IP Library › Granted Patent US 10,709,419
Granted Patent B2
US 10,709,419 · App. 15/277,835 · Granted Jul 14, 2020

Dual modality imaging system for coregistered functional and anatomical mapping

Inventors: Alexander A. Oraevsky (Houston, TX); Sergey A. Ermilov (Houston, TX); Andre Conjusteau (Houston, TX); Peter Brecht (Santa Monica, CA); Vyacheslav Nadvoretskiy (Houston, TX); Richard Su (Sugar Land, TX); Donald G. Herzog (Collingswood, NJ); Bryan Clingman (Chandler, AZ); Jason Zalev (Thornhill, CA)
Assignee: SENO MEDICAL INSTRUMENTS, INC.
A61B8/4416A61B5/0035A61B5/0095A61B5/14542A61B5/14546A61B5/14552A61B5/7425A61B8/085A61B8/0825A61B8/0891A61B8/14A61B8/4444A61B8/463A61B8/5261A61B5/726A61B2090/306A61B2562/0238
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Quick Facts
Patent No.
US 10,709,419
App. No.
15/277,835
Granted
Jul 14, 2020
Kind
B2
Abstract

A real-time imaging system that provides ultrasonic imaging and optoacoustic imaging coregistered through application of the same hand-held probe to generate and detect ultrasonic and optoacoustic signals. These signals are digitized, processed and used to reconstruct anatomical maps superimposed with maps of two functional parameters of blood hemoglobin index and blood oxygenation index. The blood hemoglobin index represents blood hemoglobin concentration changes in the areas of diagnostic interest relative to the background blood concentration. The blood oxygenation index represents blood oxygenation changes in the areas of diagnostic interest relative to the background level of blood oxygenation. These coregistered maps can be used to noninvasively differentiate malignant tumors from benign lumps and cysts.

Claims (15)

1. An imaging system for visualization of slices into a depth of tissue of at least a portion of a body, comprising:

a hand-held imaging probe comprising an array of ultrasonic transducers and a light emitting portion, wherein the light emitting portion comprises:

a first fiber-optic bundle and a first light diffuser configured to form a first light beam and a second fiber-optic bundle and a second light diffuser configured to form a second light beam, wherein the first and second fiber-optic bundles are disposed on opposite sides of the array of ultrasonic transducers; and

a processing system configured to receive data originating from the hand-held imaging probe and to process at least three independent images based at least in part upon said data, wherein the processing comprises deconvolution of an impulse response associated with the array of ultrasonic transducers, the impulse response based on a delta-function ultrasonic signal generated by laser pulses in an absorbing optical medium the three independent images together comprising:

a first functional image reflecting distribution of total hemoglobin concentration;

a second functional image reflecting distribution of blood oxygen saturation; and

a morphological image of tissue structures.

2. The imaging system of claim 1 , further comprising a signal filter that filters the delta-function ultrasonic signal after deconvolution of the impulse response associated with the array of ultrasonic transducers and communicates with the processing system.

3. The imaging system of claim 2 , wherein the signal filter is a wavelet filter based on a wavelet transform that operates simultaneously in the frequency and time domain.

4. The imaging system of claim 3 , wherein the wavelet filter is configured to filter frequency components of the delta-function ultrasonic signal that are noise at a first time; and preserve frequency components of the delta-function ultrasonic signal at a second time.

5. The imaging system of claim 3 , wherein a frequency spectrum of the wavelet filter replicates a frequency band of an N-shaped optoacoustic signal.

6. The imaging system of claim 5 , wherein the wavelet filter provides smooth window edges that do not cause signal distortions upon convolution.

7. The imaging system of claim 5 , wherein the wavelet filter converts bipolar pressure signals into monopolar signals.

8. The imaging system of claim 1 , wherein the deconvolution of the impulse response restores N-shaped pressure signals.

9. The imagining system of claim 1 , wherein the hand-held imaging probe has a concave arc shape.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 4, 2017
From: ORAEVSKY, ALEXANDER A.; ERMILOV, SERGEY A.; CONJUSTEAU, ANDRE; BRECHT, PETER; NADVORETSKIY, VYACHESLAV; SU, RICHARD; HERZOG, DONALD G.; CLINGMAN, BRYAN; ZALEV, JASON
To: SENO MEDICAL INSTRUMENTS, INC.
Reel/Frame 043201/0565 →
Continuity (5)
Continuation 13667808 · Nov 2, 2012
Continuation In Part 13507217 · Jun 13, 2012
Continuation In Part 13341950 · Dec 31, 2011
Continuation In Part 13287759 · Nov 2, 2011
Related Publication 20170014101A1 · Jan 19, 2017