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一种拼图形状的自组装肽水凝胶可有效促进蛋白质的掺入和释放,从而促进受损大脑的再生。

Efficient protein incorporation and release by a jigsaw-shaped self-assembling peptide hydrogel for injured brain regeneration.

机构信息

Department of Applied Chemistry, Graduate School of Engineering, Tokyo University of Agriculture and Technology, Tokyo, 184-8588, Japan.

Center for Brain Integration Research (CBIR), Tokyo Medical and Dental University (TMDU), Tokyo, 113-8510, Japan.

出版信息

Nat Commun. 2021 Nov 19;12(1):6623. doi: 10.1038/s41467-021-26896-3.

Abstract

During injured tissue regeneration, the extracellular matrix plays a key role in controlling and coordinating various cellular events by binding and releasing secreted proteins in addition to promoting cell adhesion. Herein, we develop a cell-adhesive fiber-forming peptide that mimics the jigsaw-shaped hydrophobic surface in the dovetail-packing motif of glycophorin A as an artificial extracellular matrix for regenerative therapy. We show that the jigsaw-shaped self-assembling peptide forms several-micrometer-long supramolecular nanofibers through a helix-to-strand transition to afford a hydrogel under physiological conditions and disperses homogeneously in the hydrogel. The molecular- and macro-scale supramolecular properties of the jigsaw-shaped self-assembling peptide hydrogel allow efficient incorporation and sustained release of vascular endothelial growth factor, and demonstrate cell transplantation-free regenerative therapeutic effects in a subacute-chronic phase mouse stroke model. This research highlights a therapeutic strategy for injured tissue regeneration using the jigsaw-shaped self-assembling peptide supramolecular hydrogel.

摘要

在受伤组织再生过程中,细胞外基质通过结合和释放分泌蛋白,除了促进细胞黏附外,还在控制和协调各种细胞事件中发挥着关键作用。在此,我们开发了一种细胞黏附纤维形成肽,它模拟了糖蛋白 A 中的鸠尾状嵌合图案中的拼图状疏水面,作为再生治疗的人工细胞外基质。我们表明,拼图状自组装肽通过螺旋到链的转变形成几微米长的超分子纳米纤维,在生理条件下提供水凝胶,并在水凝胶中均匀分散。拼图状自组装肽水凝胶的分子和宏观尺度超分子性质允许有效掺入和持续释放血管内皮生长因子,并在亚急性慢性期小鼠中风模型中展示无细胞移植的再生治疗效果。这项研究强调了使用拼图状自组装肽超分子水凝胶进行受伤组织再生的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f60e/8604910/13b7eb65abf1/41467_2021_26896_Fig1_HTML.jpg

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