Antidiuretic hormone (ADH) controls total body water balance by changing tight epithelial cell solute and water permeability. ADH increases the water permeability (Pf) of the apical membranes of cells in the mammalian kidney and anuran urinary bladder by the vesicle-mediated insertion of highly selective water channels. ADH water channels are believed to be composed of proteins based on biophysical data inhibition of ADH Pf by mercurial reagents. Despite their importance, the structures of ADH water channel proteins are not known. In an effort to do so, our laboratory has characterized the membrane proteins of vesicles called aggrephores that store large numbers of ADH water channels in toad urinary bladder. These vesicles are highly water and proton permeable. Proteins of 55 and 53 kilodaltons (kD) are the predominant species in these vesicles and both span the membrane of these vesicles. Both proteins appear exclusively in the apical membrane only after ADH stimulation and both have a large cysteine content. Their derivatization with fluorescein mercuric acetate is associated with an 82% inhibition of vesicle Pf. Rabbit antisera raised against these 55 and 53 kD proteins inhibits ADH elicited Pf by 78%. These data suggest these proteins are ADH water channel components. Recently, we have identified clones from a toad bladder lambdalgt11 library using this antisera and demonstrated that water channels are expressed in Xenopus oocytes after injection of toad bladder poly A+ RNA. We propose to first, characterized the nucleotide sequence and expression of the 55 and 53 kD proteins in toad bladder; second, we will determine if their transcripts are responsible for expression of water channels in oocytes and third, we will examine the functional topology of these water channel proteins within the membrane, test whether functional ADH water channels are composed of multiple subunits and if they are present in other tissues besides the toad bladder.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
2R01DK038874-05A1
Application #
3238441
Study Section
General Medicine B Study Section (GMB)
Project Start
1987-07-01
Project End
1996-06-30
Budget Start
1992-07-15
Budget End
1993-06-30
Support Year
5
Fiscal Year
1992
Total Cost
Indirect Cost
Name
Children's Hospital Boston
Department
Type
DUNS #
076593722
City
Boston
State
MA
Country
United States
Zip Code
02115
Puliyanda, Dechu P; Ward, Donald T; Baum, Michelle A et al. (2003) Calpain-mediated AQP2 proteolysis in inner medullary collecting duct. Biochem Biophys Res Commun 303:52-8
Jo, I; Ward, D T; Baum, M A et al. (2001) AQP2 is a substrate for endogenous PP2B activity within an inner medullary AKAP-signaling complex. Am J Physiol Renal Physiol 281:F958-65
Sands, J M; Flores, F X; Kato, A et al. (1998) Vasopressin-elicited water and urea permeabilities are altered in IMCD in hypercalcemic rats. Am J Physiol 274:F978-85
Baum, M A; Ruddy, M K; Hosselet, C A et al. (1998) The perinatal expression of aquaporin-2 and aquaporin-3 in developing kidney. Pediatr Res 43:783-90
Ward, D T; Brown, E M; Harris, H W (1998) Disulfide bonds in the extracellular calcium-polyvalent cation-sensing receptor correlate with dimer formation and its response to divalent cations in vitro. J Biol Chem 273:14476-83
Ruddy, M K; Drazen, J M; Pitkanen, O M et al. (1998) Modulation of aquaporin 4 and the amiloride-inhibitable sodium channel in perinatal rat lung epithelial cells. Am J Physiol 274:L1066-72
Jo, I; Nielsen, S; Harris, H W (1997) The 17 kDa band identified by multiple anti-aquaporin 2 antisera in rat kidney medulla is a histone. Biochim Biophys Acta 1324:91-101
Sands, J M; Naruse, M; Baum, M et al. (1997) Apical extracellular calcium/polyvalent cation-sensing receptor regulates vasopressin-elicited water permeability in rat kidney inner medullary collecting duct. J Clin Invest 99:1399-405
Chattopadhyay, N; Baum, M; Bai, M et al. (1996) Ontogeny of the extracellular calcium-sensing receptor in rat kidney. Am J Physiol 271:F736-43
Lande, M B; Jo, I; Zeidel, M L et al. (1996) Phosphorylation of aquaporin-2 does not alter the membrane water permeability of rat papillary water channel-containing vesicles. J Biol Chem 271:5552-7

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