Functional Design of Peptide Materials Based on Supramolecular Cohesion

IF 15.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of the American Chemical Society Pub Date : 2025-02-27 DOI:10.1021/jacs.4c17867
Simon A. Egner, Mayank Agrawal, Hiroaki Sai, Michael D. Dore, Liam C. Palmer, Samuel I. Stupp
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Abstract

Peptide materials offer a broad platform to design biomimetic soft matter, and filamentous networks that emulate those in extracellular matrices and the cytoskeleton are among the important targets. Given the vast sequence space, a combination of computational approaches and readily accessible experimental techniques is required to design peptide materials efficiently. We report here on a strategy that utilizes this combination to predict supramolecular cohesion within filaments of peptide amphiphiles, a property recently linked to supramolecular dynamics and consequently bioactivity. Using established coarse-grained simulations on 10,000 randomly generated peptide sequences, we identified 3500 likely to self-assemble in water into nanoscale filaments. Atomistic simulations of small clusters were used to further analyze this subset of sequences and identify mathematical descriptors that are predictive of intermolecular cohesion, which was the main purpose of this work. We arbitrarily selected a small cohort of these sequences for chemical synthesis and verified their fiber morphology. With further characterization, we were able to link the latent heat associated with fiber to micelle transitions, an indicator of cohesion and potential supramolecular dynamicity within the filaments, to calculated hydrogen bond densities in the simulation clusters. Based on validation from in situ synchrotron X-ray scattering and differential scanning calorimetry, we conclude that the phase transitions can be easily observed by very simple polarized light microscopy experiments. We are encouraged by the methodology explored here as a relatively low-cost and fast way to design potential functions of peptide materials.

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基于超分子内聚的肽材料功能设计
肽材料为设计仿生软物质提供了广阔的平台,而模拟细胞外基质和细胞骨架中的丝状网络是重要的目标之一。鉴于巨大的序列空间,需要结合计算方法和易于获得的实验技术来有效地设计肽材料。我们在这里报告了一种利用这种组合来预测肽两亲体细丝内超分子内聚的策略,这种特性最近与超分子动力学和生物活性有关。通过对10,000个随机生成的肽序列进行粗粒度模拟,我们发现3500个可能在水中自组装成纳米级细丝。小簇的原子模拟被用来进一步分析这一序列子集,并确定预测分子间内聚的数学描述符,这是这项工作的主要目的。我们随机选择了这些序列中的一小部分进行化学合成,并验证了它们的纤维形态。通过进一步的表征,我们能够将纤维的潜热与胶束跃迁联系起来,胶束跃迁是细丝内内聚和潜在超分子动力学的指标,与模拟团簇中计算的氢键密度联系起来。根据原位同步加速器x射线散射和差示扫描量热法的验证,我们得出结论,通过非常简单的偏振光显微镜实验可以很容易地观察到相变。我们对这里探索的方法感到鼓舞,因为它是一种相对低成本和快速的方法来设计肽材料的潜在功能。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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