Prakash Amresh, Kumar Vijay, Meena Naveen Kumar, Lynn Andrew M
School of Computational & Integrative Sciences, Jawaharlal Nehru University New Delhi-110067 India
Centre for Interdisciplinary Research in Basic Sciences, Jamia Millia Islamia Jamia Nagar New Delhi-110025 India
RSC Adv. 2018 May 30;8(35):19835-19845. doi: 10.1039/c8ra03368d. eCollection 2018 May 25.
The N-terminal domain of the RNA binding protein TDP-43 (NTD) is essential to both physiology and proteinopathy; however, elucidation of its folding/unfolding still remains a major quest. In this study, we have investigated the biophysical behavior of intermediate ensembles employing all-atom molecular dynamics simulations in 8 M urea accelerated with high temperatures to achieve unfolded states in a confined computation time. The cumulative results of the 2.75 μs simulations show that unfolding of the NTD at 350 K evolves through different stable and meta-stable intermediate states. The free-energy landscape reveals two meta-stable intermediates (I and I) stabilized by non-native interactions, which are largely hydrophilic and highly energetically frustrated. A single buried tryptophan residue, W80, undergoes solvent exposure to different extents during unfolding; this suggests a structurally heterogeneous population of intermediate ensembles. Furthermore, the structure properties of the I state show a resemblance to the molten globule (MG) state with most of the secondary structures intact. The unfolding of the NTD is initiated by the loss of β-strands, and the unfolded (U) states exhibit a population of non-native α-helices. These non-native unfolded intermediate ensembles may mediate protein oligomerization, leading to the formation of pathological, irreversible aggregates, characteristics of disease pathogenesis.
RNA结合蛋白TDP - 43的N端结构域(NTD)对生理功能和蛋白病都至关重要;然而,阐明其折叠/去折叠过程仍是一个主要挑战。在本研究中,我们利用全原子分子动力学模拟研究了中间态集合的生物物理行为,模拟在8 M尿素中进行,并通过高温加速,以便在有限的计算时间内达到去折叠状态。2.75微秒模拟的累积结果表明,NTD在350 K时的去折叠过程通过不同的稳定和亚稳定中间态进行。自由能景观揭示了由非天然相互作用稳定的两个亚稳定中间体(I和I),它们在很大程度上是亲水的,并且在能量上高度受挫。一个单一的埋藏色氨酸残基W80在去折叠过程中经历不同程度的溶剂暴露;这表明中间态集合在结构上存在异质性群体。此外,I态的结构性质与熔球(MG)态相似,大部分二级结构保持完整。NTD的去折叠由β链的丢失引发,去折叠(U)态表现出一群非天然α螺旋。这些非天然的去折叠中间态集合可能介导蛋白质寡聚化,导致病理性、不可逆聚集体的形成,这是疾病发病机制的特征。