ADIPOSE TISSUE SIZING SYSTEMS AND METHODS
20190255229 ยท 2019-08-22
Inventors
Cpc classification
A61M1/86
HUMAN NECESSITIES
C12M45/02
CHEMISTRY; METALLURGY
A61M1/60
HUMAN NECESSITIES
C12M45/00
CHEMISTRY; METALLURGY
C12M47/00
CHEMISTRY; METALLURGY
International classification
Abstract
An adipose tissue sizing device includes a first tube having a hollow inner portion, a sidewall radially extending around the hollow inner portion, a first end, and a second end opposite the first end. An inlet interface in fluid communication with the hollow inner portion of the first tube is configured to receive adipose tissue particles, and to allow the adipose tissue particles to pass into the hollow inner portion of the first tube. A filtering assembly, having a plurality of apertures therein, is positioned in the hollow inner portion of the first tube in a flow pathway of the adipose tissue particles, and is configured to resize the adipose tissue particles passing through the apertures according to a size of the apertures. An outlet interface in fluid communication with the hollow inner portion of the first tube is configured to allow the resized adipose tissue particles to pass out of the hollow inner portion of the first tube.
Claims
1. An adipose tissue sizing device, comprising: a first tube elongate along a first direction, the first tube having a hollow inner portion, a sidewall radially extending around the hollow inner portion, a first end, and a second end opposite the first end; an inlet interface in fluid communication with the hollow inner portion of the first tube, configured to receive adipose tissue particles, and allow the adipose tissue particles to pass into the hollow inner portion of the first tube; a filtering assembly having a plurality of apertures therein, the filtering assembly being positioned in the hollow inner portion of the first tube in a flow pathway of the adipose tissue particles, and being configured to resize the adipose tissue particles passing through the apertures thereof according to a size of the apertures; an outlet interface in fluid communication with the hollow inner portion of the first tube, configured to allow the resized adipose tissue particles to pass out of the hollow inner portion of the first tube.
2. The device of claim 1, wherein the filtering assembly comprises a second tube having the plurality of apertures in a radially outer surface thereof, the second tube having a first end coupled to the inlet interface and a second end coupled to the outlet interface, and being positioned in the hollow inner portion of the first tube.
3. The device of claim 2, wherein: the inlet interface is configured to receive adipose tissue particles and direct the adipose tissue particles into an interior of the second tube; the second end of the second tube is closed, so that the adipose tissue particles directed to the interior of the second tube pass through the apertures in the radially outer surface of the second tube into a space between the second tube and the first tube; and the outlet interface is configured to allow the resized adipose tissue particles to pass out of the space between the second tube and the first tube in the hollow inner portion of the first tube.
4. The device of claim 2, wherein: the inlet interface is configured to receive adipose tissue particles and direct the adipose tissue particles into a space between the second tube and the first tube; the first end of the second tube is closed, the second end of the second tube is open, and the second end of the first tube is closed in the space between the second tube and the first tube, so that the adipose tissue particles directed to the space between the second tube and the first tube pass through the apertures in the radially outer surface of the second tube into an interior of the second tube; and the outlet interface is configured to allow the resized adipose tissue particles to pass out of the interior of the second tube.
5. The device of claim 3, wherein the inlet interface comprises: a first threaded portion releasably connected to the first end of the first tube; a second threaded portion; a filter interface nut having a third threaded portion releasably connected to the second threaded portion of the inlet interface, a nipple portion for coupling to the first end of the second tube, and a through-passage extending through the nipple portion into the interior of the second tube, in fluid communication with an input to the inlet interface.
6. The device of claim 5, wherein the outlet interface comprises: a fourth threaded portion releasably connected to the second end of the first tube; a fifth threaded portion; and a filter interface nut having a sixth threaded portion releasably connected to the fifth threaded portion of the outlet interface, a nipple portion having a closed end for coupling to the second end of the second tube, and apertures located downstream of the second end of the second tube, in fluid communication with the space between the second tube and the first tube.
7. The device of claim 4, wherein the inlet interface comprises a first threaded portion releasably connected to the first end of the first tube; a second threaded portion; a filter interface nut having a third threaded portion releasably connected to the second threaded portion of the inlet interface, a nipple portion having a closed end for coupling to the first end of the second tube, and apertures located upstream of the first end of the second tube, in fluid communication with the space between the second tube and the first tube.
