Systems and methods for delivering diagnostic radiation

The system addresses the limitations of existing therapy systems by using passive components for simultaneous radiation delivery and measurement in optical elements, enhancing treatment efficiency and precision without mechanical switches.

JP7764044B2Active Publication Date: 2025-11-05SPECTRACURE
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Patent Information

Application Number
JP2022573402
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-29
Filing Date
2021-05-31
Publication Date
2025-11-05
Estimated Expiration
2041-05-31

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Abstract

Disclosed are systems and methods for coupling light into and out of an optical element, including transmitting at least one light beam in the infrared, visible, or ultraviolet wavelength range using a light source; coupling the light beam into a proximal end of the optical element with at least one focusing optic; collecting backscattered light using a distal end of the optical element; emitting the collected light at the proximal end of the optical element, wherein the light emitted by the optical element has at least a different angular sector than the angular sector of the light beam incident on the proximal end of the optical element; and detecting the collected light emitted from the proximal end of the optical element using at least one photodetector.
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Description

[Technical Field]

[0001] The present disclosure generally relates to systems and methods for photodynamic and / or photothermal therapy and / or diagnosis of a site on and / or within a subject's "body," where radiation is applied to the site for reaction with the site, the system comprising means for delivering radiation from at least one radiation source to the reaction site and means for delivering radiation from the reaction site to at least one radiation sensor, the reaction site preferably being a tissue site such as a tumor site. [Background technology]

[0002] In the field of medical therapy for oncological diseases, several treatments have been developed for the treatment of malignant tumors. Examples of common treatments include surgery, cytostatic therapy, treatment with ionizing radiation (gamma or particle radiation), isotope therapy, and brachytherapy using radioactive needles. Despite significant advances in treatment, oncological diseases continue to cause significant human suffering and account for a high percentage of deaths in Western countries. One treatment, photodynamic therapy (PDT), offers a complementary or alternative approach in the treatment field. Typically, a photoactivatable agent, called a sensitizer, is administered transdermally, orally, or topically to the body. It can accumulate in malignant tumors to a greater extent than in surrounding healthy tissue. The tumor area is then irradiated with non-thermal red or infrared light, usually from a laser, which excites the sensitizer to a higher energy state. Energy transfer from the activated sensitizer to oxygen molecules in the tissue results in the formation of singlet oxygen and other oxidizing species. Singlet oxygen is known to be particularly toxic to tissues, resulting in cell eradication and tissue necrosis, and the localization of the sensitizer to tumor cells provides unique selectivity, sparing surrounding healthy tissue.

[0003] Laser thermotherapy is a related treatment that instead of utilizing a photosensitizer, uses higher laser power to heat the target tissue, causing tissue death through thermal effects.

[0004] A drawback of PDT is the limited penetration of activation light into tissue, a similar limitation that exists in laser hyperthermia. As a result, only superficial tumors can be treated by superficial irradiation. To treat thicker, deeper tumors, interstitial light delivery can be utilized. Here, a light-conducting optical fiber is introduced into the tumor, for example, using a syringe needle with the fiber positioned within its lumen. A catheter-based system for insertion into arteries is disclosed in U.S. Pat. No. 5,304,173. This system is percutaneous and can be used for diagnosing and removing tissue on the vessel wall, but not in the interstitial space.

[0005] To achieve efficient treatment, several fibers may be used to ensure that all tumor cells receive a sufficient dose of light. It has been shown that it is feasible to perform dose calculations based on tissue absorption and scattering properties. To perform such calculations, it is advantageous to first perform measurements of the light flux through the tissue in the area where treatment will occur. These measurements can then be used to determine the tissue's absorption and scattering properties. While the measurements can be performed with a separate set of optical fibers, it is generally preferable to use the same set of optical fibers as those used for treatment. This is because fewer optical fibers need to be inserted into the tissue overall, and the inserted fibers will cover exactly the same volume when used for measurement and treatment. If the same set of optical fibers is used for measurement as for treatment, it is necessary to have a specific means for switching between measurement and treatment. For example, EP 1 443 855 A1 discloses a system in which multiple fibers are used for treatment and for measuring the light flux reaching a particular fiber during tissue penetration from other fibers.

[0006] EP 1 443 855 A1 discloses a means for switching between treatment and measurement by using optical fibers and a rotating disk arrangement. In this way, the correct light dosage can be achieved for all parts of the tumor.

