System and method for skin rejuvenation using impedance monitoring

The system addresses the inconsistency of RF energy delivery for cosmetic skin treatments by using impedance monitoring to customize treatment duration, ensuring effective and pain-managed skin rejuvenation through impedance-based termination.

JP7789699B2Active Publication Date: 2025-12-22CYNOSURE INC
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Patent Information

Application Number
JP2022569450
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-05-13
Filing Date
2021-05-13
Publication Date
2025-12-22
Estimated Expiration
2041-05-13

AI Technical Summary

Technical Problem

Existing methods for delivering radio frequency (RF) energy for cosmetic and aesthetic skin treatments, such as skin tightening and smoothing, lack effectiveness and consistency due to challenges in managing residual heat and individual skin variability.

Method used

The system employs impedance monitoring during RF energy delivery to detect changes in tissue impedance, terminating treatment when a decrease in impedance is detected, indicating contact with a more conductive, hydrated tissue layer, thereby customizing treatment duration and ensuring safe, effective skin rejuvenation.

Benefits of technology

This approach allows for personalized and efficient skin rejuvenation by terminating RF energy delivery at the right moment, minimizing pain and achieving predictable, consistent treatment results.

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Abstract

Systems and methods for treating tissue are provided. In part, the disclosure relates to a method for cosmetic tissue treatment comprising: positioning a treatment applicator having an electrode array with a plurality of needles against a site of tissue so that an area of ​​the electrode array contacts the site of tissue, each needle being an electrode in electrical communication with a control system; applying pulses of radio frequency (RF) energy from the electrode array to the site of tissue; measuring the impedance of the electrode array over time; detecting a decrease in the measured impedance while the electrode array is in contact with the site of tissue; and terminating the application of the pulses of RF energy after a treatment period when a threshold decrease in impedance is detected.
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Description

Related Applications

[0001] This application claims priority to and the benefit of U.S. Provisional Patent Application No. 63 / 024,483, filed May 13, 2020, entitled "System and Method for Skin Rejuvenation Using Impedance Monitoring," the entire disclosure of which is incorporated herein by reference. [Technical Field]

[0002] TECHNICAL FIELD The present disclosure relates generally to systems and methods for treating a patient's skin (e.g., dermis, subcutaneous, etc.) and other target tissue with radio frequency (RF) energy. [Background technology]

[0003] Electrosurgical devices are known to apply RF energy to tissue to produce a variety of effects, including highly invasive procedures (e.g., cauterization, vaporization of tissue, etc.) and minimally invasive procedures (e.g., gentle heating of the skin surface, etc.). Summary of the Invention [Problem to be solved by the invention]

[0004] However, there remains a need for improved methods and systems for delivering RF energy for cosmetic and / or aesthetic applications, such as to improve the appearance of skin by, for example, tightening / smoothing the skin (or making it appear so). [Means for solving the problem]

[0005] In various embodiments, the present disclosure relates to systems and methods for treating tissue. When a treatment device is activated, RF energy is delivered to tissue from one or more electrodes. Impedance monitoring is performed during one or more time periods related to the treatment, such as before, during, after, and a subset of the foregoing. The impedance monitoring is performed during a time period when impedance increases, associated with tissue alteration, such as tissue removal. The impedance monitoring is performed during a time period when impedance decreases. A decrease in impedance after treatment begins is associated with a signal from one or more electrodes indicating a decrease in impedance due to contact with a different tissue region or volume with different properties than the tissue being altered, such as a different, more hydrated tissue layer than the previous layer, or a tissue layer with other properties associated with lower impedance, lower resistance, or higher electrical conductance than the previous layer. In various embodiments, treatment is terminated, such as by cessation of RF energy delivery, after a treatment period measured from the time when the decrease in impedance is measured or detected.

[0006] In part, the present disclosure relates to a method for cosmetic tissue treatment comprising: positioning a treatment applicator having an electrode array with a plurality of needles against a site of tissue so that an area of ​​the electrode array contacts the site of tissue, each needle being an electrode in electrical communication with a control system; applying pulses of radio frequency (RF) energy to the site of tissue through the electrode array; measuring the impedance of the electrode array over time; detecting a decrease in the measured impedance while the electrode array is in contact with the site of tissue; and terminating the application of the pulses of RF energy after a treatment period when a threshold decrease in impedance is detected.

[0007] In one embodiment, the pulse length is about 1 ms to about 12 ms. In one embodiment, the impedance is measured at a sampling rate in the range of about 10 KHz to about 50 KHz. In one embodiment, the impedance is measured at a sampling rate of about 30 KHz. In one embodiment, the method further comprises: preventing the initiation of muscle contraction during a treatment period; and optionally, a ramp time of the output voltage of the electrode array is in the range of about 100 microseconds to about 5 ms. In one embodiment, the plurality of electrodes are connected in parallel. In one embodiment, the method further comprises: altering tissue such that tissue adjacent to contact with some of the plurality of electrodes is removed. In one embodiment, the method further comprises: applying a topical medication to the site of the tissue prior to placing the treatment applicator. In one embodiment, the method further comprises: applying a topical medication to the site of the tissue after the treatment period. In one embodiment, the method further comprises: applying a topical medication to the site of the tissue before and after the treatment period. In one embodiment, the topical agent is a moisturizer. In one embodiment, the pulse of RF energy travels along the surface of an electrode and is delivered to the site in the tissue to induce a tissue effect. In one embodiment, one or more annular lesions are formed in the tissue in response to the pulse of radio frequency (RF) energy.

[0008] In part, the present disclosure relates to an apparatus for treating tissue, comprising: a first treatment applicator head including a plurality of first needles; and an applicator body having a first end coupled to the first treatment applicator head, the applicator body having a second end in communication with a radio frequency (RF) power source and a control system, the first treatment applicator head being electrically connected to the RF power source in communication with the second end, the control system operable to terminate tissue treatment after a treatment period, the treatment period beginning when a drop in impedance is detected after an initial increase in impedance. In one embodiment, each needle of the plurality of needles has a blunt (blunt) tip. In one embodiment, the apparatus further comprises a second treatment applicator head including a plurality of second needles, the first end of the applicator body coupled to the second treatment applicator head, the second treatment applicator head being electrically connected to the RF power source by being connected to the applicator body.

[0009] In part, the present disclosure relates to a method for treating tissue, comprising: applying radio frequency (RF) power to tissue from a plurality of electrodes; periodically measuring the impedance of the tissue during application of the RF power; and controlling the application of RF power based on the impedance of the tissue to terminate treatment after a decrease in the measured impedance is measured. In one embodiment, the decrease in measured impedance is associated with one or more of the plurality of electrodes contacting an untreated region of tissue. In one embodiment, a first conductive characteristic of the untreated region of tissue is different from a second conductive characteristic of a treated region of tissue. In one embodiment, the treated region of tissue is located above the untreated region of tissue. In one embodiment, RF power is reduced when a decrease in the tissue impedance is detected. In one embodiment, the RF power is applied for a treatment period in a range of about 1 ms to about 12 ms. In one embodiment, the decrease in measured impedance is in a range of about 10% to about 90%. In one embodiment, the decrease in measured impedance is in a range of about 20% to about 50%.

[0010] While the present disclosure relates to various aspects and embodiments, it should be understood that the various aspects and embodiments disclosed herein may be integrated, combined, or used together as an integrated system, or as separate components, devices, or systems, as appropriate. That is, any implementation may incorporate any of the embodiments disclosed herein to any extent, as appropriate. Furthermore, the various systems, probes, applicators, needle arrays, controllers, components, and parts described above may be used with any other devices or systems, on any suitable tissue surface, in cosmetic, medical, or other applications.

[0011] These and other aspects of the applicant's teachings are described herein.

[0012] The patent or patent application file contains at least one color drawing(s). A copy of the publication of this patent or patent application containing color drawing(s) will be provided to the Patent Office upon request and payment of the necessary fee.

