Thwaites D T, Ford D, Glanville M, Simmons N L
Department of Physiological Sciences, Medical School, University of Newcastle upon Tyne, Newcastle upon Tyne NE2 4HH, United Kingdom.
J Clin Invest. 1999 Sep;104(5):629-35. doi: 10.1172/JCI7192.
The intestinal absorption of many nutrients and drug molecules is mediated by ion-driven transport mechanisms in the intestinal enterocyte plasma membrane. Clearly, the establishment and maintenance of the driving forces - transepithelial ion gradients - are vital for maximum nutrient absorption. The purpose of this study was to determine the nature of intracellular pH (pH(i)) regulation in response to H(+)-coupled transport at the apical membrane of human intestinal epithelial Caco-2 cells. Using isoform-specific primers, mRNA transcripts of the Na(+)/H(+) exchangers NHE1, NHE2, and NHE3 were detected by RT-PCR, and identities were confirmed by sequencing. The functional profile of Na(+)/H(+) exchange was determined by a combination of pH(i), (22)Na(+) influx, and EIPA inhibition experiments. Functional NHE1 and NHE3 activities were identified at the basolateral and apical membranes, respectively. H(+)/solute-induced acidification (using glycylsarcosine or beta-alanine) led to Na(+)-dependent, EIPA-inhibitable pH(i) recovery or EIPA-inhibitable (22)Na(+) influx at the apical membrane only. Selective activation of apical (but not basolateral) Na(+)/H(+) exchange by H(+)/solute cotransport demonstrates that coordinated activity of H(+)/solute symport with apical Na(+)/H(+) exchange optimizes the efficient absorption of nutrients and Na(+), while maintaining pH(i) and the ion gradients involved in driving transport.
许多营养物质和药物分子的肠道吸收是由肠道肠上皮细胞质膜中的离子驱动转运机制介导的。显然,驱动力——跨上皮离子梯度——的建立和维持对于最大程度的营养吸收至关重要。本研究的目的是确定人类肠道上皮Caco-2细胞顶端膜上H⁺偶联转运所引发的细胞内pH(pH(i))调节的本质。使用同工型特异性引物,通过RT-PCR检测Na⁺/H⁺交换体NHE1、NHE2和NHE3的mRNA转录本,并通过测序确认其身份。通过pH(i)、²²Na⁺内流和EIPA抑制实验相结合来确定Na⁺/H⁺交换的功能特征。分别在基底外侧膜和顶端膜上鉴定出功能性NHE1和NHE3活性。H⁺/溶质诱导的酸化(使用甘氨酰肌氨酸或β-丙氨酸)仅导致顶端膜上Na⁺依赖性、EIPA可抑制的pH(i)恢复或EIPA可抑制的²²Na⁺内流。H⁺/溶质共转运对顶端(而非基底外侧)Na⁺/H⁺交换的选择性激活表明,H⁺/溶质同向转运与顶端Na⁺/H⁺交换的协同活性优化了营养物质和Na⁺的有效吸收,同时维持pH(i)以及驱动转运所涉及的离子梯度。