[0007] As mentioned above, limitations of gap irradiation and measurement are that the rotating disk arrangement is slow, expensive to manufacture, and requires extensive adjustment and maintenance. Accordingly, EP 1 443 855 A1 discloses a system and method in which a non-mechanical operating mode selector is used to direct therapeutic and / or diagnostic radiation through a radiation conductor to a reaction site. Several non-mechanical operating mode selectors have been disclosed, such as electro-optic switches based on electrically controlled refractive index changes or acousto-optic switches based on acoustically generated Bragg deflection. However, while these non-mechanical operating mode selectors are an improvement over mechanical switches, they are active components that add cost and complexity.

[0008] Passive mode selection can be achieved by using a beam splitter to match the optical paths of the therapeutic and diagnostic radiation, but if the wavelengths of the therapeutic and diagnostic radiation are the same, the beam splitter will result in radiation loss in both the therapeutic and diagnostic radiation. For example, if the beam splitter has a 50 / 50 transmittance / reflectance, half of the therapeutic radiation and half of the diagnostic radiation will be lost.

[0009] Thus, new and improved apparatus and methods for combining radiation delivery and measurement in the same component would be advantageous. Summary of the Invention

[0010] Accordingly, examples of the present disclosure preferably seek to mitigate, alleviate or eliminate one or more deficiencies, drawbacks or problems in the art, such as those identified above, singly or in any combination, by providing an apparatus, system or method as set forth in the appended claims for combining radiation delivery and measurement in the same component.

[0011] Lasers and some light-emitting diodes are known to have high radiance, i.e., high power output per unit solid angle per emitting surface area. As a result of this property, light emitted from a laser source can be focused within a small area even with a small numerical aperture (NA). On the other hand, light that traverses biological tissue is usually scattered, resulting in a relatively low radiance once it leaves the tissue. To efficiently capture light emitted from biological tissue, it is preferable to use a light guide with a relatively large cross-sectional area and a high NA.

[0012] The present disclosure takes advantage of these properties of light sources and light guides to provide a means for passively matching the operating modes of light delivery to and measurement of the tissue without the need for mechanical or active switching elements.

[0013] In one aspect of the present disclosure, a system for diagnosing a subject is disclosed. The system may include at least one diagnostic light source for emitting diagnostic light in the infrared, visible, or ultraviolet wavelength range, the diagnostic light source capable of emitting at least one light beam. The system may also include at least one photodetector for detecting light and a plurality of optical elements configured to transmit light to and from a tissue site of the subject. Distal ends of the optical elements may be configured to be positionable at different locations at the tissue site to enable effective diagnosis and / or treatment.

[0014] The system may further include each of the optical members configured such that at least one of the light beams from the at least one diagnostic light source is incident on a proximal end of the optical members by at least one focusing optic, and at least a portion of the diagnostic light returned from tissue is emitted from the proximal end of the optical members in an angular sector different from an angular sector of the focused light beam, and the diagnostic light backscattered from the tissue may be detected by the at least one photodetector.

[0015] In some examples of the present disclosure, the plurality of optical elements can be configured to be positioned in a gap within tissue.

[0016] In some examples of the present disclosure, the system is further configured for interactive photodynamic or photothermal therapy and may include at least one therapeutic light source for emitting therapeutic light in the infrared, visible, or ultraviolet wavelength ranges, the therapeutic light source emitting at least one light beam that is incident on the proximal end of the optical element by the focusing optic.

[0017] In some examples of the present disclosure, the diagnostic light source may be the same as the therapeutic light source.

[0018] In some examples of the present disclosure, the wavelength range of the diagnostic light source can be the same as the wavelength range of the therapeutic light source.

[0019] In some examples of the present disclosure, the system may further include a reflecting member used to direct the light from the proximal end of the optical member to the at least one detector.

[0020] In some examples of the present disclosure, the reflective member has at least one aperture through which the diagnostic light is transmitted as it travels between the at least one diagnostic light source and the proximal ends of the plurality of optical members.

[0021] In some examples of the present disclosure, the aperture is at least one hole or slit.

[0022] In some examples of the present disclosure, one of the plurality of optical members may be a transmitting member used to transmit the diagnostic light to the tissue site, and at least two other optical members of the plurality of optical members may be receiving members for receiving backscattered light from the tissue site for detection.

[0023] In some examples of the present disclosure, the transmitting member may be selected sequentially from among the plurality of optical members.

