IP Library › Granted Patent US 12,396,650
Granted Patent B2
US 12,396,650 · App. 18/086,390 · Granted Aug 26, 2025

Subdural sensor

Inventors: Michiyasu Suzuki (Yamaguchi, JP); Sadahiro Nomura (Yamaguchi, JP); Takao Inoue (Yamaguchi, JP); Toshitaka Yamakawa (Kumamoto, JP)
Assignee: ANT5 Co., Ltd.
A61B5/031A61B5/6864G01L9/0026
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Quick Facts
Patent No.
US 12,396,650
App. No.
18/086,390
Granted
Aug 26, 2025
Kind
B2
Abstract

A subdural sensor includes: a substrate formed of a flexible material; and at least one type of sensor part mounted on the substrate. The substrate has an elongated shape, and includes: a sensor area in which the sensor part is mounted and a wiring pattern connected to the sensor part is formed; a wiring area contiguous with the sensor area, the wiring pattern extending in the wiring area; and a connector area contiguous with the wiring area, the connector area being an area on which a connector to be connected to the wiring pattern extending from the wiring area is mounted. A tip part of the sensor area has a planar shape that curves convexly toward an outer periphery, and a side shape that curves toward a first surface, the first surface being on the side of a dura mater when the subdural sensor is inserted into the subdural space.

Claims (33)

1. A subdural sensor that is to be arranged in a subdural space and acquires biological information about the brain, comprising:

a substrate formed of a flexible material; and

at least one type of sensor part mounted on the substrate,

wherein the substrate has an elongated shape as a whole,

wherein the substrate includes:

a sensor area in which the at least one type of sensor part is mounted and a wiring pattern connected to the at least one type of sensor part is formed;

a wiring area contiguous with the sensor area on one end thereof, the wiring pattern extending in the wiring area; and

a connector area contiguous with the other end of the wiring area, the connector area being an area on which a connector to be connected to the wiring pattern extending from the wiring area is mounted,

wherein a tip part of the sensor area has a planar shape that curves convexly toward an outer periphery, and a side shape that curves toward a first surface, the first surface being on the side of a dura mater when the subdural sensor is inserted into the subdural space.

2. The subdural sensor according to claim 1 , further comprising a cover that is formed of a soft material and covers the tip part of the sensor area.

3. The subdural sensor according to claim 1 , wherein the at least one type of sensor part includes an intracranial pressure sensor mounted on an area in the vicinity of a tip part of the substrate.

4. The subdural sensor according to claim 3 , further comprising a cover that is formed of a soft material, covers the tip part of the sensor area, and is arranged over a surrounding area of the intracranial pressure sensor.

5. The subdural sensor according to claim 1 , wherein a width in the short-length direction of the wiring area is smaller than a width in the short-length direction of the sensor area, and a connection area between the sensor area and the wiring area is tapered.

6. The subdural sensor according to claim 1 , wherein, in the sensor area, the at least one type of sensor part is arranged in a line along the longitudinal direction of the substrate, and

wherein the width in the short-length direction of the wiring area is equal to or greater than the maximum width in the short-length direction of the substrate of the at least one type of sensor part arranged in the sensor area.

7. The subdural sensor according to claim 1 , wherein the wiring pattern includes a signal line pattern and a power line pattern,

wherein the signal line pattern is formed in a wave-shaped pattern on one surface of the wiring area, the wave-shaped pattern having peaks and troughs appearing in an alternating manner, and

wherein the power line pattern is formed in a wave-shaped pattern on the other surface of the wiring area, the wave-shaped pattern having peaks and troughs that are staggered with respect to the peaks and the troughs of the signal line pattern.

8. The subdural sensor according to claim 1 , wherein at least a portion of the wiring area is accommodated inside a tube formed of a flexible material.

9. The subdural sensor according to claim 1 , wherein at least a portion of the wiring area is wound so as to form a cylindrical outer periphery shape as a whole.

10. The subdural sensor according to claim 9 , wherein at least a portion of the wiring area is wound in a coiled form.

11. The subdural sensor according to claim 9 , wherein at least a portion of the wiring area is divided into a plurality of strip-like areas along the longitudinal direction, and each of the plurality of strip-like areas is wound around one wire core.

12. The subdural sensor according to claim 11 , wherein the wiring pattern includes a signal line pattern and a power line pattern,

wherein at least a portion of the wiring area is divided, along the longitudinal direction, into a first strip-like area where the signal line pattern is formed and a second strip-like area where the power line pattern is formed, and

wherein the first strip-like area and the second strip-like area are wound around the wire core in opposite directions to each other.

13. The subdural sensor according to claim 9 , wherein an outer periphery surface of a wound portion of the wiring area is coated with a biocompatible material.

14. The subdural sensor according to claim 1 , wherein the wiring pattern includes a signal line pattern that transmits a signal output from the at least one type of sensor part, and

wherein each signal line included in the signal line pattern divides into two branches in the connector area and the two branches are respectively connected to two different pins provided on the connector.

15. The subdural sensor according to claim 1 , wherein the at least one type of sensor part includes a blood flow measurement part that includes a light-emitting element capable of emitting near-infrared light, a light-receiving element capable of receiving near-infrared light, and a light reflection part arranged between the light-emitting element and the light-receiving element, and

the light reflection part has a shape in which at least a circumferential part bulges toward an inner periphery.

16. The subdural sensor according to claim 15 , wherein the light reflection part also serves as an electrode for electrocorticogram measurement.

17. The subdural sensor according to claim 15 , wherein the at least one type of sensor part includes a temperature measurement element arranged inside the light reflection part.

18. The subdural sensor according to claim 16 , wherein the at least one type of sensor part includes a temperature measurement element arranged inside the light reflection part.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2022
From: SUZUKI, MICHIYASU; NOMURA, SADAHIRO; INOUE, TAKAO; YAMAKAWA, TOSHITAKA
To: ANT5 CO., LTD.
Reel/Frame 062176/0522 →
Priority Claims (1)
JP 2020-112158 · Jun 29, 2020 · national
Continuity (2)
Continuation PCTJP2021024617 · Jun 29, 2021
Related Publication 20230129638A1 · Apr 27, 2023
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