Apparatus and method for controlling laser hyperthermia

The system with a slidable sleeve and temperature sensors addresses the lack of precision in interstitial laser hyperthermia, achieving controlled thermal therapy and enhanced immune response by minimizing tissue damage and optimizing lesion size.

JP7785384B2Active Publication Date: 2025-12-15CLINICAL LASERTHERMIA SYST
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Patent Information

Application Number
JP2024031467
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-12-14
Filing Date
2024-03-01
Publication Date
2025-12-15
Estimated Expiration
2037-12-14

AI Technical Summary

Technical Problem

Existing interstitial laser hyperthermia techniques lack precise control over lesion size and temperature monitoring, leading to unpredictable tissue damage and ethical concerns due to multiple injections, and they fail to optimize the immune response against remaining tumors.

Method used

A system with a heating probe and a slidable sleeve containing temperature sensors to accurately position the energy-emitting region, allowing for precise control of thermal therapy by measuring temperature within the treatment volume, using methods like magnetic resonance imaging for 2D/3D temperature mapping and biothermal algorithms.

Benefits of technology

This system minimizes tissue vaporization and charring, enhances patient safety, and optimizes the immune response by maintaining temperatures within 42-60°C for effective tumor treatment with reduced adverse effects.

✦ Generated by Eureka AI based on patent content.

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Abstract

To disclose a device and a system which apply thermotherapy at least to a part of a tissue site.SOLUTION: A device and a system include a heating probe 515 provided with a radiation region. The heating probe 151 is connectable to an energy source for heating tissues with a radiation region 514. The device and the system are provided with a sleeve 510. The heating probe 515 can be disposed in the sleeve 510, and the sleeve 510 is configured to slide along the heating probe 515 in a distal and / or proximal direction so as to locate the radiation region 514 in a part of the tissue to control thermotherapy.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present invention relates generally to at least the field of interstitial thermotherapy of treating lesions associated with a region of tissue, such as tumors. More specifically, the present invention relates to a system for controlled heating and destruction of cancer using a heat source. Even more particularly, the present invention further relates to the use of a slidable sleeve to position the heat source within the tissue to be treated. [Background technology]

[0002] It is known in the art that tumors can be destroyed by heat, such as through hyperthermia. One of the most common hyperthermia techniques is interstitial laser hyperthermia, which destroys tumors through the absorption of light. Early experimental and clinical studies used Nd:YAG lasers and bare-ended fibers inserted into the center of the tumor. Most of these lacked sufficient control of tissue effects. Methods to improve lesion size included multifiber systems, diffuser-type fibers, and vascular inflow occlusion. However, standard application of interstitial laser hyperthermia results in tissue vaporization and carbonization, resulting in relatively unpredictable tissue damage and lesion size.

[0003] The treatment is largely controlled by controlling the temperature near the radiation area in each case to avoid overheating near the heating probe, which means that there is very limited control over the size of the treated lesion. Another way to control the temperature is to insert one or more separate leads with temperature sensors inside and / or outside the tumor boundary. This can have both practical and ethical drawbacks. Ethically, more injections must be made inside and around the tumor, which can be painful for the patient and increase the risk of follow-up seeding. Practically, it can be difficult to place the various leads and temperature sensors in the correct positions, which can have a negative impact on the treatment. Summary of the Invention [Problem to be solved by the invention]

[0004] Studies in rats and humans have shown that heat treatment of cancer can have an immunological antitumor effect. When dead cancer cells release multiple unclotted tumor antigens, these antigens can trigger an immune response when exposed to the host's immune system. Thus, not only is the treated tumor destroyed, but the immune effect also destroys the remaining tumor locally or at distant sites, including lymph nodes. This immune effect contributes to selective tissue damage and relatively little release of growth factors. Because chemotherapy can be initiated prior to or at the time of local therapy, the reduced morbidity of the treatment offers the potential for using chemotherapy in a more efficient manner.

[0005] To date, there has been no practical way for medical professionals to fully control and / or optimize the treatment lesion in an easy manner without the drawbacks of the prior art. This has implications for the possibility of obtaining an optimized treatment for the patient. Current systems and their associated drawbacks also affect the possibility of achieving and controlling the immune effect. Thus, improved control of the thermal stimulus to optimize the treatment lesion can be effective and increase patient safety. Improved control of the treatment can minimize vaporization and charring of tissue surrounding the heat source and their associated adverse effects. Furthermore, improved control over the treatment lesion can improve the possibility of achieving an immune effect. For treatments aimed at achieving coagulation temperatures, the lack of accurate monitoring of the progression of necrotic tissue over time is a limiting factor. To facilitate this, a clear temperature measurement method within the treatment volume is necessary. [Means for solving the problem]

[0006] Accordingly, embodiments of the present disclosure preferably seek to mitigate, alleviate or eliminate one or more of the deficiencies, drawbacks or problems in the art, such as those identified above, singly or in any combination, by providing devices, systems and methods for controlling thermal treatment of tumors to treat tissue such as tumors, as per the claims below.

[0007] The devices, systems, and methods disclosed herein can be used to control the process of irreversible tissue damage, such as tumor damage, for treatment purposes. Such damage can be achieved by ablation, which removes tissue by sublimation or vaporization, such as evaporation. Another example is achieving coagulation temperatures without monitoring the progression of necrotic tissue over time, such as in treatments such as focused laser ablation (FLA), sometimes referred to as laser-induced interstitial thermotherapy (LITT). Such treatments can also be improved by achieving antitumor effects, such as immunological effects. Antitumor effects can be local tumor destruction followed by local, distant, or combined local / distant effects. Antitumor effects can be antigen-induced and destroy any remaining portions of the treated tumor, but can also destroy other untreated tumors in the patient. Thus, such effects can be considered a "vaccine" against tumors (abscopal effect). The antigen is the result of treatment, resulting in cell death, but without coagulation / denaturation of tumor antigens.

[0008] According to aspects of the present disclosure, an apparatus for administering thermal therapy to at least a portion of tissue, such as at least a portion of a tumor, is disclosed. The apparatus includes a heating probe having an energy-emitting region. The heating probe is connectable to an energy source for heating the portion of tissue via the energy-emitting region. The apparatus further includes a sleeve, the heating probe being positionable within the sleeve, the sleeve configured to slide distally and / or proximally along the heating probe to enable positioning of the energy-emitting region within the portion of tissue to control the thermal therapy.

[0009] This arrangement has improved precision and makes it easier to position the energy emitting region at the correct location within the portion of tissue to be treated.

