IP Library Granted Patent US 12,019,079
Granted Patent B2
US 12,019,079 · App. 16/966,197 · Granted Jun 25, 2024

Non invasive process for the evaluation of the quality of internal dense connective tissues

Inventors: Thierry Hoc (Charbonnieres les Bains, FR); Jean-Charles Auregan (Paris, FR); Morad Bensidhoum (Sevres, FR); Catherine Bosser (Charbonnieres les Bains, FR); Hassan Zahouani (Besancon, FR)
Assignees: ECOLE CENTRALE DE LYON; UNIVERSITE PARIS-SACLAY; UNIVERSITÉ DE PARIS; ASSISTANCE PUBLIQUE—HOPITAUX DE PARIS
G01N33/6893G01N21/8851G06T7/0012G01N2021/887G01N2800/10G06T2207/30008
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Quick Facts
Patent No.
US 12,019,079
App. No.
16/966,197
Granted
Jun 25, 2024
Kind
B2
Abstract

The invention relates to a non-invasive process for evaluating the quality of one or more dense connective tissue(s) in a patient, comprising the following steps: a) Analyzing the profile of the microrelief of a cutaneous replica of a portion of the skin of said patient by at least one of the following step: a1. visually assessing on picture(s) of said cutaneous replica the line shape and the anisotropy of the lines; and/or a2. Determining, on picture(s) of said cutaneous replica, the roughness index of the microrelief with an optical sensor, b) identifying cutaneous replica of “stage 1”, representative of healthy skins, and cutaneous replica of “stage 2” representative of altered skins, a cutaneous replica of stage 2 being indicative of low quality of the one or more dense connective tissue(s) in the patients body.

Claims (21)

1. A non-invasive process for evaluating the quality of one or more dense connective tissue(s) in a patient, comprising the following steps:

a) analyzing the profile of the microrelief of a cutaneous replica of a portion of the skin of said patient by determining, on picture(s) of said cutaneous replica, the roughness index (Ra) of the microrelief with an optical sensor, wherein the roughness index (Ra) is defined as the distance of the line at the surface of the replica to the mean line profile, and is calculated according to the following equation: Ra=1/NΣ i=1 N |Zi|

where N corresponds to the collected points along the measurement direction, and for each point (i), Zi corresponds to the distance in the vertical direction between the surface of the replica and the mean line profile;

b) identifying cutaneous replica of stage 1, representative of healthy skins, and cutaneous replica of stage 2 representative of altered skins,

a cutaneous replica of stage 2 being indicative of low quality of the one or more dense connective tissue(s) in the patient's body, wherein step a) comprises the quantification of the roughness indexes measured in two directions of the replica picture, longitudinal (0°) and transversal (90°), wherein the values of both roughness indexes measured on each direction are added up to obtain a value of Skin Index of Living Tissues (SILT), wherein the SILT value is compared to reference value(s) to be classified as “medium SILT value” or “extreme SILT value”, and wherein a cutaneous replica of stage 1 is defined as having a medium SILT value, and a cutaneous replica of stage 2 is defined as having an extreme SILT value.

2. The process according to claim 1 , wherein a cutaneous replica of stage 1 is defined as having a medium SILT value, comprised between 45 μm and 120 μm, and a cutaneous replica of stage 2 is defined as having an extreme SILT value, strictly inferior to 45 μm or strictly superior to 120 μm.

3. The process according to claim 1 , wherein the dense connective tissue is bone tissue.

4. The process according to claim 3 , wherein the non-invasive process is used for determining the risk of occurrence of a contralateral hip fracture in a patient.

5. The process according to claim 1 , wherein the dense connective tissue is dermis.

6. The process according to claim 1 , wherein the patient is an elderly person.

7. The process according to claim 1 , wherein the cutaneous replica is obtained by application on a portion of the skin of the patient of a silicone polymer.

8. The process according to claim 1 , wherein the non-invasive process is used for following over time the quality of one or more dense connective tissue(s) in a patient.

9. The process according to claim 1 , wherein its implementation involves the use of:

(1) a diagnostic kit comprising:

means for obtaining a cutaneous replica of a patient, including silicone polymer and a molding apparatus, and

at least two reference pictures of reference cutaneous replica, one being representative of the stage 1 and the other one being representative of the stage 2, as defined in claim 6 ;

(2) a camera; and

(3) optic fibers.

10. A diagnostic kit comprising:

means for obtaining a cutaneous replica of a patient, including silicone polymer and a molding apparatus, and

at least two reference pictures of reference cutaneous replica, one being representative of the stage 1 and the other one being representative of the stage 2, as defined in claim 2 .

Assignments (4)
CHANGE OF NAME Recorded Jun 17, 2022
From: UNIVERSITE DE PARIS
To: UNIVERSITÉ PARIS CITÉ
Reel/Frame 060530/0623 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE ADDRESS PREVIOUSLY RECORDED AT REEL: 058630 FRAME: 0874. ASSIGNOR(S) HEREBY CONFIRMS THE MERGER. Recorded May 4, 2022
From: UNIVERSITÉ PARIS-SUD
To: UNIVERSITÉ PARIS-SACLAY
Reel/Frame 059952/0787 →
MERGER Recorded Jan 12, 2022
From: UNIVERSITÉ PARIS-SUD
To: UNIVERSITÉ PARIS-SACLAY
Reel/Frame 058630/0874 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 3, 2020
From: HOC, THIERRY; AUREGAN, JEAN-CHARLES; BENSIDHOUM, MORAD; BOSSER, CATHERINE; ZAHOUANI, HASSAN
To: ECOLE CENTRALE DE LYON; UNIVERSITE PARIS-SACLAY; UNIVERSITÉ DE PARIS; ASSISTANCE PUBLIQUE - HOPITAUX DE PARIS
Reel/Frame 054536/0074 →
Priority Claims (1)
EP 18305107 · Feb 1, 2018 · regional
Continuity (1)
Related Publication 20210041457A1 · Feb 11, 2021