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C Tiruppathi

Publications and source records attributed to C Tiruppathi.

At least 37 records · Page 2Linked to original sources

Growth characteristics of pulmonary artery smooth muscle cells from fawn-hooded rats.

We compared the proliferative rates of vascular smooth muscle cells (VSMC) from pulmonary arteries of pulmonary hypertensive fawn-hooded rats (FHR) with VSMC from normotensive Sprague-Dawley rats (SDR). VSMC from FHR grew at increased rates and reached higher densities at all serum concentrations studied (5-20%) than the VSMC from SDR. The VSMC from FHR also responded to epidermal growth factor (EGF) at low serum concentrations, as evidenced by significantly greater DNA synthetic rates, than the control VSMC. The increased growth in these cells could be due to increased number and/or affinity of EGF receptors because of the higher specific binding of 125I-EGF to the VSMC from FHR. The VSMC from FHR and SDR were equally sensitive to the antiproliferative effects of heparin, suggesting that the heparin-sensitive pathways are not altered in the VSMC from FHR. These results suggest that the development of pulmonary hypertension in FHR may be related to the higher proliferative capacity of the pulmonary VSMC, which may be coupled to increased activity of the EGF receptors on these cells.

Animals↗

Thrombin receptor peptide inhibits thrombin-induced increase in endothelial permeability by receptor desensitization.

Thrombin, a potent activator of cellular responses, proteolytically cleaves, and thereby activates its receptor. In the present study, we compared the effects of the thrombin receptor 14-amino acid peptide (TRP-14; SFLLRNPNDKYEPF), which comprises the NH2 terminus after cleavage of the thrombin receptor, and of the native alpha-thrombin on endothelial monolayer permeability. Addition of TRP-14 (1-200 microM) to bovine pulmonary artery endothelial cells increased [Ca2+]i in a dose-dependent manner. The peak increase in [Ca2+]i in response to 100 microM TRP-14 or 0.1 microM alpha-thrombin was similar (i.e., 931 +/- 74 nM and 1032 +/- 80 nM, respectively), which was followed by a slow decrease with t1/2 values of 0.73 and 0.61 min, respectively. Extracellular Ca2+ chelation with 5 mM EGTA abolished the sustained increases in [Ca2+]i induced by either TRP-14 or alpha-thrombin. alpha-thrombin (0.1 microM) increased transendothelial [125I]albumin permeability, whereas TRP-14 (1-100 microM) had no effect. Coincubation of 100 microM TRP-14 with 1 microM DIP-alpha-thrombin also did not increase permeability over control values. Stimulation of BPAEC with 0.1 microM alpha-thrombin induced translocation of protein kinase C (PKC) from the cytosol to the plasma membrane indicative of PKC activation, whereas TRP-14 had no effect at any concentration. TRP-14 at 100 microM desensitized BPAEC to thrombin-induced increases in [Ca2+]i and transendothelial permeability. The Ca2+ desensitization was reversed after approximately 60 min, and this recovery paralleled the recovery of the permeability response. These findings indicate that the TRP-14-induced Ca2+ mobilization in the absence of PKC activation is insufficient to increase endothelial permeability. In contrast, the increase in endothelial permeability after alpha-thrombin occurred in conjunction with Ca2+ mobilization as well as PKC activation. TRP-14 pretreatment prevented the alpha-thrombin-induced increase in endothelial permeability secondary to desensitization of the Ca2+ signal. The results suggest that combined cytosolic Ca2+ mobilization mediated by TRP-14 and PKC activation mediated by a TRP-14-independent pathway are dual signals responsible for the thrombin-induced increase in vascular endothelial permeability.

Amino Acid Sequence↗

Albumin and Ricinus communis agglutinin decrease endothelial permeability via interactions with matrix.

