4.7 Article

Molecular and biochemical characterization of mannitol-1-phosphate dehydrogenase from the model brown alga Ectocarpus sp.

期刊

PHYTOCHEMISTRY
卷 117, 期 -, 页码 509-520

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PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.phytochem.2015.07.015

关键词

Brown algae; Ectocarpus sp.; Mannitol cycle; Mannitol-1-phosphate dehydrogenase; Recombinant protein

资金

  1. IDEALG Investissements d'avenir, Biotechnologies-Bioresources [ANR-10-BTBR-02]

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The sugar alcohol mannitol is important in the food, pharmaceutical, medical and chemical industries. It is one of the most commonly occurring polyols in nature, with the exception of Archaea and animals. It has a range of physiological roles, including as carbon storage, compatible solute, and osmolyte. Mannitol is present in large amounts in brown algae, where its synthesis involved two steps: a mannitol-1-phosphate dehydrogenase (M1PDH) catalyzes a reversible reaction between fructose-6-phosphate (F6P) and mannitol-1-phosphate (M1P) (EC 1.1.1.17), and a mannitol-l-phosphatase hydrolyzes M1P to mannitol (EC 3.1.3.22). Analysis of the model brown alga Ectocarpus sp. genome provided three candidate genes for M1PDH activities. We report here the sequence analysis of Ectocarpus M1PDH5 (E5M1PDH5), and the biochemical characterization of the recombinant catalytic domain of EsM1PDH1 (E5M1PDH1cat). Ectocarpus M1PDH5 are representatives of a new type of modular M1PDH5 among the polyol-specific long-chain dehydrogenases/reductases (PSLDRs). The N-terminal domain of EsM1PDH1 was not necessary for enzymatic activity. Determination of kinetic parameters indicated that EsM1PDH1cat displayed higher catalytic efficiency for F6P reduction compared to M1P oxidation. Both activities were influenced by NaCl concentration and inhibited by the thioreactive compound pHMB. These observations were completed by measurement of endogenous M1PDH activity and of EsM1PDH gene expression during one diurnal cycle. No significant changes in enzyme activity were monitored between day and night, although transcription of two out of three genes was altered, suggesting different levels of regulation for this key metabolic pathway in brown algal physiology. (C) 2015 Elsevier Ltd. All rights reserved.

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