Nerve stimulation clothing
A garment with integrated textile electrodes and a stimulation circuit addresses the challenges of professional administration and electrode placement in tibial nerve stimulation, enabling safe and effective treatment of overactive bladder with enhanced patient mobility.
Patent Information
- Application Number
- JP2023524177
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-11-11
- Filing Date
- 2021-09-30
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2041-09-30
AI Technical Summary
Existing treatments for overactive bladder, such as transcutaneous tibial nerve stimulation, require professional administration and proper electrode placement, limiting patient mobility and ease of use in home environments.
A garment, such as a sock or stocking, with integrated textile electrodes and a stimulation circuit that applies alternating current to stimulate the tibial nerve, allowing for self-administration and precise electrode placement.
Enables safe and effective treatment of overactive bladder and urge urinary incontinence with improved patient mobility and ease of use, as the garment ensures precise nerve stimulation without the need for professional assistance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates generally to wearable electronic devices, and more particularly to methods and devices for transcutaneous nerve stimulation. [Background technology]
[0002] Overactive bladder is a common medical condition characterized by a frequent urge to urinate, often accompanied by urinary incontinence. The incidence of the condition increases with age. A variety of treatments are available, ranging from exercise and behavioral therapy to drugs and invasive medical procedures.
[0003] Some methods of treating overactive bladder use electrical stimulation of the tibial and sacral nerves. For example, transcutaneous tibial nerve stimulation (PTNS) is a type of electroacupuncture that indirectly stimulates the nerves responsible for bladder and pelvic floor function. During PTNS treatment, a needle electrode is inserted into the patient's ankle near the tibial nerve, and an electrical stimulator is connected to apply mild electrical pulses to the electrode. These pulses travel up the tibial nerve to the sacral plexus, which controls bladder function and thus relieves the urge to urinate.
[0004] Devices for noninvasive, transcutaneous electrical stimulation of the tibial nerve are also known in the art. For example, U.S. Patent No. 9,254,382 describes an electroacupuncture device for controlling overactive bladder. The device includes a housing, a circuit for generating electroacupuncture stimulation disposed within the housing, and at least one strap for securing the housing to the ankle. The device also includes a pair of D-shaped electrodes within the bottom exterior surface of the housing. The housing is flat and flexible, and shaped to conform to the shape of a person's ankle. When the device is strapped to the patient's ankle, the electrodes contact the ankle and provide electrical stimulation to the tibial nerve within the ankle. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] U.S. Patent No. 9,254,382 [Patent Document 2] U.S. Patent Application Serial No. 16 / 284,181 Summary of the Invention [Problem to be solved by the invention]
[0006] Embodiments of the present invention described below provide garments with integral textile-based electrodes, as well as methods of making and using such garments. [Means for solving the problem]
[0007] Thus, in accordance with an embodiment of the present invention, there is provided an apparatus for electrical stimulation comprising a garment comprising an elastic knitted fabric shaped and sized to fit snugly over a portion of a human subject's body. The apparatus includes at least one electrode comprising a conductive yarn interwoven with the elastic knitted fabric at a predetermined location for electrical contact with a skin surface of the human subject when the garment is worn on the body. A stimulation circuit is configured to apply an alternating current to the at least one electrode.
[0008] In some embodiments, the garment comprises a sock or stocking shaped and sized to fit over the human subject's foot. Typically, the at least one electrode comprises a first electrode positioned between the heel and toe of the garment and a second electrode positioned over the ankle of the garment. In disclosed embodiments, the stimulation circuit is configured to apply a current at a frequency and amplitude selected to stimulate the tibial nerve in the human subject's foot. In one embodiment, the stimulation circuit is configured to output the current as a bipolar square wave, the amplitude of the square wave being between 10 and 150 mA.
[0009] In some embodiments, the conductive yarn comprises an elastomer having a conductive coating. In one embodiment, the conductive coating is selected from the group of coatings consisting of a metal coating and a graphene coating. Alternatively or additionally, the conductive yarn comprises an elastomer monofilament and a conductive thread crocheted around the elastomer monofilament.
[0010] Additionally or alternatively, the device includes a connector configured to electrically connect the stimulation circuit to the at least one electrode while mechanically connecting the stimulation circuit to the garment. In disclosed embodiments, the device includes a wire extending through the elastic knit fabric from the connector to the at least one electrode.
