Heteroconium chaetospira induces resistance to clubroot via upregulation of host genes involved in jasmonic acid, ethylene, and auxin biosynthesis

PLoS One. 2014 Apr 8;9(4):e94144. doi: 10.1371/journal.pone.0094144. eCollection 2014.

Abstract

An endophytic fungus, Heteroconium chaetospira isolate BC2HB1 (Hc), suppressed clubroot (Plasmodiophora brassicae -Pb) on canola in growth-cabinet trials. Confocal microscopy demonstrated that Hc penetrated canola roots and colonized cortical tissues. Based on qPCR analysis, the amount of Hc DNA found in canola roots at 14 days after treatment was negatively correlated (r = 0.92, P<0.001) with the severity of clubroot at 5 weeks after treatment at a low (2×10(5) spores pot(-1)) but not high (2×10(5) spores pot(-1)) dose of pathogen inoculum. Transcript levels of nine B. napus (Bn) genes in roots treated with Hc plus Pb, Pb alone and a nontreated control were analyzed using qPCR supplemented with biochemical analysis for the activity of phenylalanine ammonia lyases (PAL). These genes encode enzymes involved in several biosynthetic pathways related potentially to plant defence. Hc plus Pb increased the activity of PAL but not that of the other two genes (BnCCR and BnOPCL) involved also in phenylpropanoid biosynthesis, relative to Pb inoculation alone. In contrast, expression of several genes involved in the jasmonic acid (BnOPR2), ethylene (BnACO), auxin (BnAAO1), and PR-2 protein (BnPR-2) biosynthesis were upregulated by 63, 48, 3, and 3 fold, respectively, by Hc plus Pb over Pb alone. This indicates that these genes may be involved in inducing resistance in canola by Hc against clubroot. The upregulation of BnAAO1 appears to be related to both pathogenesis of clubroot and induced defence mechanisms in canola roots. This is the first report on regulation of specific host genes involved in induced plant resistance by a non-mycorrhizal endophyte.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Brassica rapa / genetics
  • Brassica rapa / parasitology
  • Cyclopentanes / metabolism*
  • Ethylenes / biosynthesis*
  • Indoleacetic Acids / metabolism*
  • Mycorrhizae / genetics
  • Oxylipins / metabolism*
  • Plant Diseases / genetics
  • Plant Diseases / parasitology*
  • Plasmodiophorida*
  • Protozoan Infections / genetics*
  • Transcriptional Activation
  • Up-Regulation*

Substances

  • Cyclopentanes
  • Ethylenes
  • Indoleacetic Acids
  • Oxylipins
  • jasmonic acid
  • ethylene

Grants and funding

Canola Council of Canada (http://www.canolacouncil.org/)/SaskCanola (http://www.saskcanola.com)(CARP 2008-16) and Saskatchewan Agriculture Development Fund (http://www.agriculture.gov.sk.ca/ADF) (Project 20090359) provided partial funding support to this research. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.