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M B Ganz

Publications and source records attributed to M B Ganz.

At least 37 records · Page 2Linked to original sources

Amino-terminal parathyroid hormone-related protein: specific binding and cytosolic calcium responses in rat insulinoma cells.

PTH-related protein (PTHrP), originally identified through its causative role in human humoral hypercalcemia of malignancy, is now known to be a normal gene product expressed in a wide variety of neuroendocrine, epithelial, and mesoderm-derived tissues. PTHrP gene expression has recently been demonstrated in fetal and adult, benign and malignant, as well as human and rodent pancreatic islets. As in other tissues, the role of PTHrP expression in the normal islet is only beginning to be explored. In the current report, PTHrP expression in the normal rat pancreatic islet was confirmed using an affinity-purified antiserum directed against the N-terminal, biologically active region of the molecule. The effects of PTHrP on the islet were then explored using rat insulinoma (RIN m5F) cells. Synthetic PTHrP-(1-36) bound specifically, but with low affinity (Kd, approximately 10(-7) M) to RIN cell membranes. PTHrP-(1-36) failed to stimulate cAMP production in RIN cells, although RIN cells displayed a normal adenylate cyclase response to glucagon-like peptide-1-(7-36). In contrast, PTHrP-(1-36) induced a rapid dose-dependent rise in intracellular calcium in RIN cells in doses as low as 10(-12)-10(-10) M. These findings 1) confirm that PTHrP is expressed by islet cells, 2) demonstrate that the effects of PTHrP on the pancreatic islet are mediated, as in keratinocytes and lymphocytes, by a receptor related to but distinct from the PTH receptor, and 3) suggest that PTHrP functions in the islet as an autocrine or paracrine factor. Further studies are required to determine the physiological consequences of PTHrP expression by the pancreatic islet.

Animals↗

Guanine nucleotides regulate beta-adrenergic activation of Na-H exchange independently of receptor coupling to Gs.

We have previously shown that the beta-adrenergic receptor (beta-AR) stimulates activity of the ubiquitous Na-H exchanger (NHE-1) independently of changes in cAMP accumulation and independently of a cholera toxin-sensitive stimulatory GTP-binding protein (Gs). To further investigate the potential role of a GTP-binding protein in coupling the beta-AR to NHE-1, we have used a recently available nonhydrolyzable GTP analog, "caged" guanosine 5'-O-(3-thiotriphosphate) (GTP gamma S), to study time-dependent effects of GTP on NHE-1 in intact cells. By monitoring intracellular pH (pHi) in cells loaded with the fluorescent pH-sensitive dye, 2,7-biscarboxyethyl-5(6)-carboxyfluorescein, we determined NHE-1 activity in primary cultures of canine enteric endocrine cells, which express an endogenous beta-AR, and in mouse L cells stably transfected with either the wild type hamster beta 2-AR or a mutant construct of the hamster beta 2-AR containing a deletion in amino acid residues 222-229. This D(222-229)beta 2-AR is functionally uncoupled from Gs and adenylylcyclase. In all three cell types, NaF and GTP gamma S induced an increase in activity of the exchanger, determined by assessing the rate of pHi recovery from an acute intracellular acid load (dpHi/dt). This increase in pHi recovery was dependent on extracellular Na+ and sensitive to the amiloride analog ethylisopropylamiloride. GTP gamma S, but not NaF, also increased beta-adrenergic stimulation of resting NHE-1 activity. The alkalinization in response to isoproterenol was reversed by propranolol in the absence, but not the presence, of GTP gamma S and was completely blocked by GDP beta S. The ability of guanine nucleotides to regulate beta-adrenergic activation of NHE-1 in cells expressing the mutant D(222-229)beta 2-AR suggests that functional coupling of the beta-AR to NHE-1 may be mediated by a GTP-binding protein other than Gs.

Amiloride↗

Analysis of PTHRP binding and signal transduction mechanisms in benign and malignant squamous cells.

