Prostate steam ablation system and application method thereof
Through the prostate steam ablation system integrating front and rear cameras and ultrasonic probes of guide sheath, the inconvenience of observation and safety hazards of existing equipment are solved, and high-precision steam delivery and safe surgical operations are achieved.
Patent Information
- Application Number
- CN202410153910.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-02-04
- Publication Date
- 2025-08-12
AI Technical Summary
The existing prostate steam ablation equipment requires a cystoscopy, which is inconvenient to observe and has safety risks, and it is difficult to accurately judge the puncture position of the steam delivery needle.
An integrated prostate steam ablation system is designed, with an integrated front and rear camera and ultrasonic probe in the guide sheath, a mini servo cylinder is used to drive the steam delivery needle, and a special saline channel is equipped to avoid dependence on existing equipment and improve puncture accuracy and surgical safety.
It realizes convenient operation without the need for a separate cystoscope, improves the puncture accuracy and surgical safety of the steam delivery needle, reduces the surgical burden and contamination risk, and enhances surgical effect monitoring.
Smart Images

Figure CN120458704A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of minimally invasive prostate treatment, in particular to a system for prostate steam ablation and an application method thereof, and in particular to a system for treating benign prostatic hyperplasia by using steam delivered to the prostate and an application method thereof. Background Art
[0002] With the continuous improvement of living and medical conditions, people's pursuit of quality of life is also constantly increasing. At this stage, the aging of the population is getting worse and geriatric diseases are becoming increasingly prominent. Among them, benign prostatic hyperplasia is one of the common diseases in elderly men, which seriously affects the quality of life of the elderly.
[0003] The incidence of benign prostatic hyperplasia (BPH) in men over 60 years old exceeds 60%, of which 10% require surgical treatment. According to conservative estimates, 6 million elderly men will require surgery. As a disease of aging, BPH often presents with coexisting complications such as heart, lung, brain, hypertension, renal insufficiency, or diabetes, requiring high-level anesthesia and perioperative management.
[0004] In the early stages of life, the prostate has the size and shape of a walnut and weighs approximately 20 grams before it becomes enlarged due to BPH (benign prostatic hyperplasia). Prostate enlargement appears to be a normal process. As age increases, the size of the prostate progressively increases to twice or more of its normal size. After the gland reaches a certain size, the fibromuscular tissue of the outer prostate capsule limits expansion. Due to this limitation of expansion, the intracapsular tissue will press against and limit the prostatic urethra, causing resistance to urine flow thus.
[0005] In male urogenital anatomy, the prostate gland is located below the bladder and bladder neck. The bladder wall can expand and contract to cause urine to flow through the urethra, which extends from the bladder through the prostate and penis. The portion of the urethra surrounded by the prostate gland is called the prostatic urethra. The prostate also surrounds the ejaculatory ducts, which have an open terminal end in the prostatic urethra. During sexual arousal, the vas deferens transports sperm from the testicles to the prostate, and the prostate provides fluid that combines with sperm to form semen during ejaculation. The vas deferens and the seminal vesicles connect on each side of the prostate to form a single tube called the ejaculatory duct. Therefore, each ejaculatory duct transports seminal vesicle secretions and sperm into the prostatic urethra.
[0006] The prostate glandular structure can be divided into three zones: the peripheral zone, the transition zone, and the central zone. The peripheral zone (PZ) encompasses approximately 70% of the prostate volume in young men. This subcapsular portion of the prostate gland, located posteriorly, surrounds the distal urethra, and 70-80% of cancers originate in the peripheral zone tissue. The central zone (CZ) surrounds the ejaculatory ducts and encompasses approximately 20-25% of the prostate volume. The central zone is often the site of inflammatory processes. The transition zone (TZ) is where benign prostatic hyperplasia (BPH) develops. In a normal prostate, it comprises approximately 5-10% of the glandular volume, but in cases of BPH, it can comprise up to 80%. The transition zone encompasses the two lateral prostate lobes and the periurethral glandular area. A natural barrier exists around the transition zone: the prostatic urethra, the anterior fibromuscular stroma, and a fibrous plane between the transition zone and the peripheral zone. The anterior fibromuscular stroma or fibromuscular zone is primarily composed of fibromuscular tissue.
