Search PubMedSearch

Biomedical subjects

P Lisitza

Publications and source records attributed to P Lisitza.

2 recordsLinked to original sources

Rabbit esophageal cells show regulatory volume decrease: ionic basis and effect of pH.

BACKGROUND: Regulatory volume decrease (RVD) after osmotic cellular swelling has been shown in several gastrointestinal epithelia but not in esophageal cells. In acid reflux disease, esophageal injury may be related in part to loss of RVD. METHODS: Isolated basal esophageal cells were exposed to an external hyposmolar solution, and changes in relative cell size were assessed using a Coulter counter (Hilaleah, FL) in the presence of K+ and Cl- transport inhibitors and at varying extracellular pH (pHo). RESULTS: At pHo 7.4, a 30% hyposmotic dilution of the external solution caused an initial peak cell swelling (1.15 +/- 0.05-fold) followed by a return to starting cell size by 5 minutes (RVD). RVD was inhibited by Ba2+ (4 mmol/L), quinine (1 mmol/L), or increasing the [K+]o > or = 10 mmol/L. RVD was also inhibited by depleting [Cl-]i or in the presence of 0.5 mmol/L 4,4'-diisothiocyanastostilbene-2,2'-disulfonic acid disodium salt (DIDS) or 50 mumol/L diphenylamine-2-carboxylate, a Cl- conductance inhibitor. To test the effect of pH on RVD, cells in solutions at pHo 7.4, 7.0, or 6.8 were subjected to hyposmotic stress; RVD was significantly inhibited at pHo 6.8. This pH-dependent inhibition of RVD was reversed in the presence of valinomycin, a K+ ionophore. CONCLUSIONS: These studies show that isolated esophageal cells possess RVD mechanisms that are mediated by Cl(-)- and pH-dependent K+ effluxes. RVD appears to be inhibited by a decrease in pHo, suggesting the possibility that acid-induced esophageal injury results from inhibition of normal volume regulatory mechanisms.

Animals

Rabbit esophageal cell cytoplasmic pH regulation: role of-antiport and-dependenttransport systems.

Regulation of cytoplasmic pH (pHi) of esophageal cells assumes importance as these cells can be exposed to mucosally absorbed acid during gastroesophageal reflux episodes. In this study, we examined whether esophageal cells possess pHi transport systems. Esophageal cells were harvested utilizing a gentle trypsin technique that yieldedcells per esophagus. Cells were attached to a glass cover slip that had been pretreated with rat-tail collagen, and pHi was measured continuously in a spectrofluorometer utilizing 2',7'-bis(2-carboxyethyl)-5(-6)- carboxyfluoroscein acetoxymethyl ester as a pH-sensitive fluorescent probe.The basal pHi of cells exposed to a-containing solution averaged 7.52 ± 0.20 (n = 6). The pHi declined slightly but not significantly to 7.46 ± 0.12 with the addition of 5%and 28 mMWhen H2 4,4'-diisothiocyanatostilbene- 2,2'-disulfonic acid (DIDS; 0.5 mM) was added, pHi was unchanged. However, addition ofM amiloride caused pHi to decrease to 7.29 ± 0.18 (P less than 0.01). When cells were acidified (pHi 6.3-7.0) using a(20 mM) pulse technique, pHi was rapidly restored toward neutrality in the presence of a-free externalconcentration ([]o)-containing solution (pH units/min = 0.26 ± 0.12; n = 8). Alkalinization was completely blocked withM amiloride. In the presence ofM amiloride, 28 mM, and 5%, acidified cells also alkalinized, although at a slower rate (0.11 ± 0.04 pH units/min; n = 16).(ABSTRACT TRUNCATED AT 250 WORDS)

Animals