We have explored a potential autocrine role for parathyroid hormone-related protein (PTHRP) in malignant squamous carcinoma cells (SqCC) and their nonmalignant counterpart, human epidermal keratinocytes (HK). Specific binding of Tyr36 human PTHRP-(1-36)NH2 (125I-[Tyr36]hPTHRP-(1-36)NH2) was identified in 75% of unselected SqCC lines. In contrast, no binding was detected on the mouse keratinocyte line BALB-MK or on five different HK lines. Although each SqCC and keratinocyte line secreted immunoreactive PTHRP into its medium, there was no correlation between PTHRP concentration and number of binding sites. Inhibition of binding by [Tyr36]hPTHRP-(1-36)NH2 yielded half-maximal inhibitory concentration values of approximately 100 nM in all SqCC lines. Affinity cross-linking of SqCC cells revealed 98- and 70-kDa binding proteins with similar affinity (approximately 100 nM). Exposure of fura-2-loaded SqCC cells to PTHRP and PTH resulted in equivalent, dose-dependent transient increases in intracellular calcium [half-maximal effective concentration (EC50) = 0.08 nM]. PTHRP also increased intracellular calcium in HK (EC50 = 0.05 nM). No adenosine 3',5'-cyclic monophosphate (cAMP) response to PTHRP or PTH was elicited in either SqCC or HK, despite brisk isoproterenol responses in both. We conclude that high-capacity low-affinity binding sites for PTHRP are detectable in the majority of SqCC lines but not in HK. These low-affinity binding sites are unlikely to represent receptors. The sensitive intracellular calcium response suggests the additional presence of high-affinity receptors on SqCC as well as on HK. However, the failure of PTHRP or PTH to stimulate cAMP production in otherwise cyclase-competent cells suggests that these are not classical PTH receptors.(ABSTRACT TRUNCATED AT 250 WORDS)

Calcium↗

Regulation of intracellular potassium in mesangial cells: a fluorescence analysis using the dye, PBFI.

We investigated the regulatory transport processes that maintain intracellular K+ homeostasis in cultured rat glomerular mesangial cells (MCs). Intracellular K+ concentration ([K+]i) of quiescent MCs, passages 3-8, grown to subconfluence on glass cover slips, was assessed by spectrofluorometry using the K(+)-sensitive dye, K(+)-binding benzofuran isophthalate (PBFI). Serum-starved MCs were incubated at 37 degrees C in 5 microM PBFI for 90 min. Excitation ratios of luminescences at 340 and 380 nm, measured at a constant emission at 500 nm, were used to determine [K+]i. Ionophores valinomycin and nigericin were used to clamp [K+]i to known [K+]o and thereby obtain an intracellular calibration of dye. Dependence of fluorescence ratio on [K+]i conformed to Michaelis-Menten behavior, with a Km of 113 mM (n = 40). PBFI retains its sensitivity to alterations in [K+]i with pH change (pHi from 6.5 to 7.5) but is relatively insensitive when intracellular Na+ is greater than 75 mM and cell osmolarity exceeds 500 mM. Normal resting [K+]i for all experiments was determined in MCs to be 102 +/- 7 mM (n = 81) in a HCO3(-)-free HEPES-buffered solution. When MCs were exposed to ouabain, [K+]i fell to 48 +/- 6 mM and did not recover, suggesting presence of Na(+)-K(+)-ATPase. When MCs were exposed to furosemide, [K+]i transiently declined to 58 +/- 11 mM, which was followed by a rapid recovery to near steady state, indicating additional presence of Na(+)-K(+)-Cl- cotransporter. Recovery was completely abolished when MCs were exposed to ouabain.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of chronic metabolic acidosis on Na(+)-H+ exchangers in LLC-PK1 renal epithelial cells.

Porcine renal epithelial cells (LLC-PK1/clone 4) have Na(+)-H+ exchangers with different kinetic properties in their apical and basolateral membranes. cDNAs encoding the basolateral Na(+)-H+ exchanger were recently cloned. To determine whether expression of the basolateral Na(+)-H+ exchanger was affected by chronic metabolic acidosis, LLC-PK1/clone 4 cells were grown on permeant supports and incubated in control medium (pH 7.4) or acid medium (pH 6.9). After 48 h, Na(+)-H+ exchanger transport activity was measured as N-ethyl-N-isopropylamiloride (EIPA)-sensitive 22Na+ influx. Acidification caused an 84% stimulation of the transport activity of the basolateral Na(+)-H+ exchanger. The apical Na(+)-H+ exchanger was stimulated 72%, and there was no change in the EIPA-insensitive 22Na+ flux across either membrane. Stimulation of Na(+)-H+ exchange was not due to differences in intracellular pH at the time transport was assayed. To determine whether there were corresponding changes in transcript levels, poly(A)+ RNA was isolated from LLC-PK1 cells and hybridized with a cDNA encoding the basolateral Na(+)-H+ exchanger. Levels of transcripts encoding the basolateral Na(+)-H+ exchanger were increased 70% after 48 h of acidification, and there were no changes in transcripts encoding cytoskeletal gamma-actin or glyceraldehyde-3-phosphate dehydrogenase. We conclude that conditions simulating chronic metabolic acidosis coordinately increase the transport activity and transcript levels of the basolateral Na(+)-H+ exchanger in porcine renal epithelial cells.

