Systems and methods for stimulating cranial nerves

A neuromodulation system implanted in the neck region with anchored components and wireless communication effectively treats neurological disorders by stabilizing and coordinating therapy to multiple cranial nerves, addressing the challenges of invasiveness and movement resistance.

JP7785382B6Active Publication Date: 2026-01-21NUXCEL2 LLC
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Patent Information

Application Number
JP2024015590
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-01-10
Filing Date
2024-02-05
Publication Date
2026-01-21
Estimated Expiration
2041-01-08

AI Technical Summary

Technical Problem

Existing neuromodulation systems face challenges in providing minimally invasive, stable, and coordinated therapy to multiple cranial nerve targets in the neck region, particularly for treating conditions like obstructive sleep apnea, heart failure, and other neurological disorders, while resisting movement and misalignment.

Method used

A neuromodulation system is implanted in the anterior neck region, utilizing multiple housings with electrode leads extending to various cranial nerves, wirelessly communicating with an external power source, and using physiological sensors to update therapy based on patient input, with components anchored to stabilize the system and maintain effective neural stimulation.

Benefits of technology

The system provides stable, coordinated neuromodulation therapy to multiple cranial nerves, effectively treating conditions such as OSA and other neurological disorders by anchoring components to prevent movement and misalignment, and adjusting therapy based on patient physiology.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a system for stimulating cranial nerves.SOLUTION: A neuromodulation system for nerve adjustment of cranial nerves can be used to treat sleep or breathing disorders. The system can include a first housing configured to be implanted in a triangular region below a chin cap of a patient. The system can include a first electrode lead coupled to the first housing, and the first electrode lead can include an electrode configured to be disposed at or near a first cranial nerve target in the patient. The system can be provided with a signal generating circuit configured to generate electrical neuromodulation signals for delivery to the first cranial nerve target by using the electrode.SELECTED DRAWING: Figure 9
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Description

[Background technology]

[0001] Neurological function can affect a variety of disorders, such as cardiovascular disorders, movement disorders and tremors, epilepsy, depression, respiratory disorders (e.g., chronic obstructive pulmonary disease (COPD), pleural effusion), sleep disorders (e.g., obstructive sleep apnea (OSA)), obesity, dry mouth, and facial pain disorders. These disorders affect millions of patients and impact their quality of life and lifespan. For example, obstructive sleep apnea is a common sleep disorder. Individuals with OSA experience interrupted breathing patterns during sleep. Chronic severe sleep apnea may require treatment to prevent sleep deprivation and other sleep-related complications. Obstructive sleep apnea is common in patients with cardiovascular disease, is a cause of high blood pressure, and is associated with increased incidence of stroke, heart failure, atrial fibrillation, and coronary heart disease. Severe OSA is associated with increased all-cause and cardiovascular mortality.

[0002] In some examples, external or implantable muscle or neurostimulator devices may be provided to activate tissue structures in or near the airway, for example, to help treat sleep apnea or to inhibit apneic and hypopneic events.

[0003] In some examples, neurostimulation may be used to treat a variety of disorders other than OSA, such as epilepsy, depression, heart failure, obesity, pain, migraines, COPD, or other disorders. Summary of the Invention

[0004] Neuromodulation of cranial nerves can be used to treat various diseases and disorders, such as sleep or breathing disorders. The neuromodulation system can include a housing configured to be implanted within a patient's anterior neck region, e.g., at or below the patient's mandible, e.g., at least partially within one or more of the submental triangle, submandibular triangle, and carotid triangle. The system can include an electrode lead coupled to the housing, and the electrode lead can include an electrode configured to be positioned at or near a cranial nerve target within the patient's body. The system can be configured to generate electrical neuromodulation signals for delivery to the cranial nerve target using the electrode. In some examples, the cranial nerve target can include one or more of the hypoglossal nerve, glossopharyngeal nerve, trigeminal nerve, facial nerve, or vagus nerve, among others.

[0005] An implantable system for delivering or titrating neuromodulation therapy may optionally include multiple housings that may be implanted in different portions of a patient's anterior neck region. For example, a first housing containing electrical stimulation circuitry may be implanted in the submental triangle, submental triangle, or carotid triangle of the anterior neck. A second housing containing, for example, a battery or other circuitry may be implanted in a different one of the submental triangle, submental triangle, or carotid triangle. Implanting different parts of the system in different neck locations may place the circuitry near various neural targets and may help maintain patient comfort, among other benefits.

[0006] This Summary is intended to provide an overview of the subject matter of this patent application. It is not intended to provide an exclusive or exhaustive description of the invention. The Detailed Description is included to provide further information on this patent application.

[0007] To easily identify the description of any particular element or operation, one or more of the most significant digits of a reference number will refer to the figure number in which the element is first introduced. [Brief explanation of the drawings]

[0008] [Figure 1]1 shows a first anatomical example of a general anterior view of the anterior neck region of a human. [Figure 2] Overall, a second anatomical example is shown, including a portion of the anterior cervical triangle. [Figure 3] Overall, a third anatomical example is shown, including a partial lateral view of the anterior cervical triangle. [Figure 4] Overall, a fourth anatomical example is shown, including a partial lateral view of the anterior cervical triangle. [Figure 5] Generally, an example of a system that can be configured to administer neuromodulation therapy is shown. [Figure 6] 1 shows generally a first implantable device implanted within the submandibular triangle of a patient. [Figure 7] 1 shows generally a second implantable device implanted within the patient's submandibular triangle. [Figure 8] Generally, examples are shown that include a submental implantable device that is implanted within the patient's submental triangle. [Figure 9] 1 shows generally a third example of an implantable device implanted within the carotid trigone of a patient. [Figure 10] 1 shows, in general, a first example of a segmented implantable device. [Figure 11] Generally, examples of submandibular implantable devices are shown. [Figure 12] Generally, an example of a device implanted within the submandibular triangle region of a patient is shown. [Figure 13] Generally, an example of a device implanted within the submandibular triangle region of a patient is shown. [Figure 14] A method for treating a disorder in a patient using a neuromodulation system is presented. [Figure 15] 1 generally illustrates an example of an implantable device that includes a tapered housing. [Figure 16] Generally, an example of an implantable device is shown that includes a capsule-shaped housing. [Figure 17]Generally, an example of a machine in the form of a computer system is shown in which a set of instructions may be executed to cause the machine to perform any one or more of the techniques described herein in accordance with an exemplary embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0009] The systems, devices, and methods described herein can be configured for electrical stimulation of cranial nerves. Examples described herein can include methods for implanting a neuromodulation system or using an implanted system to deliver neuromodulation therapy to one or more target cranial nerves or to sense physiological information about a patient, e.g., to monitor a disease state or control neuromodulation or other therapy. In some examples, features of the systems or devices described herein can facilitate implantation of devices, leads, sensors, electrical stimulation hardware, or other therapeutic procedures on or near cranial nerve tissue. In some examples, the present subject matter includes systems and methods for implanting a neuromodulation device near or below the inferior border of the mandible (i.e., the body of the mandible or ramus of the mandible, i.e., the jaw bone) in the anterior triangle of the neck (e.g., located on the medial aspect), or in the posterior triangle of the neck (e.g., located on the lateral aspect), or in multiple regions of the neck.

[0010] The inventors have recognized that a problem to be solved may include providing a minimally invasive neuromodulation therapy or treatment system capable of providing signals to neural targets in or near a patient's neck region. The problem may include, among other things, treating obstructive sleep apnea (OSA), heart failure, hypertension, epilepsy, depression, post-traumatic stress disorder (PTSD), attention deficit hyperactivity disorder (ADHD), craniofacial pain syndrome, facial nerve palsy, migraine, dry mouth, atrial fibrillation, stroke, autism, inflammatory bowel disease, chronic inflammation, chronic pain, tinnitus, rheumatoid arthritis, or fibromyalgia. The problem may include providing an implantable system that is resistant to shifting or misalignment when placed in a body part prone to movement, such as the patient's neck or cervical region. The problem may further include stimulating multiple different cranial nerve targets simultaneously or in coordination to provide effective therapy.

[0011] The inventors have recognized, among other things, that solutions to the above-described problems may include a neuromodulation system that may be implanted in a patient's anterior neck region, for example, at or below the patient's mandible. In some instances, the system may include a housing that may be coupled to tissue in or near the anterior triangle, such as the digastric muscle or tendon tissue, mylohyoid muscle tissue, the hyoid bone, or the mandible, among other locations. The inventors have recognized that solutions may include a device configured to wirelessly communicate with an external power source or programmer, for example, with a communication device implanted in or near the housing in the patient's anterior neck region. The inventors have recognized that solutions may include an implantable device that includes multiple electrode leads extending in multiple different directions from the housing to interface with multiple different cranial nerves. The inventors have recognized that solutions may further include or use physiological information, such as that sensed from the patient using implanted or external sensors or patient input, to update one or more characteristics of the therapy provided to the patient by the neuromodulation system.

[0012] The inventors have recognized that the neuromodulation systems and methods described herein can be used to treat OSA, among other disorders or diseases. In some examples, OSA treatment may use a neuromodulation device implanted in one or more of the submental and submandibular triangles and an electrode lead including electrodes configured for placement at or near one or more targets in the hypoglossal nerve, vagus nerve, glossopharyngeal nerve, or trigeminal nerve (e.g., in the mandibular ramus of the trigeminal nerve). In some examples, a solution may include using multiple electrodes or electrode leads to deliver coordinated bilateral stimulation therapy to cranial nerve targets, such as the anterior and posterior ramus of the hypoglossal nerve. The therapy may be configured to selectively stimulate or block neural pathways affecting activity of one or more of a patient's tongue, mylohyoid, stylohyoid, digastric, or stylopharyngeus muscles, thereby treating OSA.

[0013] The following description describes systems, methods, techniques, instruction sequences, and computer program products illustrating exemplary embodiments of the present subject matter. For purposes of explanation, the following description sets forth numerous specific examples and aspects to provide an understanding of various embodiments of the present subject matter. However, it will be apparent to those skilled in the art that embodiments of the present subject matter may be implemented in various combinations. Unless otherwise specified, structures (e.g., structural components, such as modules or functional blocks) are optional and may be combined or subdivided, and operations (e.g., in procedures, algorithms, treatments, therapies, or other functions) may be ordered differently or combined or divided.

[0014] In some examples, the implantable neuromodulation systems and devices described herein may include a control system, signal or pulse generator, or other therapeutic signal generator, which may be disposed within one or more housings that may be communicatively coupled to share power and / or data. The housing may include one or more hermetically sealed enclosures to protect the circuitry or other components within it. In some examples, the housing may include one or more headers, e.g., rigid or flexible interfaces, for connecting the housing or circuits or components within the housing with leads or other devices or components outside the housing. In some examples, a header may be used to couple signal generation circuitry within the housing with electrodes or sensors outside the housing. In some examples, a header may be used to couple circuitry within the housing with a telemetry antenna, a wireless power communication device (e.g., a coil configured for near-field communication, or NFC), or other device, which may be disposed on or include a flexible substrate or circuit. This system configuration allows the housing, leads, and flexible circuitry to be implanted in different anatomical locations, such as in the neck or cervical region of a patient. In some examples, various system components may be implanted within one or more of the anatomical triangular regions or spaces in the neck region, and leads or other devices external to the circuit housing may be tunneled to other locations, including at various cranial nerve targets. Thus, various therapeutic elements may be implanted on or near target cranial nerves, and sensing elements may be implanted on or near the same or other cranial nerves, or in other anatomical structures at the same or different locations. Some components may be located in different anatomical locations, e.g., in a different neck region than that occupied by the housing. For example, a telemetry antenna or NFC coil may be provided at or near the surface of the skin, while a housing containing circuitry coordinated with neuromodulation therapy or power signal management may be implanted elsewhere, e.g., deeper within one of the cavities in the anterior triangle of the neck.

