Method for creating a sterile seal for a drug delivery system and drug delivery system

A heating element-based method forms a sterile connection between drug delivery system components, addressing the challenge of maintaining sterility in non-sterile environments by ensuring reliable contamination-free medication delivery.

JP7728356B2Active Publication Date: 2025-08-22WEST PHARMACEUTICAL SERVICES INC
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Patent Information

Application Number
JP2023565597
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-03-14
Filing Date
2022-03-14
Publication Date
2025-08-22
Estimated Expiration
2042-03-14

AI Technical Summary

Technical Problem

The sterility of the outer surface of the septum and transfer needle in injection devices is difficult to maintain, particularly in non-sterile home environments, posing a risk of contamination during medication delivery.

Method used

A method and system involving a heating element positioned between facing sealing surfaces to sterilize them by heating to a predetermined temperature, followed by securing the surfaces together to form a sterile connection.

Benefits of technology

Ensures a reliable sterile connection between drug delivery system components, reducing the risk of contamination and maintaining sterility throughout the medication delivery process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A method and system for creating a sterile connection is disclosed. The method includes disposing a heating element between a first and second outer sealing surface such that the heating element contacts the first and second outer sealing surfaces. The method further includes applying opposing forces to the first and second outer sealing surfaces such that the first and second outer sealing surfaces are urged toward each other, and heating the heating element to sterilize the first and second outer sealing surfaces. The method also includes removing the heating element from between the first and second seals while continuing to apply the opposing forces to the first and second outer sealing surfaces, thereby simultaneously forming a sterile connection between the first and second outer sealing surfaces.
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Description

Related Applications

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Patent Application No. 63 / 160,871, filed March 14, 2021, the disclosure of which is hereby incorporated by reference herein. [Technical Field]

[0002] The present disclosure relates to methods and systems for creating a sterile connection between a first body and a second body, and has particular application to drug delivery systems. [Background technology]

[0003] Injection devices such as syringes and auto-injectors deliver medication from a medication container through a hypodermic needle. Because the hypodermic needle delivers the medication into the patient's body, sterility of the injection device and medication container is of utmost importance.

[0004] In many cases, injection devices are manufactured and sold separately from the medication container. As a result, a single injection device can be used to deliver a wide range of treatments by connecting the injection device to a medication container containing the medication type and dosage for any one of the treatments. Prior to use, the manufacturer or user (which may be a medical professional or a patient) couples the medication container containing the medication type and dosage for the required treatment to the injection device. A fluid connection is formed between the container and the hypodermic needle of the injection device, allowing injection of the medication to be accomplished. The injection device and container collectively form an injection system.

[0005] In many infusion systems, the reservoir is initially sealed by a septum, which seals the medication within the reservoir and maintains the sterility of the medication. The infusion device also includes a transfer needle (separate from the hypodermic needle) that is configured to pierce the septum once the reservoir and the infusion device are connected. A fluid conduit fluidly connects the transfer needle to the hypodermic needle. Thus, once the transfer needle pierces the septum, the medication can be delivered to the patient through the hypodermic needle. Such infusion systems are particularly useful for home use because the connection between the reservoir and the infusion device can be easily achieved (by pushing the reservoir or transfer needle into place). Such infusion systems can also be used in hospitals or other clinical settings. [Prior art documents] [Patent documents]

[0006] [Patent Document 1] U.S. Provisional Patent Application No. 63 / 160,871 Summary of the Invention [Problem to be solved by the invention]

[0007] However, the sterility of the outer surface of the septum and the sterility of the transfer needle are difficult to ensure. Therefore, there is a risk that the outer surface of the septum and / or the transfer needle will become contaminated, and that this contamination may be transferred to the patient during injection. This risk is accentuated when the injection system is used at home or in an environment where a medical professional does not operate the injection system. Additionally, users may store the injection device and container in a non-sterile environment within their home, such as a drawer or cupboard, where contamination is more likely. [Means for solving the problem]

[0008] According to a first aspect of the present disclosure, a method for creating a sterile connection includes providing a first body defining an opening. A first seal seals the opening of the first body, the first seal defining a first outer sealing surface. The method includes providing a second body defining an opening. A second seal seals the opening of the second body, the second seal defining a second outer sealing surface. The method includes disposing the first outer sealing surface in a facing relationship with the second outer sealing surface and disposing a heating element between the first and second outer sealing surfaces such that the heating element contacts the first and second outer sealing surfaces. The method also includes applying opposing forces to the first and second outer sealing surfaces such that the first and second outer sealing surfaces are urged toward each other. The method includes heating the heating element to a predetermined temperature for a predetermined time to sterilize the first and second outer sealing surfaces, and removing the heating element from between the first and second seals while continuing to apply opposing forces to the first and second outer sealing surfaces, thereby simultaneously forming a sterile connection between the first and second outer sealing surfaces.

[0009] Various embodiments of the first aspect can include a heating element defining a strip of electrically conductive material. The heating element can define a strip of thermally conductive material. The heating element can be heated by electrical resistance. The heating element can be heated by induction. The method can include securing a first outer sealing surface in contact with a second outer sealing surface. A first engaging body and a second engaging body can secure the first body and the second body in a facing relationship and apply opposing forces, respectively. In the facing relationship, a slot can be formed between the first outer sealing surface and the second outer sealing surface. The method can include securing the first engaging body and the second engaging body to each other with the heating element disposed in the slot between the first outer sealing surface and the second outer sealing surface, and removing the heating element through the slot. The step of removing the heating element from between the first seal and the second seal occurs after the step of securing the first engaging body and the second engaging body. The first body defines a drug container having a septum, and the first seal seals the drug container. The second body defines an enclosure in which the tip of the transfer needle is disposed, and the second seal seals the enclosure. Positioning the heating element between the first and second outer sealing surfaces can include inserting the heating element into a space between the first and second outer sealing surfaces and advancing one or both of the first and second outer sealing surfaces toward the heating element until the first and second outer sealing surfaces contact the heating element. Each of the first and second bodies can be individually empty, or one of the first and second bodies can contain a drug. A method of assembling a drug delivery device can include creating a sterile connection between two components of the drug delivery device according to one embodiment of the disclosure.

