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De novo design of alpha-helical peptide amphiphiles repairing fragmented collagen type I via supramolecular co-assembly

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arxiv 2507.14577 v1 pith:SSBBJLCA submitted 2025-07-19 physics.chem-ph

De novo design of alpha-helical peptide amphiphiles repairing fragmented collagen type I via supramolecular co-assembly

classification physics.chem-ph
keywords collagenco-assemblystructuresupramolecularalpha-helicaldesignformationfragmented
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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The hierarchical triple-helix structure of collagen type I, Col I, is essential for extracellular matrix support and integrity. However, current reconstruction strategies face challenges such as chain mismatch, preventing proper fibril formation. Here, we report a supramolecular co-assembly strategy using a de novo-designed alpha-helical peptide amphiphile (APA) of just seven amino acids. The APA features a hydrophobic palmitic acid tail, which stabilizes the helical structure and promotes co-assembly upon interaction with complementary molecular structures. This minimal design enables selective recognition of fragmented collagen (FC), restoring triple-helix conformation and guiding fibre formation. We applied this mechanism to engineer FC-rich nanofat (NF) into a mechanically reinforced biomaterial. Integration of APA-NF with coaxial 3D printing enabled spatial control of structure and function. In a porcine model, this platform enhanced in situ vascularized adipose tissue regeneration. Our results demonstrate that hierarchical reconstruction of collagen via peptide-guided supramolecular assembly offers a promising strategy for soft tissue repair.

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  1. An in situ self-adaptive hydrogel coating enables seamless neural interfaces via okra mucilage polysaccharide and {\alpha}-helical peptide amphiphiles co-assembly

    physics.bio-ph 2026-04 unverdicted novelty 6.0

    A self-adaptive hydrogel from okra polysaccharide and peptide amphiphiles coats neural electrodes in situ, reducing foreign body response and supporting stable in vivo recordings without added conductive fillers.