Institute of Biology, Experimental Biophysics, Humboldt-Universität zu Berlin, 10115, Berlin, Germany.
Neuroscience Research Center, Charité - Universitätsmedizin Berlin, Charitéplatz 1, 10117, Berlin, Germany.
Sci Rep. 2017 Aug 30;7(1):9928. doi: 10.1038/s41598-017-09600-8.
Channelrhodopsins are light-gated ion channels of green algae used for the precise temporal and spatial control of transmembrane ion fluxes. The channelrhodopsin Chrimson from Chlamydomonas noctigama allows unprecedented deep tissue penetration due to peak absorption at 590 nm. We demonstrate by electrophysiological recordings and imaging techniques that Chrimson is highly proton selective causing intracellular acidification in HEK cells that is responsible for slow photocurrent decline during prolonged illumination. We localized molecular determinants of both high proton selectivity and red light activation to the extracellular pore. Whereas exchange of Glu143 only drops proton conductance and generates an operational Na-channel with 590 nm activation, exchange of Glu139 in addition increased the open state lifetime and shifted the absorption hypsochromic by 70 nm. In conjunction with Glu300 in the center and Glu124 and Glu125 at the intracellular end of the pore, Glu139 contributes to a delocalized activation gate and stabilizes by long-range interaction counterion configuration involving protonation of Glu165 that we identified as a key determinant of the large opsin shift in Chrimson.
通道蛋白视紫红质是绿藻中的光门离子通道,用于精确控制跨膜离子通量的时间和空间。夜生绿藻 Chlamydomonas noctigama 的通道蛋白视紫红质 Chrimson 由于其峰值吸收在 590nm 处,因此具有前所未有的深层组织穿透能力。我们通过电生理记录和成像技术证明,Chrimson 具有很高的质子选择性,导致 HEK 细胞内酸化,这是在长时间光照下慢光电流衰减的原因。我们将高质子选择性和红光激活的分子决定因素定位到细胞外孔。虽然 Glu143 的交换仅降低质子传导性并产生具有 590nm 激活的操作 Na 通道,但 Glu139 的交换除了增加开放状态寿命外,还将吸收红移 70nm。与位于中心的 Glu300 和位于孔内末端的 Glu124 和 Glu125 一起,Glu139 有助于形成非定域激活门,并通过涉及 Glu165 质子化的长程相互作用反离子构型稳定,我们将 Glu165 鉴定为 Chrimson 中大视蛋白位移的关键决定因素。