Department of Chemical and Biomolecular Engineering University of Delaware, 150 Academy Street, Newark, Delaware 19716, United States.
Department of Material Science and Engineering University of Delaware, 201 DuPont Hall, Newark, Delaware 19716, United States.
ACS Biomater Sci Eng. 2021 Sep 13;7(9):4175-4195. doi: 10.1021/acsbiomaterials.1c00589. Epub 2021 Jul 20.
Peptides are of continued interest for therapeutic applications, from soluble and immobilized ligands that promote desired binding or uptake to self-assembled supramolecular structures that serve as scaffolds and . These applications require efficient and scalable synthetic approaches because of the large amounts of material that often are needed for studies of bulk material properties and their translation. In this work, we establish new methods for the synthesis, purification, and visualization of assembling peptides, with a focus on multifunctional collagen mimetic peptides (mfCMPs) relevant for formation and integration within hydrogel-based biomaterials. First, a methodical approach useful for the microwave-assisted synthesis of assembling peptide sequences prone to deletions was established, beginning with the identification of the deleted residues and their locations and followed by targeted use of dual chemistry couplings for those specific residues. Second, purification techniques that integrate the principles of heating and ion displacement with traditional chromatography and dialysis were implemented to improve separation and isolation of the desired multifunctional peptide product, which contained blocks for thermoresponsiveness and ionic interactions. Third, an approach for fluorescent labeling of these mfCMPs, which is orthogonal to their assembly and their covalent incorporation into a bulk hydrogel material, was established, allowing visualization of the resulting hierarchical fibrillar structures in three dimensions within hydrogels using confocal microscopy. The methods presented in this work allow the production of multifunctional peptides in scalable quantities and with minimal deletions, enabling future studies for better understanding of composition-structure-property relationships and for translating these biomaterials into a range of applications. Although mfCMPs are the focus of this work, the methods demonstrated could prove useful for other assembling peptide systems and for the production of peptides more broadly for therapeutic applications.
肽在治疗应用中一直受到关注,从促进所需结合或摄取的可溶性和固定化配体,到作为支架和模板的自组装超分子结构。这些应用需要高效和可扩展的合成方法,因为通常需要大量的材料来研究大块材料的性质及其转化。在这项工作中,我们建立了用于组装肽的合成、纯化和可视化的新方法,重点是与基于水凝胶的生物材料内形成和整合相关的多功能胶原模拟肽 (mfCMP)。首先,建立了一种适用于易缺失的组装肽序列的微波辅助合成的系统方法,从鉴定缺失的残基及其位置开始,然后针对这些特定残基使用双化学偶联。其次,实施了将加热和离子置换原理与传统色谱和透析相结合的纯化技术,以改善所需多功能肽产物的分离和隔离,该产物包含用于热响应性和离子相互作用的块。第三,建立了一种对这些 mfCMP 进行荧光标记的方法,该方法与它们的组装和它们在块状水凝胶材料中的共价掺入正交,允许使用共聚焦显微镜在水凝胶中三维可视化所得的分级纤维状结构。这项工作中提出的方法允许以可扩展的数量生产多功能肽,并且最小化缺失,从而为更好地理解组成-结构-性质关系以及将这些生物材料转化为一系列应用的研究提供了条件。尽管 mfCMP 是这项工作的重点,但所展示的方法可能对其他组装肽系统以及更广泛的治疗应用肽的生产有用。