[0013] Unless otherwise noted, the accompanying drawings depict aspects of the innovations described herein. Like reference numerals refer to like components / parts throughout the different views and specification. With reference to the drawings, several embodiments of the principles of the present disclosure are illustrated by way of example only and not by way of limitation. The drawings are not intended to be to scale. [Brief explanation of the drawings]

[0014] [Figure 1A] FIG. 1 illustrates a non-penetrating RF needle / electrode in contact with tissue in accordance with one embodiment of the present disclosure. [Figure 1B] FIG. 1 illustrates the formation of a circular lesion and corresponding RF electrode / needle pin after RF energy is delivered in one embodiment of the present disclosure. [Figure 1C] FIG. 1 illustrates a first applicator and a second applicator having different electrode array configurations in accordance with an embodiment of the present disclosure. [Figure 2A] 1 illustrates a treatment applicator / probe and its components in accordance with one embodiment of the present disclosure. [Figure 2B] 10A-10C are other views illustrating the treatment applicator / probe and its components in accordance with an embodiment of the present disclosure. [Figure 2C] 10A-10C are yet other views illustrating the treatment applicator / probe and its components in accordance with an embodiment of the present disclosure. [Figure 2D] 10A-10C are yet other views illustrating the treatment applicator / probe and its components in accordance with an embodiment of the present disclosure. [Figure 3A] FIG. 10 is an alternative perspective view showing a body of a treatment applicator suitable for treating tissue in accordance with an embodiment of the present disclosure. [Figure 3B]1 is an exploded image showing some example parts of a treatment applicator head in one embodiment of the present disclosure. [Figure 4] 10A-10C show metallic conductive pin / needle electrodes for a treatment applicator in accordance with an embodiment of the present disclosure. [Figure 5A] 1 is a simplified diagram illustrating an array of electrodes of a treatment applicator applying RF energy to tissue in one embodiment of the present disclosure. [Figure 5B] FIG. 10 is another simplified diagram illustrating how an array of electrodes of a treatment applicator applies RF energy to tissue in one embodiment of the present disclosure. [Figure 5C] FIG. 10 is yet another simplified diagram illustrating an array of electrodes of a treatment applicator applying RF energy to tissue in accordance with an embodiment of the present disclosure. [Figure 6] 10A-10C are screen shots showing electrical signals before, after and during tissue treatment with a treatment applicator in one embodiment of the present disclosure. [Figure 7] 10 is a graphical display showing electrical signals including current, impedance, and voltage during various time periods including during a treatment applying RF energy with a treatment applicator in one embodiment of the present disclosure. [Figure 8] 10 is another graphical display showing electrical signals including current, impedance, and voltage during various time periods including during a treatment applying RF energy with a treatment applicator in an embodiment of the present disclosure. [Figure 9] 10 is yet another graphical display showing electrical signals including current, impedance, and voltage during various time periods including during a treatment applying RF energy with a treatment applicator in an embodiment of the present disclosure. [Figure 10] 10 is yet another graphical display showing electrical signals including current, impedance, and voltage during various time periods including during a treatment applying RF energy with a treatment applicator in an embodiment of the present disclosure. [Figure 11A]1 is a first photographic image of tissue treated with a treatment applicator over a treatment period determined using impedance monitoring in an embodiment of the present disclosure. [Figure 11B] FIG. 10 is a second photographic image of tissue treated with a treatment applicator for less than the recommended treatment duration in an embodiment of the present disclosure. [Figure 12A] 1 is a histological image of tissue obtained from a first area treated (RF on time = approximately 3 ms) after application of moisturizer in one embodiment of the present disclosure. [Figure 12B] 1 is a histological image of tissue obtained from a first area treated (RF on time = approximately 5 ms) after application of moisturizer in one embodiment of the present disclosure. [Figure 13] FIG. 1 is a schematic diagram illustrating an RF-based system suitable for controlling and delivering power and RF energy in an exemplary embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0015] In part, the present disclosure relates to systems, devices, and methods for directing and / or delivering electromagnetic energy, such as radio frequency (RF) energy, to one or more tissue regions, volumes, or layers to alter such tissues to directly or indirectly produce or induce cosmetic and / or rejuvenative and / or other tissue changes through at least one mechanism of action. Examples of tissue alterations and other tissue changes that may be produced or induced by the applicators and methods disclosed herein may include stimulation and / or repair and / or growth of tissue or at least one component of tissue, such as by fractional rejuvenation or other mechanisms. In one embodiment, RF treatment alters tissue by increasing collagen production. The treatment applicator may also be referred to as a probe, RF treatment device, or other names as referred to herein.

[0016] Without being bound by any particular theory or mechanism, tissue can also be altered when electrical signals are applied using pin / needle-based electrode arrays rather than optical signals such as laser light. Specific types of tissue alterations or effects that may occur or be induced in tissue during any given treatment session may include, but are not limited to, ablation, tissue removal, cauterization, plasma generation, RF-induced plasma generation, non-thermal RF-induced pressure waves, tissue carbonization, tissue vaporization, tissue mechanical changes, lesion formation, void formation, tissue pitting, increased production of tissue compounds, tissue scarring, and combinations thereof. Treatment duration, controlled via monitoring of impedance changes, allows any tissue alteration to be customized for each user.

[0017] 1A shows an RF tissue-contacting non-penetrating needle / electrode N pressed against a tissue surface such as skin. RF energy from the outer surface of the needle / electrode N travels along the outer surface of the needle / electrode N to contact the tissue surface.

[0018] FIG. 1A illustrates the outer surface of the needle / electrode N and how the RF delivered therefrom creates an electrical skin effect in one or more regions near or in contact with the electrode. The electrical skin effect refers to the tendency of alternating current (AC) current within a conductor to have a maximum current density near the surface of the conductor and to exponentially decrease current density with increasing depth. Current flows primarily in the "skin" of the conductor, located between the outer surface and a level of the conductor referred to as the electrical skin depth. The electrical skin depth depends on the frequency of the AC current. As the frequency increases, the current moves toward the surface, decreasing the electrical skin depth. Referring back to FIG. 1A , specifically, the electrical skin effect occurs when alternating current (AC) current within a conductor has a maximum current density near the surface of the conductor and an exponential decrease in current density with increasing depth. In various embodiments, the surface of the conductor corresponds to the surface of the needle / electrode N. This electrical skin effect phenomenon is proportional to the frequency of the AC current. In one embodiment, the needle / electrode N receives RF generated by an AC generator at a frequency in the range of about 0.5 MHz to about 4 MHz. In various embodiments, the selection of this high frequency range enhances the electrical skin effect produced by the needle / electrode N. The electrical skin effect exerts a tissue effect on the skin surface (e.g., the superficial skin region, etc.).

[0019] When at least one non-penetrating needle / electrode N is pressed against or urged toward or into the skin to establish contact as shown in FIG. 1A , the RF energy tends to strike the tissue surface first. As the RF energy strikes the skin tissue surface, a lesion is formed around the outer surface of the needle / electrode N. In various embodiments, this lesion occurs at the point of impact between the skin surface and the RF energy. The resulting skin effect lesion is initially concentrated at the interface between the outer surface of the needle / electrode N and the skin surface.

[0020] Referring to FIG. 1B, in embodiments where the needle / electrode N has a circular cross-section, a circular lesion (FIG. 1B) may be created on the skin / tissue surface. The needle / electrode N creates a circular lesion by concentrating RF energy at the interface between the outer surface of the needle / electrode N and the skin surface. The circular lesion shape is due, at least in part, to the fact that the tip of the non-penetrating needle / electrode N vaporizes and / or cauterizes the tissue surface with which it comes into contact. The tip of the needle / electrode N effectively becomes the RF focus of RF energy along the surface of the needle / electrode N. The RF energy also propagates to the tissue surface adjacent to where one or more tissue lesions are created.

[0021] 1B, in the region of the bottom or inferior point LP of the hole / depression W, the dermis or epidermal / dermal junction is exposed as a result of tissue damage caused in response to EF delivery from the needle / electrode N. Furthermore, one or more thermally affected zones TZ may be generated due to the delivery of RF energy along the surface of the conductive needle / electrode N and the associated skin effect as the RF energy propagates through the tissue from the point-like tip of the needle / electrode N to the inferior point LP.

[0022] The tissue contacted by the tip of the non-penetrating needle / electrode N is cauterized, forming a hole (or depression or depression) W in the tissue. Furthermore, the surface of the hole or depression W formed by the electrode N is cauterized / vaporized. This cauterization / vaporization contributes to or creates the appearance of the hole or depression W and also exposes tissue below the surface, such as dermal tissue and / or epidermal / dermal junction tissue. The exposed tissue around the bottom of the depression W is relatively intact (e.g., minimally thermally affected). During RF treatment with the electrode N, the tissue overlying the exposed tissue is cauterized and / or vaporized, essentially uncovering one or more tissue sites. The newly exposed tissue may absorb and / or retain topical treatments.

[0023] In various embodiments, topical creams or other medications may be applied to tissues exposed or denuded by the RF energy delivery described herein. Various topical medications suitable for application to exposed or denuded tissues are detailed herein. For example, certain topical medications (e.g., hydrophilic, hydrophobic, etc.) may be preferentially used in lesions created by RF-treated non-penetrating needle electrodes N, as shown in FIG. 1B. It is expected that some topical medications will have enhanced uptake and / or retention in lesions such as those shown in FIG. 1B and other lesions disclosed herein. As described herein, selecting a high fundamental frequency (e.g., about 1 kHz to about 1 GHz) can utilize the electrical skin effect, thereby determining the degree of thermal impact at the treatment site. Conversely, a relatively low fundamental frequency (e.g., about 100 Hz to about 1 kHz) can provide a more uniform thermal effect.