Acidosis↗

Correlates of aldosterone-induced increases in Cai2+ and Isc suggest that Cai2+ is the second messenger for stimulation of apical membrane conductance.

Studies were performed on monolayers of cultured A6 cells, grown on permeable filters, to determine the second messenger system involved in the aldosterone-induced increase in electrogenic sodium transport. Addition of aldosterone (1 microM) to the solution bathing the basal surface of cells caused both an increase in Isc and threefold transient rise in intracellular calcium Cai2+ after a delay of approximately 60 min. Because both events were inhibited by actinomycin D and cyclohexamide, they appeared to require transcriptional and translational processes. Addition of BAPTA to the bathing media to chelate Cai2+ reduced Isc and the delayed Cai2+ transient; 50 microM BAPTA inhibited Isc and the rise in Cai2+ by greater than 80%. Further studies suggested that the action of aldosterone to increase Isc may be dependent on a calcium/calmodulin-dependent protein kinase, because W-7 and trifluoperazine reduced the aldosterone-induced Isc in a dose-dependent manner. Taken together, these observations suggest that calcium is a second messenger for the action of aldosterone on sodium transport, and suggest, for the first time, that agonists which bind to intracellular receptors can utilize, via delayed processes dependent on de novo transcription and translation, intracellular second messenger systems to regulate target cell function.

Aldosterone↗

Mutant constructs of the beta-adrenergic receptor that are uncoupled from adenylyl cyclase retain functional activation of Na-H exchange.

beta-Adrenergic receptor (beta AR) agonists modulate a number of intracellular effectors; for example, they stimulate adenylyl cyclase and Ca2+ channels, inhibit Na+ channels and Mg2+ efflux, and activate Na-H exchange. Regulation of adenylyl cyclase, Ca2+, Na+, and Mg2+ by the beta AR is mediated through receptor coupling to the GTP-binding protein Gs. We have previously determined, however, that beta AR stimulation of Na-H exchange occurs independently of receptor coupling to Gs. In the present study, we analyzed mutant beta ARs containing deletions of amino acid residues within the third cytoplasmic domain, to determine whether there is a structural basis for the ability of the beta AR to couple divergently to the Gs-dependent stimulation of adenylyl cyclase and the Gs-independent activation of Na-H exchange. Receptor constructs with deletions of residues 222-229 and 258-270, which were previously shown to be defective in coupling to Gs and adenylyl cyclase, retained an isoproterenol-induced activation of Na-H exchange that was similar in time course and magnitude to that observed with the wild-type beta AR. These results confirm our previous findings that the beta AR activates Na-H exchange independently of Gs, and they further suggest that distinct molecular determinants of the receptor divergently stimulate adenylyl cyclase and Na-H exchange.

Adenylyl Cyclases↗

Macrophages express functional receptors for calcitonin-gene-related peptide.

The present study was designed to investigate whether non-activated macrophages express calcitonin (CT) or calcitonin-gene-related peptide (CGRP) receptors. To this end, we first analyzed whether CT and CGRP induce a cAMP accumulation in macrophages. Macrophages were treated for 2 min with increasing concentrations of either CT or CGRP in the presence or absence of IBMX. A dose-dependent cAMP accumulation was measured in response to CGRP with a half-maximal effect attained with 1 nM CGRP. CT failed at all doses to induce an accumulation of cAMP. The effects of CT and CGRP on the activation of the Na-H exchanger were next assessed by spectrofluorometry by using the pH-sensitive dye 2,7 biscarboxyethyl-5(6)-carboxyfluorescein (BCECF). Steady-state pHi of macrophages in a 7.4, HCO3-free solution (HEPES-buffered) was 7.04 +/- 0.08 (n = 22). pHi recovery following an NH4+/NH3 acid load was inhibited by the removal of Na+ or by the addition of the amiloride analog EIPA; therefore recovery is dependent on Na-H exchange activity. CT had no effect on steady-state pHi but CGRP increased pHi in a dose-dependent fashion (10(-12) to 10(-6) M). The pHi change induced by CGRP was due to the stimulation of the Na-H exchanger as CGRP enhanced the rate of recovery (dpHi/dt) from an acid load from 45.3 to 77.2 microMs-1 (n = 8, P less than 0.002) and was completely blocked by EIPA. These data indicate that CGRP both enhances the activity of the Na-H exchanger and increases intracellular cAMP, thus demonstrating that macrophages express functional CGRP receptors.