[0015] In some examples, multiple different housings may contain the neuromodulation system, and the different housings may contain different control circuits, power sources, sensors, or other components. The different housings and their internal components may be tethered or connected, for example, wirelessly, or in a serially connected, daisy-chain, or star-like configuration, wirelessly, or using leads or other flexible circuits. Such a system configuration may facilitate implanting part of the system in one neck region while directing therapy to a neural target or sensing physiological status information or the patient's activity level or posture from different regions. In some examples, a system distributed across multiple different regions may help provide flexibility and strain relief from repetitive movements.

[0016] Various housings for neuromodulation systems implanted in the cervical region can have a variety of sizes, shapes, and characteristics. For example, the housing can include a surface contour that can generally correspond to the triangular contour (e.g., in one or more dimensions) of the cervical region within a patient. For example, some cervical spaces can include one or more three-dimensional regions or pockets that can narrow anteriorly and medially, such that they can be represented or defined, in part, by one or more generally triangular or pyramidal cavities. Accordingly, the implantable device housing can have, for example, an oblique prism or truncated prism shape on or along at least one of its faces to facilitate positioning in such pockets or cavities. In certain examples, the housing can have a generally cylindrical, prismatic, pyramidal, frustum, or spherical form, including, for example, prismatic variations with or without parallel sides. For example, a housing configured for implantation in the anterior region of the neck, such as the submandibular or submental triangle, may have a housing shaped as a right-angled prism with wide sides parallel to the base of the mandible, minimizing thickness, reducing patient discomfort, and avoiding the submandibular gland. In this example, one or more leads may extend from the housing header to one or more cranial nerves, such as the hypoglossal nerve in the submandibular triangle. Other cranial nerves and implantation sites may be used as well, for example, by using similarly or differently shaped housings.

[0017] The following description describes various anatomical structures, including various triangular regions within the cervical or neck region. Following the description of the anatomical structures, the description describes various devices and their features that may be configured to provide neuromodulation to cranial nerve targets, among other targets, for treating various disorders, diseases, or conditions, for example.

[0018] FIG. 1 generally illustrates a first anatomical example 100 of a frontal view of the anterior cervical region of a human. This region generally extends between the clavicle 108 and the mandible 116 and may be divided into various additional regions or subregions. In one example, the anterior cervical region includes a pair of anterior triangles on either side of a sagittal midline 102, such as anterior triangle 104 as shown. As used herein, the term "midline" refers to a bilateral line or plane within a person's cervical or neck region. In one example, the midline corresponds to the sagittal plane, i.e., the anteroposterior (AP) plane of the body.

[0019] The anterior triangle 104 may include the area bounded by the midline 102, the mandible 116, and the sternocleidomastoid muscle or SCM 106. The hyoid bone 110 may extend across the midline 102 between the pair of anterior triangles. The anterior triangle 104 may include, among other things, the digastric muscle 112 (e.g., including the anterior and posterior portions of the digastric muscle 112), the mylohyoid muscle 114, and various other muscles, bones, nerves, and other body tissues.

[0020] Figure 2 generally illustrates a second anatomical example 200 including a portion of the anterior triangle 104 from the example of Figure 1. Figure 2 illustrates that the anterior triangle 104 may be divided into various regions, including, for example, a submental triangle 206 and a submental triangle 202. In some examples, the anterior triangle 104 may further include a carotid triangle, as described below in the example of Figure 3. The posterior triangle of the neck (not shown) may be divided into various regions, including an occipital triangle and a scapuloclavicular triangle.

[0021] The submental triangle 202 is generally understood to include the area bounded by the midline 102, the hyoid bone 110, and the anterior belly of the digastric muscle 204. The submental triangle 206 is generally understood to include the area bounded by the anterior belly of the digastric muscle 204, the posterior belly of the digastric muscle 208, and the mandible 116.

[0022] FIG. 3 generally illustrates a third anatomical example 300 including a partial lateral view of the anterior triangle 104. The example of FIG. 3 further illustrates the location of the submandibular triangle 206 in relation to, for example, the anterior belly of the digastric muscle 204 and the mandible 116. The example of FIG. 3 illustrates the carotid triangle 302, which may include, for example, a portion of the anterior triangle 104 within the neck region. The carotid triangle 302 is generally understood to include the area bounded by the SCM 106, the omohyoid muscle 306, and the posterior belly of the digastric muscle 208.

[0023] In some examples, an implantable neuromodulation device may be implanted within the anterior triangle 104 or the posterior triangle, for example, using the systems and methods described herein. In further examples, an implantable neuromodulation device may be implanted within one or more of the submental triangle 202 and the submandibular triangle 206. The implantable neuromodulation device may be configured to deliver stimulation therapy to one or more nerve targets, which may be located within or near the anterior triangle 104 or the posterior triangle, for example, or to neural targets that may be accessed by tunneled leads extending from a housing positioned within the anterior triangle 104 or the posterior triangle. In other words, various regions within the anterior and posterior cervical triangles may provide access to the bodies or branches of various cranial nerves, including the hypoglossal nerve (CN XII), accessory nerve (CN XI), vagus nerve (CN X), glossopharyngeal nerve (CN IX), facial nerve (CN VII), and trigeminal nerve (CN V), among others.

[0024] The inventors have recognized that the anterior and posterior cervical triangles are suitable anatomical locations for implantation of a neuromodulation system or its components. The inventors have further recognized that locations include various anatomical structures suitable for coupling and therefore stabilizing a neuromodulation system or its components. For example, the inventors have recognized that such coupling structures may include the hyoid bone 110, the connective tissue sling of the hyoid bone 110, the mandible 116, the digastric tendon, the anterior or posterior portion of the digastric muscle 112, the stylohyoid muscle 304, the mylohyoid muscle 114, the omohyoid muscle, or the SCM 106.

[0025] 4 generally illustrates a fourth anatomical example 400 including a partial lateral view including the anterior trigone 104. The fourth anatomical example 400 illustrates the superior portion of the anterior trigone 104 and a portion of the upper neck, for example, at or below the temporal bone 424. Representations of the tongue 406 and a portion of the jugular vein 404 are included for further context and reference.

[0026] The fourth anatomical example 400 illustrates various nerves and blood vessels. The illustrated nerves include some, but not all, of the cranial nerves that may be targeted using the neuromodulation systems, devices, and methods described herein. For example, the nerve targets in the fourth anatomical example 400 include, among others, the facial nerve 402, the jugular vein 404, the glossopharyngeal nerve 412, the pharyngeal branch of the vagus nerve 414, the vagus nerve 416, the hypoglossal nerve 418, and the mandibular branch of the trigeminal nerve 428.

[0027] The example of Figure 4 includes an example of an implantable therapy device 426. The implantable therapy device 426 may be implanted within a patient in the patient's neck region above the anterior triangle 104. For example, the implantable therapy device 426 may be implanted within one or more of the submental triangle 202 and the submandibular triangle 206. In the example of Figure 4, the implantable therapy device 426 may be coupled to various anatomical structures, such as the stylohyoid muscle 410, the hyoid bone 408, or other tendons or structures within the upper neck.

[0028] The example of FIG. 4 includes multiple leads coupled to an implantable therapy device 426. For example, the implantable therapy device 426 may be coupled to an inferior electrode lead 420, an anterior electrode lead 422, and an superior electrode lead 430. The inferior electrode lead 420 may be implanted at or near a neural target on the vagus nerve 416, for example, in or adjacent to the carotid trigone 302. In some examples, the inferior electrode lead 420 may be coupled to the SCM 106 or to other structures on or near the vagus nerve 416. The superior electrode lead 430 may be implanted at or near the facial nerve 402, the mandibular branch 428 of the trigeminal nerve, or the glossopharyngeal nerve 412, among others. In some examples, the anterior electrode lead 422 may be implanted at or near a neural target on the hypoglossal nerve 418. Various details of the implantable therapy device 426 and its associated leads are described herein, including the example of FIG. 5.

[0029] In certain examples, the various implantable devices and components thereof described herein may be coupled to various anatomical structures or tissues within a patient's body, for example, to stabilize or maintain the device or component in a particular position and to resist movement or migration of the device as the patient performs their daily activities. In certain examples, coupling a device or component to tissue may include anchoring, attaching, attaching, or otherwise securing the device or component to tissue using coupling features. The coupling features may include, but are not limited to, flaps or flanges, for example, for suturing to tissue (e.g., muscle, tendon, cartilage, bone, or other tissue).

[0030] In some examples, the attachment features may include various hardware, such as screws or helical members, that may be threaded or attached to tissue or bone. In some examples, the attachment features may include cuffs, sleeves, adhesives, or other components. In some examples, one or more different attachment features may be used for different portions of the same neuromodulation system. For example, a suture may be used to attach the device housing to a tissue site, and a lead such as that attached to the housing may include a tip cuff to secure the lead to or near the neural target.

[0031] 5 generally illustrates an example of a system 500 that may be configured to provide or control neuromodulation therapy. System 500 may include an implantable system 502 and an external system 520. Implantable system 502 and external system 520 may be communicatively coupled using a wireless coupling 528. In some examples, wireless coupling 528 may enable power signal communication (e.g., unidirectionally from external system 520 to implantable system 502) or data signal communication (e.g., bidirectionally between implantable system 502 and external system 520). In some examples, implantable system 502 or external system 520 may be wirelessly coupled for power or data communication with one or more other devices, such as other implanted or implanted devices, that may be within the same patient's body.

[0032] In the example of FIG. 5, implantable system 502 may include, among other components or modules, an antenna 504, a sensor 506, such as one or more physiological sensors, a stimulation lead 508, a processor circuit 510, an ultrasound transducer 512, a power storage circuit 514, a stimulation signal generation circuit 516, and a memory circuit 518.

[0033] In one example, the antenna 504 may include a telemetry antenna configured for data communication, for example, between the implantable system 502 and the external system 520. In one example, the antenna 504 may include an antenna, for example, an NFC coil, configured for wireless power communication between the implantable system 502 and the external system 520 or other external power source.

[0034] The processor circuit 510 may include a general-purpose or special-purpose processor. The memory circuit 518 may include long-term or short-term memory circuitry that may include instructions, etc., executable by the processor circuit 510 to implement therapy or physiological monitoring activities of the system 500. In one example, the processor circuit 510 of the implantable system 502 is configured to manage telemetry or data signal communication with the external system 520, for example, using the antenna 504 or other communication circuitry.

[0035] In some examples, the stimulation signal generation circuitry 516 includes an oscillator, pulse generator, or other circuitry configured to generate electrical signals that can provide electrical stimulation signals to a patient's body or to power various sensors (including, for example, sensor 506) and transducers (including, for example, ultrasound transducer 512). In some examples, the stimulation signal generation circuitry 516 can be configured to generate multiple electrical signals, for example, to administer multipolar electrical stimulation therapy to multiple neural targets, simultaneously or in a time-multiplexed manner. The stimulation signal generation circuitry 516 can be configured to use or provide different neural stimulation signals, which can have, for example, different pulse amplitudes, pulse durations, waveforms, stimulation frequencies, or burst pattern characteristics.

[0036] The stimulation signal generation circuitry 516 can be used to generate therapeutic signals to multiple different targets simultaneously. For example, signals from the stimulation signal generation circuitry 516 can be used to stimulate one cranial nerve target to elicit an efferent effect and a different nerve or branch to elicit an afferent response. In another example, one cranial nerve can be blocked while another is stimulated. Other combinations can be used as well.

[0037] In some examples, the stimulation lead 508 may include one or more leads coupled to or integral with a housing or header of the implantable system 502. The stimulation lead 508 may be removable from the housing to facilitate replacement or repair.

[0038] In some examples, the stimulation lead 508 may include electrical stimulation hardware, such as electrodes having various configurations, including cuff electrodes, planar electrodes, percutaneous electrodes, or other configurations suitable for electrical stimulation of nerves or nerve bodies or branches. In some examples, the stimulation lead 508 may additionally or alternatively include other neuromodulation therapy hardware, such as an ultrasound transducer 512, a drug delivery device, or a mechanical actuator, that may be configured to modulate neural activity.

