Systems, devices, and methods for time-resolved fluorescent spectroscopy

US10656089B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10656089-B2
Application numberUS-201715475750-A
CountryUS
Kind codeB2
Filing dateMar 31, 2017
Priority dateApr 1, 2016
Publication dateMay 19, 2020
Grant dateMay 19, 2020

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  5. First independent claim

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Abstract

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Provided herein are devices, systems, and methods for characterizing a biological sample in vivo or ex vivo in real-time using time-resolved spectroscopy. A light source generates a light pulse or continuous light wave and excites the biological sample, inducing a responsive fluorescent signal. A demultiplexer splits the signal into spectral bands and a time delay is applied to the spectral bands so as to capture data with a detector from multiple spectral bands from a single excitation pulse. The biological sample is characterized by analyzing the fluorescence intensity magnitude and/or decay of the spectral bands. The sample may comprise one or more exogenous or endogenous fluorophore. The device may be a two-piece probe with a detachable, disposable distal end. The systems may combine fluorescence spectroscopy with other optical spectroscopy or imaging modalities. The light pulse may be focused at a single focal point or scanned or patterned across an area.

First claim

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What is claimed is: 1. A probe system for classifying or characterizing a biological sample, the system comprising: a distal part; a proximal part coupled to the distal part; a proximal transmission element disposed in the proximal part and configured to convey pulsed optical excitation signals; a distal transmission element disposed in the distal part and being coupled to the proximal transmission element, the distal transmission element being configured to receive the pulsed optical excitation signals from the proximal transmission element and convey the pulsed optical excitation signals to the biological sample, wherein the biological sample generates responsive optical signals in response to the pulsed optical excitation signals and the responsive optical signals are received by the distal transmission element; a signal collection element disposed in the proximal part and being coupled to the distal transmission element, the signal collection element being configured to receive the responsive optical signals from the distal transmission element; an optical assembly comprising a filter wheel comprising a plurality of spectral filters, the filter wheel configured to receive the responsive optical signals from the signal collection element and temporally split the responsive optical signals into a plurality of temporally distinct spectral bands corresponding to the plurality of spectral filters; and a processor coupled to the optical assembly and configured to characterize the biological sample using time-resolved fluorescence spectroscopy in response to the plurality of temporally distinct spectral bands in near real-time or real-time, wherein one or more of the signal collection element or the optical assembly is characterized by at least one numerical aperture and a total cross-sectional area for light passage, and wherein a square of the at least one numerical aperture multiplied by the total cross-sectional area is 0.018 mm 2 at locations of the one or more of the signal collection element or the optical assembly conveying light. 2. The system of claim 1 , wherein the optical assembly comprises an optical delay element and a demultiplexer, wherein the demultiplexer comprises wavelength splitting filters configured to split the responsive optical signals into the spectral bands, and wherein the optical delay element is configured to provide one or more time delays to the spectral bands. 3. The system of claim 2 , wherein the optical delay element comprises at least one graded-index fiber. 4. The system of claim 1 , wherein the distal part is disposable and replaceable. 5. The system of claim 1 , wherein the distal part comprises a handheld probe. 6. The system of claim 1 , wherein the distal part comprises an ablation element. 7. The system of claim 1 , wherein the optical assembly comprises a photomultiplier tube. 8. The system of claim 1 , wherein the filter wheel comprises a high speed filter wheel. 9. The system of claim 1 , further comprising a scanning mechanism configured to scan the pulsed optical signal across a pre-determined portion of the biological sample. 10. The system of claim 1 , wherein one or more of the signal collection element or the optical assembly comprises one or more optical components having a numerical aperture of 0.22. 11. The system of claim 1 , wherein the at least one numerical aperture is of one or more fibers of the one or more of the signal collection element or the optical assembly, and wherein the total cross-sectional area is based on the number of the one or more fibers and the diameter of the one or more fibers. 