Implant loading device and system
11083556 · 2021-08-10
Assignee
Inventors
Cpc classification
A61F2/95
HUMAN NECESSITIES
A61B2017/0053
HUMAN NECESSITIES
A61F2/0095
HUMAN NECESSITIES
A61F2/9522
HUMAN NECESSITIES
A61F2/04
HUMAN NECESSITIES
A61B17/12172
HUMAN NECESSITIES
International classification
A61F2/95
HUMAN NECESSITIES
A61F2/04
HUMAN NECESSITIES
A61F2/00
HUMAN NECESSITIES
B65B1/04
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Devices, methods, and systems are provided for loading an implantable device into a container. One aspect of the loading system contains a loader element with a loading tunnel that is configured to gradually contract an implantable device into a compressed state of reduced size relative to an expanded state as the implantable device travels through the loading tunnel.
Claims
1. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; and a plunger element, wherein the plunger element comprises an elongated portion that is configured to push the implantable pulmonary device through the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state.
2. The system of claim 1, wherein the plunger element is configured to push the implantable pulmonary device into a delivery catheter.
3. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; and a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state; wherein the loading tunnel further defines an internal transfer cavity that communicates with the loading cavity, the transfer cavity sized to receive the implantable device from the loading cavity and retain the implantable pulmonary device in the compressed state; and wherein the loading tunnel further defines a container cavity that communicates with the transfer cavity, the container cavity sized to receive a container that receives the implantable pulmonary device in the compressed state.
4. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; and a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state; and wherein the container is a delivery catheter that is configured to deliver the implantable pulmonary device to a lung region.
5. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; and a tension element that is configured to communicate a force to the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state.
6. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; and a container locking element that is configured to secure and align the container with the loading element; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state.
7. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; and a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state; and wherein a rotator disposed on the puller element is removably attached to a suture; and rotation of the rotator causes the suture to detach from the rotator thereby releasing the implantable pulmonary device from the puller element.
8. The system of claim 7, wherein the suture is drawn through and exits the implantable pulmonary device after the detachment of the suture from the rotator thereby detaching the suture from the implantable pulmonary device.
9. A system for loading an implantable pulmonary device into a container, comprising: a loading element comprising a loading tunnel configured to contract an implantable pulmonary device into a compressed state of reduced size relative to an expanded state as the implantable pulmonary device travels through the loading tunnel; and a puller element that is removably attached to the implantable pulmonary device, wherein the puller element pulls the implantable pulmonary device through the loading tunnel; wherein the puller element automatically releases the implantable pulmonary device after the implantable pulmonary device contracts into the compressed state; and wherein the puller element comprises a pin and a rotator that is configured to rotate along the pin.
10. The system of claim 9, wherein the rotator comprises a body that is configured to connect to the pin, a first tine and a second tine, wherein the first tine is longer than the second tine.
11. The system of claim 9, wherein the loading element further comprises a rotator track that is configured to accommodate the rotator.
12. The system of claim 11, wherein the rotator is configured to be received by the rotator track such that the rotator resides within the rotator track when the loader element and the puller element are connected.
13. The system of claim 12, wherein the rotator track is further configured to allow the rotator to slide along the rotator track when the puller element is moved away from the loader element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Present embodiments have other advantages and features which will be more readily apparent from the following detailed description and the appended claims, when taken in conjunction with the accompanying drawings, in which:
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DETAILED DESCRIPTION
(10) Although the detailed description contains many specifics, these should not be construed as limiting the scope of the disclosure but merely as illustrating different examples and aspects of the disclosure. It should be appreciated that the scope of the disclosure includes other embodiments not discussed herein. Various other modifications, changes and variations which will be apparent to those skilled in the art may be made in the arrangement, operation and details of the method, device, and system of the present embodiments disclosed herein without departing from the spirit and scope of the disclosure as described here.
