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脯氨酸代谢及其对植物与环境相互作用的影响。

Proline metabolism and its implications for plant-environment interaction.

作者信息

Verslues Paul E, Sharma Sandeep

机构信息

Institute of Plant and Microbial Biology, Academia Sinica, No. 128 Sec. 2 Academia Rd, Nankang Dist., Taipei, 11529, Taiwan.

出版信息

Arabidopsis Book. 2010;8:e0140. doi: 10.1199/tab.0140. Epub 2010 Nov 3.

Abstract

Proline has long been known to accumulate in plants experiencing water limitation and this has driven studies of proline as a beneficial solute allowing plants to increase cellular osmolarity during water limitation. Proline metabolism also has roles in redox buffering and energy transfer and is involved in plant pathogen interaction and programmed cell death. Some of these unique roles of proline depend on the properties of proline itself, whereas others depend on the "proline cycle" of coordinated proline synthesis in the chloroplast and cytoplasm with proline catabolism in the mitochondria. The regulatory mechanisms controlling proline metabolism, intercellular and intracellular transport and connections of proline to other metabolic pathways are all important to the in vivo functions of proline metabolism. Connections of proline metabolism to the oxidative pentose phosphate pathway and glutamate-glutamine metabolism are of particular interest. The N-acetyl glutamate pathway can also produce ornithine and, potentially, proline but its role and activity are unclear. Use of model systems such as Arabidopsis thaliana to better understand both these long studied and newly emerging functions of proline can help in the design of next-generation experiments testing whether proline metabolism is a promising metabolic engineering target for improving stress resistance of economically important plants.

摘要

长期以来,人们已知脯氨酸会在经历水分胁迫的植物中积累,这促使人们对脯氨酸作为一种有益溶质进行研究,使植物在水分胁迫期间能够提高细胞渗透压。脯氨酸代谢在氧化还原缓冲和能量转移中也发挥作用,并参与植物与病原体的相互作用以及程序性细胞死亡。脯氨酸的这些独特作用有些取决于脯氨酸本身的特性,而其他作用则取决于叶绿体和细胞质中脯氨酸合成与线粒体中脯氨酸分解代谢相协调的“脯氨酸循环”。控制脯氨酸代谢、细胞间和细胞内运输以及脯氨酸与其他代谢途径联系的调节机制,对于脯氨酸代谢的体内功能都很重要。脯氨酸代谢与氧化戊糖磷酸途径以及谷氨酸 - 谷氨酰胺代谢的联系尤其令人关注。N - 乙酰谷氨酸途径也可以产生鸟氨酸,并有可能产生脯氨酸,但其作用和活性尚不清楚。利用拟南芥等模型系统来更好地理解脯氨酸这些长期研究的功能以及新出现的功能,有助于设计下一代实验,以测试脯氨酸代谢是否是改善经济作物抗逆性的一个有前景的代谢工程靶点。

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