Literature DB >> 17173631

A novel thiolase-reductase gene fusion promotes the production of polyhydroxybutyrate in Arabidopsis.

Lauralynn Kourtz1, Kevin Dillon, Sean Daughtry, Lara L Madison, Oliver Peoples, Kristi D Snell.   

Abstract

The production of polyhydroxybutyrate (PHB) involves a multigene pathway consisting of thiolase, reductase and synthase genes. In order to simplify this pathway for plant-based expression, a library of thiolase and reductase gene fusions was generated by randomly ligating a short core linker DNA sequence to create in-frame fusions between the thiolase and reductase genes. The resulting fusion constructs were screened for PHB formation in Escherichia coli. This screen identified a polymer-producing candidate in which the thiolase and reductase genes were fused via a 26-amino-acid linker. This gene fusion, designated phaA-phaB, represents an active gene fusion of two homotetrameric enzymes. Expression of phaA-phaB in E. coli and Arabidopsis yielded a fusion protein observed to be the expected size by Western blotting techniques. The fusion protein exhibited thiolase and reductase enzyme activities in crude extracts of recombinant E. coli that were three-fold and nine-fold less than those of the individually expressed thiolase and reductase enzymes, respectively. When targeted to the plastid, and coexpressed with a plastid-targeted polyhydroxyalkanoate (PHA) synthase, the fusion protein enabled PHB formation in Arabidopsis, yielding roughly half the PHB formed in plants expressing individual thiolase, reductase and synthase enzymes. This work represents a first step towards simplifying the expression of the PHB biosynthetic pathway in plants.

Entities:  

Year:  2005        PMID: 17173631     DOI: 10.1111/j.1467-7652.2005.00136.x

Source DB:  PubMed          Journal:  Plant Biotechnol J        ISSN: 1467-7644            Impact factor:   9.803


  7 in total

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3.  Chemically inducible expression of the PHB biosynthetic pathway in Arabidopsis.

Authors:  Lauralynn Kourtz; Kevin Dillon; Sean Daughtry; Oliver P Peoples; Kristi D Snell
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5.  Engineering isoflavone metabolism with an artificial bifunctional enzyme.

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6.  Efficient production of oxidized terpenoids via engineering fusion proteins of terpene synthase and cytochrome P450.

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7.  Factors affecting polyhydroxybutyrate accumulation in mesophyll cells of sugarcane and switchgrass.

Authors:  Richard B McQualter; Maria N Somleva; Leigh K Gebbie; Xuemei Li; Lars A Petrasovits; Kristi D Snell; Lars K Nielsen; Stevens M Brumbley
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  7 in total

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