Bao Zhihao, Qi Xiaofeng, Hong Sen, Xu Ke, He Fangyuan, Zhang Minhua, Chen Jiugeng, Chao Daiyin, Zhao Wei, Li Dianfan, Wang Jiawei, Zhang Peng
National Key Laboratory of Plant Molecular Genetics, CAS Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China.
Shanghai Center for Plant Stress Biology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China.
Cell Res. 2017 May;27(5):675-687. doi: 10.1038/cr.2017.38. Epub 2017 Mar 21.
Energy-coupling factor (ECF) transporters are a large family of ATP-binding cassette transporters recently identified in microorganisms. Responsible for micronutrient uptake from the environment, ECF transporters are modular transporters composed of a membrane substrate-binding component EcfS and an ECF module consisting of an integral membrane scaffold component EcfT and two cytoplasmic ATP binding/hydrolysis components EcfA/A'. ECF transporters are classified into groups I and II. Currently, the molecular understanding of group-I ECF transporters is very limited, partly due to a lack of transporter complex structural information. Here, we present structures and structure-based analyses of the group-I cobalt ECF transporter CbiMNQO, whose constituting subunits CbiM/CbiN, CbiQ, and CbiO correspond to the EcfS, EcfT, and EcfA components of group-II ECF transporters, respectively. Through reconstitution of different CbiMNQO subunits and determination of related ATPase and transporter activities, the substrate-binding subunit CbiM was found to stimulate CbiQO's basal ATPase activity. The structure of CbiMQO complex was determined in its inward-open conformation and that of CbiO in β, γ-methyleneadenosine 5'-triphosphate-bound closed conformation. Structure-based analyses revealed interactions between different components, substrate-gating function of the L1 loop of CbiM, and conformational changes of CbiO induced by ATP binding and product release within the CbiMNQO transporter complex. These findings enabled us to propose a working model of the CbiMNQO transporter, in which the transport process requires the rotation or toppling of both CbiQ and CbiM, and CbiN might function in coupling conformational changes between CbiQ and CbiM.
能量偶联因子(ECF)转运蛋白是最近在微生物中发现的一大类ATP结合盒转运蛋白。ECF转运蛋白负责从环境中摄取微量营养素,是由膜底物结合成分EcfS和由整合膜支架成分EcfT以及两个细胞质ATP结合/水解成分EcfA/A'组成的ECF模块构成的模块化转运蛋白。ECF转运蛋白分为I组和II组。目前,对I组ECF转运蛋白的分子理解非常有限,部分原因是缺乏转运蛋白复合物的结构信息。在此,我们展示了I组钴ECF转运蛋白CbiMNQO的结构及基于结构的分析,其组成亚基CbiM/CbiN、CbiQ和CbiO分别对应于II组ECF转运蛋白的EcfS、EcfT和EcfA成分。通过重组不同的CbiMNQO亚基并测定相关的ATP酶和转运蛋白活性,发现底物结合亚基CbiM可刺激CbiQO的基础ATP酶活性。确定了CbiMQO复合物向内开放构象的结构以及CbiO在β,γ-亚甲基腺苷5'-三磷酸结合的封闭构象的结构。基于结构的分析揭示了不同成分之间的相互作用、CbiM的L1环的底物门控功能以及CbiMNQO转运蛋白复合物中ATP结合和产物释放诱导的CbiO的构象变化。这些发现使我们能够提出CbiMNQO转运蛋白的工作模型,其中转运过程需要CbiQ和CbiM两者的旋转或翻转,并且CbiN可能在偶联CbiQ和CbiM之间的构象变化中发挥作用。