4.7 Article

Biochemical and molecular characterization of stress-induced β-carbonic anhydrase from a C4 plant, Pennisetum glaucum

期刊

JOURNAL OF PLANT PHYSIOLOGY
卷 168, 期 6, 页码 601-610

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ELSEVIER GMBH
DOI: 10.1016/j.jplph.2010.08.007

关键词

Abiotic stress; Carbonic anhydrase; cDNA library; Esterase activity; Immunolocalization; Pearl millet

资金

  1. Department of Biotechnology (Government of India)

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Genes encoding for many beta-carbonic anhydrases and their functions in various developmental processes are well established in lower plants, however, similar studies are limited in higher plants. We report the cloning and characterization of cDNA encoding for a beta-carbonic anhydrase (PgCA) from Pennisetum glaucum, a C-4 Crop plant. cDNA encoding 249 amino acids and its deduced amino acid sequence analysis revealed that is related to other plant beta-CA family members with an over all conserved architecture of a typical beta-CA protein. Phylogenetic analysis revealed that PgCA is evolutionarily very close to chloroplast beta-CA isoform. Signal sequence predicting programs identify a N-terminus putative chloroplast targeting sequence. Heterologous Escherichia coli expression system was utilized to overexpress recombinant PgCA, which showed high thermostability, an alkaline pH optima and dual activity with both reversible CO2 hydration and esterase activities. The beta-CAs studied so far possessed only CO2 hydration activity with no detectable esterase activity. Recombinant PgCA esterase activity is inhibited by standard CA inhibitors acetazolamide, methazolamide and azide. Subcellular immunostaining studies revealed a chloroplastic localization of PgCA protein. Expression of PgCA transcript is differentially up regulated in response to various abiotic stresses wherein its accumulation in Pennisetum leaves positively correlated with the intensity and duration of stress. Biochemical and transcript analyses suggest that PgCA may play a significant role in plant's adaptation to different abiotic stresses in addition to the previously recognized role of replenishing the CO2 supply within plant cells. (C) 2010 Elsevier GmbH. All rights reserved.

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