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膜电压对人肾近端小管形成和稳定性的影响。

Impact of Membrane Voltage on Formation and Stability of Human Renal Proximal Tubules .

机构信息

Department of Biomedical Engineering, Tufts University, 4 Colby Street, Medford 02155, Massachusetts, United States.

Biology Department, and Allen Discovery Center at Tufts University, Tufts University, 200 Boston Avenue, Medford 02155, Massachusetts, United States.

出版信息

ACS Biomater Sci Eng. 2022 Mar 14;8(3):1239-1246. doi: 10.1021/acsbiomaterials.1c01163. Epub 2022 Feb 14.

Abstract

More than 15% of adults in the United States suffer from some form of chronic kidney disease (CKD). Current strategies for CKD consist of dialysis or kidney transplant, which, however, can take several years. In this light, tissue engineering and regenerative medicine approaches are the key to improving people's living conditions by advancing previous tissue engineering approaches and seeking new targets as intervention methods for kidney repair or replacement. The membrane voltage () dynamics of a cell have been associated with cell migration, cell cycle progression, differentiation, and pattern formation. Furthermore, bioelectrical stimuli have been used as a means in the treatment of diseases and wound healing. Here, we investigated the role of as a novel target to guide and manipulate renal tissue models. Human-immortalized renal proximal tubule epithelial cells (RPTECs-TERT1) were cultured on Matrigel to support the formation of 3D proximal tubular-like structures with the incorporation of a voltage-sensitive dye indicator─bis-(1,3-dibutylbarbituric acid)timethine oxonol (DiBAC). The results demonstrated a correlation between the depolarization and the reorganization of human renal proximal tubule cells, indicating as a candidate variable to control these events. Accordingly, was pharmacologically manipulated using glibenclamide and pinacidil, K channel modulators, and proximal tubule formation and tubule stability over 21 days were assessed. Chronic manipulation of K channels induced changes in the tubular network topology without affecting lumen formation. Thus, a relationship was found between the preluminal tubulogenesis phase and K channels. This relationship may provide future options as a control point during kidney tissue development, treatment, and regeneration goals.

摘要

超过 15%的美国成年人患有某种形式的慢性肾病(CKD)。目前 CKD 的治疗策略包括透析或肾移植,但这可能需要数年时间。有鉴于此,组织工程和再生医学方法是通过推进以前的组织工程方法并寻找新的靶点作为肾脏修复或替代的干预方法,从而改善人们生活条件的关键。细胞的膜电压 () 动力学与细胞迁移、细胞周期进程、分化和形态发生有关。此外,生物电刺激已被用作治疗疾病和伤口愈合的一种手段。在这里,我们研究了作为指导和操纵肾组织模型的新靶点的作用。人永生化肾近端小管上皮细胞 (RPTEC-TERT1) 培养在 Matrigel 上,以支持具有电压敏感染料指示剂 bis-(1,3-二丁基巴比妥酸) 噻吩嗪 oxonol (DiBAC) 的 3D 近端管状结构的形成。结果表明,去极化与人类肾近端小管细胞的重组之间存在相关性,表明 是控制这些事件的候选变量。因此,使用格列本脲和吡那地尔(K 通道调节剂)对 进行了药理学处理,并评估了 21 天内近端小管形成和小管稳定性。慢性 K 通道操纵会导致管状网络拓扑结构发生变化,而不会影响管腔形成。因此,在管腔前小管发生阶段和 K 通道之间发现了关系。这种关系可能为肾脏组织发育、治疗和再生目标提供未来的控制选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7670/9906498/583da6541c6a/nihms-1868230-f0001.jpg

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