Endoscope illumination system for fluorescent medication

By designing an improved lighting system containing multiple light sources and filters, the problem of inconsistent light requirements for IR700 fluorescence imaging and treatment in the prior art is solved, efficient fluorescence imaging and treatment effects are achieved, and the overall performance of the endoscopic system is improved.

JP7675242B2Active Publication Date: 2025-05-12PENTAX MEDICAL CONTRACT CO LTD
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Patent Information

Application Number
JP2024039363
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-07-03
Filing Date
2024-03-13
Publication Date
2025-05-12
Estimated Expiration
2041-06-24

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Abstract

To provide an endoscopic illumination apparatus that can be used for both imaging and therapy.SOLUTION: An illumination apparatus for outputting output light is provided, comprising a first light source configured to emit first light with a first peak wavelength in a first range of 660 nm to 699 nm; and a second light source configured to emit second light with a second peak wavelength in a second range of 689 nm to 705 nm. The second peak wavelength is larger than the first peak wavelength by at least 5 nm; the second light source is configured to be switched on and off independently from the first light source; and the apparatus is configured to output the first light as the output light if the second light source is switched off and to output the first light and the second light as the output light when the second light source is switched on.SELECTED DRAWING: Figure 3
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Description

[Technical field]

[0001] The present invention relates to an endoscopic illumination system for fluorescent medication. [Background technology]

[0002] NIR-PIT (near-infrared photoimmunotherapy) is expected to be a new cancer treatment. The drug for NIR-PIT has a conjugate structure with the photoreactor IRDye700DX (hereinafter referred to as IR700) and an antibody drug. The main functions of the drug are a drug delivery system (DDS) for molecular targeted therapy, fluorescence imaging with sufficient differentiation against autofluorescence (510 nm), and therapy (see https: / / www.ncbi.nlm.nih.gov / pmc / articles / PMC6704485 / ).

[0003] The excitation and emission characteristics of the IR700 are shown in Figure 1. As the graph shows, the peak wavelengths of the excitation sensitivity (maximum excitation sensitivity at λp,ex = 689 nm) and the fluorescence emission (λp,em = 699 nm) are very close.

[0004] If one is trying to image a scene by fluorescence from the IR700 excited by excitation light, the excitation light should have a wavelength close to the emitted fluorescence. However, such excitation light will disturb the fluorescence imaging. It is difficult to separate these two lights so that the imaging system gets a sufficient fluorescence signal without too much excitation light.

[0005] On the other hand, for therapeutic use, high specific energy deposition, such as 50 J / cm2 at the peak excitation wavelength of IR700 (689 nm) and a few nm around the peak excitation wavelength, is required, otherwise the therapeutic response may take a long time.

[0006] When imaging and therapy are performed by a single endoscope, the requirements for imaging and therapy use are in conflict with each other.

[0007] CIE1931 links the wavelength distribution of the electromagnetic visible spectrum to physiologically perceived colors in human color vision. Figure 2 shows the color gamut according to CIE1931 (xy plane taken from people.cs.clemson.edu). The central area (no color notation) shows whitish light. The numbers on the boundaries of the color gamut show the wavelengths (nm) of the respective spectral clean lights. White light has coordinates x=1 / 3, y=1 / 3, and z=1 / 3. Summary of the Invention [Problem to be solved by the invention]

[0008] The object of the present invention is to improve upon the prior art. [Means for solving the problem]

[0009] The present invention provides an improved illumination system that enables both fluorescence-based imaging from IR700 and therapeutic uses of IR700, for example, for cancer treatment.