[0011] Additionally or alternatively, the connector includes a pair of magnetic snaps, in one embodiment, the magnetic snaps include a magnetic stud having a first magnetic polarity and secured to the garment at a first location, and a magnetic socket having a second magnetic polarity opposite the first magnetic polarity and secured to the garment at a second location adjacent the first location.
[0012] Additionally or alternatively, the stimulation circuit includes a housing mechanically connected to the garment by a connector and a power source enclosed within the housing.
[0013] Embodiments of the present invention also provide a garment comprising an elastic knit fabric shaped and sized as a sock or stocking to fit snugly over a human subject's foot, wherein at least one electrode includes a conductive yarn interwoven with the elastic knit fabric at a predetermined location for electrical contact with a skin surface of the human subject when the garment is worn on the foot.
[0014] Additionally, embodiments of the present invention provide a method of electrical stimulation comprising providing a garment comprising an elastic knit fabric having at least one electrode, the elastic knit fabric including conductive yarns interwoven with the elastic knit fabric at predetermined locations to make electrical contact with a skin surface of a human subject when the garment is worn on the body, the elastic knit fabric having a size and shaped to fit snugly over a portion of the body of the human subject, and an alternating current applied to the at least one electrode to stimulate nerves within the body.
[0015] Further, embodiments of the present invention provide a method of producing apparel, the method comprising knitting an elastic fabric to produce a sock or stocking shaped and sized to fit snugly over a human subject's foot. Conductive yarn is knitted into the knit elastic fabric at at least one predetermined location to produce at least one electrode configured to make electrical contact with a skin surface of the human subject when the sock or stocking is worn on the foot. An electrical connection is provided to the at least one electrode within the knit elastic fabric.
[0016] The present invention will be more fully understood from the following detailed description of the embodiments thereof, taken in conjunction with the drawings. [Brief explanation of the drawings]
[0017] [Figure 1] FIG. 1 shows a schematic illustration of an electrical stimulation sock according to an embodiment of the present invention. [Figure 2] 2 is a schematic detail view of a knitted fabric in the sock of FIG. 1 according to an embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0018] As discussed above, electrical stimulation of the tibial nerve is a safe and effective treatment for many cases of overactive bladder and urge urinary incontinence. However, this treatment has not been widely adopted due to the difficulty of administration in the home environment. Transcutaneous administration requires a healthcare professional to insert needle electrodes through the skin, while percutaneous administration typically requires a healthcare professional to adhere patch electrodes to the skin in the appropriate location. Both methods limit patient mobility during treatment. Proper electrode placement can be challenging, especially for elderly patients.
[0019] The embodiments of the invention described herein address these problems by providing a garment, such as a sock or stocking, with one or more integrated textile electrodes. The electrode locations are selected so that, when the patient is wearing the garment, the electrodes contact the skin at precise locations near the nerves to be stimulated. The patient simply puts on the garment to properly position the electrodes. Stimulation circuitry, built into or easily attached to the garment, applies alternating current to the electrodes at a frequency and amplitude selected to stimulate the nerves.
[0020] In disclosed embodiments, the garment comprises an elastic knitted fabric, the knitted fabric shaped and sized to fit snugly over an appropriate portion of a human subject's body (e.g., on the foot for tibial nerve stimulation purposes). One or more electrodes comprise conductive yarn interwoven with the elastic knitted fabric at locations where the electrodes will contact the subject's skin surface when the garment is worn on the body. In the context of this specification and claims, the term "interwoven" means that at least some of the loops of the knitted conductive yarn are interwoven with loops of yarn within the knitted fabric of the garment. (Not all of the loops of the conductive yarn are necessarily interwoven with yarns of the knitted fabric; rather, loops of the conductive yarn within the electrode may be interwoven with each other.) In disclosed embodiments, the conductive yarn comprises an elastomer having a conductive coating. This type of conductive yarn can be knitted together with the yarns of the garment using conventional knitting machines and processes similar to those used to create jacquard weave patterns using different colored yarns to create decorative patterns on the garment.
[0021] The exemplary embodiment shown in the figures and described in detail below relates to a sock having two electrodes for tibial nerve stimulation, particularly for use in treating overactive bladder syndrome. Alternatively, the principles of the present invention can be applied to the manufacture of garments having one, two, three, or more interwoven electrodes, including socks or stockings, as well as garments that fit over other parts of the body, such as the hands, arms, head, neck, and torso. All such alternative applications and implementations are considered within the scope of the present invention.
