Plant cholesterol biosynthetic pathway overlaps with phytosterol metabolism

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作者
Prashant D. Sonawane
Jacob Pollier
Sayantan Panda
Jedrzej Szymanski
Hassan Massalha
Meital Yona
Tamar Unger
Sergey Malitsky
Philipp Arendt
Laurens Pauwels
Efrat Almekias-Siegl
Ilana Rogachev
Sagit Meir
Pablo D. Cárdenas
Athar Masri
Marina Petrikov
Hubert Schaller
Arthur A. Schaffer
Avinash Kamble
Ashok P. Giri
Alain Goossens
Asaph Aharoni
机构
[1] Weizmann Institute of Science,Department of Plant and Environmental Sciences
[2] Rehovot,Department of Plant Systems Biology
[3] VIB,Department of Plant Biotechnology and Bioinformatics
[4] B-9052 Gent,Department of Botany
[5] Ghent University,Department of Biochemistry and Microbiology
[6] B-9052 Gent,Department of Vegetable Research
[7] Savitribai Phule Pune University,Division of Biochemical Sciences
[8] Ganeshkhind,undefined
[9] Pune,undefined
[10] School of Computer Sciences and Sackler School of Medicine,undefined
[11] Tel Aviv University,undefined
[12] Tel-Aviv,undefined
[13] Israel Structural Proteomics Centre,undefined
[14] Weizmann Institute of Science,undefined
[15] Rehovot,undefined
[16] Ghent University,undefined
[17] B-9000 Gent,undefined
[18] VIB Medical Biotechnology Center,undefined
[19] B-9000 Gent,undefined
[20] ARO-Volcani Center,undefined
[21] Bet Dagan,undefined
[22] Institut de Biologie Moléculaire des Plantes du CNRS & Université de Strasbourg,undefined
[23] Institut de Botanique,undefined
[24] Strasbourg,undefined
[25] Plant Molecular Biology Unit,undefined
[26] Council of Scientific and Industrial Research–National Chemical Laboratory,undefined
[27] Pune 411008,undefined
[28] Maharashtra,undefined
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摘要
The amount of cholesterol made by many plants is not negligible. Whereas cholesterogenesis in animals was elucidated decades ago, the plant pathway has remained enigmatic. Among other roles, cholesterol is a key precursor for thousands of bioactive plant metabolites, including the well-known Solanum steroidal glycoalkaloids. Integrating tomato transcript and protein co-expression data revealed candidate genes putatively associated with cholesterol biosynthesis. A combination of functional assays including gene silencing, examination of recombinant enzyme activity and yeast mutant complementation suggests the cholesterol pathway comprises 12 enzymes acting in 10 steps. It appears that half of the cholesterogenesis-specific enzymes evolved through gene duplication and divergence from phytosterol biosynthetic enzymes, whereas others act reciprocally in both cholesterol and phytosterol metabolism. Our findings provide a unique example of nature's capacity to exploit existing protein folds and catalytic machineries from primary metabolism to assemble a new, multi-step metabolic pathway. Finally, the engineering of a ‘high-cholesterol’ model plant underscores the future value of our gene toolbox to produce high-value steroidal compounds via synthetic biology.
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