LOV2-based photoactivatable CaMKII and its application to single synapses: Local Optogenetics.

Biophysics and Physicobiology Pub Date : 2023-06-06 eCollection Date: 2023-01-01 DOI:10.2142/biophysico.bppb-v20.0027
Yutaro Nagasawa, Hiromi H Ueda, Haruka Kawabata, Hideji Murakoshi
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Abstract

Optogenetic techniques offer a high spatiotemporal resolution to manipulate cellular activity. For instance, Channelrhodopsin-2 with global light illumination is the most widely used to control neuronal activity at the cellular level. However, the cellular scale is much larger than the diffraction limit of light (<1 μm) and does not fully exploit the features of the "high spatial resolution" of optogenetics. For instance, until recently, there were no optogenetic methods to induce synaptic plasticity at the level of single synapses. To address this, we developed an optogenetic tool named photoactivatable CaMKII (paCaMKII) by fusing a light-sensitive domain (LOV2) to CaMKIIα, which is a protein abundantly expressed in neurons of the cerebrum and hippocampus and essential for synaptic plasticity. Combining photoactivatable CaMKII with two-photon excitation, we successfully activated it in single spines, inducing synaptic plasticity (long-term potentiation) in hippocampal neurons. We refer to this method as "Local Optogenetics", which involves the local activation of molecules and measurement of cellular responses. In this review, we will discuss the characteristics of LOV2, the recent development of its derivatives, and the development and application of paCaMKII.

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基于 LOV2 的可光激活 CaMKII 及其在单突触中的应用:局部光遗传学。
光遗传学技术提供了操纵细胞活动的高时空分辨率。例如,使用全局光照的 Channelrhodopsin-2 是在细胞水平控制神经元活动的最广泛应用。然而,细胞尺度远大于光的衍射极限 (
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