Bicarbonate Secretion in Interlobular Ducts from Guinea-pig Pancreas
Overview
Authors
Affiliations
1. The transport of HCO3- across the luminal membrane of pancreatic duct cells was studied by monitoring the luminal pH of isolated guinea-pig interlobular ducts after microinjection of an extracellular fluoroprobe, the dextran conjugate of 2'7'-bis(2-carboxyethyl)-5(6)-carboxyfluorescein (BCECF-dextran). Luminal Cl- concentration was also measured by microfluorometry following microinjection of the dextran conjugates of 6-methoxy-N-(4-aminoalkyl)quinolinium bromide (ABQ-dextran) and Cl-NERF (Cl-NERF-dextran). 2. When HCO3-/CO2 was admitted to the bath, a transient acidification of the duct lumen was observed, followed by a marked alkalinization. The latter was abolished when the luminal Cl- concentration was reduced to 25-35 mM by replacement with glucuronate and may, therefore, be attributed to Cl(-)-HCO3- exchange at the luminal membrane. 3. Secretin, forskolin and acetylcholine stimulated HCO3- secretion into the lumen even when the luminal Cl- concentration was reduced to approximately 7 mM. Furthermore, agonist-evoked HCO3- secretion was not inhibited by luminal glibenclamide, dihydro-4,4'-diisothiocyanostilbene-2,2'-disulphonic acid (H2DIDS) or 5-nitro-2-(3-phenylpropylamino)-benzoic acid (NPPB). These observations are not easily reconciled with HCO3- transport across the luminal membrane being mediated by Cl(-)-HCO3- exchange in parallel with a Cl- conductance. 4. Agonist-stimulated HCO3- secretion was blocked by omitting Na+ from the bath but not by addition of N-methyl-N-isobutylamiloride (MIA) or bafilomycin A1. This supports our previous conclusion that HCO3- entry into duct cells from the extracellular fluid requires Na+ but is not dependent on Na(+)-H+ exchange or vacuolar-type H(+)-ATPase activity. 5. The three actions of secretin on guinea-pig pancreatic duct cells described in this and the accompanying paper - stimulation of a relatively Cl(-)-insensitive luminal HCO3- efflux pathway, stimulation of basolateral Na(+)-HCO3- cotransport, and lack of effect on intracellular pH- require the current model of pancreatic HCO3- secretion to be modified.
Boo M, Chew S, Ip Y PLoS One. 2021; 16(10):e0258519.
PMID: 34653199 PMC: 8519421. DOI: 10.1371/journal.pone.0258519.
New Insight into the Role of Nitric Oxide Pathways in Pancreas.
Buchwalow I, Schnekenburger J, Samoilova V, Boecker W, Neumann J, Tiemann K Acta Histochem Cytochem. 2019; 51(6):167-172.
PMID: 30647491 PMC: 6328368. DOI: 10.1267/ahc.18028.
Development of a polarized pancreatic ductular cell epithelium for physiological studies.
OMalley Y, Rotti P, Thornell I, Vanegas Calderon O, Febres-Aldana C, Durham K J Appl Physiol (1985). 2018; 125(1):97-106.
PMID: 29517421 PMC: 6086968. DOI: 10.1152/japplphysiol.00043.2018.
Yamaguchi M, Steward M, Smallbone K, Sohma Y, Yamamoto A, Ko S J Physiol. 2016; 595(6):1947-1972.
PMID: 27995646 PMC: 5350461. DOI: 10.1113/JP273306.
Role of CFTR in epithelial physiology.
Saint-Criq V, Gray M Cell Mol Life Sci. 2016; 74(1):93-115.
PMID: 27714410 PMC: 5209439. DOI: 10.1007/s00018-016-2391-y.