Evidence map›Paper›PMID 41933404›Full record

ArticleFungal biology and biotechnology2026

The plant endophytic fungus Cyanodermella asteris produces the phytohormone jasmonic acid.

Linda Jahn, Angela Sester, Elena Theresa Domaschke, Tobias A M Gulder, Jutta Ludwig-Müller

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Article in Fungal biology and biotechnology, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.

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1 · What the graph read from it

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4 · The record

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5 · Who and what money

Authors and funding

5 authors.

Linda JahnPlant Physiology, Faculty of Biology, TU Dresden, 01062, Dresden, Germany.
Angela SesterFaculty of Chemistry, Chair of Technical Biochemistry, TU Dresden, 01062, Dresden, Germany.
Elena Theresa DomaschkePlant Physiology, Faculty of Biology, TU Dresden, 01062, Dresden, Germany.
Tobias A M GulderFaculty of Chemistry, Chair of Technical Biochemistry, TU Dresden, 01062, Dresden, Germany.
Jutta Ludwig-MüllerPlant Physiology, Faculty of Biology, TU Dresden, 01062, Dresden, Germany. Jutta.Ludwig-Mueller@tu-dresden.de.

Funding

No grant is acknowledged in the PubMed record.

6 · The paper itself

Abstract

backgroundCyanodermella asteris is a fungal endophyte from Aster tataricus that produces plant hormones as well as a range of specialized metabolites. The aim of our study was to explore the potential of this endophytic fungus towards plant hormones besides the auxin indole-3-acetic acid which we recently identified.

resultsHere, we identified another hormone, jasmonic acid (JA), from culture medium extracts by LC-MS/MS and NMR. JA was also found in the hyphal fraction, but its de novo biosynthesis could not be stimulated by linolenic acid, a known precursor for JA biosynthesis in plants. The growth of C. asteris in media was not inhibited by JA. Only at high concentrations of 1 mM, an inhibition of biomass production was recorded. Putative genes encoding enzymes for JA biosynthesis were identified in the genome, and expression analyses showed an induction of one thioester hydrolase, possibly catalyzing saponification of JA-CoA to free JA. We also investigated its interaction with plant jasmonate biosynthesis and signaling mutants, aoc and jar, respectively, and found that the fungus can complement the JA-deficient phenotypes.

conclusionsFurther understanding of the biology of JA biosynthesis on C. asteris as well as its interactions with plants is needed to exploit its potential use as a producer of JA.

Indexed as

Arabidopsis thalianaCyanodermella asterisEndophyteJasmonic acidPlant stress response

Identifiers

PMID41933404
PMCPMC13063583

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