[0024] Typically, skin rejuvenation procedures use laser ablation, which can be a complex and expensive procedure. RF procedures are generally advantageous because they are less expensive and require less fragile or readily available components. Unfortunately, various methods of applying RF energy have various drawbacks. For example, some treatment systems attempt to utilize long pulses of low RF energy. Long pulses of low RF energy leave a lot of residual heat in the skin. Generally, managing this residual heat can be difficult because each individual's skin is different, and excessive heat can lead to pain and unpredictable results.

[0025] The amount of RF energy required for each individual treatment depends on many variables (e.g., the amount of pigment, the hydration level of the individual's skin, etc.). To address some of these technical issues, the systems and methods disclosed herein are designed to provide an economical, customized, and user-specific approach to skin rejuvenation and tissue treatment for individuals. In part, treatments can be personalized by incorporating impedance monitoring as a mechanism for customizing treatment duration for each individual.

[0026] In various embodiments, the present disclosure describes a system in which a treatment applicator is coupled to a control and / or analysis system that includes at least one ASIC, circuit, microprocessor, or other control system that terminates delivery of RF energy after detecting / measuring an impedance value or threshold or impedance transition and / or after a predetermined time period after such detection.

[0027] In various embodiments, the treatment applicator has a treatment applicator head with a set of electrodes arranged in a pattern. The treatment head may be detachable / separable from the probe / applicator body. The electrodes are conductive pins, needles, or other protrusions extending from a conductive surface or in electrical communication with an analytical, control, and treatment system. In some embodiments, the electrodes of the treatment applicator are arranged in a pattern, such as a regular polygon or other shape with electrodes at the vertices and / or centers. For example, one treatment applicator embodiment has approximately 50 electrodes or applicator needles arranged in rows of approximately 10 electrodes. The electrodes in this embodiment are evenly spaced within the tissue-contacting area of ​​the treatment applicator.

[0028] FIG. 1C shows two different applicators A1 and A2. The first applicator A1 has an array of non-penetrating needle electrodes (e.g., pins). A first applicator head can support or couple a given array. In one embodiment, the array on applicator A1 occupies an area of ​​approximately 1 cm by approximately 1 cm. Applicators of various embodiments can include more than one applicator head. The second applicator A2 has four separate approximately 1 cm by approximately 1 cm arrays located at the four corners of a square or rectangle on the applicator surface, with the pins occupying a total area of ​​approximately 2 cm by approximately 2 cm. Each array or combination of arrays can be part of one or more applicator heads coupled to the applicator body. In various embodiments, multiple applicators can also be used.

[0029] In various embodiments, the number of pins in each array is distributed to maintain uniformity of energy delivery for each needle, and the number of non-penetrating needle electrodes (e.g., pins) in any array and / or any applicator is limited by such distribution. If the number of pins in an array exceeds an acceptable threshold, the energy density distribution becomes non-uniform, reducing the desired uniformity of treatment. The acceptable threshold number of pins in an array for any applicator is determined by a variety of factors, including the needle diameter, the pitch between adjacent needles, the needle material, the frequency, the mode (bipolar or monopolar), and the duration. Each applicator A1, A2, whether it has a single array or multiple arrays, includes a grip, an effector, and a cord. Each cord connects the respective applicator to an RF power generator and one or more control systems.

[0030] When multiple arrays are used, they do not necessarily need to be activated simultaneously, but may be activated in any time sequence, with power directed to each small array in a short sequence that constitutes a single activation of the RF handpiece. Upon contact with the array, for example, by a single activation of a foot switch, hand switch, etc., or automatically by detecting contact of the pins with tissue by impedance monitoring, each array may be pulsed as if presenting a single pulse covering an area greater than the individual arrays. The pulse length may be on the order of a few milliseconds, and the timing between pulses may be less than 1 millisecond. This allows for a single activation of the device to produce short duration pulses (less than about 100 ms), theoretically suitable for a stepping technique, yet covering an area of ​​several centimeters. 2In one embodiment, the arrays of applicator A1 may be energized with RF pulses of about 3 ms length. In one embodiment, the arrays of applicator A2 may be energized with RF pulses of about 3 ms length simultaneously or according to a switching pattern such as a round robin. In one embodiment, applicator A2 is energized for a total time of about 12 ms, with each of the four arrays being energized for about 4 ms.

[0031] (Selection of applicator array according to treatment site) The applicator array can be configured to conform to the surface curvature of the treatment site. Applicators with conforming surface geometries are advantageous because they can apply electrode pressure uniformly to the underlying skin. The uniform electrode pressure of conforming applicators is expected to lead to more consistent and predictable treatment results. Each array can be rigid, but can also be precisely maintained normal to the tissue surface using suspension. An example of such a mechanism is found in electric shavers, where each cutting head conforms to the tissue surface via a spring-loaded suspension mechanism. Various array shapes can be envisioned to fit specific anatomical regions, such as around the nose or upper lip.

[0032] (row and column configuration) In various embodiments, the delivery electrodes may be arranged in a hexagonal or rectangular grid. A hexagonal configuration is advantageous because it provides the most uniform distance between electrodes and their closest neighbors, resulting in a correspondingly uniform treatment bioeffect. In various embodiments, if the desired bioeffect has a desired direction, it may be advantageous to alternately space the delivery electrodes in a non-uniform manner. For example, in a skin tightening treatment, a higher density of delivery electrodes in the direction of the desired tightening and a lower density laterally may be advantageous because it optimizes tissue heating and healing time for maximum directional tightening, while minimizing healing time and side effects.

[0033] (Cross section of pin) The cross-section of the individual pins or delivery electrodes can be any geometric shape that results in a blunt tip at the tip of the pin pressed against the skin. Blunt tips are preferred because when the array of tips is pressed against the skin, the pins do not penetrate the epidermis prior to RF energy delivery. This configuration optimizes delivery by delivering a high RF power density to the epidermis and a low RF power density to the dermis. The skin surface contact area of ​​the blunt tips is optimized to deliver sufficient RF power density to induce the tissue effects and impedance changes described herein.

[0034] (Application of topical medication before / after treatment using an applicator) Topical medications may be applied to the skin before and / or after RF power delivery. For topical medications considered for application before RF power delivery, the effect on the impedance of the delivery electrode and / or the underlying skin area must be evaluated for each topical medication. For topical medications considered for application before RF power delivery, if the topical medication may undergo chemical, physical, or structural changes during RF power delivery, the topical medication must be evaluated for each topical medication. For topical medications applied to the skin after RF power delivery, impedance or RF heating do not need to be considered. In some embodiments, a predetermined dose of topical medication may be applied to the skin by an RF treatment applicator before and / or after RF power delivery.

[0035] (Applicator treatment regime / timing) A treatment unit may include an initial treatment followed by multiple follow-up treatments, optionally at treatment intervals of about one week to about three months. Multiple treatments with relatively low RF power levels and / or short power delivery on-times are preferably performed at short treatment intervals of, for example, about one week to about three weeks. Multiple treatments with relatively high RF power levels and / or long power delivery on-times are preferably performed at long treatment intervals of, for example, about three weeks to about three months. Furthermore, a treatment unit may include all follow-up treatments in a subject's treatment regimen with the same RF power level and / or power delivery on-time.

[0036] The treatment applicator can create lesions, voids, or other tissue alterations in tissue, such as the epidermis, in a pattern that spans a treatment area on or within a subject. Tissue is removed from a region or volume adjacent to contact with one or more surfaces of any pins or needles of the applicator. Each lesion is created by a corresponding electrode in an electrode pattern within the treatment applicator. Each electrode receives a short burst of high RF energy from a control and / or analysis system. The lesions are spaced apart so that each lesion is surrounded by undamaged tissue.

[0037] In this case, undamaged tissue helps repair adjacent areas of damaged tissue, promoting rapid healing and / or repair of the damaged tissue area. In various embodiments, such dot patterns can be modified to cover treatment areas of various sizes. In some embodiments, the treatment applicator can cover multiple treatment areas, where one or more of the multiple treatment areas can be treated simultaneously or sequentially to treat substantially larger areas of skin. Multiple applicators or pads containing arrays of pins / needles can also be used.

[0038] In various embodiments, the treatment applicator forms lesions in a dot-like pattern. For example, a given lesion can range from about 100 microns wide to about 300 microns wide. Similarly, a given lesion can range from about 50 microns deep to about 300 microns deep. However, in other embodiments, the size of each lesion can be adjusted depending on the level and length of power applied by each electrode. The depth and width ranges can be scaled by a factor of about 0.1 to about 10. During a given treatment session, RF power and / or length can be varied to increase the size and / or depth of the lesions as needed. In some cases, the treatment applicator can be used to form larger lesions, deeper trenches, or lesions of different sizes. In some embodiments, the size and / or shape of each electrode can be altered to select and / or adjust the size and / or depth of the lesions formed. During a given treatment session, in addition to delivering RF energy, the operator of the treatment system can apply downward pressure to drive the needle / pin array into the tissue to be treated.