8. The device of claim 7, wherein the outlet interface comprises: a fourth threaded portion releasably connected to the second end of the first tube; a fifth threaded portion; a filter interface nut having a sixth threaded portion releasably connected to the fifth threaded portion of the outlet interface, a nipple portion for coupling to the second end of the second tube, and a through-passage extending through the nipple portion into the interior of the second tube, in fluid communication with an output of the outlet interface.
9. The device of claim 1, wherein the filtering assembly comprises a filtering disk positioned in the hollow inner portion of the first tube in the flow pathway of the adipose tissue particles, the filtering disk having a flat surface with the plurality of apertures extending therethrough that faces the flow pathway of the adipose tissue particles.
10. The device of claim 1, wherein the plurality of apertures have a diameter of 0.1-4.0 mm.
11. The device of claim 1, wherein the first tube has an outer diameter of about 0.75 inches (about 19.05 millimeters).
12. The device of claim 2, wherein the first tube has an outer diameter of about 0.75 inches (about 19.05 millimeters), and the second tube has an outer diameter of about 0.259 inches (about 6.58 millimeters).
13. The device of claim 1, wherein the inlet interface comprises a hose barb for connection to a tissue harvesting tool via tubing.
14. The device of claim 1, wherein the inlet interface comprises a threaded interface or a luer lock interface for connection to a tissue harvesting tool.
15. A dual-stage liposuction system comprising: a tissue harvesting tool configured for harvesting adipose tissue particles from a patient; a adipose tissue sizing device of claim 1, having the inlet interface coupled to the tissue harvesting tool for receiving the harvested adipose tissue particles; a container coupled to the outlet interface of the adipose tissue sizing device to receive resized adipose tissue particles therefrom, the container being couplable to a pump to provide suction to aspirate the adipose tissue particles through the system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010] These and other features, aspects, and advantages are described below with reference to the drawings, which are intended to illustrate, but not to limit, the invention. In the drawings, like reference characters denote corresponding features consistently throughout similar embodiments.
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DETAILED DESCRIPTION
[0028] Although certain embodiments and examples are disclosed below, inventive subject matter extends beyond the specifically disclosed embodiments to other alternative embodiments and/or uses, and to modifications and equivalents thereof. Thus, the scope of the claims appended hereto is not limited by any of the particular embodiments described below. For example, in any method or process disclosed herein, the acts or operations of the method or process may be performed in any suitable sequence and are not necessarily limited to any particular disclosed sequence. Various operations may be described as multiple discrete operations in turn, in a manner that may be helpful in understanding certain embodiments; however, the order of description should not be construed to imply that these operations are order dependent. Additionally, the structures, systems, and/or devices described herein may be embodied as integrated components or as separate components.
[0029] For purposes of comparing various embodiments, certain aspects and advantages of these embodiments are described. Not necessarily all such aspects or advantages are achieved by any particular embodiment. Thus, for example, various embodiments may be carried out in a manner that achieves or optimizes one advantage or group of advantages as taught herein without necessarily achieving other aspects or advantages as may also be taught or suggested herein.
Filter Disk Embodiment(s)
[0030] As shown in
[0031] According to
[0032] In order to size the fat aspirate particles, the device 10 may include various components located within the tube 12. Now, with reference to
[0033] Furthermore, the chamber 30 may also include a middle portion 44 located between the first and second portions 36, 38. Within the middle portion 44, the chamber tube 30 may have a plurality of tube apertures 46 that are radially spaced apart from each other. Any one of the apertures of the plurality of tube apertures 46 may serve as an entry or exit point for fat aspirate particles to enter or exit the side of the device 10.
[0034] Now with reference to
[0035] While the device 10 may have primary entry and exit points at luer ports 24, 28, the device 10 may also include luer ports located along the side of the tube 12. As illustrated in
[0036] As illustrated in
[0037] As shown in
[0038] Specific embodiments are now described. As shown in
[0039] As shown in
[0040] With respect to device 10b, the first luer port 80 may be in direct fluid communication with an aperture of the plurality of tube apertures 46b of the second chamber tube 30b. As such, the first luer port 80 may allow fat aspirate particles to travel through the first flat filtering disk 50 and then egress the device 10b via the aperture of the plurality of tube apertures 46b and the first side luer port 90, or egress at the outlet luer port 28.
[0041] The device 10b may also include a second flat filtering disk 52 slideably received within the hollow inner portion 14 and located between the second and third chamber tubes 30b, 30c. The second flat filtering disk 52 may have a second plurality of disk apertures 62 each substantially defining a second aperture diameter 72. The inlet luer port 24 and the outlet luer port 28 may both extend along the first direction X, and the first luer port 80 may thereby extend along a second direction Y that is perpendicular to the first direction X. As well, the device 10b may include a first luer port tube 90 coupled to the first luer port 80.
