixing feature 112b can hold the detachable cap 119 in the storage position regardless of whether the drug storage container is located inside the housing and / or whether the drug storage container is attached to the housing in a position where the drug can be delivered. For example, it may be desirable that the detachable cap 119 be able to be fixed to the housing when, as shown in Figure 5 during the assembly stage, the drug storage container is not yet located inside the housing or the drug storage container is located inside the housing but is not yet in its final position relative to the housing. For this purpose, the fixing features 112b, 119g may be configured to fix the detachable cap 119 to the housing 112 without the influence or assistance of the sterile barrier 21 or any other elements that bind the detachable cap to the drug storage container (e.g., before the final assembly of the device).
[0049] The fixed features 112b and 119g may have a suitable configuration in which a projection on the detachable cap 119 alternates with a receiving slot or any other suitable feature on the housing 112. The fixed features 112b and 119g may also have any suitable shape, such as a curve, a spiral shape, or a circular button shape. The shape, size, and other aspects of the fixed features can facilitate the removal of the cap during rotational motion or other movements in a specific direction or of a specific type. For example, the fixed features shown in Figures 6-8 are approximately horizontal (e.g., approximately perpendicular to axis A) to facilitate separation when the detachable cap 119 rotates. The size and shape of the fixed features 112b and 119g may be designed in conjunction with the size and shape of the cam features 112a and 119c. For example, the cam features 112a and 119c may have a relatively flat bottom / valley to facilitate relative rotational motion between the housing and the cap while minimizing relative translational motion until the fixed features 112b and 119g are separated. In other words, the fixing features 112b and 119g rotate and separate from each other before the cap is translated axially in the opposite direction from the housing. For this purpose, the fixing features 112b and 119g separate with a smoother movement than dragging resistance and / or snapping / breaking sensation for the user. This configuration also provides sufficient translational removal force to secure the cap to the housing while having a relatively small or negligible effect on rotational removal force. In other words, the fixing features 112b and 119g can prevent or minimize “stuck” removal force.
[0050] The housing 112 and the detachable cap 119 include cam features that convert rotational motion into axial motion so that the detachable cap 119 is pushed in the opposite direction from the housing 112 when the detachable cap 119 is rotating, thereby enabling and / or facilitating the removal of the cap 119. For example, the housing 112 includes a housing cam feature 112a, and the detachable cap 119 includes a cap cam feature 119c.
[0051] The cap cam feature 119c defines a waveform such as an arc-shaped surface. As a more specific example, the detachable cap 119 shown includes a substantially cylindrical body portion 119d and a terminal wall 119e that is substantially perpendicular to the body portion 119d at the distal end of the cap 119. The body portion 119d defines a substantially annular leading edge rim 119f at the proximal end of the cap 119. The leading edge rim 119f defines the waveform cap cam feature 119c. As an even more specific example, the leading edge rim 119f shown defines two waveform cam surfaces 119c.
[0052] The housing cam feature 112a defines a waveform, such as an arc-shaped projection, that extends in the opposite direction from the outer surface of the housing 112. As a more specific example, the housing cam feature 112a is a projection that has a shape not unlike that of a slightly upward-facing mouth. As an even more specific example, the illustrated housing 112 defines two wavy cam features 112a.
[0053] When the removable cap 119 is in the storage position 119a, the cap cam feature 119c engages with or contacts the housing cam feature 112a. Furthermore, each of the illustrated cam features 112a and 119c has a mirror-like shape, with each surface 112a and 119c fitted together so as to slide smoothly / easily with respect to the other. For example, when the removable cap 119 rotates (clockwise or counterclockwise) relative to the housing 112, the housing cam features 112a and 119c rotate relative to each other, pushing the removable cap 119 backward from the housing 112 along axis A. In other words, the cam features 112a and 119c convert rotational motion into axial motion to remove or assist in removing the cap 119. Similar to the devices shown in Figures 1-5, even a relatively small rotation of the removable cap 119 can enable and / or facilitate its removal. The elements shown in Figures 6-8 can provide similar tensile and rotational disengagement forces as the elements shown in Figures 1-5. As a more specific example, to remove the cap 119 from the housing 112 via axial force / movement only (tensile force), the user may be required to exert a force of 45 Newtons or less, approximately 40-45 Newtons, approximately 35-40 Newtons, approximately 30-35 Newtons, approximately 25-30 Newtons, approximately 20-25 Newtons, approximately 15-20 Newtons, approximately 10-15 Newtons, approximately 5-10 Newtons, or less than approximately 5 Newtons. In the devices shown in Figures 6-8, a tensile force of approximately 10-15 Newtons is required to remove the cap 119. In comparison, the rotational force required to remove the caps in Figures 6-8 may be less than approximately 10 Newtons, less than approximately 8 Newtons, less than approximately 6 Newtons, less than approximately 4 Newtons, less than approximately 3 Newtons, less than approximately 2 Newtons, less than approximately 1.5 Newtons, less than approximately 1 Newton, less than approximately 0.5 Newtons, and approximately 0.5 Newtons. In the elements shown in Figures 6-8, a rotational removal force of approximately 0.5 Newtons is required to remove the cap 119.
[0054] Similar to Figures 1-5, the device may also include features that signal the cam function of housing cam feature 112a and / or the cam function of cap cam feature 119c. For example, one or both of the cam features 112a and 119c may include additional embodiments to improve visibility. As an additional or alternative example, one or both of the cam features 112a and 119c may be defined by or positioned on the outer surface 125 of the device to signal the cam function of features 112a and 119c. As another example, one or both of the cam features 112a and 119c may include an indicator that prompts or instructs the user to rotate the detachable cap.
[0055] Figure 9 shows elements of another exemplary drug delivery device according to various embodiments. For example, Figure 9 shows a housing 212 and a detachable cap 219 that may be coupled together to assemble a device like those shown in Figures 1-5. The housing 212 includes many of the same features as the housing 12 shown in Figures 1-5, such as a viewing window 217, a housing exterior 225, and a housing cam feature 212a.