[0039] In various embodiments, the treatment applicator includes at least one sensor that detects various changes in the skin during treatment. For example, in one embodiment, the treatment applicator includes an impedance sensor that detects the impedance of the skin at the point of contact between the electrodes and the skin. The treatment applicator is capable of obtaining sensor measurements at high frequencies. In one embodiment, the applicator does not include a sensor, and the treatment system measures impedance using an input signal to the applicator and a return signal that varies in impedance before, during, and after treatment, such as increasing, remaining substantially constant, or decreasing. For example, in one embodiment, the treatment applicator may record measurements at a sampling rate of approximately 30 kHz. In various embodiments, the control system includes measurement circuitry operable to measure impedance values ​​at a sampling rate in the range of approximately 20 kHz to approximately 50 kHz. In one embodiment, the sampling rate is in the range of approximately 1 kHz to approximately 1 MHz. In some embodiments, the treatment applicator or treatment system is capable of varying the number of measurements that can be taken, thereby allowing the user to select the sampling rate.

[0040] Typically, it was expected that impedance would increase upon application of RF energy from at least one electrode of the array. This expected result was based on the appearance of a gap or barrier when the skin layer was cauterized and / or charred and / or vaporized during the procedure. When this type of gap is located relative to the electrode, it leads to an increase in impedance. Generally, when cells are removed from the tissue, a vapor / vapor barrier or void appears between the tissue and the tip of the electrode, increasing the impedance. This was the expected result.

[0041] During product development, it was discovered that, contrary to the above prediction, the detected impedance increased when treatment began, but when the electrodes in the treatment applicator disrupted an outer layer of tissue, such as skin, the measured impedance values ​​during product development decreased. This decrease in impedance was an unexpected result. Instead of forming a barrier or gap between the skin and the electrode, the electrode contacted the underlying, healthy, hydrated skin, which measured a lower impedance than the removed skin layer. This unexpected result is the basis for a mechanism for monitoring impedance and a customized treatment based on such monitoring. In various embodiments, treatment is stopped in response to measuring a decrease in impedance after an initial increase in impedance during an RF delivery treatment session.

[0042] In various embodiments, the treatment applicator is connectable to a control and / or analysis system that supplies RF energy to the treatment applicator. In one or more embodiments, the control and / or analysis system may provide about 150 to about 500 volts RMS (root mean square voltage). The control and / or analysis system is operable to supply a configurable amount of RF energy to the treatment applicator. In various embodiments, the control system receives sensor data from the treatment applicator to determine when to shut off or ramp down RF energy. In various embodiments, impedance may be used to determine whether treatment is complete.

[0043] When the treatment applicator disrupts the outer layer of skin with RF energy, a drop in measured impedance indicates that the treatment applicator has come into contact with healthy / untreated tissue. This occurs after a ramp-up phase of increased impedance. In some embodiments, the system is operable to measure impedance values ​​at a high rate, such as about 30 kHz. In various embodiments, impedance measurements are taken at the point of contact between the pin electrodes and the tissue to be treated. In various embodiments, impedance measurements are taken in parallel for all tissue in contact with any array of electrodes. When RF energy is applied to tissue, the tissue's impedance level increases until the tissue ablate and / or char and / or detaches from the energy source or undergoes other transformations as disclosed herein.

[0044] Without being bound by any particular theory or mechanism, the increase in impedance level occurs due to heating and drying of the tissue by RF energy. The initial increase in impedance may be due to tissue dehydration. In this embodiment, when the treatment applicator contacts the untreated tissue layer below the treated tissue layer, a decrease in impedance level occurs because the conductivity of the healthy tissue layer exceeds the treatment impedance of the RF-delivered transformed layer. In some cases, this higher conductivity is due to the skin's greater moisture content. In one or more embodiments, the control system shuts off the RF energy when the impedance decreases by a certain percentage, threshold, or other numerical amount. In various embodiments, the decrease threshold is configurable. In some embodiments, the decrease threshold (see FIGS. 9 and 10) may be configured based on patient-to-patient differences (e.g., skin pigmentation, age, skin moisture, etc.). This change in impedance can be seen in the plots / graphs of FIGS. 6-10.

[0045] 2A-2D are schematic diagrams illustrating an applicator 5 suitable for delivering electromagnetic energy, such as high-frequency RF energy, to various tissues of a subject. The applicator may be used for skin rejuvenation treatments, cosmetic treatments, acne treatments, and other treatments disclosed herein. FIG. 2A illustrates the tissue contact area of ​​a treatment applicator. The applicator may have a plurality of needles (generally designated 5 and specifically depicted as rows 5a, 5b, 5c, and 5d of needles). The needles are arranged in an electrode array 7 according to a pattern with equal or variable spacing between the needles. As shown, the needle array 7 is mounted relative to the treatment head 10 of the applicator 3. In one embodiment, each needle 5 of the array 7 is an electrode. In another embodiment, the entire array 7 is an electrode. Each needle has a tissue contacting surface.

[0046] In various embodiments, one or more RF energy delivery devices transform a tissue region, volume, or area. Unlike other devices, the RF delivery devices use short RF pulses with high power output. This design facilitates improved pain management during the treatment session, e.g., reduced pain during treatment. In one embodiment, the treatment duration during which RF energy is delivered is in the range of about 3 milliseconds (ms) to about 5 ms. In one embodiment, the RF power delivered is in the range of about 200 to about 400 watts. In one embodiment, the RF power delivered is in the range of about 250 watts to about 350 watts. In one embodiment, the output voltage delivered to any tissue region, region, or volume ranges from about 150 volts RMS to about 550 volts RMS.

[0047] In one embodiment, the needles are equally spaced at each vertex of a hexagon, with one needle in the center of the hexagon, forming approximately 60° intervals with respect to the central needle. In one embodiment, the distance between the needles is between about 0.5 mm and about 3 mm. In one embodiment, the needles are spaced about 1.5 mm apart. The treatment array may be between about 1 mm by about 1 mm and about 30 mm by about 30 mm. In various embodiments, the electrodes (needles / pins) in any electrode array are connected in parallel and monitored in parallel during impedance, voltage, resistance, current, and other input, output, and treatment session-specific measurements. In some embodiments, a selectively addressable or hybrid electrode array is used with at least one control circuit operable to drive a subset of the electrodes in a larger array to cover a larger treatment area.

[0048] As shown, the treatment applicator head 10 includes an interior portion with an array of holes through which electrode pins can be advanced and / or retracted. In some embodiments, the electrodes are fixed in the advanced position. FIG. 2B is a side view of a tapered, axial treatment applicator 3, with a first end comprising the treatment applicator head 10 and a second end (i.e., applicator distal end 25) in communication with analytical and / or control systems. One or more cables 30, such as cables nested within a common jacket, extend from the distal end and connect to the analytical and / or control systems. The one or more cables may include electrical cables for power and electrical cables for control signals. The treatment head 10 may also have one or more ports or surfaces in fluid communication with a coolant reservoir or other coolant systems. The treatment head may also have a suction port bundled with and / or in fluid communication with one or more of the cables / conduits 30. The treatment head 10 may be attached to the body 3 a of the applicator 3 by various fasteners / mounting assemblies 35 .

[0049] As shown in FIG. 2C, the treatment applicator head is removably attached to the treatment applicator. Activating switch 38 allows the treatment applicator 3 to be detached from the treatment applicator body 3a. In some embodiments, the switch is slidable. In other embodiments, the switch is depressible. The treatment applicator 10 may be detachably coupled to the body 3a by various compression-fit, tension-based, or other attachment mechanisms. In various embodiments, the treatment applicator is disposable. In certain embodiments, the treatment applicator head 10 is removable for cleaning and / or sterilization.

[0050] 3A is a perspective view of the treatment applicator body 3a shown in FIGS. 2A-2D, suitable for use in skin rejuvenation and other treatments, according to one embodiment of the present disclosure. The treatment applicator body in this figure does not have a detachable treatment applicator attached. A communication cable 30 is connected to a second end (i.e., distal end) 25 of the treatment applicator body, allowing connection to an analysis and / or control system.

