Peptide Stereocomplexation Orchestrates Supramolecular Assembly of Hydrogel Biomaterials

自愈水凝胶 化学 超分子化学 聚合物 生物物理学 纳米技术 流变学 高分子 无定形固体 化学工程 高分子科学 材料科学 结晶学 高分子化学 生物化学 复合材料 有机化学 晶体结构 生物 工程类
作者
Israt Jahan Duti,Jonathan R. Florian,Anna R. Kittel,Connor D. Amelung,Vincent P. Gray,Kyle J. Lampe,Rachel A. Letteri
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:145 (33): 18468-18476 被引量:8
标识
DOI:10.1021/jacs.3c04872
摘要

Stereocomplexation, or specific interactions among complementary stereoregular macromolecules, is burgeoning as an increasingly impactful design tool, exerting exquisite control of material structure and properties. Since stereocomplexation of polymers produces remarkable transformations in mechanics, morphology, and degradation, we sought to leverage stereocomplexation to tune these properties in peptide-based biomaterials. We found that blending the pentapeptides l- and d-KYFIL triggers dual mechanical and morphological transformations from stiff fibrous hydrogels into less stiff networks of plates, starkly contrasting prior reports that blending l- and d-peptides produces stiffer fibrous hydrogels than the individual constituents. The morphological transformation of KYFIL in phosphate-buffered saline from fibers that entangle into hydrogels to plates that cannot entangle explains the accompanying mechanical transformation. Moreover, the blends shield l-KYFIL from proteolytic degradation, producing materials with comparable proteolytic stability to d-KYFIL but with distinct 2D plate morphologies that in biomaterials may promote unique therapeutic release profiles and cell behavior. To confirm that these morphological, mechanical, and stability changes arise from differences in molecular packing as in polymer stereocomplexation, we acquired X-ray diffraction patterns, which showed l- and d-KYFIL to be amorphous and their blends to be crystalline. Stereocomplexation is particularly apparent in pure water, where l- and d-KYFIL are soluble random coils, and their blends form β-sheets and gel within minutes. Our results highlight the role of molecular details, such as peptide sequence, in determining the material properties resulting from stereocomplexation. Looking forward, the ability of stereocomplexation to orchestrate supramolecular assembly and tune application-critical properties champions stereochemistry as a compelling design consideration.
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