Raman spectroscopy method and system
The Raman spectroscopy system with a polarization probe addresses the challenge of early osteoarthritis detection by enabling simultaneous biochemical and structural analysis of articular cartilage, allowing for rapid, accurate diagnosis and timely treatment.
Patent Information
- Application Number
- JP2022547028
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-29
- Filing Date
- 2021-01-28
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2041-01-28
AI Technical Summary
Current diagnostic methods for osteoarthritis (OA) are inadequate for early-stage detection due to a lack of molecular specificity and inability to assess tissue structure, limiting treatment options to irreversible cartilage destruction.
A Raman spectroscopy system with a polarization probe that can be inserted into a joint, using a microlens to preserve polarization and enable simultaneous biochemical and structural analysis of articular cartilage, allowing for real-time quantification of collagen, GAG, and water content, and collagen alignment.
Enables early diagnosis of osteoarthritis by providing rapid, real-time biochemical and structural information, facilitating timely treatment interventions and improving diagnostic accuracy.
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Abstract
Description
[Technical Field]
[0001] [CROSS-REFERENCE TO RELATED APPLICATIONS] This application claims priority to U.S. Provisional Application No. 62 / 967,203, filed January 29, 2020, the contents of which are expressly incorporated herein by reference in their entirety.
[0002] [Technical field] SUMMARY OF THE INVENTION Embodiments of the invention described herein relate to methods and systems for obtaining structural and biochemical information of tissue by using Raman spectroscopy. [Background technology]
[0003] [Background and Prior Art] Osteoarthritis (OA) is a chronic, debilitating, painful condition characterized by the structural degeneration of articular cartilage, the load-bearing connective tissue that fills the ends of long bones. It is the most widespread cause of disability in adults, affecting more than 20% of the adult population in the United States, or more than 50 million people, and its incidence is predicted to rise sharply over the next few decades. Currently, there is no clinical treatment to halt the progression of the disease.
[0004] Articular cartilage degeneration during osteoarthritis (OA) occurs in stages. Early-stage degeneration is characterized by difficult-to-detect tissue changes: an initial loss of glycosaminoglycans (GAGs) from the uppermost cartilage layer and collagen disintegration (loss of alignment) at the articular surface (Figure 1). This is followed by much more substantial physical erosion of the collagen matrix until bone-to-bone contact is reached. Interestingly, the early stages of the disease, before substantial tissue erosion occurs, represent a critical clinical window during which intervention strategies (e.g., drug therapy, physical therapy, lifestyle modifications) may be most effective in reversing the development of cartilage degeneration. However, the ability to diagnose early-stage OA remains a considerable clinical challenge, and conventional imaging platforms (e.g., radiography, CT, MRI) are primarily suited to diagnosing later stages of the disease due to a lack of resolution and molecular specificity. For this reason, there is a strong need to introduce novel biomolecular-sensitive optical techniques for early in vivo diagnosis of OA.
[0005] The structure and composition of hyaline cartilage are optimized for its mechanical performance. It consists of a type II collagen (COL) fibril network that provides structure and tensile strength, complemented by a negatively charged sulfated glycosaminoglycan (GAG) matrix that provides compressive properties and retains interstitial water. More than 90% of applied joint load is supported by the pressurization of trapped water (interstitial fluid load support), resulting in the tissue's characteristic low-friction properties. Furthermore, cartilage is heterogeneous and structurally anisotropic, where collagen composition varies with depth (separated into multiple zones) and is optimized for mechanical load in each of the following zones: the superficial zone (SZ) consists of collagen aligned parallel to the articular surface, resisting surface shear and improving sliding; the transitional (middle) zone (MZ) consists of mixed-aligned collagen and GAGs that generate interstitial fluid load support; and the deep radial zone (DZ) has collagen fibers perpendicular to the subchondral plate, anchoring the cartilage to the subchondral bone. During OA, cartilage degradation (degradation) occurs in stages. Early on, GAGs are depleted from the SZ, accompanied by a loss of superficial collagen fiber organization and alignment. The loss of GAGs and COL alignment reduces fluid load support and transfers load to the collagen matrix, leading to cartilage erosion through the MZ and DZ, resulting in significant cartilage volume loss until bone-to-bone contact is reached.
[0006] A major clinical challenge is that the changes in joint structure and function that constitute OA morbidity and disability appear relatively late in the disease process. Currently, OA is diagnosed based on clinical symptoms (pain, swelling, and functional impairment) and image-based assessments (radiographs and magnetic resonance imaging (MRI)), which are biased toward late-stage OA pathoanatomy (cartilage volume loss, bone marrow edema, subchondral bone thickening, cysts, and osteophytes). 10 Irreversible destruction of cartilage occurs before clinical symptoms and radiographic signs become apparent. Therefore, OA diagnosed at a late stage, after tissue structural changes have occurred, limits treatment options. The inability to identify mild or early cartilage damage, when treatment strategies are most effective, remains a significant clinical obstacle.
[0007] Raman spectroscopy is an inelastic light scattering technique that provides in vivo optical biopsy of tissue at the molecular level. Using a fiber-optic probe, Raman spectra can be obtained from tissue in vivo (e.g., by endoscopy). Raman spectra vary linearly with concentration and therefore contain a wealth of quantitative information, potentially enabling the extraction of important extracellular matrix (ECM) component contents in tissue. The present inventors have extensive experience in Raman spectroscopy of cartilage as well as clinical interpretation of Raman techniques. For example, at the National University of Singapore (NUS), Dr. Bergholt pioneered real-time "Raman endoscopy" for noninvasive in vivo "optical biopsy" of the gastrointestinal (GI) tract (Gastroenterology 2014:IF 20.877). This technology has been applied to over 800 patients over a five-year period and has resulted in three patent applications, which have recently been commercialized in the form of an endoscopic medical device (IMDX™, Endofotonics Pte Ltd). This work then enabled the extension of this system as a platform technology to multiple organs in humans, including the oral cavity, nasopharynx, larynx, esophagus, stomach, and colon (J Raman spectroscopy, 2012; J Biomed Opt, 2012; J Biophotonics, 2016a). In contrast, no clinical Raman method exists for the diagnosis of OA.
[0008] More specifically, Raman spectroscopy is based on the inelastic scattering of photons. When monochromatic laser light induces changes in molecular polarizability during vibration, a small fraction (~10 8Raman scattering occurs with varying wavelengths. Raman-scattered light reveals the vibrational modes of the constituent molecules, and the absorbed energy corresponds to specific Raman-active vibrational modes that define the molecular "fingerprint." Thus, the Raman spectrum of cartilage carries information about individual molecular vibrational bonds corresponding to specific biochemical building blocks (amides, sulfates, carboxylic acids, and hydroxyls) of the constituents of hyaline cartilage (GAGs, CO, and HO). Previous studies have demonstrated that the Raman spectrum of cartilage exhibits statistical changes in response to mechanical injury and OA. However, the implementation of Raman spectroscopy as a diagnostic tool for cartilage health has been hindered by 1) the lack of an intra-articular fiber-optic Raman needle probe for clinically compatible in vivo diagnostics and 2) the inability to extract specific and quantitative biochemical and structural metrics for early-stage OA. As a result, to date, no platform capable of achieving in vivo Raman diagnosis of early-stage OA has been demonstrated.
[0009] US 2019 / 0343394 A1 describes a cartilage tissue analyzer that uses univariate analysis (single peak) to measure the major ECM components in articular cartilage (GAGs and collagen) and cartilage thickness (by measuring subchondral bone signals). However, this technique faces limitations in terms of lack of molecular specificity and lack of assessment of tissue structure. This lack of molecular specificity arises due to overlapping vibrational bands in the spectrum that cannot be easily deciphered as specific molecules in complex tissues. Indeed, achieving identification (molecular specificity) is a major challenge in diagnostic Raman spectroscopy. Our regression analysis offers much higher performance in terms of specificity and accuracy, offering the possibility of quantification of numerous additional important components of cartilage ECM (e.g., GAG subtypes [hyaluronic acid, chondroitin sulfate, keratin sulfate, heparin] and collagen subtypes [type I collagen, type II collagen, type X collagen]). Furthermore, our polarized Raman spectroscopy allows for assessment of articular cartilage structure by measuring the alignment of the collagen ECM. Summary of the Invention
[0010] Embodiments of the present invention address the above-mentioned problems by providing a new method for monitoring and diagnosing abnormal tissue. The Raman system includes a polarization probe that can be fitted into an arthroscopic portal or a hypodermic needle. These needles can be inserted into the joint, and the Raman probe can be placed in contact with the articular cartilage surface. The present invention includes a Raman system that simultaneously provides biochemical (collagen, GAG, and water, as well as molecular subtypes) and structural (of structural components such as collagen) analysis. The methods and systems described herein can be used to obtain either biochemical or structural information alone. While obtaining both biochemical and structural information simultaneously is not required, this is an advantageous embodiment. It is widely accepted that light diffusion scrambles the light polarization in tissue. For this reason (and to target early superficial OA), we incorporate a microlens at the tip of the Raman probe. Using the multiplexing acquisition principle, we can read out Raman scattered light from two light polarizations in parallel and image them through a spectrometer onto a 2D CCD camera. This allows for a single snapshot to be created to obtain both biochemical and structural information for diagnosis. The resulting data (two polarized Raman spectra) are analyzed in real time (<20 ms) using multivariate analysis to provide quantitative assessments of collagen, GAG, and water content, as well as collagen structural factors. The probe also contains a lens at the probe tip, allowing for diagnostic targeting of different depths within the cartilage surface, for example, targeting the cartilage surface where early-stage OA is most pronounced or deeper tissue regions where later-stage degeneration appears.
[0011] Evaluating both biochemical quantification of GAGs, collagen, and water in cartilage ECM and structural characterization of collagen matrix alignment is essential for early diagnosis of osteoarthritis. This system can serve as 1) a valuable clinical and preclinical research tool to investigate the efficacy of novel OA therapeutics and 2) an outpatient-based real-time diagnostic platform to guide early OA treatment courses in the future. This invention can further achieve widespread use in many biomedical applications, such as cancer and fibrosis diagnosis.
[0012] A thin fiber-optic Raman spectroscopic probe is directed intra-articularly via a hypodermic needle cannula to "optically biopsy" cartilage at specific anatomical sites under image guidance. We first establish the feasibility of Raman arthroscopy for diagnosing pathological features of cartilage degeneration in early-stage OA through parametric analysis of a series of ex vivo model systems: 1) Raman quantification of GAG content in enzymatically depleted bovine cartilage and aging human cartilage explants, 2) Raman quantification of the zonal collagen network organization in mechanically abraded bovine cartilage explants, and 3) Raman measurement of cartilage thickness. Finally, we performed in vivo Raman arthroscopy assessment of the composition of ovine femoral condyles to demonstrate the clinical feasibility of Raman OA diagnosis.
[0013] In view of the above, from a first aspect, the present disclosure relates to a system for obtaining structural information about tissue, comprising: (i) a probe configured to direct polarized light (polarized light) at the tissue and collect Raman scattering, (ii) a lens attached to a distal tip of the probe configured to focus the polarized light onto the tissue so that the polarized light is reflected from the tissue, generating Raman scattering collected by the probe, (iii) a beam splitter configured to split the Raman scattering into two polarization components, and (iv) a spectrometer configured to simultaneously and separately image the two polarization components to generate two Raman spectra.
[0014] Several advantages are obtained from embodiments according to the above aspects. For example, the design of the probe and spectrometer input coupling allows for simultaneous measurement of two polarizations. This allows for rapid measurement of structural information (e.g., collagen alignment). A beam splitter may be located within the probe itself. The spectrometer may be configured to simultaneously and separately image the two polarization components onto a camera to generate two Raman spectra.
[0015] In some embodiments, the system further comprises a processor and a memory containing computer program code. The memory and computer program code are configured to, using the processor, cause the processor to process and analyze the two generated Raman spectra to obtain structural information about the tissue. The analyses described herein may be performed by a machine learning program.
[0016] The computer program can analyze each polarized Raman spectrum almost instantaneously, which gives the methods and systems described herein real-time capabilities, which are explained in more detail below. The computer program reads out the two spectra separately but simultaneously.
[0017] In some embodiments, the system simultaneously obtains biochemical and structural information about the tissue.
[0018] Using the multiple acquisition principle, the Raman scattered light from the two optical polarizations can be read out in parallel and imaged onto a 2D CCD camera through a spectrometer, making it possible to obtain both biochemical and structural information for diagnosing and / or monitoring a condition in one snapshot.
[0019] In some embodiments, processing and analysis of the two Raman spectra generated obtains biochemical and structural information about the tissue.
[0020] In some embodiments, a first of the two polarization components is parallel to the polarization of the polarized light, and a second of the two polarization components is perpendicular to the polarization of the polarized light.
[0021] In some embodiments, the structural information is obtained by calculating the difference between the first and second polarization components, and / or the ratio between the first and second polarization components, and / or the anisotropy between the first and second components.
[0022] The difference between the first and second polarization components and / or the ratio between the first and second components and / or the anisotropy between the first and second components yields a collagen tissue spectrum, for example, the ratio can reveal differences in the Raman spectrum due to the integrity of superficial zone (SZ) collagen.
[0023] The anisotropy between the first and second components can be defined as follows:
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[0024] In some embodiments, the structural information includes a measure of structural alignment in the tissue.
[0025] This is advantageous because lower-order structural alignment can indicate different conditions. For example, disorganized tissue structure is a symptom of cancerous tissue, and in OA, parallel alignment is lost. Structural information can be classified using machine learning to determine whether tissue structures are aligned or not.
[0026] In some embodiments, biochemical information is obtained by quantifying the relative contribution of extracellular matrix (ECM) components in the generated Raman spectra.
[0027] In some embodiments, the biochemical information is obtained by calculating the sum of the first polarization component and the second polarization component.
