System and method for peripheral nerve stimulation for treating tremor

A circumferential band with strategically positioned electrodes and a motion sensor delivers targeted electrical stimulation to specific nerves, addressing the challenges of varying wrist sizes and tremor variability, achieving effective tremor reduction.

JP2025120208APending Publication Date: 2025-08-15CALA HEALTH INC
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Patent Information

Application Number
JP2025090699
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2015-05-05
Filing Date
2025-05-30
Publication Date
2025-08-15

AI Technical Summary

Technical Problem

Existing devices for treating tremor through peripheral nerve stimulation face challenges in accommodating varying wrist sizes, nerve locations, and tremor variability, leading to discomfort and inefficiency.

Method used

A system comprising a circumferential band with strategically positioned electrodes, a pulse generator, and a motion sensor to deliver targeted electrical stimulation to specific nerves, adjusting based on tremor characteristics and patient physiology.

Benefits of technology

The system effectively reduces tremor by precisely stimulating target nerves, providing customizable and responsive therapy across varying wrist sizes and tremor patterns, enhancing patient comfort and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a system and a method for treating a patient suffering from tremor.SOLUTION: A system for treating a patient suffering from tremor includes: a pulse generator; and a circumferential band that is applied to be fixed to the patient's arm or wrist, that is, a band that supports first and second electrodes for electrically communicating with the pulse generator.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Application No. 62 / 006,565, filed June 2, 2014; U.S. Provisional Application No. 62 / 006,555, filed June 2, 2014; U.S. Provisional Application No. 62 / 083,424, filed November 24, 2014; and U.S. Provisional Application No. 62 / 157,116, filed May 5, 2015, each of which is hereby incorporated by reference.

[0002] Citation by reference All publications and patent applications mentioned in this specification are herein incorporated by reference in their entirety to the same extent as if each individual publication or patent application was specifically and individually indicated to be incorporated by reference.

[0003] Technical Field Embodiments of the present invention relate generally to systems, devices, and methods for the treatment of tremor, and more particularly to systems, devices, and methods for the treatment of tremor through peripheral nerve stimulation. [Background technology]

[0004] Hand tremor is one of the most common movement disorders, affecting an estimated 10 million people in the United States, particularly in a context of an increasingly aging population. Prevalence increases with age, from 5-10% of people over 65 to more than 20% of people over 95. Essential tremor is characterized by a 4-12 Hz rocking movement affecting the distal extremities, such as the hands. Unlike Parkinson's tremor, which appears stationary, essential tremor affects postural and motor activity, meaning it is performed by holding the limb against gravity or during purposeful movement, respectively. Tremor is also a significant problem for patients suffering from other conditions, such as orthostatic tremor, multiple sclerosis, and Parkinson's disease. Treatment options for these conditions are limited, have undesirable side effects, and carry high risks relative to the potential benefits, so alternative therapies are available. Some conditions, such as tremor, can be treated via several modalities of transcutaneous peripheral nerve stimulation.

[0005] Designing a device to achieve such treatment is challenging. One challenge in designing a product for patients suffering from tremor is creating a device that can be easily positioned and configured for individuals with poor hand stability. People have wide variations in wrist diameter, nerve location, nerve depolarization characteristics, and skin condition, which makes it difficult to specify a device that will comfortably, safely, and reliably stimulate target peripheral nerves in a wide range of people. For example, the median nerve at the wrist, the ulnar nerve, and radiusIn a wrist-worn device targeting nerves, the circumference of the band for adult people would have to vary from 13.5-19.8 cm to accommodate the 5th percentile female to the 95th percentile male. See Henry Dreyfus Associates, "Male and Female Measurements," Wiley, 2001. In addition to size differences, there are variations in nerve location, depth, and branching. Thus, a system and method that can reliably stimulate one or more nerves in wrists across a wide range of wrist sizes would be advantageous in treating hand tremors.

[0006] A second challenge in designing such a device is the variability of tremors among different people. Even within the same person, tremors can occur at variable times throughout the day and are dependent on numerous factors, including, but not limited to, the patient's stress level, fatigue, and diet. Thus, an individually customized, responsive therapy that can treat tremors as they occur or are about to occur would provide a more efficient and power-efficient device. Summary of the Invention [Problem to be solved by the invention]

[0007] The present invention is directed to solving the problems of the background art. [Means for solving the problem]

[0008] The present invention relates generally to systems, devices, and methods for treating tremors, and more particularly to systems, devices, and methods for treating tremors through peripheral nerve stimulation. It should be understood that some of the features described in connection with one embodiment may be combined with other embodiments.

[0009] In some embodiments, a system for treating a patient suffering from tremor is provided, comprising a pulse generator and a circumferential band adapted to be secured to the patient's arm or wrist, the band carrying first and second electrodes in electrical communication with the pulse generator, the first and second electrodes positioned at the patient's midline, radius and the band is spaced apart to deliver electrical stimuli from the pulse generator to the patient to preferentially excite a first nerve selected from the iliac or ulnar nerve, and the first and second electrodes are positioned and configured such that, in a transverse plane of the arm or wrist, there is an angle of 90 to 180 degrees between a line connecting the first nerve and the first electrode and a line connecting the first nerve and the second electrode.

[0010] In some embodiments, the band carries a third electrode in electrical communication with the pulse generator, the first and third electrodes being positioned at the patient's midline, radius the band is spaced apart to deliver electrical stimulation from the pulse generator to the patient to preferentially excite a second nerve selected from the ulnar or ventricular nerve, and the first and third electrodes are positioned and configured such that, in a transverse plane of the arm or wrist, there is an angle of 90 to 180 degrees between a line connecting the second nerve to the first electrode and a line connecting the second nerve to the third electrode, and the first nerve and the second nerve are different nerves.

[0011] In some embodiments, when the circumferential band is secured around the patient's arm or wrist, the first electrode is located on the dorsal side of the patient's arm or wrist, the second electrode is located on the ventral side of the patient's arm or wrist, and the third electrode is located on the patient's arm or wrist between the first and second electrodes.

[0012] In some embodiments, the electrodes each have a center, and the electrode centers are spaced apart by about 5 mm to one-quarter of the circumference of the wrist or arm.

[0013] In some embodiments, the band comprises flexible circuitry and is fastened to the housing via a riveted connector that also provides electrical communication between the flexible circuitry of the band and the pulse generator.

[0014] In some embodiments, the housing comprises a distal end configured to be oriented toward the patient's hand and a proximal end configured to be oriented away from the patient's hand, and the band, the first electrode, and the second electrode are closer to the distal end of the housing than to the proximal end of the housing.

[0015] In some embodiments, the pulse generator is the single pulse generator and the system further comprises a switch matrix configured to switch the pulse generator between at least one pair of electrodes.

[0016] In some embodiments, the switch matrix comprises a single high voltage source and ground.

[0017] In some embodiments, each electrode in the switch matrix is associated with its own set of protection circuitry.

[0018] In some embodiments, the device further comprises a controller configured to communicate an alternating current stimulation pattern from the pulse generator to the electrodes.

[0019] In some embodiments, the stimulation pattern comprises: radius a first pulse train to a first nerve selected from the ulnar nerve, or the midline of the patient; radiusor a second pulse train delivered to a different nerve selected from the ulnar nerve, wherein the first pulse train and the second pulse train are offset by approximately one-half of the tremor period.

[0020] In some embodiments, the stimulation pattern comprises the application of multiple bursts of electrical stimulation, each burst comprising a stimulation frequency between about 50 Hz and 2,000 Hz, a pulse width between about 50 microseconds and 1 millisecond, and a pulse shape selected from the group consisting of monophasic rectangular, biphasic asymmetric rectangular, or biphasic symmetric rectangular.

[0021] In some embodiments, the stimulation pattern comprises the application of multiple bursts of electrical stimulation, each burst having a duration of about one-half a period of the tremor.

[0022] In some embodiments, the system further comprises a motion sensor configured to measure motion of the patient's arm or wrist.

[0023] In some embodiments, the motion sensor comprises a three-axis gyroscope or an accelerometer.

[0024] In some embodiments, the system further comprises a controller in communication with the pulse generator and the motion sensor, the controller being programmed to determine one or more characteristics of the tremor based on signals generated by the motion sensor.

[0025] In some embodiments, the one or more characteristics of the tremor are selected from the group including the tremor frequency, the tremor amplitude, and the tremor phase.

[0026] In some embodiments, the controller is further programmed to adjust one or more parameters of the electrical stimulation based on the determined characteristics of the tremor.

[0027] In some embodiments, the first electrode, second electrode, and third electrode are provided on a disposable, replaceable flexible substrate having one or more electrical connectors for electrical communication with the pulse generator.

[0028] In some embodiments, each electrode further comprises a pull tab to aid in tying and detachment.

[0029] In some embodiments, the housing and / or band comprises a plurality of electrical snaps for removably receiving the first electrode, second electrode, and third electrode.

[0030] In some embodiments, the first electrode, second electrode, and third electrode are provided on a thin liner having spaces corresponding to the locations of the electrical snaps on the housing and / or band.

[0031] In some embodiments, the system further comprises an adhesive disposed on the thin liner around the electrode.

[0032] In some embodiments, the system further comprises a cradle that securely supports the housing and the band so that the first electrode, second electrode, and third electrode may be attached to the housing and / or band.

[0033] In some embodiments, the cradle comprises a cavity for securely receiving the housing such that the base of the housing is exposed.

[0034] In some embodiments, the first electrode, second electrode, and third electrode are recessed into the housing or band such that the electrodes extend a predetermined distance from the housing or band.

[0035] In some embodiments, the first and second electrodes are disposable and replaceable.

[0036] In some embodiments, the band comprises moldable indentations configured to surround the electrodes and protect them from dehydration.

[0037] In some embodiments, the first electrode and the second electrode are coated with an electrically conductive hydrogel.

[0038] In some embodiments, the first electrode and the second electrode are connected to a foam backing layer.

[0039] In some embodiments, the foam backing layer comprises a serpentine portion between the electrodes.

[0040] In some embodiments, the housing includes one or more depressible user input buttons, each button located on a side of the housing, and an enlarged bearing surface on the opposite side of the housing from each button.

[0041] In some embodiments, the housing comprises a skin-contacting side having a curved surface that follows the curvature of the patient's arm or wrist.

[0042] In some embodiments, the system further comprises a rechargeable battery and an inductive coil configured to receive power from an external source to inductively charge the battery, the rechargeable battery and the inductive coil may be enclosed in the housing.

[0043] In some embodiments, the electrodes have a diameter or width between about 5 mm and one-quarter of the circumference of the arm or wrist.

[0044] In some embodiments, the system includes only three electrodes. In other embodiments, the system includes only two electrodes.

[0045] In some embodiments, the polarity of the electrodes connected to the stimulator is switchable.

[0046] In some embodiments, a method of treating a patient suffering from tremor is provided, comprising providing a band comprising a first electrode and a second electrode around the patient's arm or wrist in a configuration such that, in a transverse plane of the arm or wrist, there is an angle of 90 degrees to 180 degrees between a line extending between a first nerve and the first electrode and a line extending between the first nerve and the second electrode, and the first nerve is positioned between the patient's midline and the second electrode. radius or the ulnar nerve, the first and second electrodes being separated by a predetermined distance; and delivering a first electrical stimulus from the electrodes to excite the first nerve to reduce the patient's tremor.

[0047] In some embodiments, the band comprises a third electrode spaced a predetermined distance from the first and second electrodes, and an angle of 90 to 180 degrees exists between a line extending between a second nerve and the first electrode and a line extending between the second nerve and the third electrode, and the second nerve is located between the patient's midline and radius , or the ulnar nerve.

[0048] In some embodiments, the method further comprises delivering a second electrical stimulus from the first electrode and the third electrode to excite the second nerve.

[0049] In some embodiments, the first nerve is the median nerve and the second nerve is the radius It's the nerves.

[0050] In some embodiments, the band is operatively connected to a housing enclosing a motion sensor, and the method further includes measuring one or more characteristics of the tremor with the motion sensor while the patient performs a tremor-inducing task.

[0051] In some embodiments, the tremor-inducing task is a commanded task or motor activity.

[0052] In some embodiments, the instructed task is posture maintenance and the motor activity is drawing or writing.

[0053] In some embodiments, the tremor-inducing task is a task that the patient performs unsupervised as part of normal daily activities.

[0054] In some embodiments, the measured characteristics of the tremor include a frequency spectrum of the tremor.

[0055] In some embodiments, the method further includes determining a tremor frequency by determining a center frequency peak within a range of 4 to 12 Hz in the frequency spectrum of the tremor.

