Department of Chemistry &Shanghai Key laboratory of Chemical Biology for Protein Research, Fudan University, Shanghai 200433, China.
Institutes of Biomedical Sciences, Fudan University, Shanghai 200433, China.
Sci Rep. 2017 Feb 23;7:43112. doi: 10.1038/srep43112.
Soluble guanylate cyclase (sGC) is a heme-containing metalloprotein in NO-sGC-cGMP signaling. NO binds to the heme of sGC to catalyze the synthesis of the second messenger cGMP, which plays a critical role in several physiological processes. However, the molecular mechanism for sGC to mediate the NO signaling remains unclear. Here fluorophore FlAsH-EDT and fluorescent proteins were employed to study the NO-induced sGC activation. FlAsH-EDT labeling study revealed that NO binding to the H-NOX domain of sGC increased the distance between H-NOX and PAS domain and the separation between H-NOX and coiled-coil domain. The heme pocket conformation changed from "closed" to "open" upon NO binding. In addition, the NO-induced conformational change of sGC was firstly investigated in vivo through fluorescence lifetime imaging microscopy. The results both in vitro and in vivo indicated the conformational change of the catalytic domain of sGC from "open" to "closed" upon NO binding. NO binding to the heme of H-NOX domain caused breaking of Fe-N coordination bond, initiated the domain moving and conformational change, induced the allosteric effect of sGC to trigger the NO-signaling from H-NOX via PAS &coiled-coil to the catalytic domain, and ultimately stimulates the cyclase activity of sGC.
可溶性鸟苷酸环化酶(sGC)是一氧化氮-sGC-cGMP 信号通路中的一种血红素结合金属蛋白。NO 结合到 sGC 的血红素上,催化第二信使 cGMP 的合成,cGMP 在许多生理过程中起着关键作用。然而,sGC 介导 NO 信号的分子机制尚不清楚。在这里,荧光团 FlAsH-EDT 和荧光蛋白被用来研究 NO 诱导的 sGC 激活。FlAsH-EDT 标记研究表明,NO 结合到 sGC 的 H-NOX 结构域会增加 H-NOX 和 PAS 结构域之间的距离,以及 H-NOX 和卷曲螺旋结构域之间的距离。血红素口袋的构象在 NO 结合后从“关闭”变为“打开”。此外,通过荧光寿命成像显微镜首次在体内研究了 sGC 的 NO 诱导构象变化。体外和体内的结果均表明,NO 结合到 H-NOX 结构域的血红素上会导致 Fe-N 配位键断裂,引发结构域运动和构象变化,诱导 sGC 的别构效应,从而触发从 H-NOX 通过 PAS 和卷曲螺旋结构域到催化结构域的 NO 信号,最终刺激 sGC 的环化酶活性。