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硝酸盐吸收影响细胞壁合成与塑造。

Nitrate Uptake Affects Cell Wall Synthesis and Modeling.

作者信息

Landi Simone, Esposito Sergio

机构信息

Dipartimento di Biologia, Università degli Studi di Napoli Federico II, Complesso Universitario di Monte Sant'AngeloNapoli, Italy.

出版信息

Front Plant Sci. 2017 Aug 8;8:1376. doi: 10.3389/fpls.2017.01376. eCollection 2017.

DOI:10.3389/fpls.2017.01376
PMID:28848580
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5550703/
Abstract

Nowadays, the relationship(s) about N assimilation and cell wall remodeling in plants remains generally unclear. Enzymes involved in cell wall synthesis/modification, and nitrogen transporters play a critical role in plant growth, differentiation, and response to external stimuli. In this review, a co-expression analysis of nitrate and ammonium transporters of was performed in order to explore the functional connection of these proteins with cell-wall related enzymes. This approach highlighted a strict relationship between inorganic nitrogen transporters and cell wall formation, identifying a number of co-expressed remodeling enzymes. The enzymes involved in pectin and xyloglucan synthesis resulted particularly co-regulated together with nitrate carriers, suggesting a connection between nitrate assimilation and cell wall growth regulation. Major Facilitator Carriers, and one chloride channel, are similarly co-expressed with pectin lyase, pectinacetylesterase, and cellulose synthase. Contrarily, ammonium transporters show little or no connection with those genes involved in cell wall synthesis. Different aspects related to plant development, embryogenesis, and abiotic stress response will be discussed, given the importance in plant growth of cell wall synthesis and nitrate uptake. Intriguingly, the improvement of abiotic stress tolerance in crops concerns both these processes indicating the importance in sensing the environmental constraints and mediating a response. These evaluations could help to identify candidate genes for breeding purposes.

摘要

如今,植物中氮同化与细胞壁重塑之间的关系总体上仍不明确。参与细胞壁合成/修饰的酶以及氮转运蛋白在植物生长、分化和对外部刺激的反应中起着关键作用。在本综述中,对[具体植物]的硝酸盐和铵转运蛋白进行了共表达分析,以探索这些蛋白质与细胞壁相关酶之间的功能联系。这种方法突出了无机氮转运蛋白与细胞壁形成之间的紧密关系,鉴定出了一些共表达的重塑酶。参与果胶和木葡聚糖合成的酶与硝酸盐载体特别共同受到调控,这表明硝酸盐同化与细胞壁生长调控之间存在联系。主要协助转运蛋白和一个氯离子通道同样与果胶裂解酶、果胶乙酰酯酶和纤维素合酶共表达。相反,铵转运蛋白与参与细胞壁合成的那些基因几乎没有联系。鉴于细胞壁合成和硝酸盐吸收在植物生长中的重要性,将讨论与植物发育、胚胎发生和非生物胁迫反应相关的不同方面。有趣地是,作物非生物胁迫耐受性的提高涉及这两个过程,这表明在感知环境限制和介导反应方面的重要性。这些评估有助于确定用于育种目的的候选基因。

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