[0010] An illumination device for outputting illumination light for imaging based on fluorescence from IR700 and output light for treatment using IR700 is provided, the illumination device including: a first light source configured to emit first light having a first peak wavelength in a first range of 660 nm to 700 nm; a first filter configured to pass light having a wavelength smaller than a predetermined wavelength and block light having a wavelength larger than the predetermined wavelength; a first position on an optical path of the first light from the first light source, where the illumination device is configured to output the first light filtered by the first filter as the illumination light; and a second position on an optical path of the first light from the first light source, where the illumination device is configured to output the first light filtered by the first filter as the output light. Related Wavelength range Any in and a moving device configured to move the first filter between a first position and a second position configured to output the first light without passing through a filter that filters out a light intensity of more than 30% of the light intensity of the wavelength, the predetermined wavelength being within a range of 689 nm to 700 nm, Long In the above First light source The strength is the first of light from the light source At peak wavelength Light Intensity At least 50% of the

[0011] Further details, features, objects and advantages will be apparent from the following detailed description of preferred embodiments of the invention, which is to be read in conjunction with the accompanying drawings. [Brief description of the drawings]

[0012] [Figure 1] FIG. 1 shows the excitation and emission spectra of IR700. [Diagram 2] FIG. 1 is a diagram showing the color gamut according to CIE1931. [Diagram 3] FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 4] 4 is a diagram showing the reflectance of a dichroic interface of a cross cube used in the illumination device of FIG. 3. [Diagram 5] 1 illustrates a diagram showing transmission through filters included in imaging systems according to some embodiments of the present invention. [Figure 6] FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 7] FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 8] 8 is a diagram showing the reflectance of a dichroic interface (dichroic mirror) used in the illumination device of FIG. 7. FIG. [Figure 9] 8 is a diagram showing the transmittance of an optical cut filter included in the lighting device of FIG. 7. [Figure 10] 8 illustrates an example spectrum of output light from the lighting device of FIG. 7 when the optical cut filter is removed from the light path across the excitation and emission spectra of IR700. [Figure 11] 8 illustrates an example spectrum of output light from the lighting device of FIG. 7 when an optical cut filter is in the light path across the excitation and emission spectra of IR700. [Figure 12]FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 13] FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 14] FIG. 1 illustrates a lighting device according to one embodiment of the present invention. [Figure 15] FIG. 1 illustrates a sensor system that may be used in an imaging system according to some embodiments of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0013] Specific embodiments of the present invention will now be described in detail with reference to the accompanying drawings, in which the features of the embodiments can be freely combined with one another unless otherwise specified. It should be expressly understood, however, that the description of the specific embodiments is given by way of example only and is in no way intended to be construed as limiting the present invention to the disclosed details.

[0014] First embodiment According to a first embodiment, the lighting device comprises at least two light sources.

[0015] Light source 1 has a peak wavelength of 660 nm≦λp1<699 nm. It can be used for both fluorescent imaging and therapeutic use. This peak wavelength is shorter than the emission peak wavelength of IR700 (699 nm) and shorter than the peak wavelength of "Light source 2".

[0016] Light source 2 has a peak wavelength of 689 nm≦λp2<705 nm. It is typically used only for therapeutic use. The peak wavelength of light source 2 is greater than the peak wavelength of light source 1. For example, it may be at least 5 nm, preferably at least 10 nm, more preferably at least 15 nm greater.

[0017] For fluorescence imaging of a scene, typically only light source 1 is used. Thus, light of wavelengths above 700 nm coming from the scene mainly comes from IR700 fluorescence.

[0018] In therapeutic use, both "Light Source 1" and "Light Source 2" are typically turned on to promote the therapeutic response of PIT. Thus, the treatment time is shortened compared to illumination by only one of the light sources, reducing the burden on patients and medical personnel.

[0019] The light sources 1 and 2 may typically be laser diodes or LEDs. Examples of the light source 1 include the laser diode L690-66-60 (manufactured by Ushio Opto Semiconductor Co., Ltd.) and MRL-III-690 (see http: / / www.cnilaser.com / red_laser690.htm).

[0020] An example of a light source 2 is the laser diode MLL-FN-698 (see http: / / www.cnilaser.com / Red-Laser-698nm.htm).