[0024] In some examples of the present disclosure, the system may include a plurality of modules, each module including a light emitter including at least one of the at least one diagnostic light source, a light detector including at least one of the at least one detector, one of the at least one focusing optic, and one of the plurality of optical elements.

[0025] In some examples of the present disclosure, the transmitting member may be selected sequentially from among the plurality of optical members by sequentially switching on and off the light emitting portions of the plurality of modules.

[0026] In some examples of the present disclosure, the system is configured to have an open beam path between the at least one light source and the proximal ends of the plurality of optical elements, and between the proximal ends of the plurality of optical elements and the at least one light detector.

[0027] In some examples of the present disclosure, the plurality of optical elements can be configured to be positioned within the tissue site to perform spatially resolved measurements.

[0028] In some examples of the present disclosure, at least one second focusing element may be positioned before the at least one detector.

[0029] In another aspect of the present disclosure, a method of coupling light into and out of an optical element is disclosed, which may include transmitting at least one light beam in the infrared, visible, or ultraviolet wavelength ranges using a light source.

[0030] The method may also include directing the light beam at a proximal end of the optical element with at least one focusing optic.

[0031] The method may further include collecting backscattered light using a distal end of the optical element and emitting the collected light at the proximal end of the optical element, wherein the light emitted by the optical element has at least a partial angular sector that is different from the angular sector of the light beam incident on the proximal end of the optical element, and detecting the collected light emitted from the proximal end of the optical element using at least one photodetector.

[0032] It is emphasized that the term "light" as used herein is taken to specify electromagnetic radiation of any wavelength within the electromagnetic spectrum, including ultraviolet radiation, visible light, and infrared radiation.

[0033] It is also emphasized that the present disclosure is not limited to use in treating malignant tumors, but may be used in any situation where treatment of tissue is performed using optical elements, such as optical fibers, or where measurements within tissue are performed using optical elements.

[0034] It should also be emphasized that the present disclosure is not limited to the use of lasers as light sources, but may use any type of light source with sufficiently high radiance.

[0035] It is also to be emphasized that the word "comprises / comprising" as used herein is to be taken as specifying the presence of stated features, integers, steps, or components, but does not exclude the presence or addition of one or more other features, integers, steps, components, or groups thereof.

[0036] These and other aspects, features, and advantages of examples of the present disclosure will become apparent from and will be explained in the following description of examples of the disclosure, taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0037] [Figure 1] FIG. 1 shows a schematic example of a configuration according to the present disclosure. [Figure 2] FIG. 2 shows a schematic example of an arrangement for coupling light entering an optical element with light exiting said optical element. [Figure 3] FIG. 3 shows a schematic example of an arrangement for coupling light entering an optical element with light exiting said optical element. [Figure 4] FIG. 4 shows a schematic example of an arrangement for coupling light entering an optical element with light exiting said optical element. [Figure 5] FIG. 5 shows an example of coupling at least two light sources at different wavelengths into and out of an optical element. [Figure 6] FIG. 6 shows an example of coupling at least two light sources at different wavelengths into and out of an optical element. [Figure 7] FIG. 7 shows an example of coupling at least two light sources at different wavelengths into and out of an optical element. [Figure 8] FIG. 8 is an example of how the above configuration can be arranged as a module for combining light entering and leaving at multiple locations. [Figure 9] FIG. 9 shows a schematic example of an aperture in a mirror, which is a hole. [Figure 10] FIG. 10 shows a schematic example of an aperture in a mirror that is a slit, or apertures in two or more separate mirrors that form one or more slits. DETAILED DESCRIPTION OF THE INVENTION

[0038] The following disclosure focuses on examples of the present disclosure applicable to combining radiation delivery and measurement within the same component through the use of passive components. The present disclosure may be applicable to photodynamic or photothermal hyperthermia therapy of tissue. For example, this is advantageous for precise dosimetry of the light dose, so that the desired tissue is treated while sparing surrounding tissue. However, it will be understood that the description is not limited to this application, but may be applied to many other systems in which combining radiation delivery and measurement within the same component through the use of passive components is useful.

[0039] Consider a laser emitting light intended to be coupled into an optical element such as an optical fiber, as shown in FIG.

[0040] 1 shows an example of the present disclosure. A light source 1, such as a laser, may emit light 4, such as a light beam, which may be focused by a focusing element 6, such as a lens or lens assembly, into an optical element 2, such as an optical waveguide or optical fiber. The light may be injected into the proximal end of the optical element 2.

