ELECTRIC FIELD PARTICLE SORTING DEVICE
20220266261 · 2022-08-25
Inventors
Cpc classification
B01L2200/0652
PERFORMING OPERATIONS; TRANSPORTING
C12M1/42
CHEMISTRY; METALLURGY
B03C5/026
PERFORMING OPERATIONS; TRANSPORTING
B03C5/005
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502776
PERFORMING OPERATIONS; TRANSPORTING
B03C2201/26
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502761
PERFORMING OPERATIONS; TRANSPORTING
C12N13/00
CHEMISTRY; METALLURGY
International classification
B03C5/00
PERFORMING OPERATIONS; TRANSPORTING
B01L3/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The present invention describes a device for sorting small particles using electric fields. The device described herein comprises one or more electrically conducting structures suspended in a fluid flow stream used to redirect the movement of particles in the flow stream. The electrically conducting structures are longitudinally disposed at a center axis of a fluidic channel. As particles flow in the fluid, electric fields on the suspended conductors move the small particles from one flow region to another, allowing them to be redirected to different endpoints.
Claims
1. A device (100) for sorting particles, the device comprising: a. a tube (110) having a channel (112) therein, wherein the channel (112) is filled with a liquid, said liquid containing at least two types of particles; and b. at least one electrical conductor (114) longitudinally disposed at a center axis in the channel (112); wherein the liquid flows through the channel (112); wherein an electrical signal is applied to the at least one electrical conductor (114) to generate an electric field; wherein the electric field facilitates the sorting of at least one type of particle of the at least two types of particles by pushing the at least one type of particle in one direction along the channel (112).
2. The device (100) of claim 1, wherein the at least two types of particles comprise animal cells, plant cells, or a combination thereof.
3. The device (100) of claim 1, wherein the liquid is water.
4. The device (100) of claim 1, wherein the at least one electrical conductor (114) is a wire.
5. The device (100) of claim 5, wherein the wire is under tension.
6. The device (100) of claim 1, wherein the device (100) further comprises a conductive wall (120) disposed throughout an inner surface of the tube (110).
7. The device (100) of claim 1, wherein the device (100) further comprises a conductive coating disposed throughout an inner surface of the tube (110).
8. The device (100) of claim 1 further comprising a second electrical conductor attached to a side of the channel (112).
9. The device (100) of claim 1, wherein each particle of the at least two types of particles is less than about 100 μm in diameter.
10. A microfluidic device (200), the microfluidic device comprising: a. a top layer (210); b. a channel layer (215) disposed below the top layer (210), wherein a first channel (212) is disposed between the top layer (210) and the channel layer (215); c. a microfluidic channel (206) disposed in the channel layer (215), wherein at least one electrical conductor (214) is disposed at a center axis in the microfluidic channel (206); and d. a bottom layer (220) disposed below the channel layer (215), wherein a second channel (218) is disposed between the channel layer (215) and the bottom layer (220).
11. The microfluidic device (200) of claim 10, wherein the top layer (210) has at least one inlet (202), and the bottom layer (220) has at least one outlet (204).
12. A method for sorting particles, the method comprising: a. providing a device (100) comprising: i. a tube (110) having a channel (112) therein, wherein the channel (112) configured to be filled with a liquid, said liquid containing at least two types of particles; and ii. at least one electrical conductor (114) longitudinally disposed at a center axis in the channel (112); wherein applying an electrical signal to the at least one electrical conductor (114) generates an electric field; wherein the electric field facilitates the sorting of at least one type of particle of the at least two types of particles by pushing the at least one type of particle in one direction along the channel (112); b. applying the electrical signal to the at least one electrical conductor (114), thus generating the electric field; and c. flowing the liquid through the channel (112), wherein when the at least one type of particle of the at least two types of particle flows through the electric field, the electric field pushes the at least one type of particle in one direction along the channel, thereby sorting the at least one type of particle.
13. The method of claim 1, wherein the at least two types of particles comprise animal cells, plant cells, or a combination thereof.
14. The method of claim 1, wherein the liquid is water.
15. The method of claim 1, wherein the at least one electrical conductor (114) is a wire.
16. The method of claim 5, wherein the wire is under tension.
17. The method of claim 1, wherein the device (100) further comprises a conductive wall (120) disposed throughout an inner surface of the tube (110).
18. The method of claim 1, wherein the device (100) further comprises a conductive coating disposed throughout an inner surface of the tube (110).
19. The method of claim 1, wherein the device (100) further comprises a second electrical conductor attached to a side of the channel (112).