[0010] A second aspect of the disclosure includes a system for creating a sterile connection. The system can include a first body and a first seal sealing to the first body, the first seal defining a first outer sealing surface. The system can include a second body and a second seal sealing to the second body, the second seal defining a second outer sealing surface. The system can include a first engagement body and a second engagement body configured to secure the first body and the second body, respectively, in a facing relationship in which the first outer sealing surface and the second outer sealing surface contact each other. The system can also include a heating element configured to extend between the first outer sealing surface and the second outer sealing surface while the first engagement body and the second engagement body are in a facing relationship to block contact between the first outer sealing surface and the second outer sealing surface and to sterilize the first outer sealing surface and the second outer sealing surface. The first engaging body and the second engaging body can respectively secure the first body and the second body in a face-to-face relationship such that contact between the first outer sealing surface and the second outer sealing surface is restored upon removal of the heating element to provide a sterile connection between the first outer sealing surface and the second outer sealing surface.

[0011] Implementations of the second aspect can include a first body defining a medication container having a septum and a second body defining an enclosure in which the tip of the transfer needle is disposed. The first body and the second body can each be empty, or one of the first body and the second body can contain a medication. The heating element can be configured to heat the first and second outer sealing surfaces to a temperature greater than 200°C for at least 15 seconds.

[0012] The invention will now be explained in more detail with reference to a number of non-limiting embodiments shown in the accompanying drawings. [Brief explanation of the drawings]

[0013] [Figure 1] 1 shows a schematic illustration of an injection device. [Figure 2a] 2 illustrates an exemplary injection system corresponding to FIG. 1. [Figure 2b] 2b shows a cutaway view of the injection system of FIG. 2a. [Figure 3a] 1 illustrates a connection system according to the present disclosure in an unconnected state. [Figure 3b] 3b shows the connection system of FIG. 3a in a first connection state; [Figure 3c] 3b shows the connection system of FIG. 3a in a second connection state in which a sterile connection is established. [Figure 4a] 3a shows a detail of the connection system and illustrates the process of forming a sterile connection. [Figure 4b] Together with Figure 4a, this illustrates the process of forming a sterile connection. [Figure 4c] 4a-4b together illustrate the process of forming a sterile connection. [Figure 4d] 4a-4c together illustrate the process of forming a sterile connection. [Figure 4e] 4a-4d together illustrate the process of forming a sterile connection. [Figure 5] 1 is a schematic illustration of a system for filling medication containers according to an embodiment of the present disclosure. [Figure 6] 1 is a flowchart illustrating a method for forming a sterile fluid pathway according to the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0014] Like reference numbers are used throughout the drawings to refer to like elements.

[0015] 1 shows a schematic diagram of an infusion system comprising an on-body injection device 100 and a drug container 102. The infusion system is shown in an assembled state with the drug container 102 coupled to the injection device 100 and the injection device 100 ready to perform an injection.

[0016] As shown, the injection device 100 can include a hypodermic needle 104 for piercing a patient's skin 106 and a transfer needle 108 that can be fluidly connected to the hypodermic needle 104 via a fluid conduit 110. As shown in an assembled state in Figure 1, the free end of the transfer needle 108 can pierce a septum 112 of the medication container 102. Thus, the hypodermic needle 104 can be in fluid communication with the medication container 102 via the transfer needle 108 and the fluid conduit 110 such that medication from the medication container 102 can be dispensed through the hypodermic needle 104.

[0017] The infusion device 100 includes a housing 114 that can enclose the components of the infusion device 100 and can also enclose the medication container 102 when the infusion system is in the assembled state shown in Figure 1. The housing 114 can include a skin-contacting surface 116. The skin-contacting surface 116 can include an adhesive layer for secure adhesion to a patient's skin.

[0018] The hypodermic needle 104 is translatable relative to the housing 114 between a retracted position, in which the hypodermic needle 104 is concealed within the housing 114, and an injection position (shown in FIG. 1 ), in which the hypodermic needle 104 protrudes through an opening in the skin-contacting surface of the housing. Because the hypodermic needle 104 can be concealed within the housing 114 in the retracted state, the risk of injury from the hypodermic needle 104 may be reduced or eliminated. In various embodiments, the injection device 100 may be configured such that the hypodermic needle 104 can only be moved into the injection position after the injection device 100 has been secured to the patient's skin 106. In various embodiments, the injection device 100 may include a button and / or actuator. The button and / or actuator may be provided on and / or within the housing 114 and may initiate an injection procedure. The actuator may be a mechanical actuator capable of advancing the needle into the injection site. In various embodiments, the injection device 100 may include a control unit capable of initiating an injection procedure (e.g., via the button and / or actuator).

[0019] In various embodiments, the hypodermic needle 104 may be part of an infusion set that is separate from the housing 114, rather than being directly attached to the housing. In such embodiments, the infusion device 100 may be adapted to pump medication to a remotely located hypodermic needle for delivery to a patient.

[0020] 2a and 2b illustrate an exemplary wearable infusion system 200. Unless otherwise expressly or clearly indicated by context, the infusion system 200 may include any of the features of the infusion device 100, and vice versa. FIG. 2a illustrates the infusion system 200 in an assembled state, ready for attachment to an infusion site. The infusion system 200 may include a housing 201 and an actuator button 220. The infusion system 200 may further include a door 222 or hatch through which a medication container 202 may be inserted. The door 222 may be movable between a closed position, as shown in FIG. 2a, and an open position, as shown in FIG. 2b. The infusion system 200 and medication container 202 may be manufactured and / or sold separately and may be coupled to each other by a user or medical professional prior to use. The door 222 may allow access to the enclosure for receiving the medication container 202. The enclosure is accessible when the door 222 is in the open position and can secure the drug container 202 within the housing 201 when the door 222 is in the closed position. Thus, the drug container 202 can be inserted into the enclosure of the infusion system 200 when the door is in the open position.