[0042] Now with respect to
[0043] Device 10c also includes a third flat filtering disk 54 slideably received within the hollow inner portion 14 and located between the third and fourth chamber tubes 30c, 30d. The third flat filtering disk 54 may have a third plurality of disk apertures 64 each substantially defining a third aperture diameter 74. Accordingly, the device 10c also includes a second luer port 82 located on the sidewall 16 and spaced from the first luer port 80. The second luer port 82 is in direct fluid communication with an aperture of the plurality of tube apertures 46c of the third chamber tube 30c. Naturally, the second luer port 82 may allow fat aspirate particles to travel through the first and second flat filtering disks 50, 52 and then egress the device 10c via the aperture of the plurality of tube apertures 46c and the second side luer port 92, or egress at the first luer port 90 or the outlet luer port 28. As shown in
[0044] As shown in
[0045] Accordingly, device 10d also includes a fourth flat filtering disk 56 slideably received within the hollow inner portion 14 and located between the fourth and fifth chamber tubes 30d, 30e. The fourth flat filtering disk 56 may have a fourth plurality of disk apertures 66 each substantially defining a fourth aperture diameter 76. Device 10d also includes a third luer port 84 located on the sidewall 16 and spaced from the first and second luer ports 80, 82. The third luer port 84 being in direct fluid communication with an aperture of the plurality of tube apertures 46d of the fourth chamber tube 30d. As such, the third luer port 84 may allow fat aspirate particles to travel through the first, second, and third flat filtering disks 50, 52, 54 and then egress the device 10d via the aperture of the plurality of tube apertures 46d and the third side luer port 94, or egress at the first luer port 90, second luer port 92, or the outlet luer port 28. Moreover, as shown in
[0046] With reference to
[0047] As such, the device 10e also includes a fifth flat filtering disk 58 slideably received within the hollow inner portion 14 and located between the fifth and sixth chamber tubes 30e, 30f. The fifth flat filtering disk 58 has a fifth plurality of disk apertures 68 each substantially defining a fifth aperture diameter 78. As well, the device 10e comprises a fourth luer port 86 located on the sidewall 16 and spaced from the first, second, and third luer ports 80, 82, 84. Furthermore, the device 10e may include a fourth luer port tube 96 coupled to the fourth luer port 86.
[0048] While this disclosure has described and illustrated embodiments having five flat filtering disks 50, 52, 54, 56, 58 and six chamber tubes 30a, 30b, 30c, 30d, 30e, 30f, it should be appreciated that this not limiting in anyway. The device may include greater than five flat filtering disks and greater than six chamber tubes. For example, some embodiments may include nine flat filtering disks and ten chamber tubes.
[0049] The fourth luer port 86 may be in direct fluid communication with an aperture of the plurality of tube apertures 46e of the fifth chamber tube 30e. As shown in
[0050] Furthermore, it should be appreciated that the first, second, third, and fourth luer ports 80, 82, 84, 86 may be located along any portion of the tube 12 and extend in any direction with respect to each other. For example, in some embodiments, the second and fourth luer ports 82, 86 are located on an opposite side of the sidewall 16e of the tube 12e with respect to the first and third luer ports 80, 84.
[0051] The components listed throughout this disclosure may be coupled together via a variety of connection types. As shown in
[0052] Additionally, the device 10 may be equipped with a plurality of seals 42 coupled to the first and second portions 36, 38 of the first, second, third, fourth, fifth, and sixth chamber tubes 30a, 30b, 30c, 30d, 30e, 30f. The plurality of seals 42 are arranged and configured to seal against an outer surface of the first, second, third, fourth, fifth, and sixth chamber tubes 30a, 30b, 30c, 30d, 30e, 30f and an inner sidewall of the tube 12 to prevent liquid and fat from passing across a seal of the plurality of seals 42. This may ensure that all fat and liquid is forced to pass through the flat filtering disks 50, 52, 54, 56, 58 for appropriate sizing. In some embodiments, the plurality of seals 42 comprises a plurality of O-rings.
Filter Tube Embodiment(s)
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[0054] A filter assembly, in the form of filter tube 250, is positionable inside the hollow inner portion 214 of the tube 212, and is connectable to the inlet interface 230 via filter interface nut 240, and to the outlet interface 260 via another filter interface nut 240. The filter interface nut 240 includes a nut portion 242, a female threaded portion 244 configured to mate with the male threaded portion 238 of the inlet interface 230 (or the male threaded portion 268 of the outlet interface 260), and a nipple portion 246 configured to fit together with the filter tube 250, such as by a friction fit in some embodiments.