[0056] In some embodiments, the measured characteristics of the tremor include amplitude of the tremor.

[0057] In some embodiments, the method further includes temporally offsetting the first electrical stimulus from the second electrical stimulus by a period that is based on a period of the tremor.

[0058] In some embodiments, the duration is a function of the period of the tremor divided by the number of nerves stimulated.

[0059] In some embodiments, the number of nerves stimulated is two.

[0060] In some embodiments, the first electrode is in electrical communication with a first contact of a stimulator, the second electrode is in electrical communication with a second contact of the stimulator, and the stimulator is configured to generate an electrical pulse between the first electrode and the second electrode, the electrical pulse having a polarity.

[0061] In some embodiments, the method further includes switching the first contact and the second contact of the stimulator, wherein the first electrode is in electrical communication with the second contact and the second electrode is in electrical communication with the first contact to change the polarity of the electrical pulses such that the first electrical stimulus is biphasic.

[0062] In some embodiments, the method further includes measuring the patient's motion; determining an energy, amplitude, frequency, and pattern of the measured motion; and separating non-tremor motion from tremor motion based in part on the determined energy, amplitude, frequency, and pattern of the measured motion.

[0063] In some embodiments, the method further comprises determining a stimulation sensation threshold and a muscle contraction or discomfort threshold.

[0064] In some embodiments, the method further comprises increasing the amplitude of the first electrical stimulus from the stimulation sensation threshold to a muscle contraction or discomfort threshold.

[0065] In some embodiments, increasing the amplitude of the first electrical stimulus comprises increasing the amplitude linearly or exponentially.

[0066] In some embodiments, increasing the amplitude of the first electrical stimulus comprises increasing the amplitude in a series of progressively larger peaks separated by decreases in amplitude.

[0067] In some embodiments, increasing the amplitude of the first electrical stimulus comprises increasing the amplitude to a value greater than the muscle contraction or discomfort threshold, and thereafter decreasing the amplitude below the muscle contraction or discomfort threshold.

[0068] In some embodiments, increasing the amplitude of the first electrical stimulus comprises increasing the amplitude in a series of stepped increments, each increment in amplitude being held for a predetermined duration.

[0069] In some embodiments, each step increment in amplitude is made by a decrease in amplitude that is smaller in magnitude than an increase in each step increment.

[0070] In some embodiments, the first electrical stimulus and the second electrical stimulus are delivered asynchronously to the phase of the tremor.

[0071] In some embodiments, the method further includes determining the tremor frequency and phase by analyzing signals from a motion sensor worn by the patient selected from the group including an accelerometer, a gyroscope, a magnetometer, and a bending sensor.

[0072] In some embodiments, using a motion sensor to measure the tremor characteristics during a tremor-inducing task and using these tremor characteristics to determine parameters of the stimulation waveform occurs in real time.

[0073] In some embodiments, the first electrical stimulus and / or the second electrical stimulus comprises a stochastic resonance electrical stimulation pattern.

[0074] In some embodiments, the method further comprises determining a level of electrical stimulation above a sensory threshold and below a muscle contraction threshold and a pain tolerance threshold of the patient.

[0075] In some embodiments, the positioning of the band is confirmed by paresthesia in the patient's hand.

[0076] In some embodiments, the positioning of the band is based in part on a comparison of the shape of the housing to one or more anatomical features.

[0077] In some embodiments, the first electrical stimulus has a duration of between about 20 and 60 minutes.

[0078] In some embodiments, the method further includes measuring motion of the patient's arm or wrist during a specific task and determining characteristics of the tremor from the measured motion.

[0079] In some embodiments, the specific task is a posture, a movement, or a deliberate movement.

[0080] In some embodiments, the characteristics of the tremor include a tremor frequency, and the method further includes alternating timing of a burst pattern of the first electrical stimulus based on the tremor frequency.

[0081] In some embodiments, a method of treating a patient suffering from tremor is provided, comprising the steps of determining a circumference of a patient's wrist, providing a band and a housing having predetermined circumferential spacing for a first electrode, a second electrode, and a third electrode, the predetermined circumferential spacing being based on the determined circumference of the patient's wrist, the housing enclosing a pulse generator configured to be in electrical communication with the first electrode, the second electrode, and the third electrode, the band and housing being arranged such that the first electrode is positioned approximately along the midline of the dorsal side of the arm or wrist and the second electrode is positioned approximately along the anterior side of the arm or wrist. The method may include the steps of: providing a first electrical stimulus between the first and second electrodes and stimulating a second nerve by transmitting a second electrical stimulus between the second and third electrodes; and providing a second electrical stimulus between the first and second electrodes and stimulating a second nerve by transmitting a second electrical stimulus between the second and third electrodes.

[0082] In some embodiments, a method of treating a patient suffering from tremor is provided, the method including the steps of determining a circumference of a patient's wrist, selecting a band and a housing having predetermined circumferential spacing for first, second, and third electrodes, the predetermined circumferential spacing being based on the determined circumference of the patient's wrist, the housing enclosing a pulse generator configured to be in electrical communication with the first, second, and third electrodes, the first electrode positioned approximately along the midline of the dorsal side of the arm or wrist, and the second electrode positioned approximately along the midline of the dorsal side of the arm or wrist. The method may include the steps of: placing the band and housing on the wrist so that the third electrode is positioned approximately along the ventral midline and between the first electrode and the second electrode, the first electrode and the second electrode forming a first electrode pair and the first electrode and the third electrode forming a second electrode pair; stimulating a first nerve by transmitting a first electrical stimulus between the first electrode pair; and stimulating a second nerve by transmitting a second electrical stimulus between the second electrode pair.

[0083] In some embodiments, more than one electrode may be connected to a given stimulator lead at the same time.

[0084] In some embodiments, a device is provided that may include an adjustable array of electrodes configured to be adjustable to target one or more nerves of a subject, a skin interface connected to the adjustable array of electrodes, an adjustable band connected to the adjustable array of electrodes, and an electronics box connected to the band.

[0085] In some embodiments, the electrodes are linear arrays.

[0086] In some embodiments, the electrodes encircle the subject's limb.

[0087] In some embodiments, the limb is the wrist.

[0088] In some embodiments, the electrode on the dorsal side of the limb is a common electrode.

[0089] In some embodiments, the electrode on the ventral side of the limb is the signal electrode.

[0090] In some embodiments, the nerves are ulnar, median, and radius or a combination thereof.

[0091] In some embodiments, the electrodes are configured to switch current between electrodes in the array of electrodes.

[0092] In some embodiments, at least two electrodes in the array of electrodes are the same size.

[0093] In some embodiments, at least two electrodes in the array of electrodes are different sizes.

[0094] In some embodiments, the array of electrodes configured for the dorsal side of the limb is a different size than the electrodes in the array configured for the ventral side of the limb.

[0095] In some embodiments, the electrodes in the array of electrodes are configured to receive a maximum amount of electrical current.

[0096] In some embodiments, the impedance value between two or more electrodes in the array of electrodes is between 20 nF and 120 nF.

[0097] In some embodiments, the impedance value between two or more electrodes in the array of electrodes is between 5 nF and 300 nF.

[0098] In some embodiments, the array of electrodes comprises a material selected from the group including Ag / AgCl, Ag, Au, stainless steel, and conductive rubber.

[0099] In some embodiments, the skin interface comprises a material selected from the group including a hydrogel, a conductive fluid, a conductive gel, a conductive lotion, a fabric, or some combination thereof.

[0100] In some embodiments, the skin interface comprises a hydrogel.

[0101] In some embodiments, the hydrogel has an impedance value that prevents leakage of electrical current between the electrodes.

[0102] In some embodiments, the impedance values of two or more electrodes depend on the spacing of the electrodes.

[0103] In some embodiments, the skin interface layer has a volume resistivity ranging from greater than 1000 ohm-cm to 100 kohm-cm.

[0104] In some embodiments, the device has some current leakage between the electrodes in the array of electrodes and the skin interface.

[0105] In some embodiments, the leakage current is less than 50%.

[0106] In some embodiments, the leakage current is less than 30%.

[0107] In some embodiments, the leakage current is less than 10%.

[0108] In some embodiments, a method is provided for attaching a neuromodulation device to a subject suffering from tremor. The method may include contacting a limb of the subject with a device having an array of adjustable electrodes configured to be tuned to one or more nerves of the subject, determining a location of a neural response, and attaching the device to the subject based on the location of the neural response.

[0109] In some embodiments, the neurological response is a neurological abnormality.

[0110] In some embodiments, the method of determining the neural response comprises stimulating electrodes in the array of electrodes.

[0111] In some embodiments, the location of a neural response is a direct method of neural activation.

[0112] In some embodiments, the method of determining a neural response comprises contacting different portions of the limb with a feedback device.

[0113] In some embodiments, the limb includes the different parts including the wrist and fingers.

[0114] In some embodiments, the feedback device comprises a measurement electrode.

[0115] In some embodiments, activation of the electrodes indicates which nerves are excited.

[0116] In some embodiments, the method of determining a neural response comprises identifying positional movements of the limb.

[0117] In some embodiments, the attaching step includes the step of providing the device to the limb so as to activate nerves in the limb with the device.

[0118] In some embodiments, the attaching step includes selecting electrodes for activation that are necessary for the activation. In some embodiments, parameters may be stored in memory and may be referenced by the microcontroller in the device during treatment.

[0119] In some embodiments, the activating step comprises peripheral nerve stimulation.

[0120] In some embodiments, the activating step treats tremor in the subject.

[0121] Many of the described embodiments include two or three electrodes, but other embodiments may have additional electrodes, particularly if additional nerves are to be targeted. [Brief explanation of the drawings]