[0021] 2b, drug container 202 can include a septum 212 at a first end and a plunger 218 at a second end. Plunger 218 can move through drug container 202 from the second end toward the first end. Plunger 218 can form a seal with drug container 202 to define an interior volume of drug container 202 that can contain a drug. Movement of plunger 218 toward the first end decreases the interior volume of drug container 202, thereby applying pressure to the drug and forcing the drug from drug container 202 through transfer needle 208, which pierces septum 212 at the first end of drug container 202.

[0022] As shown in Figure 2b, the injection system 200 can include an insertion mechanism 224 that can advance the injection needle from a pre-injection position (within the housing 201) to an injection-ready position (shown in Figure 1). The injection system 200 can include a fluid conduit 210 that can connect the transfer needle 208 to the injection needle.

[0023] The injection system 200 can include a drive assembly capable of advancing the plunger 218 along the body of the medication container 202. The drive assembly can include a telescoping screw assembly (TSA) 226 capable of advancing a piston rod. The injection system 200 can include a motor 228 capable of driving the TSA 226 to advance the piston rod. The injection system 200 can include a control unit 230 (shown schematically in FIG. 2b) capable of controlling the operation of the motor 228. The piston rod can engage the plunger 218 to advance the plunger 218 through the medication container 202.

[0024] 2b, the septum 212 (or other seal) has not yet been pierced by the transfer needle 208, thereby preventing fluid communication between the transfer needle 208 and the interior volume of the drug container 202. However, before an injection can occur via the transfer needle, the transfer needle 208 must be brought into fluid communication with the interior volume of the drug container 202. The sterility of the fluid conduit 210, transfer needle 208, and septum 212 can be maintained throughout this process.

[0025] Figures 3a-3c show a simplified representation of a system 300 for providing a sterile connection between two bodies in a drug delivery system. The system 300 can be used with, for example, the infusion device 100 and / or the infusion system 200. Figures 3a-3c show a simplified set of components to aid the reader's understanding. Figure 3a shows the components of the system in an unconnected state. Figure 3b shows the components of the system in a first connected state, where the components are brought together to create a sterile connection. Figure 3c shows the components of the system in a second connected state, where a sterile connection has been formed between two bodies in the system.

[0026] The system 300 for providing a sterile connection can include a first body 310 defining a first volume and a second body 320 defining a second volume. The first body 310 and second body 320 are shown unconnected in FIG. 3a. The first body 310 defines an opening at one end, and a first seal 312 can seal the opening. The first seal 312 can define a first outer sealing surface 314. The second body 320 defines an opening at one end, and a second seal 322 can seal the opening. The second seal 322 can define a second outer sealing surface 324. The first body 310 can include a transfer needle 318 that can pierce the first seal 312 and the second seal 322 to form a fluid connection between the first body 310 and the second body 320 once the first body 310 and the second body 320 are connected.

[0027] There is a risk of contamination of either or both of the first and second outer sealing surfaces 314, 324 if they are exposed to the environment for an extended period of time. As mentioned above, to ensure that the transfer needle 318 is not contaminated during this process due to contamination of either or both of the first and second outer sealing surfaces 314, 324, the first and second outer sealing surfaces 314, 324 can be sterilized at the time they are brought into contact.

[0028] The system 300 can include a heating element 330 capable of sterilizing the first outer sealing surface 314 and the second outer sealing surface 324. In various embodiments, the heating element 330 can include a strip of electrically or thermally conductive material. The strip can be made of metal or any other suitable material for converting electrical energy into heat. The heating element 330 can have a shape that corresponds to the shape of the outer sealing surface 314 of the first seal 312 and the outer sealing surface 324 of the second seal 322 when they are brought into corresponding relationship. The heating element 330 can define substantially parallel, opposing planes, although other configurations are also possible.

[0029] FIG. 3b shows the first body 310 and the second body 320 brought into a position where the first seal 312 and the second seal 322 are brought into a facing relationship, i.e., where the first outer sealing surface 314 and the second outer sealing surface 324 face each other. If the sealing surfaces 314, 324 are planar, the outer sealing surfaces 314, 324 can be positioned parallel to each other and facing each other. The heating element 330 can be positioned between the first body 310 and the second body 320 such that the heating element 330 contacts the first outer sealing surface 314 and the second outer sealing surface 324. Once the system is in the position shown in FIG. 3b, the heating element 330 can be heated, for example, via electrical resistance, induction, or in any other suitable manner. The heating element 330 is thus able to transfer heat to the outer sealing surfaces 314, 324 to sterilize the outer sealing surfaces 314, 324.

[0030] The heating element 330 can heat the outer sealing surfaces 314, 324 to a predetermined temperature for a predetermined time to sterilize the outer sealing surfaces 314, 324. The heating element 330 may be preheated before the system is brought into the position depicted in FIG. 3b so that the time required to sterilize the outer sealing surfaces 314, 324 is minimized and heat transfer to the first and second seals 312, 322 is minimized. Alternatively, the heating element 330 may be heated only after the system 300 is brought into the position depicted in FIG. 3b. One or more sensors may be applied to any portion of the heating element 330 to monitor heat transfer between the heating element 330 and the outer sealing surfaces 314, 324. Additionally or alternatively, based on the material properties of the heating element 330, the temperature of the heating element 330 may be inferred from the amount of current provided to the heating element and the amount of time the heating element 330 is heated. Parameters for determining the threshold temperature and duration of the sterilization process may be programmed into the control unit, causing the control unit to automatically operate the heating element 330. To ensure that the outer sealing surfaces 314, 324 are sterilized to an appropriate tolerance, the temperature of the heating element 330 may remain above 200°C for 15 seconds or more. In various embodiments, the heating element 330 may remain at a temperature significantly above 200°C (e.g., between 250°C and 300°C, or above 300°C) for less than 15 seconds.

