Department of Cell Biology, Faculty of Biochemistry, Biophysics and Biotechnology, Jagiellonian University, Kraków, Poland.
Acta Biochim Pol. 2024 Jun 25;71:12993. doi: 10.3389/abp.2024.12993. eCollection 2024.
Endogenous electric fields (EFs) serve as a crucial signal to guide cell movement in processes such as wound healing, embryonic development, and cancer metastasis. However, the mechanism underlying cell electrotaxis remains poorly understood. A plausible hypothesis suggests that electrophoretic or electroosmotic forces may rearrange charged components of the cell membrane, including receptors for chemoattractants which induce asymmetric signaling and directional motility. This study aimed to explore the role of Transforming Growth Factor Beta (TGFβ) signaling in the electrotactic reaction of 3T3 fibroblasts. Our findings indicate that inhibiting canonical and several non-canonical signaling pathways originating from the activated TGF-β receptor does not hinder the directed migration of 3T3 cells to the cathode. Furthermore, suppression of TGF-β receptor expression does not eliminate the directional migration effect of 3T3 cells in the electric field. Additionally, there is no observed redistribution of the TGF-β receptor in the electric field. However, our studies affirm the significant involvement of Phosphoinositide 3-Kinase (PI3K) in electrotaxis, suggesting that in our model, its activation is likely associated with factors independent of TGFβ action.
内源性电场 (EF) 作为一种重要的信号,指导细胞在创伤愈合、胚胎发育和癌症转移等过程中的运动。然而,细胞电趋性的机制仍不清楚。一个合理的假设表明,电泳或电渗流力可能会重新排列细胞膜上带电荷的成分,包括趋化因子受体,这些受体诱导不对称信号和定向运动。本研究旨在探讨转化生长因子β (TGFβ) 信号在 3T3 成纤维细胞电趋性反应中的作用。我们的研究结果表明,抑制源自激活的 TGF-β 受体的经典和几种非经典信号通路并不能阻止 3T3 细胞向阴极的定向迁移。此外,抑制 TGF-β 受体表达并不能消除 3T3 细胞在电场中的定向迁移效应。此外,在电场中未观察到 TGF-β 受体的重新分布。然而,我们的研究证实了磷酸肌醇 3-激酶 (PI3K) 在电趋性中的重要作用,表明在我们的模型中,其激活可能与 TGFβ 作用无关的因素有关。