4.8 Article

Functional Self-Assembling Peptide Nanofiber Hydrogels Designed for Nerve Degeneration

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 8, 期 3, 页码 2348-2359

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.5b11473

关键词

self-assembling peptides; nanofiber; hydrogel; 3D cell culture; nerve regeneration

资金

  1. National Program on Key Basic Research Project (973 Program) [2014CB542205]
  2. Hong Kong Health and Medical Research Fund [02132826]
  3. Foundation for Distinguished Young Talents in Higher Education of Guangdong [Yq2013023]
  4. Pearl River Nova Program of Guangzhou [1317000404]
  5. China Postdoctoral Science Foundation [2013M540684]
  6. Leading Talents of Guangdong Province [87014002]
  7. National Natural Science Foundation of China [31570875, 81590761, 31200559]
  8. Hong Kong Scholars Program [XJ2012024]

向作者/读者索取更多资源

Self-assembling peptide (SAP) RADA16-I (Ac-(RADA)(4)-CONH2) has been suffering from a main drawback associated with low pH, which damages cells and host tissues upon direct exposure. In this study, we presented a strategy to prepare nanofiber hydrogels from two designer SAPs at neutral pH. RADA16-I was appended with functional motifs containing cell adhesion peptide RGD and neurite outgrowth peptide IKVAV. The two SAPs were specially designed to have opposite net charges at neutral pH, the combination of which created a nanofiber hydrogel (-IKVAV/-RGD) characterized by significantly higher G' than G '' in a viscoelasticity examination. Circular dichroism, Fourier transform infrared spectroscopy, and Raman measurements were performed to investigate the secondary structure of the designer SAPs, indicating that both the hydrophobic/hydrophilic properties and electrostatic interactions of the functional motifs play an important role in the self assembling behavior of the designer SAPs. The neural progenitor cells (NPCs)/stem cells (NSCs) fully embedded in the 3D-IKVAV/-RGD nanofiber hydrogel survived, whereas those embedded within the RADA 16-I hydrogel hardly survived. Moreover, the-IKVAV/-RGD nanofiber hydrogel supported NPC/NSC neuron and astrocyte differentiation in a 3D environment without adding. extra growth factors. Studies of three nerve injury models, including sciatic nerve defect, intracerebral hemorrhage, and spinal cord transection, indicated that the designer-IKVAV/-RGD nanofiber hydrogel provided a more permissive environment for nerve regeneration than the RADA 16-I hydrogel. Therefore, we reported a new mechanism that might be beneficial for the synthesis of SAPs for in vitro 3D cell culture and nerve regeneration.

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