We studied the effects of albumin and the lectin Ricinus communis agglutinin (RCA) on hydraulic conductivity (Lp) of bovine pulmonary microvascular endothelial cell monolayers (BPMVEC) because of the evidence that albumin and RCA can interfere with transendothelial albumin permeability (Siflinger-Birnboim, A., J. Schnitzer, H. Lum, F. Blumenstock, C. Shen, P. Del Vecchio, and A. Malik. J. Cell. Physiol. 149: 575-584, 1991). BPMVEC were seeded on microporous polycarbonate filters, and the liquid flux was measured by collecting effluent into a tubing of known inner diameter at transendothelial hydrostatic pressures (P) ranging from 5 to 20 cmH2O. Lp was calculated as the slope of the relationship of liquid flux per unit surface area (Jv) vs. P. Addition of RCA (50 micrograms/ml) or albumin (5 mg/ml) to the endothelial cell medium containing albumin-free Hanks' balanced saline solution (HBSS) decreased total Lp (expressed x 10(-6) cm.s-1 x cmH2O-1) from 17.2 +/- 3.6 during HBSS to 4.7 +/- 0.9 during albumin and 5.7 +/- 1.6 during RCA (P < 0.01 for both). The RCA effect, but not that of albumin, was prevented by the addition of D-galactose (0.1 M) (the cognate hapten monosaccharide of RCA). We determined the contribution of the extracellular matrix (ECM) in decreasing the Lp by obtaining ECM after treatment of the monolayers with 0.025 M NH4OH to detach endothelial cells from the ECM. Basal ECM Lp (expressed x 10(-6) cm.s-1 x cmH2O-1) was 57.0 +/- 15.3, and it decreased to 19.7 +/- 4.3 and 17.5 +/- 2.9 during RCA and albumin, respectively (P < 0.01 for both). In contrast, RCA and albumin did not alter the filter Lp values. Another lectin, Ulex europaeus agglutinin, and the protein immunoglobulin G had no effect on Lp values.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Genetic evidence for role of DPP IV in intestinal hydrolysis and assimilation of prolyl peptides.

The functional role of dipeptidyl peptidase IV (DPP IV) in the intestinal hydrolysis and assimilation of prolyl peptides was investigated using Japan F344 rats, which genetically lack this enzyme. USA F344 rats possess normal activity of this enzyme and served as matched controls. Intestinal brush-border membranes from the control rats were able to hydrolyze several proline-containing peptides. The hydrolytic ability of the brush-border membranes from the Japan rats against these peptides was markedly low. The difference in the hydrolytic activities between the two groups of rats was solely due to the absence of DPP IV in the Japan rats. There was no difference in the growth rate between the two groups of rats fed a reference diet whose protein constituents were not rich in proline. When the protein source was changed to gliadin, a proline-rich protein, USA F344 rats maintained their body weight for a 4-wk period on this diet, whereas the Japan rats experienced a significant weight loss under similar conditions. In situ perfusion experiments in intact animals revealed that the ability of morphiceptin (a peptide primarily hydrolyzable by DPP IV), when administered into the intestinal lumen, to block the cholera toxin-induced water secretion was significantly greater in Japan F344 rats than in USA F344 rats, indicating the resistance of morphiceptin to hydrolytic breakdown in the intestinal lumen of the Japan rats. It is concluded that the intestinal DPP IV plays a significant role in the hydrolysis of prolyl peptides and assimilation of proline-rich proteins.

Animals↗

Electrical method for detection of endothelial cell shape change in real time: assessment of endothelial barrier function.