1-Methyl-3-isobutylxanthine↗

Fatty acids stereospecifically stimulate neurotensin release and increase [Ca2+]i in enteric endocrine cells.

In primary cultures of canine enteric endocrine cells, fatty acids directly stimulated the release of neurotensin-like immunoreactivity (NTLI). This stimulatory effect was cell specific, selective for long-chain unsaturated fatty acids, and stereospecific. Saturated fatty acids of comparable chain length and trans isomers of long-chain unsaturated fatty acids had no effect on basal NTLI secretion. NTLI release in response to oleic acid (cis-11) was dose dependent with an apparent EC50 of 37 +/- 0.18 microM. Cyclooxygenase inhibitors had no effect on fatty acid-stimulated NTLI release, indicating the response was not mediated by the production of active arachidonic acid metabolites. Somatostatin (100 nM) inhibited maximal oleic acid-stimulated NTLI release by 92%. Long-chain unsaturated fatty acids also selectively and stereospecifically stimulated an increase in the mobilization of [Ca2+]i to 313.5 +/- 28.6% of resting [Ca2+]i. Staurosporine, an inhibitor of protein kinase C, dose dependently inhibited oleic acid-stimulated NTLI release with an IC50 value of 22 +/- 0.4 nM. Long-chain unsaturated fatty acids had no effect on basal NTLI secretion from rat pheochromocytoma cells and medullary thyroid carcinoma cells, two clonal lines that express NTLI. The cell-specific, selective stereospecific, and inhibitable action of fatty acids on NTLI secretion suggests that the effect of fatty acids on enteric endocrine cells is indicative of a receptor-mediated mechanism.

Adrenal Gland Neoplasms↗

Multiple receptors coupled to adenylate cyclase regulate Na-H exchange independent of cAMP.

We have previously determined that beta-adrenergic and somatostatin receptors stimulate and inhibit, respectively, Na-H exchange independent of changes in cAMP accumulation (Barber, D.L., McGuire, M.E., and Ganz, M.B. (1989) J. Biol. Chem. 264, 21038-21042). The present study extends our work on the beta-adrenergic receptor (beta AR) by investigating receptor activation of Na-H exchange in multiple cell types that either endogenously express the beta AR or that have been transfected with cDNA of the hamster lung beta 2AR or the turkey erythrocyte beta AR. Exchanger activity was determined by monitoring intracellular pH in cell populations loaded with the pH-sensitive dye BCECF (2,7-biscarboxyethyl-5(6)-carboxyfluorescein). In addition to the action of the beta AR, activation of prostaglandin E1 and parathyroid hormone receptors induced an intracellular alkalinization by stimulating a Na(+)-dependent amiloride-sensitive Na-H exchange. In contrast, activation of D2-dopaminergic receptors induced an intracellular acidification by inhibiting Na-H exchange. beta-Adrenergic, prostaglandin E1, and parathyroid hormone receptors activated Na-H exchange independent of changes in intracellular cAMP accumulation and independent of a cholera toxin-sensitive stimulatory GTP regulatory protein. D2-dopaminergic receptors inhibited exchanger activity independent of a pertussis toxin-sensitive inhibitory GTP regulatory protein. We suggest that these receptors are functionally coupled to adenylate cyclase and Na-H exchange through divergent signaling mechanisms.

Adenylyl Cyclases↗

Effect of buffer systems and pHi on the measurement of [Ca2+]i with fura 2.

