自主反射障碍
神经科学
刺激
自主功能
自主神经系统
医学
感觉系统
麻醉
微刺激
脊髓
脊髓损伤
血压
作者
Jan Elaine Soriano,Rémi Hudelle,Loïs Mahe,Matthieu Gautier,Alan Yue Yang Teo,Michael A. Skinnider,Achilleas Laskaratos,Steven Ceto,Claudia Kathe,Thomas H. Hutson,Rebecca Charbonneau,Fady Girgis,Steve Casha,Julien Rimok,Marcus Tso,Kelly A. Larkin-Kaiser,Nicolas Hankov,Aasta P. Gandhi,Suje Amir,Xiaoyang Kang
出处
期刊:Nature
[Nature Portfolio]
日期:2025-09-17
卷期号:646 (8087): 1167-1177
被引量:4
标识
DOI:10.1038/s41586-025-09487-w
摘要
Autonomic dysreflexia is a life-threatening medical condition characterized by episodes of uncontrolled hypertension that occur in response to sensory stimuli after spinal cord injury (SCI)1. The fragmented understanding of the mechanisms underlying autonomic dysreflexia hampers the development of therapeutic strategies to manage this condition, leaving people with SCI at daily risk of heart attack and stroke2–5. Here we expose the neuronal architecture that develops after SCI and causes autonomic dysreflexia. In parallel, we uncover a competing, yet overlapping neuronal architecture activated by epidural electrical stimulation of the spinal cord that safely regulates blood pressure after SCI. The discovery that these adversarial neuronal architectures converge onto a single neuronal subpopulation provided a blueprint for the design of a mechanism-based intervention that reversed autonomic dysreflexia in mice, rats and humans with SCI. These results establish a path towards essential pivotal device clinical trials that will establish the safety and efficacy of epidural electrical stimulation for the effective treatment of autonomic dysreflexia in people with SCI. The neuronal architecture that develops after spinal cord injury and causes autonomic dysreflexia is uncovered.
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