[0028] Quantifying the relative contributions of ECM components allows for the identification of depletion of specific components, which can aid in the diagnosis and / or monitoring of the condition.
[0029] From a second aspect, the present disclosure relates to a system for obtaining biochemical information about tissue, the system comprising: (i) a probe configured to direct light toward tissue and collect Raman scattering; (ii) a lens attached to a distal tip of the probe configured to focus light onto the tissue so that the light is reflected from the tissue to generate Raman scattering collected by the probe; (iii) a spectrometer configured to image the Raman scattering to generate a Raman spectrum; (iv) a processor; and (v) a memory containing computer program code configured to cause the processor to process and analyze the generated Raman spectrum to obtain biochemical information about the tissue by quantifying the relative contributions of ECM components in the generated Raman spectrum.
[0030] As described above, quantifying the relative contributions of ECM components allows for monitoring changes to specific components in tissue. This can aid in diagnosing and / or monitoring a condition. This can be done without polarized light; the Raman spectrum used to obtain biochemical information in the first embodiment is the sum of two polarized (i.e., unpolarized) components. Thus, in situations where only biochemical information is needed, polarization is not required. Therefore, it would be advantageous to have a system and method that does not obtain structural information.
[0031] In some embodiments, quantifying the relative contribution of ECM components to the generated Raman spectrum involves using regression coefficients derived from multivariate least-squares regression analysis, which may be performed by a machine learning program.
[0032] The Raman spectral contributions of GAGs and water are characteristically "buried" under the much stronger COL signal, thereby obscuring the assessment of tissue GAG and water content. By decomposing and separating the relative contributions of the major cartilage ECM components (GAGs, COLs, and HO) to the Raman cartilage spectrum using regression coefficients derived from multivariate least-squares regression analysis, biochemical information regarding component content can be obtained.
[0033] In some embodiments, the least squares regression analysis comprises comparing the generated Raman spectrum to a reference Raman spectrum of an ECM component.
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[0034] In some embodiments, the ECM components include one or more of glycosaminoglycans, collagen, and / or water.
[0035] Measuring glycosaminoglycan (GAG) content is advantageous because GAG loss is a hallmark of early-stage OA. This allows for earlier diagnosis of OA and, therefore, earlier and more successful treatment. However, any ECM component can be used as long as it has a sufficiently strong spectrum to be identified within the generated Raman spectrum. This opens the door to a wide range of uses for the methods and systems described herein, from cancer diagnosis to fibrosis diagnosis, and from enamel analysis to brain surgery. For example, the methods and systems described herein can be used to distinguish between different collagen subtypes (e.g., types I, II, and X collagen) or glycosaminoglycan subtypes (e.g., hyaluron, chondroitin sulfate, heparin, and ketalin sulfate).
[0036] In some embodiments, the biochemical and / or structural information is obtained in real time.
[0037] The methods and systems described herein allow for real-time (less than 20 milliseconds) data readout and analysis, providing near-instantaneous information about the current location of the probe, which is extremely useful as it allows the clinician to instantly view biochemical and / or structural information about the tissue in which the probe is held.
[0038] In some embodiments, the tissue is musculoskeletal connective tissue.
[0039] In some embodiments, biochemical and / or structural information is used to identify tissue abnormalities.
[0040] Depletion of specific biochemicals in tissue (i.e., biochemical information) can be used to identify tissue abnormalities. Disorganized structures in tissue (i.e., structural information) can be used to distinguish tissue abnormalities. Identifying these tissue abnormalities can be used to aid in the diagnosis and / or monitoring of conditions.
[0041] In some embodiments, the tissue abnormality is cancerous.
[0042] In some embodiments, the biochemical and / or structural information is used to diagnose connective tissue degenerative disorders, such as osteoarthritis and / or degenerative disc disease. The biochemical and / or structural information can also be used to monitor therapeutic response, for example, tissue response to drugs, therapies, surgical interventions, graft transplants (e.g., osteochondral allografts, artificial tissue constructs, and / or cell transplants (e.g., autologous cell transplants).
[0043] In some embodiments, the tissue is an engineered tissue, and the biochemical and / or structural information is used to measure the growth and / or regeneration of the engineered tissue. The probes can be used to monitor the growth / regeneration / stability of tissue from surgical implantation procedures, such as osteochondral allograft implants, engineered tissue constructs, or cell transplants (e.g., autologous cell transplants).
[0044] In some embodiments, the source of light or polarized light is a laser.
[0045] In some embodiments, the probe comprises a needle, and the lens is attached to the tip of the needle and configured to contact the tissue.
[0046] Needle embodiments are advantageous for in vivo use as they can be inserted into a joint and placed in contact with the articular cartilage surface.
[0047] In some embodiments, the lens is a ball lens, preferably a sapphire ball lens.
[0048] As described herein, it is widely accepted in the art that light diffusion scrambles the polarization of light within tissue. Using a lens with a tight focus, such as a ball lens, overcomes the problem of preserving the polarization information in tissue. Without a tight focus lens, the polarization information would be impossible to extract. Ball lenses also allow for targeting the cartilage surface, where early-stage OA is most pronounced. A tight focus can have an optical depth of approximately 200–300 μm.
[0049] Different lenses can be used to ascertain information from different tissue depths. For example, if biochemical information about deep tissue regions is of interest, a lens with a longer focal length can be used. If superficial tissue regions are of interest, a lens with a shorter focal length can be used. However, for the purpose of using polarization information, the focal length must be short to preserve this information. Therefore, for deep tissues, structural information that relies on the polarization spectrum cannot be obtained because the tissue scrambles the polarization. For deep tissues, only biochemical information can be obtained.
[0050] In some embodiments, the probe comprises a long-focus Raman probe.
[0051] In long-focus Raman probe embodiments, the method further includes directing polarized light through a Raman-transparent window onto tissue, the tissue being maintained in a suitable environment (eg, a tissue culture plate).
[0052] This ex vivo embodiment achieves in situ Raman measurements on samples while they are maintained in culture. The Raman plate reader serves as a high-throughput, non-destructive platform for monitoring the composition of musculoskeletal connective tissue explants (e.g., cartilage, meniscus, tendons, ligaments, and intervertebral discs) or engineered tissues over time. This platform has great utility for studying tissue behavior in response to mechanochemical stimuli, mechanisms of pathological tissue degeneration, and the efficacy of therapeutic agents to inhibit or reverse degeneration, as well as engineered tissue development.
[0053] From a third aspect, the present disclosure relates to a method for obtaining structural information about tissue. This method corresponds to the system of the first aspect. Therefore, any embodiments and advantages described above in relation to the first aspect are equally applicable to this corresponding method. The method includes the steps of: (i) directing polarized light toward the tissue using a probe; (ii) focusing the polarized light onto the tissue using a lens, the lens being attached to a distal tip of the probe, such that the polarized light is reflected from the tissue to generate Raman scattering; (iii) collecting the Raman scattering using the probe; (iv) splitting the Raman scattering into two polarization components using a beam splitter; (v) simultaneously and separately imaging the two polarization components using a spectrometer to generate two Raman spectra; and (vi) processing and analyzing the two generated Raman spectra using a computer program to obtain structural information about the tissue.
[0054] In some embodiments, the method simultaneously obtains biochemical and structural information about the tissue.
[0055] From a fourth aspect, the present disclosure relates to a method for obtaining biochemical information about tissue. This method corresponds to the system of the second aspect. Accordingly, any of the embodiments and advantages described above in relation to the second aspect are equally applicable to this corresponding method. The method includes the steps of: (i) directing light toward tissue using a probe; (ii) focusing the light onto the tissue using a lens, the lens being attached to the distal tip of the probe, such that the light is reflected from the tissue to generate Raman scattering; (iii) collecting the Raman scattering using the probe; (iv) imaging the Raman scattering using a spectrometer to generate a Raman spectrum; and (v) processing and analyzing the generated Raman spectrum using a computer program to obtain biochemical information about the tissue, wherein the biochemical information is obtained by quantifying the relative contributions of major cartilage ECM components to the generated Raman spectrum.
[0056] From a fifth aspect, the present disclosure relates to a system for simultaneously obtaining biochemical and structural information about tissue, the system comprising: (i) a probe configured to direct polarized light toward the tissue and collect Raman scattering, (ii) a lens attached to a distal tip of the probe configured to focus the polarized light onto the tissue so that the polarized light is reflected from the tissue to generate Raman scattering that is collected by the probe, (iii) a beam splitter configured to split the Raman scattering into two polarization components, and (iv) a spectrometer configured to simultaneously and separately image the two polarization components to generate two Raman spectra.
[0057] This embodiment is advantageous because it provides the ability to simultaneously perform both conventional Raman (by summing spectra for biochemical analysis) and polarized Raman (e.g., by splitting, for structural analysis). The combination of (a) a polarized probe, (b) the ability to multiplex two polarizations to simultaneously generate two different Raman spectra, and (c) a far-field lens (with a very tight focus on the order of 200-300 μm) that is key to preserving polarization from the surface is highly advantageous. Furthermore, because this system has the ability to do this in real time, it can provide both biochemical and structural information at once.
[0058] This aspect relates to the simultaneous capture of biochemical and structural information, and therefore any of the embodiments and advantages described above with respect to the first aspect (which describes a system used for structural information) and the second aspect (which describes a system used for biochemical information) are equally applicable to this system.
[0059] An embodiment of the fifth aspect may further comprise a processor and a memory containing computer program code configured to, using the processor, cause the processor to process and analyze the two generated Raman spectra to obtain biochemical and structural information about the tissue.
[0060] From a sixth aspect, the present disclosure relates to a method for simultaneously obtaining biochemical and structural information about tissue. This method corresponds to the system of the fifth aspect. Accordingly, any of the embodiments and advantages described above with respect to the first, second, and fifth aspects are equally applicable to this corresponding method. The method includes the steps of: (i) directing polarized light toward the tissue using a probe; (ii) focusing the polarized light onto the tissue using a lens, the lens being attached to the distal tip of the probe, such that the polarized light is reflected from the tissue to generate Raman scattering; (iii) collecting the Raman scattering using the probe; (iv) splitting the Raman scattering into two polarization components using a beam splitter; (v) simultaneously and separately imaging the two polarization components using a spectrometer to generate two Raman spectra; and (vi) processing and analyzing the two generated Raman spectra using a computer program to obtain biochemical and structural information about the tissue.
[0061] The above-described embodiments provide a significant advancement over existing methodologies by diagnosing early-stage OA (GAG loss and collagen tissue destruction) using a safe, minimally invasive platform. The systems and methods described herein can also be used to diagnose other conditions where biochemical and structural information allow for identification of the condition. For example, cancerous tissue can be identified from structural information because cancerous tissue is structurally unorganized. Additionally, this system is low-cost (compared to traditional radiology devices) and non-ionizing, and therefore serves as the first biochemistry-based diagnostic platform that can be implemented in a clinician's office environment.
[0062] Conventional diagnostic techniques, such as CT and MRI, can only assess late-stage OA after significant cartilage erosion has occurred, when disease-modifying therapies are no longer feasible. Newer diagnostic techniques, such as contrast-enhanced MRI (dGEMRIC), have been shown to diagnose early-stage OA GAG loss but face many limitations, including the use of potentially harmful contrast agents, highly extended patient preparation / imaging periods, and the need for large, expensive equipment infrastructure. Our proposed polarized confocal needle probe offers a significant advance over existing methodologies by diagnosing early-stage OA (GAG loss and collagen tissue destruction) using a safe, minimally invasive platform.
