AIM:Trafficking, membrane retention, and signal-specific regulation of the Na+/H+ exchanger 3 (NHE3) are modulated by the Na+/H+ Exchanger Regulatory Factor (NHERF) family of PDZ-adapter proteins. This study explored the assembly of NHE3 and NHERF2 with the cGMP-dependent kinase II (cGKII) within detergent-resistant membrane microdomains (DRMs, "lipid rafts") during in vivo guanylate cycle C receptor (Gucy2c) activation in murine small intestine. METHODS:Small intestinal brush border membranes (siBBMs) were isolated from wild type, NHE3-deficient, cGMP-kinase II-deficient, and NHERF2-deficient mice, after oral application of the heat-stable Escherichia coli toxin (STa) analog linaclotide. Lipid raft and non-raft fractions were separated by Optiprep density gradient centrifugation of Triton X-solubilized siBBMs. Confocal microscopy was performed to study NHE3 redistribution after linaclotide application in vivo. RESULTS:In the WT siBBM, NHE3, NHERF2, and cGKII were strongly raft associated. The raft association of NHE3, but not of cGKII, was NHERF2 dependent. After linaclotide application to WT mice, lipid raft association of NHE3 decreased, that of cGKII increased, while that of NHERF2 did not change. NHE3 expression in the BBM shifted from a microvillar to a terminal web region. The linaclotide-induced decrease in NHE3 raft association and in microvillar abundance was abolished in cGKII-deficient mice, and strongly reduced in NHERF2-deficient mice. CONCLUSION:NHE3, cGKII, and NHERF2 form a lipid raft-associated signal complex in the siBBM, which mediates the inhibition of salt and water absorption by Gucy2c activation. NHERF2 enhances the raft association of NHE3, which is essential for its close interaction with the exclusively raft-associated activated cGKII.
Background/Aims: Mice deficient for the canalicular phospholipid transporter MDR2 (ABCB4) develop sclerosing cholangitis due to high biliary concentrations of monomeric bile acids. This study determines whether a selective reduction in biliary bicarbonate output, secondary to the deletion of the hepatocyte-expressed carbonic anhydrase CAXIV (Car14) aggravates the bile acid-induced damage observed in the mdr2-/- mouse model. Methods: Bile flow was measured gravimetrically and HCO3- output by microtitration before and during stimulation with intravenously applied tauroursodesoxycholic acid (TUDCA) in car14-/-mdr2-/- (abcb4-/-), car14-/-/mdr2+/+, car14+/+/mdr2-/- and wt mice. Cholangiocyte proliferation, hepatic inflammation and fibrosis was studied by gene and/or protein expression for proinflammatory and profibrotic cytokines, cholangiocyte proliferation markers, and by (immuno) histochemical assessment. The impact of Car14 deficiency was also assessed in a xenobiotic cholangitis model. Results: TUDCA stimulated HCO3-output was significantly increased in 6 week old mdr2-/- mice, and significantly decreased in both car14-/- as well as car14-/-/mdr2-/-mice, compared to wt, while bile flow was unaltered. Both bile flow and HCO3- output were significantly decreased in 11 week old mdr2-/-, and more so in car14-/-/mdr2-/- mice. Loss of Car14 significantly increased inflammatory liver injury and cholangiocyte proliferation, and aggravated liver fibrosis in car14-/-/mdr2-/- mice compared to mdr2-/- mice. In contrast, the absence of Car14 did not affect the hepatic functional and morphological alterations in 3,5-diethoxycarbonyl-1,4-dihydroxychollidine (DDC) fed mice. Conclusions: Car14 deletion reduced biliary HCO3- output and aggravated the functional, inflammatory and morphological alterations in the liver of mdr2-/-mice. These results demonstrate the importance of sufficient hepatocellular bicarbonate output in the protection of the hepatobiliary epithelium against toxic bile acids.
