Safety syringe systems and methods

A low-profile syringe system with a latch mechanism and nested segments addresses safety and efficiency challenges in prefilled syringes, enabling precise microliter range fluid delivery and reducing storage costs.

JP2026012678APending Publication Date: 2026-01-27CREDENCE MEDSYSTEMS INC
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Patent Information

Application Number
JP2025153893
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-03-07
Filing Date
2025-09-17
Publication Date
2026-01-27

AI Technical Summary

Technical Problem

Current syringe configurations face challenges in meeting emerging global standards for disposability, safety, and needlestick protection, particularly in prefilled syringe assemblies, with issues such as large inventory and usage costs, and difficulties in aligning components during assembly to meet safety and auto-defeat requirements.

Method used

A low-profile reservoir injection system with a syringe body, stopper member, and plunger member that includes a latch mechanism and nested segments, allowing precise control over fluid delivery in the microliter range, and incorporates a rotatable member for safe and efficient fluid injection.

Benefits of technology

The system achieves accurate fluid delivery in the microliter range, reduces storage and shipping space, and meets safety standards with a low-profile design, while utilizing existing supply chains and assembly machinery, enhancing patient-specific medication administration.

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Abstract

To provide a low-profile reservoir-type injection system and a microliter range injection system.SOLUTION: The injection system 200 comprises a syringe body 310 having proximal and distal ends, a syringe interior, and a syringe flange 340 at its proximal end. The system also includes a stopper member disposed within the syringe. The system further includes a plunger member 350 coupled to the stopper member. The plunger member includes a rotatable member configured to distally insert the stopper member into the syringe interior relative to the syringe body upon rotation of the rotatable member 360. The plunger member further includes a proximal portion proximal of the rotatable member and configured to insert the stopper member in a distal direction within the syringe relative to the syringe body to expel a few microliters of fluid from within the syringe.SELECTED DRAWING: Figure 46
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Description

[Technical Field]

[0001] This disclosure relates generally to injection systems, devices, and processes for achieving various levels of control over fluid injection, and more particularly to systems and methods for syringes that deliver doses of fluid in the microliter range in medical environments. This disclosure also relates to injection systems, devices, and processes with small delivery and storage profiles / footprints. [Background technology]

[0002] Millions of syringes (2), such as those shown in FIG. 1A, are consumed daily in medical settings. A typical syringe (2) includes a tubular body (4), a plunger (6), and a needle (8). As shown in FIG. 1B, such syringes (2) can be used not only to inject liquids into patients, but also to withdraw or insert liquids from containers such as vials, bags, or other drug containment systems (10). In fact, due to regulatory constraints and concerns about maintaining sterility in some countries, such as the United States, when syringes (2) are used with vials (10), as illustrated in certain patient settings, the vials must be used with a single patient and then discarded, resulting in significant medical waste of bottles and discarded leftover medication, and contributing to periodic shortages of certain critical medications. Referring to FIG. 2A, three luer syringes (12) are shown, each with a luer fitting structure (14) located at its distal end, which can be connected to other devices with similar mating geometries, such as the luer manifold assembly (16) shown in FIG. 2B. The luer manifold assembly of FIG. 2B can be used to administer medicinal fluids intravenously to a patient, with or without an intravenous fluid bag. The luer fittings (14) of the syringes in FIG. 2A are referred to as "male" luer fittings, while the luer fittings in FIG. 2B (18) are referred to as "female" luer fittings. One of the luer interfaces may be threaded (in which case, this configuration is referred to as a "luer lock" configuration), allowing the two to couple by relative rotation, possibly in combination with a compressive load. In other words, one luer lock embodiment may utilize rotation, possibly in conjunction with compression, to engage threads within the male fitting (14), which is configured to engage a flange on the female fitting (18), together providing a fluid-tight connection to the device. In another embodiment, a tapered interface shape can be utilized to provide a compression-based luer engagement without threads or rotation (such a configuration can be referred to as a "slip-on" or "conical" luer configuration). While such luer connections are considered relatively safe for the operator, there is a risk of drug spillage or leakage or component damage during loading to provide a luer connection.

[0003]

[0003] On the other hand, the use of injection needle structures entails the risk of the sharp needle coming into contact with or piercing unwanted people or structures, and for this reason so-called "safety syringes" have been developed.

[0004] One embodiment of a safety syringe 20 is shown in FIG. 3, in which a tubular shield member 22 is spring-biased to cover the needle 8 when released from a locked position relative to the syringe body 4. Another embodiment of a safety syringe 24 is shown in FIGS. 4A-4B. In such a configuration, after the plunger 6 is fully inserted into the syringe body 4, the retractable needle 26 retracts (28, 26) back to a safe position within the tubular body 4, as shown in FIG. 4B. Such a configuration configured to collapse upon itself can be associated with issues of blood splatter / aerosolization, safe storage of preload energy that could result in malfunction or premature activation, reduced accuracy of full-dose injection due to dead space remaining within the spring's compressed volume, and / or loss of retraction speed control, which can cause pain and patient discomfort.

[0005] Further complicating the syringe market is the increasing demand for pre-filled syringe assemblies, as shown in FIGS. 5A and 5B. Syringe assemblies generally include a syringe body, or "drug enclosure delivery system" (34), a plunger tip, a plug or stopper (36), and a distal seal or cap (35) that can be attached to a luer-type interface (FIG. 5A shows the cap 35 in place, while FIG. 5B shows the cap removed to reveal the luer interface (14)). The drug solution resides in a volume or drug reservoir (40) between the distal seal (35) and the distal end (37) of the stopper member (36). The stopper member (36) comprises a standard butyl rubber material and is coated with a biocompatible lubricious coating (e.g., polytetrafluoroethylene ("PTFE")) to provide favorable sealing and relative motion characteristics relative to the associated syringe body (34) structure and material. The proximal end of the syringe body (34) in FIG. 5B has a conventional, one-piece syringe flange (38) integrally formed with the material of the syringe body (34). This flange (38) is configured to extend radially from the syringe body (34) and may be configured to extend fully or partially around the syringe body (34). A partial flange is referred to as a "clip flange," while a full flange is referred to as a "full flange." The flange is used to grip the syringe with the fingers and provide support for depressing the plunger to inject. The syringe body (34) is preferably made of a translucent material, such as glass or a polymer. A stopper member (36) can be positioned within the syringe body (34) to form a containment volume within a chamber or reservoir (40) and aid in the evacuation of associated fluids through the needle. Syringe body (34) can define a substantially cylindrical shape (so that a plunger tip 36 having a circular cross-sectional shape can establish a seal with the syringe body), or can be configured to have other cross-sectional shapes, such as an oval.

[0006] Such assemblies are desirable because they are standardized and produced in precise volumes by a small number of manufacturers worldwide, allowing them to meet all of the world's ever-changing regulations regarding filling, packaging, and drug / drug interface material selection and component use. However, such simple configurations typically do not meet emerging global standards for disposability, safety, self-disabling, and needlestick protection. Therefore, certain suppliers are moving toward more "vertical" solutions, such as the one shown in FIG. 5C (41), that attempt to meet all or at least some of the standards in a single solution. Attempting to meet these standards in many different settings results in such products having significant limitations (including some of those discussed above with reference to FIGS. 3-4B) and relatively large inventory and usage costs.

[0007]

[0007] Additionally, many prefilled syringe assemblies include a prefilled cartridge for use in an injection system. Assembling the prefilled cartridge with a needle hub assembly presents challenges to meet safety, auto-defeat, and needlestick prevention standards. For example, some safety needle retraction systems require more precise alignment of components during assembly, which may not fit within the various tolerances of existing prefilled cartridges.

[0008]

[0008] There is a need for an injection system that addresses the shortcomings of currently available configurations. In particular, there is a need for an injection system (e.g., prefilled) that has a low shipping and storage profile. Such a low-profile storage injection system would reduce the space required for transportation and storage (e.g., refrigeration). A low-profile storage injection system could also be used with a patient-specific automated medication administration and management system. Furthermore, there is a need for an injection system that functions accurately in the microliter range. It is also desirable that such a syringe assembly utilize the existing, relatively well-controlled supply chain of conventional prefilled cartridges and other commercially available products, as well as the corresponding assembly machinery and personnel. Furthermore, there is a need for an injection system that can both inject and withdraw liquids in the microliter range. Summary of the Invention

[0009]

[0009] Embodiments relate to injection systems, particularly to low-profile reservoir injection systems and microliter range injection systems having at least some off-the-shelf syringe components.

[0010] In one embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a latch member disposed within the stopper member. The system further includes a plunger member having a notch at its distal end configured to engage the latch member, thereby directly coupling the stopper member to the plunger member. The plunger member, when directly coupled to the stopper member, is configured to be operable to distally insert the stopper member into the syringe interior relative to the syringe body.

[0011] In one or more embodiments, the system also includes a finger flange coupled to the syringe flange, the finger flange configured to removably couple the plunger member to the syringe body when the plunger member is not directly coupled to the stopper member. The finger flange may include a side opening configured to allow the syringe flange to at least partially pass therethrough and at least partially enter the interior of the finger flange. The finger flange may include a proximal-orientation opening configured to receive the distal end of the plunger member. The finger flange may also include a proximal-orientation funnel disposed about the proximal-orientation opening and configured to direct the distal end of the plunger member toward the proximal-orientation opening.

[0012] In one or more embodiments, the system also includes a luer connector coupled to the distal end of the syringe body. The stopper member can include a proximal-opening funnel at its proximal end, the proximal-opening funnel configured to direct the distal end of the plunger member toward the stopper member.

[0013] In one or more embodiments, the notch is a recessed ring around the distal end of the plunger member. The latch member may include arms extending distally and radially inward to prevent proximal movement of the plunger member when the plunger member is directly coupled to the stopper member.

[0014] In another embodiment, an injection method includes providing an injection system. The injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a latch member on the stopper member. The system further includes a finger flange coupled to the syringe flange. In addition, the system includes a plunger member removably coupled to the syringe body by the finger flange, the plunger member having a notch at its distal end. The method also includes removing the plunger member from the finger flange. The method further includes inserting the plunger member at least partially into the syringe interior and the stopper member such that the latch member engages the notch to couple the plunger member to the stopper member. In addition, the method includes manipulating the plunger member to insert the stopper member distally into the syringe interior relative to the syringe body.

[0015] In one or more embodiments, the finger flange has a proximal-orientation opening, and the step of inserting the plunger member at least partially into the syringe interior and the stopper member includes inserting the plunger member at least partially into the proximal-orientation opening. The finger flange may also include a proximal-orientation funnel disposed about the proximal-orientation opening. The method may also include the step of the proximal-orientation funnel directing a distal end of the plunger member toward the proximal-orientation opening. The injection system may also include a luer connector coupled to the distal end of the syringe body. The method may also include the step of coupling a needle to the syringe body using the luer connector. The stopper member may have a proximal-orientation funnel at its proximal end. The method may also include the step of the proximal-orientation funnel directing a distal end of the plunger member toward the stopper member.

[0016] In one or more embodiments, the notch includes a recessed ring around the distal end of the plunger member, and the latch member may include arms extending distally and radially inward to prevent proximal movement of the plunger member when the plunger member is directly coupled to the stopper member.

[0017] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and configured to be manipulated relative to the syringe body to distally insert the stopper member into the syringe interior. The plunger member has multiple segments of increasing diameter, which are configured to nest within one another in a retracted configuration.

[0018] In one or more embodiments, the segments are configured to nest and lock together in the expanded configuration. The plunger can have three or four segments.

[0019] In yet another embodiment, a method of injection includes providing an injection system. The injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and including a proximal end pad and multiple segments of increasing diameter. The segments nest within one another in a retracted configuration. The method also includes moving the proximal end pad of the plunger member proximally relative to the syringe body to nest the segments within one another and lock the segments in an extended configuration. The method further includes manipulating the plunger member with the segments in the extended configuration to insert the stopper member distally into the syringe interior relative to the syringe body.

[0020] In one or more embodiments, the plunger includes three or four segments.

[0021] In another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and configured to be manipulated to distally insert the stopper member into the syringe interior relative to the syringe body. The plunger member includes a plurality of segments coupled to one another by a resilient member. The system further includes a restraining member for holding the segments in a non-linear configuration with the resilient member in an expanded state.