We have developed an electrical method to study endothelial cell shape changes in real time in order to examine the mechanisms of alterations in the endothelial barrier function. Endothelial shape changes were quantified by using a monolayer of endothelial cells grown on a small (10(-3) cm2) evaporated gold electrode and measuring the changes in electrical impedance. Bovine pulmonary microvessel endothelial cells and bovine pulmonary artery endothelial cells were used to study the effects of alpha-thrombin on cell-shape dynamics by the impedance measurement. alpha-Thrombin produced a dose-dependent decrease in impedance that occurred within 0.5 min in both cell types, indicative of retraction of endothelial cells and widening of interendothelial junctions because of "rounding up" of the cells. The alpha-thrombin-induced decrease in impedance persisted for approximately 2 hr, after which the value recovered to basal levels. Pretreatment of endothelial cells with the protein kinase C inhibitor, calphostin C, or with 8-bromoadenosine 3',5'-cyclic monophosphate prevented the decreased impedance, suggesting that the endothelial cell change is modulated by activation of second-messenger pathways. The alpha-thrombin-induced decrease in impedance was in agreement with the previously observed increases in transendothelial albumin permeability and evidence of formation of intercellular gaps after alpha-thrombin challenge. The impedance measurement may be a valuable in vitro method for the assessment of mechanisms of decreased endothelial barrier function occurring with inflammatory mediators. Since the rapidly occurring changes in endothelial cell shape in response to mediators such as thrombin are mediated activation of second-messenger pathways, the ability to monitor endothelial cell dynamics in real time may provide insights into the signal-transduction events mediating the increased endothelial permeability.

Animals↗

Thrombin-induced expression of endothelial P-selectin and intercellular adhesion molecule-1: a mechanism for stabilizing neutrophil adhesion.

Thrombin-induced expression of endothelial adhesivity toward neutrophils (PMN) was studied using human umbilical vein endothelial cells (HUVEC). HUVEC were challenged with human alpha-thrombin for varying durations up to 120 min, after which the cells were fixed with 1% paraformaldehyde and 51Cr-labeled human PMN were added to determine PMN adhesion. Endothelial adhesivity increased within 15 min after alpha-thrombin exposure, and the response persisted up to 120 min. Expression of endothelial adhesion proteins, P-selectin (GMP-140, PADGEM, CD62), and intercellular adhesion molecule-1 (ICAM-1; CD54) on the endothelial surface was quantitated by increase in the specific binding of anti-P-selectin mAb G1 and anti-ICAM-1 mAb RR1/1 labeled with 125I. P-selectin expression was maximal at 5-15 min alpha-thrombin exposure and decayed to basal levels within 90 min. In contrast, ICAM-1 activity increased at 30 min and remained elevated for 120 min after alpha-thrombin challenge. The initial endothelial adhesivity was dependent on P-selectin expression since PMN adhesion occurring within the first 30 min after alpha-thrombin challenge was inhibited by mAb G1. The later prolonged PMN adhesion was ICAM-1 dependent since this response was inhibited by mAb RR1/1 and to the same degree by the anti-CD18 mAb IB4. Anti-ELAM-1 mAb BB11 had no effect on adhesion of PMN to the alpha-thrombin-challenged cells. The initial P-selectin expression and PMN adhesion responses were reproduced by the 14-amino peptide (SFLLRNPNDKYEPF) (thrombin-receptor activity peptide; TRP-14) which comprised the NH2 terminus created by thrombin's proteolytic action on its receptors. However, TRP-14-induced PMN adhesion was transient, and TRP-14 did not cause ICAM-1 expression. The ICAM-1-dependent PMN adhesion mediated by alpha-thrombin was protein synthesis independent since ICAM-1 expression and PMN adhesion were not inhibited by cycloheximide pretreatment of HUVEC. Moreover, Northern blot analysis indicated absence of ICAM-1 mRNA signal up to 180 min after alpha-thrombin challenge. In conclusion, thrombin-induced endothelial adhesivity involves early- and late-phase responses. The initial reversible PMN adhesion is mediated by rapid P-selectin expression via TRP-14 generation. Thrombin-induced PMN adhesion is stabilized by a protein synthesis-independent upregulation of the constitutive ICAM-1 activity which enables the interaction of ICAM-1 with the CD18 beta 2 integrin on PMN.

Amino Acid Sequence↗

Endothelin-1 stimulates DNA synthesis and proliferation of pulmonary artery smooth muscle cells.

