Stefancsik R, Jha P K, Sarkar S
Program in Cell, Molecular and Developmental Biology, Tufts University Health Science Schools, 136 Harrison Avenue, Boston, MA 02111, USA.
Proc Natl Acad Sci U S A. 1998 Feb 3;95(3):957-62. doi: 10.1073/pnas.95.3.957.
Troponin T (TnT), a thin filament myofibrillar protein, is essential for the Ca2+ regulation of striated muscle contraction in vertebrates, both in vivo and in vitro. To understand the role of TnT in this process, its interaction with two other troponin components, troponin I (TnI) and troponin C (TnC) was examined by using the yeast two hybrid system, which is a genetic approach to detect protein-protein interactions. Computer assisted analysis of phylogenetically distant TnT amino acid sequences unveiled a highly conserved protein domain that is characterized by a heptad repeat (HR) motif with a potential for alpha-helical coiled coil formation. A similar, potentially coiled coil forming domain is also conserved in all known TnI sequences. These protein motifs appeared to be the regions where TnI-TnT interaction may take place. Deletions and point mutations in TnT, which disrupted its HR motif, severely reduced or abolished TnI binding, but binding to TnC was not affected, indicating that the TnT-TnI and TnT-TnC binary interactions can be uncoupled. Remarkably, the truncated fragments of TnT and TnI in which the HR motifs were retained showed binary interaction in the yeast two hybrid system. It was also observed that the formation of the TnT-TnI heterodimers is favored over the homodimers TnT-TnT and TnI-TnI. These results indicate that the evolutionarily conserved HR motifs may play a role in TnT-TnI dimerization, presumably through the formation of alpha-helical coiled coils.
肌钙蛋白T(TnT)是一种细肌丝肌原纤维蛋白,对于脊椎动物横纹肌收缩的Ca2+调节在体内和体外均至关重要。为了了解TnT在此过程中的作用,通过酵母双杂交系统检测了它与肌钙蛋白的另外两个组分肌钙蛋白I(TnI)和肌钙蛋白C(TnC)的相互作用,酵母双杂交系统是一种检测蛋白质-蛋白质相互作用的遗传学方法。对系统发育上距离较远的TnT氨基酸序列进行计算机辅助分析,揭示了一个高度保守的蛋白结构域,其特征是具有七肽重复(HR)基序,有可能形成α-螺旋卷曲螺旋。在所有已知的TnI序列中也保守着一个类似的、可能形成卷曲螺旋的结构域。这些蛋白质基序似乎是TnI-TnT相互作用可能发生的区域。TnT中破坏其HR基序的缺失和点突变严重降低或消除了与TnI的结合,但与TnC的结合不受影响,这表明TnT-TnI和TnT-TnC二元相互作用可以解偶联。值得注意的是,保留了HR基序的TnT和TnI的截短片段在酵母双杂交系统中显示出二元相互作用。还观察到,TnT-TnI异二聚体的形成比TnT-TnT和TnI-TnI同二聚体更有利。这些结果表明,进化上保守的HR基序可能在TnT-TnI二聚化中起作用,大概是通过形成α-螺旋卷曲螺旋。