Pang Karen K L, Mondal Rajib, Sahasrabudhe Atharva, Anikeeva Polina
Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology, United States; K. Lisa Yang Brain-Body Center, Massachusetts Institute of Technology, United States; McGovern Institute for Brain Research, Massachusetts Institute of Technology, United States; Research Laboratory of Electronics, Massachusetts Institute of Technology, United States.
K. Lisa Yang Brain-Body Center, Massachusetts Institute of Technology, United States; McGovern Institute for Brain Research, Massachusetts Institute of Technology, United States; Research Laboratory of Electronics, Massachusetts Institute of Technology, United States; MIT-Harvard Graduate Program in Health Sciences and Technology, United States.
Curr Opin Neurobiol. 2025 Aug;93:103050. doi: 10.1016/j.conb.2025.103050. Epub 2025 May 17.
Interoception, or the perception and regulation of body signals by the central nervous system, is critical for maintaining homeostasis and coordination of behaviors. Deciphering the mechanisms of interoception requires identifying pathways and decoding of diverse signals across the brain-body axis. These studies are enabled by tools to modulate and record physiological processes in the brain and visceral organs. While numerous advanced neurotechnologies are well-established in the brain, these techniques often offer limited utility for other organs, such as the gastrointestinal tract, heart, liver, or bladder. In this review, we highlight recent advances in technologies for recording and modulation of visceral organ physiology in small animals in vivo, with a focus on implantable bioelectronic organ interfaces that can be deployed in behaving animals. We discuss how such interfaces are made possible through innovations in materials and electronics and outline unmet technological challenges in interoception research.
内感受,即中枢神经系统对身体信号的感知和调节,对于维持体内平衡和行为协调至关重要。解读内感受机制需要识别跨脑-体轴的通路并解码各种信号。这些研究借助于调节和记录大脑及内脏器官生理过程的工具得以实现。虽然众多先进的神经技术在大脑研究中已得到充分确立,但这些技术在诸如胃肠道、心脏、肝脏或膀胱等其他器官上的应用往往有限。在本综述中,我们重点介绍了用于在小动物体内记录和调节内脏器官生理功能的技术的最新进展,尤其关注可应用于活动动物的植入式生物电子器官接口。我们讨论了如何通过材料和电子学方面的创新使此类接口成为可能,并概述了内感受研究中尚未解决的技术挑战。