Literature DB >> 19309459

Characterization of selenocysteine methyltransferases from Astragalus species with contrasting selenium accumulation capacity.

Thomas G Sors1, Catherine P Martin, David E Salt.   

Abstract

A group of selenium (Se)-hyperaccumulating species belonging to the genus Astragalus are known for their capacity to accumulate up to 0.6% of their foliar dry weight as Se, with most of this Se being in the form of Se-methylselenocysteine (MeSeCys). Here, we report the isolation and molecular characterization of the gene that encodes a putative selenocysteine methyltransferase (SMT) enzyme from the non-accumulator Astragalus drummondii and biochemically compare it with an authentic SMT enzyme from the Se-hyperaccumulator Astragalus bisulcatus, a related species that lives within the same native habitat. The non-accumulator enzyme (AdSMT) shows a high degree of homology with the accumulator enzyme (AbSMT) but lacks the selenocysteine methyltransferase activity in vitro, explaining why little or no detectable levels of MeSeCys accumulation are observed in the non-accumulator plant. The insertion of mutations on the coding region of the non-accumulator AdSMT enzyme to better resemble enzymes that originate from Se accumulator species results in increased selenocysteine methyltransferase activity, but these mutations were not sufficient to fully gain the activity observed in the AbSMT accumulator enzyme. We demonstrate that SMT is localized predominantly within the chloroplast in Astragalus, the principal site of Se assimilation in plants. By using a site-directed mutagenesis approach, we show that an Ala to Thr amino acid mutation at the predicted active site of AbSMT results in a new enzymatic capacity to methylate homocysteine. The mutated AbSMT enzyme exhibited a sixfold higher capacity to methylate selenocysteine, thereby establishing the evolutionary relationship of SMT and homocysteine methyltransferase enzymes in plants.

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Year:  2009        PMID: 19309459     DOI: 10.1111/j.1365-313X.2009.03855.x

Source DB:  PubMed          Journal:  Plant J        ISSN: 0960-7412            Impact factor:   6.417


  9 in total

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3.  A comparison of sulfate and selenium accumulation in relation to the expression of sulfate transporter genes in Astragalus species.

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4.  Molecular mechanisms of selenium tolerance and hyperaccumulation in Stanleya pinnata.

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Journal:  Plant Physiol       Date:  2010-05-24       Impact factor: 8.340

5.  Transcriptomic analysis of grain amaranth (Amaranthus hypochondriacus) using 454 pyrosequencing: comparison with A. tuberculatus, expression profiling in stems and in response to biotic and abiotic stress.

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Review 6.  Selenium Toxicity in Plants and Environment: Biogeochemistry and Remediation Possibilities.

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Review 7.  Seleno-Amino Acids in Vegetables: A Review of Their Forms and Metabolism.

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8.  Effectiveness of Foliar Biofortification of Carrot With Iodine and Selenium in a Field Condition.

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Journal:  Front Plant Sci       Date:  2021-05-21       Impact factor: 5.753

9.  Integration analysis of PacBio SMRT- and Illumina RNA-seq reveals candidate genes and pathway involved in selenium metabolism in hyperaccumulator Cardamine violifolia.

Authors:  Shen Rao; Tian Yu; Xin Cong; Feng Xu; Xiaozhuo Lai; Weiwei Zhang; Yongling Liao; Shuiyuan Cheng
Journal:  BMC Plant Biol       Date:  2020-10-27       Impact factor: 4.215

  9 in total

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