AIM:The sodium/hydrogen exchanger 2 (NHE2) is an intestinal acid extruder with crypt-predominant localization and unresolved physiological significance. Our aim was to decipher its role in colonic epithelial cell proliferation, differentiation and electrolyte transport.METHODS:Alterations induced by NHE2-deficiency were addressed in murine nhe2-/- and nhe2+/+ colonic crypts and colonoids, and NHE2-knockdown and control Caco2Bbe cells using pH-fluorometry, gene expression analysis and immunofluorescence.RESULTS:pHi -measurements along the colonic cryptal axis revealed significantly decreased intracellular pH (pHi ) in the middle segment of nhe2-/- compared to nhe2+/+ crypts. Increased Nhe2 mRNA expression was detected in murine colonoids in the transiently amplifying/progenitor cell stage (TA/PE). Lack of Nhe2 altered the differentiation programme of colonic epithelial cells with reduced expression of absorptive lineage markers alkaline phosphatase (iAlp), Slc26a3 and transcription factor hairy and enhancer-of-split 1 (Hes1), but increased expression of secretory lineage markers Mucin 2, trefoil factor 3 (Tff3), enteroendocrine marker chromogranin A and murine atonal homolog 1 (Math1). Enterocyte differentiation was found to be pHi dependent with acidic pHi reducing, and alkaline pHi stimulating the expression of enterocyte differentiation markers in Caco2Bbe cells. A thicker mucus layer, longer crypts and an expanded brush border membrane zone of sodium/hydrogen exchanger 3 (NHE3) abundance may explain the lack of inflammation and the normal fluid absorptive rate in nhe2-/- colon.CONCLUSIONS:The results suggest that NHE2 expression is activated when colonocytes emerge from the stem cell niche. Its activity increases progenitor cell pHi and thereby supports absorptive enterocyte differentiation.
Genetic defects in SLC26A3 (DRA), an intestinal Cl-/HCO3- exchanger, result in congenital chloride diarrhea (CLD), marked by lifelong acidic diarrhea and a high risk of inflammatory bowel disease. Slc26a3-/- mice serve as a model to understand the pathophysiology of CLD and search for treatment options. This study investigates the microbiota changes in slc26a3-/- colon, the genotype-related causes for the observed microbiota alterations, its inflammatory potential, as well as the corresponding host responses. The luminal and the mucosa-adherent cecal and colonic microbiota of cohoused slc26a3-/- and wt littermates were analyzed by 16S rRNA gene sequencing. Fecal microbiota transfer from cohoused slc26a3-/- and wt littermates to germ-free wt mice was performed to analyze the stability and the inflammatory potential of the communities.The cecal and colonic luminal and mucosa-adherent microbiota of slc26a3-/- mice was abnormal from an early age, with a loss of diversity, of short-chain fatty acid producers, and an increase of pathobionts. The transfer of slc26a3-/- microbiota did not result in intestinal inflammation and the microbial diversity in the recipient mice normalized over time. A strong increase in the expression of Il22, Reg3β/γ, Relmβ, and other proteins with antimicrobial functions was observed in slc26a3-/- colon from juvenile age, while the mucosal and systemic inflammatory signature was surprisingly mild. The dysbiotic microbiota, low mucosal pH, and mucus barrier defect in slc26a3-/- colon are accompanied by a stark upregulation of the expression of a panel of antimicrobial proteins. This may explain the low inflammatory burden in the gut of these mice.
