Capsule for rapid molecular quantification of a fluid sample such as whole blood
10434508 ยท 2019-10-08
Assignee
Inventors
Cpc classification
B01L2300/0864
PERFORMING OPERATIONS; TRANSPORTING
B82Y30/00
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/021
PERFORMING OPERATIONS; TRANSPORTING
B82Y15/00
PERFORMING OPERATIONS; TRANSPORTING
B01L2200/025
PERFORMING OPERATIONS; TRANSPORTING
B01L2300/0816
PERFORMING OPERATIONS; TRANSPORTING
B82Y35/00
PERFORMING OPERATIONS; TRANSPORTING
B01L3/502
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A capsule (100) comprising a housing (110) in which are disposed nanofluidic biosensors (120), a fluid connecting element (140), a filter (150) and a cover (160) is described. The capsule (100) allows the analysis of a fluid sample (300) that would be deposited in the capsule system (100) by a pipette (400). The fluid sample (300) is filtered when passing through a filter (150), then transferred by a fluid connecting element (140) to the inlets of one or several nanofluidic biosensors (120). The capsule system (100) is disposed on an external support (200), and finally an optical or an electrical measurement unit (500) is used to measure the molecular interactions in the nanofluidic biosensors.
Claims
1. A capsule for rapid molecular quantification of a fluid sample comprising: a cover having an aperture for receiving a fluid sample to be measured; a filter having an upper surface that faces the aperture of the cover for receiving the fluid sample; a fluid connecting element in contact with a lower surface of the filter acting as a passive fluid transfer system; and a plurality of nanofluidic biosensors having input apertures, wherein the plurality of nanofluidic biosensors are positioned such that each input aperture of the plurality of nanofluidic biosensors are in contact with the fluid connecting element, the plurality of biosensors arranged at a lateral side of a fluidic pathway formed by the aperture, the filter, and the fluid connecting element.
2. The capsule according to claim 1, wherein the filter is in contact with the fluid connecting element and is dimensioned to retain components of the fluid sample crossing the filter.
3. The capsule according to claim 1, further comprising: an identification module arranged on the housing of the capsule.
4. The capsule according to claim 1, wherein the cover comprises several apertures allowing the deposition of the fluid sample in the capsule using a pipet system.
5. The capsule according to claim 1, further comprising: a foldable upper part configured to close the capsule.
6. The capsule according to claim 1, further comprising: an optically transparent film for maintaining the nanofluidic biosensor inside the capsule without disturbing an optical measurement of the nanofluidic biosensor, the optically transparent film in contact with a lower surface of the plurality of nanofluidic biosensors.
7. The capsule according to claim 1, wherein the filter and the fluid connecting element are made of a porous material.
8. The capsule according to claim 1, wherein the housing has a length, a width and a height between 1 mm and 200 mm.
9. The capsule according to claim 7, wherein the porous material is selected from a group consisting of a fiber agglutination, a micropore structure in silicon, a nanopore structure in silicon, plastic, and glass material.
10. A method for using a capsule for rapid molecular quantification having a plurality of nanofluidic biosensors, the method comprising the steps of: depositing a fluid sample through an aperture of the capsule onto an upper surface of a filter that faces the aperture; filtering the fluid sample by the filter to extract components; allowing the fluid sample to flow through a fluid connecting element of the capsule, the fluid connection element in contact with a lower surface of the filter acting as a passive fluid transfer system, to reach the plurality of nanofluidic biosensors, each input aperture of the plurality of nanofluidic biosensors being in contact with the fluid connecting element; and reading a content of the plurality of nanofluidic biosensors, wherein the plurality of biosensors are arranged at a lateral side of a fluidic pathway formed by the aperture, the filter, and the fluid connecting element.
11. The method according to claim 10, the capsule further including an optically transparent film for maintaining the nanofluidic biosensor inside the capsule without disturbing an optical measurement of the nanofluidic biosensor, the optically transparent film in contact with a lower surface of the plurality of nanofluidic biosensors, wherein the step of reading further comprises: illuminating the plurality of nanofluidic biosensors via the optically transparent film by a measurement unit.
12. The method according to claim 10, further comprising the step of allowing further comprises: driving the fluid sample to the input apertures of each biosensors through the fluid connecting element, an upper surface of the fluid connecting element being in contact with the filter, and a side wall of the fluid connection element being in contact with the plurality of nanofluidic biosensors.
13. The capsule according to claim 1, wherein a lateral side wall of the fluid connection element is in contact with the plurality of nanofluidic biosensors, such that the fluid sample is driven to the input apertures of each one of the biosensors through the fluid connecting element.
14. The capsule according to claim 1, wherein the filter has a width such that is covers an upper surface of the fluid connecting element and partially covers an upper surface of the plurality of nanofluidic biosensors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
DETAILED DESCRIPTION OF THE INVENTION
(11) As used herein, the term fluid sample is intended to be a generic term, which includes for example (but not limited to) liquid containing proteins such as antibodies or cytokines, peptides, nucleic acids, lipid molecules, polysaccharides and virus.
(12) As used herein, the terms nanofluidic biosensor is intended to be a generic term, which means microfabricated sensor containing at least one well-defined internal channel having at least one dimension below 10 ?m.
(13) As used herein, the term capsule is intended to be a generic term, which includes for example (but not limited to) a structure maintaining together the nanofluidic biosensors and all the others components. The capsule may have an upper part that may be folded in order to close the capsule.
(14) As used herein, the term cover is intended to be a generic term, which includes for example (but not limited to) a part of the capsule system defining the aperture where the fluid sample will be deposited.
(15) As used herein, the term fluid connecting element is intended to be a generic term, which includes for example (but not limited to) a material that absorbs liquids and sample fluids, and distributes them to nanofluidic biosensors that may be in contact with this material.
(16) As used herein, the term filter is intended to be a generic term, which includes for example (but not limited to) a material that mechanically filters liquids and sample fluids, in order to extract large molecules and to distribute liquids containing small molecules to fluid connecting element.
(17) As used herein, the term identification module is intended to be a generic term, which includes for example (but not limited to) a system that allows the measuring unit to identify the content of the capsule or of the nanofluidic biosensors. For example, it can be a RFID tag or a simple barcode printed on the capsule housing 110.
(18) The present invention aims to simplify the process of collecting, preparing and distributing the fluid samples into the nanofluidic biosensors in order to quantify specific molecular interactions. As shown in
(19)
(20)
(21)
(22)
(23)
(24)
(25) According to the present invention, the capsule system offers great improvements in usability and whole blood filtering for improving the detection, enumeration, identification and characterization of biomolecules interacting or not with other immobilized biomolecules. Applications of the present invention can cover biomedical, biological or food analysis as well as fundamental studies in analytical and bioanalytical chemistry.