[0022] In one or more embodiments, the elastic member is biased to transition from an expanded state to a contracted state, thereby transitioning the segments to a straight configuration, when the restraining member is released. The restraining member may be a wrapper for the system.

[0023] In yet another embodiment, a method of injection includes providing an injection system. The injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and including a plurality of segments connected to each other by a resilient member. The segments are held in a non-linear configuration with the resilient members in an expanded state by a restraining member. The method also includes removing the restraining member to transition the resilient members from the expanded state to a contracted state, thereby transitioning the segments to a linear configuration. The method further includes manipulating the plunger member with the segments in the linear configuration to insert the stopper member distally into the syringe interior relative to the syringe body.

[0024] In one or more embodiments, the restraining member is a wrapper for the system.

[0025] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and configured to be manipulated relative to the syringe body to distally insert the stopper member into the syringe interior. The plunger member has a plurality of segments. The plunger member is configured to fold so that a first segment of the plurality of segments is adjacent to a second segment of the plurality of segments when the plunger member is in a retracted configuration.

[0026] In one or more embodiments, the plunger member also includes a latch member configured to releasably couple the first segment to the syringe body when the plunger member is in the retracted configuration. The system may also include a biasing member configured to transition the plunger member from the collapsed configuration to the straight configuration.

[0027] In another embodiment, a method of injection includes providing an injection system. The injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member and having a plurality of segments. The plunger member is folded into a retracted configuration such that a first segment of the plurality of segments is adjacent to a second segment of the plurality of segments. The method also includes allowing the plunger member to transition from the retracted configuration to a straight configuration. The method further includes manipulating the plunger member with the segments in the straight configuration to insert the stopper member distally into the syringe interior relative to the syringe body.

[0028] In one or more embodiments, transitioning the plunger member from the retracted configuration to the straight configuration includes manually transitioning the plunger member from the retracted configuration to the straight configuration. The system may also include a biasing member. Enabling the plunger member to transition from the retracted configuration to the straight configuration may include removing a restraining member from the injection system. The restraining member may be a wrapper for the system.

[0029] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. The plunger member includes a rotatable member configured to distally insert the stopper member into the syringe interior relative to the syringe body upon rotation of the rotatable member. The plunger member further includes a proximal portion proximal to the rotatable member configured to move distally relative to the syringe body to distally insert the stopper member into the syringe interior.

[0030] In one or more embodiments, distal movement of the proximal portion relative to the syringe body also distally inserts the stopper member into the syringe interior, expelling approximately 50 microliters of fluid from the syringe interior. The system may also include a safety member removably coupled to the proximal portion of the plunger member to prevent distal movement thereof. The system may also include a finger flange coupled to the syringe flange.

[0031] In yet another embodiment, a method of injection includes providing an injection system. The injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. The plunger member includes a rotatable member and a proximal portion of the rotatable member. The method also includes rotating the rotatable member with the syringe body in a vertical position to insert the stopper member distally into the syringe interior relative to the syringe body and expel air bubbles from within the syringe interior and / or expel air from within the needle.

[0032]

[0032] The method further includes the step of distally moving the proximal portion relative to the syringe body to also distally insert the stopper member into the syringe.

[0033] In one or more embodiments, distally moving the proximal portion relative to the syringe body also distally inserts the stopper member into the syringe, discharging approximately 50 microliters of fluid from within the syringe. The system may also include a safety member removably coupled to the proximal portion of the plunger member to prevent distal movement thereof. The method may also include the step of detaching the safety member from the proximal portion prior to the step of distally moving the proximal portion.

[0034] In one embodiment, an injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. The system further includes a finger flange removably coupled to the syringe flange, the finger flange including a proximal orientation screw. Additionally, the system includes a rotatable member disposed on the proximal orientation screw, the rotatable member having an opening in which the plunger member is disposed. The rotatable member is configured to insert the plunger member and the stopper member coupled thereto distally into the syringe interior relative to the syringe body upon rotation of the rotatable member relative to the proximal orientation screw.

[0035] In one or more embodiments, the plunger member can include an external stopper proximal to the rotatable member configured to move distally relative to the rotatable member to further insert the plunger member and associated stopper member distally into the syringe interior relative to the syringe body. Distal movement of the external stopper to further insert the stopper member distally into the syringe interior relative to the syringe body can expel approximately 50 microliters of fluid from the syringe interior.

[0036] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member. The plunger cap may define an opening through which the proximal end of the plunger member is visible from outside the plunger cap. The opening may be sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may include a transparent portion through which the proximal end of the plunger member is visible from outside the plunger cap. The plunger cap may have a pointed structure on the proximal end. The plunger cap may include a retention feature that removably couples the plunger cap to the rotatable member. The plunger cap may include a first plurality of splines configured to cooperate with a corresponding second plurality of splines on the rotatable member to rotate the rotatable member. The plunger cap may have a knurled outer surface to facilitate manual rotation of the plunger cap.

[0037] In one or more embodiments, the finger flange includes an inner surface protrusion configured to secure the finger flange to the syringe flange. The finger flange may be resiliently deformable to secure the finger flange to the syringe flange.

[0038] In one or more embodiments, the rotatable member is configured to insert the plunger member and the associated stopper member distally into the syringe body upon rotation of the rotatable member relative to the proximally oriented screw in a first direction, and the rotatable member can include a ratchet mechanism that prevents rotation of the rotatable member relative to the proximally oriented screw in a second direction opposite the first direction.

[0039] In one or more embodiments, the plunger member includes an internal stop disposed distal to the opening in the rotatable member and sized to prevent passage therethrough, the internal stop limiting proximal movement of the plunger member. The plunger member may include a visual injection indicator.

[0040] In another embodiment, a method of injection includes providing an injection system. The injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The injection system also includes a fluid disposed within the syringe interior. The injection system further includes a stopper member disposed within the syringe interior. The injection system further includes a plunger member coupled to the stopper member. Additionally, the injection system includes a finger flange removably coupled to the syringe flange, the finger flange including a proximal orientation screw. The injection system also includes a rotatable member disposed on the proximal orientation screw, the rotatable member having an opening in which the plunger member is disposed. The plunger member includes an external stopper proximal to the rotatable member. The injection system further includes a needle assembly including a needle having a needle interior. The method also includes rotating the rotatable member relative to the proximal orientation screw with the syringe body in a vertical position to distally insert the stopper member into the syringe relative to the syringe body to expel air bubbles from the syringe interior and / or expel air from the needle interior. The method further includes moving the external stopper distally relative to the rotatable member to further insert the plunger member and the stopper member coupled thereto into the syringe relative to the syringe body, thereby expelling fluid from the syringe interior.

[0041] In one or more embodiments, moving the outer stopper distally to further insert the stopper member into the syringe interior relative to the syringe body expels approximately 50 microliters of fluid from the syringe interior.

[0042] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member to prevent distal movement of the external stopper relative to the rotatable member. The method also includes rotating the rotatable member relative to the proximal-orienting screw by rotating the plunger cap relative to the proximal-orienting screw. The method further includes removing the plunger cap from the rotatable member before moving the external stopper distally relative to the rotatable member.

[0043] In one or more embodiments, the plunger cap defines an opening. The method may also include the step of allowing the proximal end of the plunger member to be visible from outside the plunger cap through the opening in the plunger cap. The method may include the step of the plunger cap preventing manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may include a transparent portion. The method may include the step of allowing the proximal end of the plunger member to be visible from outside the plunger cap through the transparent portion of the plunger cap. The plunger cap may include a pointed structure on the proximal end.

[0044] In one or more embodiments, the method also includes elastically deforming the finger flange to secure the finger flange on the syringe flange. The method can include rotating the rotatable member relative to the proximal-orienting screw in a first direction and preventing the rotatable member from rotating relative to the proximal-orienting screw in a second direction opposite the first direction.

[0045] In one or more embodiments, the plunger member includes an internal stopper disposed distally of the opening in the rotatable member. The method also includes the step of the internal stopper preventing proximal movement of the plunger member such that the internal stopper moves proximally through the opening. The method may include the step of, after moving the external stopper distally relative to the rotatable member, retracting the plunger member and the associated stopper member proximally within the syringe relative to the syringe body, moving the external stopper proximally relative to the rotatable member, thereby drawing the second fluid into the syringe. The external stopper can be moved proximally relative to the rotatable member the same distance as the external stopper moved distally relative to the rotatable member, to bring the internal stopper into contact with the distally oriented surface of the rotatable member.

[0046] In one or more embodiments, the method also includes rotating the rotatable member relative to the proximal orientation screw to a distal position before moving the external stopper distally relative to the rotatable member to further insert the plunger member and associated stopper member distally within the syringe body. The method may also include moving the external stopper distally relative to the rotatable member to insert the plunger member into the distal end of the syringe interior.

[0047] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. The system further includes a finger flange removably coupled to the syringe flange, the finger flange including a proximally oriented screw. In addition, the system includes a rotatable member disposed on the proximally oriented screw, the rotatable member having an opening in which the plunger member is disposed. The plunger member includes internal and external stoppers disposed distally and proximally, respectively, of the rotatable member. The internal and external stoppers are sized so that the internal and external stoppers cannot pass through the opening in the rotatable member, and the internal and external stoppers limit the proximal and distal movement of the plunger member, respectively. When the plunger member is positioned such that the internal stopper contacts the distally oriented surface of the rotatable member, a length of the plunger member between the proximally oriented surface of the rotatable member and the external stopper defines a gap. The rotatable member is configured such that rotation of the rotatable member relative to the proximal orientation screw inserts the plunger member and the associated stopper member distally into the syringe interior relative to the syringe body.

[0048] In one or more embodiments, the external stopper is configured to be moved distally relative to the rotatable member to further insert the plunger member and the stopper member distally into the syringe interior relative to the syringe body. Moving the external stopper distally to further insert the stopper member distally into the syringe interior relative to the syringe body closes the gap, allowing a predetermined amount of medication to be injected from the syringe interior into the patient. The predetermined amount of medication to be injected can be between about 5 microliters and about 250 microliters. The predetermined amount of medication to be injected can be about 50 microliters.

[0049] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member. The plunger cap may be sized and shaped to prevent an operator of the syringe from prematurely closing the gap between the external stopper of the plunger rod and the rotatable member. The plunger cap may define an opening through which the proximal end of the plunger member is visible from outside the plunger cap. The opening may be sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may have a transparent portion through which the proximal end of the plunger member is visible from outside the plunger cap. The plunger cap may include a pointed structure on the proximal end. The plunger cap may include a retention feature that removably couples the plunger cap to the rotatable member. The plunger cap may include a first plurality of splines configured to cooperate with corresponding second plurality of splines on the rotatable member to rotate the rotatable member. The plunger cap may include a knurled outer surface to facilitate manual rotation of the plunger cap. The plunger cap may surround at least a portion of the gap.

[0050] In one or more embodiments, the finger flange includes an inner surface protrusion configured to secure the finger flange on the syringe flange. The finger flange may be resiliently deformable to secure the finger flange to the syringe flange.

[0051] In one or more embodiments, the rotatable member is configured to insert the plunger member and the associated stopper member distally into the syringe relative to the syringe body upon rotation of the rotatable member relative to the proximal orientation screw in a first direction, and the rotatable member can include a ratchet mechanism that prevents rotation of the rotatable member relative to the proximal orientation screw in a second direction opposite the first direction.

[0052] In one or more embodiments, the plunger member includes a visual injection indicator. The rotatable member can include one or more deflectable spring arms that engage notches formed in the plunger member when the plunger member is fully inserted, resulting in a mechanical click that can be felt and / or heard by the user, providing tactile and / or audible feedback after the dose is administered.

[0053] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. The system further includes a finger flange removably coupled to the syringe flange, the finger flange including a proximally oriented screw. In addition, the system includes a rotatable member disposed on the proximally oriented screw, the rotatable member having an opening in which the plunger member is disposed. The rotatable member is configured to insert the plunger member and the stopper member coupled thereto distally into the syringe interior relative to the syringe body upon rotation of the rotatable member relative to the proximally oriented screw.