[0056] The housing 212 and the end cap 219 include cam features that convert rotational motion into axial motion so that the detachable cap 219 can be removed and / or made easier to remove by being pushed in the opposite direction from the housing 212 when the detachable cap 219 is rotating. For example, the housing 212 includes a housing cam feature 212a, and the detachable cap 219 includes a cap cam feature 219c.
[0057] The cap cam feature 219c defines a waveform, such as an arc-shaped surface. As a more specific example, the detachable cap 219 shown includes a substantially cylindrical body portion 219d and a terminal wall 219e that is substantially perpendicular to the body portion 219d at the distal end of the cap 219. The body portion 219d defines a substantially annular leading edge rim 219f at the proximal end of the cap 219. The leading edge rim 219f defines the waveform cap cam feature 219c. As an even more specific example, the leading edge rim 219f shown defines two waveform cam surfaces 219c.
[0058] The housing cam feature 212a defines a waveform, such as an arc-shaped projection, that extends in the opposite direction from the outer surface of the housing 212. More specifically, the housing cam feature 212a is a projection that has a shape somewhat resembling a smile or a crescent moon. Even more specifically, the illustrated housing 212 defines two waveform cam features 212a.
[0059] When the removable cap 219 is in the storage position 219a, the cap cam feature 219c engages with or contacts the housing cam feature 212a. Furthermore, each of the illustrated cam features 212a, 219c has a mirror-like shape, with each surface 212a, 219c fitted together so that they slide smoothly / easily with each other. For example, when the removable cap 219 rotates (clockwise or counterclockwise) relative to the housing 212, the housing cam features 212a, 219c rotate relative to each other, pushing the removable cap 219 backward from the housing 212 along axis A. In other words, the cam features 212a, 219c convert rotational motion into axial motion to remove or assist in removing the cap 219. Similar to the devices shown in Figures 1-5, even a relatively small rotation of the removable cap 219 can facilitate and / or make easier removal of the cap 219. The elements shown in Figure 9 can provide linear tensile and rotational detachment forces similar to those shown in Figures 1-5. As a more specific example, to remove the cap 219 from the housing 212 via axial force / movement only (direct tensile force), the user may be required to exert less than 45 Newtons, approximately 40-45 Newtons, approximately 35-40 Newtons, approximately 30-35 Newtons, approximately 25-30 Newtons, approximately 20-25 Newtons, approximately 15-20 Newtons, approximately 10-15 Newtons, approximately 5-10 Newtons, or less than approximately 5 Newtons. In the device shown in Figure 9, a direct tensile force of approximately 10-15 Newtons is required to remove the cap 219. In comparison, the rotational force required to remove the cap from Figure 9 may be less than approximately 10 Newtons, less than approximately 8 Newtons, less than approximately 6 Newtons, less than approximately 4 Newtons, less than approximately 3 Newtons, less than approximately 2 Newtons, less than approximately 1.5 Newtons, less than approximately 1 Newton, less than approximately 0.5 Newtons, and less than approximately 0.5 Newtons. In the part shown in Figure 9, a rotational removal force of approximately 0.5 Newtons is required to remove the cap 219.
[0060] The cap 219 shown in Figure 9 may also include rotational support features such as fins 219h and 219j to enhance user grip and / or increase the torque that the user can apply to the cap 219. The fins 219h and 219j shown in Figure 9 may also have a shape, size, and spacing that is ergonomically suited to the user's hand or fingers. For example, fin 219j may fit the user's thumb, and fin 219h may fit the user's index finger and / or middle finger. These fins may also have a size suitable for applying a desired amount of torque to the cap 219, such as a fin thickness sufficient to prevent fin breakage or bending, and a fin height sufficient to generate a desired moment arm around the longitudinal axis of the cap.
[0061] The cap 219 shown in Figure 9 may also include gripping support features such as ribs 219k to enhance the user's grip for applying longitudinal force to the cap 219. The ribs 219k shown in Figure 9 may also have a shape, size, and spacing that is ergonomically suited to the user's hand or fingers. For example, the ribs 219k may fit the user's thumb and index finger. The ribs 219k may also have a size suitable for applying a desired amount of axial force to the cap 219, for example, a rib thickness sufficient to prevent damage or warping of the fins, and an orientation of the ribs (slightly concave) to signal to the user that the cap should be pulled downwards toward the end of the ribs.
[0062] Similar to Figures 1-8, the device may also include features that signal the cam function of housing cam feature 212a and / or the cam function of cap cam feature 219c. For example, one or both of the cam features 212a and 219c may include additional embodiments that improve visibility. As an additional or alternative example, one or both of the cam features 212a and 219c may be defined by or positioned on the outer surface 225 of the device to signal the cam function of features 212a and 219c. As another example, one or both of the cam features 212a and 219c may include an indicator that prompts or instructs the user to rotate the detachable cap.
[0063] Figure 10 shows elements of additional exemplary drug delivery devices according to various embodiments. For example, Figure 10 shows the distal portion of a device 310 having a housing 312 and an end cap 319 that may be coupled together to assemble a device as shown in Figures 1-5. The device 310 in Figure 10 includes many of the same features as the devices shown in Figures 1-5, such as a viewing window, housing exterior, and housing cam feature 312a. The end cap 319c includes a cam feature that converts rotational motion into axial motion so that the detachable cap 319 can be removed and / or facilitated by being pushed in the opposite direction from the housing 312 during the rotational motion of the detachable cap 319. For example, the housing 312 includes a housing cam feature 312a, and the detachable cap 319 includes a cap cam feature 319c. The cap cam feature shown in Figure 10 is generally corrugated, and the housing cam feature 312a is circular or a rounded projection. When the removable cap 319 is in the storage position 319a, the cap cam feature 319c engages with or contacts the housing cam feature 312a. Furthermore, each of the illustrated cam features 312a, 319c has a mirror-like shape, with each surface 312a, 319c fitted together so as to slide smoothly / easily against each other. For example, when the removable cap 319 rotates (clockwise or counterclockwise) relative to the housing 312, the housing cam features 312a, 319c rotate relative to each other, pushing the removable cap 319 backward from the housing 312 along axis A. In other words, the cam features 312a, 319c convert rotational motion into axial motion to remove or assist in removing the cap 319.