[0122] [Figure 1A] ~ [Figure 1E] 1A-1E illustrate various views of embodiments of devices and systems that provide peripheral nerve stimulation and target individual nerves to reduce tremor. FIG. 1E shows an overview of the device housing with various components. [Figure 2A] and [Figure 2B] Figure 2A shows a graph showing a reduction in tremor for a patient with customized stimulation from an embodiment of the array concept. Figure 2B shows an improvement in the spiral drawn by the patient before (on the left) and after (on the right) stimulation. [Figure 3A] ~ [Figure 3C]3A-3C show various embodiments of electrodes at the wrist, including a common electrode at the back of the wrist to reduce the number of electrodes needed to stimulate multiple nerves, and electrodes placed around the wrist to selectively stimulate nerves targeted for excitation. [Figure 4A] and [Figure 4B] Figures 4A and 4B show how the band width can vary in some embodiments, depending heavily on how the electrodes are arranged. Figure 4A shows that a linear arrangement increases the size of the wristband required. Figure 4B shows that the band width decreases when the electrodes are arranged around the circumference of the common electrode. [Figure 5A] ~ [Figure 5C] 5A-5C show various embodiments of different fixed spacing between electrode pads to successfully target a given nerve in varying anatomy. [Figure 6] FIG. 6 shows a diagram illustrating how the maximum size of an electrode can be calculated in some embodiments. [Figure 7A] and [Figure 7B] 7A and 7B show how the electrical connector can be moved out of the band and into the box to simplify the band. [Figure 8A] and [Figure 8B] 8A and 8B show an embodiment of conventional median nerve excitation with electrodes placed longitudinally along the nerve (FIG. 8B) versus excitation with an array of electrodes placed circumferentially around the wrist (FIG. 8A). [Figure 9] Figure 9 shows an embodiment of a flexible circuit stimulation array. The substrate is flexible and can be fitted to fit around the wrist. [Figure 10] FIG. 10 shows an embodiment of a flexible circuit fabricated with similar inter-element spacing but smaller rectangular pads compared to FIG. 9 to reduce the effective area of stimulation and increase the sensitivity of the array to target specific nerves. [Figure 11] FIG. 11 shows an embodiment of a flexible circuit fabricated with a circular electrode array. [Figure 12] FIG. 12 shows an embodiment of a switching circuit that allows a single stimulator to address each electrode individually. [Figure 13] FIG. 13 shows an embodiment of a unidirectional conductive microarray of conductive elements in an electrically insulating carrier. [Figure 14A] ~ [Figure 14D] 14A-14D show the effect on current density when the electrode is peeled from the skin for conventional electrodes and arrays. [Figure 15A] ~ [Figure 15D] 15A-15D show the effect of electrical shorts on current density for conventional electrodes and arrays. [Figure 16] FIG. 16 shows an embodiment of a possible structure for the electrode array. [Figure 17] FIG. 17 shows a typical waveform pattern between the median and radial nerves used to treat essential tremor. [Figure 18] Figure 18 shows pattern waveforms in N different nerves. The duration of each burst is equal to the tremor period divided by N. Each nerve is excited by each burst, and the entire pattern repeats in a time equal to the tremor period. [Figure 19] FIG. 19 shows an embodiment in which the order of pulse trains for different nerves is randomized. [Figure 20] FIG. 20 shows a pattern waveform showing a pause in stimulation. [Figure 21] FIG. 21 shows a switch matrix that can be used to generate biphasic waveforms. [Figure 22] FIG. 22 shows how nerve conduction measurements can be used to automatically determine which electrodes stimulate a target nerve. [Figure 23A] and [Figure 23B] 23A and 23B show how varying electrode selection or position affects the shape or density of the electrical current field at the wrist. [Figure 24A] ~ [Figure 24F] 24A-24F show how various characteristics of the tremor can be used as feedback to adapt the stimulation delivered to the patient. In addition, predictive adaptation based on information gathered from the patient's calendar, for example, can be used to trigger stimulation. [Figure 25A] ~ [Figure 25C] FIGS. 25A-25C show how compiled big data from large combined populations improves disease and tremor classification, allowing for long-term monitoring of tremor along with treatment recommendations. [Figure 26] FIG. 26 shows a flowchart illustrating how tremor feedback, long-term monitoring data, external data, and predictive adaptation can be used to adjust therapy. [Figure 27A] and [Figure 27B] Figures 27A and 27B show the results for two subjects showing the relationship between patient sensation and stimulus amplitude. [Figure 28A] ~ [Figure 28D] Figures 28A to 28D show various lamp types. [Figure 29A] and [Figure 29B] 29A-29B show a series of small ramps of increasing stimulation level with a pause or small decrease in level between each ramp. [Figure 30] FIG. 30 is a flowchart of how tremor frequency can be calculated from a three-axis sensor. [Figure 31A] and [Figure 31B] FIGS. 31A and 31B show how false or inaccurate peaks in tremor frequency can be detected. [Figure 32] FIG. 32 shows how tremor frequency changes over the course of the day. [Figure 33]Figure 33 shows how other physical activities can be mistaken for tremors. [Figure 34] FIG. 34 shows a regression model of tremor vs. non-tremor activity as an example of how activity can be distinguished from calculating the tremor center frequency. [Figure 35] FIG. 35 shows a cross section of the electrode snaps wedged into compressed neoprene to create a comfortable seal between the band and the skin. [Figure 36A] ~ [Figure 36C] 36A-36C show various views of an adjustable buckle combined with a snap or button fastener that allows the wearer to adjust the tension of the armband after it has been fastened and secured around the wearer's arm / wrist. [Figure 37A] and [Figure 37B] 37A and 37B show an embodiment of an electrode having a non-adhesive pull tab. [Figure 38] FIG. 38 shows electrodes properly spaced in a thin film liner for easier mounting into the device. [Figure 39A] ~ [Figure 39C] 39A-39C show electrodes connected by a single foam backing, including the concept for serpentine connections. [Figure 40A] and [Figure 40B] 40A and 40B show an embodiment of a cradle used to support the device when installing or removing electrodes. [Figure 41] FIG. 41 shows an embodiment of a wearable stimulator in which the electrodes are shifted distally with respect to the electronics housing to more easily target nerves distally at the wrist. [Figure 42A] ~ [Figure 42D] Figures 42A-42D show various ways of providing buttons on the housing opposite the bearing surface. [Figure 43]FIG. 43 shows one embodiment of an electrode with round snaps. [Figure 44A] ~ [Figure 44C] 44A-44C show an embodiment of a band that can be strapped to a user's wrist or arm using only a single hand. [Figure 45A] and [Figure 45B] Figures 45A and 45B show the band and its electronics. [Figure 46] FIG. 46 shows an embodiment of a charging block with a keyed shape that can assist in locating and connecting devices to a base station. [Figure 47A] ~ [Figure 47C] 47A-47C show another embodiment of the band and inductive charger. [Figure 48A] ~ [Figure 48C] 48A-48C show a one-finger glove embodiment with a zipper and electrodes. DETAILED DESCRIPTION OF THE INVENTION

[0123] The novel features of the invention are set forth with particularity in the following claims. A better understanding of the features and advantages of the present invention will be obtained by reference to the following detailed description that sets forth illustrative embodiments thereof, in which the principles of the invention are utilized, and the accompanying drawings.

[0124] One aspect of the present invention is a device and system that provides peripheral nerve stimulation, targeting individual nerves (FIGS. A-1E). One aspect of the present invention is a device and system 10 that allows for the customization and optimization of transcutaneous electrical therapy to an individual. In particular, the device 10 described targets the midline, mid-wrist, and hamstrings for treating tremors. radius This is due to electrical stimulation of the ulnar nerve, or the humerus. Targeting these specific nerves and utilizing appropriately customized stimulation results in more effective therapy (e.g., reduced tremor).

[0125] 1A-1E illustrate embodiments of a device and system 10 that provides peripheral nerve stimulation, targeting individual nerves to reduce tremor. In some embodiments, the device 10 is designed to be worn on the wrist or arm. In some embodiments, electronics in a watch-like housing 12 measure tremor and also generate an electrical stimulation waveform. Electrical contacts in the band 14 and / or housing 12 transmit the stimulation waveform to disposable electrodes 16. The location of the contacts on the band 12 can be adjusted to suit the location of the tremor, e.g., the median nerve and radius The device is positioned so that specific nerves, such as the stimulatory nerve, are targeted at the wrist. The electronics housing 12 may also include a digital display screen to provide the device wearer with feedback about the stimulation and the characteristics and history of the measured tremor.

[0126] In some embodiments, the therapeutic device 10 is a wrist-worn device comprising: 1) an array of electrodes 16 surrounding the wrist; 2) a skin interface to ensure good electrical contact with the human; 3) an electronics box or housing 12 containing a stimulator or pulse generator 18, a sensor 20, and other possible electronics, such as a controller or processor 22 for executing instructions, a memory 24 for storing instructions, a user interface 26 which may include a display and buttons, a communications module 28, a rechargeable battery 30, and optionally an induction coil 32 for charging the battery 30; and 4) a band to hold all components together and securely fasten the device around an individual's wrist.

[0127] The system demonstrated dramatic tremor reduction after providing electrical stimulation to the nerves in the patient's wrist in accordance with embodiments described herein. Figure 2A shows an example of tremor reduction detected using a gyroscope to measure tremor energy during postural maintenance. Figure 2B shows an example of tremor reduction detected by having the patient draw a spiral.

[0128] Circumferential, spaced electrodes One aspect of our device is a shared or common electrode 300 (see Figure 3A) placed on the dorsal side of the wrist, along with two target nerves (e.g., median and radius ) is the use of only three electrodes. In some embodiments, a common electrode 300 may be placed approximately at the midline of the dorsal length of the arm or wrist. In some embodiments, an additional electrode 302 may be placed approximately at the midline of the ventral length of the arm or wrist to target the median nerve. In some embodiments, a further electrode 304 may be placed at the midline of the ventral length of the arm or wrist to target the median nerve. radius To target a nerve, an additional electrode may be provided between the common electrode 300 and the ventral electrode 302. In some embodiments, an additional electrode may be provided to target the ulnar nerve. More generally, combining a subset of electrodes allows targeting N nerves with fewer than N electrodes.

[0129] 3B and 3C show the median nerve 306 and the hamstrings in a cross-section of a patient's wrist or arm. radius A common electrode 300, a ventral electrode 302, and a nerve 308 radius The position of the electrode 304 is shown in the figure. The electrodes 300, 302, 304 are arranged such that, in a transverse projection of the arm or wrist, an angle α1 of 90 to 180 degrees exists between a line connecting the median nerve 306 and the center of the shared electrode 300 and a line connecting the median nerve 306 and the center of the ventral electrode 302; and radius a line connecting the nerve 308 and the shared electrode 300; radius Nerve 308 and radiusThe electrodes 304 are positioned such that an angle α2 of 90 to 180 degrees exists between the line connecting the electrodes 304 and the line connecting the electrodes 304. The angles α1 and α2 can each be either counterclockwise (as α1 is shown in FIG. 3B) or clockwise (as α1 is shown in FIG. 3C). More generally, the electrodes can be spaced a predetermined distance apart so that when the electrodes are positioned circumferentially around the patient's wrist, one of the angles formed between each electrode pair and its target nerve is between 90 and 180 degrees. Such an orientation generally results in each electrode of the electrode pair being positioned on opposite sides of the target nerve; that is, the target nerve is positioned approximately between the electrode pair.

[0130] As shown in Figures 4A and 4B, three electrodes 400, 402, 404 placed circumferentially around the wrist allow for (1) reduced bandwidth compared to a typical arrangement where electrodes 400', 402' are placed longitudinally along the same nerve, and (2) deeper targeting within the tissue by having pairs of electrodes that cross over from each other to target each nerve. While the embodiment has been described with reference to three electrodes for stimulation of two nerves, it is understood that alternative embodiments may utilize two electrodes to stimulate a single nerve, where the two electrodes may have fixed spacing so that the electrodes can stimulate the nerve from opposite sides of the nerve. Similarly, other embodiments may utilize more than three electrodes. For example, additional electrodes may be added to target the ulnar nerve. In addition, different combinations of electrodes may be used, such as midline, ulnar, and ventral nerves. radius , and ulnar nerve groups.

[0131] Mapping the nerves in several individuals with different wrist sizes by selectively stimulating circumferential locations on the wrist and midline showed variability in nerve location. radiusAscertaining where the user experiences paresthesia to identify the ulnar nerve has shown variability in nerve location relative to wrist size, along with high individual uncertainty in physiology. Individual nerves can be targeted with precisely positioned electrodes, such as those shown in FIG. 3A, or arrays described below that allow selection of these individual nerves.

[0132] Table 1 shows the individual wrist size and radius The table shows the locations of stimulation required to stimulate the median, median, and ulnar nerves. Note also that multiple locations can sometimes target the same nerve, and individuals with the same wrist circumference distance and width can often have very different responses. Zero is the center line of each individual's wrist, and the numbers refer to the elements to the left (negative) and right (positive) of the center line when viewing the wrist with the palm facing up. All subjects in this table were right-handed. U = ulnar, M = median, and R = radius . [Table 1]

[0133] Some device embodiments have different fixed spacing between appropriately sized electrodes to target nerves in patients with varying physiology based on wrist circumference. The wrist circumferences of the 5th percentile female to 95th percentile male are 13.5-19.5 cm. Sizing diagrams are shown in Figures 5A-5C, which illustrate three-band configurations using 22 mm rectangular electrodes. Figure 5A illustrates an embodiment of a band 500 with three electrodes 502 spaced approximately 13 mm apart that can be used for wrists with circumferences between approximately 13.5 cm and 15.5 cm. Because 22 mm electrodes are used, the spacing between the electrode centers is 35 mm. Techniques for determining the spacing are described further below. Figure 5B illustrates an embodiment of a band 500 with three electrodes 502 spaced approximately 18 mm apart that can be used for wrists with circumferences between approximately 15.5 cm and 17.5 cm. FIG. 5C illustrates an embodiment of a band 500'' having three electrodes 502'' spaced approximately 23 mm apart that can be used for wrists having a circumference between approximately 17.5 cm and 19.5 cm.

[0134] Sizing of electrode structures can be based on a balance between patient comfort, device power consumption, and nerve targeting capabilities. Small electrodes are advantageous because they require less current and power to stimulate a nerve. However, smaller electrodes can have several disadvantages, including: (1) increased difficulty in targeting a nerve because the electrode must be precisely positioned anatomically; (2) enhanced edge effects of the electric field generated between the electrodes, reducing patient comfort; and (3) a reduced surface area of the electrode in contact with the skin, which can cause small deviations across the electrode and skin adhesion, reducing patient comfort. In contrast, larger electrodes have advantages because they tend to be more comfortable for patients due to reduced electric field edge effects, reduced sensitivity to small deviations in the electrode, and reduced sensitivity to current amplitude in the stimulator. In addition, precise placement is not required for larger electrodes. However, a disadvantage of larger electrodes is that they require more current and power to achieve a specific current density.

