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Trapping of Intermediates with Substrate Analog HBOCoA in the Polymerizations Catalyzed by Class III Polyhydroxybutyrate (PHB) Synthase from Allochromatium Vinosum

Overview
Journal ACS Chem Biol
Specialties Biochemistry
Biology
Date 2015 Feb 17
PMID 25686368
Citations 3
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Abstract

Polyhydroxybutyrate (PHB) synthases (PhaCs) catalyze the formation of biodegradable PHB polymers that are considered as an ideal alternative to petroleum-based plastics. To provide strong evidence for the preferred mechanistic model involving covalent and noncovalent intermediates, a substrate analog HBOCoA was synthesized chemoenzymatically. Substitution of sulfur in the native substrate HBCoA with an oxygen in HBOCoA enabled detection of (HB)nOCoA (n = 2-6) intermediates when the polymerization was catalyzed by wild-type (wt-)PhaECAv at 5.84 h(-1). This extremely slow rate is due to thermodynamically unfavorable steps that involve the formation of enzyme-bound PHB species (thioesters) from corresponding CoA oxoesters. Synthesized standards (HB)nOCoA (n = 2-3) were found to undergo both reacylation and hydrolysis catalyzed by the synthase. Distribution of the hydrolysis products highlights the importance of the penultimate ester group as previously suggested. Importantly, the reaction between primed synthase [(3)H]-sT-PhaECAv and HBOCoA yielded [(3)H]-sTet-O-CoA at a rate constant faster than 17.4 s(-1), which represents the first example that a substrate analog undergoes PHB chain elongation at a rate close to that of the native substrate (65.0 s(-1)). Therefore, for the first time with a wt-synthase, strong evidence was obtained to support our favored PHB chain elongation model.

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References
1.
Tsuge T, Saito Y, Narike M, Muneta K, Normi Y, Kikkawa Y . Mutation effects of a conserved alanine (Ala510) in type I polyhydroxyalkanoate synthase from Ralstonia eutropha on polyester biosynthesis. Macromol Biosci. 2004; 4(10):963-70. DOI: 10.1002/mabi.200400075. View

2.
Jia Y, Yuan W, Wodzinska J, Park C, Sinskey A, Stubbe J . Mechanistic studies on class I polyhydroxybutyrate (PHB) synthase from Ralstonia eutropha: class I and III synthases share a similar catalytic mechanism. Biochemistry. 2001; 40(4):1011-9. DOI: 10.1021/bi002219w. View

3.
Strauss E, Begley T . The selectivity for cysteine over serine in coenzyme A biosynthesis. Chembiochem. 2004; 6(2):284-6. DOI: 10.1002/cbic.200400340. View

4.
Leonardi R, Chohnan S, Zhang Y, Virga K, Lee R, Rock C . A pantothenate kinase from Staphylococcus aureus refractory to feedback regulation by coenzyme A. J Biol Chem. 2004; 280(5):3314-22. DOI: 10.1074/jbc.M411608200. View

5.
Normi Y, Hiraishi T, Taguchi S, Abe H, Sudesh K, Najimudin N . Characterization and properties of G4X mutants of Ralstonia eutropha PHA synthase for poly(3-hydroxybutyrate) biosynthesis in Escherichia coli. Macromol Biosci. 2005; 5(3):197-206. DOI: 10.1002/mabi.200400181. View