[0007] BPH is usually diagnosed when patients complain about troublesome dysuria and seek drug treatment. The cardinal symptoms of BPH are frequent urination and urgency, as well as a significant decline in flow rate during urination. BPH may also cause urine to be retained in the bladder, which may then cause lower urinary tract infection (LUTI). In many cases, LUTI may then rise in the kidneys and cause chronic pyelonephritis, which may eventually lead to renal insufficiency. BPH may also cause the sexual dysfunction related to the sleep disorder or psychological anxiety caused by severe dysuria. Therefore, along with the growth of male population age, BPH may significantly change the quality of life.
[0008] BPH is the result of an imbalance between the continuous production and natural death (apoptosis) of glandular cells of the prostate. The overproduction of these cells leads to an increase in the size of the prostate, most notably in the transition zone that traverses the prostatic urethra.
[0009] In the early stages of BPH, medications can relieve some symptoms. For example, alpha-blockers treat BPH by relaxing the smooth muscle tissue found in the prostate and bladder neck, which also allows urine to flow more easily out of the bladder. These medications can be effective before glandular elements cause excessive cell growth in the prostate.
[0010] However, the late stages of BPH can only be treated with surgery or minimally invasive thermal elimination devices. Developed methods utilize electrosurgery or mechanical tissue aspiration (extraction) and thermal elimination or cryoablation of intracapsular prostate tissue. In many cases, such interventions provide only transient relief, and these treatments typically result in significant perioperative discomfort and morbidity.
[0011] Current thermal steam therapy devices use pulsed energy to heat sterile distilled water to 103°C. This water is then injected into the hyperplastic prostate tissue via a disposable prostate thermal steam therapy device. The hot steam releases heat energy through intercellular convection and diffusion, raising the temperature of the tissue in the treatment area by approximately 70°C over 9 seconds. This causes cell membrane degeneration and cell death. Necrotic tissue is then absorbed by the body, reducing the size of the prostate tissue near the urethra and alleviating LUTS. Furthermore, the thermal energy causes blood vessels in the treatment area to collapse, ensuring minimal bleeding during the procedure.
[0012] The existing steam thermal ablation device Rezum on the market (i.e., the steam elimination system disclosed in CN 113855214 A and the system for prostate treatment disclosed in CN105816237A) needs to be used with a cystoscope with a 4mm / 30° / 30cm lens. The cystoscope needs to be equipped with a light source and an image display device, and there are many cables connecting to external devices. Before steam delivery and release, the front needle needs to be punctured deeply into the prostate tissue. The current steam thermal ablation device Rezum uses a magnetic device to provide the movement power of the needle, and cannot effectively determine whether the needle has punctured the correct location. In addition, during the prostate ablation operation, in order to maintain a clear surgical observation field of view, the urethra needs to be flushed with sterile saline from time to time. The current steam thermal ablation device Rezum, due to structural limitations, the endoscope and sterile saline flushing share one channel, which cannot meet the surgical requirements well.
[0013] Therefore, it is of great practical significance to develop a prostate steam ablation system with reasonable design and more convenient operation. Summary of the Invention
[0014] Due to the above-mentioned defects in the prior art, the present invention provides a prostate steam ablation system with a reasonable design and more convenient operation, which solves the defects of the existing steam thermal ablation equipment that requires a cystoscope, is inconvenient to observe, and has safety risks in surgery.
[0015] In order to achieve the above object, the present invention provides the following technical solutions:
[0016] A system for prostate steam ablation, comprising an introducer sheath for entering a patient's body through the urethra, a handle coupled to the introducer sheath, a steam generator disposed in the handle and configured to generate condensable steam, a steam delivery needle in communication with the steam generator and slidably disposed within the introducer sheath, and a micro servo cylinder attached to the steam delivery needle and configured to drive the steam delivery needle;
[0017] The guide tube sheath is further provided with a saline inlet channel and a saline outlet channel. One end of the saline inlet channel is connected to the liquid inlet located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline inlet tube. The saline outlet channel is connected to the discharge port located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline outlet tube.
[0018] The guide tube sheath is equipped with a front camera aimed at the front end of the guide tube sheath, a rear camera aimed at the needle head of the steam delivery needle, and an ultrasound probe module at the end of the guide tube sheath away from the handle, and the liquid inlet is aimed at the rear camera of the guide tube sheath.
[0019] The steam generator vaporizes the sterile distilled water, and the sterile distilled water is fed in by the host peristaltic pump, which is connected to the sterile distilled water bag.