[0054] In one or more embodiments, the plunger member can include an external stopper proximal to the rotatable member configured to move distally relative to the rotatable member to further insert the plunger member and associated stopper member distally into the syringe interior relative to the syringe body. Distal movement of the external stopper to further insert the stopper member distally into the syringe interior relative to the syringe body can expel approximately 50 microliters of fluid from the syringe interior.

[0055] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member. The plunger cap may define an opening through which the proximal end of the plunger member is visible from outside the plunger cap. The opening may be sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may include a transparent portion through which the proximal end of the plunger member is visible from outside the plunger cap. The plunger cap may include a pointed structure on the proximal end. The plunger cap may include a retention feature that removably couples the plunger cap to the rotatable member. The plunger cap may include a first plurality of splines configured to cooperate with a corresponding second plurality of splines on the rotatable member to rotate the rotatable member. The plunger cap may include a knurled outer surface to facilitate manual rotation of the plunger cap.

[0056] In one or more embodiments, the finger flange includes an inner surface protrusion configured to secure the finger flange on the syringe flange. The finger flange may be resiliently deformable to secure the finger flange to the syringe flange.

[0057] In one or more embodiments, the rotatable member is configured to insert the plunger member and the associated stopper member distally into the syringe relative to the syringe body upon rotation of the rotatable member relative to the proximal orientation screw in a first direction, and the rotatable member can include a ratchet mechanism that prevents rotation of the rotatable member relative to the proximal orientation screw in a second direction opposite the first direction.

[0058] In one or more embodiments, the plunger member includes an internal stop disposed distal to the opening in the rotatable member and sized to prevent passage through the opening, limiting proximal movement of the plunger member. The plunger member may include a visual injection indicator.

[0059] In another embodiment, an injection method includes providing an injection system. The injection system includes a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end. The injection system also includes a fluid disposed within the syringe interior. The injection system further includes a stopper member disposed within the syringe interior. The injection system further includes a plunger member coupled to the stopper member. In addition, the injection system includes a finger flange removably coupled to the syringe flange, the finger flange including a proximal orientation screw. The injection system also includes a rotatable member disposed on the proximal orientation screw, the rotatable member having an opening in which the plunger member is disposed. The plunger member has an external stopper proximal to the rotatable member. The injection system further includes a needle assembly including a needle having a needle interior. The method also includes rotating the rotatable member relative to the proximal orientation screw with the syringe body in a vertical position to distally insert the stopper member into the syringe interior relative to the syringe body to expel air bubbles from the syringe interior and / or expel air from within the needle. The method further includes moving the external stopper distally relative to the rotatable member to further insert the plunger member and the stopper member coupled thereto into the syringe interior relative to the syringe body, thereby expelling fluid from within the syringe interior.

[0060] In one or more embodiments, moving the outer stopper distally to further insert the stopper member into the syringe interior relative to the syringe body expels approximately 50 microliters of fluid from the syringe interior.

[0061] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member to prevent distal movement of the external stopper relative to the rotatable member. The method also includes rotating the rotatable member relative to the proximal-orienting screw by rotating the plunger cap relative to the proximal-orienting screw. The method further includes removing the plunger cap from the rotatable member before moving the external stopper distally relative to the rotatable member.

[0062] In one or more embodiments, the plunger cap defines an opening. The method also includes the step of the opening in the plunger cap allowing the proximal end of the plunger member to be visible from outside the plunger cap. The method may include the step of the plunger cap preventing manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may include a transparent portion. The method may include the step of the transparent portion of the plunger cap allowing the proximal end of the plunger member to be visible from outside the plunger cap. The plunger cap may include a pointed structure on the proximal end.

[0063] In one or more embodiments, the method also includes elastically deforming the finger flange to secure the finger flange on the syringe flange. The method can include rotating the rotatable member relative to the proximal-orienting screw in a first direction and preventing the rotatable member from rotating relative to the proximal-orienting screw in a second direction opposite the first direction.

[0064] In one or more embodiments, the plunger member includes an internal stopper disposed distally of the opening in the rotatable member. The method also includes the step of the internal stopper preventing proximal movement of the plunger member such that the internal stopper moves proximally through the opening. The method includes the step of moving the external stopper distally relative to the rotatable member, and then moving the external stopper proximally relative to the rotatable member to pull the plunger member and its associated stopper member proximally within the syringe relative to the syringe body, thereby drawing the second fluid into the syringe. The external stopper can be moved proximally relative to the rotatable member the same distance as the external stopper moved distally relative to the rotatable member to bring the internal stopper into contact with the distally oriented surface of the rotatable member.

[0065] In one or more embodiments, the method also includes rotating the rotatable member relative to the proximal orientation screw to a distal position before moving the external stopper distally relative to the rotatable member to further insert the plunger member and associated stopper member distally within the syringe body. The method may also include moving the external stopper distally relative to the rotatable member to insert the plunger member into the distal end of the syringe interior.

[0066] In yet another embodiment, an injection system includes a syringe body having proximal and distal ends, a syringe interior, and a syringe flange at the proximal end. The system also includes a stopper member disposed within the syringe interior. The system further includes a plunger member coupled to the stopper member. Furthermore, the system includes a finger flange removably coupled to the syringe flange, the finger flange including a proximally oriented screw. Additionally, the system includes a rotatable member disposed on the proximally oriented screw, the rotatable member having an opening through which the plunger member is disposed. The plunger member includes internal and external stoppers disposed distally and proximally, respectively, of the rotatable member. The internal and external stoppers are sized to pass through the opening in the rotatable member such that the internal and external stoppers limit proximal and distal movement of the plunger member, respectively. When the plunger member is positioned such that the internal stopper contacts the distally oriented surface of the rotatable member, the length of the plunger member between the proximally oriented surface of the rotatable member and the external stopper defines a gap. The rotatable member is configured such that rotation of the rotatable member relative to the proximal orientation screw inserts the plunger member and the associated stopper member distally into the syringe interior relative to the syringe body.

[0067] In one or more embodiments, the external stopper is configured to be moved distally relative to the rotatable member to further insert the plunger member and the stopper member distally into the syringe interior relative to the syringe body. Moving the external stopper distally to further insert the stopper member distally into the syringe interior relative to the syringe body closes the gap and injects a predetermined amount of medication from the syringe interior into the patient. The predetermined amount of medication to be injected can be between about 5 microliters and about 250 microliters. The predetermined amount of medication to be injected can be about 50 microliters.

[0068] In one or more embodiments, the system also includes a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member. The plunger cap may be sized and shaped to prevent an operator of the syringe from prematurely closing a gap between the external stopper of the plunger rod and the rotatable member. The plunger cap may define an opening through which the proximal end of the plunger member is visible from outside the plunger cap. The opening may be sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap. The plunger cap may have a transparent portion through which the proximal end of the plunger member is visible from outside the plunger cap. The plunger cap may include a pointed structure on the proximal end. The plunger cap may include a retention feature that removably couples the plunger cap to the rotatable member. The plunger cap may include a first plurality of splines configured to cooperate with corresponding second plurality of splines on the rotatable member to rotate the rotatable member. The plunger cap may include a knurled outer surface to facilitate manual rotation of the plunger cap. The plunger cap may surround at least a portion of the gap.

[0069] In one or more embodiments, the finger flange includes an inner surface protrusion configured to secure the finger flange on the syringe flange. The finger flange may be resiliently deformable to secure the finger flange to the syringe flange.

[0070] In one or more embodiments, the rotatable member is configured to insert the plunger member and the associated stopper member distally into the syringe body upon rotation of the rotatable member relative to the proximal orientation screw in a first direction, and the rotatable member can include a ratchet mechanism that prevents rotation of the rotatable member relative to the proximal orientation screw in a second direction opposite the first direction.

[0071] In one or more embodiments, the plunger member includes a visual injection indicator. The rotatable member can include one or more deflectable spring arms that, when the plunger member is fully inserted, engage with a notch formed in the plunger member, thereby producing a mechanical click that can be felt and / or heard by the user, providing tactile and / or audible feedback after the dose is administered.

[0072] In one or more embodiments, after an injection is administered, the plunger member can be withdrawn while the needle remains in place at the injection site to extract a volume of bodily fluid substantially equal to the volume of medication injected. For example, a gap between the thumb pad and finger flange, closed to inject 50 ml of medication, can be opened by pulling the thumb pad proximally and retracting the plunger rod to extract 50 ml of fluid from the body. This fluid extraction is used to minimize changes in fluid pressure within fluid-filled organs, such as the eye.

[0073]

[0073] The foregoing and other embodiments of the present disclosure are described in the detailed description below. [Brief explanation of the drawings]

[0074]

[0074] The foregoing and other features of the embodiments will be described in further detail with reference to the accompanying drawings, in which like elements in different figures are referred to by common reference numerals.

[0075] [Figure 1] 1A-1B show various features of a conventional syringe configuration. [Figure 2] 2A-2B show various features of a conventional syringe configuration. [Figure 3] FIG. 3 illustrates various features of a conventional syringe configuration. [Figure 4] 4A-4B show various features of a conventional syringe configuration. [Figure 5] 5A-5C show various features of a conventional syringe configuration. [Figure 6] FIG. 6 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 7] FIG. 7 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 8] FIG. 8 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 9] FIG. 9 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 10] FIG. 10 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 11] FIG. 11 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 12] FIG. 12 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 13] FIG. 13 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 14] FIG. 14 illustrates various features of a low-profile reservoir injection system according to one embodiment. [Figure 15] FIG. 15 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 16] FIG. 16 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 17] FIG. 17 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 18] FIG. 18 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 19] FIG. 19 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 20] FIG. 20 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 21]FIG. 21 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 22] FIG. 22 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 23] FIG. 23 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 24] FIG. 24 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 25] FIG. 25 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 26] FIG. 26 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 27] FIG. 27 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 28] FIG. 28 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 29] FIG. 29 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 30] FIG. 30 illustrates various features of a low-profile reservoir injection system according to another embodiment. [Figure 31] FIG. 31 illustrates various features of a microinjection system according to one embodiment. [Figure 32] FIG. 32 illustrates various features of a microinjection system according to one embodiment. [Figure 33] FIG. 33 illustrates various features of a microinjection system according to one embodiment. [Figure 34] FIG. 34 illustrates various features of a microinjection system according to one embodiment. [Figure 35] FIG. 35 illustrates various features of a microinjection system according to one embodiment. [Figure 36] FIG. 36 illustrates various features of a microinjection system and method according to two embodiments. [Figure 37] FIG. 37 illustrates various features of a microinjection system and method according to two embodiments. [Figure 38] FIG. 38 illustrates various features of a microinjection system and method according to two embodiments. [Figure 39] FIG. 39 illustrates various features of a microinjection system and method according to two embodiments. [Figure 40] FIG. 40 illustrates various features of a microinjection system and method according to two embodiments. [Figure 41] FIG. 41 illustrates various features of a microinjection system and method according to two embodiments. [Figure 42] FIG. 42 illustrates various features of a microinjection system and method according to two embodiments. [Figure 43] FIG. 43 illustrates various features of a microinjection system and method according to two embodiments. [Figure 44] FIG. 44 illustrates various features of a microinjection system and method according to two embodiments. [Figure 45] FIG. 45 illustrates various features of a microinjection system and method according to two embodiments. [Figure 46] FIG. 46 illustrates various features of a microinjection system and method according to two embodiments. [Figure 47] FIG. 47 illustrates various features of a microinjection system and method according to two embodiments. [Figure 48] FIG. 48 illustrates various features of a microinjection system and method according to two embodiments. [Figure 49] FIG. 49 illustrates various features of a microinjection system and method according to two embodiments. [Figure 50] FIG. 50 illustrates various features of a microinjection system and method according to two embodiments. [Figure 51]FIG. 51 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 52] FIG. 52 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 53] FIG. 53 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 54] FIG. 54 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 55] FIG. 55 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 56] FIG. 56 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 57] FIG. 57 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 58] FIG. 58 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 59] FIG. 59 illustrates various detailed features of a microinjection system according to one embodiment. [Figure 60] FIG. 60 illustrates a plunger cap according to various embodiments. [Figure 61] FIG. 61 illustrates a plunger cap according to various embodiments. [Figure 62] FIG. 62 illustrates a plunger cap according to various embodiments. [Figure 63] FIG. 63 illustrates a plunger cap according to various embodiments. [Figure 64] FIG. 64 illustrates a plunger cap according to various embodiments. [Figure 65] FIG. 65 illustrates a plunger cap according to various embodiments. [Figure 66] FIG. 66 illustrates a plunger cap according to various embodiments. [Figure 67] FIG. 67 illustrates a plunger cap according to various embodiments. [Figure 68] FIG. 68 illustrates a plunger cap according to various embodiments. [Figure 69] FIG. 69 illustrates a plunger cap according to various embodiments. [Figure 70] FIG. 70 illustrates a plunger cap according to various embodiments. [Figure 71] FIG. 71 illustrates a plunger cap according to various embodiments. [Figure 72] FIG. 72 illustrates a plunger cap according to various embodiments. [Figure 73] FIG. 73 illustrates a plunger cap according to various embodiments. [Figure 74] FIG. 74 illustrates various features of a microinjection system according to one embodiment. [Figure 75] FIG. 75 illustrates various features of a microinjection system according to one embodiment. [Figure 76] FIG. 76 illustrates various features of a microinjection method according to one embodiment. [Figure 77] FIG. 77 illustrates various features of a microinjection method according to one embodiment. [Figure 78] FIG. 78 illustrates various features of a microinjection method according to one embodiment. [Figure 79] FIG. 79 illustrates various features of a microinjection method according to one embodiment. [Figure 80] FIG. 80 illustrates various features of a microinjection method according to one embodiment. [Figure 81] FIG. 81 illustrates various features of a microinjection method according to one embodiment. [Figure 82] FIG. 82 illustrates various features of a microinjection method according to one embodiment. [Figure 83] FIG. 83 illustrates various features of a microinjection method according to one embodiment. [Figure 84] FIG. 84 illustrates various features of a microinjection method according to one embodiment. [Figure 85] 85A-85B illustrate various features of a microinjection system according to one embodiment.

[0076]

[0088] To better understand how the above and other advantages and objects of the various embodiments are obtained, a more detailed description of the embodiments is provided with reference to the accompanying drawings. It should be noted that the drawings are not drawn to scale, and components of the same structure or function are represented by the same reference numerals throughout. It should be understood that these drawings depict only certain illustrated embodiments, and therefore should not be considered as limiting the scope of the embodiments. DETAILED DESCRIPTION OF THE INVENTION

[0077]

[0089] Low-profile reservoir injection system Figures 6-13 illustrate a low-profile stored injection system 100 according to one embodiment. This embodiment solves the problem of an excessively large stored profile by using a removable plunger member 150 in a "sidecar" configuration. Figures 6 and 7 show the low-profile stored injection system 100 in a transport / storage configuration. The system 100 includes a syringe body 110 having open proximal and distal ends defining a syringe interior 112 and a syringe flange 114 at the proximal end. The system 100 also includes a stopper member 120 disposed in the syringe interior 112. The system 100 further includes a connecting member 130 (e.g., a Luer lock connector) coupled to the distal end of the syringe body 110. In Figures 6 and 7, the connecting member 130 also includes a removable cap 132. The system 100 further includes a finger flange 140 coupled to the syringe body 110 at the syringe flange 114. Additionally, the system 100 includes a plunger member 150 configured to move the stopper member 120 distally within the syringe interior 112. In the transport / storage configuration, the plunger member 150 is coupled to the syringe body via a finger flange 140. In particular, the finger flange 140 includes a plunger member storage opening 142 in which the plunger member 150 is disposed in the transport / storage configuration. Storing the plunger member 150 unconnected to the stopper member 120 allows the stopper member 120 to be in a proximal position while maintaining a relatively low profile (e.g., shorter length) for storage. Having the stopper member 120 in a proximal position allows for storage of an injectable substance (e.g., a medicament) within the injection system 100.

[0078]

[0090] Syringe body 110 and connecting member 130 may be pre-fabricated components. Stopper member 120 may be a modified version of a pre-fabricated stopper (described below).

[0079]

[0091] The finger flange 140 has a side opening 144 configured (i.e., dimensioned) to allow the finger flange 140 to slide over the syringe flange 114, thereby coupling the finger flange 140 to the syringe body 110. The finger flange 140 also includes a proximally facing plunger member receiving opening 146 configured (i.e., dimensioned) to receive the distal end of the plunger member 150 upon assembly of the injection system 100. As shown in FIG. 7 , the finger flange 140 further includes a proximal-opening funnel 148 that surrounds and leads to the plunger member receiving opening 146. The funnel 148 is configured (i.e., dimensioned) to guide the distal end of the plunger member 150 into the plunger member receiving opening 146 upon assembly.

[0080]

[0092] Figure 8 illustrates the next step in the assembly of the injection system 100 shown in Figures 6 and 7. In Figure 8, the injection system 100 has been removed from its transport / storage location (e.g., a limited-size drawer of a patient-specific automated medication administration and management system) and the plunger member 150 has been removed from the plunger member storage opening 142 of the finger flange 120. The plunger member 150 is aligned with the plunger member receiving opening 146 of the finger flange 140 such that the distal end of the plunger member 150 is adjacent the funnel portion 148 and the finger flange 140.

[0081]

[0093] FIG. 9 illustrates the next step in the assembly of the injection system 100. In this step, the distal end of the plunger member 150 is inserted into the plunger member receiving opening 146 (optionally guided by the funnel 148), through the open proximal end of the syringe body 110, into the syringe interior 112, and into the stopper member 120. The distal end of the plunger member 150 is locked within the stopper member 120, as described below, coupling the plunger member 150 to the stopper member 120. After coupling, the plunger member 150 can be used to move the stopper member 120 both proximally and distally relative to the syringe body 110. The injection system 100 shown in FIG. 9 is nearly ready for injection (after the removable cap 132 is removed). A needle (not shown) can be coupled to injection system 100 (e.g., via connecting member 130) prior to injection, or injection system 100 can be used to inject into a connector corresponding to connecting member 130 (e.g., connected to an IV bag).

[0082]

[0094] FIG. 10 illustrates a detailed longitudinal cross-sectional view of the injection system 100 shown in FIGS. 6-9. As shown in FIG. 10, the stopper member 120 includes a proximal-opening funnel member 122 configured to guide the distal end of the plunger member 150 into the stopper member 120. The funnel member 122 may be coupled to the stopper member 120 using a standard threaded engagement mechanism. The funnel member 122 facilitates assembly of the plunger member 150 and the stopper member 120. The stopper member 120 also includes a latch member 124 disposed within the funnel member 122. As shown in FIGS. 11 and 12, the latch member 124 includes a pair of distally and radially inwardly extending arms 126 configured to permit distal movement of the plunger member 150 but prevent proximal movement after assembly.

[0083]

[0095] 13 shows a plunger member 150 having a ring groove 152 configured to interact with the arm 126 of the latch member 124 to prevent proximal movement of the plunger member 150 relative to the stopper member 120. In other embodiments, the ring groove 152 may be one or more notches. The plunger member 150 also includes a proximal end pad 154 configured to facilitate application of a distal force to the plunger member 150 (e.g., by a user's thumb).

[0084]

[0096] Figure 14 shows the injection system 100 shown in Figures 6 to 13 after the removable cap 132 has been removed from the connecting member 130 and an injection has been performed by using the injection system 100 to apply a distal force to the plunger member 150 to move the stopper member 120 distally (e.g., to the distal end) into the syringe interior 112.

[0085]

[0097] 15-21 show two other related embodiments of a low-profile reservoir injection system 100. These embodiments solve the problem of an excessively large reservoir profile by using two similar nested plunger members 150. Like the embodiments shown in FIGS. 6-14, these embodiments utilize a pre-fabricated syringe body 110 and stopper member 120. They also have a finger flange 140.

[0086]

[0098] 15, 18, and 19 illustrate the low-profile reservoir injection system 100 in a transport / storage configuration. In these embodiments, the transport / storage configuration is also referred to as the "collapsed configuration." The embodiment of FIGS. 15-17 illustrates a four-segment, nested plunger member 150, while the embodiment of FIGS. 18-21 illustrates a three-segment, nested plunger member 150. Thus, the embodiment illustrated in FIGS. 15-17 extends proximally beyond the finger flange 140 by 0.35 inches, while the embodiment illustrated in FIGS. 18-21 extends proximally beyond the finger flange 140 by 0.46 inches. However, both of these embodiments have a significantly lower profile (e.g., length) compared to pre-filled injection systems with pre-fabricated, non-nesting plunger members. Because the plunger member 150 is telescoping, the segments 156 that make up the plunger member have different diameters, allowing the segments to nest within one another in the collapsed configuration.

[0087]

[0099] 16 and 20 illustrate the next step in using the injection system 100 shown in Figures 15 and 18, respectively, in which the user grasps the proximal end pad 154 on each plunger member 150 and pulls proximally to extend the plunger member 150 proximally to its full length, the "extended configuration."

[0088]

[0100] 17 and 21 illustrate the next step in the use of the injection system 100 shown in Figures 15 and 18, respectively, in which the user applies a distal force to the proximal end pad 154 of each plunger member 150, thereby moving the plunger member 150 and attached stopper member 120 into (e.g., to the distal end of) the syringe interior 112 to perform the injection.

[0089]

[0101] 22-24 illustrate yet another embodiment of a low-profile reservoir injection system 100. This embodiment solves the problem of excessively large reservoir profiles by using a self-erecting plunger member 150. Similar to the embodiment shown in FIGS. 6-21, this embodiment utilizes a pre-fabricated syringe body 110 and stopper member 120.

[0090]

[0102] 22 shows the low-profile reservoir injection system 100 in a transport / storage configuration, also referred to as a "non-aligned configuration." In this non-aligned configuration, three of the four segments 156 forming the plunger member 150 are disassembled and assembled next to each other at the proximal end of the syringe body 110. The three segments 156 are coupled to each other and to the stopper member 120 by a resilient member (not shown) that is in an expanded state when the low-profile reservoir injection system 100 is in the non-aligned configuration for storage. The resilient member is biased to return from the expanded state to a contracted state but is prevented from doing so by a restraining member (not shown). In some embodiments, the restraining member can be a wrapper that holds the injection system 100 in the transport / storage configuration.

[0091]

[0103] Figure 23 shows the low-profile stored injection system 100 in an aligned configuration. The injection system 100 transitions from the non-aligned configuration of Figure 22 to the aligned configuration of Figure 23 when a user removes a restraining member (e.g., a wrapper) from the injection system 100, thereby allowing the elastic member to return from its expanded state to its contracted state. As shown in Figure 23, contraction of the elastic member assembles / erects the plunger member 152 from the multiple segments 156. Figure 24 shows this low-profile stored injection system 100 after an injection.

[0092]

[0104] 25-30 illustrate yet another embodiment of a low-profile reservoir injection system 100. This embodiment solves the problem of excessive reservoir profile by using a hinged plunger member 150. Similar to the embodiment depicted in FIGS. 6-21, this embodiment utilizes a pre-fabricated syringe body 110, stopper member 120, and connecting member 130.

[0093]

[0105] 25, 27, and 29 show the low-profile reservoir injection system 100 in a transport / storage configuration, also referred to as the "folded configuration." In this folded configuration, the proximal segment 156A of the plunger member 150 is folded over the distal segment 156C of the plunger member 150 and approximately halfway (proximal) of the syringe body 110. The proximal segment 156A is folded about a double hinge formed by the middle segment 156B of the plunger member 150 and the connection between the proximal and distal segments 156A, 156C. The distal segment 156C is coupled to the stopper member 120 using a standard thread fit mechanism. In the folded configuration, the proximal thumb pad 154 also includes a latch member 158 that removably couples the proximal thumb pad 154 to the syringe body 110 with an interference fit.

[0094]

[0106] 27, the plunger member 150 may also include a spring 151 biased to a "straight configuration" to transition the plunger member 150 into the straight configuration as shown in Figures 26, 28, and 30. Alternatively, the plunger member 150 may be formed without a spring, such that the collapsed plunger member 150 is manually extended into the straight configuration.

[0095]

[0107] Microinjection System 31-35 illustrate a microinjection system 200 according to one embodiment. As used herein, the term "microadministration" or "microdose" includes, but is not limited to, injections in the 1-1,000 microliter range. The microinjection system 200 addresses the challenge of injections in the microliter (e.g., 50 μL) volume range, which have been difficult to achieve with standard injection systems while maintaining precision (e.g., repeatability) and accuracy (e.g., proximity to the desired volume). The microinjection system 200 utilizes a rotatable microadapter / rotatable member 260 and a fixed plunger member travel distance / gap to perform the microinjection.

[0096]

[0108] Similar to many of the injection systems described in commonly owned U.S. patent applications serial numbers 62 / 521252, 62 / 639614, 14 / 696342, 14 / 543787, 14 / 321706, 62 / 416102, 62 / 431382, 62 / 480276, 62 / 508508, 62 / 542230, 15 / 801239, 15 / 801259, 15 / 801281, and 15 / 801304, the contents of which have been previously incorporated in their entireties by reference as if fully set forth herein, the microinjection system 200 utilizes a pre-fabricated syringe body 210, stopper member 220, and connecting member 230. Additionally, the microinjection systems 200, 300, 400 described herein may use pre-fabricated needle assemblies 290, 390, 490 that include needles 292, 392, 492. The finger flange 240 of the microinjection system 200 has an externally threaded proximal section 242 configured to threadably mate with a microdosing adapter / rotatable member 260 having corresponding internal threads, as shown in Figures 34 and 35 .

[0097]

[0109] The microdosing adapter / rotatable member 260 includes a flange 262 configured such that clockwise rotation of the microdosing adapter / rotatable member 260 on the externally threaded proximal section 242 of the finger flange 240 applies a small distal force to a shoulder / internal stop 252 formed on the plunger member 250. Vertical rotation of the microdosing adapter / rotatable member 260 in the microinjection system 200 can remove air bubbles ("de-bubbling" or "de-airing") from the injectable material within the syringe interior 212 and / or needle assembly 290 / needle 292.

[0098]

[0110] Additionally, plunger member 250 has a narrow portion 254 configured to pass through an opening 264 in the microdosing adapter / rotatable member 260 that surrounds / expands to form a shoulder / internal stopper 252. The length of this narrow portion 254 can be varied to control the injection volume and travel distance / gap.

[0099]

[0111] The microinjection system 200 also includes a safety member 270 coupled to the narrow portion 254 of the plunger member 250 and configured to prevent distal movement of the plunger member 250 relative to the microdosing adapter / rotatable member 260. As shown in FIG. 8 , after the safety member 270 is removed, the plunger member 250 can be moved distally, but only the length of the narrow portion 254 outside the microdosing adapter / rotatable member 260, which is equal to the travel distance / gap. The injection volume is therefore controlled by the length of this narrow portion 254. In this manner, the microinjection system 200 is capable of performing precise and accurate injections with a precise debubbling mechanism.

[0100]

[0112] 36-50 illustrate a microinjection system 300 according to another embodiment. Similar to the microinjection system 300 shown in FIGS. 31-35, the microinjection system 300 includes a syringe body 310, a stopper member 320, a connecting member 330, a finger flange 340, a plunger member 350, a needle assembly 390, and a microdosing adapter / rotatable member 360. In fact, many of these system elements (e.g., syringe body 310, stopper member 320, and connecting member 330) may be off-the-shelf components utilizing an existing, relatively well-controlled supply chain and corresponding machinery and personnel assembly. The syringe body 310 may be a commercially available 0.50 cc syringe body 310 to improve the accuracy of the microinjection system 300. The needle assembly 390 * may be a commercially available needle assembly with a needle 392 (e.g., 20-34 gauge and 6 mm-5 / 8" long, particularly 32 gauge x 6 mm long). The needle assembly 390 may utilize a luer lock or luer slip configuration to attach the needle assembly 390 to the syringe body 310 / connecting member 330. In some embodiments, the microinjection system 300 may achieve an error rate of less than ±10 μL.

[0101]

[0113] One difference between the microinjection system 300 shown in Figures 31-35 and the microinjection system 300 shown in Figures 36-50 is that the latter includes a plunger cap 370 (instead of a safety member 370). The plunger cap 370 performs a similar function to the safety member 370 in that it is configured to prevent distal movement of the plunger member 350, thereby preventing premature injection, while allowing the microdosing adapter / rotatable member 360 to be rotated to remove air bubbles from the microinjection system 300.

[0102]

[0114] Figures 36-50 show the injection process using the microinjection system 300. Figures 36-38 show the microinjection system 300 before it is coupled to a needle using the connecting member 330. In this state, the connecting member 330 is covered by a connecting member cover.

[0103]

[0115] 39-41 show a microinjection system 300 with a needle coupled to the microinjection system 300 using a connecting member 330. In this embodiment, the connecting member 330 is a female luer connector and the corresponding connecting member on the needle is a male luer connector, which provide a luer lock connection as shown in FIG.

[0104]

[0116] 39-41 show the microinjection system 300 in a vertical position, with the needle pointing generally upward. This causes gas / air within the syringe body 310 to move to the top of the syringe body 310, as indicated by gas / bubbles 302 in FIG. 40. In this position, moving the stopper member 320 distally releases the gas / bubbles 302 from the syringe body 310 and / or releases air from within the needle assembly 390 / needle 392, thereby preparing the microinjection system 300 for injection.

[0105]

[0117] 41 is a close-up view of the relative positions of the microdosing adapter / rotatable member 360, the externally threaded proximal section 342 of the finger flange 340, and the plunger cap 370 on the microdosing injection system 300 in the vertical or "de-air" position. For clarity, the threads on the externally threaded proximal section 342 of the finger flange 340 have been omitted.

[0106]

[0118] 42-44 show the microinjection system 300 after it has been de-aired. The de-airing process involves rotation of the microdosing adapter / rotatable member 360 (e.g., a clockwise position for a normally threaded fastener) with the microinjection system 300 in a vertical, de-airing position.

[0107]

[0119] As shown in Figures 59 and 58, respectively, plunger cap 370 has a plurality of inwardly directed splines 372, and microdosing adapter / rotatable member 360 has a corresponding plurality of outwardly directed splines 364. The respective plurality of internal and external splines (372, 364) are configured such that when plunger cap 370 is removably coupled to plunger microdosing adapter / rotatable member 360, rotation of plunger cap 370 causes corresponding rotation of microdosing adapter / rotatable member 360, as shown in Figures 56 and 57.

[0108]

[0120] Rotation of the microdosing adapter / rotatable member 360 moves the microdosing adapter / rotatable member 360 distally on the externally threaded proximal section 342 of the finger flange 340, thereby advancing the plunger member 350 and associated stopper member 320 within the syringe body 310. As the microdosing adapter / rotatable member 360 is moved distally relative to the syringe body 310, the distally oriented surface 361 of the adapter 360 exerts a distal force on the proximally oriented surface 353 of the shoulder / internal stopper 352 associated with or formed on the proximal end of the plunger member 350, as shown in FIG. 44 . This distal force is proportional to the amount of rotation of the microdosing adapter / rotatable member 360 and is delivered to the stopper member 320 via the plunger member 350.

[0109]

[0121] The distal force moves the stopper member 320 distally within the syringe body 310. Because the microinjection system 300 is in the vertical de-airing position, the distal movement of the stopper member 320 within the syringe body 310 expels gas / bubbles (see 302 in FIG. 40 ) from within the syringe body 310 and / or expels air from within the needle assembly 390 / needle 392, thereby de-airing the microinjection system 300.

[0110]

[0122] 56 and 59, plunger cap 370 includes a retention mechanism 374 configured to removably couple plunger cap 370 to microdosing adapter / rotatable member 360. Retention mechanism 374 includes a pair of resiliently deformable arms with hooks at their ends that, when removably coupled, prevent proximal movement of plunger cap 370 relative to microdosing adapter / rotatable member 360. The resiliently deformable arms are circumferentially opposed at the distal end of plunger cap 370. The hooks of the resiliently deformable arms wrap around the distal end of microdosing adapter / rotatable member 360, and their resilience prevents proximal movement of plunger cap 370 relative to microdosing adapter / rotatable member 360 until a proximal force (e.g., 0.5 pounds) sufficient to overcome the resilience of retention mechanism 374 is applied to plunger cap 370.

[0111]

[0123] 59 , the plunger cap 370 also includes a plurality of spline stops 376 configured to interfere with some (e.g., two) of the plurality of externally facing splines 364 on the microdosing adapter / rotatable member 360 to prevent proximal movement of the plunger cap 370 relative to the microdosing adapter / rotatable member 360. This prevents distal movement of the thumb pad / external stopper 356 relative to the syringe body 310 and premature injection before the plunger cap 370 is removed from the microdosing adapter / rotatable member 360.

[0112]

[0124] As shown in FIG. 56, the plunger cap 370 also has a knurled outer surface 378 to facilitate manual or automatic rotation of the plunger cap 370 .

[0113]

[0125] 45-47 illustrate the next step in the injection process: removal of plunger cap 370. Applying sufficient proximal force to plunger cap 370 overcomes the resilience of retaining member 374 (see FIG. 56), allowing plunger cap 370 to move proximally away from microdosing adapter / rotatable member 360. Removal of plunger cap 370 allows distal movement of thumb pad / external stopper 356 and plunger member 350, thereby rendering microinjection system 300 ready to inject.

[0114]

[0126] 47 , the microdosing adapter / rotatable member 360 includes a proximal flange 362. A narrow portion 354 of the plunger member 350 defines a gap 358 between a proximally oriented surface of the proximal flange 362 and a distally oriented surface of the thumb pad / external stopper 356. The size of the gap 358 can be modified by adjusting the plunger member 350 and / or the thumb pad / external stopper 356. The size / axial length of the gap 358 determines the amount of axial movement of the stopper member 320 within the syringe body 310, and therefore the amount of fluid (e.g., medication) injected by the microinjection system 300.

[0115]

[0127] 47 , plunger member 350 also includes a shoulder / internal stop 352. Shoulder / internal stop 352 and thumb pad / external stop 356 are sized so that neither can pass through the opening in microdosing adapter / rotatable member 360. Thus, the relative positions of shoulder / internal stop 352 and thumb pad / external stop 356 define the maximum travel of plunger member 350 relative to microdosing adapter / rotatable member 360. This maximum travel of plunger member 350 is also related to the size / axial length of 358. Shoulder / internal stop 352 also prevents plunger member 350 from being removed from microdosing adapter / rotatable member 360.

[0116]

[0128] 48-50 illustrate the next step in the microinjection injection process: a distal force is applied to the thumb pad / external stopper 356, thereby advancing the plunger member 350 and the stopper member 320 distally coupled within the syringe body 310. The distal force may be applied manually by the user or automatically by the auto-injector.

[0117]

[0129] 47 through 50 show that applying a distal force to the thumb pad / external stop 356 collapses the outer gap 358 of the microdosing adapter / rotatable member 360. This also moves the shoulder / internal stop 352 distally away from the distally oriented surface 361 of the microdosing adapter / rotatable member 360. In effect, an internal gap 358' is formed on the inside of the microdosing adapter / rotatable member 360. This internal gap 358' is the same size / axial length as the outer gap 358 of the original microdosing adapter / rotatable member 360.

[0118]

[0130] 46 and 49, distal movement of the stopper member 320 within the syringe body 310 expels some fluid from within the syringe body 310, thus injecting a predetermined amount of fluid. In microdosing applications, this predetermined amount of fluid can be from about 5 μΙ to about 250 μΙ. In certain embodiments, this predetermined amount of fluid is about 50 μΙ.

[0119]

[0131] Microdosing / withdrawal systems and methods In some embodiments, the microdose injection process does not end with the injection (i.e., of the first amount of fluid / medication). In such embodiments, the injection process includes another step of withdrawing some fluid (i.e., a second volume of fluid) from the injection site.

