IP Library Granted Patent US 12,061,194
Granted Patent B2
US 12,061,194 · App. 17/545,979 · Granted Aug 13, 2024

Systems including Janus droplets with binding moieties for a virus, a pathogen or a bacterium

Inventors: Timothy Manning Swager (Newton, MA); Hadley Sikes Johnson (Arlington, MA); Qifan Zhang (Revere, MA); Eric Alexander Miller (Somerville, MA); Lukas Zeininger (Berlin, DE); Ki-Joo Sung (Minneapolis, MN); Kosuke Yoshinaga (Cambridge, MA)
Assignee: Massachusetts Institute of Technology
G01N33/5432C12Q1/6834C12Q1/701G01N21/59G01N21/77G01N33/54366G01N33/56983G01N2021/7783G01N21/78G01N2201/0221
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Quick Facts
Patent No.
US 12,061,194
App. No.
17/545,979
Granted
Aug 13, 2024
Kind
B2
Abstract

Embodiments described herein may be useful in the detection of analytes. The systems and methods may allow for a relatively simple and rapid way for detecting analytes such as chemical and/or biological analytes and may be useful in numerous applications including sensing, food manufacturing, medical diagnostics, performance materials, dynamic lenses, water monitoring, environmental monitoring, detection of proteins, detection of DNA, among other applications. For example, the systems and methods described herein may be used for determining the presence of a contaminant such as bacteria (e.g., detecting pathogenic bacteria in food and water samples which helps to prevent widespread infection, illness, and even death). Advantageously, the systems and methods described herein may not have the drawbacks in current detection technologies including, for example, relatively high costs, long enrichment steps and analysis times, and/or the need for extensive user training. Another advantageous feature provided by the systems and methods described herein includes fabrication in a relatively large scale. In some embodiments, the systems and methods may be used in conjunction with a detector including handheld detectors incorporated with, for example, smartphones (e.g., for the on-site detection of analytes such as pathogenic bacteria).

Claims (33)

1. A system comprising:

a plurality of Janus droplets associated with binding moieties to an analyte, the plurality of Janus droplets comprising an interface between a first phase and a second phase of the droplets, the binding moiety and analyte selected such that when the analyte binds to the binding moiety at least a portion of the plurality of Janus droplets are changed in orientation sufficient to change electromagnetic radiation interacting with the plurality of Janus droplets in a detectable manner, wherein the plurality of Janus droplets are optically transparent in a direction perpendicular to a surface of the interface in the first orientation, and wherein the analyte is a virus, a pathogen, or a bacterium.

2. A system as in claim 1 , wherein upon binding to the analyte, at least a portion of the plurality of Janus droplets agglutinate.

3. A system as in claim 1 , wherein, prior to binding to the analyte, the plurality of Janus droplets are oriented such that at least a portion of interfaces between a first phase and a second phase within each Janus droplet are aligned parallel with respect to one another.

4. A system as in claim 1 , wherein, prior to the analyte binding to the binding moieties, the plurality of Janus droplets are physically and/or chemically bound to a surface.

5. A system as in claim 4 , wherein, upon binding of the analyte to the binding moieties, at least a portion of the plurality of Janus droplets unbind from the surface.

6. An article, comprising:

an outer phase; and

a plurality of Janus droplets dispersed within the outer phase, the plurality of Janus droplets comprising an interface between a first phase and a second phase of the droplets,

wherein at least a portion of the plurality of Janus droplets comprise an amphiphilic compound including at least one binding moiety to an analyte,

wherein the analyte is a virus, a pathogen, or a bacterium,

wherein, upon binding of the at least one binding moiety with the analyte, at least a portion of the plurality of Janus droplets change orientation, and

wherein the plurality of Janus droplets are optically transparent in a direction perpendicular to a surface of the interface.

7. An article as in claim 6 , wherein the plurality of Janus droplets is oriented such that at least a portion of interfaces between the first phase and the second phase within each Janus droplet are aligned parallel with respect to one another, wherein the alignment is by gravity.

8. An article as in claim 6 , wherein the plurality of Janus droplets are substantively transmissive to electromagnetic radiation.

9. An article as in claim 6 , wherein, upon binding of the at least one binding moiety with the analyte, the plurality of Janus droplets decrease in optical transmission.

10. An article, comprising:

a surface;

an outer phase deposited on at least a portion of the surface; and

a plurality of Janus droplets dispersed within the outer phase, the plurality of Janus droplets comprising an interface between a first phase and a second phase of the droplets,

wherein at least a portion of the plurality of Janus droplets comprise an amphiphilic compound including at least one binding moiety to an analyte, wherein the analyte is a virus, a pathogen, or a bacterium,

wherein at least a portion of the plurality of Janus droplets are bound to the surface via the binding moiety, and

wherein, upon exposure of the plurality of Janus droplets to the analyte, at least a portion of Janus droplets change orientation, and

wherein the plurality of Janus droplets are optically transparent in a direction perpendicular to a surface of the interface.

11. An article as in claim 10 , wherein at least a portion of the plurality of Janus droplets are oriented such that an interface between a first phase and a second phase within each Janus droplet are not aligned parallel to the surface.

12. An article as in claim 10 , wherein, upon exposure of the plurality of Janus droplets to the analyte, at least a portion of Janus droplets unbind from the surface.

13. An article as in claim 12 , wherein the article is substantively visible-light transmissive after exposure to the plurality of Janus droplets to the analyte.

14. An article as in claim 10 , wherein, upon exposure of the plurality of Janus droplets to the analyte, the plurality of Janus droplets increase in optical transmission.

15. A system, comprising:

an article as in claim 10 ;

a source of external energy applicable to the composition to generate a determinable signal; and

a detector positioned to detect the signal.

16. A system as in claim 15 , wherein the signal comprises electromagnetic radiation.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 22, 2022
From: SWAGER, TIMOTHY M.; JOHNSON, HADLEY SIKES; ZHANG, QIFAN; MILLER, ERIC ALEXANDER; ZEININGER, LUKAS; SUNG, KI-JOO; YOSHINAGA, KOSUKE
To: MASSACHUSETTS INSTITUTE OF TECHNOLOGY
Reel/Frame 059777/0365 →
Continuity (4)
Continuation 16202007 · Nov 27, 2018
Continuation In Part 16113520 · Aug 27, 2018
Continuation 15269543 · Sep 19, 2016
Related Publication 20220205989A1 · Jun 30, 2022