[0031] The heating element 330 can be optimized to minimize the required heating time. For example, the heating element 330 can comprise a metal with a low specific heat capacity, i.e., a material that heats up quickly. As previously mentioned, the heating element 330 may be preheated before being brought into the position of Figure 3b so that the sterilization time, i.e., the time spent in the position of Figure 3b, is minimized. Optimizing and / or minimizing the sterilization time can reduce or eliminate the adverse effects of heating on a pharmaceutical product contained in one of the first body 310 or second body 320, as is the case, for example, with the infusion system 200 of Figures 2a and 2b.

[0032] In various embodiments, the second seal 322 can comprise a heat-resistant material such that the second seal 322 does not transfer heat from the outer sealing surface 324 to the interior of the second body 320. Additionally or alternatively, the second seal 322 can be thick such that heat transfer from the second outer sealing surface 324 to the interior of the second body 320 is minimized or eliminated. Additionally or alternatively, the second seal 322 can have a layered structure with one or more insulating layers positioned between the outer sealing surface 324 and the interior of the second body 320. The insulating layers can comprise an insulating material that prevents heat transfer from the outer sealing surface 324 to the interior or second body 320. Additionally or alternatively, seal 322 may have a multi-part structure, with outer sealing surface 324 covering the opening in second body 320 to form an airtight or gastight barrier, and a stopper seal ensuring that substances (e.g., pharmaceuticals) within second body 320 do not escape from the interior of second body 320. Either or both of seals 312, 322 could also be formed in the manner described above. These embodiments can protect substances, such as pharmaceuticals, contained within first body 310 and / or second body 320 from the adverse effects of heat treatments applied to seals 312, 322.

[0033] In various embodiments, one or both of the first body 310 and the second body 320 may contain a pharmaceutical product during the sterilization process. However, it is contemplated that the first body 310 and the second body 320 may undergo the sterilization process described herein before the filling step, i.e., both the first body 310 and the second body 320 are empty at the time of sterilization. In such a system, one or both of the first body 310 and the second body 320 may be filled with a pharmaceutical product after the sterilization process has occurred.

[0034] The first body 310 and the second body 320 can be brought into a face-to-face relationship as shown in FIGS. 3b and 3c. In various embodiments, a connection assembly 340, which can include cooperating first and second engagement bodies 342 and 344, can secure the first body 310 and the second body 320 in a face-to-face relationship as shown generally in FIGS. 3a-3c. The first and second engagement bodies 342 and 344 can define corresponding mating components such that the first and second engagement bodies 342 and 344 secure the first and second seals 312 and 322, respectively, against one another. For example, the first and / or second engagement bodies 342 and 344 can be mechanical structures such as brackets, arms, clamps, holders, or any other structure capable of holding the first and second bodies 310 and 320 in place. The first seal 312 and the second seal 322 can be secured together with a space between them, which can have approximately the same dimensions (e.g., thickness) as the heating element 330. When secured together, the first engagement body 342 and the second engagement body 344 define a slot 346 through which the heating element 330 can be inserted to pass between the seals 312 and 322, reaching the position shown in FIG. 3b in which the heating element 330 contacts both the first outer sealing surface 314 and the second outer sealing surface 324. The heating element 330 can be movable between a first position (i.e., the position shown in FIGS. 3a and 3c) in which the heating element 330 is not disposed between the first body 310 and the second body 320, and a second position in which the heating element 330 is disposed between the first body 310 and the second body 320. The heating element 330 may be mounted on a mounting assembly that is movable between a first position and a second position. The mounting assembly may be directly operable by a user or may be controlled by an electronic control unit.

[0035] In various embodiments, the first engaging body 342 and the second engaging body 344 can be secured when the heating element 330 is positioned between the first outer sealing surface 314 and the second outer sealing surface 324. In this arrangement, opposing forces can be applied to the first outer sealing surface 314 and the second outer sealing surface 324 such that the first outer sealing surface 314 and the second outer sealing surface 324 are biased toward each other. As a result, pressure can be applied between the first body 310 and the second body 320. Applying pressure between the first body 310 and the second body 320 through the heating element 330 increases the surface area of ​​the outer sealing surfaces 314, 324 in contact with the heating element 330. For example, the entire surface area of ​​the outer sealing surfaces 314, 324 can contact the heating element 330. Either or both of seals 312 and 322 may comprise a deformable material, which can further increase the surface area of ​​outer sealing surfaces 314, 324 that contacts heating element 330 when pressure is applied between first body 310 and second body 320, ensuring full point contact with the heating element. Thus, pressure can be applied to heating element 330 to secure it in place. Additionally or alternatively, heating element 330 can be secured in place by other mechanical means, such as a clamp, bracket, arm, etc.

[0036] Once the heating element 330 has been heated according to defined parameters of temperature and duration, the heating element 330 can be removed from between the first body 310 and the second body 320. The heating element 330 may be removed after a predetermined heating time has elapsed, or the heating element 330 may be removed after reaching and / or exceeding a threshold temperature for a predetermined time. For example, one or more temperature sensors may be provided to monitor the temperature of the heating element 330. The temperature sensors may be part of the heating element 330 or part of the first and / or second engaging bodies 342, 344. Removal of the heating element 330 can be controlled by a control unit. For example, the control unit may be configured to automatically remove the heating element 330 in response to completion of the sterilization process, such as when the heating element 330 has been heated to a predetermined temperature for a predetermined time, as discussed above.

[0037] In various embodiments, the first and second engaging bodies 342, 344 may be biased toward one another, exerting pressure on the heating element 330. This biasing force may continue during and after the heating element 330 is removed. When the heating element 330 is removed from its position between the first and second bodies 310, 320, this biasing force may cause the first and second bodies 310, 320 to move toward one another as the heating element 330 is removed. That is, when the heating element 330 is positioned between the first and second bodies 310, 320, the heating element 330 effectively prevents the first and second bodies 310, 320 from moving toward the final position shown in FIG. 3c, such that the first and second bodies 310, 320 are biased such that pressure is applied to the heating element 330. This biasing force can secure the first body 310 and the second body 320 in a connected relationship with the first outer sealing surface 314 and the second outer sealing surface 324 in contact with each other. By bringing the first body 310 and the second body 320 into a connected relationship after sterilization, the biasing force can simultaneously form a seal between the outer sealing surfaces 314 and 324 as the heating element 330 is removed from between the outer sealing surfaces 314 and 324. That is, the outer sealing surfaces 314, 324 can contact each other simultaneously with the removal of the heating element 330, sealing the outer sealing surfaces 314, 324 from the environment. This seal provides a reliable sterile connection between the first seal 312 and the second seal 322 and can reduce or eliminate contamination of the first and second sealing surfaces 314, 324 after sterilization. The simultaneous creation of a seal between the first sealing surface 314 and the second sealing surface 324 during removal of the heating element 330 can occur due to elastic expansion of the first seal 312 and the second seal 322 at the trailing edge of the heating element 330 as the heating element 330 is removed from between the first sealing surface 314 and the second sealing surface 324.

