Isayenkov Stanislav, Mrosk Cornelia, Stenzel Irene, Strack Dieter, Hause Bettina
Department of Secondary Metabolism , Leibniz Institute of Plant Biochemistry, D-06120 Halle , Germany.
Plant Physiol. 2005 Nov;139(3):1401-10. doi: 10.1104/pp.105.069054. Epub 2005 Oct 21.
During the symbiotic interaction between Medicago truncatula and the arbuscular mycorrhizal (AM) fungus Glomus intraradices, an endogenous increase in jasmonic acid (JA) occurs. Two full-length cDNAs coding for the JA-biosynthetic enzyme allene oxide cyclase (AOC) from M. truncatula, designated as MtAOC1 and MtAOC2, were cloned and characterized. The AOC protein was localized in plastids and found to occur constitutively in all vascular tissues of M. truncatula. In leaves and roots, MtAOCs are expressed upon JA application. Enhanced expression was also observed during mycorrhization with G. intraradices. A partial suppression of MtAOC expression was achieved in roots following transformation with Agrobacterium rhizogenes harboring the MtAOC1 cDNA in the antisense direction under control of the cauliflower mosaic virus 35S promoter. In comparison to samples transformed with 35SuidA, roots with suppressed MtAOC1 expression exhibited lower JA levels and a remarkable delay in the process of colonization with G. intraradices. Both the mycorrhization rate, quantified by fungal rRNA, and the arbuscule formation, analyzed by the expression level of the AM-specific gene MtPT4, were affected. Staining of fungal material in roots with suppressed MtAOC1 revealed a decreased number of arbuscules, but these did not exhibit an altered structure. Our results indicate a crucial role for JA in the establishment of AM symbiosis.
在蒺藜苜蓿与丛枝菌根(AM)真菌根内球囊霉的共生互作过程中,茉莉酸(JA)的内源水平会升高。从蒺藜苜蓿中克隆并鉴定了两个编码JA生物合成酶丙二烯氧化物环化酶(AOC)的全长cDNA,分别命名为MtAOC1和MtAOC2。AOC蛋白定位于质体中,且在蒺藜苜蓿的所有维管组织中组成性表达。在叶片和根中,施加JA后MtAOCs会表达。在用根内球囊霉进行菌根共生过程中也观察到表达增强。用携带反义方向的MtAOC1 cDNA的发根农杆菌转化后,根中MtAOC的表达受到部分抑制。与用35SuidA转化的样品相比,MtAOC1表达受抑制的根中JA水平较低,并且在被根内球囊霉定殖的过程中出现显著延迟。通过真菌rRNA定量的菌根定殖率以及通过AM特异性基因MtPT4的表达水平分析的丛枝形成均受到影响。对MtAOC1表达受抑制的根中的真菌材料进行染色显示丛枝数量减少,但这些丛枝的结构未发生改变。我们的结果表明JA在AM共生建立中起关键作用。