APPARATUS AND METHOD FOR ASSESSMENT OF CANCER MARGIN
20190261897 ยท 2019-08-29
Inventors
Cpc classification
A61B5/14546
HUMAN NECESSITIES
A61B5/1459
HUMAN NECESSITIES
A61B5/0084
HUMAN NECESSITIES
A61B1/00167
HUMAN NECESSITIES
A61B5/0075
HUMAN NECESSITIES
A61B1/0017
HUMAN NECESSITIES
G01N33/4833
PHYSICS
International classification
A61B5/1459
HUMAN NECESSITIES
A61B5/145
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
An apparatus for inspecting a biological tissue uses a pH-sensitive coating material to determine whether the tissue is normal or cancerous. The coating material is placed in contact with the tissue to be excited by an excitation light. The coating material is arranged to provide a response signal indicative of the pH value of the tissue. Using a fiber bundle having a plurality of optical fibers forming a linear array or a two-dimensional array adjacent the coating material, the imaging of localized surface pH in the biological tissue can be achieved using the response signal through each of the optical fibers. The fiber bundle can be arranged as a probe to examine the tissue for providing direct mapping of the tumor margin via a display, so that a surgeon can inspect the tissue in real-time.
Claims
1. An apparatus for inspecting a biological tissue, comprising: an optical medium comprising a coating material arranged to contact the biological tissue, the optical medium arranged to receive an excitation light for providing an optical excitation to the coating material, the coating material having a pH sensitive component configured to provide a response signal indicative of a pH value of the biological tissue in response to the optical excitation; and a display device arranged to present a visual representation of the response signal.
2. The apparatus according to claim 1, wherein the optical medium comprises a fiber bundle having a bundle end placed adjacent to the biological tissue, the fiber bundle comprising a plurality of optical fibers, each optical fiber comprising a fiber tip located at the bundle end, the fiber tip having a coating including the coating material, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material at the fiber tip in response to the excitation, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
3. The apparatus according to claim 2, wherein the optical fibers are arranged in a linear array or in a two-dimensional array at the bundle end.
4. The apparatus according to claim 2, wherein the excitation light has a first wavelength range, and wherein the response signal comprises a wavelength range longer than the first wavelength range, and wherein the visual representation comprises a plurality of pixels, each pixel having a brightness indicative of a spectral value of the optical signal, said apparatus further comprising: a spectral analyzer arranged to determine the spectral value of the optical signal.
5. The apparatus according to claim 4, further comprising an optical source for providing the excitation light, wherein each of the optical fibers comprises a first fiber end having the fiber tip and a second fiber end arranged to receive the excitation light.
6. The apparatus according to claim 5, wherein the spectral analyzer comprises a spectrometer, the spectrometer arranged to receive the optical signal from each of the optical fibers at the second fiber end.
7. The apparatus according to claim 4, wherein the display device is spaced from the spectral analyzer, the spectral analyzer configured to convey information indicative of the brightness of each of pixels to the display device.
8. The apparatus according to claim 1, wherein the pH sensitive component comprises one or more pH sensitive dyes.
9. The apparatus according to claim 1, wherein the optical medium comprises a V-groove block having a groove arranged to hold a sample of the biological tissue, the V-groove block comprising two groove walls, each groove wall having a coating comprising the coating material, the coating having a first coating side arranged to contact the sample of the biological tissue and an opposing second coating side arranged to receive a fiber bundle, the fiber bundle comprising a plurality of optical fibers, each optical fiber comprising a fiber tip located adjacent to the second coating side of the coating, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material at the fiber tip in response to the optical excitation, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
10. The apparatus according to claim 1, wherein the optical medium comprises a V-groove block having a groove arrange to hold a sample of the biological tissue, the V-groove block comprising two groove walls, each groove wall having a coating comprising the coating material, the coating having a first coating side arranged to contact the sample of the biological tissue and an opposing second coating side, wherein the V-groove block is arranged to receive the excitation light for providing the optical excitation to the coating material from the second coating side, said apparatus further comprising two imaging sensors, each imaging sensor arranged to capture an optical signal from the second coating side indicative of the response signal from the coating material in response to the optical excitation, and the visual representation is indicative of the optical signal captured in each of the imaging sensors.
11. The apparatus according to claim 1, wherein the display device comprises a monitor screen or a headset for presenting the visual representation.
12. The apparatus according to claim 1, wherein the visual representation of the response signal comprises a pH map overplayed on an image of the biological tissue.
13. The apparatus according to claim 1, wherein the optical medium comprises a sensing plate having the coating material and a fiber bundle having a bundle end placed adjacent to the sensing plate, the fiber bundle comprising a plurality of optical fibers, each optical fiber comprising a fiber tip located at the bundle end, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material in response to the excitation at the fiber tip, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
14. The apparatus according to claim 1, wherein the optical medium comprises a sensing plate having the coating material, the sensing plate arranged to receive the excitation light for providing the optical excitation to the coating material, said apparatus further comprising an image sensor configured to capture a spectral image indicative of the response signal from the sensing plate for providing the visual representation to the display device.
15. A method for inspecting a biological tissue, comprising: arranging an optical medium having a coating material arranged to contact the biological tissue; receiving an excitation light for providing an optical excitation to the coating material, the coating material comprising a pH sensitive component configured to provide a response signal indicative of a pH value of the biological tissue in response to the optical excitation; and presenting a visual representation of the response signal.
