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柱状栓孔菌 HcPT2 Pi 转运蛋白在外生菌根共生中起关键作用。

The Hebeloma cylindrosporum HcPT2 Pi transporter plays a key role in ectomycorrhizal symbiosis.

机构信息

Eco & Sols, Université de Montpellier, CIRAD, INRA, IRD, Montpellier SupAgro, 34060, Montpellier, France.

Department of Biology and Microbiology, South Dakota State University, Brookings, SD, 57007, USA.

出版信息

New Phytol. 2018 Dec;220(4):1185-1199. doi: 10.1111/nph.15281. Epub 2018 Jun 26.

Abstract

Through a mutualistic relationship with woody plant roots, ectomycorrhizal fungi provide growth-limiting nutrients, including inorganic phosphate (Pi), to their host. Reciprocal trades occur at the Hartig net, which is the symbiotic interface of ectomycorrhizas where the two partners are symplasmically isolated. Fungal Pi must be exported to the symbiotic interface, but the proteins facilitating this transfer are unknown. In the present study, we combined transcriptomic, microscopy, whole plant physiology, X-ray fluorescence mapping, P labeling and fungal genetic approaches to unravel the role of HcPT2, a fungal Pi transporter, during the Hebeloma cylindrosporum-Pinus pinaster ectomycorrhizal association. We localized HcPT2 in the extra-radical hyphae and the Hartig net and demonstrated its determinant role for both the establishment of ectomycorrhizas and Pi allocation towards P. pinaster. We showed that the host plant induces HcPT2 expression and that the artificial overexpression of HcPT2 is sufficient to significantly enhance Pi export towards the central cylinder. Together, our results reveal that HcPT2 plays an important role in ectomycorrhizal symbiosis, affecting both Pi influx in the mycelium and efflux towards roots under the control of P. pinaster.

摘要

通过与木本植物根系的互利关系,外生菌根真菌为其宿主提供生长受限的养分,包括无机磷酸盐 (Pi)。互惠贸易发生在 Hartig 网,这是外生菌根的共生界面,两个伙伴在那里被共生地隔离。真菌 Pi 必须被运送到共生界面,但促进这种转移的蛋白质尚不清楚。在本研究中,我们结合了转录组学、显微镜、全植物生理学、X 射线荧光映射、 P 标记和真菌遗传方法,以揭示真菌 Pi 转运蛋白 HcPT2 在 Hebeloma cylindrosporum-Pinus pinaster 外生菌根共生中的作用。我们将 HcPT2 定位于外生菌丝和 Hartig 网中,并证明了它对建立外生菌根和将 Pi 分配给 Pinus pinaster 都有决定性作用。我们表明,宿主植物诱导 HcPT2 的表达,而 HcPT2 的人工过表达足以显著增强 Pi 向中央柱的外排。总之,我们的结果表明 HcPT2 在外生菌根共生中起着重要作用,影响菌丝中 Pi 的流入和在 P. pinaster 控制下向根部的流出。

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