[0041] Due to the properties of the light source 1 , the numerical aperture NA of the focused beam 8 may be smaller than the acceptance angle of the optical element 2 .

[0042] The distal end (not shown) of optical element 2 can be used to collect backscattered light from an area to be measured or diagnosed, such as a tissue site or tumor. The collected backscattered light can be emitted by the proximal end of optical element 2. Optical element 2 can have a larger NA than focused beam 8, and because light collected by optical element 2 from an area that backscatters light, such as a tissue site, is diffuse, light 9 emitted from optical element 2 fills the NA of optical element 2. Thus, light 9 emitted from optical element 2 can be a wider beam than focused light beam 8.

[0043] The emitted light may be detected using at least one detector.

[0044] Additionally and / or alternatively, light 4 emitted from the at least one light source 1 can pass through a reflecting member 5, such as a mirror. The reflecting member 5 can pass light from the light source 1 through an aperture 13 at some points, but reflect it at others. Because the light 9 reflected back from the proximal end of the optical element 2 fills the NA of the optical element 2, a major portion of the light 9 emitted from the optical element 2 can be reflected by the reflecting member 5 and detected using the at least one detector 3. The at least one detector can have a second focusing element 7, e.g., a lens or lens assembly, positioned in front of it to focus the light 9 reflected by the reflecting member 5 onto the detector.

[0045] Light transmitted from at least one light source 1 to an optical element 2, and light emitted from the optical element 2 to and collected by at least one detector 3, can be transmitted in an open optical path without the use of a waveguide or fiber.

[0046] The disclosed system and method allows for the delivery of light through a fiber and the measurement of light at the same wavelength through the same fiber without the need for mechanical or active switches.

[0047] An advantage of using the techniques in this disclosure is that the switch from providing light to taking measurements is instantaneous, which can lead to shorter procedure times and shorter total time in the clinic.

[0048] A further advantage of the present disclosure is that it may allow for simultaneous light delivery and measurement within the same optical element, which is not possible with switching modules.

[0049] A further advantage of the present disclosure is that it has no moving parts, which may reduce the probability of part failure.

[0050] In some examples of the present disclosure herein, light 4 from at least one light source 1 may be incident into the proximal optical member 2 by obtaining a focused light beam 8 with an optical focusing element 6. In some examples of the present disclosure herein, light emitted from the optical member may be directly detected by at least one photodetector 3. The detector 3 may be, for example, a photodiode, a photomultiplier tube, an avalanche photodiode, a charge-coupled device (CCD), or a CMOS photosensitive element.

[0051] In one example, the light source may be a lamp, a photodiode such as a light emitting diode (LED), or a laser diode. The light source may have one or more filters for filtering the wavelengths of the emitted light.

[0052] The light source can be a diagnostic light source having a wavelength corresponding to the absorption of one or more chromophores in the tissue, such as deoxyhemoglobin and / or oxyhemoglobin, and can be the same light source used to treat the tissue site, such as to treat a tumor.

[0053] When diagnosis and treatment are performed simultaneously, they can be performed simultaneously. For example, an optional treatment period can be followed by an optional diagnosis period. In some instances, treatment can be performed simultaneously with diagnosis.

[0054] In some examples, any type of focusing component 6, including, for example, but not limited to, a lens, a curved mirror, a diffractive component, a holographic component, a Fresnel lens, a Fresnel mirror, or a microelectromechanical (MEMS) mirror, is used to focus light from light source 1 into optical element 2 and / or collimate light emitted from the proximal end of optical element 2. Note that in the illustrations of the present disclosure in the figures, lenses may be replaced with any of these components.

[0055] In some examples, the focusing element 7 that may be used to focus light emitted from the optical element 2 onto the detector 3 may be, but is not limited to, a lens, a curved mirror, a diffractive element, a holographic element, a Fresnel lens, a Fresnel mirror, or a microelectromechanical (MEMS) mirror.

[0056] In some examples, any type of optical element 2, such as a light guide, may be used to transmit light to a reaction site, such as a tissue site, and may include, but is not limited to, an optical fiber, a liquid light guide, a hollow light guide, or a plastic light guide.

[0057] In some examples, light from a light source is directed by a mirror into an optical fiber, while light emitted from the optical fiber is detected on the same optical axis as the optical fiber.

[0058] Consider Figure 2, where light from a light source 1 is focused by an optical focusing element 6, such as a lens, to obtain a light beam 8 that is focused into an optical element 2, such as an optical waveguide or optical fiber. A portion of the light emitted by the optical element 2 can be detected by a photodetector 3.