20. The method of claim 1, wherein each particle of the at least two types of particles is less than about 100 μm in diameter.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWING(S)
[0018] The features and advantages of the present invention will become apparent from a consideration of the following detailed description presented in connection with the accompanying drawings in which:
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[0027]
DETAILED DESCRIPTION OF THE INVENTION
[0028] Following is a list of elements corresponding to a particular element referred to herein:
[0029] 100 particle sorting device
[0030] 110 tube
[0031] 112 channel
[0032] 114 suspended electrical conductor
[0033] 120 conductive wall
[0034] 200 microfluidic device
[0035] 202 inlet port
[0036] 204 outlet port
[0037] 206 fluidic microchannel
[0038] 210 top layer
[0039] 212 first channel
[0040] 214 suspended electrical conductor
[0041] 215 channel layer
[0042] 218 second channel
[0043] 220 bottom layer
[0044] Referring now to
[0045] In further embodiments, the at least one electrical conductor (114) is disposed at a center axis of the channel (112). The at least one electrical conductor (114) may be a wire and the wire may be under tension. The device (100) may further comprise a conductive wall (120) disposed throughout an inner surface of the tube (110). In some embodiments, a conductive coating may be disposed throughout an inner surface of the tube (110). In some embodiments, the at least one electrical conductor (114) may be attached to a side of the channel (112). In some embodiments, the device (100) may further comprise a second electrical conductor attached to a side of the channel (112). In other embodiments, the device (100) may further comprise a second electrical conductor disposed at a center axis of the channel (112). Each electrical conductor of the one or more electrical conductors may combine to contribute to a single electrical field. Particle movement is driven by the gradient of the electric field and multiple electrodes/conductors may be used to tailor the electric field gradient. This allows multiple different particle populations to be sorted or particle populations to be sorted using different stimuli leading to a sub-population from the primary one. The electrical field generated may be positively charged or negatively charged. In some embodiments, the liquid may contain a second type of particle such that the second type of particle is pushed in a second direction opposite the direction the first type of particle was pushed. In other embodiments, the second type of particle is pushed in the same direction as the first type of particle such that the first type of particle and the second type of particle travel into separate collection chambers. In other embodiments still, the second type of particle may be held in place within the channel as the first type of particle is pushed along the channel. Each particle may be less than about 100 μm in diameter.
[0046] The at least one electrical conductor (114) may be suspended by forming wires under tension, as illustrated in
[0047] Placement of small diameter, cylindrically symmetric wires near the center of a flow stream (as shown in
[0048] Complex geometries of electrical conductors may be produced using multiple electrical conductors. Electrical conductors may be constructed of structurally rigid materials so that they may be formed into useful shapes and suspended without the need for tension. In addition to the use of multiple electrical conductors, additional conductors may be attached or coated on nearby surfaces if more field shaping is required. Particles are moved in response to the electric field gradient. By shaping the field, the movement and speed of the particles can be better controlled and optimized for the separation and specific particles.
[0049] The current invention can be utilized to create complex electric fields in flow systems of any size. This type of structure can be produced in a microfluidic form factor if desired. This small volume format is particularly useful for performing experiments when developing assays that utilize electric fields. In such a case, the suspended conducting elements may be laminated into a small fluidic system to provide the electric fields.
[0050] A cartridge utilizing this invention can be manufactured readily using industry standard processes. There are many ways to construct such a device. For example, the structural components can be injection molded, wiring can be done using wire assembly techniques, and electronic routing can be done with printed circuit board manufacturing (PCB). The use of PCB processing allows low-cost, standard electrical connectors to be attached (such as micro-USB). Additional electronics can be attached if necessary. Additional electronics may comprise microntrollers/control elements for operating fluid flow and electric conductors, electrical signal generators and sensor, and power electronics for providing energy to other additional electronics. Other approaches, such as laminating layers and even conventional assembly are also envisioned.
[0051] In some embodiments, each particle may be less than about 100 μm in diameter. Non-limiting examples of the types of particles include animals cells, plant cells, bacteria, artificially-made particles, fungal cells, biomolecules, naturally derives particles, or a combination thereof. A non-limiting example of a liquid may include water, an enzyme solution, blood, or a combination thereof.
[0052] In some embodiments, the present invention features a microfluidic device (200) for sorting particles. The microfluidic device (200) comprises a top layer (210), a channel layer (215), and a bottom layer (220). A first channel (212) is disposed between the top layer (210) and the channel layer (215). A microfluidic channel (206) is disposed in the channel layer (215), and at least one electrical conductor (214) is disposed in the microfluidic channel (206). A second channel (218) is disposed between the channel layer (215) and the bottom layer (220). In other embodiments, the top layer (210) has at least one inlet (202) and at least one outlet (204). In some embodiments, the bottom layer (220) has at least one inlet (202) and at least one outlet (204). In yet another embodiment, the top layer (210) has at least one inlet (202), and the bottom layer (220) has at least one outlet (204). In some embodiments, the device (100) of the present invention may be incorporated into any microfluidic device design. In some embodiments, the inlet (202) of the microfluidic device (200) may be coupled to an outlet of a separate microfluidic device such that particles in the fluid directed through the separate microfluidic device are sorted. In some embodiments, the at least one outlet (204) of the microfluidic device (200) may be coupled to at least one inlet of at least one separate microfluidic device such that particles in the fluid are sorted prior to entering the at least one separate microfluidic device.
[0053] Referring now to
[0054] As used herein, the term “about” refers to plus or minus 10% of the referenced number. Although there has been shown and described the preferred embodiment of the present invention, it will be readily apparent to those skilled in the art that modifications may be made thereto which do not exceed the scope of the appended claims. Therefore, the scope of the invention is only to be limited by the following claims. In some embodiments, the figures presented in this patent application are drawn to scale, including the angles, ratios of dimensions, etc. In some embodiments, the figures are representative only and the claims are not limited by the dimensions of the figures. In some embodiments, descriptions of the inventions described herein using the phrase “comprising” includes embodiments that could be described as “consisting essentially of” or “consisting of”, and as such the written description requirement for claiming one or more embodiments of the present invention using the phrase “consisting essentially of” or “consisting of” is met.
[0055] The reference numbers recited in the below claims are solely for ease of examination of this patent application, and are exemplary, and are not intended in any way to limit the scope of the claims to the particular features having the corresponding reference numbers in the drawings.