The fluorescent probe, fura 2, is widely used to measure agonist-induced changes in intracellular calcium concentration ([Ca2+]i) in cultured cells. However, in many instances, the results obtained in the same cell type have differed from one study to the next. The possibility that such differences might be due to experimental conditions was examined by using fura 2 in four different cell types responding to appropriate agonists when the cells were incubated in either CO2/HCO3-- or HEPES-buffered media. Examined were: 1) the response of rat glomerular mesangial cells to arginine vasopressin, 2) the response of vascular smooth muscle cells to angiotensin II, 3) the response of adrenal glomerulosa cells to angiotensin II, and 4) the response of hypothalamic cells to insulin-like growth factor-1. In each cell type there was a significant difference in the pattern of agonist-induced change in [Ca2+]i when HEPES vs. CO2/HCO3- was used as the buffer system: in HEPES buffer, agonist addition led to a transient rise in [Ca2+]i followed by a fall to a sustained plateau 27 to 34 nM higher than the original basal value, whereas in CO2/HCO3- buffer, agonist addition led to an identical transient increase in [Ca2+]i followed by a fall to a value within 10 nM or less of the preagonist level. The plateau value of [Ca2+]i in the different buffers was examined in relationship to known differences in intracellular pH (pHi). It was found that measurements of [Ca2+]i with fura 2 were influenced by shifts in pHi that occur when cells are incubated in either HEPES-buffered or CO2/HCO3- media of differing pHo values. However, at any given value of pHi, the apparent [Ca2+]i measured in cells incubated in HEPES-buffered media was slightly higher than in cells incubated in CO2/HCO3- buffered media.

Adrenal Medulla↗

Intracellular-pH dependence of Na-H exchange and acid loading in quiescent and arginine vasopressin-activated mesangial cells.

We studied intracellular pH (pHi) regulation in the absence of HCO3- in single mesangial cells (MCs) with the pH-sensitive dye 2',7'-bis(2-carboxyethyl)-5(and -6)carboxyfluorescein. Our approach was to acid load the cells by an NH+4 prepulse and to monitor the subsequent pHi recovery. Previous work on MCs and other cells has shown that the recovery is prevented by adding ethylisopropyl amiloride (EIPA) or removing Na+ before the recovery begins, suggesting that at low pHi only Na-H exchange contributes to the recovery. This conclusion is often extrapolated to the entire pHi range. To test this, we interrupted the recovery with EIPA at various pHi values, finding that EIPA unmasked a background acidification that was negligible at pHi less than approximately 6.7 but increased steeply at higher pHi values. Correcting the total recovery rate for this EIPA-insensitive component, we found that the EIPA-sensitive (Na-H exchange) rate fell steeply with increasing pHi between 6.3 and 6.7 but was relatively pHi insensitive between 6.7 and 7.2. Thus, the recovery halts as pHi approaches approximately 7.2 not so much because Na-H exchange slows, but because acid loading accelerates. Applying the mitogen arginine vasopressin (AVP; 100 nM) caused a rapid pHi decrease of approximately 0.4, followed by a slower increase to a level approximately 0.15 higher than the initial pHi. Coincident with this biphasic change in pHi was a biphasic change in Na-H exchange kinetics. In the early phase (i.e., pHi recovery commencing approximately 8 min after AVP addition), AVP linearized the pHi dependence of the exchanger; its rate was unaffected by AVP at pHi less than approximately 6.7 but was progressively inhibited at higher pHi values. In the later phase (i.e., pHi recovery commencing approximately 14 min after AVP addition), AVP shifted this linear pHi dependence in the alkaline direction; the exchanger was stimulated at pHi less than 6.9 but was modestly inhibited at higher pHi values (i.e., in the physiological range). At all times, AVP greatly inhibited background acid loading. Thus, AVP raises steady-state pHi not because Na-H exchange is stimulated but because, although the exchanger is inhibited, acid loading is inhibited even more.

Amiloride↗

Effects of mitogens and other agents on rat mesangial cell proliferation, pH, and Ca2+.