Solute carrier family 26 member (SLC26A9) is a Cl− uniporter with very high expression levels in the gastric mucosa. Here, we describe morphological and molecular alterations in gastric mucosa of slc26a9−/− mice and in selective parietal cell-deleted slc26a9fl/fl/Atp4b-Cre mice and correlate SLC26A9 expression levels with morphological and clinical parameters in a cohort of gastric cancer (GC) patients. The expression patterns of genes related to transport and enzymatic function, proliferation, apoptosis, inflammation, barrier integrity, metaplasia and neoplasia development were studied by immunohistochemistry (IHC), quantitative RT-PCR, in situ hybridization and RNA microarray analysis. SLC26A9 expression and cellular/clinical phenotypes were studied in primary human GC tissues and GC cell lines. We found that both complete and parietal cell-selective Slc26a9 deletion in mice caused spontaneous development of gastric premalignant and malignant lesions. Dysregulated differentiation of gastric stem cells in an inflammatory environment, activated Wnt signaling, cellular hyperproliferation, apoptosis inhibition and metaplasia were observed. Analysis of human gastric precancerous and cancerous tissues revealed that SLC26A9 expression progressively decreased from atrophic gastritis to GC, and that downregulation of SLC26A9 was correlated with patient survival. Exogenous expression of SLC26A9 in GC cells induced upregulation of the Cl−/HCO3− exchanger AE2, G2/M cell cycle arrest and apoptosis and suppressed their proliferation, migration and invasion. Our data indicate that SLC26A9 deletion in parietal cells is sufficient to trigger gastric metaplasia and the development of neoplastic lesions. In addition, we found that SLC26A9 expression decreases during human gastric carcinogenesis, and that exogenous SLC26A9 expression in GC cells reduces their malignant behavior.
Carbonic anhydrase XIV (Car14) is highly expressed in the hepatocyte, with predominance in the canalicular membrane and its active site in the extracellular milieu. The aim of this study is to determine the physiological relevance of Car14 for biliary fluid and acid/base output, as well as its role in the maintenance of hepatocellular and cholangiocyte integrity. The common bile duct of anesthetized car14-/- and car14+/+ mice was cannulated and hepatic HCO3- output was measured by microtitration and bile flow gravimetrically before and during stimulation with intravenously applied tauroursodeoxycholic acid (TUDCA). Morphological alterations and hepatic damage were assessed histologically and immunohistochemically in liver tissue from 3- to 52-week-old car14-/- and car14+/+ mice, and gene and/or protein expression was measured for pro-inflammatory cytokines, fibrosis, and cholangiocyte markers. Biliary basal and more so TUDCA-stimulated HCO3- output were significantly reduced in car14-/- mice of all age groups, whereas bile flow and hepatic and ductular morphology were normal at young age. Car14-/- mice developed fibrotic and proliferative changes in the small bile ducts at advanced age, which was accompanied by a reduction in bile flow, and an upregulation of hepatic cytokeratin 19 mRNA and protein expression. Membrane-bound Car14 is essential for biliary HCO3- output, and its loss results in gradual development of small bile duct disease and hepatic fibrosis. Bile flow is not compromised in young adulthood, suggesting that Car14-deficient mice may be a model to study the protective role of biliary canalicular HCO3- against luminal noxi to the cholangiocyte.
AIM:Slc26a9 is a member of the Slc26 multifunctional anion transporter family. Polymorphisms in Slc26a9 are associated with an increased incidence of meconium ileus and diabetes in cystic fibrosis patients. We investigated the expression of Slc26a9 in the murine pancreatic ducts, islets and parenchyma, and elucidated its role in pancreatic ductal electrolyte and fluid secretion and endocrine function.METHODS:Pancreatic Slc26a9 and CFTR mRNA expression, fluid and bicarbonate secretion were assessed in slc26a9-/- mice and their age- and sex-matched wild-type (wt) littermates. Glucose and insulin tolerance tests were performed.RESULTS:Compared with stomach, the mRNA expression of Slc26a9 was low in pancreatic parenchyma, 20-fold higher in microdissected pancreatic ducts than parenchyma, and very low in islets. CFTR mRNA was ~10 fold higher than Slc26a9 mRNA expression in each pancreatic cell type. Significantly reduced pancreatic fluid secretory rates and impaired glucose tolerance were observed in female slc26a9-/- mice, whereas alterations in male mice did not reach statistical significance. No significant difference was observed in peripheral insulin resistance in slc26a9-/- compared to sex- and aged-matched wt controls. In contrast, isolated slc26a9-/- islets in short term culture displayed no difference in insulin content, but a significantly reduced glucose-stimulated insulin secretion compared to age- and sex-matched wt islets, suggesting that the impaired glucose tolerance in the absence of Slc26a9 expression these is a pancreatic defect.CONCLUSIONS:Deletion of Slc26a9 is associated with a reduction in pancreatic fluid secretion and impaired glucose tolerance in female mice. The results underline the importance of Slc26a9 in pancreatic physiology.