[0010] The heating probe may use radio frequency (RF), microwave frequency (MW), or preferably laser, to heat the tissue by an energy emitting field.

[0011] In some embodiments, the sleeve includes at least one temperature measuring element. By sliding the sleeve with the temperature measuring element in the distal and / or proximal direction, the temperature measuring element can be positioned at an optimal distance relative to the energy emitting region. This arrangement provides improved accuracy for controlling the size of the treatment lesion and the thermal therapy compared to using a temperature sensor positioned outside the portion of the subject being treated with a separately inserted lead. The size of the treatment lesion is determined by the distance between the energy emitting region of the heating probe and a point in the tissue where the temperature is measured and selected to be within the target temperature. One reason is that the temperature sensor must be aligned with the emitting region, which can be very difficult to achieve if the sensor is positioned outside the tumor using a separate lead. If the temperature sensor were positioned outside the tumor using a separate lead, the temperature sensor would most likely not be aligned with the emitting region of the heating probe, but instead be positioned too deep, too shallow, or too far away. Another advantage is that there is no need to reinsert the lead with the temperature sensor if the distance between the temperature sensor and the heating probe on initial insertion is deemed not good enough to achieve optimal treatment lesion.

[0012] An additional advantage of placing the temperature measurement element within a sleeve, which can be made of a plastic material, is that the temperature measurement points are isolated and are not affected by the separate, often metallic, leads used to position the temperature sensor. For example, by isolating them, the temperature measurement can be faster and / or more accurate, since the temperature measurement element is not cooled by the leads as in the case of using separate leads to position the temperature sensor.

[0013] Some embodiments of the present disclosure include at least one temperature measuring element disposed within a channel in a sleeve. The sleeve can then be heated and shrunk around the at least one temperature measuring element. Alternatively, in some embodiments, the sleeve can include two concentrically arranged shrink tubes. The temperature measuring element 20 can be disposed between the two tubes, which can then be heat shrunk. Alternatively, in some embodiments, the at least one temperature measuring element is braided or spliced ​​into the sleeve.

[0014] In some embodiments of the present disclosure, the thermal probe comprises a fiber, and the light-emitting region of the fiber is at least partially the diffuser. For example, in some embodiments, the diffuser is a radial fiber. In some other embodiments, the diffuser is a structured drawing within the core and / or cladding and / or buffer of the fiber.

[0015] The use of a diffuser can change the radiation profile compared to using a bare-ended fiber without a diffuser. For example, if the diffuser is a radial fiber, two or more separate radial radiation points can be used. Each of the radiation points can have the same effect, or the effect can vary between radiation points to achieve a specific radiation profile. Another objective can be to obtain an appropriate power density. The radiation profile and / or power density affect the treatment and / or the shape of the treated lesion. The same is true when using a diffuser made of structured writing within the core and / or cladding and / or buffer material of the fiber. By changing the pattern, position, and / or density of the writing, different radiation profiles or power densities can be obtained that can be used to optimize the treatment of that portion of tissue, such as a portion of a tumor.

[0016] In some embodiments of the present disclosure, the sleeve is a catheter introducer.

[0017] Some embodiments of the present disclosure have at least two temperature measuring elements arranged in the same transverse plane of the sleeve. This may be done for redundancy so that temperature can be measured using at least two temperature measuring elements arranged at the same distance from the light-emitting region. In the unlikely event that one of the at least two temperature measuring elements gives a false value or no value, the other temperature measuring element may be used to replace the broken or damaged one. This improves patient safety and reduces the risk of having to reinsert a new sleeve and heating probe.

[0018] Some embodiments of the present disclosure have the radiating region of the heating probe covered by a capillary. The capillary can improve the thermal stability of the heating probe and keep the radiating region intact when the capillary surface is subjected to high temperatures. The capillary can be bonded and sealed to the fiber or heating probe by melting and / or gluing, for example, using adhesive and / or shrink tubing. When the heating probe includes a fiber, an advantage of fusing the capillary, which is a glass capillary, to the bare end of the fiber is that a highly thermally stable silica-to-silica bond is obtained at the distal end exposed to high temperatures. This further improves the thermal stability of the heating probe and keeps the radiating region intact.

[0019] In some embodiments of the present disclosure, a hub is used to lock the sleeve and heating probe once the proper position (e.g., optimal distance between at least the temperature element and the energy emitting region) has been determined. By placing one portion of the hub on the proximal end of the sleeve and a second portion of the hub on the heating probe, the two can be fastened together before sliding the sleeve over the heating probe to determine the optimal position for the temperature measuring element. Once the proper position has been determined, a locking member that is part of the hub, preferably a valve such as a hemostatic valve, can be used to lock the position of the sleeve and heating probe, such as a fiber, before beginning the procedure.

[0020] The temperature sensor within the sleeve can be combined with an external temperature measurement point, for example, when it is necessary to protect sensitive anatomical structures. This can act as a safety device that shuts off the heat source at a predetermined level to avoid damage to the sensitive structures.

[0021] A further aspect of the present disclosure discloses a system for administering thermotherapy to at least a portion of tissue, such as at least a portion of a tumor. The system includes a heating probe having an energy-emitting region connectable to an energy source for heating the portion of tissue with the energy-emitting region. The system also includes a sleeve. The system may also include a means for measuring a temperature within the portion of tissue and a display device for indicating the temperature measured by the temperature-measuring means. The heating probe is positionable within the sleeve, and the sleeve is configured to slide distally and / or proximally along the heating probe to position the energy-emitting region within the portion of tissue to be treated so as to control the thermotherapy.

[0022] The temperature displayed on the display device can be used to control the energy to the energy emitting area and thereby control the hyperthermia therapy.

[0023] If the means for measuring temperature is a temperature measuring element disposed within the sleeve, the displayed temperature may be used to determine the optimum distance between the energy emitting area and the temperature measuring element.

[0024] If the goal of the treatment is to coagulate tissue, the temperature sensors within the sleeve are spatially very well defined and the distance to the heat source is very accurate, and well-known biothermal algorithms can be used to monitor tissue damage over time.

[0025] In some embodiments, another way of achieving improved accuracy in measuring temperature during treatment is disclosed. This involves using magnetic resonance imaging to obtain a 2D or 3D temperature map of the treatment area. A region of interest (ROI) can be defined by finding a point a predetermined distance from the radiation area, such as a tumor boundary. This region can define the treatment lesion, and the temperature within this ROI can be used to control the heat source to maintain the temperature at a predetermined value. Other regions within the 2D temperature map of the MR image can also be defined to act as an automatic safety feature, shutting off the heat source if a threshold temperature is reached.