[0021] In addition, the device may include a light source 3 for another imaging mode, such as white light imaging. For white light imaging, the third light source 3 emits light closer to the CIE1931 white point (x=y=z=1 / 3) than the light from the first light source. "Close to the white point" means that the Euclidean distance from the white point x=y=1 / 3 (ignoring the z direction) in the xy plane of the CIE1931 gamut is shorter. The Euclidean distance of the coordinates xi, yi in the xy plane from the white point of the illumination light is (xi-1 / 3)2+(yi-1 / 3)2.

[0022] White light imaging is just one example of an alternative imaging mode, and colored or UV or (far) infrared (generally spectral imaging) imaging may be performed instead of (or in addition to) white light imaging, if desired.

[0023] The light from two or three light sources is combined by a combiner. For two light sources, a dichroic mirror may be used. For three light sources, two dichroic mirrors may be used. The two dichroic mirrors may be functionally combined in a cross cube that contains two dichroic interfaces.

[0024] FIG. 3 shows one embodiment of such an illumination device. FIG. 4 shows the reflectance of the dichroic interface of the cross cube used in the illumination device of FIG. 3. As can be seen from FIG. 3, the light from the light source 1 and the light from the light source 3 are reflected at the respective dichroic interfaces of the cross cube. The light from the light source 2 passes through both dichroic interfaces. Thus, in this example, as shown in FIG. 4, one dichroic interface reflects light near the peak wavelength λp1 of the first light source, and the other dichroic interface reflects white light, for example, in the range of 400 nm to 650 nm. The reflection bands are typically separated from each other. The dichroic interface passes light of other wavelengths, such as the peak wavelength λp2 of the second light source and wavelengths near λp2.

[0025] The combined light may be focused by a concentrator (such as a convex lens) on an optical connector that inputs the light into an optical fiber to illuminate a scene. For example, the output end of the optical fiber may be located at the distal rigid tip of an endoscope to illuminate a scene that is imaged by an imaging element (objective lens) located at the rigid tip of the endoscope.

[0026] If the illumination device is located near the illuminated scene, for example, if the illumination device is located in a rigid tip portion of the endoscope, the concentrator, optical connector, and optical fiber may be omitted. Figures 12-14 provide respective examples. In this case, light source 1 and light source 2 are typically LEDs, for example based on AlGaInP material. Some embodiments include two different types of LEDs. In some embodiments, LED 1 may be the same type as LED 2, but may be covered with a filter corresponding to the filter further described below with respect to Figure 7.

[0027] As shown in FIG. 12, the illumination device provided at the rigid tip portion of the distal end of the endoscope includes only LED1 and LED2 arranged on one or two circuit boards. Furthermore, the illumination device may include additional LEDs, such as a blue LED and a purple LED, as shown in FIG. 13. Furthermore, the LEDs may be covered by a phosphor layer and / or a transparent cap, as shown in FIG. 14. Preferably, the phosphor layer has an excitation spectrum such that fluorescence or luminescence is not excited by light from LED1 or LED2. That is, the phosphor layer is substantially transparent for light from LED1 and LED2.

[0028] In some embodiments, the light of even more light sources with different peak wavelengths may be coupled through an appropriate number of dichroic reflecting interfaces (n light sources → n-1 dichroic reflecting interfaces). Up to four dichroic interfaces may be arranged together in each cross cube (two dichroic interfaces for reflecting light from the first and second light sources arranged in a first plane containing the propagation direction of the output light, and two dichroic interfaces for reflecting light from the third and fourth light sources arranged in a second plane containing the propagation direction of the output light, the first plane intersecting the second plane, typically the second plane being perpendicular to the first plane).