[0064] Figure 11 shows elements of yet another exemplary drug delivery device according to various embodiments. For example, Figure 11 shows the distal portion of a device 410 having a housing 412 and an end cap 419 that may be coupled together to assemble a device as shown in Figures 1-5. The device 410 in Figure 11 includes many of the same features as the devices shown in Figures 1-5, such as a viewing window, housing exterior, and housing cam feature 412a. The end cap 419c includes a cam feature that converts rotational motion into axial motion so that the detachable cap 419 can be removed and / or facilitated by being pushed in the opposite direction from the housing 412 during the rotational motion of the detachable cap 419. For example, the housing 412 includes a housing cam feature 412a, and the detachable cap 419 includes a cap cam feature 419c. The cap cam feature shown in Figure 11 is substantially triangular in shape, and the housing cam feature 412a is a triangular or rhomboid projection. When the removable cap 419 is in the storage position 419a, the cap cam feature 419c engages with or contacts the housing cam feature 412a. Furthermore, each of the illustrated cam features 412a, 419c has a mirror-like shape, with each surface 412a, 419c fitted together so as to slide smoothly / easily against each other. For example, when the removable cap 419 rotates (clockwise or counterclockwise) relative to the housing 412, the housing cam features 412a, 419c rotate relative to each other, pushing the removable cap 419 backward from the housing 412 along axis A. In other words, the cam features 412a, 419c convert rotational motion into axial motion to remove or assist in removing the cap 419.
[0065] Figure 12 shows elements of yet another exemplary drug delivery device according to various embodiments. For example, Figure 12 shows the distal portion of a device 510 having a housing 512 and an end cap 519 that may be coupled together to assemble a device as shown in Figures 1-5. The device 510 in Figure 12 includes many of the same features as the devices shown in Figures 1-5, such as a viewing window, housing exterior, and housing cam feature 512a. The end cap 519c includes a cam feature that converts rotational motion into axial motion so that the detachable cap 519 can be removed and / or facilitated by being pushed in the opposite direction from the housing 512 during the rotational motion of the detachable cap 519. For example, the housing 512 includes a housing cam feature 512a, and the detachable cap 519 includes a cap cam feature 519c. The cap cam feature shown in Figure 12 is generally a waveform, i.e., a continuous or semi-continuous waveform extending around the circumference of the cap. The housing cam feature 512a is substantially waveform-shaped, i.e., a continuous or semi-continuous waveform extending around the circumference of the cap. When the removable cap 519 is in the storage position 519a, the cap cam feature 519c engages with or contacts the housing cam feature 512a. Furthermore, each of the illustrated cam features 512a, 519c has a mirror-like shape, with each surface 512a, 519c fitted together so as to slide smoothly / easily with each other. For example, when the removable cap 519 rotates (clockwise or counterclockwise) relative to the housing 512, the housing cam features 512a, 519c rotate relative to each other, pushing the removable cap 519 backward from the housing 512 along axis A. In other words, the cam features 512a, 519c convert rotational motion into axial motion to remove or assist in removing the cap 519.
[0066] Figure 13 shows elements of yet another exemplary drug delivery device according to various embodiments. For example, Figure 13 shows the distal portion of a device 610 having a housing 612 and an end cap 619 that may be coupled together to assemble a device as shown in Figures 1-5. The device 610 in Figure 13 includes many of the same features as the devices shown in Figures 1-5, such as a viewing window, housing exterior, and housing cam feature 612a. The end cap 619c includes a cam feature that converts rotational motion into axial motion so that the detachable cap 619 can be removed and / or facilitated by being pushed in the opposite direction from the housing 612 during the rotational motion of the detachable cap 619. For example, the housing 612 includes a housing cam feature 612a, and the detachable cap 619 includes a cap cam feature 619c. The cap cam feature shown in Figure 13 is generally a waveform, i.e., a continuous or semi-continuous waveform extending around the circumference of the cap. The housing cam feature 612a is a plurality of protrusions having curves or waveforms. When the removable cap 619 is in the storage position 619a, the cap cam feature 619c engages with or contacts the housing cam feature 612a. Furthermore, each of the illustrated cam features 612a, 619c has a mirror-like shape, with each surface 612a, 619c fitted together so as to slide smoothly / easily against each other. For example, when the removable cap 619 rotates (clockwise or counterclockwise) relative to the housing 612, the housing cam features 612a, 619c rotate relative to each other, pushing the removable cap 619 backward from the housing 612 along axis A. In other words, the cam features 612a, 619c convert rotational motion into axial motion to remove or assist in removing the cap 619.
[0067] Figure 14 shows elements of yet another exemplary drug delivery device according to various embodiments, namely an end cap. For example, the end cap 619 includes a cap cam feature 619c that defines a wave shape, such as an arc-shaped surface. In a more specific example, the detachable cap 619 shown includes a substantially cylindrical body portion 619d and a terminal wall 619e that is substantially perpendicular to the body portion 619d at the distal end of the cap 619. In an even more specific example, the leading edge rim 619f shown defines a continuous wave-shaped cam surface 619c, such as a sinusoidal cam surface 619c.
[0068] From the above, it can be seen that this disclosure advantageously provides an efficient design for drug delivery devices having automated features. The various mechanisms and elements of the drug delivery device can interact with each other in a synergistic manner to limit the number of moving parts required by the drug delivery device, thereby improving the reliability of the drug delivery device, saving costs, and bringing other benefits and advantages.