[0026] In some embodiments of the present disclosure, the system includes a controller that controls the radiant energy so that the measured temperature is maintained at a target temperature within a range of 40-60° C., such as 40-55° C., such as 42-50° C. The temperature may be shown, for example, as a graph on a display.

[0027] Controlling heating and treatment by monitoring the temperature at the margins of the treatment lesion and maintaining the monitored temperature within a stable range has been shown to result in successful treatment with limited adverse effects and improved safety for the patient, such as minimizing vaporization and carbonization of tissue surrounding the heat source and associated adverse effects. This is relevant, for example, to focused laser ablation (FLA), where the extent of thermal tissue damage is dependent on both temperature and heating time. Cell survival is related to the thermal stability of several important proteins. Irreversible protein denaturation can occur near 60°C. While coagulation is somewhat instantaneous above 60°C, thermal damage is achieved with longer heating periods between 42 and 60°C. Areas subjected to supraphysiological hyperthermia below 60°C develop coagulative necrosis 24 to 72 hours after treatment.

[0028] Furthermore, maintaining temperatures at the margins of treated lesions within the range of 42-50°C, e.g., 44-48°C, has shown promise for immunological antitumor effects on the treated cancer, i.e., immunostimulatory laser thermotherapy.

[0029] In another aspect, a method of administering thermotherapy to at least a portion of a tissue site is disclosed, the method comprising disposing a heating probe having an energy-emitting region within a sleeve, sliding the sleeve distally and / or proximally over the heating probe to position the energy-emitting region within the portion of tissue, and emitting energy from the emitting region of the heating probe to heat the portion of tissue to control the thermotherapy.

[0030] In some embodiments, the method includes measuring the temperature within a portion of the tissue using a temperature measuring element, such as a temperature sensor such as a thermistor / thermocouple, which can be inserted into the tissue and / or an external device, such as a magnetic resonance imaging (MRI), can be used to obtain a 2D or 3D temperature map of the treatment area.

[0031] In some embodiments, the measured temperature is used to control the energy emitted from the heating probe.

[0032] In some embodiments, the temperature measuring element is positioned a predetermined distance from the energy emitting region by sliding a sleeve along the heating probe.

[0033] It should be noted that the term "comprises / comprising" as used herein is understood to specify the presence of stated structures, integers, steps, or components, but does not exclude the presence or addition of one or more other structures, integers, steps, components, or groups thereof.

[0034] These and other aspects, features and advantages of the presently disclosed embodiments will be apparent from and become apparent from the following description of the embodiments of the invention, taken in conjunction with the accompanying drawings. [Brief explanation of the drawings]

[0035] [Figure 1] 1 is a schematic diagram of an exemplary apparatus for controlling thermal treatment of tissue, such as a tumor. [Figure 2] 1 is a schematic diagram of an exemplary configuration of a device for thermal treatment of tissue. [Figure 3A] FIG. 1 is a schematic diagram of an exemplary introducer system and thermal probe. [Figure 3B] FIG. 1 is a schematic diagram of an exemplary introducer system and thermal probe. [Figure 3C] FIG. 1 is a schematic diagram of an exemplary introducer system and thermal probe. [Figure 3D] FIG. 1 is a schematic diagram of an exemplary introducer system and thermal probe. [Figure 4A] FIG. 10 is a schematic diagram of the positioning of a temperature sensor integrated into a sleeve such as an introducer. [Figure 4B] FIG. 10 is a schematic diagram of the positioning of a temperature sensor integrated into a sleeve such as an introducer. [Figure 5A] FIG. 1 is a schematic diagram of an introducer system having a hub. [Figure 5B] FIG. 1 is a schematic diagram of an introducer system having a hub. [Figure 5C] FIG. 1 is a schematic diagram of an introducer system having a hub. [Figure 5D] FIG. 1 is a schematic diagram of an introducer system having a hub. [Figure 6] FIG. 1 is a schematic diagram of a probe and introducer placed within a tumor to obtain the lesion. [Figure 7A] FIG. 1 is a schematic diagram of a capillary positioned near the distal end of a diffuser-type fiber. [Figure 7B]FIG. 1 is a schematic diagram of a capillary positioned near the distal end of a diffuser-type fiber. [Figure 8] 1 is a schematic diagram of a method for thermal treatment of tissue, such as a tumor. DETAILED DESCRIPTION OF THE INVENTION

[0036] Specific examples of the present disclosure will be described with reference to the accompanying drawings. However, the present disclosure can be embodied in many different forms and should not be construed as limited to the examples set forth herein. Rather, these examples are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. The terminology used in the detailed description of the examples shown in the accompanying drawings is not intended to limit the present disclosure. In the above drawings, like numbers represent like elements.

[0037] The following description focuses on examples applicable to devices, systems, and methods for controlling tissue thermotherapy. Thermotherapy is controlled by controlling the size of a treatment lesion encompassing at least a portion of the target tissue, such as a portion of a tumor. Preferably, the treatment lesion is sized to cover the entire target tissue region, such as a tumor, by positioning the temperature measurement element used to control the treatment outside the tissue region. Preferably, the temperature measurement element used to control the treatment is positioned approximately 2-5 mm outside the boundary of the target tissue, such as a portion of a tumor, i.e., 2-5 mm outside the treatment lesion. The size of the treatment lesion can be determined by the distance between the energy-emitting portion of the probe and a point within the tissue whereby a temperature is selected to reach a target temperature, such as a target temperature of 40-60°C. In particular, the present disclosure relates to devices, systems, and methods for obtaining coagulation temperatures, accurately monitoring the progression of necrotic tissue over time, or obtaining a thermotherapy-induced anti-tumor immune response of at least a portion of a tumor. However, it will be understood that the present invention is not limited to this application and can be applied to other areas of tumor thermotherapy treatment.

[0038] 1 shows a schematic diagram of an exemplary system 1 for thermotherapy of tissue, such as a tumor. System 1 is particularly developed for controlling thermotherapy by controlling the size of a lesion that encompasses at least a portion of a tumor. In some embodiments, system 1 may be used to control immunostimulatory laser thermotherapy.

[0039] The system 1 includes a controller 50 including a temperature reader 51 configured to receive temperature data from a temperature measuring element 20. The temperature measuring element may be a temperature sensor, such as a thermistor / thermocouple. The controller may be a computer, microprocessor, or electronic circuit for converting an input signal into an output signal. Such control may be achieved, for example, using a feedback loop. In some embodiments of the system, the temperature measuring element 20 is disposed within a sleeve. The temperature measuring element 20, such as a thermistor / thermocouple, may be disposed within a channel of a sleeve, such as a multi-lumen sleeve. After the temperature measuring element is disposed within the channel of the sleeve, the sleeve may be heat-shrunk. Alternatively, in some embodiments, the sleeve may include two concentrically arranged shrink tubes. The temperature measuring element 20 may be disposed between the two tubes, which may then be heat-shrunk. Alternatively, in some embodiments, the temperature measuring element 20 may be braided or spliced ​​within the sleeve.