[0020] Compared with the existing technology, the prostate steam ablation system provided by the present invention has the following advantages:
[0021] (1) It adopts an integrated design, eliminating the need for a separate cystoscope. Two cameras (front camera and rear camera) are installed on the guide sheath. The rear camera of the guide sheath, which is aimed at the needle tip of the steam delivery needle, can observe the firing and retraction of the delivery needle and the treatment site, making it easier for the operator to perform the surgical operation.
[0022] (2) The added ultrasound probe module can not only assist in locating the puncture needle, but also confirm the surgical effect through the ultrasound probe during the operation;
[0023] (3) A micro-servo electric cylinder is used to drive the steam delivery needle. Compared with the magnetic drive parts in the existing technology, not only is its stroke accuracy high (the delivery stroke accuracy reaches ±0.03mm), but the force sensor embedded in the micro-servo electric cylinder can feedback the puncture force to the micro-servo electric cylinder. The micro-servo electric cylinder will control the steam delivery needle according to the puncture force. This can avoid the steam delivery needle piercing the cyst wall and causing serious harm to the patient during the operation to the greatest extent. Compared with the current reliance on the surgeon's experience to judge the puncture depth of the steam delivery needle, its reliability is good, which adds a safety guarantee for the patient's surgical safety.
[0024] (4) Compared with the existing technology where the endoscope and the flushing channel share the same channel, the dedicated saline inlet and outlet channels set in the guide tube sheath facilitate flushing and clearing the field of view during surgery, and the existence of the dedicated channel can avoid contamination;
[0025] (5) Integrating the steam delivery needle, the saline inlet channel in the guide sheath, and the saline outlet channel in the guide sheath can reduce the diameter of the guide sheath (to 6 mm), thereby reducing the surgical burden on the patient.
[0026] As the preferred technical solution:
[0027] In the above-mentioned system for prostate steam ablation, the saline inlet channel and the saline outlet channel in the guide sheath are connected to the saline inlet pipe and the saline outlet pipe respectively through a water divider;
[0028] The front camera of the guide sheath is installed at the end of the guide sheath away from the handle end.
[0029] In the above-mentioned system for prostate steam ablation, the saline inlet tube and the saline outlet tube extend from the bottom of the handle;
[0030] The free end of the physiological saline inlet pipe is equipped with a physiological saline inlet pipe Luer connector, and the free end of the physiological saline outlet pipe is equipped with a physiological saline outlet pipe Luer connector. Quick connection of pipelines can be achieved through the Luer connector.
[0031] In the prostate steam ablation system as described above, the steam generator is connected to a sterile distilled water inlet tube away from the steam delivery needle end, and the sterile distilled water inlet tube passes through the bottom of the handle.
[0032] In the prostate steam ablation system as described above, the guide sheath is fixed to the handle via a knob and the guide sheath can rotate around the handle.
[0033] As described above, in a system for prostate steam ablation, the guide tube sheath is further provided with an intra-guide tube sheath video / ultrasound signal cable channel, and the intra-guide tube sheath video / ultrasound signal cable channel is provided with a video / ultrasound signal cable for connecting the guide tube sheath rear camera, the guide tube sheath front camera and the ultrasound probe module. The video / ultrasound signal cable passes through the handle and then exits from the bottom of the handle.
[0034] In the above-mentioned system for prostate steam ablation, the control cable is inserted into the handle from the bottom thereof and then connected to the steam generator and the micro servo cylinder respectively;
[0035] The micro servo electric cylinder has a built-in force sensor, which can provide timely feedback on the puncture force to minimize puncture of the cyst wall.
[0036] The steam generator is a pulse heater, which converts electrical energy into thermal energy to heat the sterile distilled water and convert it into sterile distilled water steam.
[0037] In the prostate steam ablation system as described above, the handle is provided with a firing button for controlling the steam generator and the micro servo electric cylinder.
[0038] The present invention also provides an application method of the prostate steam ablation system as described above, comprising the following steps:
[0039] (1) inserting a guide sheath of the prostate steam ablation system into the patient through the urethra to reach the patient's prostate. During the insertion process, the current position of the guide sheath can be determined by a front-mounted camera of the guide sheath;
[0040] (2) The system that controls prostate steam ablation delivers steam into the prostate through the steam delivery needle. During steam delivery, the state of the steam delivery needle tip can be obtained through the rear camera of the guide sheath and the state of the patient's treatment area can be observed. During the operation, the surgical site and the rear camera of the guide sheath are flushed through the saline inlet tube.
