Yao Jian, Suwa Michihiro, Li Bing, Kawamura Kazuko, Morioka Tetsuo, Oite Takashi
Department of Cellular Physiology, Institute of Nephrology, Postgraduate School of Medicine and Dental Sciences, Niigata University, Niigata, Japan.
Circ Res. 2003 Aug 22;93(4):338-45. doi: 10.1161/01.RES.0000086802.21850.5D. Epub 2003 Jul 17.
A change in intracellular Ca2+ is considered to be the common final signaling pathway through which renin secretion is governed. Therefore, information relating to the generation, control, and processing of Ca2+ signaling in juxtaglomerular cells (JG) will be critical for understanding JG cell behavior. In this study, we investigated the means by which JG cells harmonize their intracellular Ca2+ signals and explored the potential role of these mechanisms in renin secretion. Mechanical stimulation of a single JG cell initiated propagation of an intercellular Ca2+ wave to up to 11.9+/-4.1 surrounding cells, and this was prevented in the presence of the ATP-degrading enzyme, apyrase (1.7+/-0.7 cells), or by desensitization of purinergic receptors via pretreatment of cells with ATP (1.8+/-0.9 cells), thus implicating ATP as a mediator responsible for the propagation of intercellular Ca2+ signaling. Consistent with this, JG cells were demonstrated not to express the gap junction protein connexin43, and neither did they possess functional gap junction communication. Furthermore, massive mechanical stretching of JG cells elicited a 3-fold increase in ATP release. Administration of ATP into isolated perfused rat kidneys induced a rapid, potent, and persistent inhibition of renin secretion, together with a transient elevation of renal vascular resistance. ATP (1 mmol/L) caused up to 79% reduction of the renin secretion activated by lowering the renal perfusion flow (P<0.01). Taken together, our results indicate that under mechanical stimulation, ATP functions as a paracellular mediator to regulate renin secretion, possibly through modulating intra- and intercellular Ca2+ signals.
细胞内钙离子的变化被认为是肾素分泌所遵循的共同最终信号通路。因此,与肾小球旁细胞(JG)中钙离子信号的产生、控制和处理相关的信息对于理解JG细胞行为至关重要。在本研究中,我们研究了JG细胞协调其细胞内钙离子信号的方式,并探讨了这些机制在肾素分泌中的潜在作用。对单个JG细胞进行机械刺激可引发细胞间钙离子波传播至多达11.9±4.1个周围细胞,而在存在ATP降解酶——腺苷三磷酸双磷酸酶(1.7±0.7个细胞)的情况下或通过用ATP预处理细胞使嘌呤能受体脱敏(1.8±0.9个细胞)可阻止这种传播,这表明ATP是负责细胞间钙离子信号传播的介质。与此一致的是,已证明JG细胞不表达间隙连接蛋白连接蛋白43,它们也不具备功能性间隙连接通讯。此外,对JG细胞进行大量机械拉伸会使ATP释放增加3倍。向离体灌注的大鼠肾脏中注入ATP会导致肾素分泌迅速、有效且持续受到抑制,同时肾血管阻力短暂升高。ATP(1 mmol/L)可使因降低肾灌注流量而激活的肾素分泌减少多达79%(P<0.01)。综上所述,我们的结果表明,在机械刺激下,ATP作为一种细胞旁介质来调节肾素分泌,可能是通过调节细胞内和细胞间的钙离子信号来实现的。