[0063] There are no needle-based Raman methods for diagnosing OA. The present invention generally offers the following specific advantages over other Raman techniques: 1) The present invention provides real-time biochemical (GAG / collagen content) and structural (collagen sequence) information of in vivo tissues. 2) The design of the probe and spectrometer input coupling allows for simultaneous measurement of two polarizations, which allows for rapid collagen sequence measurement. 3) A needle probe with an integrated lens tightly focuses the light so that the polarization information of the tissue can be preserved. 4) The lens interface also allows for measurement of GAG loss from the cartilage surface, which is characteristic of early-stage OA. [Brief explanation of the drawings]
[0064] Embodiments of the present invention will now be further described, by way of example only, with reference to the accompanying drawings, in which: [Figure 1.1] OARSI grades of Safranin O / Fast Green stained condylar cartilage from a TKA are shown (1). Early stage OA (grades 1-2) is characterized by loss of GAGs and increased COL breakdown at the cartilage surface. Late stage OA (grades 3-5) is characterized by progressive COL erosion. [Figure 1.2]A schematic diagram of the multipolarized needle probe developed for biochemical and structural analysis of tissues is shown. PB is a polarizing beam splitter, LP is a long-pass filter, DB is a dichroic beam splitter, BP is a band-pass filter, and P is a linear polarizer. [Figure 1.3] (a) shows the Raman spectrum of silicon under full rotation of the incident laser polarization, and (b) shows the polar diagram of the 520 cm-1 peak intensity under full polarization rotation. [Figure 1.4] 1 shows screenshots of the developed software that implements multi-polarization Raman acquisition (perpendicular + parallel) and analysis. [Figure 1.5(1)] Figure 1 shows the results of Raman probe GAG measurements. (A) GuHCl / HAdase-induced GAG depletion in cartilage explants (saf-0 histology and DMMB measurements), (B) GuHCl / HAdase-induced decrease in Raman intensity in the 1000–1100 cm-1 and 1300–1450 cm-1 wavenumber regions (mean ± SD), and (C) linear regression decomposition of cartilage Raman spectra into component spectra, showing that the concentrations of GAG, COL, and HO weaken the GAG contribution to the Raman spectrum after 24 hours of GuHCl treatment. [Figure 1.5(2)] Figure 1 shows Raman probe GAG measurement results, (D) extracted scores for GAG, COL, and HO for each treatment, (E) correlation between Raman GAG scores and (F) Raman GAG:HO score ratio to assay-measured GAG content, and (F) GAG score correlation to explant EY. [Figure 1.6] Figure 1 shows cartilage surface targeting (A) trypsin-induced surface GAG depletion from cartilage explants, and (B) surface-targeting fiber optic ball lenses improve the sensitivity of measuring surface GAG loss. [Figure 1.7] (a) Polarized Raman spectra ±1 standard deviation (SO) of the superficial zone (n=45 spectra), intermediate zone (n=45 spectra), and deep zone (n=45 spectra) of articular cartilage using a Raman needle probe. (b) Difference spectra ±1 SD of the three tissue types. [Figure 1.8](a) PLS-DA latent variable (LV) loadings of depolarized ratio Raman spectra showing distinct peaks associated with collagen, (b) PLS-DA latent variable (LV) score plot showing separation of superficial and deep zone cartilage. [Figure 1.9] 1 illustrates a needle probe according to an embodiment of the present invention. [Figure 2.1] 1 shows in vivo Raman arthroscopy diagnostics. [Figure 2.2(1)] Raman arthroscopy GAG measurement results are shown. [Figure 2.2(2)] Raman arthroscopy GAG measurement results are shown. [Figure 2.3] 1 shows Raman arthroscopy depth selection measurement results. [Figure 2.4(1)] Figure 1 shows ex vivo Raman arthroscopy GAG measurements in human cartilage. [Figure 2.4(2)] Figure 1 shows ex vivo Raman arthroscopy GAG measurements in human cartilage. [Figure 2.5] 1 shows polarized Raman arthroscopy collagen alignment measurements. [Figure 2.6] 1 shows Raman arthroscopy cartilage thickness measurement results. [Figure 3.1] 1 shows a Raman plate reader for monitoring the composition of live cartilage explants in culture. [Figure 3.2] (a) Representative 2D stacked area plot of the spectral contributions of GAG, COL, and HO to cartilage Raman spectra with and without IL-1α treatment at day 15; (b) Raman GAG score; (c) assay-measured GAG content of explants treated with various dose / duration regimens of IL-1α; (d) linear correlation between Raman GAG score and GAG content of explants treated with IL-1α. [Figure 3.3] GAG scores measured repeatedly on a Raman plate reader for live explants treated with or without IL-1α over a 6-day period are shown. [Figure 4.1](a) Schematic of Raman needle arthroscope for degeneration diagnosis, (b) Raman evaluation of a sheep knee joint in vivo, (c) Raman probe in direct contact with the femoral condyle visualized by an arthroscopic camera, (d) Raman spectrum obtained in vivo of a sheep femoral condyle, and (e) 2D stacked area graph showing the contributions of GAG, COL, HO, and subchondral bone to the composite sheep cartilage Raman spectrum after multivariate linear regression. [Figure 4.2] 2D stacked area graphs of GAG, COL, and HO contributions to IVD Raman spectra in the nucleus pulposus (NP) and annulus fibrosus (AF) of the IVD before and after degeneration are shown. [Figure 4.3] Raman GAG and HO scores of NP and AF before and after denaturation are shown. [Figure 5(1)] 1 shows Raman needle probe monitoring of artificial cartilage growth. [Figure 5(2)] 1 shows Raman needle probe monitoring of artificial cartilage growth. [Figure 5(3)] 1 shows Raman needle probe monitoring of artificial cartilage growth. [Figure 6] 1 is a block diagram of a system according to an embodiment of the present invention. [Figure 7.1] We show how the methods and systems described herein can be applied to identify cancerous tissue. Polarization difference (parallel-perpendicular) spectra ±1 SD for (a) normal tissue zones (n=20 spectra), (b) cancerous tissues (n=20), and (c) the depolarization ratio between normal and cancerous tissues, show distinct peaks associated with human tissue. [Figure 7.2] (a) PLS-DA score plot showing separation between normal and cancer tissues, (b) PLS-DA latent variable (LV) loadings of depolarized ratio Raman spectra showing distinct peaks associated with human tissues. DETAILED DESCRIPTION OF THE INVENTION
[0065] [overview]
[0066] In summary, embodiments of the present invention relate to methods and systems for obtaining biochemical and / or structural information about tissue. In some embodiments, a laser beam is sent through a polarizer to generate polarized light. The polarized light then travels down a probe and reaches a lens. The lens focuses the light onto the tissue. The light reflects off the tissue, generating Raman scattering. The Raman scattering is collected by the probe and directed to a beam splitter, which may be internal to the probe itself. The beam splitter splits the Raman scattering into two polarization components, one parallel and one perpendicular to the polarization of the polarized light. The two polarization components are directed to a spectrometer via a bifurcated optical fiber. The bifurcated fiber acts as a slit for the spectrometer, and the separation of the fibers generates two clearly separated Raman spectra on a CCD camera. The two Raman spectra are then processed and analyzed using a computer program executed by a processor to obtain biochemical and structural information about the tissue.
[0067] The present invention has both in vivo and ex vivo applications. In some in vivo embodiments, the probe includes a needle, and a lens is attached to the distal tip of the needle, with the lens in contact with the tissue. To tightly focus the polarized light onto the tissue, the lens may be a ball lens, e.g., a sapphire ball lens. In some ex vivo embodiments, the probe may include a long-focus plano-convex lens used in conjunction with a Raman-compatible tissue culture chamber.
[0068] Some embodiments of the present invention are directed to a polarization probe compatible with a hypodermic needle. An embodiment of the present invention relates to a system for obtaining biochemical and structural information about tissue, comprising a hypodermic hollow needle with an integrated lens disposed at the tip of the needle. The lens can collect Raman photons (i.e., Raman scattered light) at the cartilage surface. The system includes a Raman system that simultaneously provides biochemical analysis (of collagen, GAGs, and water) and structural analysis (of collagen). The needle and lens enable the preservation of polarized Raman photons from collagen fibrils. Simultaneous multiplexed measurements of two (perpendicular and parallel) polarizations are achieved by (a) splitting the detected Raman scattered light using a polarizing beam splitter and (b) coupling the split light to a spectrometer input slit with two separate fibers and a segmented CCD for multiplexing. The system further includes a computer program that simultaneously reads out the two Raman spectra and performs preprocessing and multivariate analysis of the Raman spectra (perpendicular and parallel), as well as analysis of the perpendicularly and parallel polarized Raman spectra for collagen analysis.
[0069] Polarized Raman spectra can be acquired by focusing excitation light very strongly onto the tissue surface using a confocal lens-based needle probe. Focusing the light achieves the additional benefit of collecting Raman spectra from the uppermost cartilage region, where early-stage OA is most prevalent. To this end, embodiments of the present invention include a novel Raman technique that simultaneously measures two directional polarizations (perpendicular and parallel) and extracts structural information about the alignment of the collagen matrix. Furthermore, embodiments of the present invention include a confocal lens-based needle probe that can measure GAG, collagen, and water content in the uppermost zone of articular cartilage, where early-stage OA is most prevalent. Simultaneous acquisition of both biochemical information (GAG / collagen content) and structural information (collagen alignment) according to the present invention can potentially improve disease diagnosis and detection.
[0070] Various aspects and details are described below with reference to the drawings.
[0071] More specifically, we describe the development of a novel intra-articular fiber-optic Raman diagnostic platform for the first comprehensive evaluation of the prominent degenerative changes that occur in early-stage OA: surface GAG depletion and surface collagen degradation (alignment loss). The platform consists of 1) a subcutaneous needle-compatible fiber-optic probe that enables rapid intra-articular Raman spectral acquisition of articular cartilage through routine skin puncture; 2) acquisition of polarized Raman spectra to measure collagen alignment in articular cartilage; and 3) a lens interface for evaluating GAG loss and collagen alignment loss in the cartilage surface layer, where early OA degeneration is most pronounced (Figure 1.1). Intra-articular Raman spectroscopy can serve as an innovative platform, providing the first fully quantitative biochemical diagnosis of early-stage OA. The Raman platform is label-free, minimally invasive, and cost-effective. The successful development of this system can serve as a novel clinical tool, enabling 1) novel evaluation of the effectiveness of OA treatment developments and 2) a routine clinical diagnostic platform to guide future treatment courses. Implementation of the hypodermic needle-probe interface enables the first biochemistry-based diagnostic platform that can be implemented in a clinician's office environment.
[0072] A fundamental challenge for the implementation of this platform is the development of novel optical-based hardware capable of achieving the necessary Raman spectral acquisition and analysis. It is important to note that previously developed hypodermic needle-compatible fiber optic Raman probes rely on silica fibers, which are limited by the strong background signal of silica, which obscures the tissue Raman signal. As an alternative, hollow-needle Raman probes have been developed. However, these systems omit distal optics to increase the probe's numerical aperture (NA) and require extended acquisition times (>60 s), which are not clinically feasible. Based on our previous in vivo work in humans, integration times of less than 0.5 s are necessary to be clinically feasible.
[0073] Evaluating both the biochemical quantification of GAGs, collagen, and water in cartilage ECM and the structural characterization of the collagen matrix arrangement is essential for the early diagnosis of osteoarthritis. An interesting aspect of Raman spectroscopy is that scattered Raman light can be polarized perpendicularly or parallelly, revealing specific information about molecular structure. Few examples of polarized Raman spectroscopy on tissue have been demonstrated, and these have only been performed with microscope setups. However, in the biomedical field, it is widely accepted that polarized Raman spectroscopy of tissue scrambles the polarization due to ballistic (diffuse) light scattering. For this reason, it has been thought that the polarization properties of Raman light cannot be utilized for tissue evaluation. Our research hypothesis was that polarized Raman spectra could be obtained by focusing the excitation light extremely tightly onto the tissue surface using a confocal lens-based needle probe. Light focusing achieves the additional advantage of collecting Raman spectra from the uppermost cartilage region, where early-stage OA is most prevalent. To this end, we aimed to develop a novel Raman technique that simultaneously measures two directional polarizations (perpendicular and parallel) to extract structural information about the arrangement of the collagen matrix. Furthermore, we propose that a confocal lens-based needle probe can measure GAG, collagen, and water content in the uppermost region of articular cartilage, where early-stage OA is most prevalent. The simultaneous acquisition of both biochemical (GAG / collagen content) and structural (collagen sequence) information by our novel platform may improve disease diagnosis and detection.
[0074] For Raman spectroscopy to provide both chemical and structural information (i.e., detect both GAG / collagen content and collagen sequence in joints) and be viable for diagnosing OA, there are several important challenges that must be overcome. (i) The concentrations of tissue components (collagen, GAGs, and water) in variable tissue regions of cartilage must be measured (e.g., superficial zone vs. deep zone). (ii) To extract structural information from collagen, the polarization of the Raman signal from the tissue must be preserved. Conventional Raman probes do not preserve polarization due to diffuse light scattering. Direct collection of Raman scattered light using optical fibers further scrambles the polarization. (iii) Polarized Raman spectra must be measured simultaneously in real time (<0.5 s) from tissue in both perpendicular and parallel polarization directions, which requires continuous acquisition in a manner that is currently possible but not clinically feasible.
[0075] [Multiple polarization needle Raman probe]
[0076] Figure 1.2 shows an overview of the multi-polarization Raman needle probe system. The Raman spectroscopy system consists of a 785 nm laser (B&W Tek BRM-7850.55-100-0.22-FC, 600 mW) and a high-throughput near-infrared (NIR) lens spectrometer (Princeton Instruments Acton LS 785, 750-1100 nm). For the Raman probe, the laser is coupled to a Glan-Laser Karlssite polarizer (Thorlabs GL10-B, extinction ratio = 10 5 The laser beam was polarized and sharpened by coupling through a 785 nm MaxLine® laser clean-up filter (Semrock LL01-785-25) and then guided through an uncoated aluminum needle (φ = 2 mm, φ = 50 mm) and tightly focused onto the tissue using a sapphire ball lens (AWI 2 mm AR-coated sapphire lens). The Raman scattered light reflected from the tissue was then filtered through a 801 nm edge BrightLine® single-ended dichroic beam splitter (Semrock FF801-Di02-25x36), a 785 nm EdgeBasic™ long-pass edge filter (Semrock BLP01-785R-25), and a polarizing beam splitter (Thorlabs CM1-PBS252, 620-1000 nm, Extinction Ratio = 10). 3The Raman signal is then split into two polarization components, one parallel and one perpendicular to the laser polarization, and passed through a bifurcated optical fiber (105 μm Thorlabs BFY105LS02). The bifurcated fiber, acting as a slit, is directly coupled to a spectrometer, and the separation of the fiber core produces two clearly separated Raman spectra on a CCD camera (Princeton Instruments Pixis 400, 120-1100 nm) (see Figure 1.2(b)).
[0077] Polarization experiments were performed to ensure that the system maintained laser and Raman polarization throughout the system. Polarized Raman measurements were performed on silicon wafers. Due to the highly crystalline structure of silicon, the corresponding Raman peak intensity is highly dependent on the polarization of the incident laser. The laser polarizer was adjusted so that 0 degrees of rotation corresponds to parallel laser polarization. Each measurement was performed using an acquisition time of 1 second. Figure 1.3(a) shows the polarized Raman spectrum over a full 360 degree rotation. Figure 1.3(b) shows the Raman spectrum at 520 cm -1 Figure 1.3(a)-(b) shows the polar plot of the intensity variation across all directions of the main silicon peak at . From Figure 1.3(a)-(b), the vibrational peak intensity shows that the laser polarization is maintained throughout the system.
[0078] To determine the depth of field of the system in air, a penetration depth test was performed on the same silicon sample. The needle was placed on the surface of the sample and raised in 25 μm intervals until the silicon signal was lost. Figure 1.3(c) shows the penetration depth through the air medium, demonstrating an effective focal length of 325 μm, which allows for precise targeting of the superficial cartilage layer associated with early OA.