[0038] The first body 310 and the second body 320 can remain indefinitely in the position shown in FIG. 3c, and the seal should remain sterilized until use as long as they are integrally fixed. For example, in the case where one of the first body 310 and the second body 320 contains a pharmaceutical product, a fluid path can be established between the first body 310 and the second body 320 during use. For example, a fluid path may be established by using the transfer needle 318 to pierce the first seal 312 and the second seal 322.

[0039] As previously described, the first body 310 and the second body 320 can be held in place as part of a connection assembly 340. The connection assembly 340 can be part of a medical device, such as the injection device 100 and the injection system 200 shown in FIGS. 1 and 2, respectively. Either the first body 310 or the second body 320 can be an integral part of the medical device. In various embodiments, the first body 310 and / or the second body 320 can be inserted and secured into the connection assembly 340. The connection assembly 340 can define a first connection assembly and a second connection assembly. The first connection assembly and the second connection assembly can include corresponding first and second engagement bodies 342 and 344, respectively. The connection assembly 340 may be movable from a first position in which the first body 310 and the second body 320 are disengaged or spaced apart, as shown in FIG. 3a or 4a below, to a second position in which the first body 310 and the second body 320 are in contact, as shown in FIG. 3c. In the embodiment shown in FIGS. 3a-3c, the presence of the heating element 330 may prevent the first body 310 and the second body 320 from moving into contact with each other. The connection assembly 340 may include a latching or locking mechanism that allows the first body 310 and the second body 320 to be locked in the position shown in FIG. 3b. The latching mechanism can provide a biasing force that applies pressure between either or both of the first body 310 and the second body 320 so that when the heating element 330 is removed, the first and / or second bodies 310, 320 can move toward each other, filling the space left by the heating element 330 and contacting each other.

[0040] In various embodiments, the seals 312 and 322 can comprise a resilient or deformable material that extends beyond the edge of the opening in the first body 310 and / or the edge of the opening in the second body 320, as shown in FIG. 4a. The first seal 312 can extend beyond the first body 310 by a distance a, and the second seal 322 can extend beyond the second body 320 by a distance b. FIG. 4a shows portions of the connection assembly 340 in the same position as shown in FIG. 3a. The first body 310 and the second body 320 can be brought into a connected position as shown in FIG. 4b. The position shown in FIG. 4b may be the same as the position shown in FIG. 3b. Connection assembly 340, including first engagement body 342 and second engagement body 344, can be secured in a position where connection assembly 340 holds first body 310 and second body 320 such that the ends of first body 310 and second body 320 are a distance D from each other, as shown in FIG. 4b. In embodiments, distance D is less than distance a+b, and first seal 312 and second seal 322 can deform as shown by the shaded area in FIG. 4b. That is, when heating element 330 is positioned between first seal 312 and second seal 322, the ends of first seal 312 and second seal 322 are compressed by being held in place by connection assembly 340.

[0041] By holding first body 310 and second body 320 at a distance D that is less than distance a+b, heating element 330 can be held in place by positive pressure due to deformation of first seal 312 and second seal 322. First seal 312 and second seal 322 can be biased toward each other by a combination of the held position and the presence of heating element 330. Heating element 330 can break contact between first seal 312 and second seal 322.

[0042] 4c-4e, when the heating element 330 is removed after sterilizing the first outer sealing surface 314 and the second outer sealing surface 324, the first seal 312 and the second seal 322 can return to their undeformed state. In this manner, a seal can be automatically formed between the first seal 312 and the second seal 322 without any movement of the first body 310 and the second body 320 toward each other. This is because the fixed position (i.e., face-to-face relationship) of the first body 310 and the second body 320 leads the first seal 312 and the second seal 322 to contact each other by extending the first seal 312 a distance a from the first body 310 and the second seal 322 a distance b from the second body 320. Thus, in the configuration shown in Figures 4a-4e, the connection assembly 340 simply secures the first body 310 and the second body 320 in their final position at a distance d from each other, at which point the first seal 312 and the second seal 323 automatically form a connection when the heating element 330 is no longer present.

[0043] The above-described methods and connection systems may be used with the infusion device 100 and / or infusion system 200 discussed above, although the present disclosure is not intended to be limited thereto. Furthermore, when used with the above-discussed methods and connection systems, a sterile connection between the infusion device 100 and the drug container 102 may be achieved. In various embodiments, the above-described methods and connection systems may be coupled to the septum end of the drug container 102, with the connection assembly 340 disposed within an enclosure within the door 122 of the infusion device 100. However, it will be appreciated that the above-described methods and connection systems may also be used to form other sterile connections within wearable infusion devices or to form connections within other drug delivery systems (e.g., pen injectors with sealed drug cartridges, infusion pumps, etc.).

[0044] FIG. 5 illustrates a container filling system according to the present disclosure. The container filling system can include a first container 500 connectable to a first connection assembly 402. The container filling system can include a second container 502 connectable to a second connection assembly 404. The first connection assembly 402 and the second connection assembly 404 can include any of the features discussed above with respect to connection system 300, and vice versa. The sterilization process described above can be performed between the respective surfaces of the first container 500 and the second container 502 (or components fluidly attached to those containers). Thus, it is possible to fill the first container 500 or the second container 502 without compromising sterility. The first container 500 may define a vial or a cartridge. The second container 502 may be larger, smaller, or the same size as the first container 400. The first container 500 and / or the second container 502 may define a flexible bag or may be a rigid structure.

