Takarada Osamu, Nishida Noritaka, Kikkawa Masahide, Shimada Ichio
Graduated School of Pharmaceutical Sciences, The University of Tokyo, Hongo, Bunkyo-ku, Tokyo, 113-0033, Japan.
Biomol NMR Assign. 2014 Oct;8(2):379-82. doi: 10.1007/s12104-013-9522-2. Epub 2013 Aug 22.
Cytoplasmic dynein is a motor protein that walks toward the minus end of microtubules (MTs) by utilizing the energy of ATP hydrolysis. The heavy chain of cytoplasmic dynein contains the microtubule-binding domain (MTBD). Switching of MTBD between high and low affinity states for MTs is crucial for processive movement of cytoplasmic dynein. Previous biochemical studies demonstrated that the affinity of MTBD is regulated by the AAA+ family ATPase domain, which is separated by 15 nm long coiled-coil helix. In order to elucidate the structural basis of the affinity switching mechanism of MTBD, we designed two MTBD constructs, termed MTBD-High and MTBD-Low, which are locked in high and low affinity state for MTs, respectively, by introducing a disulfide bond between the coiled-coil helix. Here, we established the backbone and side-chain assignments of MTBD-High and MTBD-Low for further structural analyses.
胞质动力蛋白是一种马达蛋白,它通过利用ATP水解产生的能量朝着微管(MT)的负端移动。胞质动力蛋白的重链包含微管结合结构域(MTBD)。MTBD在对MT的高亲和力状态和低亲和力状态之间的转换对于胞质动力蛋白的持续移动至关重要。先前的生化研究表明,MTBD的亲和力受AAA+家族ATP酶结构域调节,该结构域由15纳米长的卷曲螺旋螺旋隔开。为了阐明MTBD亲和力转换机制的结构基础,我们设计了两种MTBD构建体,称为MTBD-High和MTBD-Low,通过在卷曲螺旋螺旋之间引入二硫键,它们分别被锁定在对MT的高亲和力状态和低亲和力状态。在此,我们确定了MTBD-High和MTBD-Low的主链和侧链归属,以便进行进一步的结构分析。