Although absorption of di‐ and tripeptides into intestinal epithelial cells occurs via the peptide transporter 1 (PEPT1, also called solute carrier family 15 member 1 (SLC15A1)), the detailed regulatory mechanisms are not fully understood. We examined: (a) whether dipeptide absorption in villous enterocytes is associated with a rise in cytosolic Ca2+ ([Ca2+]cyt), (b) whether the calcium sensing receptor (CaSR) is involved in dipeptide‐elicited [Ca2+]cyt signaling, and (c) what potential consequences of [Ca2+]cyt signaling may enhance enterocyte dipeptide absorption. Dipeptide Gly‐Sar and CaSR agonist spermine markedly raised [Ca2+]cyt in villous enterocytes, which was abolished by NPS‐2143, a selective CaSR antagonist and U73122, an phospholipase C (PLC) inhibitor. Apical application of Gly‐Sar induced a jejunal short‐circuit current (Isc), which was reduced by NPS‐2143. CaSR expression was identified in the lamina propria and on the basal enterocyte membrane of mouse jejunal mucosa in both WT and Slc15a1−/− animals, but Gly‐Sar‐induced [Ca2+]cyt signaling was significantly decreased in Slc15a1−/− villi. Clotrimazole and TRM‐34, two selective blockers of the intermediate conductance Ca2+‐activated K+ channel (IKCa), but not iberiotoxin, a selective blocker of the large‐conductance K+ channel (BKCa) and apamin, a selective blocker of the small‐conductance K+ channel (SKCa), significantly inhibited Gly‐Sar‐induced Isc in native tissues. We reveal a novel CaSR‐PLC‐Ca2+‐IKCa pathway in the regulation of small intestinal dipeptide absorption, which may be exploited as a target for future drug development in human nutritional disorders.
Background: The molecular basis for heat-stable Escherichia coli enterotoxin (STa) action and its synthetic analogue linaclotide is well understood at the enterocyte level. Pharmacologic strategies to prevent STa-induced intestinal fluid loss by inhibiting its effector molecules, however, have achieved insufficient inhibition in vivo. Aims and experimental approach: To investigate whether the currently discussed effector molecules and signaling mechanisms of STa/linaclotide-induced diarrhea have similar relevance in vivo than at the enterocyte level, we studied the effect of 10(-7) M of the STa analogue linaclotide on short circuit current (Isc) of chambered isolated jejunal mucosa, and on the in vivo action on fluid transport in a perfused segment of proximal jejunum of anesthetized mice. The selected mice were deficient of transport (NHE3, CFTR, Slc26a3/a6), adaptor (NHERF1-3), or signal transduction molecules [cGMP-dependent kinase II (GKII)] considered to be downstream effectors after STa/linaclotide binding to guanylate cyclase C (GCC). Selective NHE3 inhibition by tenapanor was also employed. Key results, conclusions and implications: The comparison allowed the separation of effectors for stimulation of electrogenic anion secretion and for inhibition of electrolyte/fluid absorption in response to STa/linaclotide. The cGKII-NHERF1-CFTR and cGKII-NHERF2-NHE3 interactions are indeed major effectors of small intestinal fluid loss downstream of GCC activation in vitro and in vivo, but 50% of the linaclotide-induced fluid loss in vivo, while dependent on CFTR activation and NHE3 inhibition, does not involve cGKII, and 30% does not depend on NHERF1 or NHERF2. A combined NHERF1 and NHERF2 inhibition appears nevertheless a good pharmacological strategy against STa-mediated fluid loss.
