材料科学
组织工程
神经科学
组织修复
脚手架
再生(生物学)
信号转导
合理设计
生物医学工程
再生医学
计算机科学
生物
功能(生物学)
纳米技术
细胞生物学
神经干细胞
再髓鞘化
神经血管束
生物信息学
生物相容性材料
转录组
计算生物学
作者
Yue Wang,Guo Wq,Zeqi Chen,Jianwen Ma,Fa Tian,Erkang Tian,Qiuhao Luo,Lu Bai,Y N Wu,Dongdong Wu,L Yang,Cheng Hu,Yunbing Wang
摘要
Orchestrating tissue regeneration in complex pathologies like post-ischemic stroke requires materials that can precisely regulate multiple signaling pathways. A central challenge is engineering a single platform integrating mechanical, electrical, and biochemical cues to redirect these pathological networks. Here, we present a computation-driven, multimodal hydrogel engineered to function as a programmable regulatory node. The system integrates a computationally screened de novo vasculogenic peptide scaffold and surface-engineered, inflammation-responsive conductive MXene nanosheets. This rational surface engineering solves the critical bottleneck of MXene instability, preserving colloidal stability for over 2 months and maintaining high conductivity (1.2 mS/cm) within the injectable system. In a mouse model of ischemic stroke, this targeted modulation reconstructed the neurovascular unit integrity, suppressed glial scarring, and promoted remyelination and synaptic repair. Crucially, the platform re-established neural electrical signal transmission, leading to the recovery of neural function. Mechanistically, machine learning-driven transcriptomics highlighted Akt2 as a candidate regulatory hub, while untargeted metabolomics, prompted by a striking hair yellowing phenotype, suggested metabolic remodeling involving the phospholipase D signaling pathway. Our findings demonstrate a promising data-driven, bottom-up rational design paradigm for advanced bioelectronic tissue repair materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI