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Deciphering the Role of π-Interactions in Polyelectrolyte Complexes Using Rationally Designed Peptides

机译:通过合理设计的肽解密聚电解质配合物中的π相互作用的作用

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摘要

Electrostatic interactions, and specifically π-interactions play a significant role in the liquid-liquid phase separation of proteins and formation of membraneless organelles/or biological condensates. Sequence patterning of peptides allows creating protein-like structures and controlling the chemistry and interactions of the mimetic molecules. A library of oppositely charged polypeptides was designed and synthesized to investigate the role of π-interactions on phase separation and secondary structures of polyelectrolyte complexes. Phenylalanine was chosen as the π-containing residue and was used together with lysine or glutamic acid in the design of positively or negatively charged sequences. The effect of charge density and also the substitution of fluorine on the phenylalanine ring, known to disrupt π-interactions, were investigated. Characterization analysis using MALDI-TOF mass spectroscopy, H NMR, and circular dichroism (CD) confirmed the molecular structure and chiral pattern of peptide sequences. Despite an alternating sequence of chirality previously shown to promote liquid-liquid phase separation, complexes appeared as solid precipitates, suggesting strong interactions between the sequence pairs. The secondary structures of sequence pairs showed the formation of hydrogen-bonded structures with a β-sheet signal in FTIR spectroscopy. The presence of fluorine decreased hydrogen bonding due to its inhibitory effect on π-interactions. π-interactions resulted in enhanced stability of complexes against salt, and higher critical salt concentrations for complexes with more π-containing amino acids. Furthermore, UV-vis spectroscopy showed that sequences containing π-interactions and increased charge density encapsulated a small charged molecule with π-bonds with high efficiency. These findings highlight the interplay between ionic, hydrophobic, hydrogen bonding, and π-interactions in polyelectrolyte complex formation and enhance our understanding of phase separation phenomena in protein-like structures.
机译:静电相互作用,特别是π-相互作用在蛋白质的液相分离和形成膜细胞器/或生物缩合物的形成中起显着作用。肽的序列图案化允许产生蛋白质的结构并控制模拟分子的化学和相互作用。设计并合成了相反电荷的多肽文库,以研究π相互作用对聚电解质配合物的相分离和二次结构的作用。选择苯丙氨酸作为含π残基,并在正面或带负电荷的序列设计中与赖氨酸或谷氨酸一起使用。研究了电荷密度的影响以及氟对苯丙氨酸环的取代,已知破坏π相互作用。使用MALDI-TOF质谱,H NMR和圆形二色性(CD)的表征分析证实了肽序列的分子结构和手性图案。尽管先前显示出促进液体相分离的交替的手性顺序,但复合物出现为固体沉淀物,表明序列对之间的强相互作用。序列对的二级结构显示在FTIR光谱中具有β-片信号的氢键结构的形成。由于其对π相互作用的抑制作用,氟键的存在降低了氢键。 π-相互作用导致复合物对盐的稳定性增强,以及具有更多含π氨基酸的复合物的临界盐浓度更高的临界盐浓度。此外,UV-Vis光谱显示含有π相互作用和增加的电荷密度的序列将小型带电分子与高效率的π键包封。这些发现突出了聚电解质复合物中的离子,疏水,氢键和π相互作用之间的相互作用,并增强了我们对蛋白质结构中相分离现象的理解。

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