A mathematical model of the inner medullary collecting duct of the rat: acid/base transport.
A mathematical model of the inner medullary collecting duct of the rat: acid/base transport.
复制标题
大鼠内髓集合管的数学模型:酸/碱运输。
DOI:
10.1152/ajprenal.1998.274.5.f856
复制
发表时间:
1998
期刊:
影响因子:
--
通讯作者:
Weinstein,AM
中科院分区:
文献类型:
--
作者:
Weinstein,AM
A mathematical model of the inner medullary collecting duct (IMCD) of the rat has been developed that is suitable for simulating luminal buffer titration and ammonia secretion by this nephron segment. Luminal proton secretion has been assigned to an H-K-ATPase, which has been represented by adapting the kinetic model of the gastric enzyme by Brzezinski et al. (P. Brzezinski, B. G. Malmstrom, P. Lorentzon, and B. Wallmark.Biochim. Biophys. Acta942: 215–219, 1988). In shifting to a 2 H+:1 ATP stoichiometry, the model enzyme can acidify the tubule lumen ∼3 pH units below that of the cytosol, when luminal K+is in abundance. Peritubular base exit is a combination of ammonia recycling andflux (either viaexchange or via a Cl−channel). Ammonia recycling involvesuptake on the Na-K-ATPase followed by diffusive NH3exit [S. M. Wall.Am. J. Physiol.270 (Renal Physiol.39): F432–F439, 1996]; model calculations suggest that this is the principal mode of base exit. By virtue of this mechanism, the model also suggests that realistic elevations in peritubular K+concentration will compromise IMCD acid secretion. Although ammonia recycling is insensitive to carbonic anhydrase (CA) inhibition, the base exit linked toflux provides a CA-sensitive component to acid secretion. In model simulations, it is observed that increased luminal NaCl entry increases ammonia cycling but decreases peritubularexchange (due to increased cell Cl−). This parallel system of peritubular base exit stabilizes acid secretion in the face of variable Na+reabsorption.