Endothelin-1 (ET-1), a 21-amino acid peptide released from the endothelium, elicits a variety of biological effects that include vascular smooth muscle cell (VSMC) contraction, release of secondary mediators, and cell proliferation. The present study was undertaken to examine the proliferative potential of ET-1 toward pulmonary artery VSMC in culture. In the presence of low serum and epidermal growth factor (EGF), ET-1 stimulated marked DNA synthesis and proliferation of VSMC. The contributing factor from serum appeared to be platelet-derived growth factor (PDGF) because the antibody to PDGF eliminated the stimulatory activity. The antibody to EGF also prevented the stimulation, suggesting that both PDGF and EGF are required for the full expression of the VSMC growth-promoting activity of ET-1. A paradoxical aspect of ET-1 effect on VSMC was the ability of ET-1 to inhibit the EGF-stimulated DNA synthesis when the two factors were added together to a high baseline DNA synthetic activity. The inhibition was prevented if ET-1 was added 12-18 h after the addition of EGF or if ET-1 and EGF were added to a protein kinase C-depleted VSMC. The inhibition by ET-1 may be mediated by protein kinase C activation followed by inhibition of EGF binding to its receptor. The results indicate that ET-1 under appropriate conditions can modulate the growth of pulmonary artery VSMC in both positive and negative directions.

Animals↗

Constitutive expression of the taurine transporter in a human colon carcinoma cell line.

The human colon carcinoma cell line HT-29, when grown to confluence, was found to take up taurine and accumulate it against a concentration gradient from a NaCl-containing uptake medium. Replacement of NaCl with choline chloride almost totally abolished the uptake. Taurine uptake was dependent not only on Na+ but also on Cl-, because other anions failed to support the uptake in the presence of Na+. The uptake process was specific for beta-amino acids such as taurine, hypotaurine, and beta-alanine. Apparently, a single transport system with a Michaelis-Menten constant of 10.6 +/- 0.3 microM was responsible for the uptake. Stoichiometric analyses revealed that the Na+:taurine coupling ratio was 2:1, whereas the Cl-:taurine coupling ratio was 1:1. Culture of the cells in the presence of taurine caused downregulation of the uptake system. These cells were also capable of accumulating beta-alanine against a concentration gradient in the presence of NaCl. Beta-Alanine uptake occurred via a single transport system with an apparent Michaelis-Menten constant of 36 +/- 2 microM. Taurine and beta-alanine exhibited mutual interaction during uptake. Kinetic experiments strongly suggested that a common transporter was responsible for the uptake of these two beta-amino acids. It is concluded that the HT-29 cells constitutively express the taurine transporter and that this cell line may be a suitable model for investigations of intestinal taurine transporter.

Alanine↗

Thrombin receptor 14-amino acid peptide binds to endothelial cells and stimulates calcium transients.

We examined the binding characteristics of the recently described thrombin receptor amino-terminal peptide, SFLLRNPNDKYEPF (T. K. H. Vu, D. T. Hung, V. I. Wheaton, and S. R. Coughlin. Cell 64: 1057-1068, 1991), termed TRP-14, and its effect in activating intracellular calcium transients in pulmonary vascular endothelial cells. Binding of 125I-labeled TRP-14 was found to be saturable with a affinity constant of 2 microM and maximum binding of 41 pmol/mg of cell protein. The 125I-labeled TRP-14 also interacted with bovine pulmonary microvessel endothelial cells, human umbilical vein endothelial cells, and porcine pulmonary artery smooth muscle cells. Binding of 125I-labeled diisopropylphosphoryl (DIP)-alpha-thrombin, which is catalytically inactive but binds to thrombin receptors, was not inhibited by TRP-14 or vice versa, indicating that TRP-14 did not compete for the alpha-thrombin binding site(s) on the endothelial cell surface. TRP-14 (> 1 microM) increased the concentration of intracellular calcium ([Ca2+]i) in endothelial cells with kinetics similar to the increase in [Ca2+]i triggered by alpha-thrombin. In contrast, DIP-alpha-thrombin did not increase [Ca2+]i and also did not prevent the rise in [Ca2+]i induced by the subsequent challenge with either TRP-14 or alpha-thrombin. Because the generation of TRP-14 by the proteolytically active forms of thrombin stimulated a rise in endothelial [Ca2+]i, TRP-14 may be the agonist responsible for the activation of the alpha-thrombin receptor in pulmonary vascular endothelial cells.(ABSTRACT TRUNCATED AT 250 WORDS)

Amino Acid Sequence↗

Relative sensitivity to inhibition by cimetidine and clonidine differentiates between the two types of Na(+)-H+ exchangers in cultured cells.