[0059] Light 9 emitted from optical element 2, which may result in a beam wider than focused light beam 8, fills the NA of optical element 2 so that light can be detected. Detector 3 is positioned at an angle to the beam path of focused light beam 8, thereby collecting at least a portion of light 9 emitted from optical element 2.

[0060] Another example is shown in Figure 3. A light beam from a light source 1 may be focused by an optical focusing element 6 and directed to the proximal end of an optical element 2 to obtain a focused light beam 8. Light 9 emitted from the optical element 2 may be measured by a disk-shaped photodetector 3 having a hole in its center where the optical focusing element 6 may be positioned.

[0061] Consider Figure 4, where a light beam from a light source 1 is reflected by a reflective element 10, such as a mirror, and focused by a focusing element 6 onto the proximal end of an optical element 2, while light emitted from the optical element 2 is detected by a focusing element 76 and a photodetector 3.

[0062] In some examples of the arrangements disclosed herein, multiple light sources are coupled to the same optical element. For example, to measure tissue oxygen saturation, at least two light sources of different wavelengths are required to distinguish between oxygenated and deoxygenated hemoglobin. Alternatively and / or additionally, in some examples, multiple light sources are coupled to the same optical element, with at least one light source being used to measure chromophores, e.g., for tissue oxygen saturation detection, while at least a second light source is used for treatment.

[0063] Consider Figure 5, where at least two light sources with different wavelengths, shown as three light sources 1a, 1b, and 1c, are coupled to optical element 2. Beam splitter 11 may be selected to transmit the wavelength of light source 1a but reflect the wavelength of light source 1b. Beam splitter 12 may be selected to transmit the wavelengths of light sources 1a and 1b but reflect the wavelength of light source 1c. This may be achieved by arranging light sources 1a, 1b, 1c, 2, and 3 in ascending wavelength order and selecting beam splitter 11 as a short-pass filter and beam splitter 12 as a short-pass filter with a higher cutoff wavelength.

[0064] Alternatively, this can be achieved by arranging light sources 1a, 1b, and 1c in descending order of wavelength, selecting beam splitter 11 as a long-pass filter, and selecting beam splitter 12 as a long-pass filter with a lower cutoff wavelength. Note that the number of light sources is not limited to three, and any number of light sources can be used based on the same principle. Note that beam splitters 11 and 12 are not limited to high-pass or low-pass beam splitters, and any wavelength-selective beam splitters with appropriate characteristics, such as a band-pass beam splitter or a notch beam splitter, may be used.

[0065] The arrangement for coupling light into and out of the optical element 2 is shown in FIG. 1, but this is by way of example only and other methods are possible as described with respect to FIGS. 2-4.

[0066] In some examples, multiple light sources 1 a, 1 b, 1 c can be combined into optical element 2 without the need for a beam splitter. Consider the illustration in Figure 6, where light, such as light beams, from each light source 1 a, 1 b, 1 c is spatially separated and passes through apertures 13 a, 13 b, 13 c, respectively, in a reflective element 5, such as a mirror, and then is focused into optical element 2 by focusing element 6.

[0067] The collected light may then be emitted by the proximal end of the optical element 2, collimated by the focusing element 6, reflected by the reflecting element 5 and directed towards the at least one detector 3. The at least one detector may have a second focusing element 7 positioned in front to focus the light onto the at least one detector 3.

[0068] In some examples, instead of using a single aperture 13 per optical path and / or beam, a slit may be used in the reflecting member 5 .

[0069] FIG. 9 further illustrates what an arrangement with holes as apertures 13 might look like, while FIG. 10 further illustrates an alternative using slits as apertures 13. In these examples, the reflective member 5 is used with a single light source 1, but the principles are the same for multiple light sources. In the case of FIG. 9 using multiple light sources 1, the reflective member 5 may have additional apertures 13, for example, one aperture 13 for each light source and / or light path and / or light beam. In FIG. 10, a single slit may be used with multiple light sources, as long as the slit is long enough to accommodate the light paths from light source 1. Alternatively, the reflective member 5 may have a slit 13 for each light source and / or light path and / or light beam. The slits may be obtained by creating a slit in a reflective member, such as a mirror, or by positioning two mirrors next to each other with a gap between them that becomes the slit.