[0051] FIG. 3B is an exploded view of a treatment applicator head 10a according to one embodiment of the present disclosure. This applicator head may be used with an applicator body 3a, an electrode array, and other components, such as those shown in FIG. 3A, to form an overall treatment applicator. The illustrated treatment applicator head 10a includes a fastener 35, a fastener 37 such as a nut (as shown), an outer housing 41, an inner housing 43, a first support or gasket 45, and a second support or gasket 47. The support or gasket may be fitted within the housing or may be installed or positioned relative to the housing. The designations "first" and "second support" are not intended to be limiting, and there is no particular rule as to which support is designated first and which support is designated second. The treatment head may further incorporate an electrode array or assembly, such as a conductive plate, having conductive pins or needles extending outwardly toward the tissue and in electrical communication with the pins or needles. The head 10a may also have one or more conduits and ports formed through at least one surface thereof suitable for drawing in air, smoke, fluids, etc., and / or delivering refrigerants, medications, or other liquids or gels to a reservoir within the head or to the tissue.

[0052] FIG. 4 illustrates an electrode array 7a with multiple needles 5 for a treatment applicator in one embodiment of the present disclosure. As shown, the electrodes are connected to the same pad in a row-to-row arrangement. Individual electrodes of the electrodes may be individually controllable when installed in the treatment applicator. In one embodiment, the pins or needles (e.g., blind needles, blunt needles, etc.) and the plate from which they extend are a single conductive structure. The electrode array is made of one metal or more than one metal (e.g., alloys, etc.). In one embodiment, a control system addresses and simultaneously measures all of the electrodes.

[0053] 5A-5C are simplified cross-sectional views illustrating an array of electrodes of a treatment applicator applying RF energy to skin in one embodiment of the present disclosure. A row of electrodes in the array includes needles or pins 5a, 5b, 5c, and 5d, as shown. In one embodiment, pins or needles 5 are also referred to as point probe pins / needles. Pins / needles 5a-5d represent some of the electrodes of a treatment applicator (as shown in FIGS. 2A-2D and 1C). In these figures, the needles or the entire electrode array are positioned to contact a treatment area of ​​tissue (in this example, skin). In one embodiment, an operator presses the surface of the electrode array into the skin, deforming the skin at the needle contact points. In another embodiment, the pins / needles of the array are placed on the skin surface, and then RF energy is applied from one or more or all of the pins or needles, causing tissue to be altered or removed, causing the pins / needles to be lowered into the skin.

[0054] Once contact occurs, the control and / or analysis system pulses RF energy from each electrode. The pulsed RF energy causes tissue transformation, such as tissue removal, at the point of contact or at any other transformation or transformation process point disclosed herein. In some embodiments, tissue removal occurs through skin tissue transformation (as shown in FIG. 5B). In other embodiments, heating of the electrodes causes tissue in contact with each electrode to carbonize and be removed from the skin. In some embodiments, application of RF energy vaporizes tissue in contact with the electrodes. In other embodiments, application of RF energy to the electrode array causes one or more transformations in tissue, including combinations of the various transformations disclosed herein.

[0055] In various embodiments, tissue is removed by undergoing a transformation. The pins / needles of the electrode array are moved into a tissue volume formerly occupied by tissue that has been substantially removed or reshaped from the subject through a transformation such as compression, vaporization, carbonization, plasma formation, or other transformation caused or initiated by RF energy delivery. As the tissue is removed (as shown in FIG. 5C), the electrodes contact underlying healthy tissue. The tissue may have one or more parameters that vary from subject to subject, such as pigmentation, moisture, tissue thickness, etc. In some embodiments, the tissue may be smoked or vaporized, but removed by a fluid transfer device, which may be part of the applicator or a separate device from the applicator.

[0056] In various embodiments, the control system or impedance detection subsystem in communication with the treatment applicator measures skin impedance values ​​when the treatment applicator is placed on the skin and delivers RF signals / energy to the skin. As RF energy is applied to the skin through the electrodes, tissue alterations occur where the electrode array contacts an area of ​​tissue, causing the measured impedance to increase. If the RF energy causes one or more tissue alterations, such as a lesion, the tissue impedance will slowly increase as the tissue is removed or altered.

[0057] As the electrode array penetrates further into the tissue and contacts a lower tissue layer, a drop in impedance is detected. In one embodiment, a drop or decrease in impedance is associated with the electrode array contacting a more conductive tissue layer below the tissue just subjected to the transformation procedure. The initial rise in impedance is referred to as an impedance ramp-up, and the subsequent unexpected decrease in impedance is referred to as an impedance ramp-down. Aspects of the applicator and / or array disclosed in connection with Figures 2A-5C and other figures may also be used in connection with other arrays and / or applicators disclosed herein, e.g., Figures 1B, 1C, 2A, etc.

[0058] FIG. 6 is a screen shot illustrating treatment of a portion of skin in one embodiment of the present disclosure. The graph shown illustrates the duty (i.e., the power output of the system), the current delivered by the treatment applicator, the detected resistance, and the measured voltage. As shown, duty refers to the duty ratio of the DC buck converter transistor and corresponds to the DC output voltage of the DC buck converter. In various embodiments, duty = 0 is zero voltage, and duty = 1.0 is maximum DC voltage. In various embodiments, the system controls the RF output voltage (the voltage applied to the subject) based on the fact that the buck DC voltage for a given load impedance is proportional to the RF output voltage. In various embodiments, the voltage output range of the power supply can include various set points, such as high, medium, and low set points, as shown in FIG. 8. The "DC buck duty maximum" in this figure refers to the maximum output voltage of the power supply. In one embodiment, the power supply is a buck-boost power supply. The "resistance" referenced in the figures and herein correlates to or is the same as impedance in various embodiments.

[0059] Prior to RF energy delivery, the measured resistance is approximately 3017 Ω, with a corresponding current of approximately 67 mA (RMS) and voltage of approximately 204 V (RMS). The resistance curve, plotted based on measured or calculated resistance values, initially ramps up and then ramps down. After treatment energy is delivered to the target tissue, the resistance ramps down to approximately 1417 Ω, with a corresponding current of approximately 277 mA (RMS) and voltage of approximately 393 V (RMS). In one embodiment, this change in resistance / impedance occurs approximately 600 μs after the resistance / impedance ramp-up begins. In various embodiments, the tissue treatment period occurs after the initial rise / ramp-up of resistance / impedance followed by detection / measurement of a drop in resistance / impedance.

[0060] 7-10 are graphical screen shots illustrating various electrical signals and their changes during application of RF pulse energy from an electrode array of a treatment applicator in one embodiment of the present disclosure. As shown in FIG. 7, the screens plot power output, current, impedance, and voltage versus time. When treatment begins, the output power ramps up over approximately 500 microseconds. Optionally, in other embodiments, the output power ramps up over approximately 100 microseconds to approximately 5 ms, or approximately 500 microseconds to approximately 1 ms, at the start of treatment. Line T2 in the diagram indicates the time when maximum impedance is reached. In various embodiments, T2 corresponds to the occurrence of maximum resistance. T2 also represents the beginning of a generally flat output power curve after the previous ramp-up. T1 indicates the time after the impedance drops to a flat steady state. The entire pulse occurs within a few milliseconds, with the difference between T1 and T2 being approximately 1.3 ms.

[0061] In one embodiment, the RF energy delivery time is in the range of about 0.3 ms to about 50 ms. In one embodiment, the impedance drop value, also referred to herein as the impedance or resistance threshold or drop threshold, is shown in FIG. 9 as r_drop_threshold. The drop threshold corresponds to the threshold for determining whether the impedance drop has been achieved. When a resistance / impedance drop occurs that meets or exceeds the expected drop threshold, the control system initiates a timer to continue treatment with RF energy. In various embodiments, different impedance / resistance thresholds may be established for different tissues / regions of the body. In some embodiments, the treatment duration corresponds to the time from T2 to the ramp-down of the output voltage.

[0062] At time T1, the electrodes of the treatment applicator have broken down the outer layer of tissue and are in contact with the underlying tissue. In one embodiment, the underlying tissue has a higher electrical conductivity than the tissue being treated. In various embodiments, the treatment period refers to the generally flat region of the output power plot between the upward slowing ramp-up line and the downward slowing ramp-down line, i.e., the plateau region between the ramps. In one embodiment, the ramp time is managed to reduce or prevent twitching or involuntary contractions / spasms of muscle tissue. In one embodiment, the ramp time is in the range of greater than 0 to about 500 ms. In other embodiments, the output voltage ramp time is on the order of or about 500 microseconds. Optionally, in other embodiments, the output voltage ramp time is in the range of about 100 microseconds to about 5 ms, or about 500 microseconds to about 1 ms. In one embodiment, the pulse length and output power are user selectable and may be adjusted based on one or more parameters associated with a given patient / tissue type.

[0063] In various embodiments, a user can select an operating set point and pulse length by operating the treatment system. In various embodiments, the set point refers to the amount of RF energy delivered by the treatment applicator. The set point variable can be set to high, medium, or low. These can be set automatically using measured impedance or can be user-specified based on the operator's experience with various tissue types / skin parameters. In various embodiments, the pulse length corresponds to the amount of time the RF energy pulse is active. In one or more embodiments, the pulse length can be set to about 1 ms to about 12 ms.