[0039] The leads and / or electrodes described herein may have various features that can facilitate placement at and stimulation of one or more neural targets. Leads may have one or more electrodes that can be used for neural stimulation, neural blockade, or neural sensing. Electrodes may have various surface areas and spacings (e.g., spacing from other electrodes, sensors, targets, etc.) to optimize for a particular function. In some examples, electrodes may comprise various materials, such as low-oxidation metals or metal alloys (e.g., platinum, platinum-iridium, etc.), for use within implantable systems. In some examples, electrodes may be treated or coated with another material, for example, to promote healing or facilitate charge transfer to tissue.

[0040] In some examples, an electrode lead may include one or more electrodes, which may have the same or different electrode characteristics. The lead may include, for example, a spiral electrode or a cuff electrode. In such examples, one or more conductive surfaces may be exposed on the inner surface of a curved or spiral cuff assembly, which may include a portion of the lead body. In some examples, the spiral cuff assembly (and therefore the electrode) may be designed to wrap snugly around the nerve body and may be automatically sized. In some examples, the cuff electrode may be configured to surround a specific target, thereby directing stimulation energy to the target from multiple different directions simultaneously, such as while insulating the electrode from adjacent tissue.

[0041] In some instances, surface electrodes or electrode arrays may be used. In this instance, one or more electrodes may be exposed on one side of a flat or round section of the lead body. Arrays of electrodes of various shapes, sizes, or other characteristics may be provided to spatially control the delivery of neuromodulation therapy. In some instances, the electrode surface may be oriented toward the target nerve or other structure, for example, to focus the electric field provided by one or more electrodes. Surface electrode leads may be surgically placed by exposing the target anatomical structure, or may be steered using a catheter-based delivery system, for example, from a distal surgical access point.

[0042] In some instances, percutaneous electrodes may be used, including one or more electrodes exposed on a lead that is inserted into a blood vessel (or other conducting tissue near the neural target) using percutaneous techniques. The percutaneous lead may be navigated by a clinician within or through the vasculature toward a target nerve or neural structure in close proximity to the vasculature. In some instances, the electrodes on the percutaneous lead may be directly on the lead body or may include a percutaneous structure, such as a stent-like frame or scaffold, that allows the electrodes to be directed toward the target and away from the blood in the blood vessel.

[0043] In some instances, branched leads may be used to provide electrodes to multiple different and spaced apart anatomical targets while using a single connection to a header. In some instances, modular leads may be used, for example, to extend or tailor the lead to fit the patient's anatomy or target structure.

[0044] In some examples, the stimulation lead 508 may include one or more electrodes that may be located at or grouped at the tip of the lead, such as at a distance from the housing, or the electrodes may be distributed along the length of the lead. In some examples, the lead may include multiple different electrode groups of one or more electrodes located at different locations along the length of the lead. Additionally, the housings of the various devices described herein may include one or more electrodes configured for use in delivering electrical stimulation. Each of the electrodes within or coupled to the implantable system 502 may be separately addressable by neuromodulation therapy control or coordination circuitry for implementing coordinated therapy to one or more targets.

[0045] Various stimulation configurations can be used with any of the electrode or lead types described herein. In some examples, different configurations can be used to provide or modify the stimulation field, thereby affecting the degree and manner of neural excitation. Configurations can include, for example, unipolar, bipolar, and various combinations of multipolar configurations. In bipolar or multipolar configurations, guard electrodes can be used to help induce excitation or inhibit neural activity. In some examples, electrode configurations can be dynamically changed, for example, through a particular therapy, e.g., by programming changes, or during operation to achieve a particular therapy.

[0046] In some examples, the sensors 506 may include electrodes for sensing electrical activity, such as using an electrocardiogram (ECG), impedance, an electromyogram (EMG) of selected muscles, and / or an electroneurogram (ENG) of targeted cranial nerves and branches, among others. The sensors 506 may include pressure sensors, photoplethysmography (PPG) sensors, chemical sensors (e.g., pH, lactate, glucose, etc.), or other sensors that may be used to physiologically sense cardiac, respiratory, or other physiological activity. In some examples, the sensors 506 may include accelerometers, gyroscopes, or geomagnetic sensors that may be configured to measure, for example, patient or device movement, vibration, position, or orientation information. Other examples of sensors 506 are described elsewhere herein, for example, in the description of the machine 1700 and various I / O components 1742, such as the biometric component 1732, the movement component 1734, and the environmental component 1736. In some examples, information from the sensor 506 may be received by the processor circuit 510 and used to update or titrate a neuromodulation therapy.

[0047] In some examples, implantable system 502 may include one or more sensors 506 that may be used to administer closed-loop neuromodulation therapy that is based, at least in part, on patient physiological state information (e.g., respiration, heart rate, blood pressure, nerve or muscle activation, or other information). In some examples, sensor 506 may be used to receive diagnostic information or to receive information regarding the patient's movement or position.

[0048] In some examples, hypoglossal nerve stimulation, such as for treating OSA, may be controlled based, at least in part, on information from an accelerometer or gyroscope to determine the patient's respiration, the patient's activity, and body orientation or position, along with information from a pressure sensor related to respiration, for example. In other words, using information from sensors 506, including accelerometers and pressure sensors, etc., implantable system 502 can control neuromodulation therapy applied to the hypoglossal nerve, which may include, for example, stimulation during specific times within the respiratory cycle, and may use the position information to automatically enable therapy, for example, while the patient is sleeping.

[0049] 5, external system 520 may include various components that may be provided together as a unitary external device, or may include multiple devices configured to cooperate to manage a patient's therapy, manage devices such as implantable system 502, or perform other functions related to implantable system 502. External system 520 may include an antenna 522, a processor circuit 524, and an interface 526, among other components or modules.

[0050] Antenna 522 may include one or more antennas that may be configured for short-range or long-range communication, for example, with antenna 504 of implantable system 502, a different implantable device or system, or another external device. In some examples, antenna 522 and antenna 504 may be used to exchange power or data between implantable system 502 and external system 520. For example, information regarding a prescribed therapy may be uploaded from external system 520 to implantable system 502, or information regarding a physiological condition, as measured by sensor 506, may be downloaded from implantable system 502 to external system 520.

[0051] The processor circuitry 524 may include a general-purpose or special-purpose processor configured to perform various activities in the external system 520 or in coordination with the implantable system 502. In one example, the processor circuitry 524 of the external system 520 is configured to manage telemetry or data signal communication with the implantable system 502, for example, using the antenna 522 or other communication circuitry.

[0052] Interface 526 may include a patient or clinician interface, for example, to report device information or to receive instructions or therapy parameters for implementation by implantable system 502. In some examples, interface 526 may include an interface or gateway to facilitate communication between 502 or external system 520 and a patient management system or other medical record system. Other features, modules, and components of implantable system 502 and external system 520 may be included within system 500 to assist in administering various neuromodulation therapies.

[0053] In some examples, the systems, devices, and components described herein, including at least the implantable system 502 and the external system 520 of system 500, can be used to deliver neuromodulation therapy to neural targets within a patient's body, for example, to treat one or more disorders or diseases. In some examples, system 500 or its components can be configured to deliver neuromodulation therapy to multiple neural targets in a coordinated manner, e.g., simultaneously or in a time-shared sequence. In some examples, neuromodulation therapy can include one or more, or a combination of, neural stimulation and blocking signals, directed to afferent or efferent neural structures or targets, e.g., to trigger different responses. Therapy can optionally include using vector-based stimulation modalities to target specific nerves or neural regions, or can involve relatively targeted or isolated nerve fibers. In some examples, coordinated neuromodulation therapy can include blocking a first neural target while stimulating a second neural target, or stimulating multiple different neural targets simultaneously (or in a time sequence).

[0054] In certain instances, a patient's particular disorder or disease may dictate particular neural targets to modulate via neuromodulation therapy. For example, to treat obstructive sleep apnea using system 500, various cranial nerves may be targeted, individually or together, including, for example, the trigeminal nerve (e.g., the V3 mandibular branch 428 of the trigeminal nerve), the hypoglossal nerve 418 (e.g., including one or more branches thereof), the glossopharyngeal nerve 412, the vagus nerve 416, or the facial nerve 402 (e.g., including various extracranial branches thereof).

[0055] In one example, the system 500 may be used to treat OSA by administering neuromodulation therapy to or including the mandibular branch of the trigeminal nerve 428 and the hypoglossal nerve 418. In this example, neuromodulation of the mandibular branch of the trigeminal nerve 428 may affect motor control of the mylohyoid muscle 114 or the anterior belly of the digastric muscle 204, and neuromodulation of the hypoglossal nerve 418 may affect motor control of the muscles of the tongue 406.

[0056] In one example, the system 500 may be used to treat OSA by administering neuromodulation therapy to or including the facial nerve 402 and to the hypoglossal nerve 418. In this example, neuromodulation of the facial nerve 402 may affect motor control of the stylohyoid muscle 304 or the posterior belly of the digastric muscle 208, and neuromodulation of the hypoglossal nerve 418 may affect motor control of the muscles of the tongue 406.

[0057] In one example, system 500 may be used to treat OSA by administering neuromodulation therapy to or including the glossopharyngeal nerve 412 and the hypoglossal nerve 418. In this example, neuromodulation of the glossopharyngeal nerve 412 may affect motor control of the stylopharyngeus muscle, and neuromodulation of the hypoglossal nerve 418 may affect motor control of the muscles of the tongue 406.

[0058] In some examples, the system 500 may be used to treat OSA by administering neuromodulation therapy to or including various branches of the hypoglossal nerve 418, including the anterior ramus, posterior ramus, or multiple branches simultaneously, including or using a bilateral configuration to target branches on either side of the patient's midline 102. Neuromodulation of the hypoglossal nerve 418 may affect motor control of various muscles of the tongue 406. In some examples, neuromodulation therapy including stimulating or blocking the hypoglossal nerve 418 may be combined with therapy targeting one or more of the mandibular branch 428 of the trigeminal nerve (e.g., to affect motor control of the mylohyoid muscle 114 or the anterior belly of the digastric muscle 204), the facial nerve 402 (e.g., to affect motor control of the stylohyoid muscle 304 or the posterior belly of the digastric muscle 208), or the glossopharyngeal nerve 412 (e.g., to affect motor control of the stylopharyngeus muscle), among others.

[0059] Any one or more branches of the hypoglossal nerve 418 may receive neuromodulation therapy from the implantable system 502. For example, any one or more of the posterior branches of the hypoglossal nerve 418 may receive neuromodulation, including "branch" branches from the hypoglossal nerve sheath, such as the descending branch, also referred to as the superior root of the cervical nerve trap, the thyrohyoid branch, or the geniohyoid branch. Any one or more of the anterior branches of the hypoglossal nerve 418 may receive neuromodulation, including, for example, where the main trunk of the hypoglossal nerve 418 branches into the muscles of the tongue, also referred to as the myogenic branch (B6), or the myogenic branch itself. The myogenic branch may include sub-branches or nerve fibers that innervate specific muscles of the tongue.

[0060] In some examples, the system 500 may be used to treat OSA or other disorders or diseases, such as heart failure, high blood pressure, atrial fibrillation, epilepsy, depression, stroke, autism, inflammatory bowel disease, chronic inflammation, chronic pain (e.g., in the cervical region, lower back, or elsewhere), tinnitus, or rheumatoid arthritis, among others, by administering neuromodulation therapy to or including the vagus nerve 416. Neuromodulation of the vagus nerve 416 may affect parasympathetic tone, thereby treating or alleviating symptoms associated with the various diseases or disorders specifically mentioned. In some examples, therapy involving stimulation of the vagus nerve 416 may include therapy administered to one or more branches of the hypoglossal nerve 418, the mandibular branch 428 of the trigeminal nerve, the facial nerve 402, or the glossopharyngeal nerve 412. In some examples, neuromodulation therapy involving stimulating or blocking a portion of the vagus nerve 416 may be combined with therapy targeting one or more of the glossopharyngeal nerve 412 (e.g., to further affect parasympathetic tone), the carotid sinus (e.g., to stimulate baroreceptor response), or the superior cervical ganglion or its branches (e.g., to affect sympathetic tone).