[0022] Reference is now made to Figures 1 and 2, which schematically illustrate an apparatus 20 for electrical stimulation in accordance with an embodiment of the present invention. As shown in Figure 1, apparatus 20 comprises an electrical stimulation sock 22, and Figure 2 illustrates a knitted fabric 24 within sock 22 with interwoven electrodes 26 and 28. Sock 22 is shown fitted over the foot of a human subject. (It is contemplated that stockings could be produced and fitted in a similar manner.)
[0023] In the illustrated embodiment, electrode 26 is positioned between the heel and toe of sock 22, and electrode 28 is positioned at the ankle of the sock. To substantially stimulate the tibial nerve, electrode 26 is typically between 5 and 10 cm forward from the heel, while electrode 28 is between 7 and 12.5 cm above the heel, depending on the size of the foot and the corresponding size of the sock. Alternatively, other electrode placements can be used.
[0024] The electronic module 30, which includes a stimulation circuit 42, applies electrical current between the electrodes 26 and 28 at a frequency and amplitude selected to stimulate the tibial nerve. For this purpose, the current typically has the form of a bipolar wave with a frequency in the range of 10-120 Hz and a current amplitude adjustable between 1 and 150 mA (although the current is generally in the range of 10-150 mA). More specifically, a square wave with a frequency of approximately 20 Hz and an amplitude in the range of 50-60 mA is considered therapeutically effective. Alternatively, other waveforms with different frequency and amplitude characteristics can be applied. The stimulation circuit 42 includes components known in the art for this purpose or for electrical waveform generation.
[0025] The stimulation circuitry 42 is enclosed in a housing 46 along with a power source, such as one or more batteries 44. The housing 46 typically comprises a suitable plastic enclosure with a removable cover 48 to allow replacement of the battery 44. Alternatively or additionally, the battery 44 may be rechargeable and permanently installed in the housing 46. In this latter case, the housing 46 contains a suitable charging plug and / or coil (not shown) for inductive charging of the battery, as is known in the art.
[0026] In the illustrated embodiment, electronic module 30 is mechanically and electrically connected to sock 22 by a connector consisting of two pairs of magnetic snaps, including magnetic studs 32 and 38 and magnetic sockets 34 and 36. Stimulation circuitry 42 is electrically connected to electrodes 26 and 28 through these electrically conductive snaps. Specifically, in this example, electrode 28 is connected directly to socket 36, while a wire 40 extending through fabric 24 connects stud 32 to electrode 26. (Wire 40 may be elastic or inelastic.) Typically, studs 32 and 38 have one magnetic polarity, while sockets 34 and 36 have the opposite polarity to the studs, ensuring that module 30 can only be connected to sock 22 in the correct orientation. (If reversed, the two studs and two sockets will repel each other.) This connection allows for easy and reliable attachment and detachment of electronic module 30 by the patient, allows the same electronic module to be used in multiple different socks, and also allows socks to be washed without damaging the stimulation circuitry.
[0027] Alternatively, the electronic module 30 may be permanently secured to the sock 22 with suitable mechanical encapsulation to protect the stimulation circuitry 42 when the sock is washed.
[0028] As shown in the inset of FIG. 2, the fabric 24 of the sock 22 comprises knitted strands of yarn 50, such as a suitable cotton, wool, or synthetic yarn. In the illustrated example, the progression of the knitted loops of yarn 50 is sandwiched between strands of elastic yarn composed of an elastomer 52, such as Lycra®, covered with a synthetic thread 54, such as a nylon thread. The elasticity of the fabric 24 allows the sock 22 to fit snugly around the subject's foot. ("Snug" in this context means that the garment fits tightly enough around the part of the subject's body so that the fabric expands and conforms to the shape of the body part when the subject wears the garment.)
[0029] Within the area of the electrodes 26, conductive threads 56 are interwoven with the loops of thread 50. The threads 56 typically comprise an elastomer such as nylon or another suitable polymer with a conductive coating. This coating may comprise, for example, a metal such as silver or gold, or a carbon-based conductor such as graphene. Suitable threads of this type include, for example, X-STATIC fiber threads produced by Noble Biomaterials (Scranton, Pennsylvania) and metal-coated threads available from Swicofil AG (Emmenbrücke, Switzerland). The threads 56 are electrically connected to the electronic module 30 by wires 40 extending through the fabric 24.
