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叶绿体质体硫氧还蛋白 f 的过表达导致烟草叶片中淀粉的积累增加。

Overexpression of plastidial thioredoxin f leads to enhanced starch accumulation in tobacco leaves.

机构信息

Instituto de Agrobiotecnología-IdAB, Universidad Pública de Navarra-CSIC-Gobierno de Navarra, Pamplona, Spain.

出版信息

Plant Biotechnol J. 2013 Jun;11(5):618-27. doi: 10.1111/pbi.12052. Epub 2013 Feb 11.

DOI:10.1111/pbi.12052
PMID:23398733
Abstract

Starch, the most abundant storage carbohydrate in plants, has been a major feedstock for first-generation biofuels. Growing fuel demands require, however, that the starch yields of energy crops be improved. Leaf starch is synthesised during the day and degraded at night to power nonphotosynthetic metabolism. Redox regulation has been associated with the coordination of the enzymes involved in starch metabolism, but neither the signals nor mechanisms that regulate this metabolism are entirely clear. In this work, the thioredoxin (Trx) f and m genes, which code for key enzymes in plastid redox regulation, were overexpressed from the plastid genome. Tobacco plants overexpressing Trx f, but not Trx m, showed an increase of up to 700% in leaf starch accumulation, accompanied by an increase in leaf sugars, specific leaf weight (SLW), and leaf biomass yield. To test the potential of these plants as a nonfood energy crop, tobacco leaves overexpressing Trx f were subjected to enzymatic hydrolysis, and around a 500% increase in the release of fermentable sugars was recorded. The results show that Trx f is a more effective regulator of photosynthetic carbon metabolism in planta than Trx m. The overexpression of Trx f might therefore provide a means of increasing the carbohydrate content of plants destined for use in biofuel production. It might also provide a means of improving the nutritional properties of staple food crops.

摘要

淀粉是植物中含量最丰富的储存性碳水化合物,一直是第一代生物燃料的主要原料。然而,不断增长的燃料需求要求提高能源作物的淀粉产量。白天合成淀粉,晚上降解以提供非光合作用代谢所需的能量。氧化还原调控与参与淀粉代谢的酶的协调有关,但调节这种代谢的信号和机制尚不完全清楚。在这项工作中,从质体基因组中转录了编码质体氧化还原调控关键酶的硫氧还蛋白(Trx)f 和 m 基因。过表达 Trx f 但不表达 Trx m 的烟草植株的叶片淀粉积累增加了高达 700%,同时叶片糖、比叶重(SLW)和叶片生物量产量也增加了。为了测试这些植物作为非食用能源作物的潜力,过表达 Trx f 的烟草叶片进行了酶水解,记录到可发酵糖的释放增加了约 500%。结果表明,Trx f 是植物中比 Trx m 更有效的光合作用碳代谢调节剂。因此,过表达 Trx f 可能提供了一种增加用于生物燃料生产的植物中碳水化合物含量的方法。它也可能为提高主食作物的营养价值提供一种手段。

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