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Acupuncture or body surface stimulation, as a prominent therapeutic technique within the framework of Traditional Chinese Medicine (TCM), operates by stimulating specific areas on the body surface. It facilitates multi-level regulation of the organism's functions through the regulation of visceral functions via afferent pathways, central integration, and autonomic efferent nervous mechanisms. Central to this therapy is the concept that targeted stimulation of anatomically defined acupoints induces systemic physiological regulation. Growing clinical evidence supports acupuncture's role as a complementary modality in managing cardiovascular disorders, with demonstrated efficacy in both primary prevention and adjunctive treatment protocols1,2.
Primary afferents of sensory neurons predominantly terminate in the spinal dorsal horn (SDH), correspondingly, the spinal dorsal horn neurons (SDHNs) play a crucial role in the integration and modulation of somatic inputs3,4,5. Furthermore, the SDHRNs also receive cardiac afferents and convey visceral information to spinal sympathetic preganglionic neurons (SPNs) for cardiovascular modulation6. The cardiac-locked SPNs are located at the lateral corner of the thoracic segment of the spinal cord (T1-T5), with axons projecting to the cervical or thoracic ganglia and subsequently innervating the heart via the cardiac, middle, and lower nerves. As a result, the thoracic spinal cord plays a crucial role in the integration and modulation of somatic and visceral inputs, which may then influence cardiac control. It is thus important to understand how somatic stimulation regulates cardiac function through modulation of the SDHRNs in the thoracic segment of the spinal cord.
Previous studies have demonstrated that electroacupuncture at PC6 (organized in the T3 spinal segment as a homotopic structure-function unit) can alleviate symptoms of myocardial ischemia through modulation of the autonomic nervous system7,8,9. However, real-time quantitative synchronization of acupuncture's effects on heart rate with nervous system activity has not yet been realized. Only immediate autonomic nervous activity and electrocardiogram (ECG) indicators following acupuncture have been documented. Research connecting SDHNs with visceral physiological functions remains scarce. Owing to the physiological curvature of the thoracic vertebrae and the narrow space between adjacent thoracic vertebral segments, especially T1-T5, accessing these areas is challenging, resulting in scant direct evidence for elucidating the spinal mechanisms underlying acupuncture at the T3 spinal homotopic acupoint PC6 regulating cardiac function in the treatment of CVD.
To better understand the relationship between SDH and acupuncture-mediated cardiac function regulation, synchronous recording of cardiac function and neural activities needs to be implemented. Here, we will provide a general approach for spinal multichannel extracellular recording alongside cardiac function recording as well as analyzing the cardiac-locked SDHRNs. This method offers a temporally synchronized framework for studying spinal mechanisms underlying thoracic visceral functional changes induced by acupuncture.