Department of Biochemistry and Biophysics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA, U.S.A.
Department of Chemistry, University of Alabama at Birmingham, Birmingham, AL, U.S.A.
Biochem Soc Trans. 2022 Apr 29;50(2):895-906. doi: 10.1042/BST20200350.
Numerous ATPases associated with diverse cellular activities (AAA+) proteins form hexameric, ring-shaped complexes that function via ATPase-coupled translocation of substrates across the central channel. Cryo-electron microscopy of AAA+ proteins processing substrate has revealed non-symmetric, staircase-like hexameric structures that indicate a sequential clockwise/2-residue step translocation model for these motors. However, for many of the AAA+ proteins that share similar structural features, their translocation properties have not yet been experimentally determined. In the cases where translocation mechanisms have been determined, a two-residue translocation step-size has not been resolved. In this review, we explore Hsp104, ClpB, ClpA and ClpX as examples to review the experimental methods that have been used to examine, in solution, the translocation mechanisms employed by AAA+ motor proteins. We then ask whether AAA+ motors sharing similar structural features can have different translocation mechanisms. Finally, we discuss whether a single AAA+ motor can adopt multiple translocation mechanisms that are responsive to different challenges imposed by the substrate or the environment. We suggest that AAA+ motors adopt more than one translocation mechanism and are tuned to switch to the most energetically efficient mechanism when constraints are applied.
许多与各种细胞活动相关的 ATP 酶(AAA+)蛋白形成六聚体、环形复合物,通过 ATP 酶偶联的底物在中央通道中的易位来发挥作用。对加工底物的 AAA+ 蛋白的冷冻电镜观察揭示了非对称的、阶梯状的六聚体结构,表明这些马达的连续顺时针/2 个残基步移模型。然而,对于许多具有相似结构特征的 AAA+ 蛋白,其易位特性尚未通过实验确定。在已经确定易位机制的情况下,尚未确定 2 个残基的易位步长。在这篇综述中,我们以 Hsp104、ClpB、ClpA 和 ClpX 为例,探讨了已用于在溶液中检查 AAA+ 马达蛋白所采用的易位机制的实验方法。然后,我们询问是否具有相似结构特征的 AAA+ 马达可以具有不同的易位机制。最后,我们讨论了单个 AAA+ 马达是否可以采用多种易位机制,以响应底物或环境施加的不同挑战。我们认为,AAA+ 马达采用多种易位机制,并在受到约束时调整为切换到最具能量效率的机制。