Simpson Querrey Institute for BioNanotechnology, Northwestern University, Chicago, Illinois 60611, United States.
Department of Biomedical Engineering, Northwestern University, Evanston, Illinois 60208, United States.
ACS Nano. 2023 Oct 24;17(20):19887-19902. doi: 10.1021/acsnano.3c04572. Epub 2023 Oct 4.
Neurotrophic factors are essential not only for guiding the organization of the developing nervous system but also for supporting the survival and growth of neurons after traumatic injury. In the central nervous system (CNS), inhibitory factors and the formation of a glial scar after injury hinder the functional recovery of neurons, requiring exogenous therapies to promote regeneration. Netrin-1, a neurotrophic factor, can initiate axon guidance, outgrowth, and branching, as well as synaptogenesis, through activation of deleted in colorectal cancer (DCC) receptors. We report here the development of a nanofiber-shaped supramolecular mimetic of netrin-1 with monomers that incorporate a cyclic peptide sequence as the bioactive component. The mimetic structure was found to activate the DCC receptor in primary cortical neurons using low molar ratios of the bioactive comonomer. The supramolecular nanofibers enhanced neurite outgrowth and upregulated maturation as well as pre- and postsynaptic markers over time, resulting in differences in electrical activity similar to neurons treated with the recombinant netrin-1 protein. The results suggest the possibility of using the supramolecular structure as a therapeutic to promote regenerative bioactivity in CNS injuries.
神经营养因子不仅对指导发育中神经系统的组织形成很重要,而且对创伤后神经元的存活和生长也很重要。在中枢神经系统 (CNS) 中,抑制性因子和损伤后胶质瘢痕的形成阻碍了神经元的功能恢复,需要外源性治疗来促进再生。神经营养因子 netrin-1 可以通过激活缺失结肠直肠癌 (DCC) 受体来启动轴突导向、生长和分支以及突触形成。我们在这里报告了一种 netrin-1 的纳米纤维状超分子模拟物的开发,其单体包含作为生物活性成分的环状肽序列。发现模拟物结构在初级皮质神经元中以低摩尔比的生物活性共聚单体激活 DCC 受体。随着时间的推移,超分子纳米纤维增强了神经突的生长,并上调了成熟以及前和后突触标记物,导致与用重组 netrin-1 蛋白处理的神经元相似的电活动差异。结果表明,有可能使用该超分子结构作为治疗剂来促进中枢神经系统损伤中的再生生物活性。