[0061] In certain examples, neuromodulation therapy for the treatment of heart failure, hypertension, and / or atrial fibrillation may include therapy involving or administered to one or more of the glossopharyngeal nerve 412 (e.g., to affect parasympathetic tone, such as by interacting with the vagus nerve 416), the superior cervical ganglion (e.g., to affect sympathetic tone), or the carotid sinus (e.g., to stimulate baroreceptor response).

[0062] In certain examples, the system 500 may be configured to treat heart failure, high blood pressure, migraine headaches, dry mouth, or other diseases or disorders by administering neuromodulation therapy to or including the glossopharyngeal nerve 412. Stimulation or blockade of the glossopharyngeal nerve 412 may, for example, affect parasympathetic tone or affect motor activity of the stylopharyngeus muscle.

[0063] In some examples, the system 500 may be configured to treat drug-refractory epilepsy, depression, post-traumatic stress disorder (PTSD), migraine headaches, attention deficit hyperactivity disorder (ADHD), craniofacial pain syndromes, among other diseases and disorders, by administering neuromodulation therapy, for example, to or including the mandibular branch 428 of the trigeminal nerve.

[0064] In some examples, system 500 may be configured to treat craniofacial pain syndromes or facial nerve palsy, among other things, by administering neuromodulation therapy to or including the facial nerve 402, including various extracranial branches or its roots. In some examples, system 500 may be configured to treat fibromyalgia, for example, by administering neuromodulation therapy to or including the spinal accessory nerve, for example, to target the trapezius muscle, which is understood to be a potential trigger point for fibromyalgia. In some examples, system 500 may be configured to treat migraines or tinnitus, for example, by administering neuromodulation therapy to or including the greater occipital nerve, such as may be accessed using electrodes implanted in the patient's neck region.

[0065] Thus, neuromodulation therapy can be administered using system 500, or components thereof, to treat a variety of different diseases or disorders. The therapy can include targeted single-location stimulation or blockade (e.g., using electrical pulses, ultrasound signals, or other energy) therapy at one (among other things) of the locations described herein, or can include coordinated stimulation or blockade across or using multiple different locations. The following description describes some examples of different implant locations and neural targets, although other locations, including those specifically mentioned above, can be used as well.

[0066] In some examples, the implantable system 502 can include various devices that can be implanted in various different parts of the body, including in the cervical region. The examples in Figures 3 and 6-13 generally show different examples of the implantable system 502 implanted, for example, in various different cervical locations.

[0067] FIG. 6 generally illustrates a first example 600 including a first implantable device 608 implanted within a patient's submandibular triangle 206. In the first example 600, the first implantable device 608 may be coupled to an anatomical structure in the submandibular triangle 206 using, for example, sutures, anchors, or other attachment means. In an example, the first implantable device 608 may be coupled to one or more of the mandible 116, the anterior digastric belly 204, the posterior digastric belly 208, the mylohyoid muscle 114, the digastric tendon 602, or other bones, tendons, muscles, or other structures within or adjacent to the submandibular triangle 206. In the example of FIG. 6, the first implantable device 608 may be provided near but spaced apart from the patient's submandibular gland 604.

[0068] In the example of FIG. 6 , the first implantable device 608 includes a first header 610. The first header 610 may be used to couple one or more electrode leads, sensor leads, or other devices to the first implantable device 608. For example, the first header 610 may be used to couple the first implantable device 608 to a first electrode lead 606, which is tunneled to a cranial nerve target. An electrode configured to deliver an electrical stimulation signal to the neural target may be placed at or adjacent to the target. In one example, the first electrode lead 606 may be tunneled to the hypoglossal nerve in or near the anterior neck region of the patient.

[0069] In the example of Figure 6, the first implantable device 608 is shown with one header. The first implantable device 608 may optionally include multiple headers to interface the first implantable device 608 with one or more other leads, such as electrode leads, sensor leads, communication coils, or other devices. Referring again to Figure 4, for example, the implantable therapy device 426 may include multiple headers coupled to different leads extending on opposite sides of the body across the implantable therapy device 426.

[0070] 7 generally illustrates a second example 700 including a second implantable device 702 implanted within a patient's submandibular triangle 206. In the second example 700, the second implantable device 702 may be coupled to an anatomical structure within the submandibular triangle 206 using, for example, sutures, anchors, or other attachment means. In an example, the second implantable device 702 may be coupled to one or more of the mandible 116, the anterior belly of the digastric muscle 204, the posterior belly of the digastric muscle 208, the mylohyoid muscle 114, or other bones, tendons, muscles, or other structures within or adjacent to the submandibular triangle 206.

[0071] An example of a second implantable device 702 includes an elongated housing structure with respective headers on either side of the device. For example, the second implantable device 702 includes a first header 704 coupled to a first electrode lead 606 that may be tunneled to a first cranial nerve target. The second implantable device 702 may include a second header 706 coupled to a second electrode lead 712 and a first data and power communication lead 714. The second electrode lead 712 may be coupled to a second cranial nerve target.

[0072] In one example, a first data and power communication lead 714 may couple the second implantable device 702 to a wireless communication coil 710. The wireless communication coil 710 may be configured to facilitate data or power signal communication with a wireless external device, for example, outside the patient's body. In one example, the wireless communication coil 710 includes an antenna 504 that may be used to communicate with an external system 520. Power or data signals received using the wireless communication coil 710 may be communicated to the second implantable device 702 for storage or use.

[0073] In the example of FIG. 7 , the wireless communication coil 710 may be coupled to or attached to the first coil support 708. The first coil support 708 and the wireless communication coil 710 may comprise flexible structures that may be positioned at or near a patient's tissue interface, such as beneath the skin and adjacent to muscle, bone, or other tissue. For example, the first coil support 708 may be provided on or adjacent to the anterior digastric belly 204 and facing away from the patient's body. In another example, the first coil support 708 may be provided within or behind the anterior digastric belly 204 in the view of FIG. 7 . The first coil support 708 may otherwise be directed elsewhere in the patient's anterior triangle 104 and may be coupled to the second implantable device 702 by tunneling the first data and power communication lead 714. For example, the first coil support 708 may be provided below the chin region, eg, away from the hyoid bone 110, at or near the tip of the patient's submental triangle 202.

[0074] 8 generally illustrates a third example 800 including a submental implantable device 802 implanted within a patient's inframental triangle 202. In the third example 800, the submental implantable device 802 may be coupled to an anatomical structure within the inframental triangle 202 using, for example, sutures, anchors, or other attachment means. In some examples, the submental implantable device 802 may be coupled to one or more of the mylohyoid muscle 114, the anterior belly of the digastric muscle 204, the hyoid bone 110, or other bones, tendons, muscles, or other structures within or adjacent to the inframental triangle 202. The submental implantable device 802 may be positioned adjacent to or at least partially below the anterior belly of the digastric muscle 204, such as between the anterior belly of the digastric muscle 204 and the underlying mylohyoid muscle 114.

[0075] An example of a submental implantable device 802 includes an elongated housing structure with at least one header at a first side end of the device. In the example of Figure 8, the submental implantable device 802 is coupled to an electrode lead 806 that can be tunneled to a first cranial nerve target. The submental implantable device 802 can be coupled to a submental communication coil 804 using, for example, a second data and power communication lead 808.

[0076] 8 , the submental communicating coil 804 may be coupled to or attached to a second coil support 810. The second coil support 810 and the submental communicating coil 804 may include flexible structures that may be positioned at or near a patient's tissue interface, such as beneath the skin and adjacent to muscle, bone, or other tissue. For example, the second coil support 810 may be provided on or adjacent to at least one of the posterior digastric belly 208 and the anterior digastric belly 204, and the submental communicating coil 804 may be oriented away from the patient's body. In another example, the first coil support 708 may be provided inside the digastric muscle, for example, adjacent to the mylohyoid muscle 114.

[0077] 9 generally illustrates a fourth example 900 including a third implantable device 902 implanted within a patient's carotid trigone 302. In the fourth example 900, the third implantable device 902 may be coupled to an anatomical structure within the carotid trigone 302 using, for example, sutures, anchors, or other attachment means. In an example, the third implantable device 902 may be coupled to one or more of the SCM 106, the omohyoid muscle 306, the hyoid bone 110, or other bones, tendons, muscles, or other structures within or adjacent to the carotid trigone 302.

[0078] An example of a third implantable device 902 includes an elongated housing structure with at least one header at a first side end of the device. In the example of FIG. 9, the third implantable device 902 is coupled to a multipolar electrode lead 904 that can be tunneled to a cranial nerve target. For example, the electrode array 906 of the multipolar electrode lead 904 can be positioned at or near a neural target (or targets) outside the carotid trigone 302, and the multipolar electrode lead 904 can be tunneled to the carotid trigone 302 and coupled to the third implantable device 902. In one example, the electrode array 906 can be provided at or near the patient's hypoglossal nerve 418, such as in or near the submandibular trigone 206.

[0079] 10 generally illustrates an example of a first segmentation device 1000. The first segmentation device 1000 may be an implantable device configured to be implanted in or within a patient's anterior cervical region. For example, the first segmentation device 1000 may be configured to be implanted within one or more different triangles in the cervical region, as described further below. That is, different segments or portions of the first segmentation device 1000 may be implanted within different triangles in the patient's cervical region. In one example, the first segmentation device 1000 comprises the implantable system 502 from the example of FIG. 5.

[0080] The first segmented device 1000 includes a first housing 1004 and a second housing 1006 that may be coupled using a flexible housing joint 1014. The first segmented device 1000 may include a first cuff electrode 1002 (e.g., including one or more electrodes) that is coupled to the first housing 1004 using an electrode lead 1010. The first segmented device 1000 may further include a communication coil 1008 that may be electrically coupled to the second housing 1006 using power and data leads 1016.

[0081] The communications coil 1008 may be coupled to a support member 1012, which may help maintain the coil in a configuration suitable for wireless communication with an external transmitter. In certain examples, the support member 1012 may include one or more attachment features 1018 for coupling the support member 1012, and therefore the communications coil 1008, to an anatomical structure within the patient's body. For example, the attachment features 1018 may include one or more through-holes in the support member 1012, which may be used to suture the support member 1012 to a tissue site. In certain examples, the support member 1012 may include a flexible, irregularly shaped flap configured for implantation and avoidance of particular structures, such as the submandibular gland or nerve to the mylohyoid bone. The flap may help to couple the support member 1012 upward.

[0082] In one example, the second housing 1006 includes a power storage circuit, which may include, for example, the power storage circuit 514 from the example of FIG. 5. The power storage circuit may include a battery, a capacitor bank, or other means for storing power such that it may be received wirelessly using the communications coil 1008.

[0083] In an example, the various leads and fittings comprising the first segmented device 1000 may include one or more electrical conductors. Power signals, electrical stimulation signals, or other signals may be communicated between different portions of the first segmented device 1000 using the conductors. For example, the housing fitting 1014 may include a power conductor so that a battery in the second housing 1006 can be used to power the electrical stimulation control circuitry in the first housing 1004.

[0084] In some examples, the first segmented device 1000 may include component parts that can be grouped together in a variety of different configurations, for example, to optimize implantation or configure the device to best fit a particular patient's anatomy. That is, the device may be configured to accommodate anatomical variations among different patients. For example, different lead lengths may be selected, or the orientation or position of different components along the signal chain may be adjusted.

[0085] In some examples, the first housing 1004 or the second housing 1006 may use headers to connect to various leads, or the first housing 1004 and the second housing 1006 may be integrated with their respective leads (e.g., attached at the time of manufacture rather than at the time of implantation). By using a modular approach, component parts may be surgically updated or upgraded.

[0086] In an example, each portion of the first segmented device 1000 may be configured for implantation in the patient's submandibular triangle 206 and submental triangle 202. That is, the first segmented device 1000 may be configured to extend between the triangular regions, for example, across a portion of the digastric muscle. Providing multiple portions of the first segmented device 1000 in different triangles of the neck region may help minimize interference between the first segmented device 1000 and patient movements due to, for example, digastric muscle activity. In an example, the first housing 1004 and the second housing 1006 may be sized differently, with the larger of the two housings positioned within a particular triangular region providing a larger cavity. Because muscles within the neck region may be used for complex movements of the head, neck, mouth, tongue, and other regions, such distributed configuration or implantation of the components of the first segmented device 1000 may help maintain patient comfort.