(11) Throughout the specification and claims, the following terms take the meanings explicitly associated herein unless the context clearly dictates otherwise. The meaning of “a”, “an”, and “the” include plural references. The meaning of “in” includes “in” and “on.” Referring to the drawings, like numbers indicate like parts throughout the views. Additionally, a reference to the singular includes a reference to the plural unless otherwise stated or inconsistent with the disclosure herein.
(12) The word “exemplary” is used herein to mean “serving as an example, instance, or illustration.” Any implementation described herein as “exemplary” is not necessarily to be construed as advantageous over other implementations.
(13) Disclosed herein are methods, devices and systems for loading an implantable device into a delivery device for delivering the apparatus to a body region, such as a bronchial passageway.
(14) Throughout this disclosure, reference is made to the term “implantable device”. As used herein, the term “implantable device” refers to various collapsible and/or self-expanding implant including implants configured to maintain openings in vascular, urinary, biliary, esophageal, and renal tracts, and vena cava filters. Furthermore, it is contemplated that the implantable device may be various pulmonary implants configured to be placed within a lung region to treat pulmonary disorders including but limited to flow restrictive devices such as valves including one-way valves that allow flow in the exhalation direction only, occluders or plugs that prevent flow in either direction, or two-way valves that control flow in both directions.
(15) In one embodiment, present disclosure describes devices, systems, and methods for loading a collapsible pulmonary implant into a delivery system, such as a delivery catheter, in preparation for delivering the implant into a lung region such as the pulmonary airways of a patient. In one embodiment, collapsible pulmonary implants are made of memory-shape materials, such as Nitinol, and are compressed to enable delivery through relatively small and curved bodily pathways to the lung region. In one embodiment, delivery devices, such as catheters, retain the collapsed pulmonary implants in a radially compressed state for delivery to the treatment site, where the implant is released into the lung region and regains its non-compressed shape. The present embodiments disclose various aspects of loading devices that collapse such implants and optionally insert them into a container such as a delivery catheter.
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(17) Referring now to
(18) Referring now to the puller element 120, which in one embodiment may comprise a substantially cylindrical hollow body. The puller element 120 comprises a pin 121 disposed on the hollow body or it may be suspended within the hollow body. The puller element 120 further comprises a moveable rotator 122 that is configured to rotate along the pin 121. As seen in
(19) The loader element 110 further comprises a rotator track that is configured to accommodate the rotator 122. The rotator 122 is received by the tack disposed on the loader element 110 such that the rotator 122 resides within the rotator track when the loader element 110 and the puller element 120 are connected. The rotator track is further configured to allow the rotator 122 to slide along the rotator track during the loading operation, when the puller element 120 is moved away from the loader element 110.
(20) As seen in
(21) In one embodiment, the suture 150 is configured as a suture loop that is removably attached to the implantable device 140 by threading the loop through a portion of the implantable device 140 as described in co-pending U.S. application Ser. No. 12/820,393. The suture loop is further removably attached to the rotator 122 such that the suture loop resides between the first and second tines of the rotator 122.
(22) Referring now to
(23) At step 201, the loader element 110, puller element 120, and the plunger element 130 are unlocked. In an embodiment, where the loading system 100 is configured as a discrete unit, the locking element 132 is released by removing the plunger element 130 from the puller element 120 and the loader element 110. Alternatively, the loader element 110 and the puller element 120 may be locked or secured through other means, and it is contemplated that during step 201 that such lock means is released thus enabling the loader element 110 and the puller element 120 to be separated.
(24) At step 202, the implantable device 140 is pulled through the loading region 112a of the loading tunnel thereby causing the implantable device 140 to transition from an expanded state to a compressed state. The puller element 120 is pulled or moved away from the loader element 110. As the puller element 120 is moved away from the loader element 110, the suture 150 attached to the implantable device 160 and the puller element 120 pulls the implantable device 140 through the loading region 112a towards the container region 112b of the loading tunnel 112. As this happens, the funnel shape of the loading region 112a causes the implantable device 140 to be gradually compressed such that the diameter of the implantable device 140 is gradually reduced as the implantable device 140 moves toward and into the container region 112b. In one embodiment, the walls of the loading tunnel 112 provide an equally balanced compressive force around the entire circumference of the implantable device 140 as the implantable device moves through the loading tunnel 112. This reduces the likelihood of deforming the implantable device 140 during compression. Concurrent to the pulling of the implantable device 140, the rotator which is removably attached to the suture 150 is configured to move or slide away from the loader device 110 along the rotator track disposed on the loader device 110.