16. The method according to claim 15, wherein the optical medium comprises a fiber bundle having a bundle end adjacent to the biological tissue, the fiber bundle comprising a plurality of optical fibers arranged in a linear array or a two-dimensional array, each optical fiber comprising a fiber tip located at the bundle end, the fiber tip having a coating comprising the coating material, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material at the fiber tip in response to the excitation, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
17. The method according to claim 15, wherein the optical medium comprises a V-groove block having a groove arranged to hold a sample of the biological tissue, the V-groove block comprising two groove walls, each groove wall having a coating comprising the coating material, the coating having a first coating side arranged to contact the sample of the biological tissue and an opposing second coating side arranged to receive a fiber bundle, the fiber bundle comprising a plurality of optical fibers, each optical fiber comprising a fiber tip located adjacent to the second coating side of the coating, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material at the fiber tip in response to the optical excitation, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
18. The method according to claim 15, wherein the optical medium comprises a V-groove block having a groove arranged to hold a sample of the biological tissue, the V-groove block comprising two groove walls, each groove wall having a coating comprising the coating material, the coating having a first coating side arranged to contact the sample of the biological tissue and an opposing second coating side, wherein the V-groove block is arranged to receive the excitation light for providing the optical excitation to the coating material from the second coating side, said apparatus further comprising two imaging sensors, each imaging sensor arranged to capture an optical signal from the second coating side indicative of the response signal from the coating material in response to the optical excitation, and the visual representation is indicative of the optical signal captured in each of the imaging sensors.
19. The method according to claim 15, wherein the optical medium comprises a sensing plate having the coating material and a fiber bundle having a bundle end placed adjacent to the sensing plate, the fiber bundle comprising a plurality of optical fibers, each optical fiber comprising a fiber tip located at the bundle end, wherein the optical fibers are arranged to receive the excitation light for providing the optical excitation to the coating material, and each of the optical fibers is configured to provide an optical signal indicative of the response signal from the coating material at the fiber tip in response to the excitation, and the visual representation is indicative of the optical signal provided by each of the optical fibers.
20. The method according to claim 15, wherein the optical medium comprises a sensing plate having the coating material, the sensing plate arranged to receive the excitation light for providing the optical excitation to the coating material, said apparatus further comprising an image sensor configured to capture a spectral image indicative of the response signal from the sensing plate for providing the visual representation to the display device.
Description
BRIEF DESCRIPTION OF THE DRAWING
[0045] The drawing includes the following Figures:
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DETAILED DESCRIPTION OF THE INVENTION
[0056] The present invention makes use of a bundled fiber-optic probe for the imaging of localized surface pH in a biological tissue and specifically for the determination of tumor margin or the boundary between normal and cancerous cells. The approach also provides direct mapping of the tumor margin via a display that could be provided for a surgeon's or pathologist's inspection, or via a display mapped back onto the probe via a second fiber optic bundle that allows the surgeon to see the pH map as soon as the probe is contacted with the tissue surface.
[0057]
[0058] As shown in
[0059] In the embodiment as shown in
[0060] As a different embodiment,
[0061] As shown in
[0062] The pixelated pH mapping 72 can also be conveyed to a headset 85 which can be a form of VR (virtual reality) headset or AR (augmented reality) headset or glasses. The pH mapping 72 can be overplayed on a direct view such as a heads-up display.
[0063] In the embodiment as shown in
[0064] In the embodiment as shown in
[0065]
[0066] It should be noted that the upper and lower limits of pH defined in the above are nominal and others could be defined, but these represent the physiological pH values of interest generally for the pH of the microenvironment of cancer tissue.
[0067] As shown in
[0068] The advantage of the optical feedback/visual mapping to the probe head as described in
ALTERNATIVE EMBODIMENTS/UTILITY
1) Excised Tumor Profiling:
[0069] Once a surgeon has completed a surgical excision of a tumor, the tumor is marked and tagged for areas of concern where the margin may not have been fully encompassed/captured surgically. Tissue samples taken from the locations are then sent to pathology for margin determination. This is a very time-consuming process, as for a giving tumor, there could be tens of samples taken, each of which must be dissected, fixed, and cut into very thin slices, which are then stained for contrast and mounted onto glass slides. The slides are examined by a pathologist under a microscope for verification that the surgical margin was achieved all around the 3D edges of the tumor. The probe that senses the pH level of the biological tissue as described in the present invention can also be used in this application to quickly validate areas of the excised tumor that have normal tissue on the surface and those that potentially have tumor cells on the surface, indicating the margin was not removed in the surgery.
2) Biopsy Screener:
[0070] Standard histopathology of biopsy specimens is slow and labor-intensive. Several tissue samples are often harvested from a patient to ensure the probably that a good sample of tumor tissue is being sent on to pathology for analysis. As there is not a priori indication of which samples may contain tumor samples, all samples must be processed. The negative/clear read rate of these samples is much greater than the positive read rate. Consequently, a device that could screen the sample prior to their full pathology processing could be a significant advantage, as it reduces the work load for pathology departments by providing pre-screened samples.
[0071]
[0072]
[0073] As shown in
[0074] In summary, the present invention uses two versions of optical media to inspect a biological tissue: a fiber bundle having a plurality of optical fibers to be placed adjacent to the biological tissue, and an optically transparent V-groove block having a groove to hold a sample of the biological tissue. Each of the optical media comprises a coating material arranged to contact the biological tissue. The optical medium is arranged to receive an excitation light for providing an optical excitation to the coating material. The coating material contains a pH sensitive or responsive component configured to provide a response signal indicative of a pH value of the biological tissue in response to the optical excitation. A display device is arranged to present a visual representation of the response signal.
THE SCOPE OF THE INVENTION
[0075] Thus, although the present invention has been described with respect to one or more embodiments thereof, it will be understood by those skilled in the art that the foregoing and various other changes, omissions and deviations in the form and detail thereof may be made without departing from the scope of this invention.