[0064] In various embodiments, the length of the pulse may be adjusted based on the treatment. In some embodiments, the system incorporates a foot pedal for initiating the pulse. In these embodiments, depressing the foot pedal initiates the RF pulse, and releasing the pedal either ends the RF pulse or not. In one embodiment, the maximum operating frequency is about 1.5 Hz. In another embodiment, the maximum operating frequency is about 3 Hz. In yet another embodiment, the maximum operating frequency is about 5 Hz. The operating frequency may be within the range of about 0.5 Hz to about 10 Hz, about 0.5 Hz to about 5 Hz, or about 1.5 Hz to about 5 Hz. In various embodiments, activation of the system generates an audible sound that lasts about 500 ms. In various embodiments, the treatment applicator operates at a maximum power output of about 200 watts. Each set point corresponds to the amount of RF power provided by the system. The table below provides some example system values. The associated scaling factors are listed below the table.

[0065] [Table 1]

[0066] Each of the above numerical values ​​is assumed to be "approximately" and may vary within a range with the boundary value being the value obtained by multiplying or dividing the numerical value by a coefficient selected from the range of approximately 1 to approximately 50.

[0067] For example, in one embodiment, "high" corresponds to ramping up the DC back duty to high_setpoint x DC back duty max. "Medium" corresponds to ramping up the DC back duty to med_setpoint x DC back duty max. "Low" corresponds to ramping up the DC back duty to low_setpoint x DC back duty max. In various embodiments, DC back duty max refers to the maximum amount of RF energy that can be delivered by the control and / or analysis system that interfaces with the treatment applicator.

[0068] In Figure 8, the set point is set to "high" and the ramp-up and ramp-down times are 500 μs. In this example, the ramp-up and ramp-down times are set to minimize the possibility of muscle reaction when RF energy is applied to the skin.

[0069] In FIG. 9, the control and analysis system is set to a drop threshold of 0.2, corresponding to a 20% drop in impedance. The treatment in this example (20% drop in resistance between T2 and T1) is successful. The value of r_drop_threshold is shown by the dashed line. After an initial rise, impedance drops from T2 onward. In one embodiment, the treatment period begins at T2 and continues for several milliseconds as disclosed herein. In various embodiments, the impedance / resistance drop threshold is within the range of about 5% to about 80%, about 10% to about 90%, or about 20% to about 50%.

[0070] As shown in Figure 10, the treatment period is determined by the drop threshold and the pulse length. The treatment period begins when the impedance drops by an amount corresponding to the drop threshold, represented by the dashed line r_drop_threshold. In various embodiments, the pulse length is set by the user.

[0071] FIG. 11A is a photograph of skin after treatment, according to one embodiment of the present disclosure. As shown, a dot-like treatment pattern has been created in the skin by the treatment applicator, removing an outer portion of the tissue. The electrode contact area is outlined by a dashed line. The treatment duration used was selected based on impedance monitoring, and the duration is tailored to the individual receiving treatment. In this manner, impedance monitoring allows for the treatment duration to be set while taking into account a given subject's hydration level, age, pigmentation, tissue condition, and other factors. Referring again to FIG. 1B, the tissue damage including the hole / depression W shown therein is a cross-sectional depiction of one of the damages resulting from the dot-like treatment pattern outlined in FIG. 11A.

[0072] The illustrated punctate lesion pattern offers several advantages when performing skin rejuvenation. In a punctate treatment pattern, the epidermal injury is an island of injury surrounded by healthy / untreated tissue. Treated tissue surrounded by healthy / untreated tissue can heal / recover quickly. This rapid healing of finely dispersed punctate lesions contrasts with approaches that create large, concentrated treatment lesions throughout the tissue at a given site, which results in a slower overall recovery time. The punctate approach can promote more rapid tissue repair and rejuvenation compared to large, concentrated treatment approaches.

[0073] Figure 11B is a photograph of skin after treatment, according to one embodiment of the present disclosure. Unlike Figure 11A, Figure 11B shows an example where the treatment was unsuccessful. In this example, the treatment period was not long enough to remove the outer layer of tissue. The area where treatment was attempted is outlined by a dashed line. Thus, the treatment did not remove enough tissue to reach the healthy tissue underneath.

[0074] 1A shows the observation of punctate superficial skin damage after punctate RF treatment with the exemplary device described above. Histological clinical examination was performed to evaluate the observed superficial skin damage on a microscopic scale.

[0075] Patients scheduled for abdominoplasty were recruited and subjected to histological clinical examination. Before abdominoplasty, the planned incision site was marked and divided into four treatment areas (1, 2, 3, and 4). Areas 1 and 2 were used to evaluate treatment with impedance detection timing, with and without pre-treatment moisturizer application. Areas 3 and 4 were used to evaluate treatment without impedance detection timing, i.e., normal timing, with and without pre-treatment moisturizer application. Moisturizer was applied to areas 1 and 3 30 minutes before treatment. Treatment power levels were varied across all four areas: Level 1, Level 2, and Level 3. The power delivery duration ranged from approximately 1 ms to approximately 8 ms. The moisturizer applied to areas 1 and 3 was intended to improve the consistency of electrical characteristics when fractional RF (point-like) was applied to the treatment area.

[0076] All treatments were performed while the patient was under anesthesia. After incision at the abdominoplasty site, approximately 6 mm punch biopsies were obtained from each treatment area. The biopsies were processed with hematoxylin and eosin (H&E) stain and evaluated under a light microscope. Example photomicrographs are shown in Figures 12A and 12B. Both photographs show tissue from area 1, which was treated with moisturizer before treatment and with impedance detection timing (level 3). The tissue in Figure 12A was treated with an on-time of approximately 3 ms, and the tissue in Figure 12B was treated with an on-time of approximately 5 ms.

[0077] The histological findings of a dermatologist, whose practice includes examining skin tissue, were that "the epidermis and superficial papillary dermis were completely cauterized in punctate patterns, and open wounds had developed 60 to 80 micrometers adjacent to the papillary dermis. The cauterization depth increased with increasing on-time, and the histological results for samples with topical moisturizer applied were more consistent than those for samples without topical moisturizer applied."

[0078] The observed ablation area and open papillary dermal lesions provide a conduit for topically applied compounds or mixtures of compounds. Large molecules, non-lipid-soluble topical medications, and other topical agents that are poorly absorbed through intact epidermis may be enhanced by the punctate skin features formed by the systems, devices, and methods disclosed herein. Examples of topical agents and molecules / compounds expected to be enhanced by the punctate skin features include growth factors; antioxidants such as vitamin C and other molecules with similar properties; platelet-rich plasma (PRP); tranexamic acid; and azelaic acid. Various aqueous and non-aqueous lotions and topical medications may be used in various embodiments. Conditions addressed by these enhanced topical medications may include acne, melasma, acne scars, scars, wrinkles, uneven pigmentation, redness, and rosacea.

[0079] The histological lesions involving the epidermis and dermis created by the systems, devices, and methods disclosed herein often resemble those created by low-power fractional CO2 or fractional Er:YAG treatments. Therefore, drug penetration data collected using fractional CO2 or fractional Er:YAG devices is also applicable to RF punctate lesions created by the present devices. Drugs with demonstrated drug penetration with fractional CO2 or fractional Er:YAG, or similar drugs, may also be used for delivery through RF punctate lesions. Examples of drugs and substances whose skin permeability has been reported to be improved by fractional CO2 devices and fractional Er:YAG devices are presented in "Fractional CO2 laser-assisted drug delivery," Lasers in Surgery and Medicine: 42.2 (2010): 113-122, by Haedersdal, Merete et al., and "Lasers as an approach for promoting drug delivery via skin," Expert Opinion on Drug Delivery 11.4 (2014): 599-614, by Lin, Chih-Hung et al., the entire disclosures of which are incorporated herein by reference.

[0080] Examples of drugs and substances suitable for topical use during RF treatment reported in these publications include: nalbuphine and indomethacin; morphine, nalbuphine, and buprenorphine; 5-aminolevulinic acid; methotrexate; lidocaine; dextran; oligonucleotides and plasmid DNA; peptides and vaccines; small interfering RNA and plasmid vectors; TiO2 nanoparticles (100 nm) and Al2O3 microparticles (27 μm); vitamin C and ascorbyl phosphate malate. These include magnesium; 3-O-ethyl ascorbic acid and ascorbic acid-2-glucoside; diclofenac; prednisone; ALA; imiquimod, peptides and dextrans; ovalbumin; ATG and basiliximab; CpG-adjuvanted allergens; methyl ALA; ascorbic acid-2-glucoside; polyethylene glycol (400 Da, 1000 Da, 2050 Da and 3350 Da); small interfering RNA and plasmid DNA; dextran and quantum dots; and more. Examples of drugs and substances that have been reported to have improved skin permeability after physical epidermal modification are provided in Benson, Heather AE, "Transdermal drug delivery: penetration enhancement techniques," Current drug delivery 2.1 (2005): 23-33, and Cross et al., "Physical enhancement of transdermal drug application: is delivery technology keeping up with pharmaceutical development?" Current drug delivery 1.1 (2004): 81-92, the entire disclosures of which are incorporated herein by reference.

