Suppr超能文献

应用电细胞-基质阻抗传感(ECIS)生物传感器技术实时监测细胞病变缺氧对视网膜色素上皮屏障功能的影响。

Real-Time Monitoring the Effect of Cytopathic Hypoxia on Retinal Pigment Epithelial Barrier Functionality Using Electric Cell-Substrate Impedance Sensing (ECIS) Biosensor Technology.

机构信息

Department of Ophthalmology, Visual, and Anatomical Sciences, School of Medicine, Wayne State University, 540 East Canfield, Gordon Scott Hall (room 7133), Detroit, MI 48201, USA.

Department of Pharmacology, School of Medicine, Wayne State University, 540 East Canfield, Gordon Scott Hall (room 7133), Detroit, MI 48201, USA.

出版信息

Int J Mol Sci. 2021 Apr 27;22(9):4568. doi: 10.3390/ijms22094568.

Abstract

Disruption of retinal pigment epithelial (RPE barrier integrity is a hallmark feature of various retinal blinding diseases, including diabetic macular edema and age-related macular degeneration, but the underlying causes and pathophysiology are not completely well-defined. One of the most conserved phenomena in biology is the progressive decline in mitochondrial function with aging leading to cytopathic hypoxia, where cells are unable to use oxygen for energy production. Therefore, this study aimed to thoroughly investigate the role of cytopathic hypoxia in compromising the barrier functionality of RPE cells. We used Electric Cell-Substrate Impedance Sensing (ECIS) system to monitor precisely in real time the barrier integrity of RPE cell line (ARPE-19) after treatment with various concentrations of cytopathic hypoxia-inducing agent, Cobalt(II) chloride (CoCl). We further investigated how the resistance across ARPE-19 cells changes across three separate parameters: R (the electrical resistance between ARPE-19 cells), α (the resistance between the ARPE-19 and its substrate), and C (the capacitance of the ARPE-19 cell membrane). The viability of the ARPE-19 cells and mitochondrial bioenergetics were quantified with 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl-2H-tetrazolium bromide (MTT) assay and seahorse technology, respectively. ECIS measurement showed that CoCl reduced the total impedance of ARPE-19 cells in a dose dependent manner across all tested frequencies. Specifically, the ECIS program's modelling demonstrated that CoCl affected R as it begins to drastically decrease earlier than α or C, although ARPE-19 cells' viability was not compromised. Using seahorse technology, all three concentrations of CoCl significantly impaired basal, maximal, and ATP-linked respirations of ARPE-19 cells but did not affect proton leak and non-mitochondrial bioenergetic. Concordantly, the expression of a major paracellular tight junction protein (ZO-1) was reduced significantly with CoCltreatment in a dose-dependent manner. Our data demonstrate that the ARPE-19 cells have distinct dielectric properties in response to cytopathic hypoxia in which disruption of barrier integrity between ARPE-19 cells precedes any changes in cells' viability, cell-substrate contacts, and cell membrane permeability. Such differences can be used in screening of selective agents that improve the assembly of RPE tight junction without compromising other RPE barrier parameters.

摘要

视网膜色素上皮 (RPE) 屏障完整性的破坏是各种致盲性视网膜疾病的一个标志特征,包括糖尿病性黄斑水肿和年龄相关性黄斑变性,但潜在的原因和病理生理学尚未完全明确。生物学中最保守的现象之一是线粒体功能随着年龄的增长而逐渐下降,导致细胞病变性缺氧,细胞无法将氧气用于能量产生。因此,本研究旨在深入研究细胞病变性缺氧在损害 RPE 细胞屏障功能中的作用。我们使用电动细胞-基底阻抗传感 (ECIS) 系统实时精确监测用各种浓度的细胞病变性缺氧诱导剂——氯化钴 (CoCl) 处理后 RPE 细胞系 (ARPE-19) 的屏障完整性。我们进一步研究了 ARPE-19 细胞的电阻 (ARPE-19 细胞之间的电阻)、α (ARPE-19 与基底之间的电阻) 和 C (ARPE-19 细胞膜的电容) 这三个独立参数如何变化。用 3-(4,5-二甲基噻唑-2-基)-2,5-二苯基-2H-四唑溴盐 (MTT) 测定法和 Seahorse 技术分别定量测定 ARPE-19 细胞的活力和线粒体生物能。ECIS 测量结果表明,CoCl 以剂量依赖的方式降低了 ARPE-19 细胞的总阻抗,在所有测试频率下均如此。具体来说,ECIS 程序的建模表明,CoCl 影响 R,因为它比 α 或 C 更早开始急剧下降,尽管 ARPE-19 细胞的活力没有受到损害。使用 Seahorse 技术,所有三种浓度的 CoCl 均显著损害了 ARPE-19 细胞的基础、最大和 ATP 连接呼吸,但不影响质子泄漏和非线粒体生物能。一致地,CoCl 处理以剂量依赖性方式显著降低了主要的细胞旁紧密连接蛋白 (ZO-1) 的表达。我们的数据表明,ARPE-19 细胞对细胞病变性缺氧具有独特的介电特性,其中 ARPE-19 细胞之间的屏障完整性破坏先于细胞活力、细胞-基底接触和细胞膜通透性的任何变化。这些差异可用于筛选选择性药物,这些药物在不损害其他 RPE 屏障参数的情况下改善 RPE 紧密连接的组装。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d0c6/8123793/db97d870f30b/ijms-22-04568-g001.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验