[0079] [Software package for real-time data processing]
[0080] To control the multipolarized Raman needle system, we developed a comprehensive real-time software package that reads the two spectra and preprocesses them individually. This software was developed in a Matlab scripting environment with a C interface for camera control. Data preprocessing includes dark signal subtraction, autofluorescence removal, and normalization to standardize the Raman spectra before multivariate statistical analysis. Following preprocessing, the Raman spectra are analyzed in two ways: 1) Summing the perpendicular and parallel Raman spectra equals the unpolarized Raman spectrum, which can be used for conventional biochemical analysis. Non-negative linear least-squares regression of the spectra from purified collagen, GAG, and water is used to estimate their concentrations in tissue in situ. 2) Calculating the collagen tissue spectrum, given by the difference Raman spectrum in polarization (perpendicular-parallel) and the ratio spectrum (perpendicular / parallel) or anisotropy.
[0081] This platform implements an important step towards facilitating improved diagnostics through both biochemical and structural analysis for diagnostic methods. 1) A needle with an integrated lens at the tip collects Raman photons at the cartilage surface, which is where the early onset of OA occurs. The hollow needle with the lens allows us to preserve polarized Raman photons from collagen fibrils. This is an unexpected finding in the field, since it is well accepted that tissue scrambles polarized light. 2) By splitting the Raman scattered light using a polarizing beam splitter and coupling it to two separate fibers and the spectrometer input slit, and by segmenting the CCD for multiplexing, multiplexed measurements of the two (perpendicular and parallel) polarizations are made simultaneously. Only in this way does this technique become clinically viable through rapid acquisition. 3) A software package for simultaneously reading and preprocessing two Raman spectra, as well as multivariate analysis of Raman spectra (perpendicular + parallel) and analysis of perpendicular and parallel polarized Raman spectra for collagen analysis.
[0082] To demonstrate the functionality of the system developed here, we evaluate the ability of the novel multi-fiber optic polarized Raman probe to assess key degenerative changes that occur in early-stage OA: i) GAG depletion from the cartilage surface and ii) detection of changes to collagen structural arrangement.
[0083] Quantification of GAG depletion in articular cartilage using a multipolarized probe.
[0084] To evaluate the capabilities of multipolarized Raman probes for GAG quantification, we compared this technique with traditional biochemical assays using two unique model systems: 1) thin cartilage explants, in which various levels of GAG depletion are induced uniformly throughout the tissue, and 2) full-thickness explants, in which GAGs are depleted from the articular surface, as encountered in early-stage OA.
[0085] (Uniform GAG depletion model)
[0086] First, we investigated the ability of a fiber-optic Raman probe to quantify GAG content in articular cartilage in uniformly depleted tissue using multivariate spectral analysis. Deep-layer bovine cartilage explants (φ5 × 0.8 mm) were used as a simple model system due to the low heterogeneity of their ECM (4). The explants were treated with 4 M guanidine-HCl (GuHCl) for 0, 4, 24, or 48 h to induce various degrees of uniform GAG depletion, or with hyaluronidase (HAdase; 5 mg / mL for 24 h) to induce complete GAG depletion (Figure 1.5A). COL content was not statistically altered by treatment, and water content showed only minor changes. Raman spectra were acquired and preprocessed (background subtraction, fifth-order polynomial baseline subtraction, area under the curve normalization). GAG depletion was measured between 1000 and 1100 cm. -1 and 1200-1300cm -1Depletion induced a significant decrease in Raman signal intensity in the wavenumber range (Figure 1.5B). The spectra were subjected to multivariate regression using normalized Raman spectra of purified reference chemicals of cartilage ECM components (GAG [chondroitin sulfate], COL [chicken sternum COL-II], HO [PBS]; Sigma) to obtain a "score," or relative contribution, of each component to the cartilage Raman spectrum. Figure 1.5C shows the cumulative contribution of each component based on the regression score. The GAG score decreased with the depletion treatment (Figure 1.5D). The COL score and HO score remained relatively unchanged (Figure 1.5D). The results clearly demonstrated that the Raman GAG score was in excellent agreement with the biochemical assay measuring GAG content, and R 2 The value was 0.95 (Figure 1.5EF). The GAG score correlated even more strongly with the mechanical properties of the tissue (Figure 1.5G). The results of this study demonstrate for the first time that a multipolarized Raman needle probe can indeed accurately measure the GAG content of articular cartilage, thus supporting its use as an early OA diagnostic tool.
[0087] (Surface GAG depletion model)
[0088] To demonstrate the surface-targeting capability of our Raman probe, full-thickness bovine cartilage explants were treated with trypsin (1000 μg / mL at 4°C for 0, 0.5, 2, 4, or 8 hours) to induce progressive surface GAG depletion, similar to early OA. Raman spectra were acquired through the articular surface using a shallow-focus (170 μm depth of field) fiber-optic ball lens (170 μm depth of field) and a deep-focus (510 μm depth of field) lens. Multivariate regression was applied to obtain a Raman GAG score for each lens. GAG scores were compared with direct GAG measurements and calculated from the integration of the depth-dependent colorimetric GAG profile from Safranin O histological sections (weighted by the lens-specific DOP profile (Figure 1.5) to obtain GAG within the Raman acquisition window). The low-DOP focal lens substantially improved the correlation and sensitivity of Raman measurements (Figure 1.6). This experiment demonstrates the critical dependence of lens DOP on the diagnostic accuracy of Raman spectroscopy.
[0089] [Multi-polarized Raman spectroscopy of collagen structure in articular cartilage]
[0090] We next aimed to investigate whether polarized Raman signals could be used to detect subtle changes in ex vivo tissue models of early-stage OA. In early-stage OA, the parallel-aligned superficial layers are disrupted, exposing the intermediate zone of tissue (isotropic structure). In late-stage OA, the superficial and intermediate cartilage layers are absent, exposing the deep zone cartilage. To evaluate the ability of our multipolarized Raman probe to assess changes to collagen alignment, measurements were performed on cartilage tissue from which different zones had been removed. Here, articular cartilage explants (φ5 × 3 mm) with an initially intact articular surface were obtained from the femoral condyles of 2-month-old bovine animals. Zones of tissue were selectively excised from the tissue using a custom-made cutting device. Groups of explants were prepared: 1) intact articular surface (0 μm excision), 2) superficial zone excision (top 300 μm excision), and 3) superficial / intermediate zone excision (600 μm excision). After excision, the explants were treated with hyaluronidase (5 mg / mL, 24 hours) to remove interfering GAG Raman signals, fixed in 3.7% paraformaldehyde, and washed in PBS before Raman analysis. This is because the concentration of GAG is known to vary throughout the depth of articular cartilage, which can obscure the polarized Raman signal. A Raman needle probe was placed in gentle contact with the tissue, and a series of polarized Raman spectra were measured. Figure 1.7(a) shows the polarized Raman spectrum ±1 standard deviation (SD) of a bovine cartilage explant. A total of 30 explants (superficial zone (n = 10), intermediate zone (n = 10), and deep zone (n = 10)) were measured (n = 5 spectra per sample) using a 10-second collection time, resulting in a very high signal-to-noise ratio (SNR). The power on the sample was 140 mW.
[0091] Strong Raman peaks were observed at 861, 930, 1257, 1448, and 1654 cm in both polarizations. -1The peaks tentatively correspond to hydroxyproline, CC stretch, amide H1, CH2 bending, and amide I, respectively. These peaks are due to collagen, which is abundant in cartilage. In particular, peaks at 861, 930, 1251, and 1448 cm -1 We found that there are very consistent differences between parallel and perpendicular polarizations in all three tissue types. This can be observed in the polarization difference spectra ±1 SD (Figure 1.7(b)). Most importantly, we also found that there are small but very consistent differences between the three zone spectra.
[0092] To take advantage of the filling range of the polarization-modulated Raman peaks, we used partial least squares discriminant analysis (PLS-DA) with cross-validation of depolarized spectra (parallel / perpendicular). We developed a robust model with a complexity of only one latent variable (LV), significantly reducing the risk of overfitting. Figure 1.8(a) shows the loadings for the first LV1 from PLS-DA. LV1 accounted for a total of 48.85% of the variance in the X block and 22.58% in the Y block. Four peaks related to C-C stretching, amide I, CH bending, and amide I were prominent in LV1, strongly suggesting that LV1 is related to collagen orientation. Figure 1.8(b) shows histograms of the initial PLS-DA scores for each of the three tissues, with a normal distribution. Clear discrimination was observed between superficial cartilage and mid-zone / deep-zone cartilage. PLS-DA was able to classify the tissues with high sensitivity / specificity (superficial zone: 73.3% / 81.1%, intermediate zone: 95.6% / 57.8%, deep zone: 55.6% / 47.8%). Not surprisingly, the model was found to be optimal for distinguishing between superficial and deeper zones. This correlates well with cartilage structure, suggesting that this system has great potential for early OA detection.
[0093] Our previous research has demonstrated that Raman spectroscopy can detect GAGs, a hallmark of OA. Here, we demonstrate that a hypodermic needle can be used to detect the second major hallmark of OA: disruption of superficial collagen alignment. Going forward, we aim to apply this technique to combine GAG and collagen analysis to provide complementary information for the diagnosis of human OA. Furthermore, this technique can potentially be used to monitor the effectiveness of therapeutic compounds. For example, very recently, promising therapeutic interventions such as Sprifermin have been investigated. Due to the relatively low resolution of MRI and contrast-enhanced CT, needle probing could be an important technique for detecting cartilage surface degeneration and repair at the earliest stages.
[0094] In summary, we constructed a novel multiplexed Raman needle probe system. We tested the Raman needle probe on a model of OA in articular cartilage tissue. We report good sensitivity and selectivity for detecting subtle structural changes in the superficial zone of the OA tissue model. We demonstrated that the combination of the multiplexed polarized needle probe and the diagnostic model can identify collagen sequences, indicating great potential for future early OA diagnosis.
[0095] [advantage]
[0096] Conventional diagnostic techniques, such as CT and MRI, can only assess late-stage OA after significant cartilage erosion has occurred, when disease-modifying therapies are no longer feasible. New diagnostic techniques, such as contrast-enhanced MRI (dGEMRIC), have been shown to diagnose early-stage OA GAG loss but face many limitations, including the use of potentially harmful contrast agents, highly extended patient preparation / imaging periods, and the need for large, expensive equipment infrastructure. Our proposed polarized light confocal needle probe offers a significant advance over existing methodologies by diagnosing early-stage OA (GAG loss and collagen tissue destruction) using a safe, minimally invasive platform. This platform is low-cost (compared to conventional radiology equipment) and therefore may serve as the first biochemical diagnostic platform that can be implemented in a clinician's office environment.
[0097] [There are no needle-based Raman methods for diagnosing OA. The present invention generally offers the following specific advantages over other Raman techniques:]
[0098] 1) The present invention provides real-time biochemical (GAG / collagen content) and structural (collagen sequence) information of in vivo tissues. 2) The design of the probe and spectrometer input coupling allows for simultaneous measurement of two polarizations, which allows for rapid collagen sequence measurement. 3) A needle probe with an integrated lens tightly focuses the light so that the polarization information of the tissue can be preserved. 4) The lens interface also allows for measurement of GAG loss from the cartilage surface, a hallmark of early-stage OA.
[0099] [use]
[0100] Embodiments of the present invention can be used within the clinical orthopedic field for the following applications: - Clinical osteoarthritis diagnosis - Veterinary Osteoarthritis Diagnosis - Clinical and preclinical research models to understand osteoarthritis degeneration and identify novel drug / treatment candidates - Biochemical / structural assessment of degeneration of other synovial joints / connective tissues (tendons, ligaments, menisci, intervertebral discs) - Quality assessment of tissue bank tissues (e.g., cartilage allografts) and selection of the best tissue for clinical transplantation. - Regenerative medicine applications: 1) assessing the progress of cartilage repair in vivo, 2) assessing the quality of cultured tissue in vitro (outside the body) before implantation.
[0101] Embodiments of the present invention may be used in the following applications in other clinical areas spanning in vivo diagnostics and surgical guidance, including: - Cancer diagnosis (breast cancer, lymph node tumors, oral and mucosal cancer, head and neck cancer, and skin cancer) - Fibrosis diagnosis - Enamel analysis - Brain surgery
[0102] The multi-polarized Raman technique can be implemented as a research tool in microscopes for laboratory-based polarized Raman imaging. Importantly, in contrast to conventional Raman probes, this probe is suitable for imaging. Embodiments of the present invention can be used for multimodal imaging, such as optical coherence tomography, confocal reflectance / fluorescence imaging, or multiphoton imaging.
[0103] Embodiments of the present invention may be used outside the field, for example, in process analytical technology (PAT).
[0104] [Further Applications and Tests]
[0105] 1. Raman needle arthroscopy for in vivo molecular diagnosis of early osteoarthritis.
[0106] (overview)
[0107] Embodiments of the invention described herein relate to the in vivo molecular diagnosis of early stage osteoarthritis. Processing and analysis of Raman spectra using multivariate regression is performed to elucidate in more detail the contributions of individual spectra corresponding to the ECM components GAG, COL, and HO to the cumulative Raman cartilage spectrum.
[0108] The processing and analysis steps of the present invention described above can further include decomposing and separating the relative contributions of the major cartilage ECM components to the Raman spectrum. The decomposition and separation of the relative contributions of the major cartilage ECM components to the Raman spectrum can use regression coefficients derived from multivariate least-squares regression analysis. This analysis can be performed by a machine learning program.
[0109] (method)
[0110] Raman Needle Arthroscopic Instruments
[0111] As shown in Figure 2.1ac, a custom-built polarized Raman needle arthroscopy system was developed for in vivo OA diagnosis by intra-articular entry via a hypodermic needle.
