Yarishkin Oleg, Lakk Monika, Rudzitis Christopher N, Searle Jordan E, Kirdajova Denisa, Križaj David
Department of Ophthalmology and Visual Sciences, Salt Lake City, UT 84132, USA.
Department of Ophthalmology and Visual Sciences, Salt Lake City, UT 84132, USA; Department of Bioengineering, University of Utah, Salt Lake City, UT 84132, USA; Department of Neurobiology, University of Utah School of Medicine, Salt Lake City, UT 84132, USA.
Vision Res. 2024 Nov;224:108487. doi: 10.1016/j.visres.2024.108487. Epub 2024 Sep 19.
A quintessential sentinel of cell health, the membrane potential in nonexcitable cells integrates biochemical and biomechanical inputs, determines the driving force for ionic currents activated by input signals and plays critical functions in cellular differentiation, signaling, and pathology. The identity and properties of ion channels that subserve the resting potential in trabecular meshwork (TM) cells is poorly understood, which impairs our understanding of intraocular pressure regulation in healthy and diseased eyes. Here, we identified a powerful cationic conductance that subserves the TM resting potential. It disappears following Na removal or substitution with choline or NMDG, is insensitive to TTX, verapamil, phenamil methanesulfonate, amiloride and GsMTx4, is substituted by Li and Cs, and inhibited by Gd and Ruthenium Red. Constitutive cation influx is thus not mediated by voltage-operated Na, Ca, epithelial Na (ENaC) channels, Piezo channels or Na/H exchange but may involve TRP-like channels. Transcriptional analysis detected expression of many TRP genes, with the transcriptome pool dominated by TRPC1 followed by expression of TRPV1, TRPC3, TRPV4 and TRPC5. Pyr3 and Pico1,4,5 did not affect the standing current whereas SKF96365 promoted rather than suppressed, Na influx. SEA-0400 induced a modest hyperpolarization, indicating residual contribution from Na/Ca exchange. The resting membrane potential in human TM cells is thus maintained by a constitutive monovalent cation leak current with properties not unlike those of TRP channels. This conductance is likely to influence conventional outflow by setting the homeostatic steady-state and by regulating the magnitude of pressure-induced currents in normotensive and hypertensive eyes.
作为细胞健康的典型哨兵,非兴奋性细胞中的膜电位整合生化和生物力学输入,决定输入信号激活的离子电流驱动力,并在细胞分化、信号传导和病理学中发挥关键作用。对小梁网(TM)细胞静息电位所涉及的离子通道的特性和身份了解甚少,这影响了我们对健康和患病眼睛中眼压调节的理解。在此,我们确定了一种强大的阳离子电导,它维持TM静息电位。在去除Na或用胆碱或NMDG替代后它消失,对TTX、维拉帕米、甲磺酸非那明、氨氯地平和GsMTx4不敏感,可被Li和Cs替代,并被Gd和钌红抑制。因此,组成性阳离子内流不是由电压门控Na、Ca、上皮Na(ENaC)通道、Piezo通道或Na/H交换介导的,而是可能涉及TRP样通道。转录分析检测到许多TRP基因的表达,转录组库中以TRPC1为主,其次是TRPV1、TRPC3、TRPV4和TRPC5的表达。Pyr3和Pico1,4,5不影响持续电流,而SKF96365促进而非抑制Na内流。SEA-0400诱导适度的超极化,表明Na/Ca交换有残余贡献。因此,人TM细胞中的静息膜电位由具有与TRP通道相似特性的组成性单价阳离子泄漏电流维持。这种电导可能通过设定稳态并调节正常血压和高血压眼睛中压力诱导电流的大小来影响传统房水流出。