[0029] An example of such an illumination device is shown in FIG. 6. In FIG. 6, each of three cross cubes (generally, cross prisms) has two dichroic interfaces. The light of three near-infrared (NIR) light sources NIR1, NIR2, and NIR3 is combined in a first cross cube, and the second and third cross cubes combine RGB light (red, green, blue) and UV light (ultraviolet light) with the light outputted by the first cross cube. With the RGB light, white light imaging can be realized. The UV light may be used to improve blood vessel imaging, possibly together with the green light. In the example of FIG. 6, the light from the light sources is collimated by the respective lenses before entering the respective cross cubes. The arrangement of the light sources may be changed as long as the dichroic reflective interfaces have suitable reflective properties. For example, some or all of the RGB light sources may exchange their positions with those of the NIR light sources.

[0030] In general, each light source of the lighting device may be separately controllable, i.e., each may be switched on and off independently of the other light sources. Furthermore, in some embodiments, the light intensity or emission color of at least one of the light sources may be controlled independently of the other light sources. Some embodiments include a controller for performing the control.

[0031] For example, when only the first light source is turned on, the illumination device can illuminate the scene to be imaged on the imaging surface. An imaging device may be used for imaging. The imaging device typically includes an objective lens for imaging the scene on the imaging surface. However, the imaging device is not limited to a lens optical system, and may include, for example, a reflective component (reflective optical system).

[0032] Furthermore, in some embodiments, the imaging device includes a filter (excitation light cut filter) which may be a band filter. That is, this filter transmits the fluorescence from IR700 (i.e., the wavelength band in the range of 699 nm to 715 nm) in the wavelength range of 670 nm to 715 nm, and blocks the excitation light in the range below 699 nm. Therefore, the excitation light does not disturb (or hardly disturbs) the fluorescence image. In general, the filter blocks light below a preset wavelength in the range of 690 nm to 700 nm, and allows light above the preset wavelength to pass.

[0033] Additionally, as shown in FIG. 5, a filter can pass white light (wavelengths less than 650 nm) from a third light source, allowing the same imaging device to be used for fluorescence imaging with illumination by the first light source and white light imaging with illumination by the third light source.

[0034] The image on the imaging surface may be captured by an imaging element such as a CMOS array or a CCD array, In some embodiments, the image on the imaging surface may be viewed directly or through a relay optical system.

[0035] In some embodiments, the beam may be split by a further dichroic mirror. The further dichroic mirror may reflect the fluorescence so that the fluorescence image may be observed by the first image sensor while other light is blocked from the first image sensor. The further dichroic mirror may pass other light, such as white light (or one of the RGB lights) or UV light from one or more of the other light sources. Thus, the image from the illumination by the other light may be observed by the second image sensor. Observation may be performed simultaneously for the first and second image sensors. In some embodiments, the further dichroic mirror may pass the fluorescence and reflect the other light instead of the above configuration.

[0036] Furthermore, the sensor configuration may include an excitation light cut filter (such as the one described above) for filtering the excitation light, especially if the further dichroic mirror does not include a corresponding filter function. Such a sensor configuration is shown in FIG. 15. The objective lens and other optical components are omitted from FIG. 15 for clarity. In this case, the excitation light cut filter passes light having a wavelength at least 20 nm lower than the preset wavelength. Preferably, the difference is even larger (e.g., 40 nm or even 60 nm) so that almost no excitation light passes through the excitation light cut filter and white light (or any of RGB light) or UV light passes through the excitation light cut filter.

[0037] Second embodiment The following describes the differences between the second embodiment and the first embodiment. Unless otherwise specified or clear from the context, the description of the first embodiment also applies to the second embodiment.

[0038] In a second embodiment, as shown in FIG. 7, the illumination device includes only one NIR light source (first light source) having a peak wavelength λp1 in the range of 660 nm≦λp1<700 nm and an emission spectrum extending beyond 700 nm with at least 30% of the intensity at the peak wavelength.

[0039] Additionally, an optical filter (e.g., a bandpass filter) is disposed on the optical path between the light source and the output of the illumination device (e.g., between the light source and the optical connector). The bandpass filter is movable so that it can be in or out of the optical path. The bandpass filter passes the excitation light and substantially blocks light in the wavelength range of the fluorescence emitted by the IR700. For example, the bandpass filter can pass light with wavelengths smaller than a predetermined wavelength and block light with wavelengths larger than a predetermined wavelength, the predetermined wavelength being within a range of 689 nm to 700 nm.