[0081] Prior to RF punctate treatment, one or more topical medications may be applied to enhance the consistency of electrical properties when RF punctate energy is applied to the treatment site. Additionally, topical medications may be applied to penetrate the RF punctate lesions created by RF punctate device treatment. In various embodiments, a single topical medication, such as a moisturizer, may be used to enhance one or more electrical or other properties during RF energy delivery. The topical medication may be selected based on enhanced tissue penetration, such as superior penetration of tissue lesions created by the RF-based systems and methods disclosed herein. Any topical medication may be applied prior to treatment, reapplied during treatment, applied after treatment, or a combination thereof.

[0082] Of course, a multi-step treatment may be used, consisting of a first application of the topical agent prior to treatment with the RF punctate device and a second application of the topical agent to the RF punctate lesions formed in the tissue, where the topical agent may remain the same or may be changed to a different topical agent.

[0083] Finally, in some embodiments, an RF punctate device may be used to treat skin that has not had a topical medication applied to it, creating RF punctate lesions in the tissue, followed by application of a topical medication to the RF punctate lesions.

[0084] Conditions addressed by the combination of RF punctate devices and topical medications include acne, melasma, acne scars, scars, wrinkles, uneven pigmentation, redness, and rosacea.

[0085] FIG. 13 is a block diagram showing a control system for impedance diagnosis during RF power delivery and for receiving and transmitting impedance evaluation feedback during treatment of a patient. In this system, AC power is converted to DC voltage by an AD converter. The DC voltage is supplied to an RF power amplifier and then enters a patient isolation component (e.g., a transformer). RF power from the patient isolation component is supplied to the handpiece / electrodes and the electrode array (e.g., see FIGS. 1C, 2A, 4, 5A-5C, etc.) attached to the handpiece (e.g., FIGS. 1C, 2B-2D, etc.), and then delivered to the patient through the needle or non-penetrating needle electrodes (e.g., pins, etc.) of the array.

[0086] The RF power may be delivered in either monopolar or bipolar mode, or both modes may be possible within the same system (e.g., the Potenza® RF Microneedle Puncture System (Jeisys Medical, Inc.) integrates 1 MHz or 2 MHz monopolar and bipolar RF within the same device). The electrodes of the electrode array are also referred to as needles or blunt needles. RF power may be delivered to a patient at a level appropriate for treating a target condition (e.g., skin rejuvenation) or for creating punctate lesions to enhance the penetration of topical medications into the skin. Conditions addressed with topical medications that enhance penetration may include acne, melasma, acne scars, scars, wrinkles, uneven pigmentation, redness, and rosacea. The RF power range for treatment is between about 1 milliwatt and about 10 kilowatts, or between about 100 milliwatts and about 500 watts.

[0087] Although not shown in Figure 13, the DC voltage may optionally enter a DC buck converter, which controllably converts the supplied DC voltage to a desired RF frequency. The regulated DC voltage is then supplied to the RF power amplifier and then to a patient isolation section (e.g., a transformer section), from which RF power is delivered to the patient via the handpiece / electrode array disclosed herein.

[0088] (Treatment) Referring again to Figure 13, a single electrode or a selected subset of individual electrodes (monopolar mode) on the handpiece, or a subset of electrode pairs (bipolar mode) on the handpiece, are energized to provide a therapeutic treatment to an area identified as having the desired therapeutic benefit. To provide the therapeutic treatment, RF power is delivered to the patient from the electrodes present on the handpiece. The control system provides control signals to multiplex the RF power from the array of electrodes present on the handpiece to the same tissue of the patient.

[0089] In various embodiments, the control system multiplexes through single / individual electrodes on the handpiece (monopolar mode) or through a subset of electrode pairs (bipolar mode). For example, RF power is delivered to the patient at a level appropriate for treating a target condition (e.g., skin rejuvenation) or for creating punctate lesions to enhance the penetration of topical medications into the skin. Conditions addressed by topical medications with enhanced penetration may include acne, melasma, acne scars, scars, wrinkles, uneven pigmentation, redness, and rosacea. The RF power range for treatment is between about 1 milliwatt and about 10 kilowatts, or between about 100 milliwatts and about 500 watts.

[0090] Generally speaking, the methods and systems disclosed herein can be used to perform a variety of non-medical treatments, including cosmetic treatments, aesthetic treatments, and combinations thereof. Cosmetic treatment of tissue for skin rejuvenation, creation of punctate lesions to enhance penetration of topical medications into the skin, and other cosmetic treatments disclosed herein can improve the appearance and well-being of individuals suffering from the aforementioned conditions and other conditions disclosed herein. In various embodiments, the present disclosure relates to methods for controlling the delivery of RF energy to one or more tissue targets to alleviate, prevent, reverse, or cosmetically treat one or more of the undesirable conditions disclosed herein through cosmetic treatment.

[0091] Further details of various systems for treating tissue using RF and impedance sensing are disclosed in U.S. Patent Application Publication No. 20200352633 ("NON-INVASIVE, UNIFORM AND NON-UNIFORM RF METHODS AND SYSTEMS RELATED APPLICATIONS"), the entire disclosure of which is incorporated by reference.

[0092] Further details of various systems for treating tissue using RF and impedance detection are disclosed in U.S. Patent Application Publication No. 20190239939 ("METHODS AND APPARATUS FOR CONTROLLED RF TREATMENTS AND RF GENERATOR SYSTEM"), the entire disclosure of which is incorporated by reference. Further details of various systems for treating tissue using RF and impedance detection are disclosed in U.S. Patent Application No. 17 / 308,898 ("Needle-Array Devices and Related Methods"), filed May 5, 2021, the entire disclosure of which is incorporated by reference.

[0093] Disclosed herein are systems and methods for using RF energy to perform RF energy treatments on an individual's skin (e.g., dermis, subcutaneous, etc.) or other target tissues deeper than the tissue surface. In various aspects, the present teachings may provide non-invasive RF-based treatments with or without cooling to achieve one or more of, but not limited to, body sculpting (lipolysis), sebaceous gland treatment, glandular damage / deactivation, skin tightening (reducing laxity), cellulite treatment devices, vaginal laxity treatment or vaginal rejuvenation, urinary incontinence treatment, fecal incontinence treatment, treatment of other genitourinary conditions, and the like.

[0094] It should be understood that, for clarity, the following description describes various aspects of embodiments of the applicant's teachings while omitting some specific details where deemed convenient or appropriate. For example, descriptions of similar or similar components may be omitted for the sake of brevity. Also, well-known ideas and concepts may not be described in detail for the sake of brevity. Those skilled in the art will appreciate that, depending on the embodiment of the applicant's teachings, some of the details specifically described may be included herein merely to provide a thorough understanding of the embodiment, and may not be essential in all implementations. Similarly, it is apparent that changes and modifications may be made to the described embodiments in accordance with common knowledge without departing from the scope of the present disclosure. The following detailed description of the embodiments should in no way be construed as limiting the scope of the applicant's teachings.

[0095] As used herein, the terms "about" and "substantially" refer to variations in numerical quantities that may occur due to, for example, real-world measurement or handling procedures, inadvertent errors in these procedures, variations / defects in the manufacture of electrical elements, electrical losses, etc., as well as variations that would be recognized by one of ordinary skill in the art as acceptable equivalents (unless the variation encompasses known values ​​practiced by the prior art). Generally, the term "about" refers to a tenth of a value or range of values, e.g., ±10%. For example, applying a direct current (DC) voltage of about +3V to an element may refer to a voltage between +2.7VDC and +3.3VDC. Similarly, values ​​that are "substantially the same" may differ by up to 5%. Whether modified by the terms "about" or "substantially the same," quantitative values ​​recited in the claims include equivalents to the recited values, e.g., variations that may occur in the numerical quantities of the values ​​or that would be recognized as equivalents by one of ordinary skill in the art.

[0096] Furthermore, nothing disclosed herein is intended to be publicly available, regardless of whether such disclosure is expressly recited in the claims. While the Patent Office and readers of patents issued based on this application are hereby assisted in interpreting the claims appended to this application or any continuation application or any claims presented during prosecution of this application or any continuation application, any structure recited in a claim shall not be construed or inferred by analogy under 35 U.S.C. 112(f) unless the claim expressly uses the phrase "means for" or "process / process / step for."