[0135] In some embodiments, wrist circumference and nerve location are primary anatomical factors driving electrode size selection. The median nerve is generally located on the ventral midline of the wrist. Thus, for example, as shown in FIG. 3, electrode 302, the midline electrode, may be located on the ventral midline of the wrist. To target deeper structures and minimize the width of the device, the other electrode 300, the return electrode or common electrode, may be located on the contralateral or dorsal midline of the wrist. In some embodiments, the midline electrode may be offset from the midline to be biased toward the thumb, while the return electrode remains located on the dorsal midline of the wrist. In some embodiments, the offset of the midline electrode may be a predetermined distance, up to approximately one-quarter of the circumference of the wrist. A third electrode, radius The electrodes are radiusTo target a nerve, a first electrode may be placed between the first and second electrodes. Some embodiments may utilize more than three electrodes. For example, an additional electrode may be added to target the ulnar nerve. In addition, different combinations of electrodes may be used to target the median, radius The electrodes may be used to target one or more nerves from the median nerve 602 and ulnar nerve groups. In some embodiments, all electrodes may be the same size (i.e., area) for two reasons: (1) ease of manufacturability in large volumes, and (2) improved comfort by maintaining the same current density across several pairs of electrodes. As shown in FIG. 6, these considerations are reflected in the design of the median nerve 602 and ulnar nerve groups as a quarter of a smaller person's wrist (5th percentile female) or approximately 3.5 cm around. radius To stimulate the nerve 604, an upper limit may be set for the size of the electrode 600.

[0136] In some embodiments, the lower limit for electrodes may be 5 mm, based on smaller sizes found in the literature for electrode arrays. The 22 mm by 22 mm size was selected because it allowed a good balance between stimulator power and neural targeting within these limits. The 22 mm size allowed a reasonable amount of misalignment (approximately 1 cm of circumference, as empirically measured) for neural targeting without consuming an unreasonable amount of power for the form factor of a wearable device. The 22 mm size is also a standard size for electrode manufacturing when used commercially in ECG devices. In some embodiments, the electrode sizes may be 10 mm and 30 mm, or 15 mm and 25 mm, or 20 mm and 25 mm.

[0137] To accommodate variations in wrist size based on electrode size, electrode spacing can be grouped into three sizes in some embodiments, with each size spanning a 2 cm wrist circumference range. For each range, the center of the wrist circumference in that 2 cm range was selected, and electrode spacing was calculated based on the wrist circumference. For example, for the smallest size band, for wrist sizes 13.5 cm to 15.5 cm, the calculation was based on a 14.5 cm wrist circumference. The center-to-center spacing of the midline electrode and the return electrode on the back of the wrist should be roughly half the wrist circumference. Subtracting the electrode size (22 mm) determines that the inter-electrode spacing should be approximately 13 mm.

[0138] The sizing calculations were also slightly biased so that the location of the median electrode was off to the thumb, which would be more effective at stimulating the median nerve and avoid stimulation of the ulnar nerve in case the electrode was incorrectly shifted or placed. In some embodiments, stimulation of the ulnar nerve was avoided when the ulnar nerve was found to cause discomfort in early testing. radius It may be less preferable than nerve stimulation.

[0139] Test arrays were fabricated by attaching hydrogel electrodes to the liner at the desired distance. The common electrode was aligned at the center of the back of the wrist, and the hydrogel was connected to the stimulator. All subjects received the appropriate bands, as shown in Table 2. radius and median nerve. With a 1 cm shift toward the thumb, most subjects experienced a decrease in median nerve excitation and were able to adapt to larger stimulation amplitudes. With a 1 cm shift toward the little finger, many subjects gained ulnar sensation. After a large shift of approximately half the electrode pad size, most subjects were still able to feel stimulation of the correct nerve, although occasionally requiring larger stimulation amplitudes. These preliminary results indicated that the electrode spacing and size were sufficient. [Table 2] Table 2: Median and mean values for some individuals radius Data confirming electrode spacing for successful nerve targeting

[0140] In one embodiment of the device, electrode contacts can be located on the underside of the electronics box, and one type of electrode contact can be a snap button. In FIGS. 7A and 7B , all three electrode connectors 700 are located on the underside of the electronics 702. The connectors 700 on the electronics 702 can interface with a flexible electrode system 704, which can have a supplemental connector 706. The flexible electrode system 704 also includes three electrodes 708 that are electrically connected to the supplemental connector 706 using electrical traces 710. The components of the flexible electrode system 704 can be mounted on a flexible liner 712. An advantage of this design, where the electrode contacts are on the electronics box, is that electronics are not required in the band. A disadvantage of this design is that the flexible traces 710 can require custom manufacturing and balancing, which can result in increased cost. Additionally, the flexible traces 710 can make the band wider or, if formed as a two-layer flex, can add additional complexity and cost.

[0141] Other electrode array configurations Various types of electrode arrays can be used. In some of the embodiments described above, a circumferential array of two or more electrodes, such as three electrodes, arranged around the patient's wrist or arm can be used. Other electrode array configurations, including two-dimensional arrays, can also be used. The electrode pairs formed in these electrode arrays can be designed so that each element is individually addressable and has a limited current density. This array configuration is an improvement over traditional dual arrays. First, it limits current density spikes that can cause discomfort and increase the risk of burns with larger elements. For example, discomfort and burns can occur when hydrogel peels or dries cloth electrodes that are in slight contact with the skin. Second, it allows for the selection of the optimal stimulation location for each patient's specific geometry or neurophysiology. The stimulation location can be targeted by either exciting a single set of electrodes or by directing the current using simultaneous excitation of multiple electrodes. Third, it allows for shifting the stimulation location over time to reduce the overall current density applied to a given patch of skin, which can reduce skin pain due to stimulation.

[0142] In some embodiments, an electrode array may comprise a defined pattern of electrical contacts arranged in a ring around the wrist. To electrically stimulate, an electrical current may be applied between two sets of contacts through the human skin. In this array, any number of electrodes may be connected to either set of contacts, making it highly configurable. In most situations, a skin interface will also be required between the electrode contacts and the human. In many cases, the mechanical and electrical properties of this skin interface, combined with the mechanical properties of the array, will affect the performance and complexity of the device.

[0143] Typically, for nerve excitation at the wrist, two electrodes 800' are placed longitudinally along the nerve, with a reasonable spacing of at least 1 cm, as shown in FIG. 8B. The purpose of this positioning is to allow the electric field 802' to penetrate the tissue to depolarize the underlying nerve 804. With two adjacent electrodes 800', there is only shallow penetration of the stimulating current. In contrast, with electrodes 800 excited on opposite sides of the wrist, as shown in FIG. 8A, the electric field 802 spreads through the wrist and allows excitation of the nerve 804 deeper within the tissue. Achieving the same level of stimulation using longitudinally placed electrodes, as shown in FIGS. 4A and 4B, would likely require a larger cuff. Therefore, a circumferential array is compact and therefore advantageous for wearable devices. The advantage of being able to reconfigure the array is that it allows for a more compact form factor than traditional median nerve stimulation, while still being able to reach the same nerve.

[0144] The circumferential array configuration addresses the issue of size. As shown in FIG. 9, in some embodiments, a flexible array 900 of electrodes 902 can be produced in a one-size-fits-all format and placed around the wrists of several individuals. However, unused electrodes 902 are simply not accommodated by the stimulator. This allows one size to be customizable for many people.

[0145] The array design is defined by 1) center-to-center spacing, 2) inter-element spacing, 3) electrode shape, and 4) the electrical and mechanical properties of the skin interface, which is typically a hydrogel. In some embodiments, for wrist-worn treatment of tremor, the array 900 has rectangular elements with approximately 1 cm center spacing, approximately 2 mm inter-element spacing, and 2 mm lace-like rounded corners. Because the array 900 is body-compliant, contacts can be fabricated as electrically conductive Ag or Ag / AgCl traces 904 on a flexible polyester substrate 906, although other trace and substrate materials could be used, such as gold-copper on polyimide. A single piece of hydrogel with reasonably high volume resistivity (~2500 ohm-cm) can be applied to the entire array and used to contact the skin. The selection of these parameters is determined by the size of the anatomy, the electrical properties of the skin interface, the sensation of stimulation, the duration of stimulation, and the desired range of acceptable electronics complexity.

[0146] In some embodiments, the device is designed to minimize crosstalk between elements / electrodes. Crosstalk can cause nearby areas to be stimulated, leading to power drainage and increased off-target side effects of stimulation. Crosstalk can be minimized by selecting a hydrogel with a high bulk resistivity to prevent lateral current spreading and limit the effective area of stimulation. With low bulk resistivity, current spreading can limit the ability to specifically target individual nerves. In addition, hydrogels with higher resistivity tend to reduce edge effects and increase stimulation comfort. However, too high a bulk resistivity consumes more power, increases electronics requirements, and increases battery size. In some embodiments, an intermediate resistivity can be selected to balance these competing needs. Additionally, a small amount of current spreading can also be advantageous for patient comfort as the current density gradually tapers off.

[0147] Crosstalk can also be regulated by varying the shape and spacing between elements. For example, reducing the area of electrodes 1002 (FIG. 10) in array 100 can help limit the excited region compared to FIG. 9. Varying the center spacing can also limit the overlap area of adjacent elements / electrodes.

[0148] Varying the shape of the electrode can also control excitation in an area and make stimulation more comfortable. In the case of rectangular elements, corners often exhibit increased current density, which can lead to discomfort. In some embodiments, circular elements / electrodes 1102 (FIG. 11) can be selected to increase comfort.

[0149] A further approach to reducing crosstalk is to separate the hydrogel pieces and eliminate current flow from pad to pad, however this increases the complexity of the manufacturing process.

[0150] As shown in FIG. 12 , in some embodiments, the electronics and electrical circuitry 1200 driving the array includes an adaptable switch that allows either one of two contacts 1204, 1206 of a stimulator 1208 to be connected to each individual electrode 1202 at a given time by opening or closing a switch 1210 in each channel. Each channel may include a DC blocking circuit 1212, as charge balance is important to prevent skin pain and burns, and may also be individually current-limited by a current limiter 1214 to prevent current surges that could cause skin pain or discomfort. This current limit may be set to a predetermined acceptable threshold for a particular patient or group of patients. There are numerous transistor circuits or components, such as polyfuses, known in the art that limit or shut down current to specific nodes. These circuits and components, such as stimulators, switches, and current limiters, may be controlled in real time by a microprocessor 1216 and / or may be programmably controlled. The switch matrix allows multiple electrodes to be connected to the same stimulator contact at a given time for maximum flexibility. Additionally, electrodes can be switched between the positive and negative contacts of the stimulator to generate opposing pulses as shown below.

[0151] Another benefit of the array geometry is that it maps the physical layout of the underlying neurophysiology. This could be used to tailor stimulation appropriately for each subject. For example, array elements could be used to map underlying muscle firing (electromyography) or underlying neural activity (neuroelectrical testing). This information could be used in a closed-loop system to monitor tremor or to optimize stimulation duration.

[0152] Extending the underlying concept to the described circumferential array to a fine microarray offers significant advantages for stimulation. Structured materials with miniature, current-limiting array elements would solve the problems of current spikes or electrode delamination. Designing a microarray is a balance between the need for high lateral impedance to prevent crosstalk and the need for low impedance for efficient power transfer from the stimulator. As shown in FIG. 13, such a microarray 1300 can be a series of conductive elements 1302 in a woven fabric or insulating polymer to create a uniaxially conductive geometry.

[0153] When adhesion to the skin is established, there are advantages to using a microarray instead of a conventional electrode system to maintain comfort and safe stimulation in certain situations. Two situations can lead to pain and burns to the patient: electrode detachment and breakdown of the electrode material, both of which are associated with an increase in current density. In a conventional electrode system, as shown in FIG. 14A, a current I 1400 is supplied to a single electrode 1402 with area A attached to the skin 1404. The current density is J = I / A. When the electrode detaches 1406, area A decreases, as shown in FIG. 14B, which increases the current density J. The current density can increase to the point where the patient becomes uncomfortable or experiences side effects on the skin.

[0154] In a matrix array with regulated current density, however, the current density can be regulated to prevent discomfort. In Figure 14C, a large electrode area is divided into an electrode array with smaller elements 1408. Each element has an associated current limiting circuit 1410 that limits the current to a value that is comfortable 1412. Because of the presence of these current limiters, even when some of the array elements delaminate 1414 in Figure 14D and zero current flows through these elements 1416, the current through all of the remaining elements 1412 is still limited to a comfortable level.