We investigated effects of various agents on proliferation, intracellular pH (pHi), and intracellular calcium [( Ca2+]i) of rat mesangial cells (MCs) in early passages (2-5). Serum-starved MCs incubated in HCO3- were exposed to one of the following: fetal calf serum (FCS), serotonin, angiotensin II (ANG II), arginine vasopressin (AVP), bombesin (Bom), bradykinin (BK), epidermal growth factor (EGF), epinephrine (Epi), interleukin 1 (IL-1), norepinephrine (NE), neuropeptide Y, oxytocin, substance P (SP), platelet-derived growth factor, or 12-O-tetradecanoylphorbol-13-acetate (TPA). We assessed DNA synthesis from [3H]thymidine uptake during exposure to test agent. All agents except ANG II, NE, Bom, and SP were mitogenic. When MCs were incubated in a HCO3(-) -free N-2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid-buffered medium, maximal mitogenic responses to FCS, AVP, and EGF were 41, 44, and 55% (P less than 0.01) lower, respectively, than those in presence of HCO3-. In absence of HCO3-, agents other than BK and IL-1 produced a biphasic pHi response characterized by a transient acidification followed by a prolonged alkalinization that was both Na(+)-dependent and amiloride-sensitive. In presence of HCO3-, agents produced only a small and gradual acidification, except for IL-1 and Epi. Addition of all agonists except IL-1, EGF, and TPA produced significant transient increases in [Ca2+]i, the magnitudes of which were similar in HCO3- and non-HCO3- buffers. These results demonstrate that, in presence of HCO3-, agents (i.e., NE and ANG II) can produce typical [Ca2+]i transients and still not cause MC proliferation. Conversely, an agent may cause proliferation without eliciting a short-term change in either [Ca2+]i or pHi (i.e., IL-1), a change in [Ca2+]i but not pHi (i.e., Epi), or a change in pHi but not [Ca2+]i (i.e., TPA). Thus, at least for MCs, proliferation in HCO3- can be dissociated from early agonist-induced changes in pHi and [Ca2+]i.

Animals↗

Beta-adrenergic and somatostatin receptors regulate Na-H exchange independent of cAMP.

Activation of beta-adrenergic and somatostatin receptors increases and attenuates, respectively, cAMP. We have determined, however, that in enteric endocrine cells beta-adrenergic and somatostatin receptors also regulate Na-H exchange activity, independent of their effects on cAMP. In cells loaded with a pH-sensitive dye, epinephrine, acting at a beta 2-adrenergic receptor induced an alkalinization while somatostatin caused an acidification of intracellular pH (pHi). These pHi changes were dependent on extracellular Na+ and inhibited by amiloride. Forskolin, dibutyryl-cAMP and 8-bromo-cAMP, however, had no effect on pHi. Cholera toxin, while decreasing the EC50 for epinephrine-stimulated increases in cAMP, had no effect on epinephrine-induced alkalinization, suggesting receptor coupling to Na-H exchange was not mediated by a cholera toxin-sensitive stimulatory GTP-binding protein (Gs). Additionally, epinephrine stimulated Na-H exchange in cyc- variants of S49 lymphoma cells, which lack a fundamental Gs. In the presence of pertussis toxin, somatostatin attenuation of cAMP was completely reversed; however, somatostatin inhibition of Na-H exchange was not affected. We suggest that beta-adrenergic and somatostatin receptors regulate Na-H exchange independent of changes in cAMP and possibly independent of GTP-binding proteins previously described as being coupled to these receptors.

8-Bromo Cyclic Adenosine Monophosphate↗

Arginine vasopressin enhances pHi regulation in the presence of HCO3- by stimulating three acid-base transport systems.

Growth factors raise intracellular pH (pHi) by stimulating Na+/H+ exchange in the absence of HCO3-. In mutant cells that lack the Na+/H+ exchange activity, this alkalinization does not occur, and the cells do not proliferate without artificial elevation of pHi. It has therefore been widely suggested that an early pHi increase is a necessary signal for mitogenesis. In the presence of HCO3- however, growth factors fail to raise pHi in A431 cells, renal mesangial cells and 3T3 fibroblasts. In mesangial cells, arginine vasopressin (AVP) raises pHi in the absence of HCO3-, but lowers it when HCO3- is present; growth is stimulated under both conditions. We report here that, in the presence of HCO3-, AVP stimulates two potent HCO3- transporters, as well as the Na+/H+ exchanger. These are the Na+-dependent and Na+-independent Cl-/HCO3- exchangers. Our results indicate that AVP causes acidification in the presence of HCO3- because, at the resting pHi, it stimulates Na+-independent Cl-/HCO3- exchange (which lowers pHi) more than it stimulates the sum of Na+/H+ exchange and Na+-dependent Cl-/HCO3- exchange (both of which raise pHi). The stimulation of three acid-base transporters by the growth factor AVP greatly enhances the ability of the cell to regulate pHi.

4,4'-Diisothiocyanostilbene-2,2'-Disulfonic Acid↗

pH regulation in single glomerular mesangial cells. I. Acid extrusion in absence and presence of HCO3-.