[0112] Figure 2.1 illustrates in vivo Raman arthroscopy diagnosis. Figure 2.1(a) shows a schematic diagram of a fiber-optic Raman needle arthroscopy probe for OA diagnosis. The Raman spectroscopy system consists of a near-infrared (NIR) laser, a spectrometer with an NIR deep-depleted CCD, and a novel needle Raman probe that allows simultaneous acquisition of both parallel and perpendicularly polarized Raman signals. Figure 2.1(b) illustrates in vivo Raman spectroscopy evaluation of a sheep knee joint. Figure 2.1(c) shows the Raman probe in direct contact with the femoral condyle, visualized by an arthroscopic camera. Figure 2.1(d) shows an in vivo Raman spectrum of ovine femoral condylar articular cartilage. Figure 2.1(e) is a 2D stacked area graph showing the contributions of GAGs, COL, HO, and subchondral bone to the composite ovine cartilage Raman spectrum after multivariate linear regression.
[0113] (Multivariate statistical analysis)
[0114] The Raman spectral contributions of GAGs and water are characteristically "buried" beneath the much stronger COL signal (Figure 2.1(E)), obscuring the assessment of tissue GAG and water content. Here, we add to the above by decomposing and separating the relative contributions of the major cartilage ECM components (GAGs, COLs, and HO) to the Raman cartilage spectrum using regression coefficients derived from multivariate least-squares regression analysis.
number
[0115] (Ex vivo Raman arthroscopy GAG measurement)
[0116] The ability of Raman arthroscopy and multivariate analysis to visualize cartilage GAG content was evaluated. Taking advantage of low ECM compositional heterogeneity, deep zone cartilage was extracted from femoral condyle hyaline cartilage explants (φ5 mm ± 0.8 mm) from 2-month-old calves (Green Village Packing Co, NJ; n = 5). To simulate the progressive loss of GAG observed in early-stage OA, explants underwent stepwise GAG depletion using timed exposure to 4 M guanidine hydrochloride (GuHCL) (0, 4, 24, or 48 h; n = 10 explants per group). Overnight exposure to 3 mg / mL hyaluronidase (HA-dase; 37°C, pH 6.0) resulted in complete GAG depletion. Raman spectra were acquired at the center of each explant using a convex lens to measure GAG, COL, and HO content, as well as the equilibrium compressive modulus (E) of the central core of the 3 mm diameter. Y ) compared with
[0117] (Ex vivo Raman arthroscopy depth-selective measurements)
[0118] Because cartilage degeneration occurs in a depth-dependent manner, primarily initiating in the uppermost regions of the tissue, we next investigated how depth selectivity affects GAG quantification using shallow-focus (needle and 2-mm ball lenses) and deep-focus (convex) lenses. To induce progressive depth-dependent GAG loss, full-thickness bovine cartilage explants (φ6 mm), simulating early OA, were treated with 500 μg / mL trypsin (pH 7.2 at 4°C) for 0, 0.5, 2, 4, or 8 h (n = 4 explants per group). Raman spectra were acquired at the articular surface using a surface-targeting ball lens and a deep-focus convex lens. The explants were then fixed, paraffin-embedded, sectioned, and stained with Safranin O / Fast Green. The colorimetric profile of Safranin O was depth-mapped using the red channel intensity and normalized to the average intensity at a depth of 1.5 mm. For each lens, the profile was multiplied by the DOP attenuation curve (see Results) and integrated over tissue depth to obtain the colorimetric GAG content in the lens-specific Raman imaging window. For each lens, the colorimetric GAG was compared to the Raman GAG score.
[0119] Raman Arthroscopy GAG Measurements in Ex Vivo Human Explants
[0120] To establish the clinical significance of the derived Raman GAG score, Raman needle arthroscopy measurements were performed on φ4.0 mm cartilage explants (n = 13) excised from the distal femoral condyles of three cadaveric human knees (NDRI; age / sex: 70 / female, 75 / male, 65 / female; 4-5 explants per donor). The samples showed no visual signs of surface damage or fibrillation (Outerbridge score 0-1). Raman spectra were acquired with both ball and convex lenses. Subsequently, the explants were cut diametrically in half. From one half, the top 500 µm of cartilage was excised for GAG content analysis. Histological sections from the remaining half were analyzed for a modified Mankin-based Safranin O Fast Green (SOFG) staining uptake score, based on the percentage depletion per total area of non-calcified articular cartilage, as described. Ball lens Raman GAG scores were compared to surface cartilage GAG content measurements. Convex lens Raman GAG scores were compared with SOFG staining uptake scores. To illustrate the ability of Raman arthroscopy to characterize spatial variations in tissue composition along successive articular surfaces, Raman GAG scores were obtained at separate anatomical sites along the articular surface of resected human femoral head specimens from total hip arthroplasty procedures (50 / female; Kellgren-Lawrence grade 1). Raman GAG scores were obtained at three separate anatomical sites along the articular surface and compared with the corresponding Safranin O intensity.
[0121] (Polarized Raman arthroscopic evaluation of ex vivo zonal collagen alignment)
[0122] We evaluated whether polarized Raman arthroscopy could assess the loss of cartilage SZ during cartilage degeneration. Full-thickness bovine explants were subjected to mechanical surface abrasion using a linear reciprocating sander (600 grit) under a normal stress of 40 kPa. Abrasion was used to remove a continuous band of layers (n = 5 explants per group). The following results were obtained: no abrasion (intact SZ), mild abrasion (120 ± 26 μm tissue removed, exposing MZ), and severe abrasion (437 ± 60 μm tissue removed, exposing DZ). All explants were GAG-depleted via HA-dase to mimic early-stage OA GAG depletion. Using monochromatic laser excitation at 140 mW laser power, parallel- and perpendicular-polarized Raman spectra (n = 5) were collected from each specimen over a 5-second acquisition time. A total of 25 individual sets of polarized Raman spectra were measured for each group, yielding 75 sets of polarized Raman spectra. The depolarization ratio (perpendicular / (parallel + x)) of each spectral group was calculated using an arbitrary DC component, avoiding values near infinity. Depolarization ratios were used as input for partial least squares discriminant analysis (PLS-DA) to construct an unbiased model that discriminated between surface abrasion groups using leave-one-out cross-validation. PLS-DA is a powerful multivariate regression technique that can efficiently extract spectral changes of interest, such as sequence- or chemistry-related changes. Orthogonal latent variables were derived from the Raman intensity peak positions highly associated with polarization-sensitive collagen bands, maximizing the covariance between spectral changes and abrasion group affinity. All statistical analyses were performed in Matlab using the PLS toolbox.
[0123] (Ex vivo Raman arthroscopy cartilage thickness measurement)
[0124] To evaluate cartilage thickness using Raman spectroscopy, the cartilage layer of bovine osteochondral explants was variably excised to obtain cartilage layers ranging from 0.3 mm to 2.1 mm. Raman spectra were acquired through a convex lens to better detect Raman spectra from the subchondral bone through diffuse light scattering. The cartilage ECM (GAG, COL, HO) and bovine subchondral bone (Bone REF ; Figure 2.1(e)) and its known reference spectrum and its regression coefficients (Bone score) was used to apply multivariate linear regression to the total Raman spectra.
[0125] Raman Arthroscopy for In Situ and In Vivo Diagnostics
[0126] Confounding factors associated with in situ intra-articular Raman diagnostic measurements were further evaluated, including: 1) interference from synovial fluid, 2) sensitivity of acquired Raman spectra to the probe-to-cartilage surface incidence angle, and 3) sufficient acquisition time to obtain a reliable Raman signal. Additionally, in situ measurements of cartilage ECM composition were performed on intact ex vivo forearm (wrist) joints before and after intra-articular enzymatic GAG depletion treatment using a Raman arthroscopy probe inserted into the joint through a 10-gauge hypodermic needle trocar.
[0127] In vivo Raman arthroscopy was approved by the University of Pennsylvania School of Veterinary Medicine IACUC. Raman spectra were collected from the distal femoral condyle articular cartilage of live, skeletally mature sheep via a mini-arthrotomy of the stifle joint.
[0128] (result)
[0129] (Raman arthroscopy GAG quantification)
[0130] Figure 2.2 shows the results of Raman arthroscopy GAG measurements. Figure 2.2(a) shows that guanidine hydrochloride (GuHCL) and hyaluronidase (HA-dase) caused GAG depletion in cartilage explants (Safranin O histology and DMMB-measured GAG levels). Scale bar = 1 mm. Figure 2.2(b) shows that GuHCL / HA-dase increased GAG levels at 1000-1100 cm. -1 Wave number and 1300-1450cm -1Figure 2.2(c) shows the decrease in Raman arthroscopy spectral intensity measured at different wavenumbers (mean ± standard deviation). Figure 2.2(c) shows the regression coefficients (scores) for GAG, COL, and HO obtained from multivariate linear regression decomposition of the Raman spectra of the GuHCl / HA-dase timed exposure group. Figure 2.2(d) is a 2D stacked area graph showing the cumulative contribution of GAG, COL, and HO spectra to the synthetic Raman cartilage spectrum after multivariate linear regression. The GAG spectral contribution was attenuated after GAG depletion with GuHCl, while the COL and HO contributions were relatively unaffected. Bivariate regressions between Raman GAG scores, which are shown in Figure 2.2(e) assay-measured GAG content, and Figure 2.2(f) explant compressive modulus (E Y ).
[0131] Chemical treatments induced a gradual depletion of GAGs from cartilage explants (Figure 2.2a). COL content (average 4.4 ± 0.9% (wet weight) [%ww]) and HO content (average 86.7 ± 2.6%ww) were minimally altered by these treatments. Chemically induced GAG depletion was accompanied by a decrease in HO concentrations between 1000 and 1100 cm. -1 Wave number and 1200-1300cm -1 There was a significant decrease in Raman signal intensity with wavenumber (Figure 2.2b). Following multivariate regression analysis (Equation 1), the Raman GAG score decreased proportionally to the reduction in GAGs from the explants. COL and HO had less of an effect on the Raman score (Figure 2.2c). The cumulative spectral contributions of the individual ECM components accounted for 94% of the variance in the synthetic cartilage spectrum (Figure 2.2d; R 2 = 0.94 ± 0.01; p < 0.001). The GAG score predicted 95% of the variability in measured tissue GAG content (Figure 2.2e; R 2 = 0.95; p < 0.001; Table S1), the compressive modulus (E Y ) predicts 75% of the variation in (Figure 2.2f; R 2 = 0.75; p < 0.001), demonstrating the ability of Raman spectroscopy to non-invasively predict the progressive GAG and mechanical changes in hyaline cartilage material properties observed in early-stage OA.
[0132] (Raman arthroscopy for depth-selective quantification)
[0133] Figure 2.3 shows the results of Raman arthroscopy depth-selective measurements. Figure 2.3(a) shows the Raman peak (988 cm) of the polystyrene substrate. -1 ) shows the lens-specific depth of penetration (DOP) when intensity decay is measured across layers of variable cartilage thickness. DOP (Beer-Lambert law) was determined from the cartilage thickness at which the normalized peak decayed to 37% of its initial value. Figure 2.3(b) shows a representative Safranin O section demonstrating trypsin-induced GAG depletion from the articular surface of a cartilage explant. Scale bar = 250 μm. Figure 2.3(c) shows a bivariate linear regression between GAG scores measured by Raman arthroscopy and GAG content measured with colorimetric Safranin O for deep-focus convex and surface-targeted ball lenses.
[0134] Ball and convex lenses exhibited different DOP values based on the Raman signal attenuation of the polystyrene substrate under cartilage layers of various thicknesses (Figure 2.3a). Cartilage explants showed progressive surface GAG depletion with increasing trypsinization time (Figure 2.3b). The Raman GAG score estimated from Raman spectra obtained through the surface-targeted ball lens predicted 86% of the GAG tissue content (Figure 2.3c; R 2 = 0.86; p < 0.001; Table S2). However, the Raman GAG score estimated from the spectra obtained through a deep-focus convex lens predicted only 40% of the GAG content (R 2 = 0.4; p < 0.001; Table S2). Furthermore, the GAG score was affected by residual GAG remaining in the deep zone due to limited diffusion of the GAG-depleting enzyme. These results suggest that Raman arthroscopy with its tightly focused lens is advantageous for quantifying early-stage GAG depletion.
[0135] (Raman Arthroscopy GAG Quantification in Human Explants)
[0136] Figure 2.4 shows the results of Raman arthroscopy GAG measurements in ex vivo human cartilage. Figure 2.4(a) shows representative Safranin O histological sections of GAG-rich and GAG-depleted cartilage explants from human autopsy donors, along with Raman GAG scores, GAG content, and SOFG staining uptake scores. Scale bar = 1 mm. Figure 2.4(b) shows the bivariate linear regression between Raman needle probe GAG scores (ball lens measurements) and DMMB-measured GAG content for n = 13 ex vivo human explants. Figure 2.4(c) shows the bivariate linear regression between Raman needle probe GAG scores (convex lens measurements) and SOFG staining uptake scores. Figure 2.4(d) shows representative x-ray and sagittal MRI images of an arthritic hip joint, demonstrating joint space narrowing of the superior femoral head corresponding to the weight-bearing zone of the hip joint in a standing position. Figure 2.4(e) shows GAG scores derived from multivariate Raman spectral decomposition obtained at distinct anatomical regions along a sagittal section of the ex vivo human femoral head articular surface. The GAG scores reflect the GAG depletion and cartilage thinning observed in MRI and histological sections.
[0137] Human cartilage explants showed variable Safranin O staining intensity and GAG content (Figure 2.4a). The GAG score obtained by the ball lens predicted 66% of the variation in GAG content in the top 500 μm tissue layer (Figure 2.4b; R 2 = 0.66; p < 0.001; Table S3). The GAG score obtained by the convex lens predicted 53% of the variance in the Safranin O Fast Green (SOFG) staining uptake score (Figure 2.4c; R 2 = 0.53; p < 0.01; Table S3). Raman GAG scores were obtained at distinct anatomical sites along the articular surface of the resected human femoral head (Figure 2.4de). Low Raman GAG scores were observed in GAG-depleted hyaline cartilage, including the load-bearing regions of the hip joint, while high GAG scores were observed in GAG-rich hyaline cartilage, including the non-load-bearing regions of the hip joint.