[0155] A second common situation in which microarrays offer advantages over conventional systems is when one region of an electrode is shorted out due to breakdown in the material or the mechanical properties of the material. In conventional electrode systems, as shown in FIG. 15A, current I1500 flows through the electrode 1502 at the skin 1504. In FIG. 15B, if a short circuit 1506 occurs in the electrode, for example, due to a defect or other reason, the entire current I1500 flows through a single point, which can lead to discomfort. In FIG. 15C, multiple elements include a current limiter 1510 connected to each array element 1508. An example of such a current limiter is a significant resistance R that is significantly larger than the resistance r of the electrode 1508 itself (i.e., R>>r). In this case, the current through each element is roughly the total current divided by the number of elements. In the case where a short 1506 occurs in one element, since R>>r, the current through each element 1514 is still roughly equal to the total current divided by the number of elements.

[0156] The two situations described above would be particularly problematic for non-adhesive electrode configurations. For example, a conductive fabric may intermittently contact a small area of skin and cause all current to flow through the small area at high current densities. One solution to this problem is the non-adhesive array embodiment illustrated in FIG. 16. This embodiment uses a series of tiny pins or balls 1600 connected to a flexible substrate 1606, such as clothing, to form a microarray of electrodes. Other materials, such as conductive foam or a comfort layer 1602, can be added between the balls and the skin to address some discomfort and provide a relatively higher lateral resistance relative to shedding resistance. This solution minimizes crosstalk between contacts. Such a microarray of elements / electrodes can be configured as a matrix of multiple electrodes, each mechanically connected and equipped with its own current-limiting circuit 1604. Electrodes in the matrix can be grouped into larger subgroups 1608 and 1610 of individually controlled elements. Another option is to use a woven fabric where the resistance of each wire limits the current.

[0157] Patterned stimulation exchange between nerves One aspect of the device is a pattern waveform used to stimulate multiple nerves. This waveform uses high frequency stimulation (typically 50 Hz-2 kHz) and alternating current bursts with pulse widths of 50 μS-1 mS on peripheral nerves that map to nearby locations in the brain. This type of stimulation can desynchronize populations of neurons and restore normal function. These burst patterns are matched to the characteristics of a patient's tremor, including tremor phase, frequency, and amplitude. Midline and vertebral discs are used for the treatment of tremors. radius In one implementation where nerves are used, pulse trains (at a frequency of 150 Hz and a pulse width of 300 μS) are of length exactly half the tremor period and alternate between two nerves. radiusIllustrates a typical pattern waveform stimulating a nerve. Each burst is generated from pulses at a high frequency and with the appropriate pulse width for targeting the correct type of nerve. The bursts are alternating with a timing related to the patient's tremor frequency. Each burst is more than half a tremor cycle so that the bursts are non-overlapping, and the bursts are time-shifted by half a tremor cycle so that the alternating current cycle repeats with each tremor cycle.

[0158] There are many variations on this stimulation, including stimulating more than one nerve as shown in Figure 18 and changing the order of the pulse trains as shown in Figure 19. If the number of stimulated nerves is increased to N, the maximum burst length of each pulse train will be 1 / N times the tremor period so that the bursts are non-overlapping. The burst in the second nerve will be shifted by 1 / N, the burst in the third nerve by 2 / N, and so on, until the final nerve, N, is shifted by (N-1) / N times the tremor period.

[0159] The order of the pulse trains for different nerves can be randomized, as shown in Figure 19. The burst length is capped at 1 / N times the tremor period, and the order of the bursts for the three nerves is randomized. However, all three nerves still experience a single burst of stimulation within a time length equal to the tremor period, as illustrated by the white or gray sections, respectively. In subsequent intervals of time equal to the tremor period, the order of the burst patterns for the nerves is again randomized.

[0160] There may be pauses at different times in the sequence. These pauses may be regular or may occur at random times. Pauses may result in asynchrony and may also have the side effect of increasing stimulation tolerance, generally because less power is delivered to the hand. Delivering less power may also reduce power consumption from the battery and reduce the overall size of the wearable device. FIG. 20 illustrates a waveform pattern indicating a pause in stimulation. Each group of stimulation bursts is grouped in a time interval equal to the tremor period. At regular times, stimulation may be stopped or paused for one or more segments equal in length to the tremor period.

[0161] Although the above embodiment used a constant 150 Hz stimulation as an example, the waveform within each base may be varied in amplitude, timing, or shape, for example, because in some cases one nerve may be more easily excited than another based on physiological or hand position. radius The amplitude of the median nerve and the stimuli needs to be varied. The amplitude between bursts can also be varied, for example, sinusoidally. The pulse width and frequency within a particular burst pattern can also be varied, for example, using stochastic resonance electrical stimulation patterns to select a random distribution of pulse widths and frequencies of a square wave. Stochastic resonance has been shown to enhance sensory perception and provide feedback to the central nervous system.

[0162] This electronic implementation of AC waveforms is advantageous because only one nerve is stimulated at a given time, and therefore only one stimulator is required. This is made possible by the switch matrix design described above and illustrated in FIG. 12. Benefits of the switch matrix design are that it helps achieve a safe design that reduces device size and cost, an important feature for wearable devices. Specific benefits include:

[0163] Because only one nerve is excited at a time, only one stimulator is utilized, which reduces the amount of electrical components required compared to other techniques that require multi-channel stimulators, thereby reducing the size and cost of the device.

[0164] The switch matrix allows each electrode in a pair of electrodes to be associated with its own protection circuitry. This protects against some single-point failure in the matrix. For example, if a DC-blocking capacitor is associated with each electrode, even if one of the capacitors fails, the patient will already be protected from DC current from the second capacitor, as shown in FIG. 12.

[0165] Additionally, the switch matrix minimizes or reduces the number of high voltage rails required for biphasic stimulation, which reduces the number of components in the device. Instead of generating both negative and positive rails, a single voltage rail and ground rail are generated. By connecting an alternating current electrode to either the ground rail or the high voltage rail, a biphasic waveform can be generated as shown in FIG. 21. As shown in FIG. 21, two voltage lines, a high voltage line 2100 and a ground line 2102, are generated, and an electrode 2104 is alternately connected to each voltage line to generate a biphasic waveform 2106. Reducing the number of components saves space and cost, which is important for wearable devices.

[0166] Mounting the apparatus for electrode array: In some embodiments, a manual attachment process may be used. In the manual attachment process, the device may be placed on the patient's arm. Each individual electrode is switched on and stimulation is applied. The location of sensory loss may be noted for each electrode location and may be related to a specific nerve by using information found in the literature. For example, if a particular array element causes sensory loss in the thumb, index finger, and ring finger, the electrode stimulated the median nerve. radius Nerves can be found in a similar manner. The operator can then program the locations of these nerves and the corresponding associated electrodes into the patient's device. The device can recall these locations to provide therapy tailored to a specific individual, providing that the band and electrodes are consistently placed on the patient's wrist in the same location and orientation. To aid in repeatable placement on the wrist, visual or mechanical markers can be employed that highlight anatomical features. One example is to curve a box to fit the curve of the wrist. A second example is to create a watch-like device with intuitively preferred orientations. A final example is to provide visible indicators, such as marks or lines that can highlight corresponding anatomical features, such as wrist tendons or bones of the hand and wrist, such as the ulnar styloid process.

[0167] In some embodiments, the attachment process can be automated using feedback from on-board sensors. For example, one can use circular receiving electrodes 2200 on the fingers, similar to those used in carpal tunnel nerve conduction studies. These receiving electrodes 2200 are designed to detect stimulation of specific electrodes 2202 around the wrist or arm, e.g., midline, as shown in FIG. radius, or ulnar nerve. This may also be used in some embodiments to verify that a particular nerve, such as the ulnar nerve, is not being stimulated, which may be accomplished by placing an electrode on the finger or other location innervated by the nerve. When the correct electrode is stimulated, a response may be measured with a ring electrode on the finger or other electrode placed in a known location innervated by the target nerve.

[0168] In some embodiments, attachment can be determined by measuring the response to stimulation. For example, if stimulation at a particular location leads to greater tremor reduction than stimulation at other locations, the device will be instructed to stimulate the more effective location.

[0169] In some embodiments, the search for the correct placement of the electrode during the attachment process does not need to be linear. Depending on the size and width of the patient's wrist, there may be some prior knowledge of the approximate location of certain nerves. For example, the median nerve is generally located near the ventral midline of the wrist, and therefore, electrodes at this location may be tested preferentially.

[0170] While selecting individual elements is the most straightforward approach to selecting a single nerve, more complex current patterns can be used to shape the current density through the limb. The combination of electrodes used to excite a specific nerve can be straightforward or more complex to steer the current for the purpose of improving comfort. For example, the simple configuration in FIG. 23A is achieved by connecting electrodes 2302 and 2304 to a stimulator 2300 on opposite sides of the wrist. Field line 2306 excites nerve 2308. Another approach to exciting nerve 2308 can be seen in FIG. 23B. Electrodes 2310, 2312, and 2314 are selected and connected to the stimulator. The amount of current passed through each electrode can be varied to steer field line 2316. In other configurations, the current density can be reduced to create a more comfortable stimulation.

[0171] Circumferential arrays are advantageous because array elements can be dynamically selected to change stimulation when needed. For example, in some cases, nerve locations may change as people's limb positions move around. In this situation, a different set of electrodes may target the nerve more precisely or effectively than the original pair, and applying an algorithm to change the set of electrodes used for stimulation is advantageous.

[0172] Dynamic Stimulation Algorithm In addition to effective positioning of electrodes around the patient's arm or wrist, in some embodiments, the electrical stimulation delivered to the nerves via the electrodes can be improved in various ways, including, for example, by determining various characteristics of the tremor and using this data as feedback to modify, adjust, and set various stimulation parameters, as shown in FIGS. 24A-24F and described in more detail below.

[0173] Dynamic algorithms may also aid in the comfort of stimulation and the reduction of redness or rashes. When multiple elements target a particular nerve or nerves of interest, signals may be switched between these different elements in real time. This may reduce pain at a particular location on the skin by reducing the time of stimulation at that location. However, the total net effect of the therapy will be the same.

[0174] Tremor Phase Feedback: In some embodiments, as shown in FIG. 24A, tremor signals measured by accelerometers, gyros, or other techniques such as EMG can be used for direct feedback. For example, using a gyroscope signal allows the angular velocity of the hand to be measured, and the angle of the hand can therefore be calculated. It has been shown that responses that are not synchronous with the tremor can be effective in tremor reduction. Phase delay 2402 detection and response can be achieved in hardware or software.

[0175] To utilize tremor phase feedback, signals from motion sensors can be combined, or a combination of sensors can be used to form a signal that is reflective of hand position. For example, position and orientation can be determined by combining accelerometer or gyroscope signals, or by combining accelerometer, gyro, and magnetometer data to create a quaternion indicating hand orientation. Combining position in one or more axes can generate a signal that can be used for dynamic feedback.

[0176] One algorithm for computing a trigger for stimulation identifies where the signal's derivative changes sign to find peaks in the signal. The signal can be noisy, so a filter or threshold may be required to remove noise oscillations. Finally, peaks do not always occur earlier than the typical tremor frequency (4-12 Hz), so points that are very close together can be filtered out. From the peaks, the instantaneous frequency of the tremor can be calculated by looking at the time difference between two peaks. This frequency can then be used to calculate the appropriate time delay needed for asynchronous stimulation, accounting for the delay in neural signals from the peripheral nerve to the brain. The calculation is performed in real time and can be adapted to the instantaneous frequency and phase of the signal.

[0177] Alternating current approaches would detect zero crossings or other repeating values in the position or biological signal, however zero detection can be challenging due to the tendency for noise around zero.

[0178] An alternative approach to phase detection is to use a real-time Hilbert transform. The Hilbert transform will compute the envelope and phase from a real-time signal. The instantaneous phase can then be used to time the stimulus. However, the Hilbert transform is complex and difficult to implement on a standard microcontroller.

[0179] Tremor amplitude feedback: In some embodiments, tremor amplitude feedback modulates the tremor duty cycle based on tremor severity. Tremor amplitude can be defined and determined in several ways, including (1) the maximum or effective value of hand movement flexion / extension / position, speed, acceleration, or reflex movement; or (2) spectral power at frequency or spectral energy in the 4-12 Hz band, as shown in FIGS. 24B and 24C. Determining the maximum hand movement can be computationally expensive due to its three-dimensional nature. In some embodiments, signals from all axes of a gyroscope or accelerometer can be integrated, and the axis with the greatest amplitude can be used to define the amount of flexion and extension. An alternative implementation is to calculate hand orientation from a combination of sensor inputs, and the axis angular rotation from the neutral position of the hand at a moment in time can be calculated to identify the degree of flexion / extension. If the envelope 2404 of this oscillatory signal is greater than a threshold 2406, therapy can be applied.