AIM:SLC26A3 (DRA) mediates the absorption of luminal Cl- in exchange for HCO3- in the distal intestine. Its expression is lost in congenital chloride diarrhoea (CLD) and strongly decreased in the presence of intestinal inflammation. To characterize the consequences of a loss of Slc26a3 beyond disturbed electrolyte transport, colonic mucus synthesis, surface accumulation and composition, pH microclimate, microbiome composition and development of inflammation was studied in slc26a3-/- mice.METHODS:The epithelial surface pH microclimate and the surface mucus accumulation in vivo was assessed by two photon microscopy in exteriorized mid colon of anaesthetized slc26a3-/- and wt littermates. Mucus synthesis, composition and inflammatory markers were studied by qPCR and immunohistochemistry and microbiome composition by 16S rRNA sequencing.RESULTS:Colonic pH microclimate was significantly more acidic in slc26a3-/- and to a lesser extent in cftr-/- than in wt mice. Goblet cell thecae per crypt were decreased in slc26a3-/- and increased in cftr-/- colon. Mucus accumulation in vivo was reduced, but much less so than in cftr-/- colon, which is possibly related to the different colonic fluid balance. Slc26a3-/- colonic luminal microbiome displayed strong decrease in diversity. These alterations preceded and maybe causally related to increased mucosal TNFα mRNA expression levels and leucocyte infiltration in the mid-distal colon of slc26a3-/- but not of cftr-/- mice.CONCLUSIONS:These findings may explain the strong increase in the susceptibility of slc26a3-/- mice to DSS damage, and offer insight into the mechanisms leading to an increased incidence of intestinal inflammation in CLD patients.
Previous study showed that Slc26a9 loss impairs parietal cell function and survival. We investigated whether Slc26a9 loss causes spontaneous gastric carcinogenesis in mice and plays a role in the development and progression in human gastric cancer (GC). Gastric histopathology and potential molecular mechanism were explored in Slc26a9 knockout mice and wild-type littermates as well as Slc26a9fl/fl/Atp4b-Cre and Slc26a9fl/fl mice from 8 days to 18 months by histological and immunohistochemical analyses, quantitative PCR, in situ hybridization, and RNA microarray analysis, respectively. We demonstrated that loss of parietal cell expression of Slc26a9 is the key event to induce spontaneous gastric carcinogenesis in mice, and clarified the sequence of events leading to malignant transformation, including Slc26a9 deficiency in parietal cells resulted in dysregulated differentiation of stem cells in an inflammatory environment, activated Wnt signaling pathway to induce gastric epithelia cell hyperproliferation and apoptosis inhibition, as well as spontaneous epithelial to mesenchymal transition-induced cancer stem cell phenotypes. Downregulation of SLC26A9 correlated with GC patient’s short survival. Graphical Abstract Loss of parietal cell expression of Slc26a9 is the key event to induce spontaneous gastric carcinogenesis in transgenic mice.
