Stabilizing effect of amino acids on protein and colloidal dispersions

氨基酸 离子强度 胶体 化学 功能(生物学) 离子键合 生物利用度 纳米技术 生物分子 生物物理学 脯氨酸 赖氨酸 纳米尺度 小分子 生物化学 右旋糖酐 DNA 体内 分子 聚合物
作者
Ting Mao,Xufeng Xu,Pamina M. Winkler,Cécilia Laetitia Carla Siri,Ekaterina Poliukhina,Paulo Jacob Silva,Nan Xu,Yu Hu,Karim Al Zahabi,Rémi La Polla,Zhi Luo,Quy K. Ong,Alfredo Alexander‐Katz,Francesco Stellacci
出处
期刊:Nature [Nature Portfolio]
卷期号:645 (8082): 915-921 被引量:38
标识
DOI:10.1038/s41586-025-09506-w
摘要

Amino acids (AAs) have a long history of being used as stabilizers for biological media1. For example, they are important components in biomedical formulations. The effect of AAs on biological systems is also starting to be appreciated. For example, it is believed that water-stressed cells increase the levels of AAs to prevent protein aggregation2. Several hypotheses have been put forward regarding their function, ranging from water-structuring3 to hydrotropic4 to specific effects such as stabilization against misfolding, yet it is not known whether their stabilizing function is protein specific or a generic colloidal property. Here we deduce that AAs possess a new and broad colloidal property: they stabilize patchy nanoscale colloids by adsorbing onto their surfaces through weak interactions. We demonstrate this general property by careful experimental evaluation of the stabilizing effect of AAs on dispersions of various proteins, plasmid DNA and non-biological nanoparticles. Furthermore, we develop a theoretical framework that captures this phenomenon and experimentally corroborate several new broad theoretical implications that apply beyond AAs. In vivo experiments further demonstrate that the addition of 1 M proline to insulin doubles its bioavailability in blood. Overall, our results indicate that the role of small molecules is as important as that of ionic strength and should always be reported in biophysics experiments. Amino acids possess a new and broad colloidal property: they stabilize patchy nanoscale colloids, such as proteins, by adsorbing onto their surfaces through weak interactions.
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