IP Library Granted Patent US 9,206,461
Granted Patent B2
US 9,206,461 · App. 14/003,613 · Granted Dec 8, 2015

Microorganism detection sensor and method of manufacturing the same

Inventors: Shiho Tokonami (Sakai, JP); Hiroshi Shiigi (Sakai, JP); Tsutomu Nagaoka (Sakai, JP); Mugihei Ikemizu (Osaka, JP); Mari Takahashi (Osaka, JP)
Assignees: OSAKA PREFECTURE UNIVERSITY PUBLIC CORPORATION; SHARP KABUSHIKI KAISHA
C12Q1/04C25D5/00G01N33/5438G01N33/569Y10T428/24479
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Quick Facts
Patent No.
US 9,206,461
App. No.
14/003,613
Granted
Dec 8, 2015
Kind
B2
Abstract

The present invention provides a sensor including a detection unit having a detection electrode and a polymer layer that is disposed on the detection electrode and includes a mold having a three-dimensional structure complementary to a steric structure of a microorganism to be detected. The sensor detects the microorganism based on a state of capturing the microorganism in the mold. The polymer layer is formed by a manufacturing method including: a polymerization step of polymerizing a monomer in the presence of the microorganism to be detected, to form the polymer layer having captured the microorganism on the detection electrode; a destruction step of partially destroying the microorganism captured in the polymer layer; and a peroxidation step of peroxidizing the polymer layer to release the microorganism from the polymer layer.

Claims (21)

1. A sensor for detecting a microorganism based on a state of capturing said microorganism in a mold, said sensor comprising

(A) a detection unit including a detection electrode and a polymer layer that is disposed on a roughened surface of said detection electrode and includes a mold having a three-dimensional structure complementary to a steric structure of a microorganism to be detected, wherein said microorganism has entire electric charge or electric charge on a surface thereof that is excessively negatively charged, and wherein said polymer layer is made of polypyrrole, polvaniline, polythiophene, or derivatives thereof, said polymer layer being formed by a manufacturing method including: a polymerization step of polymerizing a monomer in presence of the microorganism to be detected, to form said polymer layer having captured said microorganism on said detection electrode; a destruction step of partially destroying the microorganism captured in said polymer layer; and a peroxidation step of peroxidizing said polymer layer to release said microorganism from said polymer layer, thereby imparting to said polymer layer a three-dimensional structure complementary to a steric structure of said microorganism, and

(B) a counter electrode, wherein said sensor is adapted to supply alternating-current voltage between said detection electrode and said counter electrode in a state where said detection unit and said counter electrode are in contact with a sample solution, to direct said microorganism in said sample solution toward said detection unit by dielectrophoresis.

2. The sensor according to claim 1 , wherein said polymer layer is made of polypyrrole or derivatives thereof.

3. The sensor according to claim 1 , wherein said polymer layer is made of polyaniline, polythiophene, or derivatives thereof.

4. The sensor according to claim 2 , further comprising a crystal oscillator having said detection electrode of said detection unit as one of electrodes, wherein

said sensor measures a change in a mass of said polymer layer based on a change in a resonance frequency of said crystal oscillator to detect the state of capturing said microorganism.

5. The sensor according claim 2 , wherein said microorganism is a bacterium, and a bacteriolysis process is performed in said destruction step.

6. The sensor according to claim 5 , wherein said bacterium is Pseudomonas aeruginosa, Acinetobacter calcoaceticus, or Escherichia coli.

7. A method of manufacturing a sensor of claim 1 , comprising:

a polymerization step of polymerizing a monomer in presence of the microorganism to be detected, to form said polymer layer having captured said microorganism on said detection electrode, wherein said microorganism has entire electric charge or electric charge on a surface thereof that is excessively negatively charged, and wherein said polymer layer is made of polypyrrole, polyaniline, polythiophene, derivatives thereof,;

a destruction step of partially destroying the microorganism captured in said polymer layer; and

a step of peroxidizing said polymer layer to release said microorganism from said polymer layer.

8. The method of manufacturing a sensor according to claim 7 , wherein

said sensor further includes a counter electrode, and

said polymerization step includes a step of applying a voltage between said detection electrode and said counter electrode that are in contact with a solution of said monomer, to electropolymerize said monomer.

9. The method of manufacturing a sensor according to claim 7 , wherein said peroxidizing step includes a step of applying a voltage between said detection electrode and said counter electrode that are in contact with a solution within a range from neutral to alkaline, to peroxidize said polymer layer.

10. The method of manufacturing a sensor according to claim 7 , comprising a surface-roughening step of roughening a surface of said detection electrode on which said polymer layer is formed.

11. A polymer layer including a mold having a three-dimensional structure complementary to a steric structure of a microorganism,

said polymer layer being formed by a manufacturing method including: a polymerization step of polymerizing a monomer in presence of said microorganism to form said polymer layer, wherein said polymer layer is made of polypyrrole, polyaniline, polythiophene, or derivatives thereof; a destruction step of partially destroying the microorganism captured in said polymer layer; and a peroxidation step of releasing said microorganism from said polymer layer.

12. The polymer layer accordingly to claim 11 , wherein said polymer layer is made of polypyrrole or derivatives thereof

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 10, 2018
From: SHARP LIFE SCIENCE CORPORATION
To: OSAKA PREFECTURE UNIVERSITY PUBLIC CORPORATION
Reel/Frame 046617/0065 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 25, 2017
From: SHARP KABUSHIKI KAISHA
To: SHARP LIFE SCIENCE CORPORATION
Reel/Frame 043093/0790 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 9, 2013
From: TOKONAMI, SHIHO; SHIIGI, HIROSHI; NAGAOKA, TSUTOMU; IKEMIZU, MUGIHEI; TAKAHASHI, MARI
To: OSAKA PREFECTURE UNIVERSITY PUBLIC CORPORATION; SHARP KABUSHIKI KAISHA
Reel/Frame 031165/0145 →
Priority Claims (1)
JP 2011-050416 · Mar 8, 2011 · national
Continuity (1)
Related Publication 20130337498A1 · Dec 19, 2013