School of Public Health, Nantong University, Nantong, 226019, China.
School of Public Health, Nantong University, Nantong, 226019, China.
Biosens Bioelectron. 2024 Nov 1;263:116610. doi: 10.1016/j.bios.2024.116610. Epub 2024 Jul 27.
Endothelial cells are sensitive to mechanical force and can convert it into biochemical signals to trigger mechano-chemo-transduction. Although conventional techniques have been used to investigate the subsequent modifications of cellular expression after mechanical stimulation, the in situ and real-time acquiring the transient biochemical information during mechanotransduction process remains an enormous challenge. In this work, we develop a flexible and multi-functional three-dimensional conductive scaffold that integrates cell growth, mechanical stimulation, and electrochemical sensing by in situ growth of enokitake-like Au nanowires on a three-dimensional porous polydimethylsiloxane substrate. The conductive scaffold possesses stable and desirable electrochemical sensing performance toward nitric oxide under mechanical deformation. The prepared e-AuNWs/CC/PDMS scaffold exhibits a good electrocatalytic ability to NO with a linear range from 2.5 nM to 13.95 μM and a detection limit of 8 nM. Owing to the excellent cellular compatibility, endothelial cells can be cultured directly on the scaffold and the real-time inducing and recording of nitric oxide secretion under physiological and pathological conditions were achieved. This work renders a reliable sensing platform for real-time monitoring cytomechanical signaling during endothelial mechanotransduction and is expected to promote other related biological investigations based on three-dimensional cell culture.
内皮细胞对外力敏感,能够将其转化为生化信号,从而引发机械化学转导。虽然传统技术已被用于研究机械刺激后细胞表达的后续变化,但在机械转导过程中实时原位获取瞬时生化信息仍然是一个巨大的挑战。在这项工作中,我们开发了一种灵活多功能的三维导电支架,通过在三维多孔聚二甲基硅氧烷基底上原位生长类似金针菇的金纳米线,实现细胞生长、机械刺激和电化学传感的集成。该导电支架在机械变形下对一氧化氮具有稳定且理想的电化学传感性能。制备的 e-AuNWs/CC/PDMS 支架对 NO 具有良好的电催化能力,线性范围为 2.5 nM 至 13.95 μM,检测限为 8 nM。由于其出色的细胞相容性,内皮细胞可以直接在支架上培养,并实现了在生理和病理条件下实时诱导和记录一氧化氮的分泌。这项工作为实时监测内皮细胞机械转导过程中的细胞力学信号提供了一个可靠的传感平台,有望促进基于三维细胞培养的其他相关生物学研究。