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PMID: 22104170 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

An engineered pathway for glyoxylate metabolism in tobacco plants aimed to avoid the release of ammonia in photorespiration.

BMC biotechnology ·Vol. 11 ·2011-11-21 ·Pages 111

Carvalho Jde F, Madgwick PJ, Powers SJ, Keys AJ, Lea PJ, Parry MA

Abstract

The photorespiratory nitrogen cycle in C₃ plants involves an extensive diversion of carbon and nitrogen away from the direct pathways of assimilation. The liberated ammonia is re-assimilated, but up to 25% of the carbon may be released into the atmosphere as CO₂. Because of the loss of CO₂ and high energy costs, there has been considerable interest in attempts to decrease the flux through the cycle in C₃ plants. Transgenic tobacco plants were generated that contained the genes gcl and hyi from E. coli encoding glyoxylate carboligase (EC 4.1.1.47) and hydroxypyruvate isomerase (EC 5.3.1.22) respectively, targeted to the peroxisomes. It was presumed that the two enzymes could work together and compete with the aminotransferases that convert glyoxylate to glycine, thus avoiding ammonia production in the photorespiratory nitrogen cycle. When grown in ambient air, but not in elevated CO₂, the transgenic tobacco lines had a distinctive phenotype of necrotic lesions on the leaves. Three of the six lines chosen for a detailed study contained single copies of the gcl gene, two contained single copies of both the gcl and hyi genes and one line contained multiple copies of both gcl and hyi genes. The gcl protein was detected in the five transgenic lines containing single copies of the gcl gene but hyi protein was not detected in any of the transgenic lines. The content of soluble amino acids including glycine and serine, was generally increased in the transgenic lines growing in air, when compared to the wild type. The content of soluble sugars, glucose, fructose and sucrose in the shoot was decreased in transgenic lines growing in air, consistent with decreased carbon assimilation. Tobacco plants have been generated that produce bacterial glyoxylate carboligase but not hydroxypyruvate isomerase. The transgenic plants exhibit a stress response when exposed to air, suggesting that some glyoxylate is diverted away from conversion to glycine in a deleterious short-circuit of the photorespiratory nitrogen cycle. This diversion in metabolism gave rise to increased concentrations of amino acids, in particular glutamine and asparagine in the leaves and a decrease of soluble sugars.

MeSH Terms
Aldose-Ketose Isomerases/genetics Ammonia/metabolism Asparagine/metabolism Carboxy-Lyases/genetics Cell Respiration/physiology Escherichia coli/genetics Escherichia coli Proteins/genetics Gene Transfer Techniques Genetic Engineering/methods Glutamine/metabolism Glyoxylates/metabolism Nitrogen Cycle/physiology Plant Leaves/metabolism Plants, Genetically Modified Tobacco/metabolism
Chemicals
Escherichia coli Proteins Glyoxylates Glutamine Asparagine Ammonia Carboxy-Lyases tartronate-semialdehyde synthase Aldose-Ketose Isomerases hyi protein, E coli glyoxylic acid
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Carvalho Josirley de F C
Embrapa Soybean, Londrina, Paraná, Brazil, Rodovia Carlos Strass, Distrito da Warta, Londrina PR, Brasil.
Madgwick Pippa J
Powers Stephen J
Keys Alfred J
Lea Peter J
Parry Martin A J
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Article Info
Journal
BMC biotechnology
Abbr.
BMC Biotechnol
ISSN
1472-6750
Published
2011-11-21
Epub
2011-00-21
Pages
111
Language
English
Region
England
NLM ID
101088663
PMCID
PMC3252329
Subset
IM
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