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原子力显微镜下表面结合的 RC-LH1-PufX 核心复合物与附着在 AFM 探针上细胞色素 c2 之间相互作用的纳米力学图谱。

Nano-mechanical mapping of the interactions between surface-bound RC-LH1-PufX core complexes and cytochrome c 2 attached to an AFM probe.

机构信息

Department of Molecular Biology and Biotechnology, University of Sheffield, Sheffield, S10 2TN, UK,

出版信息

Photosynth Res. 2014 May;120(1-2):169-80. doi: 10.1007/s11120-013-9812-7. Epub 2013 Mar 29.

Abstract

Electron transfer pathways in photosynthesis involve interactions between membrane-bound complexes such as reaction centres with an extrinsic partner. In this study, the biological specificity of electron transfer between the reaction centre-light-harvesting 1-PufX complex and its extrinsic electron donor, cytochrome c 2, formed the basis for mapping the location of surface-attached RC-LH1-PufX complexes using atomic force microscopy (AFM). This nano-mechanical mapping method used an AFM probe functionalised with cyt c 2 molecules to quantify the interaction forces involved, at the single-molecule level under native conditions. With surface-bound RC-His12-LH1-PufX complexes in the photo-oxidised state, the mean interaction force with cyt c 2 is approximately 480 pN with an interaction frequency of around 66 %. The latter value lowered 5.5-fold when chemically reduced RC-His12-LH1-PufX complexes are imaged in the dark to abolish electron transfer from cyt c 2 to the RC. The correspondence between topographic and adhesion images recorded over the same area of the sample shows that affinity-based AFM methods are a useful tool when topology alone is insufficient for spatially locating proteins at the surface of photosynthetic membranes.

摘要

光合作用中的电子传递途径涉及膜结合复合物(如反应中心)与外在伙伴之间的相互作用。在这项研究中,反应中心-光捕获 1-PufX 复合物与其外在电子供体细胞色素 c 2 之间电子传递的生物学特异性是使用原子力显微镜 (AFM) 对表面附着的 RC-LH1-PufX 复合物进行定位的基础。这种纳米力学映射方法使用了一种功能化有 cyt c 2 分子的 AFM 探针,在原生条件下,以单分子水平定量测量相关的相互作用力。在光氧化状态下,与表面结合的 RC-His12-LH1-PufX 复合物与 cyt c 2 的平均相互作用力约为 480 pN,相互作用频率约为 66%。当化学还原的 RC-His12-LH1-PufX 复合物在黑暗中成像以阻止电子从 cyt c 2 转移到 RC 时,后者的值降低了 5.5 倍。在同一样品区域记录的形貌和粘附图像之间的对应关系表明,基于亲和力的 AFM 方法是一种有用的工具,当拓扑结构不足以在光合膜表面定位蛋白质时。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c846/4104003/3575027d2e52/11120_2013_9812_Fig1_HTML.jpg

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