[0041] As the preferred technical solution:
[0042] The application method as described above further comprises:
[0043] (3) After the operation is completed, the steam delivery needle is withdrawn and the steam generator is turned off, and the guide sheath is removed from the prostate through the urethra.
[0044] The above technical solution is only a feasible technical solution of the present invention. The protection scope of the present invention is not limited thereto. Those skilled in the art can reasonably adjust the specific design according to actual needs.
[0045] The above invention has the following advantages or beneficial effects:
[0046] (1) The prostate steam ablation system of the present invention has a reasonable structural design and does not require a separate cystoscope. The overall design is one-piece, and the guide sheath is provided with a guide sheath front camera and a guide sheath rear camera. The guide sheath front camera can be used to observe the urethral tissue environment in real time, and the guide sheath rear camera can observe the firing and withdrawal of the delivery needle, and can also observe the treatment site;
[0047] (2) The addition of an ultrasound probe module to the guide sheath of the prostate steam ablation system of the present invention not only assists in locating the puncture needle, but also enables the ultrasound probe to determine the surgical effect during surgery;
[0048] (3) In the prostate steam ablation system of the present invention, the steam delivery needle is driven by a micro servo electric cylinder. Compared with magnetic drive components, its stroke accuracy is high, which can minimize the risk of puncturing the cyst wall.
[0049] (4) In the prostate steam ablation system of the present invention, the guide sheath is also provided with a dedicated inlet and outlet channel for saline solution, which facilitates flushing and clearing the visual field during surgery. The presence of the dedicated channel can avoid contamination and facilitate surgical operation;
[0050] (5) The prostate steam ablation system of the present invention integrates the steam delivery needle, the saline inlet channel in the guide sheath, and the saline outlet channel in the guide sheath, which can reduce the diameter of the guide sheath, thereby reducing the surgical burden on patients and has good application prospects. BRIEF DESCRIPTION OF THE DRAWINGS
[0051] The present invention and its features, configurations, and advantages will become more apparent upon reading the detailed description of non-limiting embodiments with reference to the following drawings. Like reference numerals indicate like parts throughout the drawings. The drawings are not drawn to scale, emphasis instead being placed on illustrating the subject matter of the present invention.
[0052] Figure 1 A three-dimensional perspective view of a system for prostate steam ablation according to the present invention;
[0053] Figure 2 is a cross-sectional schematic diagram of the guide sheath;
[0054] Figure 3 Schematic diagram of the guide sheath tip;
[0055] Figure 4 A front perspective view of a system for prostate steam ablation according to the present invention;
[0056] Figure 5 This is a schematic diagram of the prostate steam ablation system of the present invention without the handle and the housing;
[0057] Among them, 1 is the handle, 2 is the saline inlet tube, 3 is the saline outlet tube, 4 is the sterile distilled water inlet tube, 5 is the video / ultrasound signal cable, 6 is the control cable, 7 is the steam generator, 8 is the water distributor, 9 is the micro servo cylinder, 10 is the knob, 11 is the firing button, 12 is the guide sheath, 13 is the steam delivery needle, 14 is the saline inlet channel in the guide sheath, 15 is the saline outlet channel in the guide sheath, 16 is the video / ultrasound signal cable channel in the guide sheath, 17 is the front camera of the guide sheath, 18 is the rear camera of the guide sheath, 19 is the Luer connector of the saline inlet tube, 20 is the Luer connector of the saline outlet tube, 21 is the ultrasound probe module, 22 is the liquid inlet, and 23 is the liquid outlet. DETAILED DESCRIPTION
[0058] The structure of the present invention is further described below with reference to the accompanying drawings and specific embodiments, but is not intended to limit the present invention.
