Mutt Eshita, Sowdhamini Ramanathan
National Centre for Biological Sciences (TIFR), GKVK Campus, Bellary Road, Bangalore 560 065, India.
PLoS One. 2016 Jun 16;11(6):e0157286. doi: 10.1371/journal.pone.0157286. eCollection 2016.
Insertions/deletions are common evolutionary tools employed to alter the structural and functional repertoire of protein domains. An insert situated proximal to the active site or ligand binding site frequently impacts protein function; however, the effect of distal indels on protein activity and/or stability are often not studied. In this paper, we have investigated a distal insert, which influences the function and stability of a unique DNA polymerase, called terminal deoxynucleotidyl transferase (TdT). TdT (EC:2.7.7.31) is a monomeric 58 kDa protein belonging to family X of eukaryotic DNA polymerases and known for its role in V(D)J recombination as well as in non-homologous end-joining (NHEJ) pathways. Two murine isoforms of TdT, with a length difference of twenty residues and having different biochemical properties, have been studied. All-atom molecular dynamics simulations at different temperatures and interaction network analyses were performed on the short and long-length isoforms. We observed conformational changes in the regions distal to the insert position (thumb subdomain) in the longer isoform, which indirectly affects the activity and stability of the enzyme through a mediating loop (Loop1). A structural rationale could be provided to explain the reduced polymerization rate as well as increased thermosensitivity of the longer isoform caused by peripherally located length variations within a DNA polymerase. These observations increase our understanding of the roles of length variants in introducing functional diversity in protein families in general.
插入/缺失是用于改变蛋白质结构域的结构和功能组成的常见进化工具。位于活性位点或配体结合位点附近的插入常常会影响蛋白质功能;然而,远端插入/缺失对蛋白质活性和/或稳定性的影响通常未被研究。在本文中,我们研究了一个远端插入,它影响一种独特的DNA聚合酶——末端脱氧核苷酸转移酶(TdT)的功能和稳定性。TdT(EC:2.7.7.31)是一种58 kDa的单体蛋白,属于真核DNA聚合酶X家族,因其在V(D)J重组以及非同源末端连接(NHEJ)途径中的作用而闻名。我们研究了TdT的两种小鼠同工型,它们长度相差20个残基且具有不同的生化特性。对短长度和长长度同工型进行了不同温度下的全原子分子动力学模拟和相互作用网络分析。我们观察到较长同工型中插入位置远端区域(拇指亚结构域)的构象变化,这通过一个介导环(环1)间接影响酶的活性和稳定性。可以提供一个结构上的解释,来说明由DNA聚合酶内周边位置的长度变化导致的较长同工型聚合速率降低以及热敏感性增加的现象。这些观察结果总体上增进了我们对长度变体在蛋白质家族中引入功能多样性所起作用的理解。