[0055] Two alternative versions of the filter interface nut 240 are shown in
[0056] The adipose tissue sizing device 210 is configured so that complementary filter interface nut versions are employed at the inlet interface 230 and the outlet interface 260. That is, in an embodiment where the first version of the filter interface nut 240a is employed at the inlet interface 230, the second version of the filter interface nut 240b is employed at the outlet interface 260. Conversely, in an embodiment where the second version of the filter interface nut 240b is employed at the inlet interface 230, the first version of the filter interface nut 240a is employed at the outlet interface 260.
[0057] In the embodiment employing the first version of the filter interface nut 240a at the inlet interface 230, adipose tissue particles received through the inlet interface 230 pass through the through-passage 248a into the interior of the filter tube 250, and then pass from the interior of the filter tube 250 through the apertures 252 of the filter tube 250 into the radial space between the filter tube 250 and the sidewall 216 of the tube 212. In this embodiment, the second version of the filter interface nut 240b is provided at the outlet interface 260, which closes the distal end 254 of the filter tube 250 (via closed nipple portion 246), so that the adipose tissue particles are forced to pass from the interior of the filter tube 250 through the apertures 252 of the filter tube 250 into the radial space between the filter tube 250 and the sidewall 216 of the tube 212. The adipose tissue particles are effectively filtered by the apertures 252 of the filter tube 250 to a size that is determined by the size of the apertures 252, and then may exit from the second end 220 of the tube 212 through apertures 248b in filter interface nut 240b, and into/through outlet interface 260.
[0058] In the embodiment employing the second version of the filter interface nut 240b at the inlet interface 230, adipose tissue particles received through the inlet interface 230 pass through the apertures 248b upstream of the closed nipple portion 246 into the radial space between the filter tube 250 and the sidewall 216 of the tube 212, and then pass from this radial space region exterior to the filter tube 250 through the apertures 252 of the filter tube 250 into the interior of filter tube 250. In this embodiment, the first version of the filter interface but 240a is provided at the outlet interface 260, which results in the distal end 254 of the filter tube 250 being open by virtue of the open through-passage 248a in the nipple portion 246. The adipose tissue particles are effectively filtered by the apertures 252 of the filter tube 250 to a size that is determined by the size of the apertures 252, and then may exit from the open distal end 254 of the filter tube 250 through the through-passage 248a of filter interface nut 240, and out the second end 220 of the tube 212 into/through outlet interface 260.
[0059] The filter interface nut 240 may be composed of any of a number of different materials. In one example, the filter interface nut 240 may be made of polyether ether ketone (PEEK). In another example, the filter interface nut 240 may be made of stainless steel. Other materials could also be used to make the filter interface nut 240 in other embodiments.
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[0061] In operation, the adipose tissue sizing device 210 may be used in a number of different methods or applications. In one example, the adipose tissue sizing device 210 may be used in a two-stage liposuction process, as illustrated in
[0062] In other examples of operation of the adipose tissue sizing device 210, adipose tissue particles may be input through inlet interface 230 from a syringe or another storage container, instead of being directly input from a tissue harvesting procedure. Aspirating pressure to force the movement of the adipose tissue particles may be provided by a powered aspirator/vacuum pump, by operation of one or more syringes, or by other methods.
[0063] The apertures 252 may be formed in the filter tube 250 by laser drilling in some embodiments. Example sizes/diameters of the apertures 252 may be as large as 4.0 millimeters, as small as 0.2 millimeters, any size/diameter in between, or sizes/diameters larger than 4.0 millimeters or smaller than 0.2 millimeters, depending on the application in which the adipose tissue sizing device 210 is used.
[0064] In one example, the tube 212 may have an outer diameter of about 0.75 inches (about 19.05 millimeters), and the filter tube 250 may have an outer diameter of about 0.259 inches (about 6.58 millimeters). In other examples, the tube 212 and the filter tube 250 may have larger or smaller radial dimensions. In some embodiments, the tube 212 and the filter tube 250 are composed of stainless steel.
[0065] In some embodiments, the tube 212 is designed to be a reusable components, while the filter tube 250 is designed to be a single-use, disposable component. Filter interface nut 240 may also be a reusable component in some embodiments. In certain embodiments, filter tube 250 may also be a reusable component. In this context, components described as reusable are capable of being cleaned and sterilized multiple times, such as be a sterilizing autoclave, by enzyme treatment, or by other methods.