[0040] Alternatively and / or additionally, magnetic resonance imaging may be used to obtain a 2D or 3D temperature map of the treatment area to position a temperature sensor within the sleeve. A region of interest (ROI) may be defined by determining a point a predetermined distance from the radiation area, such as the tumor boundary. This region may define the treatment lesion, and the temperature within this ROI may be used to control the heat source to maintain the temperature at a predetermined value. Other regions within the 2D temperature map of the MR image may also be defined to act as an automatic safety feature, shutting off the heat source if a threshold temperature is reached.

[0041] When using an external temperature measurement sensor, such as a magnetic resonance imaging system, instead of a temperature measurement element located within the sleeve, the sleeve probe arrangement is used to improve and make easier the positioning of the heating area within the tissue.

[0042] A heating probe 10 having an energy-emitting region can be disposed within the sleeve. The heating probe 10 can comprise a fiber having a light-emitting region at its distal end, the distal end configured for intra-tissue placement within a tumor. An alternative to a fiber can be the use of radio frequency (RF) or microwave (MW) to heat tissue with the energy-emitting region. In some embodiments, the heating probe 10 has a capillary disposed over the energy-emitting region, such as the light-emitting region. The capped end of the fiber is the distal end, the distal end configured for intra-tissue placement within tissue, such as a tumor. The capillary can improve the thermal and mechanical stability of the thermal probe, particularly when a fiber is used as the thermal probe. In a further embodiment, the light probe is simply a fiber having a light-emitting region at its distal end, the distal end configured for intra-tissue placement within a tumor.

[0043] In use, the sleeve can be movably slid along the heating probe 10 in a distal and / or proximal direction to allow the temperature measuring element 20 to be positioned at the proper distance relative to the energy emitting area of ​​the heating probe 10 to control the size of the lesion and thereby control the hyperthermia. The sleeve can be positioned proximal to the heating probe 10. The heating probe 10 and sleeve can be positioned within an introducer when administering hyperthermia. Alternatively, the sleeve can be introduced and the heating probe 10 is positioned within the introducer when administering hyperthermia.

[0044] Additionally, in some embodiments of the system, the sleeve may have multiple temperature measuring elements 20, 30, 40 disposed therein. The multiple temperature measuring elements 20, 30, 40 may be spaced apart along the sleeve. When multiple temperature measuring elements 20, 30, 40 are used, the number of temperature measuring elements may be any number greater than 1 (e.g., 2-20, e.g., 2-15, e.g., 2-10, e.g., 2-5).

[0045] Furthermore, in some embodiments, at least the temperature measuring elements 20, 30, 40 may be co-located rather than spaced apart. This may be done for redundancy purposes so that the temperature can be measured using at least two temperature measuring elements 20, 30, 40 positioned the same distance from the radiating area of ​​interest, such as the light-emitting area. In the unlikely event that one of the temperature measuring elements 20, 30, 40 provides a false value or no value, the other temperature measuring element 20, 30, 40 may be used to replace the broken or damaged one.

[0046] Alternatively, in some embodiments, the temperature measurement elements 20, 30, 40 may be located within the heating probe 10 instead of the sleeve. In some embodiments, the temperature measurement elements 20, 30, 40 may be located within both the sleeve and the heating probe 10. Furthermore, in some embodiments, the system 1 may include additional external temperature measurement points. These external temperature measurement points may be positioned, for example, next to sensitive anatomical structures that need to be protected from high temperatures. These external temperature measurement points may therefore act as safety devices that shut off the heat source at a predetermined level to avoid damage to the sensitive structures.

[0047] The control device 50 further includes a power control device 52, such as an energy source, for controlling the energy emitted by the thermal probe 10. The energy resulting in tissue heating may be emitted using, for example, RF or laser technology. Laser technology may be preferred because it has been shown to improve control and heating of the target tissue being treated, thereby improving the accuracy of optimizing the treatment lesion. FIG. 2 is a schematic diagram of a system for thermal therapy of tissue, such as a tumor. The system includes a control device 100, which may be, for example, a computer connected to a target power control device connected to a heating probe 170. The heating probe may be an RF probe, an MW probe, or, preferably, an optical fiber connectable to a laser device. The control device may also include a target temperature reading device connected to temperature measurement elements 190a, 190b. The control device 100 may further include a display device 110 for displaying information to a medical professional. The information may be, for example, the current measured temperature, the elapsed time of treatment, a graph showing the change in measured temperature over time, the size of the lesion, and the power to the heating probe 170. The controller further includes an input device 120, such as a keyboard, computer mouse, touchpad, or touchscreen. The controller 100 may further include a first port 150 for connecting a heating probe 170 to the controller 100. The controller 100 may include a second port 140 for connecting at least one temperature measuring element 190a, 190b to the controller 100.

[0048] In the system shown in FIG. 2 , a heating probe 170 is connected to the controller 100 via port 150. The heating probe may be an RF probe, an MW probe, or preferably, an optical fiber. The heating probe 170 is connectable to an energy source (not shown), such as a laser source, an RF source, or an MW source, controlled by a power controller (not shown), such as a laser driver, of the controller 100. The heating probe 170 has an emitting region at a tip 180. The emitting region may be a light-emitting region. The emitting region is configured to be intratissue-positioned in tissue, such as a tumor, of a subject to be treated using a sleeve 160, such as an introducer. Application of energy to heat the tissue results in a treatment lesion 130 encompassing at least a portion of the subject's tissue to be treated.

[0049] The illustrated embodiment of the heating probe 170 is an optical fiber, and the emitting region is a light-emitting region. The light-emitting region can be a bare-ended fiber or a diffuser. In some embodiments, the diffuser is a radial fiber. In some other embodiments, the diffuser is a structured drawing within the core and / or cladding and / or buffer of the optical fiber.

[0050] Additionally, in some embodiments, the emitting region may be covered by a capillary to improve thermal and mechanical stability during treatment.

