FAT PROCESSING SYSTEM
20190358566 ยท 2019-11-28
Inventors
- Zachary Dominguez (Santa Barbara, CA)
- Justin Schwab (Santa Barbara, CA, US)
- Tiago BERTOLOTE (Geneve, CH)
- Jason METZNER (Carpinteria, CA, US)
- Ethan FRANKLIN (Santa Barbara, CA, US)
Cpc classification
A61L2430/40
HUMAN NECESSITIES
A61L27/3683
HUMAN NECESSITIES
B01D17/08
PERFORMING OPERATIONS; TRANSPORTING
A61M1/63
HUMAN NECESSITIES
A61L27/3604
HUMAN NECESSITIES
B01D17/10
PERFORMING OPERATIONS; TRANSPORTING
B01D33/00
PERFORMING OPERATIONS; TRANSPORTING
B01D33/01
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D33/00
PERFORMING OPERATIONS; TRANSPORTING
B01D33/01
PERFORMING OPERATIONS; TRANSPORTING
B01D17/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
Lipoaspirate can be treated for use in fat grafting procedures. For example, the lipoaspirate can be placed in a container having an inlet for receiving the lipoaspirate and an outlet for dispensing and removal of desired materials from the lipoaspirate. The inlet and the outlet can be located on a common side of first and second filter elements. An activation mechanism can be actuated to move the first filter element relative to the second filter element within the container to separate cellular components of the lipoaspirate from non-cellular components of the lipoaspirate.
Claims
1. A method for treating lipoaspirate for use in fat grafting procedures, the method comprising: providing a container having an inlet for receiving the lipoaspirate and an outlet for dispensing and removal of desired materials from the lipoaspirate, the container having a first filter element and a second filter element disposed therein, both the inlet and the outlet being located on a common side of the first and second filter elements; and moving the first filter element relative to the second filter element within the container to separate cellular components of the lipoaspirate from non-cellular components of the lipoaspirate, the moving comprising: slidably coupling a plunger to each of the first and second filter elements in the container; and driving at least one of the respective plungers to displace the first filter element relative to the second filter element within the container.
2. The method of claim 1, wherein the driving at least one of the respective plungers comprises applying a force to manually move the at least one plunger in a desired direction.
3. The method of claim 2, wherein the force applied to move the at least one plunger moves the respective filter element via a piston.
4. The method of claim 3, further comprising controlling a rate of separating the cellular components of the lipoaspirate from the non-cellular components using a mechanically limiting feature coupled to the piston.
5. The method of claim 4, wherein controlling the rate of separating comprises at least one of: controlling acceleration of the plunger through the lipoaspirate; or reducing a speed at which the first filter element is moved through the lipoaspirate relative to the second filter element.
6. The method of claim 4, wherein the mechanically limiting feature comprises a spring coupled to the plunger.
7. The method of claim 6, wherein controlling the acceleration of the plunger through the lipoaspirate comprises permitting the spring to provide a dampening effect and slow motion of the first filter element through the lipoaspirate.
8. The method of claim 4, wherein the mechanically limiting feature comprises a hydraulic mechanism coupled to the plunger.
9. The method of claim 8, wherein controlling the acceleration of the plunger through the lipoaspirate comprises permitting the hydraulic mechanism to provide a dampening effect and slow motion of the first filter element through the lipoaspirate.
10. The method of claim 1, further comprising observing separation of the cellular components of the lipoaspirate from the non-cellular components of the lipoaspirate and stopping movement of the first filter element relative to the second filter element when a desired degree of separation is achieved.
11. The method of claim 1, wherein the first filter element has a pore size different from a pore size of the second filter element.
12. The method of claim 1, wherein the first filter element is configured to separate blood/tumescent fluids from cellular materials in the lipoaspirate.
13. The method of claim 1, wherein the second filter element is configured to separate oils from cellular materials in the lipoaspirate.
14. A method for treating lipoaspirate for use in fat grafting procedures, the method comprising placing the lipoaspirate in a container having an inlet for receiving the lipoaspirate and an outlet for dispensing and removal of desired materials from the lipoaspirate, both the inlet and the outlet being located on a common side of first and second filter elements, and actuating an activation mechanism which moves the first filter element relative to the second filter element within the container to separate cellular components of the lipoaspirate from non-cellular components of the lipoaspirate.
15. The method of claim 14, wherein the activation mechanism comprises a plunger, the actuating the activation mechanism comprising: slidably coupling the plunger to each of the first and second filter elements in the container; and driving the plunger to move the first filter element relative to the second filter element.
