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人类 TRPV1 是一种用于慢性神经调节的高效热原激活器。

Human TRPV1 is an efficient thermogenetic actuator for chronic neuromodulation.

机构信息

Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry, Russian Academy of Sciences, 117997, Moscow, Russia.

Federal Center of Brain Research and Neurotechnologies, Federal Medical Biological Agency, 117997, Moscow, Russia.

出版信息

Cell Mol Life Sci. 2024 Oct 25;81(1):437. doi: 10.1007/s00018-024-05475-x.

Abstract

Thermogenetics is a promising neuromodulation technique based on the use of heat-sensitive ion channels. However, on the way to its clinical application, a number of questions have to be addressed. First, to avoid immune response in future human applications, human ion channels should be studied as thermogenetic actuators. Second, heating levels necessary to activate these channels in vivo in brain tissue should be studied and cytotoxicity of these temperatures addressed. Third, the possibility and safety of chronic neuromodulation has to be demonstrated. In this study, we present a comprehensive framework for thermogenetic neuromodulation in vivo using the thermosensitive human ion channel hTRPV1. By targeting hTRPV1 expression to excitatory neurons of the mouse brain and activating them within a non-harmful temperature range with a fiber-coupled infrared laser, we not only induced neuronal firing and stimulated locomotion in mice, but also demonstrated that thermogenetics can be employed for repeated neuromodulation without causing evident brain tissue injury. Our results lay the foundation for the use of thermogenetic neuromodulation in brain research and therapy of neuropathologies.

摘要

热遗传学是一种基于使用热敏离子通道的有前途的神经调节技术。然而,在其临床应用的道路上,有许多问题需要解决。首先,为了避免未来人类应用中的免疫反应,应该研究人类离子通道作为热遗传致动器。其次,应该研究在体内脑组织中激活这些通道所需的加热水平,并解决这些温度的细胞毒性问题。第三,必须证明慢性神经调节的可能性和安全性。在这项研究中,我们使用热敏人离子通道 hTRPV1 提出了一种用于体内热遗传神经调节的综合框架。通过将 hTRPV1 表达靶向到小鼠大脑的兴奋性神经元,并使用光纤耦合红外激光在非有害温度范围内激活它们,我们不仅诱导了神经元放电并刺激了小鼠的运动,还证明了热遗传可以用于重复神经调节而不会造成明显的脑组织损伤。我们的研究结果为热遗传神经调节在脑研究和神经病理学治疗中的应用奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f24/11502623/e339b71c64b4/18_2024_5475_Fig1_HTML.jpg

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