[0045] Figure 6 illustrates a method of forming a sterile fluid pathway according to the present disclosure, which can be performed using structures similar to the connection system 300, infusion device 100, and / or infusion system 200 of Figures 3a-3c described above.

[0046] At step 600, a user can open a door of an infusion device provided on a patient's body. The infusion device can include a second connection assembly. Opening the door can reveal an enclosure within the infusion device. The enclosure can house the second connection assembly.

[0047] At step 602, a user may select a medication container containing the correct medication type and dosage for the treatment to be administered. The medication container may include a septum that seals the opening of the medication container. A user may couple an injection device to the medication container by partially inserting the medication container into the enclosure. The medication container may be positioned against a second body within the injection device that delivers the medication through a hypodermic needle to an injection site. This may correspond to the first state depicted in FIG. 4a. A heating element may be positioned between the first seal of the medication container and the second body of the injection device.

[0048] At step 604, the user may close the door of the injection device. This allows the drug container to move into a position within the injection device where the drug container is ready for a sterile connection between the first outer sealing surface of the seal on the drug container and the second outer sealing surface of the second body within the injection device. Specifically, closing the door brings the drug container into a biased position where the first outer sealing surface is in contact with the heating element and the second outer sealing surface is also in contact with the heating element. Closing the door may move the heating element into position; that is, movement of the door may be mechanically linked to movement of the heating element between a first position and a second position where the heating element is in position between the first body and the second body.

[0049] The heating element may perform a sterilization procedure by heating the first and second outer sealing surfaces to a predetermined temperature for a predetermined time in step 606. In embodiments, closing the door in step 604 may activate a predetermined heating program to perform sterilization.

[0050] At step 608, the heating element can be removed from between the first and second outer sealing surfaces, forming a sterile connection between the first and second outer sealing surfaces. This can be accomplished by bringing the first and second bodies together via a biasing force applied by closing the door of the injection device, which can move the first body toward and connect the second body. Additionally or alternatively, this can be accomplished by one or more resilient seals returning to an undeformed state as the heating element is removed.

[0051] At step 610, the transfer needle may move through the seal toward the septum, eventually piercing the septum. Once the septum is pierced, a retention mechanism may engage the transfer needle to hold it in place. In this state, a fluid pathway between the medication container and the injection device is established. This may correspond to the third state depicted in Figure 3c.

[0052] At step 612, the user can press a button, which activates the injection mechanism so that the injection can be performed. The medication can be delivered to the patient through the hypodermic needle.

[0053] Another aspect of the present disclosure may include a method for creating a sterile connection in a drug delivery system, the method including the steps of providing a first volume with a first seal, the first seal sealing an opening of the first volume and having a first outer sealing surface; providing a second volume with a second seal, the second seal sealing an opening of the second volume and having a second outer sealing surface; disposing an outer surface of the first seal in a facing relationship with an outer surface of the second seal; and disposing a heating element in contact with the first outer sealing surface and the second outer sealing surface. The method includes the steps of: disposing a heating element between the first and second outer sealing surfaces; applying opposing forces to the first and second outer sealing surfaces such that the first and second outer sealing surfaces are urged toward each other; heating the heating element to a predetermined temperature for a predetermined time to sterilize the first and second outer sealing surfaces; and removing the heating element from between the first and second seals while continuing to apply the opposing forces to the first and second outer sealing surfaces, thereby simultaneously forming a seal between the first and second outer sealing surfaces.

[0054] The provision of a heating element provides a simple and time-efficient method for creating a sterile seal between two bodies. Therefore, fluid transfer from a first body to a second body can be accomplished reliably and with reduced potential for non-sterile elements from the seal's surface to contaminate the flow. Because the seals and their outer surfaces are brought into a face-to-face relationship in which they are forced toward one another, i.e., from which they will be joined, the process of simultaneously sterilizing and joining both outer surfaces means there is little opportunity for the seals to become contaminated before they are joined together. The predetermined temperature may be a predetermined temperature range comprising a minimum temperature above which the heating element must be heated and a maximum temperature above which the heating element must not exceed in order to avoid damaging the sealing surfaces. The heating time may comprise one or more time intervals during which the heating element must be at the required temperature or within the required temperature range.

[0055] The heating element may comprise a strip of electrically or thermally conductive material in the form of a strip that is heated by electrical resistance or induction. The strip may be configured to be easily removed from between the seals once the sterilization process has taken place.

[0056] The first and second outer sealing surfaces can be secured in contacting relationship once a sterilization process has occurred, after which the two bodies can remain in this position indefinitely or for as long as necessary without compromising the seal between the first and second outer sealing surfaces.

[0057] The first seal may be part of a first connection assembly having a first mating body with a first volume, and the second seal may be part of a second connection assembly having a second mating body with a second volume. The first and second mating bodies may have corresponding mating components to secure the first and second seals in contacting relationship.

[0058] The first and second engaging bodies, when connected to one another, can form a slot through which the heating element extends to contact the first and second outer sealing surfaces. The method can further include securing the first and second engaging bodies to one another with the heating element disposed between the first and second outer sealing surfaces, and removing the heating element through the slot.

[0059] This configuration, with a connection assembly having a first and second engaging body, provides a simple means of bringing the first and second bodies together and securing them in place. The slot formed between the first and second engaging bodies when they are connected together provides a convenient means for inserting and / or removing a heating element into and / or from the space between the first and second outer sealing surfaces when the first and second bodies are in place.

[0060] The step of removing the heating element from between the first seal and the second seal may be performed after the step of fixing the first engagement body and the second engagement body.

[0061] The first seal may seal against an enclosure in which the septum of the medication container is located.

[0062] The second seal may enclose an enclosure in which the tip of the transfer needle is located.