[0051] In this schematic diagram, the heating probe 170 is movably arranged so that it can slide within the introducer 160. Within the introducer 160, there is at least one temperature measurement element 190a, 190b arranged according to the embodiment depicted in FIG. 1 . In this schematic diagram, two temperature measurement elements 190a, 190b are arranged at intervals along the sleeve. Additionally and / or alternatively, in some embodiments of the introducer 160, at least two temperature measurement elements are arranged at least at position 190a so that the at least two temperature measurement elements are arranged in the same lateral plane of the sleeve. This may be done for redundancy purposes, so that temperature can be measured using at least two temperature measurement elements arranged at the same distance from the radiating region, such as the light-emitting region. Should one of the temperature measurement elements arranged in the same lateral plane of the sleeve provide a false or no value, the other temperature measurement element can be used in place of the broken or damaged one.

[0052] After the introducer 160 and heating probe 170 are positioned within the tumor, the size of the lesion to be treated can be determined by sliding the introducer to increase or decrease the distance between the at least one temperature measuring element 190 a, 190 b and the radiation area of ​​interest. The at least one temperature measuring element 190 a, 190 b is used to measure the temperature which is used to control the heating of the tissue by increasing or decreasing the power to the heating probe, such as by adjusting the power to a laser device connected to the control device 100.

[0053] Additionally and / or alternatively, in some embodiments where at least two measurement points 190a, 190b are used, if a temperature that is too high is measured by the first measurement point 190a after adjustment by sliding the introducer 160, the second measurement point 190b, which has a longer distance to the radiation area, may be used to control the treatment.

[0054] Additionally and / or alternatively, in some embodiments where at least two measurement points 190a, 190b are used, if the first measurement point 190a measures a temperature that is too high and the second measurement point 190b measures a temperature that is too low after adjustment by sliding the introducer 160, a virtual point located between the first and second measurement points 190a, 190b may be used to control treatment. The temperature of the virtual point may be calculated using the temperatures measured at the first measurement point 190a and the second measurement point 190b.

[0055] In some embodiments, the introducer 160 may have markers 195 positioned along its length to make it visible using ultrasound, MRI, x-ray, or other imaging equipment, thereby facilitating positioning of the introducer 160 in the proper location.

[0056] 2 may be combined with a magnetic resonance imaging system that may be used to obtain a 2D or 3D temperature map of the treatment area that may be used to define the extent of the treatment lesion. When combined with a magnetic resonance imaging system, the sleeve may not include a temperature measuring element, since the temperature at the boundary of the treatment lesion 130 may be measured by the magnetic resonance imaging system.

[0057] 3A-D show a schematic example of how to position a heating probe 220 and a sleeve 200, such as an introducer, within a tumor.

[0058] Shown in FIG. 3A is an introducer stylet 210 and introducer 200 used to position the introducer within tissue, such as within a tumor. In FIG. 3B, the introducer stylet 210 is removed from the introducer 200. In FIG. 3C, a heating probe 220 is placed within the introducer 200. In this example, the heating probe 220 is pushed until the tip 230 of the heating probe 200 reaches the end of the introducer 200. The heating probe 220 may have markers 240 positioned along its length to facilitate positioning the heating probe 220 in the proper location by making it visible using ultrasound, MRI, X-ray, or other imaging equipment. After the tip 230 of the heating probe 220 reaches the end 250 of the introducer 200, the introducer may be movably slid along the heating probe 220, as shown in FIG. 3D. By sliding the introducer 200 up and down along the heating probe 220, the distance X between the first temperature measurement point 260a and the radiation region 270 is obtained. Sometimes, the first temperature measurement point 260a may not be used, and instead the distance X between a different temperature measurement point, e.g., any of the temperature measurement points 260b-d, and the radiation region 270 can be determined.

[0059] By monitoring the temperature as the introducer 200 slides up and / or down along the heating probe 220, optimal lesion size can be determined. The introducer may have at least one marker 280 for monitoring its position using an imaging modality such as ultrasound, x-ray, or MRI. The introducer may have additional temperature measuring elements 260b-d spaced a distance Y along the length of the introducer 200.

[0060] Once the proper distance X between the radiating region 270 and the temperature measuring element 260a or 260b-d is determined, the introducer is locked in place by a hub 290 that includes a locking member, such as a valve, such as a hemostasis valve. As mentioned above, in some embodiments where at least two measuring points 260a or 260b-d are used, by sliding the introducer 200, if too high a temperature is measured by the first measuring point 260a, a second 260b-d having a longer distance to the radiating region 270 may be used to control the size and treatment of the treated lesion.

[0061] In some embodiments, a predetermined distance X is set before positioning the heating probe 220 within the introducer 200. When the radiating region 270 of the heating probe 220 reaches the distal end of the introducer 200, the introducer 200 is pulled back until the introducer 200 and heating probe 220 lock together at the hub 290. In some other embodiments, the locking includes warning feedback to indicate to the medical professional that the introducer 200 has been pulled to the correct position. If further adjustment of the distance is required, a locking member, such as a valve, on the hub 290 can be opened, and the introducer 200 can be slid further distally and / or proximally until the correct position is desired. The locking member, such as a valve, can then be closed, and the introducer 200 and heating probe 220 can be locked together before the procedure begins.

[0062] In some embodiments where at least two measurement points 260a, 260b-d are located within the sleeve, a virtual point located between the first and second measurement points 260a, 260b-d may be used to control treatment if the first measurement point 260a measures a temperature that is too high and, after adjustment by sliding the introducer 200, the second measurement point 260b-d measures a temperature that is too low. The measured temperatures at the first measurement point 260a and the second measurement points 260b-d may be used to calculate the temperature of the virtual point.

[0063] 4A and 4B schematically illustrate an example of how the treatment lesion can be optimized by sliding a sleeve, such as introducer 300, up and / or down along an inserted heating probe 320.

[0064] The objective is to optimize lesion size and reach a treatment temperature 310, also referred to as the target temperature. The treatment temperature 310 can be within a range of 40-55°C, e.g., 44-48°C, e.g., 46°C, at the margins of the treatment lesion. Controlling tumor heating by monitoring the temperature at the margins of the treatment lesion and maintaining the monitored temperature stable within the identified range has been shown to result in favorable treatment outcomes with limited adverse effects and improved safety for the patient, such as minimizing vaporization and charring of tissue surrounding the heat source and associated adverse effects. Furthermore, maintaining temperatures at the margins of the treatment lesion within these ranges shows promise for immunological anti-tumor effects against the treated cancer, i.e., immunostimulatory laser thermotherapy.