16. The method of claim 15, wherein the activation mechanism comprises a manually operable piston and a mechanically limiting feature coupled to the piston, the method further comprising controlling a rate of separating the cellular components of the lipoaspirate from the non-cellular components using the mechanically limiting feature coupled to the piston.
17. The method of claim 16, wherein controlling the rate of separating comprises at least one of: controlling acceleration of the plunger through the lipoaspirate; or reducing a speed at which the first filter element is moved through the lipoaspirate relative to the second filter element.
18. The method of claim 16, wherein the mechanically limiting feature comprises at least one of a spring or a hydraulic mechanism coupled to the plunger.
19. The method of claim 18, wherein controlling the acceleration of the plunger through the lipoaspirate comprises permitting at least one of the spring or the hydraulic mechanism to provide a dampening effect and slow motion of the first filter element through the lipoaspirate.
20. The method of claim 14, wherein the first filter element has a pore size different from a pore size of the second filter element.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] The present disclosure may be more clearly understood and the advantages thereof better appreciated by considering the below Detailed Description and accompanying Drawings of which:
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023] Turning now to
[0024] The operation of the device 10 is shown in
[0025] Lipoaspirate 24 is brought into canister 12, for example, drawn into the canister 12 by vacuum mechanism 28 through inlet 14 (
[0026] The filter screens may comprise any number of suitable materials capable of separating components of the lipoaspirate.
[0027] Advantageously, the present device 10 allows separation of lipoaspirate to a desired degree. For example, it may be desirable in certain circumstances, as determined by the physician/operator, to remove a portion of the liquids, for example, oils, from the viable cells, leaving a minor amount or desired percentage of oil in the lipoaspirate for promoting fat graft viability. The simplicity of device 10 allows the physician/operator to control the degree or amount of separation. To further facilitate this feature, the canister 12 may be structured or made of a material, for example, a transparent polymer, that allows the physician/operator to view the content of the canister 12.
[0028] As the filter screens 20a, 20b are driven through the lipoaspirate, the lipoaspirate is separated into various components. For example, blood/tumescent fluid 24a are forced through first filter 20a, while oil 24b is forced through the second filter 20b. (
[0029]
[0030] Device 110 is similar to device 10, with a major distinction being that device 110 includes a single plunger 122 rather than multiple plungers, and a fixed filter screen 120a. Device 110 includes first and second screens 120a, 120b for separating blood/fluid and oils from fat cells. In this embodiment, the first filter screen 120a is fixed within the canister 112, while second filter screen 120b is movable in canister 112 by means of plunger 122. Outlet 116 may be positioned on an upstream side of fixed filter 120a, as shown. The physician/operator causes separation of lipoaspirate within the canister 112 by pressing on the plunger 122. Movement of second filter screen 120b into the lipoaspirate causes separation of the lipoaspirate as described elsewhere herein, leaving viable fat cells between the first and second filter screens 120a, 120b, which can be removed from canister via outlet 116.
[0031]
[0032] Device 210 includes inlet 214 and outlet 216 both located on a common side of first and second filter screens 220a, 220b, for example, at a bottom side of the canister 212. This arrangement may eliminate the sensitivity associated with placing the inlet and outlet valves on the canister in a specific location (which may be dependent on how much and the type of lipoaspirate that is sampled. This arrangement ensures that all incoming fluid is below both filter screens 220a, 220b, and allows for effective drainage of tumescent fluid, which has a relatively high density, followed by complete removal of viable fat.
[0033] Exemplary operation of device 210 is illustrated in
[0034] Turning now to
[0035] In another aspect of the disclosure, a method for treating lipoaspirate for use in fat grafting procedures is provided wherein the method comprises containing lipoaspirate in a container, the container including a first filter element and a second filter element, and moving the first filter element relative to a second filter element within the container to separate cellular components of the lipoaspirate from non-cellular components of the lipoaspirate. As mentioned elsewhere herein, the first filtering element may have a pore size different from a pore size of the second filtering element. Further, in some embodiments the first filtering element is capable of separating blood/tumescent fluids from cellular materials in lipoaspirate, and the second filtering element is capable of separating oils from cellular materials in lipoaspirate. In some embodiments, the container allows for viewing of the lipoaspirate during the separation, and the method may involve the step of observing the separation and stopping the moving when a desired degree of separation is achieved.
[0036] While this disclosure has been described with respect to various specific examples and embodiments, it is to be understood that the disclosure is not limited thereto and that it can be variously practiced within the scope of the disclosure.