[0063] The step of disposing the heating element between the first and second outer sealing surfaces may include inserting the heating element into a space between the first and second outer sealing surfaces and advancing one or both of the first and second outer sealing surfaces toward the heating element until the first and second outer sealing surfaces contact the heating element. The first and second outer sealing surfaces may be brought into a fixed position, and then the heating element may be placed therebetween. Once in this position, the two outer sealing surfaces may be brought into contact with either side of the heating element.

[0064] Each of the first volume and the second volume may be empty during the sterilization process, or alternatively, one of the first volume and the second volume may contain a pharmaceutical product during the sterilization process.

[0065] In a second aspect, a system for creating a sterile connection between two components in a drug delivery system is provided, the system comprising: a first sterile volume sealed by a first seal and having a first outer sealing surface; a second sterile volume sealed by a second seal and having a second outer sealing surface; and a connection assembly configured to secure the first and second outer sealing surfaces in contacting relationship. The connection assembly comprises a slot through which a heating element is configured to extend for contacting the first and second outer sealing surfaces, and a heating element configured to extend through the slot for contacting the first and second outer sealing surfaces.

[0066] The described system allows for a first volume and a second volume to be brought together and a sterile seal formed therebetween via the introduction of a heating element.

[0067] The above detailed description describes systems and methods for ensuring sterility of on-body infusion devices. However, as will be appreciated by those skilled in the art, the invention is not limited to use in connection with the exemplary on-body devices described herein. Rather, one or more benefits associated with the present invention may be implemented in connection with other drug delivery devices, or in any instance in which a sterile connection is formed between two bodies having seals that may be non-sterile, as will be apparent to those skilled in the art in light of the above detailed description.

[0068] The embodiments described and shown in the accompanying drawings are provided as examples of ways in which the invention can be put into practice and are not intended to limit the scope of the invention. Modifications may be made, elements may be replaced with functionally and structurally equivalent parts, and features of different embodiments may be combined without departing from the disclosure. [Aspect 1] 1. A method for creating a sterile connection, the method comprising: providing a first body defining an opening, a first seal sealing the opening in the first body, the first seal defining a first outer sealing surface; providing a second body defining an opening, a second seal sealing the opening in the second body, the second seal defining a second outer sealing surface; placing the first outer sealing surface in a facing relationship with the second outer sealing surface; disposing a heating element between the first outer sealing surface and the second outer sealing surface such that the heating element contacts the first outer sealing surface and the second outer sealing surface; applying opposing forces to the first and second outer sealing surfaces such that the first and second outer sealing surfaces are urged toward each other; heating the heating element to a predetermined temperature for a predetermined time to sterilize the first outer sealing surface and the second outer sealing surface; removing the heating element from between the first seal and the second seal while continuing to apply the opposing forces to the first and second outer sealing surfaces, thereby simultaneously forming the sterile connection between the first and second outer sealing surfaces. [Aspect 2] In the method of embodiment 1, The heating element defines a strip of electrically conductive material. Aspect 3 The method according to any one of aspects 1 to 2, The heating element defines a strip of thermally conductive material. Aspect 4 In the method according to aspect 2 or 3, The method wherein the heating element is heated by electrical resistance. Aspect 5 In the method according to aspect 2 or 3, The method wherein the heating element is heated by induction. Aspect 6 6. The method of any one of aspects 1 to 5, comprising: The method further comprising the step of securing the first outer sealing surface in contacting relationship with the second outer sealing surface. Aspect 7 7. The method of any one of aspects 1 to 6, A method wherein a first engagement body and a second engagement body secure the first body and the second body in a facing relationship, respectively, and apply the opposing forces. Aspect 8 In the method of embodiment 7, a slot is formed between the first and second outer sealing surfaces in the facing relationship; The method comprises: securing the first engagement body and the second engagement body to each other with the heating element disposed in the slot between the first outer sealing surface and the second outer sealing surface; removing the heating element through the slot. Aspect 9 In a method according to embodiment 8, The method, wherein the step of removing the heating element from between the first seal and the second seal is performed after the step of securing the first engagement element and the second engagement element. Aspect 10 10. The method of any one of aspects 1 to 9, The method, wherein the first body defines a drug container having a septum, and the first seal seals the drug container. Aspect 11 11. The method of any one of aspects 1 to 10, The method, wherein the second body defines an enclosure in which a tip of a transfer needle is disposed, and the second seal seals the enclosure. Aspect 12 12. The method of any one of aspects 1 to 11, The step of disposing the heating element between the first outer sealing surface and the second outer sealing surface includes: inserting the heating element into a space between the first outer sealing surface and the second outer sealing surface; advancing one or both of the first outer sealing surface and the second outer sealing surface toward the heating element to a position where the first outer sealing surface and the second outer sealing surface contact the heating element. Aspect 13 13. The method of any one of aspects 1 to 12, The method, wherein the first body and the second body are each empty. Aspect 14 13. The method of any one of aspects 1 to 12, The method, wherein one of the first body and the second body contains a pharmaceutical agent. Aspect 15 A method of assembling a drug delivery device, comprising creating a sterile connection according to any one of aspects 1 to 14 between two components of the drug delivery device. Aspect 16 1. A system for creating a sterile connection, the system comprising: a first body; a first seal sealing to the first body, the first seal defining a first outer seal surface; a second body; a second seal sealing to the second body, the second seal defining a second outer seal surface; a first engaging body and a second engaging body configured to secure the first body and the second body in a facing relationship in which the first outer sealing surface and the second outer sealing surface contact each other; a heating element configured to extend between the first and second outer sealing surfaces while the first and second mating bodies are in the facing relationship to interrupt contact between the first and second outer sealing surfaces and to sterilize the first and second outer sealing surfaces; the first engaging body and the second engaging body are configured to secure the first body and the second body in the face-to-face relationship, respectively, such that contact between the first outer sealing surface and the second outer sealing surface is restored upon removal of the heating element to provide the sterile connection between the first outer sealing surface and the second outer sealing surface, Aspect 17 In the system of embodiment 16, The system, wherein the first body defines a medication container having a septum and the second body defines an enclosure in which a tip of a transfer needle is disposed. Aspect 18 In the system according to aspect 16 or 17, The system, wherein the first body and the second body are each empty. Aspect 19 In the system according to aspect 16 or 17, The system, wherein one of the first body and the second body contains a pharmaceutical agent. Aspect 20 20. The system of any one of aspects 16 to 19, The system, wherein the heating element is configured to heat the first outer sealing surface and the second outer sealing surface to a temperature greater than 200°C for at least 15 seconds. [Explanation of symbols]