[0180] This approach can be computationally intensive and may be preferable for calculating spectral energy in the 4-12 Hz band for short-term signals. If a multi-axis accelerometer, gyroscope, or other motion sensor is available, spectral density can be calculated for each axis separately, and then the L2 norm can be found. The L2 norm can also be calculated prior to finding spectral density depending on the sensor used. Spectral density can be calculated using a variety of approaches 2408 using time-domain to frequency-domain signals, including FFT, Welch, or periodograms, or using more microcontroller-compatible Goertzel tone detection algorithms, all of which are well known in the literature. If the energy in curve 2410 is greater than a threshold, therapy can be applied.

[0181] One difficulty with this feedback mechanism is determining the threshold at which therapy should be applied. In some embodiments, the threshold can be set based on the actual angle of the hand, and surveys and patient testing can determine the acceptable angle range for performing everyday tasks, such as drinking or holding a spoon. Something similar can be done for spectral density. In some embodiments, this threshold can be set universally across all patients.

[0182] In some embodiments, the threshold can be individualized for a specific patient or a group of similar patients. This could be done by monitoring the patient's tremor level (e.g., energy or position) and determining the maximum and minimum values for humans in standard situations. These values could also be recorded over time. Alternatively, the tremor threshold could be defined as a fraction of the minimum tremor value.

[0183] In some cases, including Parkinson's disease tremors, there may be habituation to the stimulation, and the tremor will begin to increase again after a short period of time. Detection of an increase in tremor severity can be used to adjust the amplitude, phase, frequency, waveform, or pulse train of the stimulation to improve efficacy and durability.

[0184] Tremor Frequency Feedback In some therapies, as shown in FIG. 24D, the tremor frequency is used to set the cycle of neural excitation. For example, N units in a similar neural cluster innervated by N peripheral nerves should be stimulated at a time division equal to the tremor period divided by N. If the tremor frequency does not change rapidly, sampling at instantaneous intervals should be sufficient for tracking, as in the tremor detection session described below. The spectral density as a function of frequency will need to be calculated using the numerical approach 2408 described above. If multiple axes are present, these spectral densities can be combined, for example, using the L2 standard. The peak frequency 2412 in the spectral density curve can then be used to determine the burst time of the stimulation exchange between nerves.

[0185] Prophetic Adaptation A patient's tremor amplitude and frequency may have a daily pattern. As shown in Figures 24E and 24F, in some embodiments, understanding historical tremor measurements and when therapy was applied can inform the necessary therapy on subsequent days. Neural networks, Kalman filters, and other such predictive algorithms can be used to predict when tremor will increase and when to apply preemptive therapy.

[0186] Additionally, long-term data collection over a span of months or years can provide information about disease progression and the need to adapt therapy. For example, it may be preferable to adjust treatment if a person's tremor is getting worse with increasing amounts of therapy and if increasing amounts of therapy are needed to maintain the same overall effect.

[0187] Often, users have external information that can be used to prevent tremors. For example, tremors are often brought on by stressful events, such as presentations and meetings. Because many patients with tremors already schedule these events, for example, in a calendar, the calendar can be used to provide a forecast of when treatment may be needed. For example, if a patient has a meeting planned for 1:00 p.m., the device could preemptively begin stimulation at 12:40 p.m. The patient could also activate therapy by using a button in case of sudden stress.

[0188] Big Data Approach As shown in Figures 25A-25C, treatment modifications can also be determined through the use of big data analytics, which can utilize long-term monitoring of a wide range of people. Demographic information about each individual, along with tremor characteristics (e.g., degree of postural tremor, rest tremor, and kinetic tremor), can be used to classify people into different subtypes. Figures 25A and 25B illustrate disease segmentation by separating the kinetic tremor characteristics of essential tremor from the rest tremor characteristics of Parkinson's disease. Figure 25C illustrates long-term tracking of changes in an individual's tremor severity. Recommendations for different types of treatment can be made to new patients in subgroups based on the user's similarity to other users, similar to the Netflix approach of recommending movies. This technique could be implemented using principal component analysis, k-means, or other well-known classification approaches.

[0189] All of the above forms of adaptation, feedback, and external information, such as cloud data, can be integrated together to improve therapy. FIG. 26 shows a flowchart of such a system. In step 2600, sensors can be used to detect movement, position, or other biological signals over time. In step 2602, a processor can receive sensor data and calculate various metrics, such as tremor amplitude, phase, or frequency. In step 2604, the method and system can acquire historical data, and in step 2606, external information, such as data from the cloud, can be sent to the device's processor. Cloud data can include people-derived data, calendar data, and inputs entered into the device. The processor can combine all of this data in step 2608 and, based on this combined data, can adjust stimulation therapy and parameters in step 2610. The method and system can then loop back to step 2600.

[0190] Amplitude Settings One aspect of the design is how the optimal amplitude of stimulation is identified and achieved during a session. This method is important for the comfort and efficacy of the treatment. Stimulation perception varies between patients and situations. For example, a sudden increase in amplitude directly from 0 mA to the optimal stimulation level can lead to an uncomfortable sensation. A slower increase in stimulation may be more comfortable, but the wearer's perception of stimulation amplitude may not be linear with the applied current amplitude. If there are long periods during which the wearer has no perception of stimulation, for example, if the device ramps linearly from zero amplitude, the wearer may even consider the device to be malfunctioning.

[0191] Two subjects were studied in the experiment to understand the perception of the stimulation level. The electrodes were located at the midline and radiusEach nerve was separately targeted. During the session, stimulation was slowly ramped in 0.1 mA increments to identify the sensation threshold, muscle contraction threshold, and discomfort / pain threshold. After these points were identified, the subject was allowed to rest for several minutes until the tingling sensation disappeared. After this, the current amplitude was ramped from the sensation threshold to 85-90% of the muscle contraction or discomfort / pain stimulation threshold, either occurring at a lower amplitude. At each step, subjects were asked to shade the diagram to see where paresthesia was felt and / or to mark on a visual analog scale (VAS) how intense the stimulation felt compared to the maximum level they had previously felt. The distance of these marks on the VAS was tabulated and normalized to the length of the VAS marker.

[0192] Both subjects reached the muscle contraction threshold before severe discomfort (i.e., when they felt their hand was heavy and difficult to move). The results are shown in Table 3. The results were obtained for the midline and radius This indicates that the amplitudes for the nerves are different and should potentially be adjusted differently to achieve optimal stimulation for both nerves. radius The nerve could be stimulated at a much higher amplitude to achieve a greater effect. [Table 3] Table 3. Stimulus threshold results for two subjects to understand the relationship between sensation and stimulus amplitude.

[0193] As shown in Figures 27A and 27B, which show the relationship between patient sensation and stimulus amplitude for two subjects, a large degree of habituation and hysteresis was observed in the sensation of stimulation. When increasing stimulation toward a level 85-90% of the maximum sensation threshold, individuals showed a steep, near-linear slope between the first sensation level and the maximum level. However, when stimulation was decreased, the perception of stimulus intensity had a steeper slope than during increases in amplitude.

[0194] The results showed that the stimulus ramp can be fairly linear between the first sensation (from discomfort or muscle contraction) and 85-90% of the maximum threshold level. Since the first sensation occurs at half the amplitude of the maximum threshold, the ramp should not start linearly from zero. Therefore, if the ramp is slow and linear from 0, the patient may not feel any sensation for half the time of the ramp. Other stimuli for Individual 1 radius The ramp rate could be abrupt to reflect the sudden onset of neural measurements. Figures 28A-28D illustrate various ramp types. Figure 28A illustrates that measured data indicates a linear ramp rate between first sensation and maximum motor contraction / discomfort threshold operates with a constant perception of amplitude. Figure 28B illustrates the sudden increase that may need to occur if the patient becomes habituated to the stimulation. Figure 28C illustrates a periodic waveform showing amplitude ramping up and down to different maximum amplitudes. As the waveform amplitude gradually increases, the patient may become more habituated, and thus higher treatment amplitudes may be tolerated by the patient. Figure 28D illustrates another method for achieving a higher treatment amplitude that exceeds or actually reaches the level of discomfort in the first ramp-up; in this approach, the patient may become habituated immediately or quickly, and thus be able to tolerate higher stimulation for the duration of the treatment.

[0195] Also, if higher stimulation levels can afford greater efficacy due to habituation and hysteresis, in some embodiments the waveform can be a series of smaller ramps of increasing stimulation level with either a pause or a small decrease in level between each ramp, as illustrated in Figures 29A and 29B, which will allow an individual to achieve higher stimulation amplitudes with less discomfort.

[0196] Tremor Detection As mentioned above, adaptive stimulation adjustments may require detecting tremor characteristics by processing one or more sensors, such as different multi-axis sensors. FIG. 30 is a flowchart of how tremor frequency can be calculated from a motion sensor. Using multi-axis motion has advantages over single-axis motion, especially because tremor motion does not always occur along the same direction when different actions are performed. For example, a three-axis gyroscope can be used to measure tremor from the wrist. Each axis is then individually windowed and a Fourier transform is applied. The magnitude of each axis is then calculated, and the square root of the sum of the squares of the axes is calculated as a function of frequency. The sum spectrum is then smoothed with a box car filter or other low-pass filter, and peak frequencies in the 4-12 Hz range are identified. The frequency can be detected by determining the maximum frequency in the 4-12 Hz range. However, as shown in Figure 31A, in some cases, limiting artifacts from processing can be misinterpreted as signal maxima. One approach, shown in Figure 31B, is to first perform an aggressive bandpass filter from the 4-12 Hz band before performing the FFT. A second approach is to identify the curve and find the zero crossings, then from this subset of zero crossing points, find the frequency value with the maximum spectral amplitude. Gyroscopes are generally preferred for spectral analysis because they typically do not have the DC offset of accelerometers.

[0197] In some embodiments, the timescale of the frequency shift is long, so the frequency can be updated in a sporadic manner (vs. continuously). This is a major advantage over devices requiring real-time responsiveness, as it is a significant simplification that leads to smaller battery size, improved form factors, and the ability to measure tremor from high-quality scattered data instead of continuously requiring high-quality tremor extraction from real-time data. FIG. 32 shows data from an individual with tremor wearing an inertial measurement unit (IMU) over a day, and the tremor frequency did not change dramatically. The mean frequency was 5.86 Hz, and the frequency spread varied over 1.6 Hz.

[0198] In some embodiments, tremor frequency is measured from the wrist. Tremor is typically measured at the hand, and as shown in Figure 32, the wrist and hand gyro frequencies track well with each other and are well correlated. The average difference between the hand and wrist gyroscopes is 0.076 Hz with a maximum deviation of 0.8 Hz, well within the spread of frequency variation within a day. Measuring tremor from the wrist has a major advantage over devices requiring measurements at the hand, as it can be done in a watch-like form factor. Tremor can be measured at the midline, at a circumferential band at the wrist, or at the midline, at a circumferential band at the wrist. radius In devices targeting the ulnar nerve, or the ulnar nerve, sensors for measuring tremor can be on-board similar devices used for stimulation.

[0199] In some embodiments, tremor period can be measured from mechanical input using gyroscopes, accelerometers, bending sensors, pressure sensors, etc. from the back of the hand, wrist, or some other part of the limb exhibiting tremor.

[0200] In some embodiments, tremor may be measured via EMB or other electrical signals.

[0201] In some embodiments, the tremor frequency can be measured at all times and then used to update the stimulation in real time.

[0202] In some embodiments, tremor frequency may be calculated only in appropriate situations. For example, looking at low frequency bands or other patterns in the spectrum may eliminate some measurements due to confounding spontaneous activity. For example, FIG. 33 illustrates a frequency spectrum analysis from a person without a tremor while jumping. The results of this analysis could be clearly erroneous due to tremor, but high frequency patterns can be identified and used to eliminate some activity or combined with sensor measurements to predict behavior. One aspect of the system and method is to distinguish tremor motion from non-tremor (or spontaneous) motion, or to detect activities known to produce tremor in order to selectively measure tremor. Figure 34 shows an analysis of 32 activities performed with and without tremor. Using energy in the spontaneous band (0.1-3 Hz) and the tremor band (4-12 Hz), a logistic regression model could be generated to separate tremor from non-tremor activity.

[0203] band 35, one side of the device 3500 is a band 3502 for securing the stimulator to the wrist. The band also connects two electrodes to the back of the device housing 3504 via a flexible circuit 3506. In other embodiments, the band may connect more than two electrodes to the back of the device housing.