[0138] Polarized Raman Arthroscopy for the Assessment of Zonal Collagen Alignment
[0139] Figure 2.5 shows the results of polarized Raman arthroscopy collagen alignment measurements. Figure 2.5(a) shows the average polarized Raman spectra (perpendicular [colored line] and parallel [black line]) of cartilage, indicating the intact SZ, mild wear, and severe wear of the superficial layer. Figure 2.5(b) shows the polarization ratio (parallel / perpendicular) difference spectrum, demonstrating the difference in Raman spectra depending on the integrity of SZ collagen. Figure 2.5(c) shows the partial least squares discriminant analysis (PLS-DA) scores, demonstrating good separation of the different erosion groups. Figure 2.5(d) shows the PLS-DA latent variable (LV) loadings LV1 and LV2. Figure 2.5(e) shows the Raman collagen alignment factor (RCAF) for detecting the degree of SZ wear corresponding to LV2.
[0140] Polarization-sensitive collagen bands at 861, 930, 1257, 1448, and 1654 cm -1 Consistent differences were observed between the perpendicularly and parallelly polarized spectra in the Raman intensity peak positions associated with the anatomical structure (Figure 2.5a) between the groups (no wear, mild wear, and severe wear). Depolarization (i.e., the difference in the intensity ratio between the perpendicular and parallel components of Raman scattered light) revealed that the differences in polarized Raman spectra represent the diverse zonal organization of the collagen fiber network (Figure 2.5b). From PLS-DA, the latent variable (LV) loadings LV1 and LV2 showed good discriminative separation between the wear groups (Figure 2.5c) and incorporated diagnostically relevant spectral variability reflecting the integrity of the SZ collagen network (LV1: 10.36%, LV2: 6.48%; Figure 2.5d). Compared to LV1, LV2 better discriminated samples with an intact SZ (p<0.001). Therefore, LV2 was used as the Raman collagen alignment factor (RCAF) to represent the degree of SZ collagen retention (Figure 2.5e). These results demonstrate that collagen alignment and SZ degeneration can be quantified by utilizing the polarized light response of cartilage.
[0141] (Raman arthroscopy cartilage thickness quantification)
[0142] Figure 2.6 shows the results of Raman arthroscopy cartilage thickness measurements. Figure 2.6(a) is a 2D stacked area graph showing the contributions of GAG, COL, HO, and subchondral bone to the composite Raman cartilage spectrum after multivariate linear regression for osteochondral explants with cartilage layers of 0.3 mm, 0.9 mm, 1.5 mm, and 2.1 mm thickness. Figure 2.6(b) shows the bivariate regression between the subchondral bone score and cartilage layer thickness measured by Raman arthroscopy.
[0143] Following multivariate regression analysis of Raman spectra of bovine osteochondral explants of different thicknesses, the contribution of the bone signal to the total spectrum decreased with increasing cartilage thickness (Figure 2.6a). The regression coefficient of the subchondral bone contribution (bone score) to the cumulative Raman spectrum varied inversely with the thickness of the cartilage layer and followed an exponential decay function (Figure 2.6b). The bone score predicted 90% of the variation in cartilage thickness. Thus, Raman spectroscopy provides an efficient method for quantifying cartilage thickness changes that occur during tissue erosion associated with OA.
[0144] Raman Arthroscopy In Situ and In Vivo Diagnostics
[0145] Evaluation of potential confounding factors related to in situ Raman arthroscopy measurements showed that 1) the obtained Raman GAG scores were unaffected by the presence of synovial fluid, 2) a 20° variation in the probe incidence angle relative to the cartilage surface from the normal (90°) angle had no significant effect on the measured Raman GAG and HO scores (p<0.05), and 3) integration time did not significantly affect Raman GAG, COL, and HO scores due to the robust nature of multivariate analysis, indicating that Raman arthroscopy measurements obtained in only 0.5 seconds did not impair diagnostic ability. Furthermore, for intra-articular Raman arthroscopy evaluation of intact wrists, the Raman GAG scores decreased by 75% after trypsinization, corresponding to an 86% decrease in cartilage GAG content (4.3±0.6% w / w control vs. 0.6±0.1% w / w trypsinized tissue), thus demonstrating the ability of Raman arthroscopy to measure GAG in situ.
[0146] The distal femoral condyle articular cartilage of a live, skeletally mature sheep was accessed via a mini-arthrotomy of the stifle joint (Figure 2.1). A Raman needle probe was placed in gentle contact with the articular surface of the femoral condyle under image guidance. Raman spectra were acquired over a 10-second integration time to obtain the highest SNR for this in vivo demonstration. Similar to the ex vivo measurements, high-quality Raman spectra were acquired in vivo (Figure 2.1d). The cumulative spectral contributions of individual ECM components and subchondral bone, obtained by multivariate regression analysis, accounted for 86% of the variance in the composite spectrum (Figure 2.1e; Raman scores: GAG = 0.16, COL = 0.58, HO = 0.11, subchondral bone = 0.10, R 2 = 0.86; p < 0.001). This demonstration highlights the feasibility of in vivo Raman arthroscopy by demonstrating successful compositional quantification in vivo and the ability to operate a needle probe in a surgical environment.
[0147] (Consideration)
[0148] Early-stage OA represents a critical clinical window during which treatment strategies are most effective in mitigating cartilage degeneration. However, the ability to diagnose OA early, before irreversible changes in tissue composition and structure occur, remains a significant clinical challenge, hindering the effective development of treatments. We present a needle-based arthroscopic platform for achieving real-time polarized Raman spectroscopic quantification of cartilage ECM changes associated with early OA. Using both an ex vivo bovine model of OA and aged cartilage explants, we demonstrate that Raman needle arthroscopy can accurately quantify SZ cartilage GAG depletion and collagen degradation, which contribute to the deterioration of hyaline cartilage material behavior. A key innovation described here is the implementation of multivariate regression to elucidate the contributions of individual spectra corresponding to the ECM components GAG, COL, and HO to the cumulative Raman cartilage spectrum. The resulting regression coefficients (GAG scores) account for 95% of the variance in GAG content in enzymatically depleted bovine explants, as well as 66% of the variance in GAG content and 53% of the variance in SOFG staining scores in human cartilage explants. Furthermore, the obtained Raman HO and COL scores represent the damage to the integrity of the tensile collagen matrix that causes cartilage swelling in early stage OA.
[0149] To further evaluate the zone-dependent anisotropic microstructure of the collagen matrix, we incorporated polarized Raman spectroscopy into our platform, exploiting the difference between perpendicularly and parallelly polarized spectra. This novel functionality, achieved by strongly focusing the distal ball lens to avoid bulk tissue polarization scrambling, enables assessment of the alignment and organization of the SZ collagen matrix. To maximize diagnostically relevant spectral variability reflecting the integrity of SZ collagen, we applied PLS-DA to the spectral data, resulting in latent variables (LV1, LV2) that incorporate Raman intensity peak positions highly correlated with polarization-sensitive collagen bands. LV2 efficiently identifies intact SZ and can therefore be used as an alignment factor to indicate the degree to which SZ collagen is preserved.
[0150] Diagnosis of early OA GAG and collagen loss requires the use of a ball lens with a tight focus to collect Raman signal primarily from the uppermost cartilage region, whereas Raman cartilage thickness measurement requires a deep-focus lens to collect sufficient Raman signal from the subchondral bone. Therefore, the lens configuration selected depends on the diagnostic metric to be quantified. In this study, we used a large, non-needle-based lens to target the subchondral bone to elucidate Raman-based cartilage thickness. In future iterations of our device, an interchangeable deep-tissue lens (a hemispherical lens or a custom-made, high-DOP microlens) will be incorporated into the needle probe.
[0151] To demonstrate the feasibility of translating Raman needle arthroscopy into clinical practice as a novel therapeutic platform, we obtained high-quality Raman spectra of articular cartilage, including ovine femoral condyles, in vivo, similar to ex vivo assessments. Clinical interpretation is further supported by establishing that: 1) Raman spectra can be acquired in as little as 0.5 seconds, 2) the resulting Raman GAG score is unaffected by the presence of synovial fluid, and 3) the probe incidence angle can be varied up to 20° from perpendicular to the cartilage surface without compromising diagnostic accuracy. Furthermore, in situ intra-articular Raman spectra obtained in intact bovine diarthrodial joints before and after enzyme-induced degradation verified agreement between the measured GAG content and the Raman GAG score.
[0152] There has been growing interest in Raman spectroscopy as a potential OA diagnostic technique. Previous ex vivo studies have examined Raman spectral changes in explanted late-stage OA cartilage tissue or cartilage subjected to mechanical injury. With the exception of Unal et al., who used high-wavenumber Raman peak ratios to measure cartilage water content but not GAG and collagen, previous Raman evaluations have consisted of univariate peak analysis or principal component analysis (PCA), which does not provide quantification of biochemical or structural tissue changes relevant to the tissue's functional performance. Furthermore, with the exception of Esmonde-White et al., who used a probe to measure cartilage erosion, previous Raman studies have been performed on benchtop microscopy systems that are not compatible with in situ intra-articular Raman evaluation. Our study represents the first in vivo Raman diagnostic study utilizing a clinically compatible needle arthroscopic probe to measure characteristic changes of early-stage OA (surface area GAG depletion and SZ collagen loss).
[0153] Our Raman needle arthroscopy platform complements and surpasses other state-of-the-art OA diagnostic platforms (MRI (T1ρ, dEGEMRIC), ultrasound, contrast-enhanced CT, and OCT) in delineating changes in cartilage composition, structure, and material properties. While these imaging modalities are noninvasive and can image the entire joint, they are limited by their spatial resolution of the cartilage surface, systemic administration of potentially toxic contrast agents, long imaging times, cost, lack of portability, and infrastructure requirements. Due to its portability, Raman needle arthroscopy can serve as a translational platform to achieve rapid, easy-to-perform, real-time assessment of key compositional and structural features of hyaline cartilage involved in its functional performance, without patient exposure to radiation or toxic contrast agents.
[0154] Clinically, Raman needle arthroscopy is envisioned as a therapeutic office procedure in combination with other intra-articular procedures, such as bone fluid aspiration or drug injection. The platform can achieve targeted, anatomical site-specific assessment through interfacing with arthroscopic image guidance (e.g., Arthrex NanoScope). As a therapeutic platform, Raman arthroscopy offers a cost-effective method for identifying early-stage cartilage degeneration in patient populations known to be at high risk for developing OA as a result of acute or chronic traumatic joint injury, internal disorders, obesity, joint malalignment, and genetic predisposition. Regular monitoring of commonly affected joints (knee, hip, shoulder, elbow, ankle) may allow for the timely prescription of biologics (e.g., growth factors, platelet-rich plasma), viscosupplements (hyaluronan, synthetic lubricin), lifestyle changes (weight loss, inactivity), physical therapy, or reconstructive surgery (joint realignment), as well as chondroprotective therapies such as microfracture therapy, autologous cell injection, or graft implantation, to reconstruct irreparable hyaline cartilage. Through the evaluation of maturing GAG deposits and collagen matrix organization, Raman arthroscopy allows for the targeted monitoring of treatment outcomes. In addition to clinical diagnostics, Raman arthroscopy can serve as a research tool, evaluating the efficacy of emerging treatments in preclinical animal models. In conclusion, Raman arthroscopy is a practical, minimally invasive clinical tool capable of diagnosing OA before irreversible changes in the biochemical and biophysical properties of cartilage become apparent on radiographs, a prerequisite for the effective implementation of OA treatment.
[0155] 2. Raman plate reader for quantitative molecular monitoring of live cartilage implants
[0156] (overview)
[0157] The embodiments of the present invention described in this section below are directed to a high-throughput Raman plate reader for noninvasively monitoring compositional changes in live cartilage specimens over time. Described below are a long-focus Raman probe and a Raman-compatible tissue culture chamber that achieve in situ Raman measurements on explant specimens while they are maintained in culture. More specifically, an ex vivo Raman plate reader for assessing the composition of live tissues is described below. The Raman plate reader can function as a high-throughput, non-destructive platform to monitor the composition of musculoskeletal connective tissue explants (e.g., cartilage, meniscus, tendon, ligament, intervertebral disc) and cultured artificial tissues over time. This platform has great utility for studying tissue behavior in response to mechanochemical stimuli, mechanisms of pathological tissue degeneration, and the efficacy of therapeutics to inhibit or reverse degeneration, as well as for the development of artificial tissues.
[0158] (introduction)
[0159] Ex vivo culture of live and explanted cartilage tissue has long served as an important platform for studying tissue behavior in response to mechanochemical stimuli, providing insights into cartilage regulatory mechanisms, osteoarthritis progression, and the efficacy of emerging therapies. Cartilage assessment primarily measures changes in the composition of collagen (COL), glycosaminoglycans (GAGs), and water—the primary ECM components of cartilage that support load and provide frictionless mechanical function for the tissue. Traditionally, ECM composition has been assessed by biochemical assays, specifically the DMMB assay for GAGs, the OHP assay for COL, and gravimetric measurements for water content. However, biochemical assays pose significant research limitations. They are 1) very time-consuming—requiring laborious sample processing—and 2) destructive—thus preventing repeated assessment of cartilage compositional changes over time. Raman spectroscopy is an inelastic light-scattering technique that provides an optical fingerprint of tissue specimens reflecting specific molecular building blocks (amides, sulfates, carboxylic acids, and hydroxyls). In the above, we used a novel Raman arthroscopic probe and a multivariate statistical regression model to obtain a near-unity correlation coefficient (R ) between Raman metrics and GAG content. 2We demonstrated that the chemical composition (GAG, COL, HO) of devitalized cartilage explants can be predicted with high accuracy, as evidenced by a r = 0.95. In this study, we develop a novel high-throughput Raman plate reader for noninvasively monitoring compositional changes in live cartilage specimens over time (Figure 3.1). Here, we introduce a long-distance focusing Raman probe and a Raman-compatible tissue culture chamber to achieve in situ Raman measurements on explant specimens while they are maintained in culture. Our Raman plate reader can realize high-throughput repeated measurements of cartilage composition, enabling long-term monitoring of cartilage explant ECM changes in response to mechanochemical stimuli. Here, we examine the sensitivity of our Raman plate reader by comparing direct biochemical assay measurements with end-point Raman assessments of explants exposed to interleukin-1α (IL-1α), a catabolic cytokine associated with osteoarthritis. Subsequently, we perform repeated Raman compositional monitoring measurements on live explants exposed to IL-1α with high temporal resolution (every 12 h).