Available evidence indicates that there are two types of Na(+)-H+ exchangers, type A (housekeeping type) and type B (epithelial or apical type), in mammalian cells. We have recently reported, using isolated membrane vesicles, that these two types can be differentiated by their relative sensitivities to inhibition by clonidine and cimetidine [Kulanthaivel, Leibach, Mahesh, Cragoe & Ganapathy (1990) J. Biol. Chem. 264, 1249-1252]. The present study was undertaken to determine whether this approach is also effective in cultured cells. The JAR human placental choriocarcinoma cell line and the opossum kidney (OK) cell line, when grown as confluent monolayer cultures on an impermeable plastic support, express Na(+)-H+ exchanger activity which is measurable by determining Na+ uptake into the cells from the culture medium. The JAR cell Na(+)-H+ exchanger was found to be about 100 times more sensitive to inhibition by dimethylamiloride than the OK cell Na(+)-H+ exchanger. Inhibition studies with clonidine and cimetidine were able to differentiate between these two exchangers very clearly. Cimetidine was 18 times more potent than clonidine in inhibiting the JAR cell Na(+)-H+ exchanger. In contrast, clonidine was at least 8 times more potent than cimetidine in inhibiting the Na(+)-H+ exchanger of the OK cell. The results show that the JAR cell expresses the type A Na(+)-H+ exchanger, whereas the OK cell expresses the type B Na(+)-H+ exchanger. This approach also proved to be very effective in correctly identifying the type of Na(+)-H+ exchanger in a third cell line (HeLa). It is concluded that the relative susceptibility to inhibition by clonidine and cimetidine offers an easy and efficient means of differentiating between the two types of Na(+)-H+ exchangers in cultured cells.

Animals↗

Transport of peptides in renal brush border membrane vesicles. Suitability of 125I-labelled tyrosyl peptides as substrates.

Three tyrosine-containing peptides (Tyr-Pro, Tyr-Pro-Phe and Tyr-Pro-Phe-Pro) were [125I]iodo-labelled and their uptake characteristics in renal brush border membrane vesicles was investigated to assess the suitability of these peptides as substrates in peptide transport studies. Hydrolysis of these peptides during uptake measurements was avoided by using brush border membrane vesicles prepared from the kidneys of Japan Fisher 344 rats which genetically lack dipeptidylpeptidase IV activity. The uptake of 125I-Tyr-Pro and 125I-Tyr-Pro-Phe in these membrane vesicles was found to be stimulated by an inwardly directed H+ gradient. In both cases, the time course of uptake exhibited an overshoot, an indication for active transport. The uptake processes were electrogenic since they were stimulated by an inside-negative membrane potential. Free amino acids had no effect on the uptake of Tyr-Pro and Tyr-Pro-Phe whereas many di- and tripeptides effectively blocked the uptake. These results demonstrated that the [125I]iodo-labelled Tyr-Pro and Tyr-Pro-Phe are suitable substrates for peptide transport studies because their uptake characteristics clearly suggest participation of the peptide transporter in their uptake. In contrast, the uptake of 125I-Tyr-Pro-Phe-Pro was not active, and was not stimulated by the H+ gradient or by the membrane potential. In addition, competition experiments with unlabelled amino acids and peptides indicated that the uptake did not occur via the peptide transporter. However, when allowed to be hydrolyzed to 125I-Tyr-Pro and Phe-Pro by using dipeptidylpeptidase IV-positive renal brush border membrane vesicles prepared from USA Fisher 344 rats, the radiolabel from the [125I]iodo-labelled tetrapeptide was found to be taken up into the vesicles via the peptide transporter. These data provide direct evidence to show that intact tetrapeptides are not substrates for the renal peptide transporter.