[0204] In some embodiments, electrodes (not shown) are removably recessed into pressed-through neoprene 3508 using snap sockets 3508 to create a comfortable seal between the band and the skin, as depicted in Figure 35. This seal also maintains the disposable hydrogel in contact with the patient's skin. The band can be vented by puncturing the neoprene.

[0205] In some embodiments, the band length is such that the first side is at the midline and radius It can be designed to adequately accommodate and connect electrodes provided for nerve targeting. The contralateral band length can be between approximately 10-13 cm to easily strap the device to the wrist for wrist sizes from the 5th percentile female to the 95th percentile male.

[0206] In some embodiments, the band is flexible to conform comfortably to the wearer's wrist and allows the band to lie flat on a surface for more convenient donning and doffing of the electrodes.

[0207] Riveting the electrical flex circuit to the band using conductive eyelets and snaps is a process that secures the circuit in place and provides electrical connections for the removable hydrogel electrodes.

[0208] In some embodiments, the band may be made of foam and neoprene and may house three single electrodes. The nested electrodes allow for a more comfortable fit and a more compact form factor.

[0209] As shown in FIGS. 36A-36C, one embodiment for the band 3600 incorporates an adjustable ring or buckle 3602 in combination with a snap or button fastener 3604, allowing the wearer to adjust the tension of the band 3600 after it is secured to the wearer's arm / wrist.

[0210] One aspect of the device is the removable hydrogel-coated electrodes that snap onto the band and electronics housing. These electrodes, which are placed directly on the wearer's skin for fixation, are a strong electrical connection to prevent them from loosening or detaching during normal use, which could cause pain or discomfort.

[0211] One embodiment of the electrode 3700, as shown in FIGS. 37A and 37B , includes a non-adhesive tab 3702 to allow easier donning and removal of the electrode from the liner during donning, and then from the band and housing during removal. As an example, the non-adhesive tab may be approximately 1 / 16 inch by 7 / 8 inch to minimize wasted space while allowing for easy gripping. The electrode 3700 may have a snap fitting 3704 rather than being inserted into a snap socket in the band. A conductive film 3706, which may function to spread electrical current, and a stimulating gel 3708, such as a conductive hydrogel, may coat the skin-facing side of the electrode. A foam or backing 3710 may be used to provide a non-adhesive side for easy handling by the patient. In other embodiments, the adhesive on both sides of the hydrogel may be used to adhere directly to the band. In some embodiments, the connector 3721 may comprise a conductive eyelet and snap, wire, or other standard connector.

[0212] One embodiment of the electrodes, as shown in FIG. 38, comprises three electrodes 3800 spaced apart by a thin plastic liner 3802 with spaces to accommodate electrical snaps in the band and housing, allowing for easier and faster installation.

[0213] One embodiment of the electrode has a backing made of neoprene foam, which provides a harder, non-stick surface that allows for easier removal from the backing liner during donning. One embodiment of the electrode includes three electrodes 3900 spaced apart in a thin liner 3902 all connected to a single foam backing 3904 to make removing and disposing of the electrodes easier after donning, as shown in Figures 39A and 39B. In another embodiment, the foam backing 3904' connecting the electrodes 3900 is serpentine in shape to allow for some movement between the electrodes, as shown in Figure 40C.

[0214] 40A and 40B, one aspect of the device is a cradle 4000, or support mechanism in the packaging that holds the electronics housing 4002 and band 4004, making it easier to don and remove the electrodes 4006 and connect to a USB charger 4008. Because the housing of the device is curved, the cradle makes it easier for the device to stabilize during these activities.

[0215] One aspect of the design is the location of the electrodes relative to the electronics housing to better target the nerves in the wrist. The electrodes in the housing box 4102 and band 4100 are moved distal to the center (i.e., towards the hand) to allow better targeting of the nerves. By moving the electrode location distally on the arm, the stimulation will be more likely to activate the nerves instead of the muscles, as shown in FIG.

[0216] One aspect of the design is button positioning, as shown in FIGS. 42A-42D, by designing the housing with a board, flat surface 4202 opposite each button 4200, allowing the wearer to more securely rest their hand when pressing the button 4200. FIG. 42A shows a resting position for targeting a button on the far end of the device, FIG. 42B shows a resting position for targeting a button on the on side of the device, FIG. 42C shows a user resting and targeting the distal button, and FIG. 42D shows a user resting and targeting the side button. This aspect of the design is important for improving the usability of the device for wearers with tremors who have difficulty with targeting tasks.

[0217] One aspect of the design is the curved electronics that conform to the shape of the arm and wrist, allowing for better conformance and easier positioning of the device when applied by the wearer.

[0218] AC Form Factor One concept for simplifying the device placement process is to combine electrodes into a single adhesive patch. To target several nerves, electrodes have been stretched to fit the width of most adults. FIG. 43 shows one embodiment of such an electrode 4300. On the skin side, two conductive regions, which may have a carbon or silver backing to improve conductivity, have a conductive hydrogel layer 4302 used to adhere to and form good contact with the skin. There is a non-conductive region 4304 in the center, which may be free of adhesive or some other non-conductive adhesive. Note that the periphery of the hydrogel is an acrylic adhesive 4306, for example, used to maintain contact with the skin and provide shear strength. The adhesive also maintains a seal to prevent the hydrogel from drying out. The back of the electrode is preferably a breathable material, such as a non-woven mesh. The back of the electrode is attached to a device or band with a connector 4308 to allow an electrical stimulation device to be interfaced to the hydrogel. This interface can be done in a number of ways, including using adhesive with conductive lines that interface to metal contacts on the band or device, or using snaps on electrodes that can be snapped to conductive counterparts on the band or device.

[0219] If multiple nerves were targeted with the above approaches, the band would require multiple interfaces to the electrodes to accommodate changes in nerve location. Using snaps could require sliding components to accommodate individual differences in nerve spacing, whereas using conductive lines could be used. An alternative approach would be to incorporate multiple electrodes into one patch and provide patches with a wide variety of dimensions to accommodate different hand sizes and nerve locations.

[0220] Figures 44A-44C show an embodiment that simplifies band 4400 by using a hydrogel adhesive to facilitate placement. Instead of having a watch-like interface where both straps dangle and are difficult to place, the adhesive properties of the electrodes can be used to allow for fastening with one hand. This approach can be particularly advantageous in subjects with limited dexterity due to hand tremors. Once the electrodes are placed on the wrist or arm, the adhesive electrode holds one end of the band to the wrist or arm, and the patient can wrap the band around and fasten it. A further advantage to this design is that the length of the band only needs to be changed at the end that does not interface with the electrode. As an example, Figure 44A shows placement on the palm side to visualize the electrode position and attachment of the band ends. Figure 44B shows wrapping the band around the wrist while the band is held in place by the adhesive of the electrodes. FIG. 44C shows the placement of a closure mechanism, such as Velcro® or a magnetic clasp.

[0221] For optimal efficacy and comfort, the device should be aligned on the arm to target the nerves for stimulation and position the housing on the dorsal surface of the wrist. There are numerous ways to achieve this through device design. One embodiment, shown in FIG. 45A (bottom view) and FIG. 45B (top view), uses a band 4500 with a slidable electronics housing 4502. The side of the band with the electrodes 4506 is placed and aligned on the ventral side of the wrist using anatomical landmarks, with or without other visual indicators. The device can then be wrapped around the hand in one motion and secured with Velcro loops 4508 and hooks 3410 fasteners. The position of the electronics housing 4502 is slidable, with connection to the electronics through the band achieved by an accordion flex circuit or cable 4512, which can slide freely and be pressed into the band.

[0222] For patients with tremors, connecting with a small cable such as USB can be difficult. Therefore, it would be desirable to provide an easier interface for charging the device. One such method is to use an inductive coil in the device. When placed near a charging pad, the device charges without a cable. This also allows and supports the device being waterproof. However, this has the disadvantage of being slower to charge and could add to the size of the device. A second possibility is to create a keyhole 4602 so that the patient can easily slide the device 4604 into the charger 4600, as shown in FIG. 46. In addition, the patient then has some structure to support themselves. The keyhole could also be tapered so that the end of the device to be inserted is significantly larger than the device and tapers down to fit the device in the plug. Tapering also aids in placement of the device at the base station.

[0223] Another design possibility is a band 4700 with a D-ring 4702 and cinching strap 4704, as shown in FIGS. 47A-47C. Such a device can be laid flat for application of electrodes 4706 and inductive charging. The cinching strap allows tightening and positioning of the band with one hand. FIG. 47A shows the band 4700 opened to accommodate a disposable electrode pair 4706, with multiple spaces provided to customize the space for different wrist sizes. FIG. 47B shows the closure mechanism, and FIG. 47C shows an inductive charger 4708 connected to a laptop 4710.

[0224] Another embodiment shown in Figures 48A-48C includes a single or multi-finger glove 4800 in which one electrode 4802 is a ring around the finger and a second electrode 4804 is located at the wrist along with the electronics. The main advantage of this design is that it does not require any precise positioning depending on the nerve location and accessibility in the finger. The single-finger glove can be made of a flexible material, such as a glove.

[0225] The terms "about" and "approximately" can mean within 5%, 10%, 15%, or 20%, or within 5 or 10 degrees.

[0226] It will be understood that this disclosure, in many respects, is merely illustrative of numerous alternative apparatus embodiments of the present invention. Details, particularly in the shape, size, materials, and arrangement of various apparatus components, may be fabricated without departing from the scope of various embodiments of the present invention. Those skilled in the art will appreciate that these exemplary embodiments and descriptions are merely illustrative of the invention as a whole. While several principles of the invention have been clearly described in the exemplary embodiments described above, those skilled in the art will appreciate that variations in structure, arrangement, proportions, elements, materials, and methods of use may be employed within the practice of the present invention and otherwise specifically adapted to particular environments and operational requirements without departing from the scope of the present invention. Additionally, while certain features and elements have been described in connection with particular embodiments, those skilled in the art will appreciate that these features and elements may be combined with other embodiments described herein.

