Stiffness-tunable biomaterials provide a good extracellular matrix environment for axon growth and regeneration  

在线阅读下载全文

作  者:Ronglin Han Lanxin Luo Caiyan Wei Yaru Qiao Jiming Xie Xianchao Pan Juan Xing 

机构地区:[1]Department of Pathophysiology,School of Basic Medical Sciences,Southwest Medical University,Luzhou,Sichuan Province,China [2]Department of Medicinal Chemistry,School of Pharmacy,Southwest Medical University,Luzhou,Sichuan Province,China

出  处:《Neural Regeneration Research》2025年第5期1364-1376,共13页中国神经再生研究(英文版)

基  金:supported by the Natio`nal Natural Science Foundation of China,No. 81801241;a grant from Sichuan Science and Technology Program,No. 2023NSFSC1578;Scientific Research Projects of Southwest Medical University,No. 2022ZD002 (all to JX)。

摘  要:Neuronal growth, extension, branching, and formation of neural networks are markedly influenced by the extracellular matrix—a complex network composed of proteins and carbohydrates secreted by cells. In addition to providing physical support for cells, the extracellular matrix also conveys critical mechanical stiffness cues. During the development of the nervous system, extracellular matrix stiffness plays a central role in guiding neuronal growth, particularly in the context of axonal extension, which is crucial for the formation of neural networks. In neural tissue engineering, manipulation of biomaterial stiffness is a promising strategy to provide a permissive environment for the repair and regeneration of injured nervous tissue. Recent research has fine-tuned synthetic biomaterials to fabricate scaffolds that closely replicate the stiffness profiles observed in the nervous system. In this review, we highlight the molecular mechanisms by which extracellular matrix stiffness regulates axonal growth and regeneration. We highlight the progress made in the development of stiffness-tunable biomaterials to emulate in vivo extracellular matrix environments, with an emphasis on their application in neural repair and regeneration, along with a discussion of the current limitations and future prospects. The exploration and optimization of the stiffness-tunable biomaterials has the potential to markedly advance the development of neural tissue engineering.

关 键 词:ALGINATE axon growth BIOMATERIALS extracellular matrix neural repair neurons NEUROREGENERATION POLYACRYLAMIDE POLYDIMETHYLSILOXANE stiffness 

分 类 号:R338[医药卫生—人体生理学]

 

参考文献:

正在载入数据...

 

二级参考文献:

正在载入数据...

 

耦合文献:

正在载入数据...

 

引证文献:

正在载入数据...

 

二级引证文献:

正在载入数据...

 

同被引文献:

正在载入数据...

 

相关期刊文献:

正在载入数据...

相关的主题
相关的作者对象
相关的机构对象