(25) At step 203, and as seen in
(26) At step 204, the puller element 120 is further pulled or moved away from the loader element 110 causing a complete separation of the puller element 120 and the loader element. The suture 150 is attached to the puller element 120 while it is detached from the implantable device 140. Specifically, after the detachment of the suture 150 from the rotator 122, the suture 150 is drawn through and exits the implantable device 140 and thereby detaching the suture 150 from the implantable device 140.
(27) At step 205, and as seen in
(28) At step 206, and as seen in
(29) An alternative embodiment of a loading system is shown in
(30) As seen in
(31) Prior to the loading operation, as seen in
(32) The puller element 320 comprises a pin 321 and a moveable rotator 322 that is configured to rotate along the pin 321. As seen in
(33) Additionally, the loading system 300 further comprises a suture that is affixed to a suture attachment element (not shown) on the puller element 320. The suture may be configured as a suture loop that is threaded through an implantable device 330 and removably attached to the rotator 322 as described above.
(34) In an exemplary operation of the loading device 300, the puller element 320 is pulled or moved away from the housing element 310 until the rotator 322 rotates to release the suture and consequently the suture is released from the implantable device 330. Thereafter, a delivery catheter 350 is inserted into the loader element 310 through the second opening 342 of the catheter locking element 340. Tension is then applied to the catheter 350 which causes the tunnel mount 312 to move towards the rear opening 310b of the loader element 310. The movement of the tunnel mount 312 causes the locking pin 315 to exit from the first opening 341 of the catheter locking element 340 thereby causing the second tension element 314 to transition from a compressed state to a relaxed state which moves the catheter locking element 340 away from the base of the second tension element 314. The movement causes the first opening 341 of the catheter locking element 340 to align with the loading tunnel 311 and causes the delivery catheter 350 to exit the second opening 342 and transition through the channel into the first opening 341 as seen in
(35) Thereafter, the plunger element is removed from the loader element 310, and the catheter 350 is release from the catheter locking element 340 by applying tension to the second tension element 314 such that the catheter 350 transitions back into the second opening 342, thereafter, the catheter 350 is removed from the loader element 310.
(36) In yet another embodiment, as seen in
(37) In an exemplary operation of the loading system 400, as seen in
(38) Also provided are kits for use in practicing the subject methods, where the kits typically include one or more of the above system for loading an implantable device, as described above. In certain embodiments, the kits at least include a loader element. Kits may also include a plunger element, an implantable device, and/or a delivery catheter. Additional components may be included in the kit.
(39) In addition to above-mentioned components, the subject kits typically further include instructions for using the components of the kit to practice the subject methods. The instructions for practicing the subject methods are generally recorded on a suitable recording medium. For example, the instructions may be printed on a substrate, such as paper or plastic, etc. As such, the instructions may be present in the kits as a package insert, in the labeling of the container of the kit or components thereof (i.e., associated with the packaging or subpackaging) etc. In other embodiments, the instructions are present as an electronic storage data file present on a suitable computer readable storage medium, e.g. CD-ROM, diskette, etc. In yet other embodiments, the actual instructions are not present in the kit, but means for obtaining the instructions from a remote source, e.g. via the internet, are provided. An example of this embodiment is a kit that includes a web address where the instructions can be viewed and/or from which the instructions can be downloaded. As with the instructions, this means for obtaining the instructions is recorded on a suitable substrate
(40) While the above is a complete description of various embodiments, any of a number of alternatives, modifications, and equivalents may be used in alternative embodiments. Therefore, the above description should not be taken as limiting the scope of the invention as it is defined by the appended claims.