[0227] [Appendix 1] 1. A system for treating a patient suffering from tremor, comprising: A pulse generator; a circumferential band adapted to be secured to the patient's arm or wrist, the band carrying first and second electrodes in electrical communication with the pulse generator, the first and second electrodes positioned at the patient's midline, radius the band being spaced apart to deliver electrical stimuli from the pulse generator to the patient to preferentially excite a first nerve selected from the iliac or ulnar nerve, the first and second electrodes being positioned and configured such that, in a transverse plane of the arm or wrist, there is an angle of 90 to 180 degrees between a line connecting the first nerve and the first electrode and a line connecting the first nerve and the second electrode; A system comprising: [Appendix 2] 2. The system of claim 1, wherein the band carries a third electrode in electrical communication with the pulse generator, the first and third electrodes being positioned at the patient's midline, radius the band is spaced apart to deliver electrical stimulation from the pulse generator to the patient to preferentially excite a second nerve selected from the iliac or ulnar nerve, and the first and third electrodes are positioned and configured such that, in a transverse plane of the arm or wrist, there is an angle of 90 to 180 degrees between a line connecting the second nerve to the first electrode and a line connecting the second nerve to the third electrode, and the first nerve and the second nerve are different nerves. system. [Appendix 3] 3. The system of claim 2, wherein when the circumferential band is secured around the patient's arm or wrist, the first electrode is disposed on a dorsal side of the patient's arm or wrist, the second electrode is disposed on a ventral side of the patient's arm or wrist, and the third electrode is disposed on the patient's arm or wrist between the first and second electrodes. system. [Appendix 4] 10. The system of claim 1, wherein the electrodes each have a center, and the electrode centers are spaced apart by about 5 mm to one-quarter of the circumference of the wrist or arm. system. [Appendix 5] 10. The system of claim 1, wherein the band comprises flexible circuitry, and the band is secured to the housing via a riveted connector that also provides electrical communication between the flexible circuitry of the band and the pulse generator. system. [Appendix 6] 10. The system of claim 1, wherein the housing comprises a distal end configured to be oriented toward the patient's hand and a proximal end configured to be oriented away from the patient's hand, the band, the first electrode, and the second electrode being closer to the distal end of the housing than to the proximal end of the housing. system. [Appendix 7] 2. The system of claim 1, wherein the pulse generator is the single pulse generator, the system further comprising: a switch matrix configured to switch the pulse generator between at least one pair of electrodes. system. [Appendix 8] 8. The system of claim 7, wherein the switch matrix comprises a single high voltage source and ground. system. [Appendix 9] 8. The system of claim 7, wherein each electrode in the switch matrix is associated with its own set of protection circuitry. system. [Appendix 10] 3. The system of claim 2, further comprising a controller configured to communicate an alternating current stimulation pattern from the pulse generator to the electrodes. system. [Appendix 11] 11. The system of claim 10, wherein the stimulation pattern comprises: radius a first pulse train to a first nerve selected from the ulnar nerve, or the midline of the patient; radius or a second pulse train delivered to a different nerve selected from the ulnar nerve, wherein the first pulse train and the second pulse train are offset by approximately one-half of the tremor period. system. [Appendix 12] 11. The system of claim 10, wherein the stimulation pattern comprises application of multiple bursts of electrical stimulation, each burst comprising a stimulation frequency between about 50 Hz and 2,000 Hz, a pulse width between about 50 microseconds and 1 millisecond, and a pulse shape selected from the group consisting of monophasic rectangular, biphasic asymmetric rectangular, or biphasic symmetric rectangular. system. [Appendix 13] 11. The system of claim 10, wherein the stimulation pattern comprises application of multiple bursts of electrical stimulation, each burst having a duration of about one-half a period of the tremor. system. [Appendix 14] 10. The system of claim 1, further comprising a motion sensor configured to measure motion of the patient's arm or wrist. system. [Appendix 15] 15. The system of claim 14, wherein the motion sensor comprises a three-axis gyroscope or an accelerometer. system. [Appendix 16] 15. The system of claim 14, further comprising a controller in communication with the pulse generator and the motion sensor, the controller being programmed to determine one or more characteristics of the tremor based on signals generated by the motion sensor. system. [Appendix 17] 17. The system of claim 16, wherein the one or more features of the tremor are selected from the group including the tremor frequency, the tremor amplitude, and the tremor phase. system. [Appendix 18] 17. The system of claim 16, wherein the controller is further programmed to adjust one or more parameters of the electrical stimulation based on the determined characteristics of the tremor. system. [Appendix 19] 3. The system of claim 2, wherein the first electrode, second electrode, and third electrode are provided on a disposable, replaceable, flexible substrate having one or more electrical connectors for electrical communication with the pulse generator. system. [Appendix 20] 20. The system of claim 19, wherein each electrode further comprises a pull tab to assist in tying and detachment. system. [Appendix 21] 20. The system of claim 19, wherein the housing and / or band comprises a plurality of electrical snaps for removably receiving the first electrode, the second electrode, and the third electrode. system. [Appendix 22] 20. The system of claim 19, wherein the first electrode, the second electrode, and the third electrode are provided on a thin liner having spaces corresponding to positions of the electrical snaps on the housing and / or band. system. [Appendix 23] 20. The system of claim 19, further comprising: a cradle that securely supports the housing and the band such that the first electrode, the second electrode, and the third electrode may be attached to the housing and / or the band. system. [Appendix 24] 24. The system of claim 23, wherein the cradle comprises a cavity for securely receiving the housing such that the base of the housing is exposed. system. [Appendix 25] 3. The system of claim 2, wherein the first electrode, the second electrode, and the third electrode are recessed within the housing or band such that the electrodes extend a predetermined distance from the housing or band. system. [Appendix 26] 10. The system of claim 1, wherein the first electrode and the second electrode are disposable and replaceable. system. [Appendix 27] 10. The system of claim 1, wherein the band comprises moldable indentations configured to surround the electrodes and protect them from dehydration. system. [Appendix 28] 10. The system of claim 1, wherein the first electrode and the second electrode are coated with an electrically conductive hydrogel. system. [Appendix 29] 10. The system of claim 1, wherein the first electrode and the second electrode are connected to a foam backing. system. [Appendix 30] 30. The system of claim 29, wherein the foam backing comprises a serpentine portion between the electrodes. system. [Appendix 31] 10. The system of claim 1, wherein the housing includes one or more depressible user input buttons, each button located on a side of the housing, and an expanded support surface on the opposite side of the housing from each button. system. [Appendix 32] 10. The system of claim 1, wherein the housing comprises a skin-contacting side having a curved surface that conforms to the curvature of the patient's arm or wrist. system. [Appendix 33] 10. The system of claim 1, further comprising: a rechargeable battery; and an inductive coil configured to receive power from an external source to inductively charge the battery. system. [Appendix 34] 10. The system of claim 1, wherein the electrodes have a diameter or width between about 5 mm and one-quarter of the circumference of the arm or wrist. system. [Appendix 35] 1. A method of treating a patient suffering from tremor, comprising: providing a band comprising a first electrode and a second electrode around the patient's arm or wrist in a configuration, wherein in a cross-section of the arm or wrist, there is an angle of 90 to 180 degrees between a line extending between a first nerve and the first electrode and a line extending between the first nerve and the second electrode, and the first nerve is located between the patient's midline and radius or the ulnar nerve, and the first and second electrodes are spaced apart by a predetermined distance. delivering a first electrical stimulus from the electrode to excite the first nerve to reduce tremor in the patient; A method comprising: [Appendix 36] 36. The method of claim 35, wherein the band comprises a third electrode spaced a predetermined distance from the first and second electrodes, wherein an angle of 90 to 180 degrees exists between a line extending between a second nerve and the first electrode and a line extending between the second nerve and the third electrode, and the second nerve is located between the patient's midline and radius , or the ulnar nerve, method. [Appendix 37] 37. The method of claim 36, further comprising delivering a second electrical stimulus from the first electrode and the third electrode to excite the second nerve. method. [Appendix 38] 37. The method of claim 36, wherein the first nerve is the median nerve and the second nerve is the median nerve. radius It is a nerve, method. [Appendix 39] 36. The method of claim 35, wherein the band is operatively connected to a housing enclosing a motion sensor, and further comprising measuring one or more characteristics of the tremor with the motion sensor while the patient performs a tremor-inducing task. method. [Appendix 40] 40. The method of claim 39, wherein the tremor-inducing task is a prescribed task or motor activity. method. [Appendix 41] 41. The method of claim 40, wherein the instructed task is postural maintenance and the motor activity is drawing or writing. method. [Appendix 42] 40. The method of claim 39, wherein the tremor-inducing task is a task performed by the patient unprompted as part of normal daily activities. method. [Appendix 43] 40. The method of claim 39, wherein the measured characteristics of the tremor include a frequency spectrum of the tremor. method. [Appendix 44] 44. The method of claim 43, further comprising determining a tremor frequency by determining a center frequency peak within a range of 4 to 12 Hz in the frequency spectrum of the tremor. method. [Appendix 45] 40. The method of claim 39, wherein the measured characteristics of the tremor include the amplitude of the tremor. method. [Appendix 46] 38. The method of claim 37, further comprising temporally offsetting the first electrical stimulus from the second electrical stimulus by a period based on a period of the tremor. method. [Appendix 47] 47. The method of claim 46, wherein the duration is a function of the period of the tremor divided by the number of nerves stimulated. method. [Appendix 48] 48. The method of claim 47, wherein the number of nerves stimulated is two. method. [Appendix 49] 36. The method of claim 35, wherein the first electrode is in electrical communication with a first contact of a stimulator, the second electrode is in electrical communication with a second contact of the stimulator, and the stimulator is configured to generate an electrical pulse between the first electrode and the second electrode, the electrical pulse having a polarity. method. [Appendix 50] 50. The method of claim 49, further comprising switching the first contact and the second contact of the stimulator, the first electrode in electrical communication with the second contact and the second electrode in electrical communication with the first contact to change the polarity of the electrical pulses such that the first electrical stimulus is biphasic. method. [Appendix 51] 36. The method of claim 35, measuring the patient's motion; determining the energy, amplitude, frequency, and pattern of the measured motion; and separating non-tremor motion from tremor motion based in part on the determined energy, amplitude, frequency, and pattern of the measured motion. method. [Appendix 52] 36. The method of claim 35, further comprising determining a stimulation sensation threshold and a muscle contraction or discomfort threshold. method. [Appendix 53] 53. The method of claim 52, comprising: further comprising increasing the amplitude of the first electrical stimulus from the stimulation sensation threshold to a muscle contraction or discomfort threshold. method. [Appendix 54] 54. The method of claim 53, wherein increasing the amplitude of the first electrical stimulus comprises increasing the amplitude linearly or exponentially. method. [Appendix 55] 54. The method of claim 53, wherein increasing the amplitude of the first electrical stimulus comprises increasing the amplitude in a series of progressively larger peaks separated by decreases in amplitude. method. [Appendix 56] 54. The method of claim 53, wherein increasing the amplitude of the first electrical stimulus comprises increasing the amplitude to a value greater than the muscle contraction or discomfort threshold; and thereafter decreasing the amplitude below the muscle contraction or discomfort threshold. method. [Appendix 57] 54. The method of claim 53, wherein increasing the amplitude of the first electrical stimulus comprises increasing the amplitude in a series of stepped increments, each increment in amplitude being held for a predetermined duration. method. [Appendix 58] 58. The method of claim 57, wherein each step increment in amplitude is made by a decrease in amplitude that is smaller in magnitude than the increase in each step increment. method. [Appendix 59] 38. The method of claim 37, wherein the first electrical stimulus and the second electrical stimulus are delivered asynchronously to a phase of the tremor. method. [Appendix 60] 36. The method of claim 35, further comprising determining the tremor frequency and phase by analyzing signals from a motion sensor worn by the patient selected from the group consisting of an accelerometer, a gyroscope, a magnetometer, and a bending sensor. method. [Appendix 61] 40. The method of claim 39, wherein using a motion sensor to measure tremor characteristics during a tremor-inducing task and using these tremor characteristics to determine stimulation waveform parameters occurs in real time. method. [Appendix 62] 38. The method of claim 37, wherein the first electrical stimulus and / or the second electrical stimulus comprises a stochastic resonance electrical stimulation pattern. method. [Appendix 63] 36. The method of claim 35, further comprising determining a level of electrical stimulation above a sensory threshold and below a muscle contraction threshold and a pain tolerance threshold of the patient. method. [Appendix 64] 36. The method of claim 35, wherein the positioning of the band is confirmed by paresthesia in the patient's hand. method. [Appendix 65] 36. The method of claim 35, wherein the positioning of the band is based in part on a comparison of a shape of the housing to one or more anatomical features. method. [Appendix 66] 36. The method of claim 35, wherein the first electrical stimulus has a duration of between about 20 and 60 minutes. method. [Appendix 67] 1. A method of treating a patient suffering from tremor, comprising: determining the circumference of the patient's wrist; providing a band and a housing having predetermined circumferential spacing for a first electrode, a second electrode, and a third electrode, the predetermined circumferential spacing being based on the predetermined circumference of the patient's wrist, the housing enclosing a pulse generator configured to be in electrical communication with the first electrode, the second electrode, and the third electrode, the band and housing configured to be mounted on the wrist such that the first electrode is positioned approximately along the midline of the dorsal side of the arm or wrist, the second electrode is positioned approximately along the midline of the ventral side of the arm or wrist, and the third electrode is positioned between the first electrode and the second electrode, the first electrode and the second electrode forming a first electrode pair and the first electrode and the second electrode forming a second electrode pair; stimulating a first nerve by delivering a first electrical stimulus between the first electrode pair; and stimulating a second nerve by delivering a second electrical stimulus between the second electrode pair. method. [Appendix 68] 1. A method of treating a patient suffering from tremor, comprising: determining the circumference of the patient's wrist; selecting a band and a housing having predetermined circumferential spacing for first, second, and third electrodes, the predetermined circumferential spacing being based on the predetermined circumference of the patient's wrist, the housing enclosing a pulse generator configured to be in electrical communication with the first, second, and third electrodes; placing the band and housing on the wrist such that the first electrode is positioned approximately along the midline of the dorsal side of the arm or wrist, the second electrode is positioned approximately along the midline of the ventral side of the arm or wrist, and the third electrode is positioned between the first electrode and the second electrode, wherein the first electrode and the second electrode form a first electrode pair and the first electrode and the second electrode form a second electrode pair; stimulating a first nerve by delivering a first electrical stimulus between the first electrode pair; and stimulating a second nerve by delivering a second electrical stimulus between the second electrode pair. method.

Claims

[Claim 1] 1. A system for treating a patient suffering from tremor, comprising: A pulse generator; a circumferential band adapted to be secured to the patient's arm or wrist, the band carrying first and second electrodes in electrical communication with the pulse generator; and A system comprising:

Citation Information

Patent Citations

  • Adaptive Stimulator for Relief of Neuropathy Symptoms

    JP2003533299A

  • Electrotherapeutic Device

    US20080097564A1

  • Devices and methods for controlling tremor

    WO2014113813A1