BackgroundBoth sodium/hydrogen exchanger 2 and 3 (NHE2 and NHE3) isoforms of the Slc9 family Na+/H+ exchangers are expressed in the luminal membrane of the intestinal enterocytes, but in contrast to the deletion of NHE3, the deletion of NHE2 does not result in diarrhea, hyperaldosteronism, or reduced survival in mice.Aim and methodsTo further analyze the physiological role of NHE2 in the intestinal epithelial cells, we fluorometrically measured the intracellular pH (pHi) along the colonic cryptal axis of NHE2−/− mice, and in the intestinal epithelial Caco 2Bbe (C2Bbe) after stable lentiviral sh‐mediated NHE2 silencing. RNA and protein expression were assessed by qPCR, Western analysis and immunohistochemistry, and proliferative, migratory, and functional features of colonic cells in vivo and in vitro were assessed by enzymatic and functional assays.ResultsSteady‐state pHI was significantly decreased in C2Bbe/shNHE2 compared to empty‐vector transfected C2Bbe cells. In the colonic crypts, the pHi in the cryptal base was significantly lower than in the surface region, and the acidic zone along the crypt axis was significantly longer in colonic crypts from NHE2−/− mice. NHE2−/− colonic crypts were elongated with a much longer proliferation zone but with less proliferating cells per crypt area. Cell proliferation in C2Bbe/shNHE2 cells was reduced compared to empty‐vector transfected C2Bbe. The expression and activity of alkaline phosphatase (an enterocyte differentiation marker), was significantly reduced in NHE2−/− colonic mucosa and in C2Bbe/shNHE2 cells. However, the number of goblet cells and mucin 2 (Muc2) expression was increased in the NHE2−/− compared to the WT colon, accompanied by formation of a thicker mucus layer. The shift from absorptive to secretory differentiation program was accompanied by a decrease in Hes1 expression, as a downstream transcription factor of Notch signaling that supports the development of absorptive enterocytes.ConclusionsThe results suggest that NHE2 expression and/or function is activated when the intestinal cells emerge from the stem cell niche, and that this is essential for the establishment of the pHi gradient along the colonic crypt axis. Its activity facilitates enterocyte proliferation and differentiation along the crypt axis.Support or Funding InformationVolkswagen Foundation (VW‐Vorab), SFB621/C9, Se460/9‐4 and 21‐1.This abstract is from the Experimental Biology 2018 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
BackgroundThe maintenance of epithelial function and barrier integrity is achieved by continuous renewal of the colonic epithelium through proliferation, migration and differentiation. Sodium hydrogen exchanger 2 (NHE2) is highly expressed in the colonic epithelium, where it is involved in Na+/H+ exchange, water absorption and pHi regulation. However, NHE2 deficiency in mice does not result in diarrheal phenotype. NHE2 is expressed in the cryptal region, where colonocytes exit the stem cell niche and migrate toward the surface.Aim and methodsTo study the role of NHE2 in colonocyte migration, we silenced NHE2 in the self‐differentiating Caco 2Bbe (C2Bbe) colonic cell line and studied the migration of cells using wound scratch assay. To analyze colonocyte migration during self‐renewal, NHE2−/− and WT mice were pulse‐labeled with bromodeoxyuridine (BrdU) and sacrificed at different time points. Sections taken from identical colonic segments were studied immunohistochemically.ResultsThe rate of colonocyte migration, defined by the occurrence of BrdU‐positive cells along the crypt‐villus axis was significantly higher in the colon of NHE2−/− mice compared to the control littermates. This was associated with a significant reduction in E‐cadherin and ZO‐1 expression in the basal parts of the crypts, pointing to alterations of the adhesion and tight junction formation of the colonocytes during the early stages of differentiation. Additionally, increased mRNA expression of β‐catenin was detected in isolated NHE2−/− colonic crypts compared to the control. To substantiate these findings, C2Bbe cells were stably transfected with shRNA, generating a cell line with ~70 % downregulated expression of NHE2. A significant increase of the migration rate, but reduced cell proliferation was observed in the NHE2 knock‐down compared to the mock transfected cells. This was accompanied with a significant decrease of E‐cadherin, but enhanced β‐catenin expression.ConclusionsOur results show that NHE2 is involved in the processes of colonocyte proliferation and migration along the crypt axis. Alterations in the cell adhesion formation, the Wnt/β‐catenin signaling pathway and disturbed formation of the E‐cadherin/β‐catenin complex, possibly induced by a lower pHi in NHE2‐deficient colonocytes, may be responsible for the increase in colonocyte migratory speed.Support or Funding InformationVolkswagen Foundation (VW‐Vorab), SFB621/C9, Se460/9‐4 and 21‐1.This abstract is from the Experimental Biology 2018 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
