Yao Shihao, Yi Qiuzi, Ma Boyuan, Mao Xiaoting, Chen Ye, Guan Min-Xin, Cang Xiaohui
Division of Medical Genetics and Genomics, The Children's Hospital, Zhejiang University School of Medicine, Hangzhou, Zhejiang 310052, China.
Institute of Genetics, and Department of Genetics, Zhejiang University School of Medicine, Hangzhou, Zhejiang 310058, China.
Comput Struct Biotechnol J. 2022 Apr 5;20:1829-1840. doi: 10.1016/j.csbj.2022.03.032. eCollection 2022.
The ADP/ATP carrier (AAC) is crucial for mitochondrial functions by importing ADP and exporting ATP across the inner mitochondrial membrane. However, the mechanism of highly specific ADP recognition and transport by AAC remains largely elusive. In this work, spontaneous ADP binding process to the ground c-state AAC was investigated through rigorous molecular dynamics simulations of over 31 microseconds in total. With improved simulation strategy, we have successfully identified a highly specific ADP binding site in the upper region of the cavity, and this site exhibits selectivity for ADP over ATP based on free-energy calculations. Sequence analyses on adenine nucleotide transporters also suggest that this subgroup uses the upper region of the cavity, rather than the previously proposed central binding site located at the bottom of the cavity to discriminate their substrates. Identification of the new site unveils the unusually high substrate specificity of AAC and explains the dependence of transport on the flexibility between and glycosidic conformers of ADP. Moreover, this new site together with the central site supports early biochemical findings. In light of these early findings, our simulations described a multi-step model in which the carrier uses different sites for substrate attraction, recognition and conformational transition. These results provide new insights into the transport mechanism of AAC and other adenine nucleotide transporters.
ADP/ATP载体(AAC)通过在线粒体内膜上导入ADP并输出ATP,对线粒体功能至关重要。然而,AAC对ADP进行高度特异性识别和转运的机制在很大程度上仍不清楚。在这项工作中,通过总共超过31微秒的严格分子动力学模拟,研究了ADP与基态c型AAC的自发结合过程。通过改进模拟策略,我们成功地在腔的上部区域确定了一个高度特异性的ADP结合位点,基于自由能计算,该位点对ADP的选择性高于ATP。对腺嘌呤核苷酸转运体的序列分析还表明,该亚组利用腔的上部区域,而不是先前提出的位于腔底部的中央结合位点来区分其底物。新位点的鉴定揭示了AAC异常高的底物特异性,并解释了转运对ADP的α和β糖苷构象之间灵活性的依赖性。此外,这个新位点与中央位点共同支持了早期的生化研究结果。鉴于这些早期发现,我们的模拟描述了一个多步骤模型,其中载体使用不同的位点进行底物吸引、识别和构象转变。这些结果为AAC和其他腺嘌呤核苷酸转运体的转运机制提供了新的见解。