Publikationen - Molekulare Signalverarbeitung
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Journal / Verlag: BMC Evolutionary Biology
Journal / Verlag: J Plant Physiol
Journal / Verlag: Biochem. Soc. Trans
Autor Nach Häufigkeit alphabetisch sortiert: Jablonická, V
Autor Nach Häufigkeit alphabetisch sortiert: Obložinský, M
Autor Nach Häufigkeit alphabetisch sortiert: Heilmann, I
Autor Nach Häufigkeit alphabetisch sortiert: Savchenko, T
Autor Nach Häufigkeit alphabetisch sortiert: Heilmann, I.
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- Abel, S. (1)
- Heilmann, I. (1)
- Heilmann, M. (1)
- Jablonická, V. (1)
- Levy, M. (1)
- Lišková, D. (1)
- Obložinský, M. (1)
- Savchenko, T. (1)
- Vatehová, Z. (1)
- Ziegler, J. (1)
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Jablonická, V.; Ziegler, J.; Vatehová, Z.; Lišková, D.; Heilmann, I.; Obložinský, M.; Heilmann, M. Inhibition of phospholipases influences the metabolism of wound-induced benzylisoquinoline alkaloids in Papaver somniferum L. J Plant Physiol 223, 1-8, (2018) DOI: 10.1016/j.jplph.2018.01.007
Benzylisoquinoline alkaloids (BIAs) are important
secondary plant metabolites and include medicinally relevant drugs, such
as morphine or codeine. As the de novo synthesis of BIA backbones is
(still) unfeasible, to date the opium poppy plant Papaver somniferum L.
represents the main source of BIAs. The formation of BIAs is induced in
poppy plants by stress conditions, such as wounding or salt treatment;
however, the details about regulatory processes controlling BIA
formation in opium poppy are not well studied. Environmental stresses,
such as wounding or salinization, are transduced in plants by
phospholipid-based signaling pathways, which involve different classes
of phospholipases. Here we investigate whether pharmacological
inhibition of phospholipase A2 (PLA2, inhibited by aristolochic acid
(AA)) or phospholipase D (PLD; inhibited by 5-fluoro-2-indolyl
des-chlorohalopemide (FIPI)) in poppy plants influences wound-induced
BIA accumulation and the expression of key biosynthetic genes. We show
that inhibition of PLA2 results in increased morphinan biosynthesis
concomitant with reduced production of BIAs of the papaverine branch,
whereas inhibition of PLD results in increased production of BIAs of the
noscapine branch. The data suggest that phospholipid-dependent
signaling pathways contribute to the activation of morphine biosynthesis
at the expense of the production of other BIAs in poppy plants. A
better understanding of the effectors and the principles of regulation
of alkaloid biosynthesis might be the basis for the future genetic
modification of opium poppy to optimize BIA production.