[0070] Consider the illustration in Figure 7, where light beams from each light source 1a, 1b, 1c can be spatially separated using reflective elements 13, 14. In this example, one of the light sources 1a is positioned along the optical axis, while the other two are positioned at an angle, e.g., perpendicular, to the optical axis. By positioning the reflective elements 13, 14 at different distances from the optical axis, light can be reflected from the other light sources 1b, 1c to obtain three parallel optical paths and / or beam paths.

[0071] Each of the multiple parallel optical paths and / or beam paths may pass through an aperture in the reflecting element 5, for example, as shown in FIG. 9 or 10 . The light may then be focused into the optical element 2 by the focusing element 6. Most of the returning light from the optical element 2 may be reflected by the reflecting element 5 to the beam splitter 15, which reflects light having the wavelength of the light source 1a (the shortest wavelength), while light having a wavelength longer than that of the light source 1a may be transmitted and detected by the detector 3a. The light reflected by the beam splitter 15 may be detected by the detector 3b or may be reflected by a further reflecting element 16, such as a mirror, that directs the light toward the detector 3b. With this arrangement, light at the wavelength of the light source 1a may be detected simultaneously with light from either the light source 1b or 1c. Alternatively, the light from the light source 1a may induce fluorescence in the tissue at a wavelength longer than that of the light source 1a, such as fluorescence from a photosensitizer. In such a case, the fluorescent light can be separated from the light from light source 1a, which is detected by detector 3b, and detected by detector 3a. Light sources 1b and 1c may be switched on sequentially after light source 1a, and the detected light can be detected by detector 3a.

[0072] In some examples, multiple modules as disclosed in the present disclosure are combined into a single complete system that can interact in the manner disclosed in EP 1 443 855 A1. Figure 8 illustrates a system based on multiple modules as shown in any of Figures 1-7. Multiple optical fibers can be connected to the system. The system can include at least two optical elements configured to be inserted into tissue, e.g., interstitially inserted. The at least two optical elements can be configured to emit and / or collect light. The system can further include a control unit configured to control the system such that light is transmitted from the at least one optical element to the tissue and detected from the tissue by the at least one light-collecting optical element. This allows for a data set of measured values ​​to be obtained for pairs of emitting and collecting optical elements.

[0073] For example, a transmitting element of a plurality of optical elements is selected from the plurality of optical elements in sequence by sequentially switching on and off the light emitting elements of the plurality of modules.

[0074] In some examples, the system may include multiple optical elements. In some examples, one single fiber may emit light at a time, and all other fibers may collect light. Alternatively, in some examples, other measurement regimens may be possible, such as using a subset of all emitting fibers, or a subset of all collecting fibers, or a combination thereof.

[0075] In some examples of the system, the measured and / or determined optical properties of the tissue may be used to calculate a light dosage for photodynamic therapy or laser thermotherapy.

[0076] In some examples, multiple optical elements are configured to be positioned over a tissue site such that spatially resolved measurements can be made, and optical properties can then be obtained from the measurements by solving a transport equation for radiative transfer.

[0077] In some examples of the system, the optical element can be an optical fiber or an optical fiber with a diffuser. The optical element can be configured to be interstitially placed within tissue to enable treatment and / or diagnosis of deep tissue sites. In one example, this can be done using a needle, syringe, and / or catheter.

[0078] Alternatively, in some examples, the optical element is configured to transmit light to or from a surface of a tissue site, such as a skin surface or a surface within a body cavity.

[0079] The optical element may transmit the emitted light from the light source to the tissue and transmit the collected light to the detector. The light source and detector may be any type of light source and detector disclosed herein.

[0080] In other examples, the present disclosure may not be limited to the conditions applied in the preceding description. Some other examples are described below.

[0081] In some instances, it is advantageous to detect light from not only one light source at a time, but also other wavelengths simultaneously. The detectors in Figures 1-10 may be replaced by means for spatially resolving the light returned from the fiber, for example, by using spectrometers or multiple wavelength-selective optical filters and detectors.

[0082] In some examples, the aperture or apertures in the mirror are areas on the mirror that are transparent, while the remainder of the mirror's surface is coated with a reflective material.

[0083] In some examples, the aperture(s) in the mirror are holes in the mirror, such as those shown in FIG.

[0084] In some examples, the aperture(s) in the mirror are slits in the mirror, or two or more separate mirrors forming one or more slits, as shown in FIG.

[0085] In the following sections, basic principles regarding the system according to the present disclosure are described, based on an exemplary system having three diagnostic light sources and six optical elements, e.g., six modules each comprising three diagnostic light sources coupled to a single optical element, preferably an optical fiber.