[0120]

[0132] One clinical scenario in which such embodiments of the microdosing / withdrawal system are useful is intraocular injections into patients with elevated intraocular pressure. While such patients benefit from intraocular injections of medication, increased intraocular volume can exacerbate the elevated intraocular pressure and potentially cause tissue (e.g., nerve) damage to sensitive organs. Furthermore, if the first volume injected and the second volume withdrawn differ significantly, other problems can arise. For example, if the second volume withdrawn is significantly larger than the first volume injected, the eye may become deformed, resulting in altered vision or, in extreme cases, collapse.

[0121]

[0133] The microinjection system 300 described above addresses these clinical problems by defining a gap 358 between the shoulder / internal stop 352 and the thumb pad / external stop 356. Because the amount of fluid infused into and withdrawn from the patient is controlled by the gap 358, the microinjection system 300 allows for injection and withdrawal of substantially the same volume.

[0122]

[0134] For example, after injecting a first fluid as shown in FIGS. 48-50, the microinjection system 300 can be returned to the state shown in FIGS. 45-47 by applying a proximal force to the distally oriented surface of the thumb pad / external stopper 356. This proximal force pulls the plunger member 350 and its attached stopper member 320 proximally within the syringe body 310, thereby withdrawing a second fluid from the patient. A period of time can elapse between the injection of the first fluid and the withdrawal of the second fluid, allowing any medication in the first fluid to diffuse into the second fluid. Because the shoulder / internal stopper 352 and the thumb pad / external stopper 356 limit the movement of the plunger member 350 to approximately the length of the gap 358, the distal movement of the plunger member 350 during injection is substantially the same as the proximal movement of the plunger member 350 during withdrawal.

[0123]

[0135] Microinjection System Details 51 and 52 show a finger flange 340 removably coupled to the syringe flange 312 of the syringe body 310. As shown in FIG. 52, the finger flange 340 includes a pair of inner surface protrusions / beams 344 protruding from a distally facing inner surface of the finger flange 340. These inner surface protrusions / beams 344 are configured to engage with a proximally oriented surface of the syringe flange 312 to form an interference fit. The finger flange 340 is formed of an elastically deformable material (e.g., a polymer) such that the finger flange 340 can elastically deform to accommodate a range of syringe flange 312 thicknesses, shapes, etc. Within the range of syringe flange 312 thicknesses, the finger flange 340 and its inner surface protrusions / beams 344 form an interference fit with the syringe flange 312, thereby removably coupling the finger flange 340 to the syringe flange 312 and syringe body 310.

[0124]

[0136] The resiliency of finger flange 340 facilitates a tight and secure interference fit between finger flange 340 and a wide variety of syringe flange 312 thicknesses and shapes. This improves the accuracy and precision / repeatable dose delivery by forcing finger flange 340 (including externally threaded portion 342) tightly against syringe flange 312, eliminating any gap between finger flange 340 and syringe flange 312. A tight interference fit improves accuracy and precision because any additional clearance in the travel distance of plunger member 350 in addition to gap 358 can introduce error in the amount of fluid / medication delivered during microinjection.

[0125]

[0137] However, because the thickness of the syringe flange 312 varies considerably (e.g., depending on the manufacturer, batch, etc.), minimizing the clearance between the finger flange 340 and the syringe flange 312 can be challenging. If the finger flange 340 were simply provided with a slot that would not deform to accommodate the syringe flange 312, this slot would need to be large enough to accommodate the largest possible syringe flange 312. If a thin syringe flange 312 were inserted into this slot, clearance would result, increasing microdosing and resulting in dosage errors.

[0126]

[0138] According to one embodiment, the slot in the finger flange 340 for the syringe flange 312 is elastically deformable / flexible and sized for the thinnest syringe flange 312. As a result, even when the thinnest syringe flange 312 is removably coupled to the finger flange 340, no gap occurs between the finger flange 340 and the syringe flange 312, resulting in an accurate and precise dose. When a syringe body 310 with an average or thicker-than-average syringe flange 312 is removably coupled to the finger flange 340, the slot in the elastically deformable / flexible finger flange 340 expands to accommodate the thicker syringe flange 312, leaving no gap. Thus, the elastically deformable / flexible finger flange 340 improves the accuracy and precision of the microinjection system 300.

[0127]

[0139] 53 and 54 illustrate the interaction of the externally threaded proximal section 342 of the finger flange 340 with corresponding internal threads on the inner surface of the microdosing adapter / rotatable member 360. The external threads of the finger flange 340 and the internal threads of the microdosing adapter / rotatable member 360 are configured so that clockwise rotation of the microdosing adapter / rotatable member 360 on the finger flange 340 moves the former distally on the latter. Using a helical thread and rotation to effect axial movement allows for greater control of the axial movement, which is useful in the degassing process described above. In some embodiments, the finger flange 340 and / or the microdosing adapter / rotatable member 360 may include a ratchet mechanism that prevents reverse (e.g., counterclockwise) rotation of the microdosing adapter / rotatable member 360 on the finger flange 340. This prevents the type of user error that could disable or damage the microinjection system 300.

[0128]

[0140] FIG. 55 illustrates the interaction between the plunger cap 370 and the thumb pad / external stopper 356, whereby distal movement of the microdosing adapter / rotatable member 360 is coupled to distal movement of the plunger member 350 and the stopper member 320 coupled thereto.

[0129]

[0141] 56-59 illustrate the interaction between plunger cap 370 and microdosing adapter / rotatable member 360, as described above. Briefly, retaining member 374 and spline stop 376 of plunger cap 370 removably couple plunger cap 370 to microdosing adapter / rotatable member 360 until a sufficiently large proximal force is applied to plunger cap 370, causing retaining member 374 to elastically deform. Additionally, as shown particularly in FIG. 57, a plurality of inwardly and outwardly facing splines (372, 364) on plunger cap 370 and microdosing adapter / rotatable member 360, respectively, rotationally couple plunger cap 370 and microdosing adapter / rotatable member 360.

[0130]

[0142] Plunger Cap Embodiments 60-73 illustrate plunger caps 370 according to various embodiments. All of these plunger caps 370 prevent premature injection by preventing distal movement of the plunger member 350 while allowing rotation of the microdosing adapter / rotatable member 360 to remove air bubbles from the microinjection system 300. All of these plunger caps 370 also include a retention mechanism 374 configured to removably couple the plunger cap 370 to the microdosing adapter / rotatable member 360. All of these plunger caps 370 further include a plurality of spline stops 376 configured to interfere with some (e.g., two) of the plurality of outwardly directed splines 364 on the microdosing adapter / rotatable member 360 to prevent proximal movement of the plunger cap 370 relative to the microdosing adapter / rotatable member 360. Additionally, all of these plunger caps 370 each have a knurled outer surface 378 to facilitate manual or automatic rotation of the plunger cap 370.

[0131]

[0143] Figures 60 and 61 show plunger cap 370 according to the embodiment shown in Figures 51, 55-57, and 59 and described above. Plunger cap 370 may be made of a material (e.g., a polymer) of a different color than plunger member 350 to enable the former to be distinguished from the latter.

[0132]

[0144] 62 and 63 illustrate another embodiment of a plunger cap 370. One difference between this embodiment and the embodiment shown in FIGS. 60 and 61 is the presence of multiple windows 380 that allow the thumb pad / external stopper 356 to be visible through the plunger cap 370, even when removably coupled to the microdosing adapter / rotatable member 360. By allowing the user to view the thumb pad / external stopper 356, these windows 380 help prevent a situation in which a user believes the plunger cap 370 to be a thumb pad and applies distal force thereto. While the splined stopper 376 on the plunger cap 370 prevents the plunger cap 370 from pushing distally against the actual thumb pad / external stopper 356, applying distal force to the plunger cap 370 could potentially damage the plunger cap 370. Opening 380 includes circumferential and axial openings and is sized and shaped to prevent manual operation of thumb pad / external stopper 356 from outside plunger cap 370 .

[0133]

[0145] Figures 64 and 65 show a plunger cap 370 according to yet another embodiment. One difference between this embodiment and the embodiment shown in Figures 62 and 63 is that there is a circumferential window 380, but not an axial window 380 (see Figures 62 and 63), that allows the thumb pad / external stopper 356 to be visible through the plunger cap 370 even when removably coupled to the microdosing adapter / rotatable member 360. This minimizes the possibility that a user with small fingers will be able to manipulate the thumb pad / external stopper 356 from outside the plunger cap 370.

[0134]

[0146] Figures 66 and 67 show a plunger cap 370 according to yet another embodiment. One difference between this embodiment and the embodiment shown in Figures 64 and 65 is that the peripheral window 380 in this embodiment is smaller than the corresponding circumferential window 380 in the embodiment shown in Figures 64 and 65. This further minimizes the possibility that a user with small fingers will be able to manipulate the thumb pad / external stopper 356 from outside the plunger cap 370.

[0135]

[0147] Figures 68 and 69 show a plunger cap 370 according to another embodiment. One difference between this embodiment and the embodiment shown in Figures 62 and 63 is that there is an axial window 380, but not a circumferential window 380 (see Figures 62 and 63), that allows the thumb pad / external stopper 356 to be visible through the plunger cap 370 even when removably coupled to the microdosing adapter / rotatable member 360. This minimizes the possibility that a user with small fingers will be able to manipulate the thumb pad / external stopper 356 from outside the plunger cap 370.

[0136]

[0148] 70 and 71 show a plunger cap 370 according to yet another embodiment. One difference between this embodiment and the embodiment depicted in FIGS. 60 and 61 is that the plunger cap 370 of FIGS. 70 and 71 includes a transparent portion 382 that allows the thumb pad / external stopper 356 to be viewed through the plunger cap 370, even when removably coupled to the microdosing adapter / rotatable member 360. Unlike the embodiment shown in FIGS. 52-69, the embodiment shown in FIGS. 70 and 71 does not include an opening (see window 380 in FIGS. 52-69). This eliminates the possibility that a user with small fingers could manipulate the thumb pad / external stopper 356 from outside the plunger cap 370.

[0137]

[0149] 72 and 73 illustrate another embodiment of a plunger cap 370. One difference between this embodiment and the embodiment shown in FIGS. 60 and 61 is the presence of a pointed structure 384 at the proximal end of the plunger cap 370 shown in FIGS. 72 and 73. The pointed structure 384 discourages the user from applying distal force to the plunger cap 370.

[0138]

[0150] Microdosing Termination Problems and Solutions In microdosing embodiments, microdosing is completed when the thumb pad / external stopper 356 advances to the proximal flange 362 of the microdosing adapter / rotatable member 360, thereby eliminating the gap 358. In many microdosing embodiments, some fluid / medication remains inside the syringe body 310 at the end of the microdosing (see, e.g., FIG. 49 ). This residual fluid / medication can mislead the user into thinking the full dose was not properly administered. The following embodiments include various solutions to this microdosing completion problem.

[0139]

[0151] 74-75 illustrate yet another embodiment of a microinjection system 400. This microinjection system 400 is configured to address the end-of-microdosing issue described above with a distinct visual indicator. In the ready-to-inject state shown in FIG. 74, a gap portion 458 of the plunger member 450 has a distinct, eye-catching color (e.g., red) compared to the rest of the microinjection system 400. During injection, this gap portion 458 is pushed distally into the microdosing adapter / rotatable member 460, thereby removing the eye-catching color from the user's view. The absence of this eye-catching color indicates that the microdosing is complete in the end-of-injection state shown in FIG. 50. In some embodiments, this microdosing injection system 400 is sold with materials emphasizing this meaning (e.g., "no red = dose delivery complete").

[0140]

[0152] Figures 76-84 illustrate an alternative microinjection method that addresses the issue of microdose termination according to another embodiment, using the microinjection system 300 shown in Figures 36-50. The needle assembly and vertical position of the microinjection system 300 shown in Figures 36-41 are identical to the injection method shown in Figures 76-84. As shown in Figures 76-78 (compared to Figures 42-44), the air bubble removal procedure is different. During this alternative air bubble removal procedure, the plunger cap 370 is rotated clockwise until the distal end of the plunger cap 370 and the microdosing adapter / rotatable member 360 abut the proximal-oriented surface of the finger flange 340, as shown in Figure 78. Moving the plunger cap 370 and the microdosing adapter / rotatable member 360 more distally relative to the syringe body 310 moves the plunger member 350 and the associated stopper member 320 distally relative to the syringe body 310. This is evident from a comparison of Figures 43 and 77, which show corresponding steps in two related microinjection methods.

