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体内内源性神经受体的三光子红外刺激

Three-Photon Infrared Stimulation of Endogenous Neuroreceptors in Vivo.

作者信息

Sortino Rosalba, Cunquero Marina, Castro-Olvera Gustavo, Gelabert Ricard, Moreno Miquel, Riefolo Fabio, Matera Carlo, Fernàndez-Castillo Noèlia, Agnetta Luca, Decker Michael, Lluch José M, Hernando Jordi, Loza-Alvarez Pablo, Gorostiza Pau

机构信息

Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute for Science and Technology, 08028, Barcelona, Spain.

CIBER-BBN, ISCIII, 28029, Madrid, Spain.

出版信息

Angew Chem Int Ed Engl. 2023 Dec 18;62(51):e202311181. doi: 10.1002/anie.202311181. Epub 2023 Nov 20.

Abstract

To interrogate neural circuits and crack their codes, in vivo brain activity imaging must be combined with spatiotemporally precise stimulation in three dimensions using genetic or pharmacological specificity. This challenge requires deep penetration and focusing as provided by infrared light and multiphoton excitation, and has promoted two-photon photopharmacology and optogenetics. However, three-photon brain stimulation in vivo remains to be demonstrated. We report the regulation of neuronal activity in zebrafish larvae by three-photon excitation of a photoswitchable muscarinic agonist at 50 pM, a billion-fold lower concentration than used for uncaging, and with mid-infrared light of 1560 nm, the longest reported photoswitch wavelength. Robust, physiologically relevant photoresponses allow modulating brain activity in wild-type animals with spatiotemporal and pharmacological precision. Computational calculations predict that azobenzene-based ligands have high three-photon absorption cross-section and can be used directly with pulsed infrared light. The expansion of three-photon pharmacology will deeply impact basic neurobiology and neuromodulation phototherapies.

摘要

为了探究神经回路并破解其编码,体内脑活动成像必须与利用遗传或药理学特异性在三维空间中进行时空精确刺激相结合。这一挑战需要红外光和多光子激发所提供的深度穿透和聚焦能力,从而推动了双光子光药理学和光遗传学的发展。然而,体内三光子脑刺激仍有待证实。我们报告了通过对一种光开关型毒蕈碱激动剂进行三光子激发来调节斑马鱼幼体的神经元活动,该激动剂的浓度为50皮摩尔,比用于光解笼锁的浓度低十亿倍,并且使用的是1560纳米的中红外光,这是报道的最长光开关波长。强大的、与生理相关的光反应能够以时空和药理学精度调节野生型动物的脑活动。计算结果预测,基于偶氮苯的配体具有较高的三光子吸收截面,并且可以直接与脉冲红外光一起使用。三光子药理学的扩展将对基础神经生物学和神经调节光疗法产生深远影响。

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