[0059] Example 1
[0060] A system for prostate steam ablation, such as Figures 1 to 4As shown, it includes a guide sheath 12 for entering a patient's body through the urethra, a handle 1 connected to the guide sheath 12 (the guide sheath 12 is fixed to the handle 1 by a knob 10 and the guide sheath 12 can rotate around the handle 1), a steam generator 7 (pulse heater) provided in the handle 1 and configured to generate condensable steam, a steam delivery needle 13 communicated with the steam generator 7 and slidably provided in the guide sheath 12, and a micro servo cylinder 9 attached to the steam delivery needle 13 and used for driving the steam delivery needle 13;
[0061] The end of the steam generator 7 away from the steam delivery needle 13 is connected to a sterile distilled water inlet pipe 4, which passes through the bottom of the handle 1. The control cable 6 passes through the handle 1 from the bottom of the handle and is respectively connected to the steam generator 7 and the micro servo cylinder 9. The micro servo cylinder 9 has a built-in force sensor. The handle 1 is provided with a firing button 11 for controlling the steam generator 7 and the micro servo cylinder 9.
[0062] The guide tube sheath 12 is further provided with a saline inlet channel 14, a saline outlet channel 15 and a video / ultrasound signal cable channel 16 in the guide tube sheath. One end of the saline inlet channel 14 in the guide tube sheath is connected to the liquid inlet 22 located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline inlet tube 2. The saline outlet channel 15 in the guide tube sheath is connected to the drain port 23 located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline outlet tube 3. The physiological saline inlet tube 2 and the physiological saline outlet tube 3 pass through the bottom of the handle 1. A physiological saline inlet tube Luer connector 19 is installed at the free end, and a physiological saline outlet tube Luer connector 20 is installed at the free end of the physiological saline outlet tube 3. The saline inlet channel 14 and the saline outlet channel 15 in the guide tube sheath are respectively connected to the physiological saline inlet tube 2 and the physiological saline outlet tube 3 through a water divider 8. A video / ultrasound signal cable channel 16 in the guide tube sheath is provided with a video / ultrasound cable for connecting the guide tube sheath rear camera 18, the guide tube sheath front camera 17 and the ultrasound probe module 21. The video signal cable passes through the handle 1 and then passes through the bottom of the handle 1;
[0063] A guide sheath front camera 17 is installed on the end of the guide sheath 12 away from the handle 1, and is aimed at the front end of the guide sheath 12. A guide sheath rear camera 18 is also installed on the guide sheath 12, and is aimed at the needle head of the steam delivery needle 13, and the liquid inlet 22 is aligned with the guide sheath rear camera 18.
[0064] The application method of the above-mentioned prostate steam ablation system comprises the following steps:
[0065] (1) inserting a guide sheath of the prostate steam ablation system into the patient through the urethra to reach the patient's prostate. During the insertion process, the current position of the guide sheath can be determined by a front-mounted camera of the guide sheath;
[0066] (2) The system for controlling prostate steam ablation delivers steam into the prostate via a steam delivery needle. During steam delivery, the state of the steam delivery needle tip can be obtained through a camera mounted on the rear of the guide sheath, and the state of the patient's treatment area can be observed. During the operation, the surgical area and the camera mounted on the rear of the guide sheath are flushed through a saline inlet tube.
[0067] (3) After the operation is completed, the steam delivery needle is withdrawn and the steam generator is turned off, and the guide sheath is removed from the prostate through the urethra.
[0068] It has been verified that the prostate steam ablation system of the present invention has a reasonable structural design and does not require a separate cystoscope. The overall design is one-piece. The guide sheath is provided with a front camera and a rear camera. The front camera can be used to observe the urethral tissue environment in real time, and the rear camera can observe the firing and retraction of the delivery needle, and at the same time observe the treatment site; the addition of the ultrasound probe module on the guide sheath can not only assist in positioning the puncture needle, but also determine the surgical effect through the ultrasound probe during surgery; the steam delivery needle is driven by a micro-servo electric cylinder. Compared with the magnetic drive part, its stroke accuracy is high, which avoids puncturing the cyst wall to the greatest extent; the guide sheath is also provided with a dedicated inlet and outlet channel for physiological saline, which is convenient for flushing and clearing the field of view during surgery. The existence of the dedicated channel can avoid contamination and facilitate surgical operations; integrating the steam delivery needle, the saline inlet channel in the guide sheath, and the saline outlet channel in the guide sheath can reduce the diameter of the guide sheath (the diameter can be 6 mm), thereby reducing the surgical burden on patients and having good application prospects.
[0069] Those skilled in the art should understand that they can implement variations by combining the prior art with the above embodiments, which will not be described in detail here. Such variations do not affect the essence of the present invention and will not be described in detail here.