[0065] 4A , the initial distance between a temperature measuring element 360 disposed within a sleeve, such as introducer 300, and the radiating region 370 of heating probe 320 is X mm. Sleeve 300 may also have a marker 380 for visualizing the position of the distal end of sleeve 300. If, by observing temperature curve 330 on the display, it is determined that the temperature monitored by temperature measuring element 360 is increasing too rapidly, sleeve 300 may be slid so that the distance between radiating region 370 and temperature measuring element 360 increases to a distance of X+Y mm. The treatment lesion, in this example, may be larger than originally planned, thus resulting in an optimized treatment and maintaining target temperature 310 at a steady state.

[0066] 4B, the initial distance between the temperature measuring element 360 disposed within a sleeve, such as the introducer 300, and the radiation region 370 of the heating probe 320 is X mm. The sleeve 300 may also have a marker 380 for visualizing the position of the distal end of the sleeve 300. By observing the temperature curve 330 on the display, if it is determined that the temperature increase monitored by the temperature measuring element 360 is too slow or fails to reach the target temperature 310, the sleeve 300 may be slid so that the distance between the radiation region 370 and the temperature measuring element 360 decreases to a distance of X-Y mm. Thus, the treatment lesion may be made smaller, optimizing the treatment and maintaining the target temperature 310 at a steady state.

[0067] 4A and 4B, the illustration shows the optimization being performed for the most distal temperature measuring element. As mentioned above, sometimes it may be more practical to use a separate temperature measuring element, or a virtual point located between two temperature measuring elements.

[0068] Another reason for using temperature measuring elements to optimize treatment lesion and control treatment relative to the most distal temperature measuring element is that more distal ones can be positioned within the treatment lesion. One or more temperature measuring elements positioned within the treatment lesion, such as within a tumor, can be used to measure and control other parameters. For example, a temperature measuring element positioned within the treatment lesion can be used to detect bleeding and / or charring and / or coagulation.

[0069] Figures 5A-5D show a sleeve system with a hub, which may be a catheter introducer system. The sleeve system with a hub shown in Figures 5A-5D may be used with any of the arrangements described and shown with respect to Figures 1-4.

[0070] FIG. 5A shows an introducer stylet 400 having a connector 410 at its proximal end with means for fastening the connector to a hub 410 and means for releasing the connector from the hub 420. FIG. 5B shows a sleeve 430, such as a catheter introducer. The illustrated sleeve 430 may have markings 435a, 435b for visualizing the positioning of the sleeve within tissue using an imaging modality such as ultrasound, X-ray, or MRI, although other modalities may also be used. A temperature measurement element (not shown), such as a thermistor / thermocouple, may be disposed within the sleeve 430. The temperature measurement element may be disposed within a channel in the sleeve. After the temperature measurement element is disposed within the channel in the sleeve, the sleeve 430 may be heat-shrunk. In another embodiment, the sleeve 430 may include two concentrically arranged shrink tubes. The temperature measurement element may be disposed between the two tubes, which may then be heat-shrunk. Alternatively, in some embodiments, the temperature measuring element may be braided or interwoven within the sleeve.

[0071] The sleeve has a hub 440 attached to its proximal end. The hub 440 has an opening 450 to allow for the introduction of a stylet, as shown in FIG. 5A , or a heating probe into the sleeve 430. The hub may also include protruding elements 445 of a fastening means, such as the fastening means 415 of the connector 410 at the proximal end of the stylet 400, for connecting to the hub 440 and thereby locking the connector to the hub 440. The connector can be removed from the hub 440 by pressing a release means of the connector, such as the release means 420 of the connector 410 at the proximal end of the stylet 400.

[0072] FIG. 5C shows a second hub 500 having two parts: a locking member 480, such as a valve, such as a hemostasis valve, and a connector 460. The connector 460 is similar to the stylet's connector 410 and includes a fastening and release means 465 for connecting the second hub 500 to the hub 440 at the distal end of the sleeve. The locking member 480 includes an opening 485 at its proximal end for insertion of a heating probe (not shown). In FIG. 5C, the second hub 500 is shown as having two parts, with a distal end having a protruding member 490 for insertion into the opening 470 of the connector 460. These two parts can be assembled and shipped as one unit. Alternatively, the hub 500 can be molded as a single unit instead of being two joined parts.

[0073] Figure 5D shows a cross section of the second hub 500 after the connector 460 and locking member 480 have been mated. Figure 5A includes a means 466 for fastening the second hub 500 to the sleeve hub 440 by connecting to the protruding elements 445. Figure 5D further shows that the fastening and releasing means 465 includes a means 467 for releasing the second hub 500 from the sleeve hub 440 by pressing the release means 467. This type of fastening and releasing means used on the second hub 500 and stylet 400 allows for a simple and safe manner of fastening and releasing the stylet 400 or second hub 500.

[0074] FIG. 5D shows a lumen 486 passing through a locking member 480, such as a valve, and a second hub 500. A heating probe can be positioned within this lumen 485 during treatment. By locking the locking member 480, such as by closing a valve or closing a hemostatic valve, the heating probe is locked in place within the lumen 486. After the heating probe is positioned within the lumen 486, it can be placed within the sleeve 480 after the sleeve is inserted into the tissue, such as a tumor, of the target tissue to be treated. A connector 460 is fastened to a hub 440, which allows the locking member to be opened and the sleeve 430 to slide up and / or down along the heating probe. Once the proper distance between the radiating region of the heating probe and the temperature measuring element of the sleeve 430 is determined, the locking member 480 can be closed to lock the heating probe and sleeve 430 in place, and then the thermal treatment can begin.

[0075] The connectors and hubs may be made of any suitable material, for example, a plastic such as acrylic, or a metal.

[0076] In some embodiments, a predetermined distance is set prior to placing the heating probe within the sleeve 430 by positioning the second hub 500 at a predetermined location on the heating probe. Once the heating probe is placed within the sleeve 430 and the radiating region of the heating probe reaches the distal end of the sleeve 430, the sleeve 430 can be pulled until the hub 440 of the sleeve 430 and the second hub 500 of the heating probe lock together. In some further embodiments, the locking includes warning feedback to indicate to the medical professional that the sleeve 430 is pulled to the correct position and that the hub 440 and the second hub 500 are locked together. If further adjustment of the distance between the radiating region and the temperature measuring element is required, the locking member 480 of the second hub 500 can be opened, and the sleeve 430 can be movably slid in a distal and / or proximal direction until the optimal position is found. The locking member 480 can then be closed, locking the sleeve 430 and heating probe together before the procedure begins.

