Methods, compositions and systems for microfluidic assays
Provided herein, among other aspects, are methods and apparatuses for analyzing particles in a sample. In some aspects, the particles can be analytes, cells, nucleic acids, or proteins and contacted with a tag, partitioned into aliquots, detected by a ranking device, and isolated. The methods and apparatuses provided herein may include a microfluidic chip. In some aspects, the methods and apparatuses may be used to quantify rare particles in a sample, such as cancer cells and other rare cells for disease diagnosis, prognosis, or treatment.
1. A method for isolating an aliquot of a fluid sample within a microfluidic chip, the method comprising the steps of:
(a) introducing the fluid sample into the microfluidic chip, wherein the fluid sample comprises a first cell type and a second cell type, a rare particle being of the first cell type and wherein the microfluidic chip comprises (i) at least one channel; (ii) a detector configured to detect signals of cells within the at least one channel; and (iii) at least one chamber fluidly connected to the at least one channel;
(b) contacting the fluid sample with a first tag, wherein the rare particle comprises a first marker and the first tag has an affinity for the first marker;
(c) flowing the aliquot of the fluid sample past the detector;
(d) detecting the presence or absence of the rare particle among a plurality of particles in the aliquot by simultaneously interrogating the plurality of particles, the plurality of particles being randomly distributed throughout a three-dimensional space and the rare particle being present in the fluid sample at a low level comprising less than 1 part per 10 3 of particles in the fluid sample, wherein detecting the presence or absence of the rare particle in the aliquot includes detecting the presence or absence of a first signal emitted by the first tag using a source of radiation, wherein the presence of the first signal indicates the presence of the first marker;
(e) assigning a value to the aliquot based on the presence or absence of the rare particle;
(f) directing the flow of the aliquot based on the assigned value by opening an electro-actuated valve, wherein the electro-actuated valve is located on a device that is external to the microfluidic chip;
(g) reducing an intensity of the first signal;
(h) contacting the aliquot with a second tag that has an affinity for a second marker of the rare cell; and
(i) detecting the presence or absence of the second tag.
2. The method of claim 1 , wherein the microfluidic chip comprises a sample input channel, at least two output channels, and at least one directional flow channel, and wherein the electro-actuated valve controls the flow of fluid within the directional flow channel.
3. The method of claim 2 , further comprising trapping the rare particle using a filter in fluidic communication with at least one of the at least two output channels.
4. The method of claim 3 , wherein the filter comprises an array of apertures.
5. The method of claim 3 , wherein the rare particle is a rare cell, and wherein the filter is configured so that the rare cell cannot pass through the filter.
6. The method of claim 1 , wherein the step of detecting the presence or absence of the rare particle comprises the sub-steps of:
(i) interrogating the aliquot with an external source of electromagnetic radiation; and
(ii) detecting fluorescence of the first signal coupled to the rare particle.
7. The method of claim 1 , wherein the step of detecting the presence or absence of the rare particle comprises the sub-steps of:
(i) contacting the fluid sample with the first tag under conditions suitable to form a complex comprising the first tag and the rare particle; and
(ii) detecting the presence or absence of the complex formed in step (i) in the aliquot of the fluid sample.
8. The method of claim 1 , further comprising the steps of:
assigning a second value to the aliquot based on the presence or absence of the second signal; and
directing the flow of the aliquot based on the assigned second value by opening a second electro-actuated valve.
9. The method of claim 1 , wherein continuous flow of the fluid sample is maintained during detection.
10. A method for isolating cells from a fluid sample, the method comprising:
(a) introducing the fluid sample into a microfluidic chip, wherein the fluid sample comprises a first cell type and a second cell type, a rare particle being of the first cell type, and wherein the microfluidic chip comprises a channel, a detector configured to detect a signal emitted within the channel, and a chamber in fluidic communication with the channel;
(b) contacting the fluid sample with a first tag, wherein the rare particle comprises a first marker and the first tag has an affinity for the first marker;
(c) flowing a portion of the fluid sample through the channel, wherein the portion comprises a plurality of the first cell type, a plurality of the second cell type, or a combination thereof;
(d) detecting the presence or absence of the first cell type within the portion using the detector, wherein detecting the presence or absence of the first cell type within the portion includes detecting the presence or absence of a first signal emitted by the first tag using a source of radiation, wherein the presence of the first signal indicates the presence of the first marker;
(e) directing the portion into the chamber if the first cell type is present within the portion;
(f) reducing an intensity of the first signal;
(g) contacting the portion with a second tag that has an affinity for a second marker of the rare cell; and
(h) detecting the presence or absence of the second tag in the portion.