Amino Acid Sequence↗

Kinetic evidence for a common transporter for glycylsarcosine and phenylalanylprolylalanine in renal brush-border membrane vesicles.

We investigated the interaction between glycylsarcosine (Gly-Sar), a neutral dipeptide, and phenylalanylprolylalanine (Phe-Pro-Ala), a neutral tripeptide, for transport into renal brush-border membrane vesicles isolated from Japanese F344 rats. This rat strain is genetically deficient in dipeptidylpeptidase IV. Owing to the absence of this enzyme, Phe-Pro-Ala was found to be completely resistant to hydrolysis by the brush-border membranes, and this enabled us to study the uptake of the intact tripeptide without interference by hydrolysis. Gly-Sar was also resistant to hydrolysis by these membrane preparations. Transport of Gly-Sar as well as that of Phe-Pro-Ala in these vesicles was driven by an inwardly directed H+ gradient. Gly-Sar transport was blocked completely by increasing concentrations of Phe-Pro-Ala and vice versa. Gly-Sar inhibited Phe-Pro-Ala transport competitively; and similarly, Phe-Pro-Ala inhibited Gly-Sar transport competitively. The dissociation constant (Kt) for Gly-Sar transport (94 +/- 5 microM) was very similar to the inhibition constant (Ki) for Gly-Sar to inhibit Phe-Pro-Ala transport (107 +/- 13 microM). The Kt for Phe-Pro-Ala transport (36 +/- 3 microM) was equal to the Ki for Phe-Pro-Ala to inhibit Gly-Sar transport (36 +/- 6 microM). Furthermore, linear correlation was exhibited by various neutral di- and tripeptides, which were also resistant to hydrolysis, in their abilities to inhibit the transport of Gly-Sar and that of Phe-Pro-Ala. These results strongly suggest that a common carrier system participates in the transport of neutral di- and tripeptides in renal brush-border membrane vesicles.

Amino Acid Sequence↗

Evidence for tripeptide/H+ co-transport in rabbit renal brush-border membrane vesicles.

L-Phe-L-Pro-L-Ala is a tripeptide which is hydrolysable almost exclusively by dipeptidyl peptidase IV in rabbit renal brush-border membrane vesicles. In order to delineate the mechanism of the transport of an intact tripeptide across the brush-border membrane, we studied the characteristics of the uptake of [3H]Phe-Pro-Ala in membrane vesicles in which the activity of dipeptidylpeptidase IV was completely inhibited by treatment with di-isopropyl fluorophosphate. In these vesicles, uptake of radiolabel from the tripeptide was found to be Na(+)-independent, but was greatly stimulated by an inwardly directed H+ gradient. The H(+)-gradient-dependent radiolabel uptake appeared to be an active process, because the time course of uptake exhibited an overshoot phenomenon. The process was also electrogenic, being stimulated by an inside-negative membrane potential. Under the uptake-measurement conditions there was no detectable hydrolysis of [3H]Phe-Pro-Ala in the incubation medium when di-isopropyl fluorophosphate-treated membrane vesicles were used. Analysis of intravesicular contents revealed that the radiolabel inside the vesicles was predominantly (greater than 90%) in the form of intact tripeptide. These data indicate that the uptake of radiolabel from [3H]Phe-Pro-Ala in the presence of an inwardly directed H+ gradient represents almost exclusively uptake of intact tripeptide. Uphill transport of the tripeptide was also demonstrable in the presence of an inwardly directed Na+ or K+ gradient, but only if nigericin was added to the medium. Under these conditions, nigericin, an ionophore for Na+, K+ and H+, was expected to generate a transmembrane H+ gradient. Uptake of Phe-Pro-Ala in the presence of a H+ gradient was inhibited by di- and tri-peptides, but not by free amino acids. It is concluded that tripeptide/H+ co-transport is the mechanism of Phe-Pro-Ala uptake in rabbit renal brush-border membrane vesicles.