[0069] As can be understood, the devices and methods of the present disclosure may have one or more advantages over the prior art, any one or more of which may be present in the embodiments according to the features of the present disclosure included in the embodiments. Other advantages not specifically enumerated herein will also be recognized.
[0070] The above description refers to various devices, assemblies, elements, subsystems, and methods of use related to drug delivery devices. Devices, assemblies, elements, subsystems, methods, or drug delivery devices may also include, or be used in conjunction with, the drugs specified below, including, but not limited to, their generic and biosimilar counterparts. The term "drug" as used herein is interchangeable with other similar terms and can be used to refer to all kinds of pharmaceuticals or therapeutic materials, including conventional and unconventional drugs, dietary supplements, supplements, biologics, physiologically active substances and compositions, polymers, biosimilars, bioequivalences, therapeutic antibodies, polypeptides, proteins, small molecules, and generic drugs. Non-therapeutic injectable preparations are also included. Drugs may be in liquid, lyophilized, or reconstituted forms from lyophilized preparations. The following list of drugs should not be considered exhaustive or restrictive.
[0071] The drug is contained in a storage tank. In some embodiments, the storage tank is a primary container that is filled or pre-filled for therapeutic use of the drug. The primary container may be a vial, cartridge, or pre-filled syringe.
[0072] In some embodiments, the storage reservoir of a drug delivery device may be filled with a colony-stimulating factor such as granulocyte colony-stimulating factor (G-CSF), or the device may be used in conjunction with such a factor. Such G-CSF formulations include, but are not limited to, Neulasta® (pegfilgrastim, pegfilgrastim, PEGylated G-CSF, PEGylated hu-Met-G-CSF) and Neupogen® (filgrastim, G-CSF, hu-MetG-CSF), UDENYCA® (pegfilgrastim-cbqv), Ziextenzo® (LA-EP2006; pegfilgrastim-bmez), or FULPHILA (pegfilgrastim-bmez).
[0073] In other embodiments, the drug delivery device may contain, or be used in conjunction with, erythropoiesis-stimulating factors (ESAs), which may be in liquid or lyophilized form. ESAs are any molecules that stimulate erythropoiesis. In some embodiments, the ESA is an erythropoiesis-stimulating protein. As used herein, “erythropoiesis-stimulating protein” means any protein that directly or indirectly causes activation of the erythropoietin receptor, for example, by binding to and dimerizing the receptor. Erythropoiesis-stimulating proteins include variants, analogs, or derivatives that bind to and activate erythropoietin and the erythropoietin receptor, antibodies that bind to and activate the erythropoietin receptor, or peptides that bind to and activate the erythropoietin receptor. Erythropoiesis-stimulating proteins include Epogen® (epoetin alfa), Aranesp® (darbepoetin alfa), Dynepo® (epoetin delta), Mircera® (methoxypolyethylene glycol-epoetin beta), Hematide®, MRK-2578, INS-22, Retacrit® (epoetin zeta), Neorecormon® (epoetin beta), Silapo® (epoetin zeta), and Binocrit® (epoetin a). This includes, but is not limited to, epoetin alpha (alpha), epoetin alpha Hexal, Abseamed® (epoetin alpha), Ratioepo® (epoetin theta), Eporatio® (epoetin theta), Biopoin® (epoetin theta), epoetin alpha, epoetin beta, epoetin iota, epoetin omega, epoetin delta, epoetin zeta, epoetin theta, and epoetin delta, PEGylated erythropoietin, carbamylated erythropoietin, and their molecules, variants, or analogues.
[0074] Particularly exemplary proteins include the specific proteins listed below, which include fusions, fragments, analogs, variants, or derivatives thereof. Fully humanized and human OPGL-specific antibodies, particularly fully humanized monoclonal antibodies, including OPGL-specific antibodies, peptide bodies, and related proteins (also referred to as RANKL-specific antibodies, peptide bodies, etc.); myostatin-binding proteins, peptide bodies, and related proteins, including myostatin-specific peptide bodies; IL-4 receptor-specific antibodies, peptide bodies, and related proteins, particularly those that suppress the activity mediated by the binding of IL-4 and / or IL-13 to receptors; interleukin-1 receptor 1 ("IL1-R1")-specific antibodies, peptide bodies, and related proteins; Ang2-specific antibodies, peptide bodies, and related proteins; NGF-specific antibodies, peptide bodies, and related proteins; CD22-specific antibodies, peptide bodies, and related proteins, particularly human CD22-specific antibodies, including but not limited to humanized and fully human antibodies, and including but not limited to humanized and fully human monoclonal antibodies, particularly human CD22-specific IgG antibodies, such as human-mouse monoclonal antibodies. This includes, but is not limited to, human-mouse monoclonal hLL2 gamma chain disulfide dimers conjugated to the human hLL2 kappa chain, such as human CD22-specific fully humanized antibodies to epratuzumab (CAS registry number 501423-23-0); IGF-1 receptor-specific antibodies, peptide bodies, and related proteins, including, but not limited to, anti-IGF-1R antibodies; B-7-related protein 1-specific antibodies, peptide bodies, and related proteins ("B7RP-1", B7H2, ICOSL, B7h, and This includes, but is not limited to, fully human IgG2 monoclonal antibodies that bind to the epitope of the first immunoglobulin-like domain of B7RP-1, including, but not limited to, fully human IgG2 monoclonal antibodies that suppress the interaction of B7RP-1 with its innate receptor ICOS on activated T cells (also known as CD275); and B7RP-specific fully human monoclonal IgG2 antibodies, including, but not limited to, IL-15 specific antibodies, peptide bodies, and