[0160] (method)
[0161] (tissue source)
[0162] Raw cartilage discs (φ5×1 mm) were harvested from immature bovine femoral condyles and maintained in low-Raman interference phenol red-free DMEM supplemented with L-glutamine, L-proline, antibiotic / antimycotic, and 10 nM dexamethasone.
[0163] (Raman monitoring platform)
[0164] Our custom Raman plate reader uses a NIR diode laser (λ exThe probe consisted of a 1000 nm (785 nm, 500 mW, B&W Tek) and a fiber-coupled spectrometer (QEPro, Ocean Optics). The distal part of the probe consisted of a long-range plano-convex lens (N-BK7, φ9 mm, focal length 10 mm) that achieved a penetration depth of ~540 μm into the cartilage. The explants were maintained in a modified 96-well polystyrene plate chamber to allow Raman acquisition without plastic interference while the cartilage explants remained in culture. Here, a Raman-transparent MgF2 window was inserted into a notch in the plate lid, and a thin aluminum disk was inserted under each explant (Figure 3.1). Raman spectra of the cartilage explants were acquired through the MgF2 window (acquisition time 10 s) and subjected to preprocessing. The Raman spectra (fingerprint range) were subjected to multivariate linear regression using the following model:
number
[0165] (Raman-biochemical correlation)
[0166] The explants were cultured with IL-1α at 0, 0.1, 1, or 10 ng / mL for 5, 10, or 15 days. At the completion of the culture, a 3 mm central subcore of each explant was subjected to Raman plate reading and GAG content measurement (DMMB assay).
[0167] (Repeated measurement Raman monitoring of live cartilage)
[0168] Viable explants were maintained in Raman monitoring plates throughout the culture and treated with or without 10 ng / mL IL-1α. At 12-hour intervals over 6 days, plates were briefly removed from the incubator and a sample of each explant was subjected to a Raman plate reading.
[0169] (result)
[0170] (Raman-biochemical correlation)
[0171] Multivariate regression models were able to describe the measured cartilage Raman spectra (cumulative contributions of individual ECM components accounting for 87% of the variability in the composite cartilage spectrum). Raman GAG scores decreased with IL-1α exposure and decreased with dose and culture time (Figure 3.2ab). Raman COL scores showed a slight increase with IL-1α treatment, while HO scores remained relatively unchanged (not shown). Similarly, assay-measured GAG content decreased with IL-1α dose and culture time (Figure 3.2c). Raman GAG scores predicted 86% of the variability in assay-measured GAG content (Figure 3.2d; R 2 =0.86; p<0.001).
[0172] (Repeated measurement Raman monitoring of live cartilage)
[0173] In the absence of IL-1α, cartilage explants maintained a fairly constant Raman GAG score over 6 days. In response to IL-1α, the Raman GAG score decreased by 61% over 6 days (Figure 3). No decrease in viability (live / dead imaging) was observed in either group after 6 days.
[0174] (Consideration)
[0175] This study demonstrates the ability of our Raman plate reader platform to perform accurate, nondestructive, repeatable monitoring of the ECM composition of live, explanted cartilage specimens. The development of a novel long-range Raman probe and compatible test chamber allows us to obtain high-quality Raman spectra of live cartilage explants while maintaining them in culture plates, thus enabling rapid and accessible compositional assessment without the risk of tissue contamination or loss of viability. In the future, we aim to interface our Raman plate reader with an automated 2D translation stage and GUI, similar to an absorbance / fluorescence microplate reader, to enable high-throughput monitoring (96 explants in ~2 min). A further key innovation is the ability to perform multivariate regression analysis to confirm the contribution of individual spectra corresponding to the ECM components GAG, COL, and HO to the cumulative Raman spectrum. Thus, our Raman plate reader can monitor important compositional changes associated with cartilage degeneration, particularly GAG depletion and increased hydration from tissue swelling. Here, we demonstrate the ability of our Raman plate reader to monitor GAG loss in response to the catabolic cytokine IL-1α associated with osteoarthritis. The Raman GAG score accounts for 86% of the variation in GAG content in IL-1α-degenerated cartilage, thus establishing the platform's ability to reliably monitor tissue degeneration.
[0176] (significance)
[0177] Our novel Raman plate reader serves as a high-throughput, non-destructive platform for monitoring the composition of musculoskeletal connective tissue explants (cartilage, meniscus, tendon, ligament, and intervertebral disc) over time. This platform has exceptional utility for studying tissue behavior in response to mechanochemical stimuli, mechanisms of pathological tissue degeneration, and the efficacy of novel therapeutics.
[0178] Figure 3.1 shows a Raman plate reader for monitoring the composition of live cartilage explants in culture.
[0179] Figure 3.2 shows (a) a representative 2D stacked area plot of the spectral contributions of GAG, COL, and HO to cartilage Raman spectra with and without IL-1α treatment at day 15, (b) Raman GAG scores, and (c) assay-measured GAG content of explants treated with various dose / duration regimens of IL-1α. (d) Linear correlation between Raman GAG scores and GAG content of explants treated with IL-1α.
[0180] Figure 3.3 shows the GAG scores measured repeatedly in a Raman plate reader for live explants treated with or without IL-1α over a 6 day period.
[0181] 3. Raman needle arthroscopy for in vivo diagnosis of musculoskeletal connective tissue.
[0182] (overview)
[0183] The embodiments of the invention described in this section below are directed to the in vivo diagnosis of musculoskeletal connective tissue, including the measurement of GAG / water content in intervertebral discs (for the diagnosis of disc degeneration).
[0184] (introduction)
[0185] Connective tissue degenerative disorders, such as osteoarthritis (OA)—characterized by the degradation of articular cartilage—and degenerative intervertebral disc disease (IVD) are painful and highly debilitating conditions that affect a large and growing proportion of the adult population. There is growing recognition that the early stages of disease progression, before substantial tissue destruction occurs, represent a critical clinical window during which therapeutic treatments may be most effective. However, the ability to diagnose early-stage tissue degeneration remains a significant clinical challenge, and state-of-the-art imaging modalities (e.g., CT, MRI) are primarily sensitive to diagnosing late-stage degeneration, after irreversible changes in tissue composition have occurred, worsening prognosis and limiting treatment options. Raman spectroscopy is an inelastic light-scattering technique with exceptional potential for diagnosing tissue compositional changes by providing highly quantitative optical fingerprints reflecting specific molecular building blocks (amides, sulfates, carboxylic acids, and hydroxyls) in tissue specimens. Recently, we developed a novel Raman arthroscopy platform to diagnose compositional changes associated with early connective tissue degeneration. The platform includes 1) a Raman probe capable of obtaining intra-articular tissue assessments through a subcutaneous needle cannula, and 2) the implementation of multivariate regression statistical models to extract measurements of tissue biochemical composition (GAGs, collagen, and water), enabling assessment of early degenerative GAG depletion and tissue swelling. In an ex vivo model, we have demonstrated the ability of Raman arthroscopy to predict early OA-associated GAG depletion in articular cartilage with excellent accuracy, characterized by predicting 95% of the variability in GAG content in enzymatically depleted cartilage explants. This study aims to significantly advance this platform by exploring 1) the possibility of performing Raman diagnostic measurements in vivo and 2) the possibility of performing Raman diagnostics on additional connective tissue systems. Here, in vivo assessments are performed on articular cartilage of the distal femur in sheep. Extended tissue assessments are performed ex vivo on sheep IVDs in different anatomical regions and in response to degenerative treatments.
[0186] (method)
[0187] (Raman arthroscope)
[0188] Our custom Raman needle arthroscope (Figure 4.1a) for intra-articular entry via a hypodermic needle uses a NIR diode laser (λ ex The laser beam was directed through a needle probe (diameter 2 mm, l = 50 mm) via the distal part of the probe and tightly focused onto the tissue using a 2.0 mm sapphire ball lens.
[0189] (spectral processing)
[0190] After preprocessing, the Raman spectra were subjected to multivariate linear regression using the following model:
number
[0191] (In vivo cartilage arthroscopy)
[0192] The distal femoral condyle articular cartilage of a live, skeletally mature sheep was accessed via a mini-arthrotomy of the stifle joint (Figure 4.1bc). A Raman needle probe was placed in gentle contact with the articular surface of the femoral condyle under image guidance. Raman spectra were acquired over a 10 s integration time to obtain the highest SNR for this in vivo demonstration.
[0193] (Ex vivo IVD diagnostics)
[0194] Lumbar IVDs were isolated from skeletally mature sheep. Raman measurements were performed at five discrete points within the nucleus pulposus (NP) and annulus fibrosus (AF) of one freshly excised IVD and one IVD undergoing degeneration. Degeneration was achieved by 18 h of incubation in PBS supplemented with 2 mg / mL trypsin, which induced a combination of swelling and GAG depletion, as well as compositional changes during IVD degeneration pathology. After Raman acquisition, discrete 2 mm diameter cylindrical cores of the IVD specimens were evaluated for GAG and water content.
[0195] (result)
[0196] (In vivo cartilage arthroscopy)
[0197] Mini-arthrotomy allowed us to obtain high-quality in vivo Raman spectra (Figure 4.1d), similar to those from our previous ex vivo studies. The cumulative spectral contributions of the individual ECM components and subchondral bone obtained by multivariate regression analysis accounted for 86% of the variance in the composite spectrum (Figure 4.1e), yielding the following Raman scores: GAG = 0.16, COL = 0.58, HO = 0.11, subchondral bone = 0.10; R 2 =0.86; p<0.001), consistent with previous ex vivo measurements on healthy articular cartilage samples.
[0198] (Ex vivo IVD diagnostics)
[0199] Compared to AF, NPs exhibited higher GAG (NP: 7.3 ± 0.9% ww vs. AF: 4.0 ± 0.4% ww) and water (NP: 84.3 ± 7.7% ww vs. AF: 70.9 ± 2.5% ww) contents. Denaturation treatment decreased the GAG content in NP (0.9 ± 0.1% ww) and AF (1.2 ± 0.6% ww) and increased the water content in NP (95.3 ± 1.0% ww) and AF (80.5 ± 2.4% ww). The cumulative spectral contribution of ECM components by multivariate regression accounted for 77% of the variance in the IVD composite spectrum (Figure 4.2) (p < 0.01). Raman scores reflect the biochemical composition of the IVD and are characterized by: 1) Higher Raman GAG and H2O scores for NP compared to AF, and 2) Decreased GAG scores and increased H2O scores in both NP and AF with denaturation (Figure 4.3).
[0200] (Consideration)
[0201] We present a novel needle-based arthroscopy platform for achieving real-time Raman-based diagnosis of compositional changes associated with musculoskeletal connective tissue degeneration. Based on our recent ex vivo characterization, we demonstrated the feasibility of translating Raman needle arthroscopy into clinical practice by acquiring high-quality Raman spectra of ovine femoral condylar articular cartilage in vivo. Furthermore, the performance of IVD Raman measurements demonstrates the feasibility of extending Raman diagnostics beyond articular cartilage to connective tissues. Here, we show that Raman arthroscopy can easily distinguish between NP and AF in the IVD, and between healthy and degenerated tissues, in terms of GAG and water composition. Clinically, Raman needle arthroscopy can serve as a quantitative adjunct to current arthroscopy for the assessment of tissue degeneration and response to treatment. For articular cartilage, Raman arthroscopy can guide the timely prescription of chondroprotective therapies, such as biologics, viscosupplements, lifestyle changes (weight loss, inactivity), physical therapy, or reconstructive surgery. For IVD, Raman arthroscope provides a method to assess the composition with enhanced discography before and after the procedure of injecting high molecular weight aggrecan to augment and reconstitute GAG-depleted NPs.
[0202] (significance)
[0203] Raman arthroscopy can serve as an innovative diagnostic platform that provides quantitative assessment of important compositional tissue changes in the early stages of tissue degeneration. Raman arthroscopy serves as: 1) a valuable clinical / preclinical research tool to advance the development of novel therapeutics, and 2) a clinical diagnostic platform to guide the course of treatment.
[0204] Figure 4.1 shows: (a) Schematic of Raman needle arthroscope for degeneration diagnosis; (b) Raman evaluation of a sheep knee joint in vivo; (c) Raman probe in direct contact with the femoral condyle visualized by the arthroscopic camera; (d) Raman spectrum obtained in vivo of a sheep femoral condyle; (e) 2D stacked area graph showing the contributions of GAG, COL, HO, and subchondral bone to the composite sheep cartilage Raman spectrum after multivariate linear regression.
[0205] Figure 4.2 is a graph of the 2D stacked area of the contributions of GAG, COL, and H2O to the IVD Raman spectrum in the nucleus pulposus (NP) and annulus fibrosus (AF) of the IVD before and after degeneration.
[0206] Figure 4.3 shows the Raman GAG and H2O scores of NP and AF before and after denaturation.
[0207] 4. Raman Needle Probe Monitoring of Artificial Cartilage Growth
[0208] (overview)
[0209] In this section, we describe the application of the Raman probe system to measuring the growth (i.e., biomolecular synthesis) of engineered cartilage tissue, with reference to Figure 5. Here, immature bovine chondrocytes were seeded onto agarose hydrogel scaffolds and cultured in chondrogenic medium in the absence or presence of 10 ng / mL TGF-beta3 (administered for the first 2 weeks). After 0, 14, 28, 42, and 56 days of culture, explants were subjected to Raman probe measurements and DMMB biochemical assay GAG measurements. Spectra were run through multivariate linear regression as previously described using the reference chemicals of agarose, chondroitin sulfate, type II collagen, and water.
