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AIR学术沙龙第29期|嗜盐菌合成生物学和“下一代工业生物技术”
Fibrous Conductive Materials for Soft Electronics
卤化物钙钛矿及其衍生物纳米晶的合成、光学性质及其异质结构研究
DNA Mismatch Repair: from mechanisms to diseases and treatments
报告题目:
Structural Transitions of Model Proteins in Confinement: Molecular Dynamics and Experimental Validation
 报告人:
卢滇楠
化工系博士后
报告时间:
2006-07-07 15:30
报告地点:
清华大学工物馆324(东)会议室
主办单位:
清华大学化学工程系
  简介:

Proteins fold in a confined space not only in vivo, i.e., folding assisted by molecular chaperons and chaperonins in a crowded cellular medium, but also in vitro as in production of recombinant proteins. Despite extensive work on protein folding in bulk, little is known about how and to what extent the thermodynamics and kinetics of protein folding are altered by confinement. In this presentation, we use a Go-like off-lattice model to investigate the folding and stability of an all β-sheet protein in both spherical cages of different sizes and surface hydrophobicity and surfactant/polymer assemblies. Our presentation is started with brief introduction of complexity of protein in vivo, and then presented the models and simulation methods on how to solve this complex system. According to the simulation results, we find that whereas extreme confinement inhibits correct folding, a hydrophilic confine stabilizes the protein due to restriction of the unfolded configurations. In a hydrophobic confinement, however, strong attraction from the cage surface destabilizes the confined protein because of competition between self-aggregation and adsorption of hydrophobic residues. We show that the kinetics of protein collapse and folding is strongly correlated with both the cage size and the surface hydrophobicity. It is demonstrated that a cage of moderate size and hydrophobicity optimizes both the folding yield and kinetics of structural transitions. To support the simulation results, we have also investigated the refolding of proteins in the presence of folding aids, such surfactant CTAB, PNIPAAm and DGP, to provide an effective confinement of the proteins. It is shown that, as predicted by coarse-grained simulations, folding aids at different status can facilitate the collapse of denatured protein and promote the conformational rearrangement and thereby gives an improved recovery of protein activity.

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