Amino Acid Sequence↗

Evidence for tripeptide-proton symport in renal brush border membrane vesicles. Studies in a novel rat strain with a genetic absence of dipeptidyl peptidase IV.

We have investigated the transport characteristics of L-phenylalanyl-L-prolyl-L-alanine in renal brush-border membrane vesicles isolated from Japan Fisher 344 rats. This particular rat strain genetically lacks dipeptidyl peptidase IV. Owing to the absence of this enzyme, the tripeptide was found to be completely resistant to hydrolysis by the renal brush-border membrane vesicles. Uptake of the tripeptide into these membrane vesicles in the presence of an inwardly directed Na+ gradient was slightly greater than in the presence of a K+ gradient, but there was no evidence for active transport. On the contrary, uptake was very rapid in the presence of an inside-alkaline transmembrane pH gradient, and accumulation of the tripeptide inside the vesicles against a concentration gradient could be demonstrated under these conditions. The uptake was drastically reduced by dissipation of the pH gradient. The uptake was stimulated by an inside-negative membrane potential and inhibited by an inside-positive membrane potential. Moreover, the uptake was greater in voltage-clamped membrane vesicles than in control vesicles. Many di- and tripeptides inhibited this pH gradient-stimulated uptake of Phe-Pro-Ala. The apparent dissociation constant for the tripeptide was 48 microM. High performance liquid chromatography analysis of the intravesicular content at the peak of the overshoot revealed that the tripeptide was transported across the membrane almost entirely in the intact form. These data provide the first direct evidence for the presence of an electrogenic tripeptide-proton symport in renal brush-border membranes.

Amino Acid Sequence↗

Hydrolysis and transport of proline-containing peptides in renal brush-border membrane vesicles from dipeptidyl peptidase IV-positive and dipeptidyl peptidase IV-negative rat strains.

In this investigation, we have demonstrated that the renal brush-border membrane of Fischer 344 rats from the Japanese Charles River Inc. specifically lacks dipeptidyl peptidase IV (DPP IV) activity, whereas the renal brush-border membrane of Fischer 344 rats from three different sources within the United States possesses normal levels of DPP IV activity. Comparison of the brush-border proteins between Charles River (U.S.A.) Fischer 344 rats (DPP IV positive) and Japanese Charles River Fischer 344 rats (DPP IV negative) revealed that a protein band (Mr = 100,000), apparently identical with DPP IV, was absent in the membranes from Japanese Charles River Fischer 344 rats. We examined the handling of radiolabeled beta-casomorphin fragment 1-5 (Tyr-Pro-[3H]Phe-Pro-Gly), a specific substrate for DPP IV, in renal brush-border membrane vesicles isolated from DPP IV-positive and DPP IV-negative rats. Although the membrane vesicles from DPP IV-positive rats were able to hydrolyze the pentapeptide to di- and tripeptides with the subsequent active transport of these products via the H+ gradient-dependent peptide transport system, the membrane vesicles from DPP IV-negative rats failed to hydrolyze the pentapeptide and hence lacked the ability to transport the radiolabel actively from the parent peptide. The H+ gradient-dependent glycyl-sarcosine uptake and the Na+ gradient-dependent proline uptake, however, were normal in DPP IV-negative rats. Urine analysis revealed that the DPP IV-negative rats excreted proline- and hydroxyproline-containing peptides in significantly increased amounts in their urine compared with control rats. Furthermore, following intravenous administration of Tyr-Pro-Phe-Pro-NH2, a peptide that is exclusively hydrolyzed by DPP IV, urinary excretion of the peptide in the intact form was many-fold greater in DPP IV-negative rats than in control rats. These data provide conclusive evidence for the obligatory role of DPP IV in the renal handling of proline (and hydroxyproline)-containing peptides.