[0040] To be effective as a filter, the light intensity of the first light source at a given wavelength is at least 50%, preferably at least 65%, or even at least 80%, of the light intensity at the peak wavelength of the light from the first light source.

[0041] The filter may be moved in and out of the light path by a moving device. The moving device may be, for example, a motor. The motor may be controlled by a controller. The moving device may be, for example, a handle or some other mechanism so that the filter can be moved manually. The movement may be, for example, a linear or rotary movement. When the filter is removed from the light path, the light output from the illumination device includes light from the light source without passing through a filter that removes more than 30% of the light intensity of any wavelength within the relevant wavelength range of 680 nm to 720 nm.

[0042] When the filter is in the optical path, the light from the light source corresponding to the fluorescence is substantially blocked, so that one light source can be used for imaging. When the bandpass filter is not in the optical path, the light source can be used for treatment with high emission power.

[0043] As shown in FIG. 7, the illumination device of the second embodiment may additionally (optionally) include a second light source (e.g., a white light source). The second light source corresponds to the third light source of the first embodiment and can be used, for example, for white light imaging. The light from the first light source (filtered by the movable filter if the movable filter is inserted in the light path) and the second light source may be combined by a dichroic reflecting surface (e.g., a dichroic mirror). FIG. 8 shows an example of the reflectance of a dichroic reflecting surface when the light from the first light source near the peak wavelength λp (also shown diagrammatically in FIG. 8) should be reflected and the white light from the white light source should pass through the reflective dichroic surface. The reflection band in this case also includes (at least a part of) the spectrum from the first light source that can be blocked by the movable filter.

[0044] An example of a transmission spectrum of a movable filter is shown in FIG. 9. The filter transmits only the lower wavelength range of light from the first light source. In the example of FIG. 9, it transmits substantially only light below the peak wavelength of the light from the first light source. However, this is not required. The transmission band may be set so that enough light passes to excite the fluorescence of the IR700, and a sufficiently large portion of the light of larger wavelengths (corresponding to fluorescence) is blocked.

[0045] Figure 10 shows an example of light emitted by the first light source of the second embodiment (black squares) across the excitation spectrum and emission spectrum of IR700 shown in Figure 1. In this case, the spectrum of light from the first light source corresponds approximately to the peak of the excitation spectrum of IR700. Therefore, the light from the first light source efficiently excites the fluorescence of IR700. A large energy dose can be deposited in the tissue.

[0046] In contrast, Figure 11 shows the spectrum of light from a first light source filtered with a movable filter (black squares) for the excitation and emission spectra of IR700 shown in Figure 1. In this example, some of the emitted light at larger wavelengths (greater than about 695 nm) is blocked. This light therefore still excites the fluorescence of IR700, but does not interfere much with the fluorescence produced by IR700.

[0047] The imaging device of the second embodiment may be similar to that of the first embodiment, and the illumination device of the second embodiment may include further light sources emitting wavelengths different from the first light source, such as one or more RGB light sources, UV light sources, or (far) IR light sources, similar to the illumination device shown in FIG.

[0048] An illumination device according to some embodiments of the present invention may be located in an external box (light source box or processor system). Light from the external box may be guided from the proximal end of the endoscope to the distal tip of the endoscope via one or more optical fibers to illuminate the target space of an imaging device (e.g., an objective lens) located at the distal tip of the endoscope. However, the illumination system may instead be located in the control body, the endoscope connector, or the distal tip of the endoscope.

[0049] In some embodiments, the optical fiber and optics (e.g., optical connectors) for directing light from the illumination device to the optical fiber may be considered to belong to the output portion of the illumination device. In these embodiments, their influence on the light output from the cross cube can be taken into account when designing the light sources and combiners such as dichroic reflective interfaces.