[0070] The above describes the preferred embodiments of the present invention. It should be understood that the present invention is not limited to the above-mentioned specific embodiments, and the devices and structures that are not described in detail should be understood to be implemented in a common manner in the art; any technician familiar with the art can use the above-mentioned disclosed methods and technical contents to make many possible changes and modifications to the technical solutions of the present invention without departing from the scope of the technical solutions of the present invention, or modify them into equivalent embodiments of equivalent changes, which does not affect the essential content of the present invention. Therefore, any simple modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention that do not depart from the content of the technical solutions of the present invention are still within the scope of protection of the technical solutions of the present invention.
Claims
1. A system for prostate steam ablation, characterized by: The invention comprises an introducer sheath for entering a patient's body through the urethra, a handle coupled to the introducer sheath, a steam generator disposed in the handle and configured to generate condensable steam, a steam delivery needle in communication with the steam generator and slidably disposed within the introducer sheath, and a micro servo cylinder attached to the steam delivery needle and for driving the steam delivery needle; The guide tube sheath is further provided with a saline inlet channel and a saline outlet channel. One end of the saline inlet channel is connected to the liquid inlet located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline inlet tube. The saline outlet channel is connected to the discharge port located at the end of the guide tube sheath away from the handle, and the other end is connected to the physiological saline outlet tube. The guide tube sheath is equipped with a front camera aimed at the front end of the guide tube sheath, a rear camera aimed at the needle head of the steam delivery needle, and an ultrasound probe module at the end of the guide tube sheath away from the handle, and the liquid inlet is aimed at the rear camera of the guide tube sheath.
2. A prostate steam ablation system according to claim 1, characterized in that: The saline inlet channel and the saline outlet channel in the guide tube sheath are connected to the saline inlet pipe and the saline outlet pipe respectively through a water divider; The front camera of the guide sheath is installed at the end of the guide sheath away from the handle end.
3. A prostate steam ablation system according to claim 2, characterized in that: The physiological saline inlet tube and the physiological saline outlet tube extend from the bottom of the handle; The free end of the physiological saline inlet tube is installed with a physiological saline inlet tube Luer connector, and the free end of the physiological saline outlet tube is installed with a physiological saline outlet tube Luer connector.
4. The system for prostate steam ablation according to claim 1, characterized in that: The steam generator is connected with a sterile distilled water inlet pipe away from the steam delivery needle end, and the sterile distilled water inlet pipe passes through the bottom of the handle.
5. The system for prostate steam ablation according to claim 1, characterized in that: The guide sheath is fixed on the handle via a knob and can rotate around the handle.
6. The system for prostate steam ablation according to claim 1, characterized in that: The guide tube sheath is also provided with an intra-guide tube sheath video / ultrasound signal cable channel, and the intra-guide tube sheath video / ultrasound signal cable is provided with a video / ultrasound signal cable for connecting the guide tube sheath rear camera, the guide tube sheath front camera and the ultrasound probe module. The video / ultrasound signal cable passes through the handle and then exits from the bottom of the handle.
7. The prostate steam ablation system according to claim 1, characterized in that: The control cable is passed through the handle from the bottom and then connected to the steam generator and micro servo cylinder signals respectively; The micro servo electric cylinder has a built-in force sensor; The steam generator is a pulse heater.
8. The system for prostate steam ablation according to claim 7, characterized in that: The handle is provided with a firing button for controlling the steam generator and the micro servo electric cylinder.
9. The method for using the prostate steam ablation system according to any one of claims 1 to 8, characterized in that: The following steps are involved: (1) inserting a guide sheath of the prostate steam ablation system into the patient through the urethra to reach the patient's prostate. During the insertion process, the current position of the guide sheath can be determined by a front-mounted camera of the guide sheath; (2) The system that controls prostate steam ablation delivers steam into the prostate through the steam delivery needle. During steam delivery, the state of the steam delivery needle tip can be obtained through the rear camera of the guide sheath and the state of the patient's treatment area can be observed. During the operation, the surgical site and the rear camera of the guide sheath are flushed through the saline inlet tube.
10. The application method according to claim 9, characterized in that: Also includes: (3) After the operation is completed, the steam delivery needle is withdrawn and the steam generator is turned off, and the guide sheath is removed from the prostate through the urethra.
Citation Information
Patent Citations
Systems and methods for prostate treatment
CN105816237A
Vapor ablation systems and methods
CN113855214A