The different PDZ‐adaptors of the NHERF family differentially associate with intestinal electrolyte transporters and modulate their activity in an agonist‐specific fashion. STa induces secretory diarrhea via binding to the guanylate cyclase C, eliciting cGMP production, resulting both in a stimulation of CFTR‐mediated anion secretion and an inhibition of NHE3‐mediated fluid absorption, and these effects are modulated by different NHERF adaptor proteins in cell lines.AimWe studied the STa‐mediated short circuit current response in isolated jejunal mucosa as well as the STa action on in vivo fluid transport in anethstized mice, deficiet for NHE3, Slc26a6, CFTR and NHERF1‐3, to study how well in vitro and in vivo modulation of fluid transport by the above named transporters and NHERF proteins may correlate.Results10−7M of the STa analogue linacolide was applied to the luminal bath of chambered isolated jejunal mucosa of CFTR‐, NHE3‐, Slc26a6‐, cGKII, and NHERF1–3 deficient and WT mice, and short circuit current (Isc) response was measured. The same concentration of linaclotide was added to the jejunal perfusate during single pass perfusion of a jejunal segment in isoflurane‐anesthetized, acid/base‐ and blood pressure controlled KO and WT mice, and net fluid balance before and after linaclotide application assessed gravimetrically. The peak Isc response to linaclotide in chambered jejunal mucosa was absent in CFTR KO, reduced by 88% in cGKII KO, by 40% in NHERF1 KO, and not significantly in NHERF2, NHERF (PDZK1) and SLC26a6 KO isolated jejunal mucosa. In contrast, the magnitude of change from jejunal fluid absorption to secretion in vivo was reduced by 51% in cGKII KO, 49% in CFTR KO, 45% in NHERF1 KO, by 34% in NHERF2 KO, and not significantly in NHERF3 KO and Slc26a6 KO anesthetized mice. NHE3 deletion (48%), pharmacological NHE3 inhibition (50%) or Slc26a6 deletion (44%) also reduced the STa‐elicited change in fluid movement.ConclusionsThe results demonstrate that Isc measurements in isolated small intestinal mucosa are excellent models to selectively study agonist‐mediated CFTR activation, but do not accurately predict in vivo “secretory responses”, i.e. a relative decrease in the basal fluid absorptive flux. Activating the GCC receptor elicited a decrease in fluid absorption in CFTR KO mice, making this substance an interesting drug to improve gut fluidity in CF patients. Apart from direct interference with guanylate cyclase C activation, potential pharmacological strategies to prevent STa‐mediated fluid loss may be targeting both NHERF1 and NHERF2.Support or Funding InformationFunded by SFB621/C1, DFG grants SE460/13‐4, 19‐1 and 21‐1.This abstract is from the Experimental Biology 2018 Meeting. There is no full text article associated with this abstract published in The FASEB Journal.
Members of the solute carrier 26 (SLC26) family have emerged as important players in mediating anions fluxes across the plasma membrane of epithelial cells, in cooperation with the cystic fibrosis transmembrane conductance regulator (CFTR) chloride channel. Among them, SLC26A3 acts as a chloride/bicarbonate exchanger, highly expressed in the gastrointestinal, pancreatic and renal tissues. In humans, mutations in the SLC26A3 gene were shown to induce congenital chloride-losing diarrhea (CLD), a rare autosomal recessive disorder characterized by life-long secretory diarrhea. In view of some reports indicating subfertility in some male CLD patients together with SLC26-A3 and -A6 expression in the male genital tract and sperm cells, we analyzed the male reproductive parameters and functions of SLC26A3 deficient mice, which were previously reported to display CLD gastro-intestinal features. We show that in contrast to Slc26a6, deletion of Slc26a3 is associated with severe lesions and abnormal cytoarchitecture of the epididymis, together with sperm quantitative, morphological and functional defects, which altogether compromised male fertility. Overall, our work provides new insight into the pathophysiological mechanisms that may alter the reproductive functions and lead to male subfertility in CLD patients, with a phenotype reminiscent of that induced by CFTR deficiency in the male genital tract.
