基础医学与临床 ›› 2026, Vol. 46 ›› Issue (5): 681-686.doi: 10.16352/j.issn.1001-6325.2026.05.0681

• 研究论文 • 上一篇    下一篇

单点突变通过非加成性调控角蛋白14衍生肽的构象热稳定性

李珍艳, 李淑媛, 王晨轩, 张文博*   

  1. 中国医学科学院北京协和医学院 基础医学研究所 生物物理及结构生物学系 重大疾病共性机制研究全国重点实验室, 北京 100005
  • 收稿日期:2026-01-30 修回日期:2026-03-24 出版日期:2026-05-05 发布日期:2026-04-28
  • 通讯作者: *zwb@ibms.pumc.edu.cn
  • 基金资助:
    中国医学科学院医学与健康科技创新工程(2025-I2M-XHXX-078)

Single-point mutations non-additively regulate the conformational thermal stability of keratin 14-derived peptides

LI Zhenyan, LI Shuyuan, WANG Chenxuan, ZHANG Wenbo*   

  1. State Key Laboratory of Common Mechanism Research for Major Diseases, Department of Biophysics and Structural Biology, Institute of Basic Medical Sciences, Chinese Academy of Medical Sciences & Peking Union Medical College, Beijing 100005, China
  • Received:2026-01-30 Revised:2026-03-24 Online:2026-05-05 Published:2026-04-28
  • Contact: *zwb@ibms.pumc.edu.cn

摘要: 目的 解析单点氨基酸突变对多肽热稳定性的调控规律,揭示侧链局域性质所介导的整体调控作用。方法 合成角蛋白14衍生肽QNL体系:野生型QNL-R及3种突变体QNL-H、QNL-G、QNL-S。利用AlphaFold3预测单点突变对结构的影响;通过可变温内源性荧光光谱(变温荧光)测定多肽在升温过程中的构象变化,基于两态转变模型计算吉布斯自由能(ΔG)和交叉点温度,定量分析突变对热稳定性的影响。结果 AlphaFold3预测显示野生型与突变体的结构高度一致(主链RMSD=0.22 Å)。然而,变温荧光实验揭示了4条多肽显著的理化性质差异:在25 ℃下,单点突变通过重塑局部化学微环境,显著改变了多肽的内源性荧光发射强度(P<0.05)。在升温过程中,尽管4条多肽表现出相似的构象变化趋势(303 nm处荧光强度降低提示去折叠,391 nm处荧光强度升高提示热聚集),但热力学分析表明,突变显著改变了多肽的热稳定性,导致交叉点温度发生系统性偏移,依次为:QNL-G(55.9 ℃)>QNL-H(54.7 ℃)>QNL-S(54.2 ℃)>QNL-R(52.2 ℃)。结论 单点氨基酸突变导致残基侧链理化性质发生改变,并以非加成性方式显著影响多肽整体构象热稳定性。该结果揭示了依赖静态结构与能量最优原理的蛋白质结构理论预测的局限性。

关键词: 角蛋白衍生肽, 单点突变, 热稳定性, 聚集, 内源性荧光

Abstract: Objective To elucidate the regulatory principles of how single-point amino acid mutations modulate polypeptide thermal stability, and reveal the holistic regulatory effects mediated by the local properties of side chains. Methods The keratin 14-derived peptide QNL system, comprising the wild-type QNL-R and three mutants (QNL-H, QNL-G, and QNL-S), was synthesized. AlphaFold3 was employed to predict the structural impacts of the single-point mutations. Conformational change of the polypeptide during the heating process was monitored by temperature-dependent intrinsic fluorescence spectroscopy. Based on a two-state transition model, Gibbs free energy (ΔG)and crossover temperature were calculated to quantitatively assess the effect of mutations on thermal stability. Results AlphaFold3 predictions showed a high structural similarity with the wild-type and mutant peptides(backbone RMSD=0.22 Å). However, variable-temperature fluorescence experiments revealed significant physicochemical discrepancies: at 25 ℃, the single-point mutations significantly altered the intrinsic fluorescence emission intensity by remodeling the local chemical microenvironment(P<0.05). During the heating process, although all four peptides exhibited similar conformational evolution trends(decreased fluorescence intensity at 303 nm indicating unfolding, and increased fluorescence intensity at 391 nm indicating thermal aggregation), thermodynamic analysis demonstrated that the mutations significantly altered the thermal stability of the peptides which lead to systematic shift in the crossing-point temperatures as follows: QNL-G(55.9 ℃)>QNL-H(54.7 ℃)>QNL-S(54.2 ℃)>QNL-R(52.2 ℃). Conclusions Single-point amino acid mutations alter the physicochemical properties of residue side chains and have significant impact on the overall conformational thermal stability of the peptides in a non-additive manner. This finding shows the limitation of theoretical predictions of protein structure on static conformations and the principle of energy minimization.

Key words: keratin-derived peptide, single-point mutation, thermal stability, aggregation, intrinsic fluorescence

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