Neuropeptides, now recognized to be vitally involved in many central and peripheral functions, are known to be generated from larger precursors via a variety of postranslational modifications. In particular, carboxyl terminus alpha-amidation is a key structural feature in the biological activity (and probably in regulation and resistance toward C-exopeptidases) of many neurohormones, with ca. 50% of known peptide hormones being amidated at their C-terminii. Although both the enzymology and biochemistry of amidation have been under active investigation for some time, only within the last two years has it become clear that amidation is actually a two step process. The enzyme peptidylglycine alpha-amidating monooxygenase (PAM) catalyzes formation of the alpha-hydroxyglycine derivative of the glycine extended substrate. Our laboratory recently isolated a novel enzyme from neurointermediate pituitary which we have named peptidylamidoglycolate lyase (PGL; see attached letter documenting consent of the Chairman of the Enzyme Nomenclature Commission of the IUB to this name). We demonstrated that PGL catalyzes the second step in neuropeptide amidation -- dealkylation of alpha-hydroxyglycine derivatives to produce the final amide product. In addition, our laboratory has also demonstrated the presence of both PAM and PGL in chromaffin granules, and we have developed the first small molecule substrates as well as new sensitive assays for the enzymes. In view of the emerging recognition of the crucial neurochemical role of alpha-amidation, we propose to initiate a new research program focusing on this process. Our goals are to explore the regulation of neuropeptide amidation and its relationship to catecholamine processing in chromaffin cells, to characterize amidating enzymes from various sources, and to design and characterize novel classes of inhibitors and mechanism-based effectors for neuropeptide amidation.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM040540-02
Application #
3298182
Study Section
Bio-Organic and Natural Products Chemistry Study Section (BNP)
Project Start
1992-02-01
Project End
1996-01-31
Budget Start
1993-02-01
Budget End
1994-01-31
Support Year
2
Fiscal Year
1993
Total Cost
Indirect Cost
Name
Georgia Institute of Technology
Department
Type
Schools of Arts and Sciences
DUNS #
097394084
City
Atlanta
State
GA
Country
United States
Zip Code
30332
Wang, Hui; Mao, Shu; Chalovich, Joseph M et al. (2008) Tropomyosin dynamics in cardiac thin filaments: a multisite forster resonance energy transfer and anisotropy study. Biophys J 94:4358-69
Bauer, John D; Sunman, Jeffrey A; Foster, Michael S et al. (2007) Anti-inflammatory effects of 4-phenyl-3-butenoic acid and 5-(acetylamino)-4-oxo-6-phenyl-2-hexenoic acid methyl ester, potential inhibitors of neuropeptide bioactivation. J Pharmacol Exp Ther 320:1171-7
Sunman, Jeffrey A; Foster, Michael S; Folse, Stacey L et al. (2004) Reversal of the transformed phenotype and inhibition of peptidylglycine alpha-monooxygenase in Ras-transformed cells by 4-phenyl-3-butenoic acid. Mol Carcinog 41:231-46
McIninch, Jane K; McIninch, James D; May, Sheldon W (2003) Catalysis, stereochemistry, and inhibition of ureidoglycolate lyase. J Biol Chem 278:50091-100
Feng, J; May, S W (2001) High-performance liquid chromatographic enantiomeric separation of an enzyme inhibitor which possesses both a chiral center and tautomeric moieties. J Chromatogr A 905:103-9
Kaesemeyer, W H; Ogonowski, A A; Jin, L et al. (2000) Endothelial nitric oxide synthase is a site of superoxide synthesis in endothelial cells treated with glyceryl trinitrate. Br J Pharmacol 131:1019-23
Feng, J; Shi, J; Sirimanne, S R et al. (2000) Kinetic and stereochemical studies on novel inactivators of C-terminal amidation. Biochem J 350 Pt 2:521-30
Abou-Mohamed, G A; Huang, J; Oldham, C D et al. (2000) Vascular and endothelial actions of inhibitors of substance P amidation. J Cardiovasc Pharmacol 35:871-80
Moore, A B; May, S W (1999) Kinetic and inhibition studies on substrate channelling in the bifunctional enzyme catalysing C-terminal amidation. Biochem J 341 ( Pt 1):33-40
Cutler, S J; DeWitt Blanton Jr, C; Akin, D T et al. (1998) Pharmacological evaluation of 1-(carboxymethyl)-3,5-diphenyl-2-methylbenzene, a novel arylacetic acid with potential anti-inflammatory properties. Inflamm Res 47:316-24

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