12. A probe for classifying or characterizing a biological sample, the probe comprising: a distal part coupled to a proximal part, the proximal part comprising a proximal transmission element disposed in the proximal part and configured to convey pulsed optical excitation signals; and a distal transmission element disposed in the distal part and being coupled to the proximal transmission element, the distal transmission element being configured to receive the pulsed optical excitation signals from the proximal transmission element and convey the pulsed optical excitation signals to the biological sample, wherein the biological sample generates responsive optical signals in response to the pulsed optical excitation signals and the responsive optical signals are received by the distal transmission element, wherein a signal collection element is coupled to the distal transmission element and configured to receive the responsive optical signals from the distal transmission element, wherein an optical assembly comprising a filter wheel comprising a plurality of spectral filters, the filter wheel receives the responsive optical signals from the signal collection element and temporally splits the responsive optical signals into a plurality of temporally distinct spectral bands corresponding to the plurality of spectral filters, and wherein the biological sample is characterized with a processor coupled to the optical assembly using time-resolved fluorescence spectroscopy in response to the plurality of temporally distinct spectral bands in near real-time or real-time, wherein one or more of the signal collection element or the optical assembly is characterized by at least one numerical aperture and a total cross-sectional area for light passage, and wherein a square of the at least one numerical aperture multiplied by the total cross-sectional area is 0.018 mm 2 at locations of the one or more of the signal collection element or the optical assembly conveying light. 13. The probe of claim 12 , wherein the optical assembly comprises an optical delay element and a demultiplexer, wherein the demultiplexer comprises wavelength splitting filters configured to split the responsive optical signals into the spectral bands, and wherein the optical delay element is configured to provide one or more time delays to the spectral bands. 14. The probe of claim 13 , wherein the optical delay element comprises at least one graded-index fiber. 15. The probe of claim 12 , wherein one or more of the proximal part or the distal part comprises a coupling element which couples the distal transmission element to the proximal transmission element and the signal collection element. 16. The probe of claim 12 , wherein the distal transmission element comprises a central fiber to direct the light pulse from the proximal transmission element to the biological sample and at least one peripheral fiber to collect the responsive optical signals from the biological sample. 17. The probe of claim 16 , wherein the distal transmission element comprises a front-facing window to reduce contamination of space between the central and peripheral fibers. 18. The probe of claim 16 , wherein the at least one peripheral fiber comprises a plurality of fibers. 19. The probe of claim 12 , wherein distal part is configured to be handheld. 20. The probe of claim 12 , wherein distal part comprises a suction cannula. 21. The probe of claim 12 , wherein the distal part is disposable. 22. The probe of claim 12 , wherein the distal part comprises an ablation element. 23. The probe of claim 22 , wherein the ablation element is configured to apply one or more of radiofrequency (RF) energy, thermal energy, cryo energy, ultrasound energy, X-ray energy, laser energy, or optical energy to ablate a target tissue. 24. The probe of claim 23 , wherei

Assignees

Inventors

Classifications

  • using optical fibers · CPC title

  • Filters in general, e.g. dichroic, band · CPC title

  • Arrangements of light sources specially adapted for spectrometry or colorimetry · CPC title

  • Atomic fluorescence; Laser induced fluorescence · CPC title

  • with measurement of decay time, time resolved fluorescence · CPC title

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What does patent US10656089B2 cover?
Provided herein are devices, systems, and methods for characterizing a biological sample in vivo or ex vivo in real-time using time-resolved spectroscopy. A light source generates a light pulse or continuous light wave and excites the biological sample, inducing a responsive fluorescent signal. A demultiplexer splits the signal into spectral bands and a time delay is applied to the spectral ban…
Who is the assignee on this patent?
Black Light Surgical Inc, Cedars Sinai Medical Center
What technology area does this patent fall under?
Primary CPC classification G01N21/6402. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue May 19 2020 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 4 related publications on this page (citations in our corpus or others sharing the same primary CPC).