Ren Yuan, Fu Hailin, Baumgartner Ryan, Zhang Yanfeng, Cheng Jianjun, Lin Yao
Department of Chemistry and ‡Polymer Program, Institute of Material Science, University of Connecticut, Storrs, Connecticut 06269, United States.
Department of Chemistry and ⊥Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
ACS Macro Lett. 2017 Jul 18;6(7):733-737. doi: 10.1021/acsmacrolett.7b00324. Epub 2017 Jun 23.
Model-based studies on helix-coil transition and folding cooperativity of synthetic polypeptides have contributed to the understanding of protein folding and stability and to the development of polypeptide-based functional materials. Polypeptide-containing macromolecules with complex architectures, however, remain a challenge in the model-based analysis. Herein, a modified Schellman-Zimm-Bragg model has been utilized to quantitatively analyze the folding cooperativity of polypeptide-containing macromolecules. While the helix-coil transition of homopolypeptides (e.g., poly(ε-benzyloxycarbonyl-l-lysine) (PZLL)) can be described by the classic model, the folding of grafted polypeptide chains in the comb macromolecules (e.g., polynorbornene--poly(ε-benzyloxycarbonyl-l-lysine) (PN--PZLL)) cannot be accurately predicted by the existing theories, due to the side-chain interactions between grafted polypeptides in the comb macromolecules. Incorporating nonlocal interaction explicability into the statistical mechanics treatment is found to be instructive to account for the possible "tertiary" interactions of polypeptides in the macromolecules with complex architectures.
基于模型的合成多肽螺旋-线圈转变和折叠协同性研究,有助于理解蛋白质折叠与稳定性,以及基于多肽的功能材料的开发。然而,具有复杂结构的含多肽大分子,在基于模型的分析中仍然是一个挑战。在此,一种改进的Schellman-Zimm-Bragg模型已被用于定量分析含多肽大分子的折叠协同性。虽然均聚多肽(如聚(ε-苄氧羰基-L-赖氨酸)(PZLL))的螺旋-线圈转变可用经典模型描述,但梳状大分子(如聚降冰片烯-聚(ε-苄氧羰基-L-赖氨酸)(PN-PZLL))中接枝多肽链的折叠,由于梳状大分子中接枝多肽之间的侧链相互作用,现有理论无法准确预测。将非局部相互作用可解释性纳入统计力学处理,被发现有助于解释具有复杂结构的大分子中多肽可能存在的“三级”相互作用。