related proteins, such as, for example, humanized monoclonal antibodies including, but not limited to, HuMax IL-15 antibodies and related proteins such as 145c7;IFN gamma-specific antibodies, peptide bodies, related proteins, etc., for example, including but not limited to human IFN gamma-specific antibodies, and including but not limited to fully human anti-IFN gamma antibodies; TALL-1 specific antibodies, peptide bodies, related proteins, etc., and other TALL-specific binding proteins; parathyroid hormone ("PTH") specific antibodies, peptide bodies, related proteins, etc.; thrombopoietine receptor ("TPO-R") specific antibodies, peptide bodies, related proteins, etc.; hepatocyte growth factor (""), including those that target HGF / SF. HGF-specific antibodies, peptide bodies, related proteins, etc.; cMet axis (HGF / SF: c-Met), for example, fully human monoclonal antibodies that neutralize hepatocyte growth factor / scattering (HGF / SF); TRAIL-R2 specific antibodies, peptide bodies, related proteins, etc.; Activin A specific antibodies, peptide bodies, proteins, etc.; TGF-beta specific antibodies, peptide bodies, related proteins, etc.; Amyloid-beta protein specific antibodies, peptide bodies, related proteins, etc.; Proteins that bind to c-Kit and / or other stem cell factor receptors, etc. c-Kit-specific antibodies, peptide bodies, and related proteins, etc., which are not limited to those mentioned above; OX40L-specific antibodies, peptide bodies, and related proteins, etc., which include but are not limited to proteins that bind to OX40L and / or other ligands of the OX40 receptor; Activase® (alteplase, tPA), Aranesp® (darbepoetin alfa), erythropoietin [30-asparagine, 32-threonine, 87-valine, 88-asparagine, 90-threonine], darbepoetin alfa, novel erythrocyte production stimulating proteins Quality (NESP); Epogen (registered trademark) (epoetin alfa, or erythropoietin); GLP-1, Avonex (registered trademark) (interferon beta-1a); Bexxar (registered trademark) (tositumomab, anti-CD22 monoclonal antibody); Betaseron (registered trademark) (interferon-beta); Campath (registered trademark) (aremtuzumab, anti-CD52 monoclonal antibody); Dynepo (registered trademark) (epoetin delta), Velcade (registered trademark) (bortezomib); MLN0002 (anti-4β7mAb);MLN1202 (anti-CCR2 chemokine receptor mAb); Enbrel® (etanercept, TNF receptor / Fc fusion protein, TNF blocker); Eprex® (epoetin alfa); Erbitux® (cetuximab, anti-EGFR / HER1 / c-ErbB-1); Genotropin® (somatropin, human growth hormone); Herceptin® (trastuzumab, anti-HER2 / neu(erbB2) receptor mAb); Kanjinti® (trastuzumab-anns) anti-HER2 monoclonal antibody, biosimilar of Herceptin®, or other products containing trastuzumab for the treatment of breast or gastric cancer; Humatrope® (somatropin, human growth hormone); Humira® (adalimumab); V ectibix(registered trademark) (panitumumab); Xgeva(registered trademark) (denosumab), Prolia(registered trademark) (denosumab), immunoglobulin G2 human monoclonal antibody against RANK ligand, Enbrel(registered trademark) (etanercept, TNF receptor / Fc fusion protein, TNF blocker), Nplate(registered trademark) (romiplostim), rilotumumab, ganitumumab, conatumumab, brodalumab, insulin in solution; Infergen(registered trademark) (interferon alphacon-1); Natrecor(registered trademark) (nesiritide, recombinant human type B natriuretic peptide (hBNP)); Kineret(registered trademark) (anakinra); Leukine(registered trademark) (sargamostim, rhuGM-CSF); LymphoCide(registered trademark) (epratuzumab, anti-CD22 mAb); Benlysta (trademark) (lymphostat B, belimumab, anti-BlyS mAb); Metalyse (registered trademark) (tenecteplase, t-PA analog); Mircera (registered trademark) (methoxypolyethylene glycol-epoetin beta); Mylotarg (registered trademark) (gemtuzumab ozogamicin); Raptiva (registered trademark) (efalizumab); Cimzia (registered trademark) (certolizumab pegol, CDP870); Soliris (trademark) (eculizumab); paxerizumab (anti-complement C5); Numax (registered trademark) (MEDI-524);Lucentis(registered trademark) (ranibizumab); Panorex(registered trademark) (17-1A, edrecolomab); Trabio(registered trademark) (reldelimumab); TheraCim hR3 (nimotuzumab); Omnitarg (pertuzumab, 2C4); Osidem(registered trademark) (IDM-1); OvaRex(registered trademark) (B43.13); Nuvion(registered trademark) (vizilizumab); Cantuzumab meltansine (huC242-DM1); NeoRecormon(registered trademark) (epoetin beta); Neumega(registered trademark) (oprelbequin, human interleukin-11); Orthoclone OKT3(registered trademark) (Muromonab-CD3, anti-CD3 monoclonal antibody); Procrit(registered trademark) (Epoetin alfa); Remicade(registered trademark) (Infliximab, anti-TNF monoclonal antibody); Reopro(registered trademark) (Absiximab, anti-GP IIb / IIia receptor monoclonal antibody); Actemra(registered trademark) (Anti-IL6 receptor mAb); Avastin(registered trademark) (Bevacizumab); HuMax-CD4(Zanolimumab); Mvasi(trademark) (Bevacizumab-awwb); Rituxan(registered trademark) (Rituximab, anti-CD20 mAb); Tarceva(registered trademark) (erlotinib); Roferon-A(registered trademark) (interferon α-2a); Simulect(registered trademark) (basiliximab); Prexige(registered trademark) (lumiracoxib); Synagis(registered trademark) (palivizumab); 145c7-CHO (anti-IL15 antibody, see U.S. Patent No. 7,153,507); Tysabri(registered trademark) (natalizumab, anti--4 integrin mAb); Valortim(registered trademark) (MDX-1303, anti-anthrax protective antigen mAb); ABthrax(trademark); Xolair(registered trademark) (omalizumab); ETI211 (anti-MRSA mAb); IL-1 trap (extracellular domains of the Fc portion of human IgG1 and both IL-1 receptor components (type I receptor and receptor co-protein)); VEGF trap (VEGFR1 Ig domain fused with IgG1 Fc); Zenapax® (daclizumab); Zenapax® (daclizumab, anti-IL-2R mAb);Zevalin® (ibritumomab tiuxetan); Zetia® (ezetimibe); Orencia® (atacicept, TACI-Ig); anti-CD80 monoclonal antibody (galiximab); anti-CD23 mAb (lumiliximab); BR2-Fc (huBR3 / huFc fusion protein, soluble BAFF antagonist); CNTO148 (golimumab, anti-TNF-1 mAb); HGS-ETR1 (mapatumumab, human anti-TRAIL receptor-1 mAb); HuMax-CD20 (ocrelizumab, anti-CD20 human mAb), HuMax-EGFR (saltumumab), M200 (boroxiximab, anti-5-1 integrin mAb); MDX-010 (ipilimumab, anti-CTLA-4 mAb, and VEGFR-1 (IMC-18F1); anti-BR3 mAb, anti-Clostridium difficile toxin A and toxin BC mAb MDX-066 (CDA-1) and MDX-1388); anti-CD22 dsFv-PE38 conjugate (CAT-3888 and CAT-8015); anti-CD25 mAb (HuMax-TAC), anti-CD3 mAb (NI-0401); adecatumumab, anti-CD30 mAb (MDX-060); MDX-1333 (anti-IFNAR); anti-CD38 mAb (HuMax CD38); anti-CD40L mAb; anti-Cripto mAb; anti-CTGF idiopathic pulmonary fibrosis stage 1 fibrogen (FG-3019); anti-CTLA4 mAb, anti-eotaxin 1 mAb (CAT-213); anti-FGF8 mAb, anti-ganglioside GD2 mAb; anti-ganglioside GM2 mAb; anti-GDF-8 human mAb (MYO-029); anti-GM-CSF receptor mAb (CAM-3001); anti-HepC mAb (HuMax HepC); anti-IFN? mAb (MEDI-545, MDX-198); anti-IGF1R mAb; anti-IGF-1R mAb (HuMax-Inflam); Anti-IL12 mAb (ABT-874); Anti-IL12 / IL23 mAb (CNTO1275); Anti-IL13 mAb (CAT-354); Anti-IL2Ra mAb (HuMax-TAC); anti-IL5 receptor mAb; anti-integrin receptor mAb (MDX-018, CNTO95); anti-IP10 ulcerative colitis mAb (MDX-1100);BMS-66513, anti-mannose receptor / hCG mAb (MDX-1307); anti-mesoterin dsFv-PE38 conjugate (CAT-5001); anti-PD1 mAb (MDX-1106 (ONO-4538)); anti-PDGFR antibody (IMC-3G3); anti-TGF beta mAb (GC-1008); anti-TRAIL receptor-2 human mAb (HGS-ETR2); anti-TWEAK mAb, anti-VEGFR / Flt-1 mAb; ; and anti-ZP3 mAb (HuMax-ZP3).
[0075] In some embodiments, the drug delivery device may contain, or be used in conjunction with, sclerostin antibodies such as, but not limited to, romosozumab, brosozumab, BPS 804 (Novartis), Evenity® (romosozumab-aqqg), and other products containing romosozumab for the treatment of postmenopausal osteoporosis and / or fracture healing, as well as, in other embodiments, monoclonal antibodies (IgG) that bind to human proprotein convertase subtilisin / kexin type 9 (PCSK9). Such PCSK9-specific antibodies include, but are not limited to, Repatha® (evolocumab) and Praluent® (alirocumab). In other embodiments, the drug delivery device may contain, or be used in conjunction with, rilotumumab, bixalomer, trevananib, ganitumab, conatumumab, motesanib diphosphate, brodalumab, vidupiprant, or panitumumab. In some embodiments, the storage tank of the drug delivery device may be filled with IMLYGIC® (Tarimogene Laharpa Lepbec) or another oncolytic HSV, including but not limited to OncoVEXGALV / CD;OrienX010;G207, 1716;NV1020;NV12023;NV1034; and NV1042, for the treatment of melanoma or other cancers, or the device may be used in conjunction with them. In some embodiments, the drug delivery device may contain or be used in conjunction with endogenous tissue inhibitors (TIMPs) of metalloproteinases, including but not limited to TIMP-3. In some embodiments, the drug delivery device may contain or be used in conjunction with Aimovig® (Erenumab-aooe), anti-human CGRP-R (calcitonin gene-related peptide type 1 receptor), or another product containing erenumab for the treatment of migraines. Antibodies that antagonist human calcitonin gene-related peptide (CGRP) receptors, including but not limited to erenumab and bispecific antibody molecules targeting CGRP receptors or other headache targets, may also be delivered using the drug delivery devices of this disclosure.Furthermore, bispecific T cell engager (BiTE®) molecules, such as but not limited to BLINCYTO® (blinatumomab), may be used in or with the drug delivery device of this disclosure. In some embodiments, the drug delivery device may contain, or be used in conjunction with, APJ macromolecule agonists, such as, but not limited to, Apelin or its analogues. In some embodiments, a therapeutically effective dose of anti-thymoid-interstitial lymphocyte generating factor (TSLP) or TSLP receptor antibody may be used in or with the drug delivery device of this disclosure. In some embodiments, the drug delivery device may contain, or be used in conjunction with, Avsola® (infliximab-axxq), an anti-TNF monoclonal antibody, a biosimilar of Remicade® (infliximab) (Janssen Biotech, Inc.), or another product containing infliximab for the treatment of autoimmune diseases. In some embodiments, the drug delivery device may contain or be used in conjunction with Kyprolis® (carfilzomib), (2S)-N-((S)-1-((S)-4-methyl-1-((R)-2-methyloxiran-2-yl)-1-oxopentan-2-ylcarbamoyl)-2-phenylethyl)-2-((S)-2-(2-morpholinoacetamide)-4-phenylbutanamide)-4-methylpentanamide, or another product containing carfilzomib for the treatment of multiple myeloma. In some embodiments, the drug delivery device may contain or be used in combination with Otezla® (apremilast), N-[2-[(1S)-1-(3-ethoxy-4-methoxyphenyl)-2-(methylsulfonyl)ethyl]-2,3-dihydro-1,3-dioxo-1H-isoindole-4-yl]acetamide, or another product containing apremilast for the treatment of various inflammatory diseases.In some embodiments, the drug delivery device may contain, or be used in conjunction with, Parsabiv® (ethelcalcetide HCl, KAI-4169) or another product containing etelcalcetide HCl for the treatment of secondary hyperparathyroidism (sHPT) in patients with chronic kidney disease (KD) undergoing hemodialysis. In some embodiments, the drug delivery device may contain, or be used in conjunction with, another product containing ABP798 (rituximab), a biosimilar candidate of Rituxan® / MabThera®, or an anti-CD20 monoclonal antibody. In some embodiments, the drug delivery device may contain, or be used in conjunction with, a VEGF antagonist such as a non-antibody VEGF antagonist, and / or a VEGF trap such as aflibercept (Ig domain 2 from VEGFR1 and Ig domain 3 from VEGFR2 fused to the Fc domain of IgG1). In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing ABP959 (eculizumab), a biosimilar candidate of Soliris®, or a monoclonal antibody that specifically binds to complement protein C5. In some embodiments, the drug delivery device may include, or be used in conjunction with, rozibafusp alfa (formerly AMG570), a novel bispecific antibody-peptide conjugate that simultaneously blocks ICOSL and BAFF activity. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing omecamutib mecarbil, small molecule selective cardiac myosin activator, or myotrope, or small molecule selective cardiac myosin activator, which directly target the cardiac contractile mechanism. In some embodiments, the drug delivery device may include, or be used in conjunction with, sotrasib (formerly known as AMG510), a KRASG12C small molecule inhibitor, or another product containing a KRASG12C small molecule inhibitor.In some embodiments, the drug delivery device may include, or be used in conjunction with, tezeperumab, a human monoclonal antibody that inhibits the action of thymic interstitial lymphocyte necrosis factor (TSLP), or another product containing a human monoclonal antibody that inhibits the action of TSLP. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG714, i.e., a human monoclonal antibody that binds to interleukin-15 (IL-15), or another product containing a human monoclonal antibody that binds to interleukin-15 (IL-15). In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG890, a small interfering RNA (siRNA) that reduces lipoprotein (a), also known as Lp(a), or another product containing a small interfering RNA (siRNA) that reduces lipoprotein (a). In some embodiments, the drug delivery device may include, or be used in conjunction with, ABP654 (human IgG1 kappa antibody), a biosimilar candidate of Stellara®, or another product containing human IgG1 kappa antibody and / or conjugating to the p40 subunit of human cytokines interleukin (IL)-12 and IL-23. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing Amjevita® or Amgevita® (formerly ABP501) (monoclonal antibody anti-TNF human IgG1), a biosimilar candidate of Humira®, or a human monoclonal antibody anti-TNF human IgG1. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG160, or another product containing the half-life extension (HLE) anti-prostate-specific membrane antigen (PSMA) × anti-CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG119 or another product containing delta-like ligand 3 (DLL3)CAR T (chimeric antigen receptor T cell) therapy.In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG119 or another product containing delta-like ligand 3 (DLL3) CAR T (chimeric antigen receptor T cell) cell therapy. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG133 or another product containing a gastric suppressor polypeptide receptor (GIPR) antagonist and a GLP-1R agonist. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG171 or another product containing a growth and differentiation factor 15 (GDF15) analog. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG176 or another product containing a small molecule inhibitor of myeloid leukemia 1 (MCL-1). In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG199 or another product containing a half-life extension (HLE) bispecific T cell enforcer construct (BiTE®). In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG256, or another product containing anti-PD-1 × IL21 mutein and / or an IL-21 receptor agonist designed to selectively activate the interleukin-21 (IL-21) pathway in programmed cell death-1 (PD-1) positive cells. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG330, or another product containing anti-CD33 × anti-CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG404, or another product containing a human anti-programmed cell death-1 (PD-1) monoclonal antibody under investigation as a treatment for patients with solid tumors. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product comprising AMG427 or the half-life extension (HLE) anti-fms-like tyrosine kinase 3 (FLT3) × anti-CD3BiTE® (bispecific T cell engager) construct.In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG430 or another product containing an anti-Jagged-1 monoclonal antibody. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG506 or another product containing a multispecific FAP×4-1BB-targeted DARPin® biologic being studied as a treatment for solid tumors. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG509 or another product containing a bivalent T cell engager and designed using XmAb® 2+1 technology. In some embodiments, the drug delivery device may contain, or be used in conjunction with, AMG562 or another product containing an extended half-life (HLE) CD19×CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device is Efavari. The drug delivery device may include, or be used in conjunction with, another product containing Yukin alfa (formerly AMG592) or IL-2 mutein Fc fusion protein. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing AMG596 or CD3 × epidermal growth factor receptor vIII (EGFRvIII) BiTE® (bispecific T cell engager) molecule. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing AMG673 or the half-life extended (HLE) anti-CD33 × anti-CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device may include, or be used in conjunction with, another product containing AMG701 or the half-life extended (HLE) anti-B cell maturation antigen (BCMA) × anti-CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG757 or another product containing the HLE-extended half-life (HLE) anti-delta-like ligand 3 (DLL3) × anti-CD3BiTE® (bispecific T cell engager) construct. In some embodiments, the drug delivery device may include, or be used in conjunction with, AMG910 or another product containing the HLE-extended half-life (HLE) epithelial cell tight junction constituent protein claudin 18.2 × CD3BiTE® (bispecific T cell engager) construct.
