MULTILAYER HYDRODYNAMIC SHEATH FLOW STRUCTURE
20200317453 ยท 2020-10-08
Inventors
- John R. Gilbert (Brookline, MA, US)
- Manish Deshpande (Canton, MA, US)
- Bernard Bunner (Watertown, MA, US)
Cpc classification
B07C5/00
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/0673
PERFORMING OPERATIONS; TRANSPORTING
B65G51/00
PERFORMING OPERATIONS; TRANSPORTING
B07C5/34
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0864
PERFORMING OPERATIONS; TRANSPORTING
B01F33/3011
PERFORMING OPERATIONS; TRANSPORTING
B01L2400/0487
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502776
PERFORMING OPERATIONS; TRANSPORTING
B65G51/08
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0816
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/0636
PERFORMING OPERATIONS; TRANSPORTING
B01J2219/0086
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65G51/08
PERFORMING OPERATIONS; TRANSPORTING
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A microfabricated sheath flow structure for producing a sheath flow includes a primary sheath flow channel for conveying a sheath fluid, a sample inlet for injecting a sample into the sheath fluid in the primary sheath flow channel, a primary focusing region for focusing the sample within the sheath fluid and a secondary focusing region for providing additional focusing of the sample within the sheath fluid. The secondary focusing region may be formed by a flow channel intersecting the primary sheath flow channel to inject additional sheath fluid into the primary sheath flow channel from a selected direction. A sheath flow system may comprise a plurality of sheath flow structures operating in parallel on a microfluidic chip.
Claims
1. A microfabricated sheath flow structure for suspending a stream of particles in a sheath fluid, comprising: a primary sheath flow channel for conveying a sheath fluid, wherein the primary sheath flow channel has a width and a height; a sample inlet intersecting the primary sheath flow channel at a sample injection site for injecting a stream of particles into the sheath fluid conveyed through the primary sheath flow channel; a primary focusing region downstream of the sample injection site that focuses the stream of particles in at least a vertical direction; and a secondary focusing region downstream of the primary focusing region that focuses the stream particles in at least a horizontal direction.
2. The microfabricated sheath flow structure of claim 1, wherein the primary focusing region further focuses in a horizontal direction.
3. The microfabricated sheath flow structure of claim 1, wherein the secondary focusing region further focuses in a vertical direction.
4. The microfabricated sheath flow structure of claim 1, wherein a height of the primary sheath flow channel is reduced in the primary focusing region to produce the vertical focusing.
5. The microfabricated sheath flow structure of claim 3, wherein a height of the primary sheath flow channel is reduced in the secondary focusing region to produce the vertical focusing.
6. The microfabricated sheath flow structure of claim 5, wherein the reduction in height in the secondary focusing region is a taper.
7. The microfabricated sheath flow structure of claim 1, wherein the primary sheath flow channel tapers in the secondary focusing region to produce the horizontal focusing.
8. The microfabricated sheath flow structure of claim 2, wherein the primary sheath flow channel tapers in the primary focusing region to produce the horizontal focusing.
9. The microfabricated sheath flow structure of claim 1, wherein the primary focusing region further focuses in a horizontal direction, and wherein the secondary focusing region further focuses in a vertical direction.
10. The microfabricated sheath flow structure of claim 1, further comprising a particle sorting system downstream of the secondary focusing region and operatively coupled to the primary sheath flow channel.
11. The microfabricated sheath flow structure of claim 1, further comprising a detector for analyzing the particles downstream of the secondary focusing region and operatively coupled to the primary sheath flow channel.
12. A microfabricated sheath flow structure for suspending a stream of particles in a sheath fluid, comprising: a primary sheath flow channel for conveying a sheath fluid, wherein the primary sheath flow channel has a width and a height; a sample inlet intersecting the primary sheath flow channel at a sample injection site for injecting a stream of particles into the sheath fluid conveyed through the primary sheath flow channel; a primary focusing region downstream of the sample injection site that focuses the stream of particles in at least a vertical direction; a secondary focusing region downstream of the primary focusing region, wherein the height and width both reduce to between 50 and 150 micrometers at an end of the secondary focusing region, thereby to focus the stream of particles vertically and horizontally.
13. The microfabricated sheath flow structure of claim 12, wherein the reductions in height and width in the secondary focusing region are formed by tapers.
14. The microfabricated sheath flow structure of claim 12, further comprising a particle sorting system downstream of the secondary focusing region and operatively coupled to the primary sheath flow channel.
15. The microfabricated sheath flow structure of claim 12, further comprising a detector for analyzing the particles downstream of the secondary focusing region and operatively coupled to the primary sheath flow channel.
16. A microfabricated sheath flow structure for suspending a stream of particles in a sheath fluid, comprising: a primary sheath flow channel for conveying a sheath fluid, wherein the primary sheath flow channel has a width and a height; a sample inlet intersecting the primary sheath flow channel at a sample injection site for injecting a stream of particles into the sheath fluid conveyed through the primary sheath flow channel, a taper formed in a portion of the primary sheath flow channel for surrounding the stream of particles with sheath fluid; a primary focusing region downstream of the sample inlet, wherein the height of the primary sheath flow channel is reduced in the primary focusing region to produce vertical focusing; and a secondary focusing region downstream of the primary focusing region, wherein the height of the primary sheath flow channel is reduced in the secondary focusing region to produce vertical focusing, and wherein the primary sheath flow channel tapers in the secondary focusing region to produce horizontal focusing.