[0087] 11 generally illustrates an example of a submandibular implantable device 1100. The submandibular implantable device 1100 may be an implantable device configured to be implanted in or within a patient's anterior cervical region. For example, the submandibular implantable device 1100 may be configured to be implanted within one or more different triangles of the cervical region, as described further below. That is, different segments or portions of the submandibular implantable device 1100 may be implanted within the same triangle or within respective different triangles of the patient's cervical region.

[0088] The submandibular implantable device 1100 includes an implantable device housing 1102 that may contain, among other things, power storage circuitry, electrical stimulation generation circuitry, and control circuitry. The circuitry within the implantable device housing 1102 may be coupled to an electrode assembly 1116 using power, data, and therapy signal leads 1118, and the electrode assembly 1116 may be used to provide neuromodulation signals to cervical nerve targets within the patient. In some examples, the circuitry within the implantable device housing 1102 may be coupled to the electrode assembly 1116 via a device header 1110.

[0089] In some examples, the implantable device housing 1102 may be coupled to the communications coil 1106 using one or more conductors in the power, data, and therapy signal leads 1118. The communications coil may include a power communications coil and / or a telemetry antenna. In some examples, the communications coil 1106 may be coupled to a support member 1114. The support member 1114 may include one or more support attachment features 1108 for coupling the support member 1114 to tissue. In some examples, the support member 1114 may include a housing mount 1104 configured to receive or couple with the implantable device housing 1102. That is, the support member 1114 may include attachment structures or features that may be configured to secure or hold the implantable device housing 1102 together with the support member 1114. In some examples, the implantable device housing 1102 may include various features configured to mate with or be used in conjunction with the housing mount 1104. For example, the housing mount 1104 may include suture holes, and the device attachment features 1112 may include through-holes or grooves configured to receive sutures, so that sutures can be used to join the implantable device housing 1102 to the support member 1114 using the housing mount 1104. In certain examples, the support member 1114 may be configured to be bonded or otherwise attached to the mylohyoid muscle 114, such as in or near the patient's submental triangle 202 or submandibular triangle 206.

[0090] In certain examples, the device attachment feature 1112 may be configured to receive one or more sutures, bands, or flaps that may be looped around and attached to a structure such as the digastric tendon or hyoid bone or other connective tissue, thereby connecting the implantable device housing 1102 to a stable portion of the anatomy.

[0091] Figure 12 generally illustrates a first example submandibular triangle 1200 that may include or use the submandibular implantable device 1100 from the example of Figure 11. In the example, portions of the submandibular implantable device 1100 may be implanted within the submandibular triangle region of the neck, such as between the anterior digastric belly 204 and the posterior digastric belly 208.

[0092] 12, the support member 1114 of the submandibular implantable device 1100 may be coupled to one or more anatomical structures within the submandibular triangle. For example, the support member 1114 may be coupled to the anterior belly of the digastric muscle 204 using an anterior suture 1206, or to the posterior belly of the digastric muscle 208 using a posterior suture 1202, or to the mylohyoid muscle 114 using one or more other sutures, etc.

[0093] The implantable device housing 1102 may be coupled to the same digastric muscle structure as the support member 1114, or may be coupled to other anatomical structures in the submandibular triangle. For example, the implantable device housing 1102 may be coupled to the mylohyoid muscle 114, for example, using a housing-tissue anchor 1204. In some examples, the housing-tissue anchor 1204 may include one or more sutures that may be wrapped around or threaded through a portion of the implantable device housing 1102 and muscle tissue, thereby attaching the housing-tissue anchor 1204 to tissue within the submandibular triangle.

[0094] FIG. 13 generally illustrates a second submandibular triangle example 1300 that may include or use the submandibular implantable device 1100 from the example of FIG. 11 . In the example, the implantable device housing 1102 may be coupled to a support member 1114, for example, using a housing mount 1104. The assembly including the support member 1114 and the implantable device housing 1102 may be implanted within the submandibular triangle region of the neck, such as between the anterior digastric belly 204 and the posterior digastric belly 208. In one example, support attachment features 1108 of the support member 1114 may be used to couple respective side edges of the assembly to the anterior digastric belly 204 and the posterior digastric belly 208.

[0095] The example of Figure 13 shows the implantable device housing 1102 coupled to an outward-facing first surface of the support member 1114. That is, Figure 13 shows the implantable device housing 1102 facing toward the skin or facing away from other internal neck structures. In some examples, the implantable device housing 1102 can be coupled to an opposing second surface of the support member 1114, such as one facing inward toward the mylohyoid muscle 114 and other internal neck structures. The implantable device housing 1102 can be coupled to the support member 1114 using housing-to-support anchors 1302, which can include, for example, sutures, clips, cuffs, or other means for coupling the flexible support substrate of the support member 1114 to a structural housing.

[0096] 12 and 13 generally show a submandibular implantable device 1100 with power, data, and therapy signal leads 1118 extending from the submandibular triangle to the hypoglossal nerve target. One or more other neural targets may similarly be accessed using one or more other leads, for example, using the same support member 1114 and implantable device housing 1102 and circuitry therein.

[0097] 14 generally illustrates an example of a method 1400 that may include administering neuromodulation therapy to multiple cranial nerves. Method 1400 may optionally include or use system 500 or other systems configured to modulate neural stimulation or blocking therapy.

[0098] At block 1402, the method 1400 may include providing an implantable neuromodulation device in the anterior neck region of the patient. For example, block 1402 may include implanting the implantable system 502 (or one or more components thereof) in one or more of the submental triangle 202, the submental triangle 206, or the carotid trigone 302 in the anterior portion of the patient's neck. In some examples, block 1402 may include implanting or coupling multiple different housings containing multiple portions of the system 500 to different anatomical structures within or adjacent to different triangular regions in the anterior portion of the patient's neck.

[0099] At block 1404, the method 1400 may include providing a first lead, e.g., an electrode lead (e.g., a first instance of the stimulation lead 508), to or near a first cranial nerve target within the patient. Block 1404 may include coupling the electrode lead to signal generation circuitry within a housing such as that implanted with the neuromodulation device in block 1402. In an example, block 1404 may include implanting a lead comprising multiple electrodes, the electrodes being positioned at or near one or more of the hypoglossal nerve 418, the glossopharyngeal nerve 412, the facial nerve 402, the mandibular branch of the trigeminal nerve 428, the vagus nerve 416, or other locations within or near the patient's head or neck. In an example, the method 1400 may include providing a second lead, e.g., an electrode lead (e.g., a second instance of the stimulation lead 508), to or near a second cranial nerve target within the patient's body at block 1406. Block 1406 may include coupling an electrode lead to signal generation circuitry within the housing as implanted in block 1402. In one example, block 1406 may include implanting a lead comprising multiple electrodes positioned on or near one or more of the hypoglossal nerve 418, glossopharyngeal nerve 412, facial nerve 402, mandibular branch of the trigeminal nerve 428, vagus nerve 416, or other locations in or near the patient's head or neck.

[0100] At block 1408, method 1400 may include delivering a first neuromodulation therapy to a first cranial nerve target, e.g., using a first electrical signal from a signal generation circuit (e.g., using stimulation signal generation circuit 516) and using an electrode of a first electrode lead. In some examples, the therapy may include an electrical signal configured to treat a particular disorder of the patient, which may include, among other things, one or more of OSA, heart failure, high blood pressure, or one or more other disorders as described herein.

[0101] At block 1410, method 1400 may include administering a second neuromodulation therapy to a second cranial nerve target, for example, using a second electrical signal from the signal generation circuit (e.g., using the stimulation signal generation circuit 516) and using an electrode of the second electrode lead. In some examples, administering the first neuromodulation therapy at block 1408 and administering the second neuromodulation therapy at block 1410 may include multiple portions of a common therapy configured to treat the same disorder or multiple disorders.

[0102] Some examples of implantable device housings for cervical implantation are represented herein as generally elongated, prismatic, or cylindrical structures. The housing may include a container that can be sealed to protect electronics, circuitry, or other contents from the internal environment of the human body. The housing may be sized and configured to occupy a minimal volume, for example, to enhance patient comfort or reduce the risk of infection or complications during implantation, among other things.

[0103] In some examples, the housing may be configured (e.g., sized, shaped, oriented) according to one or more characteristics of the implantation destination. For example, the shape of the housing may optionally be based on the characteristics of a triangle in the patient's neck region. For example, different shaped housings may be configured for use in the submental triangle 202 and the submandibular triangle 206. In some examples, a housing for use in the trigone region may include a tapered structure that causes the housing contour to generally conform to or follow the corresponding anatomical contour of the neck region when the housing is implanted.

[0104] For example, FIG. 15 generally illustrates a tapered housing 1500 for a device to be implanted in or near a patient's triangular-shaped neck region. The tapered housing 1500 may include a tapered structure, such as a truncated pyramid. The illustrated example of the tapered housing 1500 includes a base surface 1510 and an opposing top surface 1508. The tapered housing 1500 may include tapered sidewalls 1502, which may include a trapezoidal portion that may extend between the base surface 1510 and the top surface 1508. In some examples, the surface area of ​​the top surface 1508 may be smaller than the surface area of ​​the base surface 1510. One or more headers may be coupled to or integral with the tapered housing 1500, for example, at or along any one or more of the side surfaces, the base surface 1510, and the top surface 1508.

[0105] In some examples, the tapered housing 1500 can be configured for implantation within at least a portion of a patient's anterior triangle 104. In some examples, the base surface 1510 can be configured to be implanted within or adjacent to a portion of the mylohyoid muscle 114, such that the tapered portion of the housing structure extends away from the mylohyoid muscle 114.

[0106] In certain examples, the tapered housing 1500 may include elongated tapered sidewalls 1502, and at least one surface characteristic of the sidewalls may be sized or configured to correspond to or partially or entirely fit the contours of a triangular region of the neck, such as within the submandibular triangle 206, the submental triangle 202, or the carotid triangle 302. For example, the first implantable device 608 from the example of FIG. 6 may include a tapered housing with a base portion and a sidewall, the base portion disposed adjacent the posterior digastric belly 208, and the sidewall extending toward the area proximal or substantially adjacent to the mandible 116 and the anterior digastric belly 204, allowing the device to occupy the submandibular triangle 206. In other words, the device may include a base portion that is sized and configured to correspond to or match the length or width characteristics of the posterior digastric belly 208 (e.g., between the mandible 116 and the hyoid bone 110). The device may include side walls that are configured to correspond to or match the length or width characteristics of the anterior digastric belly 204 (e.g., between the hyoid bone 110 and the mandible 116), or the device may include side walls that are configured to correspond to or match the length or width characteristics of the inferior margin portion of the mandible 116 (e.g., between the posterior digastric belly 208 and the anterior digastric belly 204).

[0107] 9 may include a tapered housing with a base portion and a sidewall, the base portion being disposed adjacent the omohyoid muscle 306, for example, and the sidewall extending toward the area adjacent or substantially adjacent to the SCM 106 and the posterior digastric belly 208. In other words, the device may include a base portion that is sized and configured to correspond to or match the length or width characteristics of a portion of the omohyoid muscle 306 (e.g., a portion of the omohyoid muscle 306 that is within the carotid triangle 302). The device may include sidewalls configured to correspond to or match the length or width characteristics of the SCM 106 (e.g., the portion of the SCM 106 that is within the carotid trigone 302), or the device may include sidewalls configured to correspond to or match the length or width characteristics of the posterior digastric belly 208 (e.g., the portion of the posterior digastric belly 208 that bounds the carotid trigone 302, e.g., between the hyoid bone 110 and the SCM 106). Accordingly, the third implantable device 902 may be configured with a housing that occupies the carotid trigone 302.

[0108] In other examples, the tapered housing 1500 may be configured to be implanted in or adjacent to various other muscles, tendons, bones, or tissues, such as in or adjacent to a portion of the digastric muscle 112, SCM 106, omohyoid muscle 306, or other tissue. Such a device or housing may be configured to occupy all or substantially all of the cavity available within the triangular region of the neck, for example, the submandibular triangle 206, the submental triangle 202, or the carotid triangle 302, among others.

