Pan Jie, Zhang Xiaoxue, Yuan Hong, Xu Qiming, Zhang Huijuan, Zhou Yajun, Huang Zhong-Xian, Tan Xiangshi
Department of Chemistry & Shanghai Key laboratory of Chemical Biology for Protein Science, Fudan University, Shanghai 200433, China.
Institutes of Biomedical Sciences, Fudan University, Shanghai 200433, China.
Biochim Biophys Acta. 2016 May;1864(5):488-500. doi: 10.1016/j.bbapap.2016.02.012. Epub 2016 Feb 11.
Heme oxidation and loss of soluble guanylate cyclase (sGC) is thought to be an important contributor to the development of cardiovascular diseases. Nevertheless, it remains unknown why the heme loses readily in oxidized sGC. In the current study, the conformational change of sGC upon heme oxidation by ODQ was studied based on the fluorescence resonance energy transfer (FRET) between the heme and a fluorophore fluorescein arsenical helix binder (FlAsH-EDT2) labeled at different domains of sGC β1. This study provides an opportunity to monitor the domain movement of sGC relative to the heme. The results indicated that heme oxidation by ODQ in truncated sCC induced the heme-associated αF helix moving away from the heme, the Per/Arnt/Sim domain (PAS) domain moving closer to the heme, but led the helical domain going further from the heme. We proposed that the synergistic effect of these conformational changes of the discrete region upon heme oxidation forces the heme pocket open, and subsequent heme loss readily. Furthermore, the kinetic studies suggested that the heme oxidation was a fast process and the conformational change was a relatively slow process. The kinetics of heme loss from oxidized sGC was monitored by a new method based on the heme group de-quenching the fluorescence of FlAsH-EDT2.
血红素氧化和可溶性鸟苷酸环化酶(sGC)的丧失被认为是心血管疾病发展的一个重要因素。然而,目前尚不清楚为什么血红素在氧化的sGC中容易丢失。在本研究中,基于血红素与标记在sGC β1不同结构域的荧光团荧光素砷螺旋结合剂(FlAsH-EDT2)之间的荧光共振能量转移(FRET),研究了ODQ氧化血红素后sGC的构象变化。这项研究为监测sGC相对于血红素的结构域运动提供了一个机会。结果表明,截短的sCC中ODQ氧化血红素导致与血红素相关的αF螺旋远离血红素,Per/Arnt/Sim结构域(PAS)结构域靠近血红素,但导致螺旋结构域远离血红素。我们认为,血红素氧化后这些离散区域构象变化的协同作用迫使血红素口袋打开,随后血红素容易丢失。此外,动力学研究表明,血红素氧化是一个快速过程,构象变化是一个相对缓慢的过程。通过一种基于血红素基团使FlAsH-EDT2荧光去猝灭的新方法监测了氧化sGC中血红素的丢失动力学。