Peptides secreted from endocrine cells, paracrine cells and nerve endings regulate gastrointestinal function. Once secreted from a nerve ending a peptide will encounter peptidase enzymes which degrade the peptide, converting it to inactive fragments or to other biologically active peptides. It follows, therefore, that these peptidases play a major role in regulating gastrointestinal function, but this possibility has not received adequate attention. The objective of this proposal is to identify the major membrane-associated peptidases in human stomach tissues responsible for degradation of gastric peptides and to elucidate their physiological role. There are 5 specific aims: 1) Isolation of the enzymes; 2) Chemical characterization; 3) Enzymatic characterization; 4) Production of antibodies for immunocytochemistry and radioimmunoassay; and 5) Elucidation of the physiological importance of the peptidases. The plasma membranes will be prepared from human gastric muscle by density gradient centrifugation and peptidase activity will be solubilized with detergents and purified chromatographically. The molecular weight, isoelectric point, amino acid sequence and composition will be determined. The specificity and kinetic characteristics will be investigated using substrates of gastrin, somatostatin, gastrin releasing peptide, substance P, enkephalin and vasoactive intestinal polypeptide. Monoclonal and polyclonal antibodies will be raised to the pure enzymes for immunocytochemistry, to localize the enzyme in specific cells, radioimmunoassay, to quantify the activity in tissues, and as blocking agents of the active enzyme. The biological activities of the metabolites will be examined in several systems and the degradation of peptides will be studied using strips of gastric muscle and cultures of explanted myenteric plexus.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK039957-03
Application #
3240005
Study Section
Surgery and Bioengineering Study Section (SB)
Project Start
1987-07-01
Project End
1990-06-30
Budget Start
1989-07-01
Budget End
1990-06-30
Support Year
3
Fiscal Year
1989
Total Cost
Indirect Cost
Name
University of California San Francisco
Department
Type
Schools of Medicine
DUNS #
073133571
City
San Francisco
State
CA
Country
United States
Zip Code
94143
Poole, Daniel P; Lieu, TinaMarie; Pelayo, Juan Carlos et al. (2015) Inflammation-induced abnormalities in the subcellular localization and trafficking of the neurokinin 1 receptor in the enteric nervous system. Am J Physiol Gastrointest Liver Physiol 309:G248-59
Pelayo, Juan-Carlos; Veldhuis, Nicholas A; Eriksson, Emily M et al. (2014) Localisation and activation of the neurokinin 1 receptor in the enteric nervous system of the mouse distal colon. Cell Tissue Res 356:319-32
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Alemi, Farzad; Kwon, Edwin; Poole, Daniel P et al. (2013) The TGR5 receptor mediates bile acid-induced itch and analgesia. J Clin Invest 123:1513-30
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Law, Ivy Ka Man; Murphy, Jane E; Bakirtzi, Kyriaki et al. (2012) Neurotensin-induced proinflammatory signaling in human colonocytes is regulated by ?-arrestins and endothelin-converting enzyme-1-dependent endocytosis and resensitization of neurotensin receptor 1. J Biol Chem 287:15066-75
Hasdemir, Burcu; Mahajan, Shilpi; Bunnett, Nigel W et al. (2012) Endothelin-converting enzyme-1 actions determine differential trafficking and signaling of corticotropin-releasing factor receptor 1 at high agonist concentrations. Mol Endocrinol 26:681-95
Murphy, Jane E; Roosterman, Dirk; Cottrell, Graeme S et al. (2011) Protein phosphatase 2A mediates resensitization of the neurokinin 1 receptor. Am J Physiol Cell Physiol 301:C780-91

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