[0077] FIG. 6 shows a sleeve 510 and a heating probe 515 positioned for insertion into tissue. The heating probe includes an emitting region 514, and the sleeve includes at least one temperature measuring element 530a-c disposed within the sleeve 510. Arrow 586 indicates that the heating probe 515 can be slid along to obtain the distance between the emitting region 514 and the at least one temperature measuring element 530a-c, thereby obtaining an optimized size of the treatment lesion 513. The size of the treatment lesion has a radius that is approximately the distance between the center of the emitting region 514 of the heating probe and the at least one temperature measuring element 530a-c of the sleeve 510, which is used to monitor the temperature for controlling the energy delivered by an energy source, such as a laser device, to heat the tissue. As previously mentioned, the treatment temperature at the point of interest for temperature monitoring, also referred to as the target temperature, can be in the range of 40-60°C, e.g., 42-55°C, e.g., 44-48°C, e.g., 46°C. This temperature is monitored at the edge of the treatment lesion. Controlling tumor heating by monitoring the temperature at the margin of the treatment lesion and maintaining the monitored temperature stable within an identified range has been shown to result in favorable treatment outcomes with limited adverse effects and improved safety for the patient, such as minimizing vaporization and carbonization of tissue surrounding the heat source and associated adverse effects. This is relevant, for example, to focused laser ablation (FLA), which exploits the fact that the extent of thermal tissue damage depends on both temperature and heating time. For FLA, temperatures above 42°C and below 60°C are typically used, resulting in thermal damage over longer heating periods compared to conventional laser ablation.

[0078] Furthermore, maintaining the temperature at the margins of the treated lesion within these ranges shows promise for immunological antitumor effects on the treated cancer (i.e., immunostimulatory laser hyperthermia). The treatment is preferably administered for approximately 30 minutes after the temperature measuring element is positioned at an appropriate distance relative to the radiation area. Sometimes, longer or shorter times may be used.

[0079] The sleeve and heating probe can be removed while the radiating region continues to deliver energy to the surrounding tissue, thereby heating the channel, which may minimize the risk of follow-up seeding.

[0080] 7A and 7B show a target capillary used to protect the emitting region (in this example, of an optical fiber). The emitting region of the optical fiber can be a bare-ended fiber or a diffuser. The diffuser can be any type of diffuser, but preferably a structured drawing within the core and / or cladding and / or buffer of the optical fiber, or a radial fiber.

[0081] The optical fiber may be made of, for example, silica or plastic, or may be any other suitable type of optical fiber. The optical fiber may also be a polymer-coated fiber.

[0082] FIG. 7A shows a glass capillary 600 encasing a bare-ended fiber 610, which may include a diffuser. The bare-ended fiber 610 comprises a fiber core and, in some embodiments, may also include a cladding. The distal tip of the fiber 610 may be flat, as shown in FIG. 7A, or conical, in some embodiments. The glass capillary 600 may be bonded 630 to the fiber buffer and / or jacket 620 by melting, using adhesives, and / or shrink tubing. The space 640 around the bare-ended fiber 610 may be filled with air. This capillary design increases the mechanical stability of the fiber and its resistance to high temperatures.

[0083] Figure 7B shows a cap similar to that in Figure 7A. The cap is made from a glass capillary 600 that encases a bare-ended fiber 610, which may include a diffuser. The bare-ended fiber 610 comprises a fiber core and, in some embodiments, may also include a cladding. The distal tip of the fiber 610 may be flat or conical, as shown in Figure 7B, in some embodiments.

[0084] The glass capillary 600 and fiber 610 are fused together at point 650, which means that a highly thermally stable silica-to-silica bond is obtained at the distal end, which is exposed to high temperatures. The capillary may further include an adhesive 660 for gluing and sealing the cap. The heated probe itself may comprise an outer layer (e.g., made of PBT) and a fiber jacket (e.g., made of acrylic) relative to a given layer (e.g., of resin). Furthermore, in some embodiments, the glass capillary 600 may be bonded (630) to the fiber buffer and / or jacket 620 by melting or by using adhesive and / or shrink tubing.

[0085] At the distal end of the bare-ended fiber, where the emitting region is located, the space 640 between the fiber and the glass capillary 600 may be filled with air.

[0086] This capillary design increases the fiber's mechanical stability and its resistance to high temperatures. Structured writing can include a process of arranged writing in regularly repeated cycles, such as at least two repeated cycles, along the length of the emitting region of the optical fiber. The structured writing can be performed using a manufacturing process in which micro-modifications are baked into the core and / or cladding and / or buffer of the optical fiber. The micro-modifications can be arranged on one or more cross sections, the cross sections being generally perpendicular to the optical waveguide axis of the optical fiber. The arrangement of the micro-modifications on the cross sections can be according to one or more parameters from a group of parameters including symmetrical placement of the micro-modifications, density of the micro-modifications on the cross sections, size of the micro-modifications, distance of the micro-modifications from the optical waveguide axis, distance between the micro-modifications, and alignment of the micro-modifications or other parameters used to describe their external morphology or size or location and distribution. All of these parameters affect the light transmitted through the fiber and the coupling of the transmitted light into and out of the fiber, thereby resulting in diffuse emission of light by the optical fiber. Each cycle may include one or more planes. When a cycle includes two or more planes, various shapes of the cycle can be obtained by varying the parameters, such as each cycle having a shape (e.g., cone or cylinder) that can be hollow or filled with micromodifications. The micromodifications can have various shapes in cross section, for example, circular or elliptical. All micromodifications shaped as ellipses can have the same orientation, or the orientation can vary between micromodifications.

[0087] A diffuser may, for example, involve two drawing cycles in the core of the fiber and in which two distinct (non-overlapping) cylinders of lesion are created. A diffuser may be created by removing buffer material within the region of the diffuser.

[0088] Another example may be a diffuser having an arrangement of drawings that repeat in a regular manner along the circumference of the core and along the length of the diffuser. The diffuser may be created by removing cushioning material within the area of ​​the diffuser.

[0089] A structured diffuser can also be achieved by creating scattering elements, such as microdots, along the fiber axis. The scattering elements can be placed near the core boundary of the optical fiber and projected into the core for radial decoupling of light. The scattering elements can be created by laser fabrication methods, as depressions along the core surface, or by modifying the refractive index of the core. The depressions can be spherical in some embodiments.

[0090] The diffuser may further include filling the recesses with a material such as air to form a boundary between the recesses and the core with a corresponding refractive index. The material, in some embodiments, includes a scattering material having a scattering particle matrix embedded therein to scatter light. The scattering material may be applied at least regionally on the optical fiber, such as coated with the scattering material. The scattering material may also be applied within the scattering element.