17. The microfabricated sheath flow structure of claim 16, wherein the height of the primary sheath flow channel is reduced in the primary focusing region by changing a height of a top channel wall and a height of a bottom channel wall.
18. The microfabricated sheath flow structure of claim 17, wherein the reduction in height in the secondary focusing region is formed by a taper.
19. The microfabricated sheath flow structure of claim 16, wherein the height of the primary sheath flow channel is reduced in the secondary focusing region by changing a height of a top channel wall and a height of a bottom channel wall.
20. A method of sorting cells, comprising the steps of: conveying a sheath fluid through a primary sheath flow channel; obtaining a sample of cells; injecting the sample into the sheath fluid using a sample inlet intersecting the primary sheath flow channel; focusing the sample in at least a vertical direction in a primary focusing region downstream of the sample inlet; focusing the sample in at least a horizontal direction in a secondary focusing region downstream of the primary focusing region; sorting the cells in the sample downstream of the secondary focusing region; and collecting the sorted cells.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DETAILED DESCRIPTION OF THE INVENTION
[0030] The present invention provides a system and method for producing a sheath flow in a flow channel, such as a microchannel. The present invention will be described below relative to illustrative embodiments. Those skilled in the art will appreciate that the present invention may be implemented in a number of different applications and embodiments and is not specifically limited in its application to the particular embodiments depicted herein.
[0031] As used herein, the term microfluidic refers to a system or device for handling, processing, ejecting and/or analyzing a fluid sample including at least one channel having microscale dimensions.
[0032] The terms channel and flow channel as used herein refers to a pathway formed in or through a medium that allows for movement of fluids, such as liquids and gases. A microchannel refers to a channel in the microfluidic system preferably have cross-sectional dimensions in the range between about 1.0 m and about 500 n, preferably between about 25 n and about 250 n and most preferably between about 50 m and about 150 n. One of ordinary skill in the art will be able to determine an appropriate volume and length of the flow channel. The ranges are intended to include the above-recited values as upper or lower limits. The flow channel can have any selected shape or arrangement, examples of which include a linear or non-linear configuration and a U-shaped configuration.
[0033]
[0034] According to one embodiment, the microfabricated sheath flow structure is formed on a microfluidic chip and the primary sheath flow channel and other flow channels formed therein are microchannels having microscale dimensions. However, one skilled in the art will recognize that the sheath flow structure may alternatively have larger dimensions and be formed using flow channels having cross-sectional dimensions greater than 500 m. The illustrative sheath flow structure can be fabricated in glass, plastics, metals or any other suitable material using microfabrication, injection molding/stamping, machining or other suitable fabrication technique.
[0035] After introduction of the sample into the sheath fluid, a primary focusing region 17 accelerates and focuses the sheath fluid around the injected sample. Preferably, the primary focusing region 17 focuses the sheath fluid away from the sides and bottom of the sample. A secondary focusing region 19, disposed downstream of the primary focusing region 17 along the primary sheath flow channel, provides additional focusing of the sheath fluid around the sample after the primary focusing region performs the primary focusing. Preferably, the secondary focusing region 19 focuses the sample in a vertical direction from above the sample.
[0036] According to an illustrative embodiment, the combination of the primary focusing region 17 and the secondary focusing region 19 provides three-dimensional focusing of the sheath fluid around the sample. The resulting sheath flow is sample-focused hydrodynamically on all sides of the sample away from the walls of the primary sheath flow channel 12, with the sample being suspended as a focused core in the approximate center of the channel.
[0037] The secondary focusing region 19 passes the resulting sheath flow in the primary sheath flow channel 12 to a particle sorting system or other microfluidic system or component in fluid communication with an outlet 19a of the secondary focusing region 19. The microfluidic system for receiving the sheath flow may be formed on the same chip or substrate as the sheath flow structure or a different substrate in fluid communication with the sheath flow structure 10.
[0038] According to one embodiment, the sheath flow structure may be formed using a plurality of stacked layers. For example,
[0039] While the illustrative two-layer sheath flow structure 100 injects the sheath flow and sample particles from a top surface of the structure, one skilled in the art will recognize that the sheath inlet 11 and sample inlet 15 can be provided in any suitable location and have any suitable size and configuration.
[0040] The primary focusing region 17 in the two-layer sheath flow structure 100 of
[0041] In the embodiment shown in
[0042] In the primary focusing region 17, the sample particles injected into the sheath flow are focused away from the sides and bottom by the sheath flow. As shown, the outlet of the sample flow channel 16 is in substantially the middle of the primary focusing region 17, between the outlets of the subchannels 12a, 12b, such that the particles are surrounded by sheath fluid flowing from the subchannels on both sides of the injected particles and centralized within the sheath fluid flow. The sheath flow channel 12 in the primary focusing region then tapers from a relatively wide width W at the outlets of the subchannels 12a, 12b to a smaller width W to force the sheath fluid around the suspended sample particles.