[0097] All drawings attached hereto contain one or more ornamental features and figures, and each drawing contains solid lines, any of which may also be incorporated into, correspond to, and provide support for, dotted lines; alternatively, each drawing contains dotted lines, any of which may also be incorporated into, correspond to, and provide support for, the solid lines.

[0098] Use of the terms "comprises," "equips," "contains," "includes," "has," and "having" should generally be understood as open and non-limiting, unless otherwise specified.

[0099] As used herein, the use of the singular includes the plural (and vice versa) unless otherwise specified. Furthermore, the singular forms "a," "an," and "the" include the plural unless the context clearly dictates otherwise. Furthermore, where the term "about" is used before a quantitative value, the present teachings also encompass the specific quantitative value itself unless otherwise specified.

[0100] It should be understood that the order of processes / steps or order for performing certain actions is immaterial so long as the present teachings remain operable. Further, two or more processes / steps or actions may be conducted simultaneously.

[0101] When a range or list of values ​​is provided, each intervening value between the upper and lower limits of that range or list of values ​​is individually contemplated and encompassed within the disclosure as if each value were specifically recited herein. Moreover, smaller ranges between and including the upper and lower limits of a given range are also contemplated and encompassed within the disclosure. The recitation of exemplary values ​​or ranges does not exclude other values ​​or ranges between and including the upper and lower limits of the given range.

[0102] It should be understood that numerous modifications may be made to the embodiments of the present disclosure without departing from the scope of the teachings of the present application. While specific configurations / components are referenced in the foregoing figures and examples, this is for illustrative purposes only and is not intended to limit the present invention. Those skilled in the art will appreciate that various modifications in form and detail of the embodiments of the present disclosure may be made without departing from the scope of the teachings encompassed by the appended claims. [Aspect 1] 1. A method of cosmetic tissue treatment comprising: positioning a treatment applicator having an electrode array with multiple needles against a tissue site so that an area of ​​the electrode array contacts the tissue site, each needle being an electrode in electrical communication with a control system; applying pulses of radio frequency (RF) energy from the electrode array to the site of tissue; measuring the impedance of the electrode array over time; detecting a decrease in the measured impedance with the electrode array in contact with the site of tissue; terminating the application of said pulses of RF energy after a treatment period when a threshold drop in impedance is detected; A method for providing the above. [Aspect 2] The method according to aspect 1, wherein the pulse length is about 1 ms to about 12 ms. Aspect 3 In the method according to the first aspect, the impedance is in the range of about 10 KHz to about 50 KHz. The method is measured at the sampling rate within the range. Aspect 4 The method of embodiment 3, wherein the impedance is measured at a sampling rate of about 30 KHz. Aspect 5 The method of embodiment 1, further comprising: The process of preventing muscle spasms from starting during the treatment period. A method for providing the above. Aspect 6 A method according to aspect 5, wherein the ramp time of the output voltage of the electrode array is within the range of about 100 microseconds to about 5 ms. Aspect 7 2. The method of claim 1, wherein the plurality of electrodes are connected in parallel. Aspect 8 The method of embodiment 1, further comprising: The method comprising the step of altering tissue such that tissue adjacent contact with some of the plurality of electrodes is removed. Aspect 9 The method of embodiment 1, further comprising: The method comprising applying a topical medication to the site on the tissue prior to placing the treatment applicator. Aspect 10 The method of embodiment 9, further comprising: applying a topical agent to the site on the tissue after the treatment period. Aspect 11 The method of embodiment 1, further comprising: applying a topical agent to the site on the tissue after the treatment period. Aspect 12 A method according to aspect 9, wherein the topical agent is a moisturizer. Aspect 13 The method of embodiment 1, wherein a pulse of RF energy travels along the surface of the electrode and is delivered to the site of the tissue to induce a tissue effect. Aspect 14 The method of embodiment 1, wherein one or more annular lesions are formed in the tissue in response to a pulse of radio frequency (RF) energy. Aspect 15 1. A device for treating tissue, comprising: a first treatment applicator head including a plurality of first needles; an applicator body having a first end coupled to the first treatment applicator head; the applicator body having a second end in communication with a radio frequency (RF) power and control system; the first treatment applicator head is connected to the applicator body to electrically connect with the RF power source in communication with the second end; The control system is operable to terminate tissue treatment after a treatment period, the treatment period beginning when a drop in impedance is detected after an initial rise in impedance. Aspect 16 16. The device of claim 15, wherein each needle of the plurality of needles has a blunt tip. Aspect 17 16. The device of embodiment 15, further comprising: a second treatment applicator head including a plurality of second needles; The first end of the applicator body is coupled to the second treatment applicator head, and the second treatment applicator head is electrically connected to the RF power source by being connected to the applicator body. Aspect 18 1. A method of treating tissue, comprising: applying radio frequency (RF) power to tissue from a plurality of electrodes; periodically measuring the impedance of the tissue during the application of RF power; controlling the application of RF power based on the impedance of the tissue to terminate treatment after measuring a decrease in measured impedance; A method for providing the above. Aspect 19 19. The method of claim 18, wherein the decrease in measured impedance is associated with one or more of the plurality of electrodes contacting an untreated region of tissue. Aspect 20 20. The method of claim 19, wherein a first electrical conductivity characteristic of the untreated region of tissue is different from a second electrical conductivity characteristic of the treated region of tissue. Aspect 21 21. The method of embodiment 20, wherein the treated area of ​​tissue is located above the untreated area of ​​tissue. Aspect 22 20. The method of claim 18, wherein RF power is reduced when a decrease in tissue impedance is detected. Aspect 23 20. The method of claim 18, wherein the RF power is applied for a treatment period within a range of about 1 ms to about 12 ms. Aspect 24 20. The method of claim 18, wherein the decrease in measured impedance is within the range of about 10% to about 90% decrease. Aspect 25 20. The method of claim 18, wherein the decrease in measured impedance is within the range of about 20% to about 50%.

Claims

1. 1. A cosmetic tissue treatment device comprising: a treatment applicator having an electrode array with a plurality of needles, each needle being an electrode in electrical communication with a control system; the electrode array is configured to apply pulses of radio frequency (RF) energy to a tissue site; the control system is configured to measure impedance of the electrode array over time; configured to detect an initial increase and decrease in the measured impedance with the electrode array in contact with the site of tissue; terminating the application of the pulses of RF energy after a treatment period when a decrease in impedance equal to or greater than a threshold value is detected after the initial increase in impedance; A cosmetic tissue treatment device wherein the treatment period begins upon detecting a decrease in impedance that meets or exceeds a threshold value after an initial increase in impedance.

2. 10. The cosmetic tissue treatment device of claim 1, wherein the pulse length is between about 1 ms and about 12 ms.

3. 10. The cosmetic tissue treatment device of claim 1, wherein the impedance of the electrode array is measured at a sampling rate within a range of about 10 KHz to about 50 KHz.

4. 4. The cosmetic tissue treatment device of claim 3, wherein the impedance of the electrode array is measured at a sampling rate of about 30 KHz.

5. 10. The cosmetic tissue treatment device according to claim 1, further comprising: A cosmetic tissue treatment device in which muscle contraction does not commence during the treatment period in which RF energy is applied to the electrode array.

6. 6. The cosmetic tissue treatment device of claim 5, wherein the ramp time of the electrode array output voltage is in the range of about 0.1 ms to about 5 ms.

7. 10. The cosmetic tissue treatment device of claim 1, wherein the plurality of needles are connected in parallel.

8. 10. The cosmetic tissue treatment device according to claim 1, further comprising: A cosmetic tissue treatment device that alters tissue such that tissue adjacent contact with some of the needles is removed.

9. 10. The cosmetic tissue treatment device of claim 1, wherein pulses of RF energy travel along the surface of the electrodes and are delivered to the site of the tissue to induce a tissue effect.

10. 10. The cosmetic tissue treatment device of claim 1, wherein one or more annular lesions are formed in tissue in response to a pulse of radio frequency (RF) energy.

11. 1. A device for treating tissue, comprising: a first treatment applicator head including a plurality of first needles; an applicator body having a first end coupled to the first treatment applicator head; the applicator body having a second end in communication with a radio frequency (RF) power and control system; the first treatment applicator head is connected to the applicator body to electrically connect with the RF power source in communication with the second end; The control system has a measurement circuit that measures the impedance of the tissue to which RF energy is applied, and is operable to terminate the treatment in which RF energy is applied to the tissue from the first needle after a treatment period has elapsed, the treatment period starting when the measurement circuit detects a decrease in impedance after an initial increase in impedance.

12. 12. The device of claim 11, wherein each needle of the first plurality of needles has a blunt tip.

13. 12. The apparatus of claim 11 further comprising: a second treatment applicator head including a plurality of second needles; The first end of the applicator body is coupled to the second treatment applicator head, and the second treatment applicator head is electrically connected to the RF power source by being connected to the applicator body.

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