O-Methyltransferases Involved in the Biosynthesis of Volatile Phenolic Derivatives in Rose Petals

Author:

Lavid Noa1,Wang Jihong2,Shalit Moshe1,Guterman Inna3,Bar Einat1,Beuerle Till2,Menda Naama3,Shafir Sharoni3,Zamir Dani3,Adam Zach3,Vainstein Alexander3,Weiss David3,Pichersky Eran2,Lewinsohn Efraim1

Affiliation:

1. Vegetable Crops, Newe Ya'ar Research Center, Agricultural Research Organization, P.O. Box 1021, Ramat Yishay, 30095, Israel (N.L., M.S., E.B., E.L.);

2. Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan 48109–1048 (J.W., T.B., E.P.); and

3. Faculty of Agricultural, Food, and Environmental Quality Science, The Hebrew University of Jerusalem, Rehovot, Israel (I.G., N.M., S.S., D.Z., Z.A., A.V., D.W.)

Abstract

Abstract Rose (Rosa hybrida) flowers produce and emit a diverse array of volatiles, characteristic to their unique scent. One of the most prominent compounds in the floral volatiles of many rose varieties is the methoxylated phenolic derivative 3,5-dimethoxytoluene (orcinol dimethyl ether). Cell-free extracts derived from developing rose petals displayedO-methyltransferase (OMT) activities toward several phenolic substrates, including 3,5-dihydroxytoluene (orcinol), 3-methoxy,5-hydroxytoluene (orcinol monomethyl ether), 1-methoxy, 2-hydroxy benezene (guaiacol), and eugenol. The activity was most prominent in rose cv Golden Gate, a variety that produces relatively high levels of orcinol dimethyl ether, as compared with rose cv Fragrant Cloud, an otherwise scented variety but which emits almost no orcinol dimethyl ether. Using a functional genomics approach, we have identified and characterized two closely related cDNAs from a rose petal library that each encode a protein capable of methylating the penultimate and immediate precursors (orcinol and orcinol monomethyl ether, respectively) to give the final orcinol dimethyl ether product. The enzymes, designated orcinol OMTs (OOMT1 and OOMT2), are closely related to other plant methyltransferases whose substrates range from isoflavones to phenylpropenes. The peak in the levels ofOOMT1 and OOMT2 transcripts in the flowers coincides with peak OMT activity and with the emission of orcinol dimethyl ether.

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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