[0210] Figure 5 shows Raman needle probe monitoring of engineered cartilage growth. Figure 5(A) shows a 2D stacked area plot illustrating the representative contributions of agarose scaffold, glycosaminoglycans (GAGs), collagen (COL), and water (HO) to the Raman spectra of engineered cartilage constructs after multivariate regression analysis. Figure 5(B) shows the bivariate correlation between Raman GAG scores and biochemical assays in which GAG content was measured in engineered cartilage constructs. The Raman probe can predict the characteristic increase in engineered cartilage GAG content over time and with supplementation with the anabolic growth factor TGF-β.
[0211] [5. Multipolarized Raman Spectroscopy for Oral Cancer Diagnosis]
[0212] (overview)
[0213] In this section, we describe the application of the above-described methods and systems to the identification of cancerous tissue.
[0214] (background)
[0215] Oral cancer is a serious, life-limiting disease, especially when detected at a late stage. Early detection of precancerous or early-stage cancer (i.e., in situ carcinoma) is one of the most important measures for reducing morbidity and mortality in oral cancer patients. Traditional diagnosis relies on macroscopic examination and biopsy of the oral cavity, with a 5-year survival rate of up to 90% for early-stage tumors. However, this survival rate drops to 50% for advanced cancer, highlighting the need for early diagnosis as a major factor in determining patient outcomes. Traditional diagnosis based on visual inspection suffers from interobserver dependency and an inability to reveal biomolecular or microscopic information about the tissue. Tumor depth, assessment of local / distant metastasis (staging) and malignancy grade (aggressiveness), and margin assessment of cancerous lesions are also major challenges for selecting appropriate treatment or surveillance strategies. Considering these existing clinical challenges, it is highly desirable to develop minimally invasive diagnostic techniques to improve early diagnosis, surveillance, margin assessment, and management of oral cancer patients.
[0216] Raman spectroscopy is a point-by-point, label-free optical technique that provides comprehensive optical fingerprints of countless inter- and intracellular building blocks (i.e., proteins, lipids, and DNA). Because cellular components undergo biomolecular changes with disease onset and progression, Raman technology can facilitate real-time "optical biopsies" with high biochemical specificity. Our previous work has demonstrated that this technique can be applied in vivo to the oral cavity, head and neck, esophagus, stomach, and colon with accuracies ranging from 70 to 85%. However, conventional Raman spectroscopy is limited to providing information on tissue composition and does not provide insight into tissue structure, such as connective tissue organization. It is well known that tissue structure (i.e., connective tissue) is destroyed during carcinogenesis. We hypothesize that utilizing this complementary information with polarized Raman spectroscopy can provide a novel contrast mechanism for cancer, potentially leading to more accurate diagnosis in the long term.
[0217] Here, we demonstrate a novel polarized Raman approach for biostructural analysis of changes occurring between normal and cancerous human oral tissues. By tightly focusing laser light at the tissue surface, we can preserve the polarized Raman signal from bulk cancerous tissue, enabling the extraction of both biochemical and structural information from human tissues.
[0218] Materials and Methods
[0219] We investigated the ability of the polarized Raman approach to detect biostructural changes in bulk oral cancer tissue. Bulk human oral tissue (n = 2) was obtained from Guy's and St Thomas' Thrust Biobank after ethical approval. Tissue was fixed in paraformaldehyde (PFA) and washed in saline before Raman analysis. The polarized Raman needle system has been described in detail elsewhere. The distal lens was positioned above the tissue oriented perpendicular to the surface, and multiple sets of polarized Raman spectra (perpendicular and parallel) were measured.
[0220] (result)
[0221] Figure 7.1a-b shows the polarized Raman spectra (mean ± 1 standard deviation (SD)) of normal and cancerous tissue regions. A total of 40 spectra were measured using an acquisition time of 10 seconds, resulting in a very high signal-to-noise ratio (SNR), i.e., cancer (n = 20 spectra) and normal margins (n = 20 spectra). Strong Raman peaks were observed at 1335, 1446, and 1660 cm in both polarizations. -1 These peaks tentatively correspond to DNA, lipids, and proteins, respectively, and provide biochemical information. More importantly for this study, we observed peaks between parallel and perpendicular polarized light, particularly at 1446, 1660, 1154, and 1520 cm in both normal and cancerous tissues. -1We found consistent differences between the normal and normal regions. Therefore, we calculated the depolarized Raman spectrum (DPR) (parallel / (perpendicular + n)), where n is an arbitrary number used to avoid values approaching infinity in the spectrum. The size of n is arbitrary and does not affect the comparison and analysis of the zones (see Figure 7.1c). The difference in DPR suggests that the tissue structure (tissue architecture) is significantly altered in cancerous tissue compared to normal tissue. To utilize the full range of polarized Raman peaks related to tissue architecture (rather than tissue biochemistry alone), we employed partial least squares discriminant analysis (PLS-DA) on the DPR spectra. We used cross-validation (leaving one measurement out) to determine the model complexity of two latent variables (LVs). Figure 7.2a shows a scatterplot of the PLS scores for the cancerous tissue zones. We found clear differentiation between normal and cancerous tissue (100% accuracy using a linear classifier). Figure 7.2b shows the loadings of the two LVs from PLS-DA. LV1 accounted for a total of 13.41% of the variance in X-Block and 83.75% of the variance in Y-Block. LV2 accounted for a total of 5.17% of the variance in X-Block and 13.27% of the variance in Y-Block. The prominence of several peaks across the two LVs suggests that polarized Raman spectroscopy provides novel insight into tissue structure (i.e., connective tissue) and can be used for highly accurate diagnosis of tissue structure loss alone.
[0222] (overview)
[0223] We measured polarized Raman spectra (parallel and perpendicular) of oral cancer and normal tissues. Our results demonstrate that cancer diagnosis can be based on tissue structure (i.e., DPR) characteristics (rather than just tissue composition), providing a novel contrast mechanism.
[0224] [Computer System]
[0225] FIG. 6 illustrates an example of a computer system that may be used to implement an embodiment of the present invention.
[0226] FIG. 6 is a block diagram illustrating a system configuration according to an embodiment of the present invention. Some embodiments of the present invention are designed to operate on a general-purpose desktop or laptop computer. Thus, according to one embodiment, a computing device 800 includes a central processing unit (CPU) 806 and a random access memory (RAM) 804 for storing data, program instructions, and the like, and accessible by the CPU. The device 800 includes a display screen 820 and input peripherals in the form of a keyboard 822 and a mouse 824. The keyboard 822 and mouse 824 communicate with the device 800 via a peripheral input interface 808. Similarly, a display controller 802 is provided for controlling the display 820, causing images to be displayed under the control of the CPU 806. Raman spectral data 102 can be input to and stored in the device via a data input 810. In this regard, the device 800 includes a computer-readable storage medium 812, such as a hard disk drive, a writable CD or DVD drive, a Zip drive, a solid-state drive, a USB drive, or the like, on which the Raman spectral data 102 can be stored. Alternatively, the Raman spectral data 102 may be stored on a web-based platform, such as a database, and accessed via a suitable network. The computer-readable storage medium 812 also stores various programs that, when executed by the CPU 806, cause the apparatus 800 to operate according to certain embodiments of the present invention.
[0227] In particular, a control interface program 816 is provided which, when executed by the CPU 806, provides overall control of the computer device, and in particular provides a graphical interface on a display 820, while a peripheral interface 808 accepts user input using a keyboard 822 and a mouse 824. The control interface program 816 also invokes other programs as needed to perform specific processing operations as required. For example, a software package program 104 may be provided which can operate on the Raman spectral data 102 represented by the control interface program 816. The operation of the program 104 is described in more detail above. The software package program 104 has been described above. The program 104 can simultaneously read out one or more, e.g., two, Raman spectra and perform preprocessing and multivariate analysis of Raman spectra (perpendicular + parallel) and analysis of perpendicular and parallel polarized Raman spectra for collagen analysis.
[0228] Next, a detailed description will be given of the operation of the computer device 800. First, the user launches the control interface program 816. The control interface program 816 is loaded into RAM 804 and executed by the CPU 806. Next, the user launches the program 104. The program 104 operates on the input data 102 as described above.
[0229] Various modifications, either by adding, deleting, or substituting features, may be made to the above-described embodiments to provide further embodiments, any and all of which are intended to be encompassed by the appended claims.
Claims
1. 1. A system for obtaining structural information about a tissue, comprising: a probe configured to direct polarized light toward tissue and collect Raman scattering; a lens attached to the distal tip of the probe, the lens configured to focus the polarized light onto the tissue so that the polarized light is reflected from the tissue and generates Raman scattering that is collected by the probe; a beam splitter configured to split the Raman scattering into two polarization components; a spectrometer configured to simultaneously and separately image the two polarization components to produce two Raman spectra. system.
2. a processor; a memory containing computer program code; the memory and the computer program code are configured to, using the processor, cause the processor to process and analyze the two generated Raman spectra to obtain structural information about the tissue. The system of claim 1 .
3. a first polarization component of the two polarization components being parallel to the polarization direction of the polarized light, and a second polarization component of the two polarization components being perpendicular to the polarization direction of the polarized light; 3. The system according to claim 1 or claim 2.
4. the structural information is obtained by calculating the difference between the first polarization component and the second polarization component and / or the ratio between the first polarization component and the second polarization component and / or the anisotropy between the first polarization component and the second polarization component, The system of claim 3 .
5. the structural information includes a measure of structural alignment in the tissue; A system according to any one of claims 1 to 4.
6. simultaneously obtaining biochemical and structural information about the tissue; A system according to any one of claims 1 to 5.
7. When dependent on claim 2, processing and analyzing the two generated Raman spectra obtains biochemical and structural information about the tissue. The system of claim 6.
8. the biochemical information is obtained by quantifying the relative contribution of extracellular matrix components to the generated Raman spectrum.
8. The system according to claim 6 or claim 7.
9. The biochemical information is obtained by calculating the sum of the two polarization components. The system of claim 8.
10. quantification of the relative contributions of extracellular matrix components to the generated Raman spectrum comprises using regression coefficients derived from multivariate least squares regression analysis.
10. The system according to claim 8 or claim 9.
11. the least squares regression analysis comprises comparing the generated Raman spectrum to a reference Raman spectrum of the extracellular matrix component. The system of claim 10.
12. the extracellular matrix components include one or more of glycosaminoglycans, collagen, and / or water; A system according to any one of claims 8 to 11.
13. The structural information is obtained in real time. A system according to any one of claims 1 to 12.
14. the tissue is a musculoskeletal connective tissue; A system according to any one of claims 1 to 13.
15. The method of claim 1, wherein the structural information is used to identify tissue abnormalities. A system according to any one of claims 1 to 14.
16. the tissue abnormality is cancerous; The system of claim 15.
17. The structural information is used to diagnose and / or monitor connective tissue degenerative disorders, including osteoarthritis and / or degenerative disc disease.
17. A system according to any one of claims 1 to 16.
18. the tissue is an artificial tissue and the structural information is used to measure the growth and / or regeneration of the artificial tissue; 18. A system according to any one of claims 1 to 17.
19. The method of claim 1, wherein the source of polarized light is a laser.
19. A system according to any one of claims 1 to 18.
20. the probe comprises a needle, and the lens is attached to a tip of the needle and configured to contact the tissue; 20. A system according to any one of claims 1 to 19.
21. The lens is a ball lens.
21. A system according to any one of claims 1 to 20.
22. the probe comprises a long-focus Raman probe; 21. A system according to any one of claims 1 to 20.
23. The method of claim 22, wherein the polarized light is directed to the tissue through a Raman-transparent window in a tissue plate containing the tissue.
23. The system of claim 22.
24. 1. A method for obtaining structural information about a tissue, comprising: directing polarized light toward tissue using a probe; focusing the polarized light onto the tissue using a lens, the lens being attached to a distal tip of the probe, and the lens focusing the polarized light onto the tissue such that the polarized light is reflected from the tissue and generates Raman scattering; collecting the Raman scattering with the probe; splitting the Raman scattering into two polarization components using a beam splitter; imaging the two polarization components simultaneously and separately using a spectrometer to generate two Raman spectra; and processing and analyzing the two generated Raman spectra using a computer program to obtain structural information about the tissue. method.
25. simultaneously obtaining biochemical and structural information about the tissue; 25. The method of claim 24.
26. 1. A system for simultaneously obtaining biochemical and structural information about a tissue, comprising: a probe configured to direct polarized light toward tissue and collect Raman scattering; a lens attached to the distal tip of the probe, the lens configured to focus the polarized light onto the tissue so that the polarized light is reflected from the tissue and generates Raman scattering that is collected by the probe; a beam splitter configured to split the Raman scattering into two polarization components; a spectrometer configured to simultaneously and separately image the two polarization components to produce two Raman spectra. system.
27. a processor; a memory containing computer program code; the memory and the computer program code are configured to, using the processor, cause the processor to process and analyze the two generated Raman spectra to obtain biochemical and structural information about the tissue.
27. The system of claim 26.
28. 1. A method for simultaneously obtaining biochemical and structural information about a tissue, comprising: directing polarized light toward tissue using a probe; focusing the polarized light onto the tissue using a lens, the lens being attached to a distal tip of the probe, and the lens focusing the polarized light onto the tissue such that the polarized light is reflected from the tissue and generates Raman scattering; collecting the Raman scattering with the probe; splitting the Raman scattering into two polarization components using a beam splitter; imaging the two polarization components simultaneously and separately using a spectrometer to generate two Raman spectra; and processing and analyzing the two generated Raman spectra using a computer program to obtain biochemical and structural information about the tissue. method.
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