We have developed a technique to measure the fluorescence of a pH-sensitive dye (2,7-biscarboxyethyl-5(6)-carboxyfluorescein) in single glomerular mesangial cells in culture. The intracellular fluorescence excitation ratio of the dye was calibrated using the nigericin-high-K+ approach. In the absence of CO2-HCO3-, mesangial cells that are acid loaded by an NH+4 prepulse exhibit a spontaneous intracellular pH (pHi) recovery that is blocked either by ethylisopropylamiloride (EIPA) or removal of external Na+. This pHi recovery most probably reflects the activity of a Na+-H+ exchanger. When the cells are switched from a N-2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid (HEPES)-buffered solution to one containing CO2-HCO3-, there is an abrupt acidification due to CO2 entry, which is followed by a spontaneous recovery of pHi to a steady-state value higher than that prevailing in HEPES. Both the rate of recovery and the higher steady-state pHi imply that the application of CO2-HCO3- introduces an increase in net acid extrusion from the cell. One third of total net acid extrusion in CO2-HCO3- is EIPA sensitive and most likely is mediated by the Na+-H+ exchanger. The remaining two thirds of acid extrusion could be caused by a decrease in the background acid-loading rate and/or the introduction of a new, HCO3- -dependent acid-extrusion mechanism. The HCO3- -induced alkalinization cannot be accounted for by a HCO3- -induced reduction in the acid-loading rate. The latter can be estimated by applying EIPA in the absence of HCO3- and observing the rate of pHi decline. We found that this acid-loading rate is only about one fifth as great as the total net acid extrusion rate in the presence of HCO3-. Indeed, two thirds of net acid extrusion in HCO3- is blocked by 4-acetamido-4'-isothiocyanostilbene-2,2'-disulfonic acid (SITS), an inhibitor of HCO3- -dependent transport. Furthermore, the effects of EIPA and SITS were additive. Thus, in the presence of CO2-HCO3-, a SITS-sensitive-HCO3- -dependent transporter is the dominant mechanism of acid extrusion. This mechanism also accounts for the increase in steady-state pHi on addition of CO2-HCO3-.

4-Acetamido-4'-isothiocyanatostilbene-2,2'-disulfo↗

pH regulation in single glomerular mesangial cells. II. Na+-dependent and -independent Cl(-)-HCO3- exchangers.

We used the pH-sensitive dye 2,7-biscarboxyethyl-5(6)-carboxyfluorescein (BCECF) to further characterize the mechanisms of intracellular pH (pHi) regulation in renal mesangial cells. In the accompanying paper [Am. J. Physiol. 255 (Cell Physiol. 24): C844-C856, 1988], we showed that acid extrusion from mesangial cells is mediated by both an ethylisopropylamiloride (EIPA)-sensitive Na+-H+ exchanger and a 4-acetamido-4'-isothiocyanostilbene-2,2'-disulfonic acid (SITS)-sensitive-HCO3(-)-dependent mechanism. In this study, we examined the ionic dependencies of pHi-regulatory mechanisms in the presence of CO2-HCO3-. We found that in CO2-HCO3-, approximately 90% of the net acid extrusion occurring during recovery from an acid load is blocked by removing external Na+. Short-term (less than 15 min) removal of external Cl- has little effect on the rate of recovery in CO2-HCO3-. In contrast longer periods of external Cl- removal (1-2 h) blocks 40-60% of the rate of recovery, which is consistent with the hypothesis that a large fraction of the SITS-sensitive-HCO3(-)-dependent recovery mechanism described in the preceding paper is also Na+- and Cl(-)-dependent. Therefore, this Cl(-)-dependent component is probably mediated by a Na+-dependent Cl(-)-HCO3- exchanger. As much as 16% of total acid extrusion is insensitive to EIPA and long-term Cl- removal but is blocked by SITS. Thus either 1-2 h of Cl- removal is insufficient to wash out all internal Cl-, or a small component of acid extrusion is mediated by a Cl(-)-independent mechanism, such as the electrogenic Na+/HCO3- cotransporter. We also studied the effect on pHi of the removal and readdition of external Cl-, observing pHi changes consistent with the existence of a Na+-independent Cl(-)-HCO3- exchanger, which would presumably function as an acid loader. In contrast to the Na+-H+ exchanger and Na+-dependent Cl(-)-HCO3- exchanger, which are stimulated at low pHi, the Cl(-)-HCO3- exchanger is stimulated at high pHi. Thus the acid-extruding and acid-loading mechanisms have opposite pHi dependencies.

4-Acetamido-4'-isothiocyanatostilbene-2,2'-disulfo↗