[0050] Some embodiments of the present invention include a combination of a mother scope and a baby scope. Such a combination may be used to access thin peripheral areas or organs such as the bronchi. In this case, the mother scope behaves as a conventional endoscope. The baby scope is guided by the mother scope through the working channel of the mother scope. That is, the baby scope is much thinner than the mother scope.

[0051] The light output from the external box (light source box) can be split by a beam splitter in the appropriate ratio to the mother scope and the baby scope so that both the mother scope and the baby scope illuminate their respective scenes with the same light. The beam splitter may be part of the optical connector from the light source box.

[0052] The endoscope including the illumination device may be a capsule endoscope without a shaft (e.g., a rigid or flexible tube) or may be an endoscope including a rigid tip portion at a distal end and a shaft (e.g., a rigid or flexible tube). The rigid tip portion may be connected to the shaft directly or indirectly via an angle segment. The endoscope may be suitable for insertion into a lumen of the human body. In some embodiments, the illumination device and possibly the imaging device may be used ex vivo so that they are not located on an endoscope.

Claims

1. An illumination device for outputting illumination light for imaging based on fluorescence from IR700 and output light for treatment using IR700, a first light source configured to emit a first light having a first peak wavelength in a first range of 660 nm to 700 nm; a first filter configured to pass light having wavelengths less than a predetermined wavelength and to block light having wavelengths greater than the predetermined wavelength; a moving device on an optical path of the first light from the first light source, the moving device being configured to move the first filter between a first position where the illumination device is configured to output the first light filtered by the first filter as the illumination light, and a second position where the illumination device is configured to output the first light as the output light without passing through a filter that filters out more than 30% of the light intensity of any wavelength within a relevant wavelength range of 680 nm to 720 nm; the predetermined wavelength is in the range of 689 nm to 700 nm; An illumination device, wherein the light intensity of the first light source at the predetermined wavelength is at least 50% of the light intensity at a peak wavelength of light from the first light source.

2. a white light source configured to emit white light; a white light combiner configured to combine the white light from the white light sources such that the illumination light comprises the white light; the white light source is configured to be switched on and off independently of the first light source; 10. The lighting device of claim 1.

3. 1. An imaging system, comprising: The lighting device according to claim 1 or 2; an imaging device configured to image the scene onto a first imaging plane when the scene is illuminated by the illumination light from the illumination device.

4. The imaging device includes: an excitation light cut filter configured to block light from the scene having a wavelength smaller than a preset wavelength from reaching the first imaging plane and to pass light from the scene having a wavelength larger than the preset wavelength to reach the first imaging plane; 4. The imaging system of claim 3, wherein the preset wavelength is in the range of 690 nm to 700 nm.

5. Further comprising a first imaging element disposed on the first imaging surface.

5. The imaging system according to claim 3.

6. a further dichroic mirror configured to split the light from the scene such that the light from the scene having a wavelength greater than the preset wavelength reaches the first imaging plane and other light having a wavelength less than a minimum wavelength reaches a second imaging plane different from the first imaging plane; a second imaging element disposed on the second imaging surface; When the imaging device includes the excitation light cut filter, the excitation light cut filter is configured to pass light having a wavelength shorter than the minimum wavelength, the minimum wavelength is at least 20 nm smaller than the preset wavelength; The imaging system according to claim 4 .

7. An endoscope comprising: The illumination device according to claim 1 or 2 or the imaging system according to any one of claims 3 to 6; a rigid tip portion disposed at a distal end of the endoscope, The rigid tip portion of the endoscope is configured to output the illumination light and the output light from the illumination device.

8. The endoscope of claim 7 , wherein the rigid tip section includes the illumination device.

9. and an optical fiber configured to transmit the illumination light and the output light from the illumination device to the rigid tip portion; The illumination device is disposed at the proximal end of the endoscope or external to the endoscope. The endoscope according to claim 7.

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