Following superficial injury, neighbouring gastric epithelial cells close the wound by rapid cell migration, a process called epithelial restitution. Na+/H+ exchange (NHE) inhibitors interfere with restitution, but the role of the different NHE isoforms expressed in gastric pit cells has remained elusive. The role of the basolaterally expressed NHE1 (Slc9a1) and the presumably apically expressed NHE2 (Slc9a2) in epithelial restitution was investigated in the nontransformed rat gastric surface cell line RGM1. Migration velocity was assessed by loading the cells with the fluorescent dye DiR and following closure of an experimental wound over time. Since RGM1 cells expressed very low NHE2 mRNA and have low transport activity, NHE2 was introduced by lentiviral gene transfer. In medium with pH 7.4, RGM1 cells displayed slow wound healing even in the absence of growth factors and independently of NHE activity. Growth factors accelerated wound healing in a partly NHE1‐dependent fashion. Preincubation with acidic pH 7.1 stimulated restitution in a NHE1‐dependent fashion. When pH 7.1 was maintained during the restitution period, migratory speed was reduced to ∼10% of the speed at pH 7,4, and the residual restitution was further inhibited by NHE1 inhibition. Lentiviral NHE2 expression increased the steady‐state pHi and reduced the restitution velocity after low pH preincubation, which was reversible by pharmacological NHE2 inhibition. The results demonstrate that in RGM1 cells, migratory velocity is increased by NHE1 activation, while NHE2 activity inhibit this process. A differential activation of NHE1 and NHE2 may therefore, play a role in the initiation and completion of the epithelial restitution process.
Background: The PDZ adaptor protein PDZK1 modulates the membrane expression and function of a variety of intestinal receptors and ion/nutrient transporters. Its expression is strongly decreased in inflamed intestinal mucosa of mice and IBD patients.Aim and Methods: We investigated whether the inflammation-associated PDZK1 downregulation is a direct consequence of proinflammatory cytokine release by treating intestinal Caco-2BBE cells with TNF-alpha, IFN-gamma, and IL-1 beta, and analysing PDZK1 promotor activity, mRNA and protein expression.Results: IL-1 beta was found to significantly decrease PDZK1 promoter activity, mRNA and protein expression in Caco-2BBE cells. A distal region of the hPDZK1 promoter was identified to be important for basal expression and IL-1 beta-responsiveness. This region harbors the retinoid acid response element RARE as well as binding sites for transcription factors involved in IL-beta downstream signaling. ERK1/2 inhibition by the specific MEK1/2 inhibitors PD98059/U0126 significantly attenuated the IL-1 beta mediated downregulation of PDZK1, while NF-kappa B, p38 MAPK, and JNK inhibition did not. Expression of the nuclear receptors RXR alpha and PPAR alpha was decreased in inflamed colonic-mucosa of ulcerative colitis patients and in IL-1 beta -treated Caco2-BBE cells. Moreover, the RAR/RXR ligand 9-cis retinoic acid and the PPAR alpha-agonist GW7647 stimulated PDZK1mRNA and protein expression and attenuated IL-1 beta -mediated inhibition.Conclusions: The strong decrease in PDZK1 expression during intestinal inflammation may be in part a consequence of IL-1 beta -mediated RXR alpha and PPAR alpha repression and can be attenuated by agonists for either nuclear receptor, or by ERK1/2 inhibition. The negative consequences of inflammation-induced PDZK1 downregulation on epithelial transport-function may thus be amenable to pharmacological therapy.