[0086] In this context, reaction site or treatment site refers to the site where a treatment, such as photothermal therapy, is performed, or where a photodynamically active compound can react within a tumor when exposed to therapeutic radiation. The therapeutic radiation is delivered, for example, by optical elements delivered through the lumen of an injection needle or catheter placed within the tumor. These optical elements can then be fixed within the reaction site. The optical element can then be moved forward to reach the outside distal end of the needle or catheter. For integrated diagnostic and dosimetry purposes, and to avoid multiple patient sticks, the same optical element is used continuously during treatment.

[0087] Preferably, the diagnostic light source is a laser and / or a light-emitting diode, one of which may have the same wavelength but lower output power as the laser used for laser irradiation for photothermia or photodynamic tumor therapy. Suitable filters may be arranged to be inserted into the optical path to ensure that the correct dynamic range is utilized for all measurement tasks and to prevent saturation of the radiation detector.

[0088] Some of the diagnostic light sources are utilized to examine how radiation of corresponding wavelengths penetrates tumor tissue at the treatment site.

[0089] When radiation from a radiation source is transmitted into tissue via a particular optical element via the above-described arrangement, one of the optical elements acts as a transmitter into the tissue site, such as a tumor, and the others, in this example, five optical fibers within the tissue site, such as a tumor, act as receivers and can collect the diffuse radiation flux that reaches them. The optical elements transmit the collected light and emit it so that it can be detected by at least one detector as described above, and five different light intensities can be recorded for each wavelength.

[0090] As an alternative to specific wavelengths, light from an optically broad source, such as a white light source and / or a broadband light-emitting diode and / or a line light source, can be coupled into a specific active optical element. As it passes through tissue to the optical element within the patient, the light source's well-defined spectral distribution can be altered by tissue absorption. Oxygenated blood then produces a different signature than non-oxygenated blood, allowing for tomographic determination of oxygen distribution using 30 different spectral distribution readouts, five spectra at a time in six different possible constellations. Because the PDT process requires access to oxygen within the tissue, such determination of oxygenation within the tumor is important.

[0091] Finally, one of the multiple light sources can induce fluorescence in the tissue, resulting in a characteristic fluorescence distribution shifted to longer wavelengths if a sensitizer is administered to the tissue. The intensity of the corresponding signal allows for a rough quantification of the level of the sensitizer in the tissue. For certain substances, the red light used in the light propagation study can be used to induce red or near-infrared fluorescence. This fluorescence penetrates the tissue to the tip of the receiving optics and is simultaneously displayed as a spectrum by one of the multiple detectors. A cross-sectional calculation of the sensitizer distribution can be performed based on a total of 30 measurements at each measurement occasion.

[0092] If the tip of the optical element is further treated with a material whose fluorescence properties are temperature-dependent, multiple sharp fluorescence lines are obtained upon excitation, and the intensity of these lines and their relative strengths depend on the temperature at the tip of the optical element used for treatment. Examples of such materials include salts of transition metals or rare earth metals. Thus, the temperature can be measured at six positions on the six optical elements, one at a time or simultaneously. The measured temperature can be used to determine whether blood clotting, with its associated light attenuation, occurs at the tip of the optical element and to explore the potential synergistic effects between PDT and thermal interactions. Because the multiple lines obtained are sharp, they can be easily extracted from the broader band of intrinsic fluorescence distribution from the tissue.

[0093] After diagnostic measurements and calculations are performed, the optical elements coupled to the patient can be utilized for treatment by switching off the diagnostic light source and switching on the treatment light source, so that the treatment light source is coupled to the patient's optical elements. The treatment light source is preferably a laser light source having a wavelength selected to match the absorption band of the sensitizer. In photodynamic tumor treatment, a dye laser or diode laser is preferably used, with a wavelength selected depending on the sensitizer used. For example, for Photofrin®, the wavelength is 630 nm, for o-aminolevulinic acid (ALD), the wavelength is 635 nm, and for phthalocyanines, the wavelength is approximately 670 nm. Several other sensitizers have such characteristic wavelengths. The multiple individual lasers are adjusted to the desired individual output power during treatment. If necessary, they may have built-in or external monitoring detectors.