[0141]

[0153] Because the microinjection system 300 is in a vertical position during bubble removal, moving the coupled stopper member 320 distally relative to the syringe body 310 releases only a small portion of the fluid / medication within the syringe body 310 into the external environment. This alternative bubble removal procedure can be performed using a needle cap on the needle to minimize the risk of contamination and inadvertent needlestick injuries. Because the amount of fluid / medication delivered in the microdosing process is proportional to the gap 358, increasing the distance traveled by the stopper member 320 during bubble removal does not affect the gap or the amount of fluid / medication delivered.

[0142]

[0154] Figures 79-81 show the microinjection system 300 after it has been debubble-free, as in Figures 45-47. Figures 82-84 show the microinjection system 300 after an injection has been performed, as in Figures 48-50. As shown in Figure 83, after an injection, the stopper member 320 is very close (e.g., approximately 1 mm) from the distal end of the interior of the syringe body 310. This small space remaining between the stopper member 320 and the distal end of the interior of the syringe body 310 does not pose much of a risk to the user. Some may even see this as a sign that the microinjection has ended. The difference between this alternative microinjection method and the method shown in Figures 36-50 and described above can be visualized by comparing Figures 49 and 83.

[0143]

[0155] In another embodiment, the gap 358 between the proximal-facing surface of the proximal flange 362 and the distal-facing surface of the thumb pad / external stop 356 can be increased to allow the stopper member 320 to move distally until it bottoms out within the syringe body 310. This embodiment can be combined with the alternative air bubble removal mechanism shown in FIGS. 76-84. In such a combined embodiment, the user moves all of the components of the microinjection system 300 as distally as possible, thereby instead achieving a full dose injection. In an embodiment where the gap 358 is increased to allow the stopper member 320 to bottom out within the syringe body 310, the injection / dose is decoupled from the axial length of the gap 350. This embodiment sacrifices precision of the microinjection system in order to reduce the user's concerns about complete / finished administration.

[0144]

[0156] 85A and 85B illustrate a microinjection system 500 according to yet another embodiment. This microinjection system 500 is configured to address the end-of-dosing issue described above using an audible / tactile indicator. In the microinjection system 500 shown in FIGS. 85A and 85B, the microdosing adapter / rotatable member 560 includes multiple (e.g., two) deflectable spring arms 592. After a full microdose is administered by full insertion of the plunger member 550, the deflectable spring arms 592 snap onto notches 594 formed in the plunger member 550. This mechanically generates a mechanical click that can be felt and / or heard by the user, providing tactile and / or audible feedback of the end-of-dosing.

[0145]

[0157] Although various embodiments have been described using specific connectors (eg, slips and luers), these embodiments can be used with any known injection system connector.

[0146]

[0158] Various exemplary embodiments are described herein. These examples are referred to in a non-limiting sense. They are provided to illustrate embodiments of greater general applicability. Various modifications may be made to the described embodiments, and equivalents may be substituted without departing from the true spirit and scope of the embodiments. In addition, many modifications may be made to adapt a particular situation, material, composition of matter, process, process acts, or steps to the objective, spirit, or scope of the embodiments. Moreover, those skilled in the art will recognize that each of the individual variations described and illustrated herein has distinct components and features that can be readily separated or combined with the features of some other embodiments without departing from the scope or spirit of the embodiments. All such variations are intended to be within the scope of the embodiments associated with this disclosure.

[0147]

[0159] Any of the devices described for performing procedures for collecting subject injection information may be provided in packaged combinations for use in performing such interventions. These supply "kits" may further include instructions for use and / or may be packaged in sterile trays or containers commonly used for such purposes.

[0148]

[0160] The above embodiments include methods that may be performed using the subject apparatus. These methods may include the act of providing such a suitable device. Such provisioning may be performed by an end user. In other words, the act of "providing" may simply be the act of an end user obtaining, accessing, approaching, locating, configuring, activating, powering on, or otherwise performing an action to provide the necessary equipment for the subject method. The methods recited herein may be performed in any order of the recited events that is logically possible, not just the order of the recited events.

[0149]

[0161] Exemplary embodiments have been described above, along with details regarding material selection and manufacturing. Other details of the embodiments will be understood in connection with the above-referenced patents and publications and will be generally known or recognized by those skilled in the art. For example, those skilled in the art will understand that one or more lubricious coatings (e.g., hydrophilic polymers such as polyvinylpyrrolidone-based compositions, fluoropolymers such as tetrafluoroethylene, hydrophilic gels, or silicones) can be used in connection with various portions of the device, such as relatively large interfaces of movably coupled parts, to facilitate low-friction manipulation or advancement of such objects relative to other portions of the instrument or nearby tissue structures, as needed. The same may be true with respect to method-based features of the embodiments, as well as with respect to additional actions commonly or logically employed.

[0150]

[0162] Furthermore, while the above embodiments have been described with reference to several examples optionally incorporating various features, these embodiments are not limited to those described or illustrated as contemplated with respect to each variation of the embodiments. Various modifications may be made to the described embodiments, and equivalents (whether recited herein or not included for brevity) may be substituted without departing from the true spirit and scope of the embodiments. Furthermore, when a range of values ​​is provided, it is understood that every intervening value between the upper and lower limits of that range and any other stated or intervening value within that range is included in the above embodiment.

[0151]

[0163] It should also be understood that any feature of the described inventive variations may be set forth and claimed independently or in combination with any one or more of the features described herein. References to a singular item include the presence of a plurality of the same items. More specifically, as used in this specification and the claims relating thereto, the singular forms "a," "an," "said," and "the" include plural referents unless expressly stated otherwise. In other words, the use of such terms requires "at least one" of the subject item of the claim relating to the above description and this disclosure. It should be further noted that such claims may be written to exclude any element. As such, this description is intended to serve as a prerequisite for using exclusive terminology, such as "only," "only," etc., in connection with the recitation of claim elements or the use of "negative" limitations.

[0152]

[0164] The term "comprising" in claims related to this disclosure that do not use such exclusive language allows for the addition of additional elements or features that are considered to transform the nature of the elements recited in those claims, regardless of whether a specific number of elements are recited in such claims. Unless otherwise defined herein, all technical and scientific terms used herein are to be given the broadest possible commonly understood meaning while maintaining the validity of the claims.

[0153]

[0165] The breadth of the present invention is not limited to the examples and / or subject matter provided, but rather is limited only by the scope of the claims associated with this disclosure.

Claims

1. In a system for injection, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member, The plunger member a rotatable member configured to insert the stopper member distally into the syringe relative to the syringe body upon rotation of the rotatable member; a proximal portion proximal to the rotatable member and configured to move distally to insert the stopper member further distally within the syringe relative to the syringe body.

2. 10. The system of claim 1, wherein approximately 50 microliters of fluid is expelled from within the syringe by moving the proximal portion distally to insert the stopper member further distally within the syringe relative to the syringe body.

3. The system of claim 1 , further comprising a safety member removably coupled to a proximal portion of the plunger member to prevent distal movement thereof.

4. The system of claim 1 , further comprising a finger flange coupled to the syringe flange.

5. In the injection method, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member, a rotatable member; a proximal portion of the rotatable member; and a plunger member including a needle assembly having a needle assembly interior; providing an injection system comprising: With the syringe body in a vertical position, rotating the rotatable member to insert the stopper member distally into the syringe relative to the syringe body to expel air bubbles from within the syringe and needle assembly; and moving the proximal portion distally to insert the stopper member further distally into the syringe relative to the syringe body.

6. 6. The method of claim 5, wherein the step of moving the proximal portion distally to further insert the stopper member distally into the syringe interior relative to the syringe body expels approximately 50 microliters of fluid from the syringe interior.

7. 6. The method of claim 5, wherein the system further comprises a safety member removably coupled to a proximal portion of the plunger member to prevent distal movement thereof, and the method further comprises the step of detaching the safety member from the proximal portion before moving the proximal portion distally.

8. In the injection system, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member connected to the stopper member; a finger flange removably coupled to the syringe flange and including proximally oriented threads; a rotatable member disposed on the proximal-orientation screw, the rotatable member having an opening in which the plunger member is disposed; The system is characterized in that the rotatable member is configured to insert the plunger member and the stopper member coupled thereto distally into the interior of the syringe relative to the syringe body as the rotatable member rotates relative to the proximal orientation screw.

9. 9. The system of claim 8, wherein the plunger member comprises an external stopper proximal to the rotatable member for moving distally relative to the rotatable member to further insert the plunger member and a stopper member distally coupled within the syringe body into the syringe body.

10. 9. The system of claim 8, wherein approximately 50 microliters of fluid is expelled from the syringe interior by moving the external stopper distally and further inserting the stopper member into the syringe interior relative to the syringe body.

11. The system of claim 8 , further comprising a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member.

12. The system of claim 11 , wherein the plunger cap defines an opening through which the proximal end of the plunger member is visible from outside the plunger cap.

13. The system of claim 12 , wherein the opening is sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap.

14. The system of claim 11 , wherein the plunger cap has a transparent portion that allows the proximal end of the plunger member to be seen from outside the plunger cap.

15. The system of claim 11 , wherein the plunger cap includes a pointed feature on a proximal end.

16. The system of claim 11 , wherein the plunger cap comprises a retention mechanism that removably couples the plunger cap to the rotatable member.

17. The system of claim 11 , wherein the plunger cap comprises a first plurality of splines configured to cooperate with a corresponding second plurality of splines on the rotatable member to rotate the rotatable member.

18. The system of claim 11 , wherein the plunger cap comprises a knurled outer surface to facilitate manual rotation of the plunger cap.

19. The system of claim 8 , wherein the finger flange includes an interior surface protrusion configured to secure the finger flange onto the syringe flange.

20. The system of claim 8 , wherein the finger flange is resiliently deformable to secure the finger flange onto the syringe flange.

21. the rotatable member is configured to insert the plunger member and the stopper member coupled thereto distally into the syringe interior relative to the syringe body upon rotation of the rotatable member in a first direction relative to the proximal-orientation screw; The system of claim 8 , wherein the rotatable member comprises a ratchet mechanism that prevents rotation of the rotatable member relative to the proximally oriented screw in a second direction opposite the first direction.

22. 9. The system of claim 8, wherein the plunger member includes an internal stopper positioned distal to the opening in the rotatable member and sized to prevent passage of the internal stopper through the opening, the internal stopper limiting proximal movement of the plunger member.

23. The system of claim 8 , wherein the plunger member comprises a visual injection indicator.

24. In the injection method, 1. An injection system comprising: a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a fluid disposed within the syringe; a stopper member disposed inside the syringe; a plunger member connected to the stopper member; a finger flange removably coupled to the syringe flange and having proximally oriented threads; a rotatable member disposed on the proximal screw, the rotatable member having an opening in which the plunger member is disposed; a needle assembly having a needle assembly interior; providing an injection system, wherein the plunger member has an external stopper proximal to the rotatable member; With the syringe body in a vertical position, rotating the rotatable member relative to the proximal orientation screw to insert the stopper member distally into the syringe body to expel air bubbles from within the syringe and the needle assembly; and further inserting the plunger member and the stopper member coupled thereto into the syringe interior relative to the syringe body to move the external stopper distally relative to the rotatable member to expel fluid from the syringe interior.

25. 25. The method of claim 24, wherein the step of moving the outer stopper distally to further insert the stopper member distally into the syringe interior relative to the syringe body expels approximately 50 microliters of fluid from the syringe interior.

26. The system further comprises a plunger cap removably coupled to the rotatable member to prevent distal movement of the external stopper relative to the rotatable member, and the method further comprises: rotating the plunger cap relative to the proximally oriented screw, thereby rotating the rotatable member relative to the proximally oriented screw; and removing the plunger cap from the rotatable member before moving the external stopper distally relative to the rotatable member.

27. the plunger cap defining an opening; 27. The method of claim 26, further comprising an opening in the plunger cap allowing the proximal end of the plunger member to be visible from outside the plunger cap.

28. 28. The method of claim 27, wherein the plunger cap further comprises preventing manual manipulation of the proximal end of the plunger member from outside the plunger cap.