[0109] The example of Figure 15 shows the tapered housing 1500 as including various abrupt edges or apexes. One or more of the edges or apexes, or adjacent surfaces, can optionally be chamfered or rounded. In some examples, the tapered housing 1500 can include a base or top surface that is at least partially rounded, making the housing structure at least partially (or entirely) frusto-conical. In some examples, the top surface 1508 or the base surface 1510 can be non-planar, and the top surface 1508 and the base surface 1510 can be at least partially non-parallel.

[0110] In some examples, the tapered housing 1500 can include various headers on one or more of the surfaces or faces of the housing. In the example of FIG. 15, the tapered housing 1500 includes a first header 1504 and a second header 1506. The headers can be configured to couple circuitry, sensors, or other components within the tapered housing 1500 with leads or other devices outside the tapered housing 1500. In the example of FIG. 15, the first header 1504 and the second header 1506 are provided on adjacent sides of the housing; other header locations can be used as well. In some examples, the location of one or more of the headers can be influenced or determined by the implant location or the neurological target location.

[0111] 16 shows an example of a cylindrical housing 1600 for a device generally implanted in or near a patient's triangular-shaped neck region. The cylindrical housing 1600 may include a capsule-shaped structure, such as a cylinder extending along a longitudinal axis and including rounded ends or caps. The cylindrical housing 1600 may enclose a signal generating circuit 1606 and may have multiple headers, such as a first header 1602 and a second header 1604, for interfacing the signal generating circuit 1606 with various leads. The first header 1602 and the second header 1604 may be located at opposite ends of the device, or multiple headers may be provided at one end.

[0112] In some examples, the cylindrical housing 1600 can be configured for implantation along a portion of an anatomical target. For example, the cylindrical housing 1600 can be configured to couple to a tissue target within the trigone region. For example, the cylindrical housing 1600 can be configured to couple to the anterior digastric belly 204, or the posterior digastric belly 208, or the SCM 106. In some examples, the cylindrical housing 1600 can be configured to couple to the SCM 106 within the carotid trigone 302, and the cylindrical housing 1600 can be coupled to a lead extending outside the carotid trigone 302, such as similar to that described above in the example of FIG. 9.

[0113] 17 is a diagrammatic representation of a machine 1700 within which instructions 1708 (e.g., software, programs, applications, applets, apps, or other executable code) may be executed that cause the machine 1700 to perform any one or more of the techniques described herein. The machine 1700 may optionally include an implantable system 502, an external system 520, or components or portions thereof, or components or devices that may be coupled to at least one of the implantable system 502 and the external system 520.

[0114] In some examples, the instructions 1708 may cause the machine 1700 to perform any one or more of the methods, control, therapy algorithms, signal generation routines, or other processes described herein. The instructions 1708 transform a general-purpose, unprogrammed machine 1700 into a specific machine 1700 programmed to perform the functions described and illustrated in the manner described. The machine 1700 may operate as a standalone device or may be coupled (e.g., networked) with other machines. In networked deployments, the machine 1700 may operate in the capacity of a server machine or a client machine in a server-client network environment, or as a peer machine in a peer-to-peer (or distributed) network environment. The machine 1700 may include, but is not limited to, various systems or devices that may be in communication with the implanted system 502 or the external system 520, including, for example, a server computer, a client computer, a personal computer (PC), a tablet computer, a laptop computer, a notebook, a set-top box (STB), a PDA, an entertainment media system, a cellular phone, a smartphone, a mobile device, a wearable device (e.g., a smart watch), a smart home device (e.g., a smart appliance), other smart devices, a web appliance, a network router, a network switch, a network bridge, or any machine capable of executing instructions 1708, either sequentially or in any other manner that specifies actions to be taken by the machine 1700. Additionally, although only a single machine 1700 is described, the term "machine" is also taken to include a collection of machines that individually or together execute instructions 1708 to perform any one or more of the techniques described herein.

[0115] Machine 1700 may include a processor 1702, memory 1704, and I / O components 1742, which may be configured to communicate with each other via a bus 1744. In one exemplary embodiment, processor 1702 (e.g., a central processing unit (CPU), a reduced instruction set computing (RISC) processor, The machine 1700 may include, for example, a processor 1706 and a processor 1710 that execute instructions 1708, such as a CISC processor, a Complex Instruction Set Computing (CISC) processor, a graphics processing unit (GPU), a digital signal processor (DSP), an ASIC, a radio-frequency integrated circuit (RFIC), another processor, or any suitable combination thereof. The term "processor" is optionally intended to include a multi-core processor, which may include two or more independent processors (sometimes referred to as "cores") that may execute multiple instructions simultaneously. While FIG. 17 shows multiple processors 1702, machine 1700 may include a single single-core processor, a single multi-core processor (e.g., a multi-core processor), multiple single-core processors, multiple multi-core processors, or any combination thereof.

[0116] Memory 1704 includes main memory 1712, static memory 1714, and storage device 1716, all accessible to processor 1702 by bus 1744. Main memory 1704, static memory 1714, and storage device 1716 store instructions 1708 that implement any one or more of the techniques or functions described herein. The instructions 1708 may also reside, completely or partially, within main memory 1712, within static memory 1714, within a machine-readable medium 1718 in storage device 1716, within at least one of processors 1702 (e.g., a processor's cache memory), or any suitable combination thereof during their execution by machine 1700.

[0117] I / O components 1742 may include various components for receiving input, providing output, generating output, transmitting information, exchanging information, obtaining measurements, etc. The specific I / O components 1742 included in a particular machine will depend on the type of machine. For example, a device programmer or a portable machine such as a cell phone may include a touch input device or other such input mechanism, while a headless server machine would not include such a touch input device. It will be appreciated that I / O components 1742 may include other components not shown in FIG. 17 . In various exemplary embodiments, I / O components 1742 may include output components 1728 and input components 1730. Output components 1728 may include visual components (e.g., a display such as a plasma display panel (PDP), light emitting diode (LED) display, liquid crystal display (LCD), projector, or cathode ray tube (CRT)), acoustic components (e.g., speakers), haptic components (e.g., vibration motors, resistive mechanisms), other signal generators, etc. Input components 1730 may include alphanumeric input components (e.g., a keyboard, a touchscreen configured to receive alphanumeric input, a photo-optical keyboard, or other alphanumeric input component), point-based input components (e.g., a mouse, touchpad, trackball, joystick, motion sensor, or another pointing instrument), tactile input components (e.g., a physical button, a touchscreen that provides the position and / or force of a touch or touch gesture, or other tactile input component), audio input components (e.g., a microphone), physiological sensor components, etc.

[0118] Further, in an exemplary embodiment, I / O components 1742 may include, among others, biometric components 1732, motion components 1734, environmental components 1736, or position components 1738. For example, biometric components 1732 may include components that detect expressions (e.g., hand expressions, facial expressions, vocal expressions, gestures, or eye movements), measure biometric signals (e.g., blood pressure, heart rate, body temperature, sweat, or brain waves), identify people (e.g., voice identification, retinal identification, face identification, fingerprint identification, or electroencephalogram-based identification), etc. Motion components 1734 may include acceleration sensors (e.g., accelerometers), gravity sensor components, rotation sensor components (e.g., gyroscopes), or the like. The environmental components 1736 may include, for example, a light sensor component (e.g., a light meter), a temperature sensor component (e.g., one or more thermometers that detect air temperature), a humidity sensor component, a pressure sensor component (e.g., a manometer), an acoustic sensor component (e.g., one or more microphones that detect background noise), a proximity sensor component (e.g., an infrared sensor that detects nearby objects), a gas sensor (e.g., a gas detection sensor that detects the concentration of harmful gases for safety purposes or measures pollutants in the air), or other components that may provide readings, measurements, or signals corresponding to the surrounding physical environment. The position components 1738 may include a location sensor component (e.g., a GPS receiver component), an altitude sensor component (e.g., an altimeter or manometer that detects air pressure from which altitude can be derived), an orientation sensor component (e.g., a magnetometer), etc.

[0119] Communications may be implemented using a wide variety of technologies. I / O component 1742 further includes a communications component 1740 operable to couple machine 1700 to network 1720 or other devices 1722 via couplings 1724 and 1726, respectively. For example, communications component 1740 may include a network interface component or another suitable device that interfaces with network 1720. In further examples, communications component 1740 may include a wired communications component, a wireless communications component, a cellular communications component, a near field communications (NFC) component, a Bluetooth (registration tag) component, or a Wi-Fi (Wi-Fi) component, among others. Device 1722 may be another machine or any of a wide variety of peripherals, which may include, for example, other implantable or external devices.

[0120] Various memories (e.g., memory 1704, main memory 1712, static memory 1714, and / or memory of processor 1702) and / or storage 1716 may store one or more sets of instructions and data structures (e.g., software) that perform or are used by any one or more of the techniques or functions described herein. These instructions (e.g., instructions 1708), when executed by processor 1702, cause various operations to perform disclosed embodiments, including various neuromodulation or neurostimulation therapies or functions supporting same.

[0121] The following aspects provide a non-limiting overview of the neuromodulation systems, methods, and devices described herein. Aspect 1 may include or use the subject matter (e.g., an apparatus, a method, a means for performing an action, or a machine-readable medium containing instructions that, when executed by a machine, can cause the machine to perform an action) of one or any combination of the following aspects, which may include or use, for example, an implantable system for neuromodulation of a cranial nerve, the system including: a first housing configured to be implanted in a patient's anterior neck region, at or below the patient's mandible; a first electrode lead coupled to the first housing, the first electrode lead including at least one electrode configured to be positioned at or near a first cranial nerve target within the patient's body; and signal generation circuitry disposed within the first housing and configured to generate, using the at least one electrode of the first electrode lead, an electrical neuromodulation signal for delivery to the cranial nerve target. The neuromodulation signal may be configured to treat a patient's breathing or sleep disorder, among other disorders that may be treated using neuromodulation therapy administered to a cranial nerve or other nerve.

[0122] Aspect 2 may include or use, or optionally be combined with, the subject matter of Aspect 1, and optionally includes a neuromodulation signal generated by a signal generation circuit configured to treat obstructive sleep apnea.

[0123] Aspect 3 may include or use, or optionally be combined with, the subject matter of Aspect 2, and optionally includes a first cranial nerve target comprising the body of the patient's hypoglossal nerve or a branch of the patient's hypoglossal nerve.

[0124] Aspect 4 may include or use, or optionally be combined with, the subject matter of Aspect 3, and optionally includes or uses a second electrode lead coupled to the first housing, the second electrode lead including at least one electrode configured for placement at or near a second cranial nerve target within the patient's body, and signal generation circuitry configured to generate, using electrodes on the first and second electrode leads, respective neuromodulation signals for delivery to the first and second cranial nerve targets to treat obstructive sleep apnea or one or more other diseases or disorders.

[0125] Aspect 5 may include or use, or optionally be combined with, the subject matter of aspect 4, and optionally includes a second cranial nerve target that includes a branch of the patient's trigeminal nerve. Aspect 6 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 4 or 5, and optionally includes a second cranial nerve target including a branch of the patient's facial nerve.

[0126] Aspect 7 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 4-6, and optionally includes a second cranial nerve target comprising a ganglion or branch of the patient's glossopharyngeal nerve.

[0127] Aspect 8 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 4-7, optionally including a signal generation circuit configured to simultaneously provide neuromodulation signals to electrodes of the first and second electrode leads.

[0128] Aspect 9 may include or use, or optionally be combined with, the subject matter of aspect 8, and optionally includes or uses an electrical stimulation vector such as may occur in response to a first one of the neuromodulation signals, the vector being configured to modify a different electrical stimulation vector such as may occur in response to a second one of the neuromodulation signals.

[0129] Aspect 10 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 4-9, and optionally includes or uses a signal generation circuit configured to provide neuromodulation signals to each electrode of the first and second electrode leads in a time-multiplexed manner.