[0076] While drug delivery devices, assemblies, elements, subsystems, and methods have been described in terms of exemplary embodiments, they are not limited to these. The detailed descriptions should be interpreted as illustrative only and do not describe all possible embodiments of this disclosure. Many alternative embodiments that would still fall within the scope of the claims defining the inventions disclosed herein can be implemented using either the current art or art developed after the filing date of this patent.
[0077] Those skilled in the art will recognize that extensive modifications, changes, and combinations can be made with respect to the embodiments described herein without departing from the concept and scope of the invention disclosed herein, and that such modifications, changes, and combinations should be considered to fall within the scope of the concept of the invention.
Claims
1. A drug delivery device A housing having defined longitudinal axes and cam features, and having openings and outer surfaces, A drug storage container including a delivery member having an insertion end configured to extend at least partially through the opening while in a delivery state, A detachable cap having defined cap cam features and configured to be detachably coupled to the housing, comprising a detachable cap having a storage position coupled to the housing and at least partially covering the opening, and a removal position not coupled to the housing, The cap cam feature and the housing cam feature are configured to convert rotational motion into axial motion such that when the detachable cap rotates, the cap cam feature and / or the housing cam feature push the detachable cap along the longitudinal axis. The housing cam feature and the cap cam feature are each visible to the user of the drug delivery device in order to signal the cam function of the housing cam feature and / or the cap cam feature, A drug delivery device wherein the housing cam feature includes at least one projection extending in the opposite direction from the outer surface of the housing, the at least one projection being at least partially arc-shaped and comprising a first end configured to slidably engage with a first portion of the cap cam feature and a second end configured to slidably engage with a second portion of the cap cam feature.
2. The drug delivery device according to claim 1, wherein the aforementioned capcam feature defines a waveform.
3. The drug delivery device according to claim 2, wherein the waveform is substantially sinusoidal.
4. The drug delivery device according to claim 3, wherein the detachable cap includes a substantially cylindrical body portion defining an annular leading edge rim and a terminal wall substantially perpendicular to the body portion, and the annular leading edge rim defines the waveform of the cap cam feature.
5. The drug delivery device according to any one of claims 2 to 3, wherein the outer surface includes a substantially cylindrical outer surface.
6. The drug delivery device according to claim 5, wherein when the removable cap is in the storage position, the at least one projection is aligned with the waveform of the cap cam feature.
7. The drug delivery device according to claim 6, wherein when the removable cap is in the storage position, at least one projection contacts the waveform of the cap cam feature.
8. The drug delivery device according to claim 7, wherein the waveform of the at least one projection corresponds to the waveform of the cap cam feature.
9. The drug delivery device according to any one of claims 6 to 7, wherein the housing includes two protrusions extending in opposite directions from the substantially cylindrical outer surface.
10. The drug delivery device according to any one of claims 1 to 9, wherein the housing defines a fixing feature configured to engage with the removable cap and hold the removable cap in the storage position.
11. The drug delivery device according to claim 10, wherein the fixed feature is configured to hold the detachable cap in the storage position, regardless of whether the drug storage container is coupled to the housing.
12. A drug delivery device according to any one of claims 1 to 11, wherein the housing cam feature and the cap cam feature are each defined by the outer surface of the housing or arranged on the outer surface of the housing.
13. A drug delivery device according to any one of claims 1 to 12, wherein at least one of the housing cam feature and / or the cap cam feature includes a mode that improves its own visibility.
14. The drug delivery device according to claim 13, wherein the embodiment for improving visibility includes a bright color.
15. The drug delivery device according to any one of claims 1 to 14, wherein the detachable cap includes at least one rotation support feature.
16. The drug delivery device according to claim 15, wherein the at least one rotation support feature includes a fin.
17. A drug delivery device A housing having defined longitudinal axes and cam features, and having openings and outer surfaces, A drug storage container including a delivery member having an insertion end configured to extend at least partially through the opening while in a delivery state, A detachable cap having defined cap cam features and configured to be detachably coupled to the housing, comprising a detachable cap having a storage position coupled to the housing and at least partially covering the opening, and a removal position not coupled to the housing, The cap cam feature and the housing cam feature are configured to convert rotational motion into axial motion such that when the detachable cap rotates, the cap cam feature and / or the housing cam feature push the detachable cap along the longitudinal axis. The housing cam feature is defined by the outer surface of the housing or is arranged on the outer surface to signal the cam function of the housing cam feature, A drug delivery device wherein the housing cam feature includes at least one projection extending in the opposite direction from the outer surface of the housing, the at least one projection being at least partially arc-shaped and comprising a first end configured to slidably engage with a first portion of the cap cam feature and a second end configured to slidably engage with a second portion of the cap cam feature.
18. The aforementioned cap cam features define the waveform, The drug delivery device according to claim 17, wherein the detachable cap includes a substantially cylindrical body portion defining an annular leading edge rim and a terminal wall substantially perpendicular to the body portion, and the annular leading edge rim defines a waveform.
19. The drug delivery device according to claim 18, wherein the outer surface includes a substantially cylindrical outer surface.
20. The drug delivery device according to claim 18 or 19, wherein when the removable cap is in the storage position, the at least one projection is aligned with the waveform of the cap cam feature.
21. A drug delivery device according to any one of claims 17 to 20, wherein at least one of the housing cam feature and / or the cap cam feature includes a mode that improves its own visibility.
22. The drug delivery device according to any one of claims 17 to 21, wherein the detachable cap includes at least one rotation support feature.
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