IP Library Granted Patent US 11,841,365
Granted Patent B2
US 11,841,365 · App. 16/930,664 · Granted Dec 12, 2023

Devices, kits, and methods for label-free focusing and/or separation of sub-micron particles

Inventors: Leidong Mao (Watkinsville, GA); Yang Liu (Athens, GA)
Assignee: UNIVERSITY OF GEORGIA RESEARCH FOUNDATION, INC.
G01N33/54366B01L3/50273B01L3/502753B01L3/502761G01N15/1404G01N15/1484B01L2200/0647B01L2400/043G01N2015/1006G01N2015/149G01N2015/1415G01N2015/1486
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Quick Facts
Patent No.
US 11,841,365
App. No.
16/930,664
Granted
Dec 12, 2023
Kind
B2
Abstract

The present disclosure provides devices, kits, and methods for focusing/enriching and/or separating/sorting submicron size particles, including biological entities such as exosomes and other submicron size extracellular vesicles. Devices, kits, and methods of the present disclosure utilize ferrohydrodynamic manipulation to focus populations of submicron particles into a stream for enrichment and/or further sort various sub-populations of submicron particles based on size differences.

Claims (12)

1. A method of enriching and/or sorting unlabeled, sub-micron size particles in a sample comprising a plurality of components, the method comprising:

introducing a mixed sample fluid comprising the sample with the unlabeled, sub-micron size particles and a first ferrofluid into a first fluid inlet at a first end of a microfluidic channel of a multi-stage microfluidic device at a first flow rate, wherein the unlabeled, sub-micron size particles comprise a first and second sub-population of particles, wherein an average diameter of particles in the first sub-population of particles is larger than an average diameter of particles in the second sub-population of particles;

filtering large debris from the mixed sample fluid in a first stage of the device after the first inlet and comprising a filter region having one or more filters configured to separate at least a portion of larger debris from the mixed sample fluid;

introducing a sheathing ferrofluid into a second fluid inlet of the microfluidic device at a second flow rate, wherein the second fluid inlet is after the filter region and positioned and configured to introduce a sheathing ferrofluid along a center longitudinal axis of the microfluidic channel at a second flow rate, wherein the first ferrofluid and the sheathing ferrofluid each comprise a plurality of magnetic nanoparticles, a surfactant and a carrier fluid, and wherein the sheathing ferrofluid has a volume concentration of magnetic nanoparticles that is about 50% to 90% of the volume concentration of magnetic nanoparticles in the mixed sample fluid;

and flowing the mixed sample fluid and sheathing ferrofluid through a second stage of the device, the second stage located after the second fluid inlet and comprising a magnetic source configured to produce a substantially symmetric magnetic field having a field minimum along an inner longitudinal axis of the microfluidic channel and sufficient to cause the unlabeled sub-micron sized particles to be focused toward a center of the microfluidic channel of the second stage as a function of the size of the particles such that sheath flow of the sheathing ferrofluid in combination with the substantially symmetric magnetic field produced by the magnetic force in the second stage hydrodynamically focuses the unlabeled sub-micron sized particles in the mixed sample fluid to move toward a center of the microfluidic channel of the second stage as a function of particle size, such that the particles in the first sub-population of particles are more focused toward a center of the microfluidic channel of the second stage than the second sub-population of particles, such that a majority of the first sub-population of particles flow along a center of the microfluidic channel toward a first outlet at a second end of the microfluidic channel and positioned to receive unlabeled sub-micron sized particles in fluid flowing along a center of the microfluidic channel and a majority of the second sub-population of particles flows along the periphery of the microfluidic channel toward a second outlet at the second end of the microfluidic channel, the second outlet having at least one opening positioned to receive unlabeled sub-micron sized particles in fluid flowing along a periphery of the microfluidic channel.

2. The method according to claim 1 , wherein the sample is a biological sample selected from the group consisting of: blood plasma, extracellular fluid, and blood that has been processed to remove blood cells, wherein the biological sample comprises a plurality of components.

3. The method of claim 1 , wherein at least one of the first or second sub-population of sub-micron sized particles are exosomes.

4. The method of claim 1 , wherein the mixed fluid sample has a first flow rate and the sheathing ferrofluid has a second flow rate and wherein the ratio of the first flow rate to the second flow rate is about 1:3 to 1:10.

5. The method of claim 1 , wherein the flow rate of the fluid sample at the first inlet is about 0.01-20 uL/min.

6. The method of claim 1 , wherein the flow rate of sheathing fluid is about 0.03-200 μL/min.

7. The method of claim 1 , wherein the flow rate of the mixed sample fluid is about 1 μL/min and flow rate of sheathing fluid is about 3-10 L/min.

8. The method of claim 1 , wherein the mixed sample fluid has a concentration of magnetic nanoparticles of about 0.01% to 0.6% (v/v).

Assignments (2)
CONFIRMATORY LICENSE Recorded Jun 10, 2021
From: UNIVERSITY OF GEORGIA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 056539/0431 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 21, 2020
From: MAO, LEIDONG; LIU, YANG
To: UNIVERSITY OF GEORGIA RESEARCH FOUNDATION, INC.
Reel/Frame 053563/0410 →
Continuity (2)
Provisional Application 62874941 · Jul 16, 2019
Related Publication 20210018499A1 · Jan 21, 2021