29. the plunger cap has a transparent portion; 27. The method of claim 26, wherein the method includes a transparent portion of the plunger cap allowing the proximal end of the plunger member to be visible from outside the plunger cap.

30. 27. The method of claim 26, wherein the plunger cap includes a pointed feature on a proximal end.

31. 25. The method of claim 24, further comprising elastically deforming the finger flange to secure the finger flange onto the syringe flange.

32. rotating the rotatable member in a first direction relative to the proximally oriented screw; 25. The method of claim 24, further comprising: preventing rotation of the rotatable member relative to the proximally oriented screw in a second direction opposite the first direction.

33. the plunger member includes an internal stop disposed distally of the opening in the rotatable member; 25. The method of claim 24, wherein the internal stop prevents proximal movement of the plunger member such that the internal stop moves proximally through the opening.

34. 34. The method of claim 33, further comprising the step of: after moving the external stopper distally relative to the rotatable member, moving the external stopper proximally relative to the rotatable member to retract the plunger member and the stopper member coupled thereto proximally within the syringe relative to the syringe body, thereby drawing a second fluid into the syringe.

35. 35. The method of claim 34, wherein the external stopper is moved proximally relative to the rotatable member the same distance as the external stopper is moved distally relative to the rotatable member to cause the internal stopper to contact a distally oriented surface of the rotatable member.

36. 25. The method of claim 24, further comprising rotating the rotatable member relative to the proximal orientation screw to a distal end position to further insert the plunger member and the stopper member coupled thereto into the syringe relative to the syringe body before moving the external stopper distally relative to the rotatable member.

37. 25. The method of claim 24, further comprising the step of moving the outer stopper distally relative to the rotatable member to insert the plunger member into a distal end of the syringe interior.

38. In the injection system, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member; a finger flange removably coupled to the syringe flange and having proximally oriented threads; a rotatable member disposed on the proximal-orientation screw, the rotatable member having an opening in which the plunger member is disposed; the plunger member includes an internal stop and an external stop disposed distally and proximally, respectively, of the rotatable member; the internal and external stops are sized to prevent passage of the internal and external stops through openings in the rotatable member such that the internal and external stops limit proximal and distal movement of the plunger member, respectively; a length of the plunger member between the proximal-oriented surface of the rotatable member and the outer stopper defines a gap when the plunger is positioned such that the inner stopper contacts the distal-oriented surface of the rotatable member; The system is characterized in that, upon rotation of the rotatable member relative to the proximal orientation screw, the rotatable member is configured to insert the plunger member and the associated stopper member distally within the syringe relative to the syringe body.

39. 39. The system of claim 38, wherein the external stopper is configured to move distally relative to the rotatable member to further insert the plunger member and associated stopper member distally within the syringe relative to the syringe body.

40. 39. The system of claim 38, wherein moving the external stopper distally and inserting the stopper member further distally within the syringe relative to the syringe body closes the gap and injects a predetermined amount of medication from within the syringe into a patient.

41. 39. The system of claim 38, wherein the injected volume of medication is between about 5 microliters and about 250 microliters.

42. 42. The system of claim 41, wherein the predetermined amount of medication to be injected is about 50 microliters.

43. 39. The system of claim 38, further comprising a plunger cap removably coupled to the rotatable member and configured to prevent distal movement of the external stopper relative to the rotatable member.

44. 44. The system of claim 43, wherein the plunger cap is sized and shaped to prevent a syringe operator from prematurely closing the gap between an external stopper of the plunger rod and the rotatable member.

45. 44. The system of claim 43, wherein the plunger cap defines an opening through which the proximal end of the plunger member is visible from outside the plunger cap.

46. 46. ​​The system of claim 45, wherein the opening is sized and shaped to prevent manual manipulation of the proximal end of the plunger member from outside the plunger cap.

47. 44. The system of claim 43, wherein the plunger cap has a transparent portion that allows the proximal end of the plunger member to be seen from outside the plunger cap.

48. 44. The system of claim 43, wherein the plunger cap includes a pointed feature on a proximal end.

49. 44. The system of claim 43, wherein the plunger cap comprises a retention mechanism that removably couples the plunger cap to the rotatable member.

50. 44. The system of claim 43, wherein the plunger cap comprises a first plurality of splines configured to cooperate with a corresponding second plurality of splines on the rotatable member to rotate the rotatable member.

51. 44. The system of claim 43, wherein the plunger cap comprises a knurled outer surface to facilitate manual rotation of the plunger cap.

52. 44. The system of claim 43, wherein the plunger cap surrounds at least a portion of the gap.

53. 39. The system of claim 38, wherein the finger flange has an interior surface protrusion configured to secure the finger flange onto the syringe flange.

54. 39. The system of claim 38, wherein the finger flange is resiliently deformable to secure the finger flange onto the syringe flange.

55. the rotatable member is configured to insert the plunger member and the stopper member coupled thereto distally within the syringe relative to the syringe body upon rotation of the rotatable member relative to the proximal orientation screw in a first direction; 39. The system of claim 38, wherein the rotatable member comprises a ratchet mechanism that prevents rotation of the rotatable member relative to the proximally oriented screw in a second direction opposite the first direction.

56. 39. The system of claim 38, wherein the plunger member comprises a visual injection indicator.

57. 39. The system of claim 38, wherein the rotatable member comprises at least one deflectable spring arm that snaps into a notch formed in the plunger member when the plunger member is fully inserted, thereby mechanically generating a mechanical click that can be felt and / or heard by a user, providing tactile and / or audible feedback of the end of administration.

58. In the injection system, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a latch member disposed on the stopper member; a plunger member configured to engage the latch member and having a notch at a distal end thereof thereby directly connecting the stopper member to the plunger member; The system, wherein the plunger member comprises a stopper member configured to be manipulated for distal insertion within the syringe relative to the syringe body when directly coupled to the stopper member.

59. 59. The system of claim 58, further comprising a finger flange coupled to the syringe flange, the finger flange configured to removably couple the plunger member to the syringe body when the plunger member is not directly coupled to the stopper member.

60. 60. The system of claim 59, wherein the finger flange has a side opening configured to allow the syringe flange to pass at least partially therethrough and at least partially into the interior of the finger flange.

61. 60. The system of claim 59, wherein the finger flange comprises a proximally oriented opening configured to receive a distal end of the plunger member.

62. 62. The system of claim 61, wherein the finger flange further comprises a proximal-opening funnel disposed about the proximally-oriented opening and configured to direct a distal end of the plunger member toward the proximally-oriented opening.

63. 60. The system of claim 58, further comprising a luer connector coupled to a distal end of the syringe body.

64. 59. The system of claim 58, wherein the stopper member includes a proximal opening funnel at its proximal end, the proximal opening funnel configured to direct the distal end of the plunger member toward the stopper member.

65. 59. The system of claim 58, wherein the notch comprises a recessed ring around the distal end of the plunger member.

66. 59. The system of claim 58, wherein the latch member has arms extending distally and radially inward to prevent proximal movement of the plunger member when the plunger member is directly coupled to the stopper member.

67. In the injection method, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a latch member disposed on the stopper member; a finger flange connected to the syringe flange; a plunger member removably coupled to the syringe body by the finger flange and having a notch at a distal end thereof; removing the plunger member from the finger flange; inserting the plunger member at least partially into the syringe and into the stopper member such that the latch member engages the notch to couple the plunger member to the stopper member; and manipulating the plunger member to insert the stopper member distally into the syringe interior relative to the syringe body.

68. the finger flange having a proximally oriented opening; 68. The method of claim 67, wherein the step of inserting the plunger member at least partially within the syringe and the stopper member comprises inserting the plunger member at least partially into the proximally oriented opening.

69. 69. The method of claim 68, wherein the finger flange further includes a proximal-opening funnel disposed about the proximal-oriented opening, the method further including the step of the proximal-opening funnel guiding a distal end of the plunger member into the proximal-oriented opening.

70. 68. The method of claim 67, wherein the injection system further comprises a luer connector coupled to a distal end of the syringe body, the method further comprising coupling a needle to the syringe body using the luer connector.

71. 68. The method of claim 67, wherein the stopper member comprises a proximal opening funnel at its proximal end, the method further comprising the step of the proximal opening funnel guiding the distal end of the plunger member into the stopper member.

72. 68. The method of claim 67, wherein the notch comprises a recessed ring around the distal end of the plunger member.

73. 68. The method of claim 67, wherein the latch member includes arms extending distally and radially inward to prevent proximal movement of the plunger member when the plunger member is directly coupled to the stopper member.

74. a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member and configured to be manipulated to insert the stopper member distally into the syringe interior relative to the syringe body; An injection system wherein the plunger member has a plurality of segments of increasing diameter, the segments being configured to nest within one another in a retracted configuration.

75. 75. The system of claim 74, wherein the segments are configured to nest within one another and lock in an expanded configuration.

76. 75. The system of claim 74, wherein the plunger includes three segments.

77. 75. The system of claim 74, wherein the plunger includes four segments.

78. In the injection method, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; providing an injection system including a plunger member coupled to the stopper member and including a proximal end pad and a plurality of segments of increasing diameter, the segments nesting within one another in a retracted configuration; moving a proximal end pad of the plunger member proximally relative to the syringe body to telescope the segments relative to one another and lock the segments in an expanded configuration; With the segments in an expanded configuration, manipulating the plunger member to insert the stopper member distally within the syringe relative to the syringe body.

79. 79. The method of claim 78, wherein the plunger includes three segments.

80. 79. The method of claim 78, wherein the plunger includes four segments.

81. In the injection system, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member and configured to be manipulated to insert the stopper member distally into the syringe body, the plunger member including a plurality of segments connected to one another by an elastic member; and a restraining member that holds the segments in a non-linear configuration when the elastic member is in an expanded state.

82. 82. The system of claim 81, wherein the elastic member is biased to transition from the expanded state to a contracted state when the restraining member is released, thereby causing the segments to transition to a straight configuration.

83. 82. The system of claim 81, wherein the restraining member is a wrapper for the system.

84. In the injection method, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member and comprising a plurality of segments connected to one another by a resilient member; the plurality of segments are held in a non-linear configuration when the elastic member is in an expanded state by a restraining member; removing the restraining member to allow the elastic member to move from an expanded state to a contracted state, thereby transitioning the segment to a straight configuration; With the segments in a straight configuration, manipulating the plunger member to insert the stopper member distally into the syringe interior relative to the syringe body.

85. 85. The method of claim 84, wherein the restraining member is a wrapper of the system.

86. In the injection system, a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end thereof; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member and configured to be manipulated to insert the stopper member distally within the syringe relative to the syringe body; the plunger member comprises a plurality of segments; 1. An injection system, wherein the plunger member is configured to be folded such that a first segment of the plurality of segments is adjacent to a second segment of the plurality of segments when the plunger member is in a folded configuration.

87. 87. The system of claim 86, wherein the plunger member further comprises a latch member configured to releasably couple the first segment to the syringe body when the plunger member is in a collapsed configuration.

88. 87. The system of claim 86, further comprising a biasing member configured to move the plunger member from the collapsed configuration to a straight configuration.

89. In the injection method, 1. An injection system comprising: a syringe body having a proximal end and a distal end, a syringe interior, and a syringe flange at the proximal end; a stopper member disposed inside the syringe; a plunger member coupled to the stopper member and including a plurality of segments; providing an injection system, wherein the plunger member is folded into a folded configuration such that a first segment of the plurality of segments is adjacent to a second segment of the plurality of segments; allowing the plunger member to transition from the collapsed configuration to a straight configuration; With the plurality of segments in a straight configuration, manipulating the plunger member to insert the stopper body distally within the syringe relative to the syringe body.

90. 90. The method of claim 89, wherein the step of transitioning the plunger member from the collapsed configuration to the straight configuration comprises manually transitioning the plunger member from the collapsed configuration to the straight configuration.

91. 90. The method of claim 89, wherein the system further comprises a biasing member.

92. 92. The method of claim 91, wherein the step of transitioning the plunger member from the folded configuration to the straight configuration includes removing a restraining member from the injection system.

93. 93. The method of claim 92, wherein the restraining member is a wrapper of the system.