[0030] Additionally or alternatively, the progression of the knitted loops of yarn 56 is sandwiched between strands of elastic conductive yarn made of elastomeric monofilaments 60 having conductive threads 58 crocheted around the monofilaments. Monofilaments 60 may comprise, for example, elastic polyurethane fibers such as Lycra®, or other polymer or natural rubber threads. Conductive threads 58 may comprise, for example, silver-coated nylon threads, such as silver threads available from Statex (Bremen, Germany). Alternatively, threads 58 may comprise metal monofilaments or nanocarbon-impregnated synthetic fibers, such as threads and yarns produced by DexMat Inc. (Houston, Texas). Yarns 56 can be similarly made from these types of materials. Further details of conductive yarns and methods of producing such yarns are described in U.S. Patent Application No. 16 / 284,181, filed February 25, 2019, which is assigned to the assignee of the present patent application and whose disclosure is incorporated herein by reference.
[0031] While the lower inset of Figure 2 specifically refers to electrode 26, electrode 28 may be interwoven with fabric 24 in a similar manner. Electrodes 26 and 28 may be round or rectangular, as shown in the present illustration, or they may have any other suitable shape that can be produced by interwoven fabric. As noted above, this type of interwoven fabric is commonly used in creating decorative patterns in knitted fabrics, and conductive yarns, such as yarn 56, can be interwoven with fabric 24 to define electrodes using machines and methods known in the art. Magnetic studs 32 and sockets 36, as well as other suitable conductive connectors, are also widely available in the clothing industry (although they are conventionally used only as mechanical connectors, not electrical, as in embodiments of the present invention).
[0032] It will be appreciated that the above-described embodiments are enumerated by way of example and that the present invention is not limited to what has been particularly shown and described above. Rather, the scope of the present invention includes both combinations and sub-combinations of the various features described above, as well as variations and modifications thereof which would occur to one skilled in the art upon reading the foregoing description and which are not disclosed in the prior art.
Claims
1. 1. A device for electrical stimulation, comprising: a garment comprising an elastic knitted fabric shaped and sized to fit snugly over a portion of a human subject's body; at least one electrode comprising a conductive yarn interwoven with the elastic knit fabric at a predetermined location for electrical contact with a skin surface of the human subject when the garment is worn on the body; a stimulation circuit configured to apply an alternating current to the at least one electrode; Equipped with the garment comprising a sock or stocking shaped and sized to fit over the human subject's foot; The device, wherein the at least one electrode comprises a first electrode positioned between the heel and toe of the garment and a second electrode positioned on the ankle of the garment.
2. 10. The device of claim 1, wherein the stimulation circuitry is configured to apply the alternating current at a frequency and amplitude selected to stimulate the tibial nerve in the leg of the human subject.
3. 3. The device of claim 2, wherein the stimulation circuit is configured to output the current as a bipolar square wave, the amplitude of the square wave being between 10 and 150 mA.
4. 4. The device of claim 1, wherein the conductive yarn comprises an elastomer having a conductive coating.
5. 5. The device of claim 4, wherein the conductive coating is selected from the group of coatings consisting of metal coatings and graphene coatings.
6. 5. The device of claim 4, wherein the conductive yarn comprises an elastomeric monofilament and a conductive thread crocheted around the elastomeric monofilament.
7. 4. The device of claim 1, further comprising a connector configured to mechanically connect the stimulation circuit to the garment while electrically connecting the stimulation circuit to the at least one electrode.
8. 8. The device of claim 7, further comprising a wire extending through the elastic knit fabric from the connector to the at least one electrode.
9. 8. The device of claim 7, wherein the connector comprises a pair of magnetic snaps.
10. 10. The device of claim 9, wherein the magnetic snap comprises a magnetic stud having a first magnetic polarity and secured to the garment at a first location, and a magnetic socket having a second magnetic polarity opposite the first magnetic polarity and secured to the garment at a second location adjacent the first location.
11. 8. The device of claim 7, wherein the stimulation circuit comprises a housing mechanically connected to the garment by the connector and a power source enclosed within the housing.
12. A garment, an elastic knitted fabric shaped and sized as a sock or stocking to fit snugly over the foot of a human subject; at least one electrode comprising conductive yarn interwoven with the elastic knit fabric at a predetermined location for electrical contact with a skin surface of the human subject when the garment is worn on the foot; Equipped with The at least one electrode comprises a first electrode positioned between the heel and toe of the sock or stocking and a second electrode positioned on the ankle of the sock or stocking.
13. 13. The garment of claim 12, further comprising a connector configured to mechanically connect the electronic module to the garment while electrically connecting the electronic module to the at least one electrode.
14. 14. The garment of claim 13, wherein the connector comprises a pair of magnetic snaps.
Citation Information
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