Animals↗

Evidence for an imipramine-sensitive serotonin transporter in human placental brush-border membranes.

Serotonin is actively transported into brush-border membrane vesicles isolated from normal human term placentas and an inward-directed NaCl gradient provides the driving force for this process. Uptake is negligible if Na+ is replaced by Li+, K+, Rb+, Cs+ or choline. The presence of Cl- seems necessary for the maximal activity of this Na+-dependent uptake system. Intravesicular K+ (20-40 mM) stimulates serotonin uptake, the stimulation being considerably greater at pH 7.5 than at pH 6.5. But, in the absence of K+, uptake at pH 6.5 was twice the uptake at pH 7.5. Unlabeled serotonin and dopamine inhibit the uptake of radiolabeled serotonin and the IC50 values are 70 nM and 20 microM, respectively. Histamine and 5-hydroxytryptophan do not significantly interact with the system (IC50 greater than 1 mM). Kinetic analysis reveals that serotonin uptake in these vesicles occurs via a single, saturable, high affinity system (Kt = 51 +/- 2 nM; Vmax = 6.4 +/- 0.1 pmol/mg of protein/15 s). The transporter is highly sensitive to inhibition by imipramine (IC50 = 32 nM) and desipramine (IC50 = 160 nM) but relatively insensitive to reserpine and hydralazine.

Carrier Proteins↗

Involvement of thiol groups in the function of the dipeptide/proton cotransport system in rabbit renal brush-border membrane vesicles.

The role of thiol groups in H+-gradient-dependent dipeptide transport in rabbit renal brush-border membrane vesicles was investigated using glycylsarcosine as the substrate. Treatment of the membrane vesicles with a thiol-group-reducing agent, dimercaptopropanol, stimulated Gly-Sar transport. On the other hand, treatment with thiol group oxidants such as 5,5'-dithiobis(2-nitrobenzoic acid), plumbagin and phenazine methosulfate inhibited Gly-Sar transport. These effects were irreversible, because washing the membranes after treatment failed to reverse the effects. Incubation of the membrane vesicles with phenylarsine oxide, a reagent which interacts specifically with vicinal dithiols, significantly inhibited Gly-Sar transport. In all cases, the stimulation or the inhibition of the dipeptide transport was primarily due to changes in the maximal velocity of the transport system, the apparent affinity constant remaining unaltered. These results demonstrate the involvement of one or more vicinal dithiol groups in the function of the renal dipeptide transport system and that these thiol groups must exist in reduced form to maintain maximal transport activity. In addition, these data indirectly suggest that a dithiol-disulfide interchange may play a role in the function of the renal dipeptide transport system.

Animals↗

Active transport of taurine in rabbit jejunal brush-border membrane vesicles.

The characteristics of taurine uptake in rabbit jejunal brush-border membrane vesicles were investigated. Taurine was transiently accumulated inside the vesicles against a concentration gradient when an inwardly directed NaCl gradient was imposed across the membrane. Uptake of taurine showed an absolute requirement for both Na+ and Cl-. The NaCl gradient-dependent taurine uptake was stimulated by a valinomycin-induced, inside-negative, K+-diffusion potential, suggesting that the uptake process was electrogenic. The uptake system exclusively interacted with beta-amino acids of small size, but had no affinity for alpha-amino acids. Kinetic analysis revealed that the system exhibited high affinity for taurine (Kt = 14.4 +/- 0.5 microM). Taurine uptake was greatly influenced by extravesicular concentrations of Na+ and Cl-. The Cl- stoichiometry was found to be one. In the presence of Cl-, taurine uptake was sigmoidally related to Na+ concentration, and the Na+ stoichiometry was calculated to be three. Thus three Na+ and one Cl- were involved per transport of one taurine molecule. The uptake process was not affected by other transport inhibitors such as amiloride, harmaline, furosemide, and 4,4'-diisothiocyanostilbene-2,2'-disulfonate.

Animals↗