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Programming angiogenesis with tunable assemblies of multifunctional peptides

delete2026-07-31
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OA
AI
J
Joseph Dodd-o
B
Bobak Shadpoor
A
Abhishek Roy
R
Roya Jafari
T
Tarunya R. Sudarshan
A
Abigail Holberton
D
Dongjing He
F
Francesco Coppola
D
Daniel M. Dinakarapandian
D
Deep Malu
G
Gelavizh Gharati
A
Alexandra Griffith
H
Harrison Rohe-Weiner
S
Siya Patel
E
Edward M. Bonder
Y
Yuhang Hu
L
Levi B. Wood
A
Anant K. Paravastu
P
Petr Král
V
Vivek Kumar *
DOI:10.1126/sciadv.aef5064delete
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Abstract

Abstract

En 中文
Therapeutic angiogenesis is constrained by the inability to localize, sustain, and finely tune vascular signaling. Here, we detail a supramolecular peptide system that enables angiogenic programming by decoupling mechanical integrity from receptor-level bioactivity. We integrate a vascular endothelial growth factor (VEGF)–mimetic amphiphile (SLan) with a mechanically robust β sheet peptide (K1) to yield injectable nanofiber hydrogels with tunable stiffness (100 to 1000 pascals) and preserved vascular endothelial growth factor receptor 2 (VEGFR2) affinity. Molecular dynamics simulations and solid-state nuclear magnetic resonance revealed that the coassembly mitigates steric interference between domains, enabling dense supramolecular packing while maintaining optimal receptor accessibility. The resulting SLan-K1 formulation preserves the secondary structure, activating canonical VEGFR2–MEK (mitogen-activated protein kinase kinase)–ERK (extracellular signal–regulated kinase). In vitro, these hydrogels induce endothelial proliferation; in vivo, they drive rapid neovascular infiltration and stable vascular integration in murine and rodent implants. This design unites peptide self-assembly, receptor binding kinetics, and immunophenotypic outcomes in defining a molecular framework for tunable angiogenic materials. This strategy establishes a modular platform for engineering instructive microenvironments that bridge molecular design and tissue-scale functionality.

Journal

Science Advances cover
Science Advances
IF:
12.5
Papers:
2.0W
Citations:
18.1W

Organization

U
University of Houston
Scholars:
1.1K
Papers: 623
Citations: 1.7W
G
georgia institute of technology
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2.0K
Papers: 994
Citations: 0
R
rutgers university
Scholars:
1.3K
Papers: 739
Citations: 0
N
New Jersey Institute of Technology
Scholars:
4.1K
Papers: 4.5K
Citations: 4.6K
U
university of illinois at chicago
Scholars:
744
Papers: 375
Citations: 0
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