application) N-terminal processing of proteins in eukaryotes occurs both co- and post-translationally and the resulting modifications are involved in translocation, regulation of activity and turnover. The initial reactions involve the removal of the initiator methionine and the addition of N-alpha acetyl groups by methionine aminopeptidases (Met AP) and N-alpha-acetyl transferases (NAT), respectively. Each exists in multiple isoforms that appear to differ in specificity, regulation of cellular location. Using recombinant material, the role of the two types of yeast MetAPs will be determined and the proteins characterized with respect to structural and functional properties, including metal content, substrate specificity and catalytic organization. Site-directed mutagenesis and chemical inhibitors will be extensively used. Cellular localization will also be determined with recombinant fusion proteins and immunological reagents. Recombinant human isoforms will also be prepared and examined for putative glycosylations and the role of the type II enzyme in cell cycle regulation. Similar studies will be carried out with the NATs, with a focus on the subforms specific for N-terminal Met (produced by penultimate Asp, Glu and Asn-the """"""""DEN"""""""" subset). In parallel to the NATs that modify the Gly, Ala, Ser, and Thr (GAST) group, the M-NATs exist as a pair of proteins that may functions as a heterodimer complex. This hypothesis will be tested as a part of the structural characterizations. Two enzymes putatively involved in downstream processing of DEN proteins that will also be investigated. In the first case, yeast will be screened (and enzyme isolated if detected) for an acyl amino acid hydrolase, specific for acetyl Met groups, that could destabilize DEN proteins for degradation by the N-end Rule. In the second, human protein N-terminal asparagine amidohydrolase, which converts N-terminal Asn residues to Asp (the yeast form also acts on Gln), will be isolated and further characterized. Finally, yeast null strains, deficient in several of these (and other) co-/post- translationally active enzymes, will be used to confirm their putative physiological roles and to identify proteins degraded in an N-terminal specific manner.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
5R01DK032465-17
Application #
6177292
Study Section
Physiological Chemistry Study Section (PC)
Program Officer
Haft, Carol R
Project Start
1992-09-30
Project End
2002-06-30
Budget Start
2000-07-01
Budget End
2001-06-30
Support Year
17
Fiscal Year
2000
Total Cost
$230,599
Indirect Cost
Name
University of California Irvine
Department
Physiology
Type
Schools of Medicine
DUNS #
161202122
City
Irvine
State
CA
Country
United States
Zip Code
92697
Bradshaw, Ralph A; Yi, Elizabeth (2002) Methionine aminopeptidases and angiogenesis. Essays Biochem 38:65-78
Walker, K W; Bradshaw, R A (1999) Yeast methionine aminopeptidase I. Alteration of substrate specificity by site-directed mutagenesis. J Biol Chem 274:13403-9
Walker, K W; Yi, E; Bradshaw, R A (1999) Yeast (Saccharomyces cerevisiae) methionine aminopeptidase I: rapid purification and improved activity assay. Biotechnol Appl Biochem 29 ( Pt 2):157-63
Bradshaw, R A; Brickey, W W; Walker, K W (1998) N-terminal processing: the methionine aminopeptidase and N alpha-acetyl transferase families. Trends Biochem Sci 23:263-7
Walker, K W; Bradshaw, R A (1998) Yeast methionine aminopeptidase I can utilize either Zn2+ or Co2+ as a cofactor: a case of mistaken identity? Protein Sci 7:2684-7
Luporini, P; Vallesi, A; Miceli, C et al. (1995) Chemical signaling in ciliates. J Eukaryot Microbiol 42:208-12
Arfin, S M; Kendall, R L; Hall, L et al. (1995) Eukaryotic methionyl aminopeptidases: two classes of cobalt-dependent enzymes. Proc Natl Acad Sci U S A 92:7714-8
Bradshaw, R A; Stewart, A E (1994) Analysis of protein modifications: recent advances in detection, characterization and mapping. Curr Opin Biotechnol 5:85-93
Stewart, A E; Arfin, S M; Bradshaw, R A (1994) Protein NH2-terminal asparagine deamidase. Isolation and characterization of a new enzyme. J Biol Chem 269:23509-17
Mronga, S; Luginbuhl, P; Brown, L R et al. (1994) The NMR solution structure of the pheromone Er-1 from the ciliated protozoan Euplotes raikovi. Protein Sci 3:1527-36

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