[0094] Treatment may be interrupted until optimal treatment is reached, and new diagnostic data may be processed in an iterative manner. This method may include a synergistic effect of PDT and hyperthermia, where increasing the laser radiation flux increases the temperature. The entire process may be controlled using a control unit, e.g., a computer, that not only performs all calculations but also coordinates and controls the system. The present invention has been described above with reference to specific examples. However, other examples than those described above are also possible within the scope of the present disclosure. Method steps different from those described above may be provided within the scope of the present invention. Different features and steps of the present invention may be combined in other combinations than those described. The scope of the present disclosure is limited only by the appended claims.

[0095] Unless expressly stated to the contrary, the indefinite articles "a" and "an," as used in this specification and claims, shall be understood to mean "at least one." The phrase "and / or," as used in this specification and claims, shall be understood to mean "either or both" of the components in question, i.e., components that are conjunctively present in some cases and disjunctively present in other cases.

Claims

1. 1. A system for diagnosing a subject, the system comprising: a plurality of modules; and a plurality of optical members configured to transmit light between tissue sites of the subject, wherein distal end sections of the plurality of optical members are configured to be positionable in gaps at different locations of the tissue; Each module of the plurality of modules is connected to a proximal end of one optical element of the plurality of optical elements, and each of the plurality of modules comprises: at least one diagnostic light source for emitting diagnostic light in the infrared, visible, or ultraviolet wavelength range, said diagnostic light source emitting at least one light beam; at least one photodetector for detecting light; Focusing optics and Equipped with each module is characterized in that the optical member connected to the module is configured such that at least one of the plurality of light beams from the at least one diagnostic light source is incident on the proximal end of the connected optical member by at least one focusing optic, at least a portion of the diagnostic light returned from the tissue emerges from the proximal end of the connected optical member in an angular sector different from an angular sector of the focused light beam, the connected optical member has a larger numerical aperture (NA) than the focused light beam incident on the optical member, and the diagnostic light backscattered from the tissue is detected by the at least one photodetector. system.

2. The system of claim 1 , comprising at least two diagnostic light sources coupled to each optical element of the plurality of optical elements.

3. The system of claim 1 or 2, comprising at least one diagnostic light source and at least one therapeutic light source coupled to each optical element of the plurality of optical elements.

4. The system of any one of claims 1 to 3, wherein each optical element of the plurality of optical elements has a distal end section configured to be positionable in a gap, and the plurality of optical elements are separated so as to be positionable at different locations of the tissue site.

5. 5. The system of claim 1, wherein at least one of a plurality of the optical elements transmits light to the tissue site, and a group of optical elements of the plurality of optical elements that do not transmit light to the tissue site collect light to be detected by the at least one light detector.

6. The system of claim 5 , wherein transmitting members of the plurality of optical members are selected sequentially from among the plurality of optical members.

7. 7. The system of claim 1, further configured for interactive photodynamic or photothermal therapy, comprising at least one therapeutic light source for emitting therapeutic light in an infrared, visible, or ultraviolet wavelength range, said therapeutic light source emitting at least one light beam that is incident on the proximal end of the optical element by said focusing optic.

8. The system of claim 7 , wherein the diagnostic light source is the same as the therapeutic light source or the wavelength range of the diagnostic light source is the same as the wavelength range of the therapeutic light source.

9. The system of any one of claims 1 to 8, wherein a reflective member is used to direct the light from the proximal end of the optical member onto at least one photodetector.

10. 10. The system of claim 9, wherein the reflective member has at least one aperture through which the diagnostic light is transmitted as it travels between the at least one diagnostic light source and the proximal ends of the plurality of optical members.

11. The system of claim 10 , wherein the aperture is at least one hole or slit.

12. 12. The system of claim 1, wherein one of the plurality of optical members is a transmitting member used to transmit the diagnostic light to the tissue site, and at least two other optical members of the plurality of optical members are receiving members for receiving backscattered light from the tissue site for detection.

13. The system of claim 12 , wherein the transmitting members are sequentially selected from among the plurality of optical members.

14. 13. The system of claim 12, wherein the transmitting member is selected sequentially from among the plurality of optical members by sequentially switching on and off light emitting portions of the plurality of modules.

15. 15. The system of claim 1, wherein the system has an open beam path between at least one light source and the proximal ends of the plurality of optical elements, and between the proximal ends of the plurality of optical elements and the at least one light detector.

16. The system of any preceding claim, wherein the plurality of optical elements are configured to be positioned on the tissue site to perform spatially resolved measurements.

17. The system of any one of claims 1 to 16, wherein at least one second focusing element is arranged in front of the at least one photodetector.

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