Interpretation
[0066] The term approximately means that something is almost, but not completely, accurate or exact; roughly. Additionally, the term substantially means to a great or significant extent; for the most part, essentially.
[0067] None of the steps described herein is essential or indispensable. Any of the steps can be adjusted or modified. Other or additional steps can be used. Any portion of any of the steps, processes, structures, and/or devices disclosed or illustrated in one embodiment, flowchart, or example in this specification can be combined or used with or instead of any other portion of any of the steps, processes, structures, and/or devices disclosed or illustrated in a different embodiment, flowchart, or example. The embodiments and examples provided herein are not intended to be discrete and separate from each other.
[0068] The section headings and subheadings provided herein are nonlimiting. The section headings and subheadings do not represent or limit the full scope of the embodiments described in the sections to which the headings and subheadings pertain. For example, a section titled Topic 1 may include embodiments that do not pertain to Topic 1 and embodiments described in other sections may apply to and be combined with embodiments described within the Topic 1 section.
[0069] Some of the devices, systems, embodiments, and processes use computers. Each of the routines, processes, methods, and algorithms described in the preceding sections may be embodied in, and fully or partially automated by, code modules executed by one or more computers, computer processors, or machines configured to execute computer instructions. The code modules may be stored on any type of non-transitory computer-readable storage medium or tangible computer storage device, such as hard drives, solid state memory, flash memory, optical disc, and/or the like. The processes and algorithms may be implemented partially or wholly in application-specific circuitry. The results of the disclosed processes and process steps may be stored, persistently or otherwise, in any type of non-transitory computer storage such as, e.g., volatile or non-volatile storage.
[0070] The various features and processes described above may be used independently of one another, or may be combined in various ways. All possible combinations and subcombinations are intended to fall within the scope of this disclosure. In addition, certain method, event, state, or process blocks may be omitted in some implementations. The methods, steps, and processes described herein are also not limited to any particular sequence, and the blocks, steps, or states relating thereto can be performed in other sequences that are appropriate. For example, described tasks or events may be performed in an order other than the order specifically disclosed. Multiple steps may be combined in a single block or state. The example tasks or events may be performed in serial, in parallel, or in some other manner. Tasks or events may be added to or removed from the disclosed example embodiments. The example systems and components described herein may be configured differently than described. For example, elements may be added to, removed from, or rearranged compared to the disclosed example embodiments.
[0071] Conditional language used herein, such as, among others, can, could, might, may, e.g., and the like, unless specifically stated otherwise, or otherwise understood within the context as used, is generally intended to convey that certain embodiments include, while other embodiments do not include, certain features, elements and/or steps. Thus, such conditional language is not generally intended to imply that features, elements and/or steps are in any way required for one or more embodiments or that one or more embodiments necessarily include logic for deciding, with or without author input or prompting, whether these features, elements and/or steps are included or are to be performed in any particular embodiment. The terms comprising, including, having, and the like are synonymous and are used inclusively, in an open-ended fashion, and do not exclude additional elements, features, acts, operations and so forth. Also, the term or is used in its inclusive sense (and not in its exclusive sense) so that when used, for example, to connect a list of elements, the term or means one, some, or all of the elements in the list. Conjunctive language such as the phrase at least one of X, Y, and Z, unless specifically stated otherwise, is otherwise understood with the context as used in general to convey that an item, term, etc. may be either X, Y, or Z. Thus, such conjunctive language is not generally intended to imply that certain embodiments require at least one of X, at least one of Y, and at least one of Z to each be present.
[0072] The term and/or means that and applies to some embodiments and or applies to some embodiments. Thus, A, B, and/or C can be replaced with A, B, and C written in one sentence and A, B, or C written in another sentence. A, B, and/or C means that some embodiments can include A and B, some embodiments can include A and C, some embodiments can include B and C, some embodiments can only include A, some embodiments can include only B, some embodiments can include only C, and some embodiments can include A, B, and C. The term and/or is used to avoid unnecessary redundancy.
[0073] While certain example embodiments have been described, these embodiments have been presented by way of example only, and are not intended to limit the scope of the inventions disclosed herein. Thus, nothing in the foregoing description is intended to imply that any particular feature, characteristic, step, module, or block is necessary or indispensable. Indeed, the novel methods and systems described herein may be embodied in a variety of other forms; furthermore, various omissions, substitutions, and changes in the form of the methods and systems described herein may be made without departing from the spirit of the inventions disclosed herein.