[0091] The scattering elements may be distributed longitudinally and circumferentially around the diffuser segment of optical fiber, such as helically, for uniform radial radiation of light. The scattering elements may have a variable density, e.g., increasing closer to the distal end of the diffuser. This may be achieved by decreasing the spacing distance toward the distal end.

[0092] FIG. 8 illustrates a method 2000 for administering thermotherapy to at least a portion of a tissue site, such as a tumor. The method includes step 2001 of positioning a sleeve within the tissue to be treated, such as a tumor, where the sleeve may include at least one temperature measuring element. Step 2002 of disposing a heating probe having an energy-emitting region within the sleeve. The heating probe may be an RF probe or an MW probe. In some embodiments, the heating probe includes an optical fiber having a light-emitting region. The heating probe is connectable to an energy source for heating the tissue via the energy-emitting region, which may be a laser device. Step 2003 of sliding the sleeve distally and / or proximally along the heating probe to position the energy-emitting region within the tissue to be treated. In embodiments where a temperature measuring element is disposed within the sleeve, step 2003 of sliding the sleeve distally and / or proximally along the heating probe may be performed to determine an optimal distance between the energy-emitting region and at least one temperature measuring element of the sleeve. This may be performed to determine the size of the treatment lesion, which has a radius relative to the distance between the energy-emitting region and the temperature measuring element. In some embodiments, the temperature may be measured using magnetic resonance imaging to obtain a 2D or 3D temperature map of the treatment area, which may be used to optimize the size of the treatment lesion.

[0093] Step 2004 controls the hyperthermia by monitoring the temperature at an optimal distance from the radiating area and adjusting the power of the energy source.

[0094] The optimum distance may be determined by sliding the sleeve along the heating probe while viewing the temperature on the display. Once the optimum distance is determined, the sleeve and heating probe may be locked together to establish the distance by using a hub having a locking member, such as a valve, such as a hemostasis valve.

[0095] The present invention has been described above with reference to specific embodiments. However, other embodiments than those described above are equally possible within the scope of the present invention. Various method steps other than those described, performing the method by hardware or software, may be provided within the scope of the present invention. The various components and steps of the present invention may be combined in other combinations than those described. The scope of the present invention is limited only by the appended claims.

[0096] Unless otherwise specified, the indefinite articles "a" and "an," as used in the specification and claims, should be understood to mean "at least one." "And / or," as used in the specification and claims, should be understood to mean "either or both" of the elements so coordinated, i.e., elements that are conjunctively present in some cases and disjunctively present in other cases.

Claims

1. A heating probe for applying thermotherapy to at least a portion of a tissue site, comprising: an optical fiber comprising a light emitting region at a distal portion, at least a core and a cladding being provided within said light emitting region, said optical fiber being connectable to an energy source for heating said portion of said tissue site by said light emitting region, said light emitting region being at least partially a diffuser, said diffuser being a structured image comprising micro-modifications of baked microdots within at least said core; A heating probe comprising:

2. The heated probe of claim 1 , wherein a capillary is disposed to cover at least the light-emitting region to protect the light-emitting region.

3. The heated probe of claim 1 or 2, wherein the micro-modifications are arranged on one or more cross sections, the cross sections being positioned approximately perpendicular to the optical waveguide axis of the optical fiber.

4. The heated probe of claim 2 , wherein the capillary is fused and / or glued to the optical fiber and / or the capillary is joined to the optical fiber by shrink tubing.

5. The heated probe of claim 4 , wherein the capillary is bonded to the jacket and / or buffer of the optical fiber by fusing, gluing, and / or using shrink tubing.

6. 6. The heated probe of claim 4 or 5, wherein the capillary is joined to the optical fiber at the proximal portion of the capillary by fusing, gluing, and / or using shrink tubing.

7. The heated probe of any one of claims 2, 4 to 6, wherein the capillary is fused to the optical fiber at a point distal to the proximal portion.

8. 8. The heated probe of claim 7, wherein fusing results in a thermally stable bond between the silica of the capillary and the silica of the optical fiber.

9. The heated probe of claim 2 , wherein the capillary is glued to the optical fiber, and the capillary is further joined to a jacket of the optical fiber proximal to the capillary by shrink tubing.

10. The heating probe according to any one of claims 2 and 4 to 9, wherein the capillary is a glass capillary.

11. The heated probe according to any one of claims 2 and 4 to 10, wherein there is a space disposed between the optical fiber and the capillary.

12. The heating probe of claim 11 , wherein the space is filled with air.

13. The heated probe according to any one of claims 1 to 12, wherein the micro-modification is a portion of the core with a modified refractive index.

14. A heating probe for applying thermotherapy to at least a portion of a tissue site, comprising:

1. An optical fiber comprising a light emitting region at a distal portion, wherein at least a core and a cladding are comprised within the light emitting region, the optical fiber being connectable to an energy source for heating the at least a portion of tissue by the light emitting region, the light emitting region being at least partially a diffuser, the diffuser being a structured drawing that is a micro-modification, the micro-modification being baked into at least the core of the optical fiber, the micro-modification being a refractive index modified portion of the core. A heating probe comprising:

15. The heated probe of claim 14 , wherein a capillary is disposed to cover at least the light-emitting region to protect the light-emitting region.

16. 16. The heated probe of claim 14 or 15, wherein the micro-modifications are arranged on one or more cross sections, the cross sections being positioned substantially perpendicular to the optical waveguide axis of the optical fiber.

17. The heated probe of claim 15 , wherein the capillary is fused and / or glued to the optical fiber and / or the capillary is joined to the optical fiber by shrink tubing.

18. 18. The heated probe of claim 17, wherein the capillary is bonded to the jacket and / or buffer of the optical fiber by fusion, adhesive, and / or shrink tubing.

19. 19. The heated probe of claim 15, 17 or 18, wherein the capillary is joined to the optical fiber at a proximal portion of the capillary by fusing, gluing and / or using shrink tubing.

20. A heated probe according to any one of claims 15, 17 to 19, wherein the capillary is fused to the optical fibre at a point distal to the proximal portion.

21. 21. The heated probe of claim 20, wherein fusing results in a thermally stable bond between the silica of the capillary and the silica of the optical fiber.

22. A heated probe as described in any one of claims 15, 17 to 21, wherein the capillary is glued to the optical fiber, and the capillary is further joined to the jacket of the optical fiber at a proximal portion of the capillary by a shrink tube.

23. The heated probe according to any one of claims 15 and 17 to 23, wherein the capillary is a glass capillary.

24. The heated probe of any one of claims 15, 17 to 23, wherein there is a space disposed between the optical fiber and the capillary.

25. 25. The heating probe of claim 24, wherein the space is filled with air.

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