This proposal presents a comprehensive account of an experimental plan aimed at exploring the mechanism of enzyme mediated phosphoryl group transfer. The long range goal of this project is to determine how catalysis of the transfer of a phosphoryl group from one metabolite to another in biological systems is effected. With the exception of the continued investigation of the mechanism of action of yeast inorganic pyrophosphatase that is planned, studies will focus on enzymes which catalyze the transfer of a phosphoryl group to and from carbon centers.
The specific aims of this proposal are: (1) the purification, characterization and mechanistic investigation of the novel Tetrahymena pyriformis F.C bond forming enzyme. PEP phosphomutase which catalyzes the isomerization reaction: PEP forms and is formed from phosphonopyruvate. (2) the determination of the structure, mechanism of action and origin of the Bacillus cereus P.C bond cleaving enzyme, phosphonoacetaldehyde phosphohydrolase which catalyzes the reaction: phosphonoacetaldehyde gives acetaldehyde + Pi. (3) The elucidation of the biosynthetic pathway leading to the novel amino acid, phosphonotyrosine in Actinomadura and isolation and characterization of the enzyme catalyzing the key P- C bond forming step in the pathway. (4) The purification and mechanistic study of two P-C bond cleaving enzymes in T. pyriformis phosphonopyruvate phosphohydrolase (which catalyzes to conversion of phosphonopyruvate to pyruvate plus Pi) and phosphonoacetaldehyde phosphonohydrolase. (5) Determination of the mechanism of action of the yeast enzyme, inorganic pyrophosphatase which, with the assistance of Mg2+, catalyzes the conversion of inorganic pyrophosphate to orthophosphate.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM028688-11
Application #
3275959
Study Section
Biochemistry Study Section (BIO)
Project Start
1981-02-01
Project End
1994-01-31
Budget Start
1991-02-01
Budget End
1992-01-31
Support Year
11
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Maryland College Park
Department
Type
Schools of Earth Sciences/Natur
DUNS #
City
College Park
State
MD
Country
United States
Zip Code
20742
Latham, John A; Ji, Tianyang; Matthews, Kaila et al. (2017) Catalytic Mechanism of the Hotdog-Fold Thioesterase PA1618 Revealed by X-ray Structure Determination of a Substrate-Bound Oxygen Ester Analogue Complex. Chembiochem 18:1935-1943
Wu, Rui; Latham, John A; Chen, Danqi et al. (2014) Structure and catalysis in the Escherichia coli hotdog-fold thioesterase paralogs YdiI and YbdB. Biochemistry 53:4788-805
Latham, John A; Chen, Danqi; Allen, Karen N et al. (2014) Divergence of substrate specificity and function in the Escherichia coli hotdog-fold thioesterase paralogs YdiI and YbdB. Biochemistry 53:4775-87
Wang, Min; Song, Feng; Wu, Rui et al. (2013) Co-evolution of HAD phosphatase and hotdog-fold thioesterase domain function in the menaquinone-pathway fusion proteins BF1314 and PG1653. FEBS Lett 587:2851-9
Chen, Danqi; Latham, John; Zhao, Hong et al. (2012) Human brown fat inducible thioesterase variant 2 cellular localization and catalytic function. Biochemistry 51:6990-9
Zhuang, Zhihao; Latham, John; Song, Feng et al. (2012) Investigation of the catalytic mechanism of the hotdog-fold enzyme superfamily Pseudomonas sp. strain CBS3 4-hydroxybenzoyl-CoA thioesterase. Biochemistry 51:786-94
Song, Feng; Thoden, James B; Zhuang, Zhihao et al. (2012) The catalytic mechanism of the hotdog-fold enzyme superfamily 4-hydroxybenzoyl-CoA thioesterase from Arthrobacter sp. strain SU. Biochemistry 51:7000-16
Zhao, Hong; Lim, Kap; Choudry, Anthony et al. (2012) Correlation of structure and function in the human hotdog-fold enzyme hTHEM4. Biochemistry 51:6490-2
Kim, Alexander; Benning, Matthew M; OkLee, Sang et al. (2011) Divergence of chemical function in the alkaline phosphatase superfamily: structure and mechanism of the P-C bond cleaving enzyme phosphonoacetate hydrolase. Biochemistry 50:3481-94
Chen, Danqi; Wu, Rui; Bryan, Tyrel L et al. (2009) In vitro kinetic analysis of substrate specificity in enterobactin biosynthetic lower pathway enzymes provides insight into the biochemical function of the hot dog-fold thioesterase EntH. Biochemistry 48:511-3

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