[0043] After suspension of the sample particles, the sheath flow then flows from the primary focusing region 17 through the sheath flow channel 12, which forms the secondary focusing region 19 downstream of the primary focusing region 17. According to an illustrative embodiment, the secondary focusing region 19 utilizes sheath fluid to provide secondary focusing of the sheath flow in a vertical direction after the initial focusing provided by the primary focusing region 17. For example, as shown in
[0044] As shown, the inlets to the secondary sheath channels 13a, 13b, respectively, may intersect the primary sheath flow channel 12 in an intermediate upstream region between the sheath inlet 11 and the outlet of the sample channel 16. Branch points 24a, 24b connect each of the secondary sheath channels 13a, 13b to the primary channel 12 to divert a portion of the sheath fluid from the primary sheath flow channel to each of the secondary sheath channels 13a, 13b, respectively. The diverted sheath flow then flows to the secondary focusing region 19, where the outlets of the secondary sheath channels 13a, 13b intersect the primary sheath flow channel 12. Preferably, the outlets of both secondary sheath channels extend above and substantially parallel to the fluid flow in the primary sheath flow channel 12 in the vicinity of the secondary focusing region 19. In this manner, secondary sheath fluid from the secondary sheath channels 13a, 13b enters the primary sheath flow channel 12 from the same side as the sample, compressing the suspended sample away from the upper wall of the channel 12 (i.e., in the other direction from the main sheath of fluid around the particle).
[0045] In the illustrative embodiment, branch points 24a, 24b extend substantially transverse or perpendicular to the primary sheath flow channel, while sheath channels 13a, 13b connected to the branch points 24a, 24b, respectively, extend substantially parallel to the primary sheath flow channel 12. Connection branches 25a, 25b for connecting the sheath channels 13a, 13b, respectively, to the primary sheath flow channel in the secondary focusing region 19 may be parallel to the branch points 24a, 24b to create a flow path that is substantially reverse to the direction of the flow path through the branch points 24a, 24b, while the outlets inject the secondary sheath fluid along a path that is above and substantially parallel to fluid flow in the primary sheath flow channel 12.
[0046] In the embodiment of
[0047] While the illustrative embodiment includes two branch points 24a, 24b, each connecting to a respective secondary sheath flow channel 13a, 13b extending on opposite sides of the primary sheath flow channel 12, one skilled in the art will recognize that the sheath flow structure of the present invention may include any suitable number of secondary sheath channels having any suitable size, location and configuration.
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[0049] The substrate layers 10a, 10b can be machined, molded or etched to form the channels inlets and focusing regions. Suitable materials for forming the substrates 10a, 10b include, but are not limited to silicon wafer, plastic, glass and other materials known in the art.
[0050]
[0051] In the illustrative embodiment, the flow resistance ratio between the primary sheath flow channel 12 and the branched secondary sheath channels 13a, 13b is calibrated to position the core at specific region in the downstream sheath flow channel. The desirable core flow location may or may not be at center of downstream channel.
[0052] According to an alternate embodiment of the invention, shown in
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[0054] According to another embodiment of the invention, shown in
[0055] While the embodiment of
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[0057] Each of the channel inlets 11a, 11b, 11c or 11d for each sheath flow structure may be aligned, as shown in
[0058] In the embodiment shown in
EXEMPLIFICATION OF THE INVENTION
[0059] The parallelized sheath flow structure 800 of
[0060] The resulting sheath flow was then observed using a fluorescent microscope over a period of about eight seconds, and the results are shown in
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[0063] The sheath flow structure of the illustrative embodiment of the invention provides significant advantages not found in sheath flow structures of the prior art. The illustrative sheath flow structure provides three-dimensional hydrodynamic focusing using a single sheath fluid inlet. The illustrative sheath flow structure has a compact structure designed for manufacturability and requires only two structural layers in fabrication. Because the entrance to the sheath flow channels are only required on one side of the structure, the fluidic input/output structures can be simplified. Furthermore, the core flow vertical location is controllable by geometric (lithographic) resistance ratios between adjacent channels. The illustrative sheath flow structure provides accurate results that are largely insensitive to alignment between adjacent layers, as the only alignment required is to maintain the components in adjacent layers along the same centerline. The reentrant flow downstream of sample injection is then symmetric. In addition, the long path length of the branching upper sheath channels 13a, 13b results in negligible resistance ratio (therefore flow rate ratio) shift between two branch arms through misalignment of centerlines.
[0064] The present invention has been described relative to an illustrative embodiment. Since certain changes may be made in the above constructions without departing from the scope of the invention, it is intended that all matter contained in the above description or shown in the accompanying drawings be interpreted as illustrative and not in a limiting sense.
[0065] It is also to be understood that the following claims are to cover all generic and specific features of the invention described herein, and all statements of the scope of the invention which, as a matter of language, might be said to fall therebetween.