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  • Integrated proteomics and metabolomics of Arabidopsis acclimation to gene-dosage dependent perturbation of isopropylmalate dehydrogenases.

Integrated proteomics and metabolomics of Arabidopsis acclimation to gene-dosage dependent perturbation of isopropylmalate dehydrogenases.

PloS one (2013-03-28)
Yan He, Shaojun Dai, Craig P Dufresne, Ning Zhu, Qiuying Pang, Sixue Chen
ABSTRACT

Maintaining metabolic homeostasis is critical for plant growth and development. Here we report proteome and metabolome changes when the metabolic homeostasis is perturbed due to gene-dosage dependent mutation of Arabidopsis isopropylmalate dehydrogenases (IPMDHs). By integrating complementary quantitative proteomics and metabolomics approaches, we discovered that gradual ablation of the oxidative decarboxylation step in leucine biosynthesis caused imbalance of amino acid homeostasis, redox changes and oxidative stress, increased protein synthesis, as well as a decline in photosynthesis, which led to rearrangement of central metabolism and growth retardation. Disruption of IPMDHs involved in aliphatic glucosinolate biosynthesis led to synchronized increase of both upstream and downstream biosynthetic enzymes, and concomitant repression of the degradation pathway, indicating metabolic regulatory mechanisms in controlling glucosinolate biosynthesis.

MATERIALS
Product Number
Brand
Product Description

Sigma-Aldrich
Malic Dehydrogenase from porcine heart, ≥600 units/mg protein (biuret), ammonium sulfate suspension
Sigma-Aldrich
Malic Dehydrogenase from porcine heart, buffered aqueous glycerol solution, 600-1000 units/mg protein (biuret)
Sigma-Aldrich
Malic Dehydrogenase from bovine heart, ammonium sulfate suspension, 2000-4000 units/mg protein (modified Warburg-Christian)