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Postnatal maturation of rabbit renal collecting duct. III. Peanut lectin-binding intercalated cells
L M Satlin1, T Matsumoto, G J Schwartz
1Department of Pediatrics, Albert Einstein College of Medicine, Bronx, New York 10461.
Insights
The rabbit kidney
Area of Science:
- Renal Physiology
- Cell Biology
- Developmental Biology
Background:
- Transepithelial HCO3 transport in the rabbit cortical collecting duct (CCD) matures postnatally.
- Beta-intercalated cells are responsible for HCO3 secretion in the CCD.
Purpose of the Study:
- To investigate the postnatal functional development of beta-intercalated cells in the rabbit kidney.
- To characterize the maturation of HCO3 secretion in the CCD.
Main Methods:
- Utilized fluorescent probes and immunocytochemistry to identify and trace beta-intercalated cells.
- Assessed cell pH, apical binding to peanut agglutinin (PNA) and antibody B63, and apical Cl-HCO3 exchange activity.
- Measured basolateral Cl conductance and intracellular buffering capacity.
Main Results:
- Neonatal CCD had fewer beta-intercalated cells with lower pH and reduced Cl-HCO3 exchange activity compared to mature segments.
- Apical PNA and B63 binding, indicative of differentiated beta-cells, were minimal in neonates.
- Functional apical Cl-HCO3 exchange emerged with the detection of beta-cell surface antigens.
Conclusions:
- Beta-intercalated cells proliferate and mature postnatally in the rabbit kidney, contributing to HCO3 secretion.
- The developmental origin of these cells requires further investigation.
Abstract:
Measurements of transepithelial HCO3 transport in the rabbit cortical collecting duct (CCD) indicate that net HCO3 secretion becomes apparent only after the first month of life [F. M. Mehrgut, L. M. Satlin, and G. J. Schwartz, Am. J. Physiol. 259 (Renal Fluid Electrolyte Physiol. 28): F801-F808, 1990]. We used fluorescent probes and immunocytochemistry to trace the postnatal functional development of the beta-intercalated cell, the HCO3-secreting cell of the fully differentiated CCD. Throughout maturation, the beta-intercalated cell was empirically identified by its selective uptake of the pH-sensitive dye 2',7'-bis(carboxyethyl)-5(6)-carboxyfluorescein, an alkaline cell pH, apical binding to peanut agglutinin (PNA) and monoclonal antibody B63, and by its functional capacity for apical Cl-HCO3 exchange as manifested by Cl-dependent extrusion of an intracellular alkali load. Compared with the mature segment, the neonatal mid-CCD exhibited fewer intercalated cells, which were characterized by a less alkaline cell pH, reduced apical Cl-HCO3 exchange activity, and shorter apical binding profiles for PNA. There was evidence for basolateral Cl conductance and similar buffering capacity at all ages. In the neonatal outer cortex there was little or no binding to PNA or to B63. As soon as cell surface antigens characteristic of the fully differentiated beta-cell were detected, functional studies indicated the presence, albeit reduced, of apical Cl-HCO3 exchange. Thus there is postnatal proliferation and maturation of HCO3-secreting intercalated cells in the rabbit kidney; the origin of these cells remains to be determined.