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MtCOPT2 是一种铜转运蛋白,在蒺藜苜蓿菌根根中特异性表达。

MtCOPT2 is a Cu transporter specifically expressed in Medicago truncatula mycorrhizal roots.

机构信息

Centro de Biotecnología y Genómica de Plantas (UPM-INIA), Universidad Politécnica de Madrid, 28223, Pozuelo de Alarcón (Madrid), Spain.

Escuela Técnica Superior de Ingeniería Agronómica, Alimentaria y de Biosistemas, Universidad Politécnica de Madrid, 28040, Madrid, Spain.

出版信息

Mycorrhiza. 2020 Nov;30(6):781-788. doi: 10.1007/s00572-020-00987-3. Epub 2020 Sep 10.

Abstract

Arbuscular mycorrhizal fungi are critical participants in plant nutrition in natural ecosystems and in sustainable agriculture. A large proportion of the phosphorus, nitrogen, sulfur, and transition metal elements that the host plant requires are obtained from the soil by the fungal mycelium and released at the arbuscules in exchange for photosynthates. While many of the plant transporters responsible for obtaining macronutrients at the periarbuscular space have been characterized, the identities of those mediating transition metal uptake remain unknown. In this work, MtCOPT2 has been identified as the only member of the copper transporter family COPT in the model legume Medicago truncatula to be specifically expressed in mycorrhizal roots. Fusing a C-terminal GFP tag to MtCOPT2 expressed under its own promoter showed a distribution pattern that corresponds with arbuscule distribution in the roots. When expressed in tobacco leaves, MtCOPT2-GFP co-localizes with a plasma membrane marker. MtCOPT2 is intimately related to the rhizobial nodule-specific MtCOPT1, which is suggestive of a shared evolutionary lineage that links transition metal nutrition in the two main root endosymbioses in legumes.

摘要

丛枝菌根真菌是自然生态系统和可持续农业中植物营养的重要参与者。宿主植物所需的大量磷、氮、硫和过渡金属元素都是由真菌菌丝从土壤中获得,并在丛枝中释放,以换取光合作用产物。虽然已经鉴定出许多负责在丛枝周空间获取大量营养素的植物转运蛋白,但介导过渡金属吸收的那些转运蛋白的身份仍然未知。在这项工作中,已经确定 MtCOPT2 是模式豆科植物蒺藜苜蓿中铜转运蛋白家族 COPT 的唯一成员,它在菌根根中特异性表达。将 MtCOPT2 在其自身启动子下表达的 C 末端 GFP 标签融合显示出与根中丛枝分布相对应的分布模式。当在烟草叶片中表达时,MtCOPT2-GFP 与质膜标记共定位。MtCOPT2 与根瘤菌结节特异性的 MtCOPT1 密切相关,这表明在豆科植物的两个主要根共生体中的过渡金属营养方面存在共同的进化谱系。

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