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植物养分转运蛋白基因在兰花菌根中的细胞特异性表达。

Cell-specific expression of plant nutrient transporter genes in orchid mycorrhizae.

作者信息

Fochi Valeria, Falla Nicole, Girlanda Mariangela, Perotto Silvia, Balestrini Raffaella

机构信息

Dipartimento di Scienze della Vita e Biologia dei Sistemi, Università degli Studi di Torino, Viale Mattioli, 25, 10125 Torino, Italy; CNR-Istituto per la Protezione Sostenibile delle Piante (IPSP), Viale Mattioli, 25, 10125 Torino, Italy.

Dipartimento di Scienze della Vita e Biologia dei Sistemi, Università degli Studi di Torino, Viale Mattioli, 25, 10125 Torino, Italy.

出版信息

Plant Sci. 2017 Oct;263:39-45. doi: 10.1016/j.plantsci.2017.06.015. Epub 2017 Jul 11.

DOI:10.1016/j.plantsci.2017.06.015
PMID:28818382
Abstract

Orchid mycorrhizal protocorms and roots are heterogeneous structures composed of different plant cell-types, where cells colonized by intracellular fungal coils (the pelotons) are close to non-colonized plant cells. Moreover, the fungal coils undergo rapid turnover inside the colonized cells, so that plant cells containing coils at different developmental stages can be observed in the same tissue section. Here, we have investigated by laser microdissection (LMD) the localization of specific plant gene transcripts in different cell-type populations collected from mycorrhizal protocorms and roots of the Mediterranean orchid Serapias vomeracea colonized by Tulasnella calospora. RNAs extracted from the different cell-type populations have been used to study plant gene expression, focusing on genes potentially involved in N uptake and transport and previously identified as up-regulated in symbiotic protocorms. Results clearly showed that some plant N transporters are differentially expressed in cells containing fungal coils at different developmental stages, as well as in non-colonized cells, and allowed the identification of new functional markers associated to coil-containing cells.

摘要

兰花菌根原球茎和根是由不同植物细胞类型组成的异质结构,其中被细胞内真菌线圈(菌丝团)定殖的细胞靠近未被定殖的植物细胞。此外,真菌线圈在被定殖的细胞内快速更新,因此在同一组织切片中可以观察到处于不同发育阶段含有线圈的植物细胞。在此,我们通过激光显微切割(LMD)研究了从被卡洛氏土赤壳菌定殖的地中海兰花锯齿舌唇兰的菌根原球茎和根中收集的不同细胞类型群体中特定植物基因转录本的定位。从不同细胞类型群体中提取的RNA已用于研究植物基因表达,重点关注可能参与氮吸收和运输且先前已确定在共生原球茎中上调的基因。结果清楚地表明,一些植物氮转运蛋白在处于不同发育阶段含有真菌线圈的细胞以及未被定殖的细胞中差异表达,并有助于鉴定与含线圈细胞相关的新功能标记。

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