[0069] 100 On-Body Infusion Devices 102 Medicine container 104 Hypodermic needle 106 Patient's Skin 108 Transfer needle 110 Fluid conduit 112 Bulkhead 114 Housing 116 Skin contact surfaces 200 Wearable Infusion System 201 Housing 202 Medicine container 208 Transfer needle 210 Fluid conduit 212 Bulkhead 218 Plunger 220 Actuator Button 222 Doors 224 Insertion Mechanism 226 Telescopic Screw Assembly (TSA) 228 Motor 230 Control Unit 300 System for providing a sterile connection between two bodies 310 First Body 312 First Seal 314 first outer sealing surface 318 Transfer needle 320 Second Body 322 Second Seal 324 second outer sealing surface 330 Heating element 340 Connection Assembly 342 First engagement body 344 Second engagement body 346 Slots 402 first connection assembly 404 Second Connection Assembly 500 First container 502 Second Container a, b Distance that the seal extends beyond the edge of the body opening D Distance between the ends of the body when secured by the connection assembly

Claims

1. 1. A method for creating a sterile seal between a first body and a second body of a drug delivery system, the method comprising: placing a first outer sealing surface of a first seal that seals the opening of the first body in face-to-face relationship with a second outer sealing surface of a second seal that seals the opening of the second body, the first seal and the second seal being elastically deformable; disposing a heating element between the first outer sealing surface and the second outer sealing surface such that the heating element contacts the first outer sealing surface and the second outer sealing surface; applying opposing forces to the first and second outer sealing surfaces by first and second engagement bodies such that the first and second outer sealing surfaces are urged toward each other and the first and second seals are elastically deformed to a deformed state; heating the first and second outer sealing surfaces with the heating element to a predetermined temperature for a predetermined time to sterilize the first and second outer sealing surfaces; removing the heating element from between the first seal and the second seal while continuing to apply the opposing force to the first and second outer sealing surfaces, such that the first and second seals at least partially resiliently recover from the deformed state while simultaneously forming a sterile connection between the first and second outer sealing surfaces; and using the first engaging body and the second engaging body to secure the first body and the second body in a final position at a distance from each other, wherein the first seal and the second seal at least partially resiliently recover from the deformed state to create the sterile seal between the first body and the second body in the final position.

2. 10. The method of claim 1, The method, wherein the heating element defines a strip of electrically conductive material or a strip of thermally conductive material.

3. 3. The method of claim 2, The method wherein the heating element is heated by electrical resistance or induction.

4. 4. The method according to any one of claims 1 to 3, The method further comprising the step of securing the first outer sealing surface in contact with the second outer sealing surface using the first and second engagement bodies.

5. 5. The method of claim 4, a slot is formed between the first and second outer sealing surfaces in the facing relationship; The method comprises: securing the first engagement body and the second engagement body to each other with the heating element disposed in the slot between the first outer sealing surface and the second outer sealing surface; removing the heating element through the slot.

6. 6. The method of claim 5, The method, wherein the step of removing the heating element from between the first seal and the second seal is performed after the step of securing the first engaging element and the second engaging element.

7. 4. The method according to claim 1, wherein The method, wherein the first body defines a drug container having a septum, and the first seal seals the drug container.

8. 4. The method according to claim 1, wherein The method, wherein the second body defines an enclosure in which a tip of a transfer needle is disposed, and the second seal seals the enclosure.

9. 4. The method according to claim 1, wherein The step of disposing the heating element between the first outer sealing surface and the second outer sealing surface includes: inserting the heating element into a space between the first outer sealing surface and the second outer sealing surface; advancing one or both of the first outer sealing surface and the second outer sealing surface toward the heating element to a position where the first outer sealing surface and the second outer sealing surface contact the heating element.

10. 4. The method according to claim 1, wherein The method, wherein one of the first body and the second body contains a pharmaceutical agent.

11. 1. A drug delivery system for creating a sterile seal, the drug delivery system comprising: a first body; a first seal sealing to the first body, the first seal defining a first outer sealing surface; a second body; and a second seal sealing to the second body, the second seal defining a second outer seal surface; a first engaging body and a second engaging body configured to secure the first body and the second body in a facing relationship in which the first outer sealing surface and the second outer sealing surface contact each other; a heating element configured to extend between the first and second outer sealing surfaces while the first and second mating bodies are in the facing relationship to interrupt contact between the first and second outer sealing surfaces and to sterilize the first and second outer sealing surfaces; the first engaging body and the second engaging body are configured to secure the first body and the second body, respectively, in the facing relationship such that contact between the first outer sealing surface and the second outer sealing surface is restored upon removal of the heating element to provide the sterile seal between the first outer sealing surface and the second outer sealing surface.

12. 12. The system of claim 11, The system, wherein the first body defines a medication container having a septum and the second body defines an enclosure in which a tip of a transfer needle is disposed.

13. 13. The system according to claim 11 or 12, The system, wherein one of the first body and the second body contains a pharmaceutical agent.

14. The method according to any one of claims 1 to 10, The predetermined temperature is 200°C. The predetermined time period is 15 seconds.

15. In the system according to any one of claims 11 to 13, the first seal and the second seal are elastically deformable; the first seal and the second seal are elastically deformed to a deformed state when the heating element is between the first seal and the second seal and the first body and the second body are secured in the facing relationship; The system, wherein the first seal and the second seal at least partially resiliently recover from the deformed state when the heating element is removed.

Citation Information

Patent Citations

  • heat weld tube connector

    JP2009543008A

  • Drug delivery devices with sterile fluid flow paths and related assembly methods

    JP2020508096A

  • Connection system and active sterilizer for a drug delivery device

    US63160871P0