[0130] Aspect 11 may include or use, or optionally be combined with, the subject matter of Aspect 10, and optionally includes or uses signal generation circuitry configured to provide neuromodulation signals as at least partially temporally overlapping electrical signal pulses.

[0131] Aspect 12 may include, use, or optionally be combined with the subject matter of any one or any combination of Aspects 1-11, and optionally includes a first cranial nerve target including a neural pathway that affects activity of one or more of the patient's tongue, mylohyoid, stylohyoid, digastric, or stylopharyngeus muscles. In an example of Aspect 12, the electrical neuromodulation signal may be configured to treat obstructive sleep apnea or another disorder in the patient.

[0132] Aspect 13 may include, use, or optionally be combined with the subject matter of any one or any combination of aspects 1-12, and optionally includes a first cranial nerve target within the patient's body, the first cranial nerve target including the anterior or posterior rami of the patient's hypoglossal nerve. In aspect 13, the first electrode may be configured to be implanted at or near the anterior or posterior rami of the patient's hypoglossal nerve.

[0133] Aspect 14 may include or use, or optionally be combined with, the subject matter of any one or any combination of Aspects 1-13, and optionally include or use first and second electrodes positioned at different locations along a length of the first electrode lead. In an example of Aspect 14, the first cranial nerve target within the patient's body may include the anterior and / or posterior rami of the patient's hypoglossal nerve, and the first and second electrodes may be configured to provide neuromodulation signals to the anterior and / or posterior rami of the hypoglossal nerve.

[0134] Aspect 15 may include, use, or optionally be combined with the subject matter of any one or any combination of Aspects 1-14, and may optionally include or use a second electrode lead coupled to the first housing, and the second electrode lead may include at least one electrode configured for placement at or near a second cranial nerve target within the patient. In Aspect 15, the first and second cranial nerve targets may be on opposite sides of the patient's sagittal midline.

[0135] Aspect 16 may include or use, or optionally be combined with, the subject matter of Aspect 15, optionally including or using a first housing including a first enclosed container and a different second enclosed container that are electrically coupled.

[0136] Aspect 17 may include or use, or optionally be combined with, the subject matter of Aspect 16, optionally including or using first and second electrode leads coupled to a first sealed can and a different second sealed can, respectively.

[0137] Aspect 18 may include or use, or optionally be combined with, the subject matter of one of Aspects 16 or 17 or a combination thereof, and optionally includes or uses a first sealed container including a power storage device, and a second sealed container including a signal generator, and wherein the first and second electrode leads are coupled to the second sealed container.

[0138] Embodiment 19 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 16-18, optionally including or using a first sealed container and a different second sealed container implanted on either side of the patient's sagittal midline.

[0139] Embodiment 20 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 16-19, optionally including or using first and second sealed containers each configured to be implanted in a different anterior trigone region.

[0140] Aspect 21 may include, use, or optionally be combined with the subject matter of aspect 20, and optionally includes a first hermetic canister implanted within a patient's submandibular triangle region and a second hermetic canister implanted within the patient's muscular triangle region. In the example of aspect 21, the submandibular triangle region may be bounded by the body of the patient's mandible and by the anterior and posterior portions of the digastric muscle, and the patient's muscular triangle region may be bounded by the patient's hyoid bone, sagittal midline, omohyoid muscle, and inferior portion of the sternocleidomastoid muscle.

[0141] Aspect 22 may include or use, or optionally be combined with, the subject matter of one of Aspects 20 or 21 or a combination thereof, and optionally includes or uses a first sealed container configured to be implanted in the carotid triangle region and a second sealed container configured to be implanted in one of the submental triangle region and the submental triangle region of a patient.

[0142] Aspect 23 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 1-22, and optionally includes or uses a wireless communication coil coupled to power management circuitry in the first housing, and the wireless communication coil may be configured to be placed within or outside the patient's anterior neck region.

[0143] Aspect 24 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 1-22, and optionally includes or uses a wireless communication coil coupled to power management circuitry within the first housing, and the wireless communication coil may be configured to be placed on the patient's mandible.

[0144] Embodiment 25 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 1-22, and optionally includes or uses a first housing and a wireless communication coil, e.g., the coil is coupled to circuitry within the first housing and configured to be implanted in different anterior triangle regions of a patient.

[0145] Aspect 26 may include or use, or optionally be combined with, the subject matter of Aspect 25, and optionally includes or uses a support member for the wireless communication coil, and the support member may be configured to be coupled to anterior and posterior portions of the patient's digastric muscle.

[0146] Aspect 27 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 25 or 26, and optionally includes or uses a support member for the wireless communication coil, and the support member may be configured to be coupled to the patient's mylohyoid muscle.

[0147] Aspect 28 may include or use the subject matter (e.g., an apparatus, a method, a means for performing an action, or a machine-readable medium including instructions that, when executed by a machine, can cause the machine to perform an action) of one or any combination of the subject matter of the other aspects herein, and may include or use, for example, an implantable neuromodulation system including an elongate first housing configured to be implanted in a patient's anterior neck region, and a first electrode lead coupled to the first housing and configured to be positioned in a submandibular region. In aspect 28, at least one electrode of the first electrode lead may be configured to be positioned at or near a first branch of the patient's hypoglossal nerve, and electrical stimulation generation and control circuitry disposed in the first housing may be configured to provide an electrical stimulation signal to the patient using the first electrode lead. The electrical stimulation signal may be configured to treat the patient's sleep disorder or breathing disorder, among other disorders.

[0148] Aspect 29 may include or use, or optionally be combined with, the subject matter of Aspect 28, and optionally includes or uses a first housing configured to be implanted within the submental triangle of the anterior cervical region of the patient.

[0149] Aspect 30 may include or use, or optionally be combined with, the subject matter of Aspect 29, optionally including or using a second electrode lead coupled to the first housing and configured for placement in the submandibular region. In Aspect 30, at least one electrode on the second electrode lead may be configured for placement at or near a second branch of the patient's hypoglossal nerve.

[0150] Aspect 31 may include or use, or optionally be combined with, the subject matter of Aspect 30, and optionally includes or uses electrodes of first and second electrode leads configured to be placed at or near different locations on the anterior and / or posterior rami of the hypoglossal nerve.

[0151] Aspect 32 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 30 or 31, and optionally includes or uses electrodes of first and second electrode leads configured to be positioned on different sides of the patient's sagittal midline, and the electrical stimulation generation and control circuitry may be configured to administer bilateral electrical stimulation therapy to branches of the hypoglossal nerve.

[0152] Embodiment 33 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 28-32, and optionally includes or uses a first housing including a cylindrical housing structure having a longitudinal axis, and the first housing may be configured to be implanted in or adjacent to a patient's mandible.

[0153] Embodiment 34 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 28-33, and optionally includes or uses a first housing including a truncated pyramidal structure including a base surface configured to face posteriorly in the submandibular region and an upper surface configured to face anteriorly in the submandibular region, and the area of ​​the base surface may be greater than the area of ​​the upper surface.

[0154] Embodiment 35 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 28-33, and optionally includes or uses a first housing including side walls contoured to correspond to the contours of an anatomical triangle in the submandibular region.

[0155] Embodiment 36 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 28-35, and optionally includes or uses an anchor configured to physically and mechanically couple the base portion of the first housing to the mandible.

[0156] Aspect 37 may include or use, or optionally may be combined with, the subject matter of any one or any combination of aspects 28-33, and optionally includes or uses a first housing including a truncated prism structure including a base portion that may be configured to be oriented adjacent to at least one of a surface of the patient's digastric muscle, a surface of the mylohyoid muscle, or a mandible.

[0157] Aspect 38 may include or use, or optionally be combined with, the subject matter of Aspect 37, and optionally includes or uses an anchor configured to couple the first housing to the patient's hyoid bone.

[0158] Aspect 39 may include or use, or optionally be combined with, the subject matter of aspect 37, and optionally includes or uses an anchor for connecting the first housing to at least one of the patient's omohyoid muscle, digastric muscle, or digastric tendon.

[0159] Aspect 40 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 28-39, and optionally includes a first housing configured to be implanted such that a longitudinal axis of the housing can be brought substantially parallel to the patient's sternocleidomastoid muscle.

[0160] Embodiment 41 may include or utilize, or optionally be combined with, the subject matter of any one or any combination of embodiments 28-40, and optionally includes or utilizes a second housing configured for implantation within the anterior neck region of a patient. The second housing may be electrically coupled to at least one of the first housing and the first electrode lead.

[0161] Aspect 42 may include or use, or optionally be combined with, the subject matter of Aspect 41, and optionally includes first and second housings configured to be implanted on different sides of the patient's sagittal midline.

[0162] Aspect 43 may include or use the subject matter (e.g., an apparatus, a method, a means for performing an action, or a machine-readable medium containing instructions that, when executed by a machine, can cause the machine to perform an action) of one or any combination of the subject matter of the other aspects herein, and may include or use, for example, a method for treating a sleep or breathing disorder in a patient, the method comprising: providing an implantable neuromodulation device in the anterior neck region of the patient; providing a first electrode lead coupled to a signal-generation circuit in the device at or near a first cranial nerve target within the patient's body; and applying a first neuromodulation signal to the first cranial nerve target using a first electrical signal from the signal-generation circuit and using an electrode of the first electrode lead. In aspect 43, the first electrical signal may be configured to treat the patient's sleep or breathing disorder.

[0163] Aspect 44 may include or use, or optionally be combined with, the subject matter of aspect 43, and optionally includes applying a first neuromodulation signal to the patient's hypoglossal nerve to treat obstructive sleep apnea.

[0164] Aspect 45 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 43 or 44, optionally including administering neuromodulation therapy to one or more of the patient's hypoglossal nerve, trigeminal nerve, vagus nerve, glossopharyngeal nerve, and facial nerve.

[0165] Embodiment 46 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 43-45, optionally including coupling the housing and electrode lead to tissue in the anterior neck region of the patient.

[0166] Aspect 47 may include or use, or optionally be combined with, the subject matter of aspect 46, optionally including coupling the housing to the digastric muscle or digastric tendon inside the patient.

[0167] Aspect 48 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 46 or 47, optionally including coupling the housing to the patient's mylohyoid muscle.

[0168] Embodiment 49 may include, use, or optionally be combined with the subject matter of any one or any combination of embodiments 43-48, and optionally includes providing a second electrode lead coupled to a signal-generation circuit in the device housing at or near a second cranial nerve target within the patient's body, and applying a second neuromodulation signal to the second cranial nerve target using a second electrical signal from the signal-generation circuit and using an electrode of the second electrode lead. In embodiment 49, the second electrical signal may be configured to treat one or more of heart failure, high blood pressure, and atrial fibrillation.

[0169] Embodiment 50 may include or use, or optionally be combined with, the subject matter of embodiment 49, and optionally includes applying a first neuromodulation signal to the hypoglossal nerve and applying a second neuromodulation signal to at least one of the vagus nerve, the facial nerve, and the glossopharyngeal nerve.

[0170] Aspect 51 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 49 or 50, optionally including simultaneously applying first and second neuromodulation signals to first and second cranial nerve targets.

[0171] Embodiment 52 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 49-51, optionally including time-multiplexed application of neuromodulation signals to first and second cranial nerve targets.

[0172] Embodiment 53 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 49-52, and optionally includes applying respective pulse signals to a target, and the pulses may at least partially overlap in time.

[0173] Aspect 54 may include or use the subject matter (e.g., an apparatus, a method, a means for performing an action, or a machine-readable medium comprising instructions that, when executed by a machine, can cause the machine to perform an action) of one or any combination of the subject matter of the other aspects herein, for example, an implantable neuromodulation system including a first housing disposed in a first cervical triangle region of a patient, a second housing disposed in a different second cervical triangle region of the patient, and an interface coupling a first circuit in the first housing to a second circuit in the second housing. In aspect 54, the first circuit may include a signal generation circuit configured to generate a neuromodulation signal to treat a breathing disorder or a sleep disorder in the patient, among other disorders, and the second circuit may include a power storage device.

[0174] Aspect 55 may include or use, or optionally be combined with, the subject matter of aspect 54, and optionally includes first and second cervical triangle regions separated by a portion of the patient's digastric muscle.

[0175] Aspect 56 may include or use, or optionally be combined with, the subject matter of one or a combination of aspects 54 or 55, and optionally includes or uses circuitry configured to wirelessly receive a power signal from a source external to the patient's body.

[0176] Aspect 57 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 54-56, and optionally includes a first housing configured to be implanted within one of the patient's submandibular triangle and submental triangle, and a second housing configured to be implanted within the other of the patient's submandibular triangle and submental triangle, and the first and second housings may be different sizes and shapes.

[0177] Embodiment 58 may include or use, or optionally be combined with, the subject matter of any one or any combination of embodiments 54-57, optionally including a second housing that is volumetrically larger than the first housing.

[0178] Aspect 59 may include or use, or optionally be combined with, the subject matter of any one or any combination of aspects 54-58, and optionally include or use one or more physiological condition sensors disposed within or coupled to one of the first and second housings. In aspect 59, the one or more physiological condition sensors may be configured to measure information regarding the patient's respiration, heart rate, blood pressure, sympathetic tone, parasympathetic tone, posture, activity level, bioimpedance, or electrical activity. In aspect 59, the signal generation circuitry may be configured to generate a neuromodulation signal to treat obstructive sleep apnea or other disorders based on information from the physiological condition sensors.

[0179] Each of these non-limiting aspects may stand alone or may be combined in various variations or combinations with one or more of the other aspects and examples described herein.

[0180] The above description includes references to the accompanying drawings, which form a part of the detailed description. The drawings show, by way of illustration, specific embodiments in which the invention may be practiced. These embodiments may also be referred to herein as "examples." Such examples may include multiple elements in addition to those shown or described. However, the inventors also contemplate examples in which only the elements shown or described are provided. Furthermore, the inventors also contemplate examples using any combination or variation of the elements shown or described (or one or more aspects thereof), either with respect to the particular example (or one or more aspects thereof) or with respect to other examples (or one or more aspects thereof) shown or described herein.

[0181] In this document, the terms "a" or "an" are used, as is common in patent documents, to include one or more, regardless of any other instance or usage of "at least one" or "one or more." In this document, the term "or" is used to refer non-exclusively, i.e., for example, "A or B" includes "A but not B," "B but not A," and "A and B," unless otherwise indicated. In this document, the terms "including" and "in which" are used as the plain-English equivalents of the terms "comprising" and "wherein," respectively. Also, in the following claims, the terms "including" and "comprising" are open-ended, i.e., systems, devices, articles, compositions, formulations, or processes that include multiple elements in addition to the elements listed preceding such terms in the claim are still considered to be within the scope of the claim. Moreover, in the following claims, the terms "first," "second," "third," etc. are used merely as labels and are not intended to impose numerical requirements on their objects.

[0182] The example methods described herein may be implemented, at least in part, on a machine or computer, such as using implantable system 502, external system 520, machine 1700, or other systems, devices, or components described herein. Some examples may include a computer-readable or machine-readable medium encoded with instructions operable to configure an electronic device to perform a method, such as a neuromodulation therapy control method, such as those described in the examples above, to treat one or more diseases or disorders. In some examples, the instructions may include instructions for receiving sensor data from one or more physiological sensors and titrating a therapy based on the sensor data. Implementations of such methods may include code, such as microcode, assembly language code, higher-level language code, etc. Such code may include computer-readable instructions for performing various methods. The code may form multiple portions of a computer program product. Furthermore, in some examples, the code may be tangibly stored on one or more volatile, non-transitory, or non-volatile, tangible computer-readable media, such as during execution or at other times. Examples of these tangible computer readable media may include, but are not limited to, hard disks, removable magnetic disks, removable optical disks (e.g., compact discs and digital video discs), magnetic cassettes, memory cards or sticks, random access memory (RAM), read-only memory (ROM), and the like.

[0183] The above description is intended to be illustrative, not limiting. For example, the above examples (or one or more aspects thereof) may be used in combination with each other. Other embodiments may be employed, for example, by those of ordinary skill in the art upon reviewing the above description. The Abstract is provided to enable the reader to quickly ascertain the nature of the present technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims. Also, in the foregoing Detailed Description, various features may be grouped together to streamline the disclosure. This should not be construed as intending that any unclaimed disclosed feature is essential to any claim. Rather, inventive subject matter may lie in less than all features of a particular disclosed embodiment. Therefore, the following claims are incorporated into the Detailed Description as an example or embodiment, with each claim standing on its own as a separate embodiment, and it is contemplated that such embodiments can be combined with each other in various combinations or variations. The scope of the invention should be determined with reference to the appended claims, along with the full range of equivalents to which such claims are entitled.

Claims

1. 1. An implantable system for neuromodulation of a cranial nerve, comprising: a first housing configured to be implanted in the patient's inframental triangle region, the first housing configured to be implanted between the mylohyoid muscle that bounds a first portion of the inframental triangle region and the anterior belly of the digastric muscle that bounds a second portion of the inframental triangle region; a first electrode lead coupled to the first housing, the first electrode lead including at least one electrode positioned further from the first housing than a coupling point between the first electrode lead and the first housing, the first electrode lead configured to be coupled to a first cranial nerve target within the patient's body; a power storage circuit provided within the first housing; a signal generation circuit disposed within the first housing and coupled to the power storage circuit, the signal generation circuit configured to use power from the power storage circuit to generate an electrical neuromodulation signal for delivery to the first cranial nerve target using the at least one electrode of the first electrode lead, the neuromodulation signal configured to treat a breathing or sleep disorder in a patient; The system, wherein the first housing is a sealed enclosure for the power storage circuitry and the signal generation circuitry.

2. 10. The system of claim 1, wherein the neuromodulation signal generated by the signal generation circuitry is configured to treat obstructive sleep apnea.

3. 3. The system of claim 2, wherein the first cranial nerve target comprises a body of the patient's hypoglossal nerve or a branch of the patient's hypoglossal nerve.

4. 4. The system of claim 3, further comprising a second electrode lead coupled to the first housing, the second electrode lead including at least one electrode configured to be placed at or near a second cranial nerve target within the patient's body, and the signal generation circuitry configured to generate, using the electrodes on the first and second electrode leads, respective neuromodulation signals for delivery to the first and second cranial nerve targets to treat obstructive sleep apnea.

5. The system of claim 4 , wherein the second cranial nerve target includes a branch of the patient's trigeminal nerve.

6. The system of claim 4 , wherein the second cranial nerve target includes a branch of the patient's facial nerve.

7. The system of claim 4 , wherein the second cranial nerve target includes a ganglion or branch of the patient's glossopharyngeal nerve.

8. The system of claim 4 , wherein the signal generation circuitry is configured to provide the neuromodulation signal simultaneously to the electrodes of the first and second electrode leads.

9. 10. The system of claim 8, wherein an electrical stimulation vector produced in response to a first one of the neuromodulation signals is configured to modify a different electrical stimulation vector produced in response to a second one of the neuromodulation signals.

10. The system of claim 4 , wherein the signal generation circuitry is configured to provide the neuromodulation signals to the electrodes of each of the first and second electrode leads in a time-multiplexed manner.

11. 11. The system of claim 10, wherein the signal generation circuitry is configured to provide the neuromodulation signals as at least partially temporally overlapping electrical signal pulses.

12. 2. The system of claim 1, wherein the first cranial nerve target includes a neural pathway that affects activity of one or more of the patient's tongue, mylohyoid, stylohyoid, digastric, or stylopharyngeus muscles, and the electrical neuromodulation signal is configured to treat the patient's obstructive sleep apnea.

13. 10. The system of claim 1, wherein the first cranial nerve target within the patient includes an anterior or posterior rami of the patient's hypoglossal nerve, and wherein the first electrode is configured to be implanted at or near the anterior or posterior rami of the patient's hypoglossal nerve.

14. further comprising first and second electrodes positioned at different locations along the length of the first electrode lead; the first cranial nerve target within the patient includes the anterior and posterior branches of the patient's hypoglossal nerve; 10. The system of claim 1, wherein the first and second electrodes are configured to provide the neuromodulation signals to the anterior and posterior rami of the hypoglossal nerve, respectively.

15. The system described in claim 1, further comprising a wireless communication coil coupled to a power management circuit within the first housing via a power lead different from the first electrode lead.

16. The system described in claim 1, further comprising a wireless communication coil coupled to a power management circuit within the first housing via a power lead wire different from the first electrode lead wire, the wireless communication coil configured to be positioned outside the first housing.

17. The system of claim 1 , further comprising a wireless communication coil coupled to a power management circuit within the first housing.

18. 2. The system of claim 1, wherein the first housing includes a base surface configured to be implanted adjacent to the mylohyoid muscle, and the first housing includes a tapered portion extending away from the mylohyoid muscle.

19. 20. The system of claim 18, further comprising an anchor configured to couple the first housing to an anatomical structure within or adjacent to the submental triangle region.

20. 1. An implantable neuromodulation system, comprising: a first housing configured to be implanted in the patient's inframental triangle region, the first housing configured to be implanted between the mylohyoid muscle, which bounds an upper portion of the inframental triangle region, and the anterior belly of the digastric muscle, which bounds a lower portion of the inframental triangle region; a battery and power management circuitry disposed within the first housing; a first electrode lead coupled to the first housing and configured to be positioned in a submandibular region, with at least one cuff electrode on the first electrode lead configured to be positioned further from the first housing than a point of attachment between the first electrode lead and the first housing and around a portion of a first branch of the patient's hypoglossal nerve; an electrical stimulation generation control circuit disposed within the first housing and configured to use power from the battery to provide an electrical stimulation signal to a patient using the first electrode lead, the electrical stimulation signal configured to treat a sleep disorder or a breathing disorder in the patient.

21. 21. The implantable neuromodulation system of claim 20, further comprising a second electrode lead coupled to the first housing and configured to be positioned in the submandibular region, wherein at least one electrode on the second electrode lead is configured to be positioned further from the first housing than a coupling point between the second electrode lead and the first housing and at or near a second branch of the hypoglossal nerve of the patient.

22. 22. The implantable neuromodulation system of claim 21, wherein the electrodes on the first and second electrode leads are configured to be positioned at or near the anterior and posterior rami of the hypoglossal nerve, respectively.

23. 22. The implantable neuromodulation system of claim 21, wherein the electrodes on the first and second electrode leads are configured to be positioned on different sides of a patient's sagittal midline, and the electrical stimulation generation control circuitry is configured to provide bilateral electrical stimulation therapy to the branches of the hypoglossal nerve.

24. 21. The implantable neuromodulation system of claim 20, wherein the first housing comprises a cylindrical housing structure having a longitudinal axis.

25. 21. The implantable neuromodulation system of claim 20, wherein the first housing comprises a truncated pyramidal structure having a base surface configured to face posteriorly in the submandibular region and a top surface configured to face anteriorly in the submandibular region, the area of ​​the base surface being greater than the area of ​​the top surface.

26. 21. The implantable neuromodulation system of claim 20, wherein the first housing comprises a sidewall that is contoured to correspond to a contour of the submental triangle region.

27. 21. The implantable neuromodulation system of claim 20, further comprising an anchor configured to couple the first housing to an anatomical structure within or adjacent to the submental triangle region.

28. 21. The implantable neuromodulation system of claim 20, wherein the first housing comprises a truncated prism structure including a base portion configured to be oriented adjacent to at least one of a surface of an anterior belly of the digastric muscle or a surface of the mylohyoid muscle of the patient.

29. 30. The implantable neuromodulation system of claim 28, further comprising an anchor configured to couple the first housing to at least one of a patient's hyoid bone, a patient's anterior digastric belly, or a patient's mylohyoid muscle.

30. 21. The implantable neuromodulation system of claim 20, wherein the first housing includes a first portion configured to be implanted adjacent to the mylohyoid muscle, and the first housing includes a second portion extending toward an interior surface of an anterior belly of the digastric muscle.

31. 31. The implantable neuromodulation system of claim 30, comprising an anchor configured to couple the first housing to an anatomical structure within or adjacent to the submental triangle region.

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