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狗尾草:C4 光合作用模型。

Setaria viridis: a model for C4 photosynthesis.

机构信息

Boyce Thompson Institute, Cornell University, Ithaca, New York 14853, USA.

出版信息

Plant Cell. 2010 Aug;22(8):2537-44. doi: 10.1105/tpc.110.075309. Epub 2010 Aug 6.

DOI:10.1105/tpc.110.075309
PMID:20693355
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2947182/
Abstract

C(4) photosynthesis drives productivity in several major food crops and bioenergy grasses, including maize (Zea mays), sugarcane (Saccharum officinarum), sorghum (Sorghum bicolor), Miscanthus x giganteus, and switchgrass (Panicum virgatum). Gains in productivity associated with C(4) photosynthesis include improved water and nitrogen use efficiencies. Thus, engineering C(4) traits into C(3) crops is an attractive target for crop improvement. However, the lack of a small, rapid cycling genetic model system to study C(4) photosynthesis has limited progress in dissecting the regulatory networks underlying the C(4) syndrome. Setaria viridis is a member of the Panicoideae clade and is a close relative of several major feed, fuel, and bioenergy grasses. It is a true diploid with a relatively small genome of ~510 Mb. Its short stature, simple growth requirements, and rapid life cycle will greatly facilitate genetic studies of the C(4) grasses. Importantly, S. viridis uses an NADP-malic enzyme subtype C(4) photosynthetic system to fix carbon and therefore is a potentially powerful model system for dissecting C(4) photosynthesis. Here, we summarize some of the recent advances that promise greatly to accelerate the use of S. viridis as a genetic system. These include our recent successful efforts at regenerating plants from seed callus, establishing a transient transformation system, and developing stable transformation.

摘要

C(4)光合作用驱动包括玉米(Zea mays)、甘蔗(Saccharum officinarum)、高粱(Sorghum bicolor)、荻(Miscanthus x giganteus)和柳枝稷(Panicum virgatum)在内的几种主要粮食作物和生物能源草的生产力。与 C(4)光合作用相关的生产力提高包括提高水和氮的利用效率。因此,将 C(4)特性工程改造到 C(3)作物中是作物改良的一个有吸引力的目标。然而,缺乏一个小型、快速循环的遗传模式系统来研究 C(4)光合作用,限制了对 C(4)综合征相关调控网络的剖析进展。绿色狗尾草是黍族的一员,是几种主要饲料、燃料和生物能源草的近亲。它是一个真正的二倍体,基因组相对较小,约为 510Mb。它的矮小身材、简单的生长要求和快速的生命周期将极大地促进 C(4)草的遗传研究。重要的是,绿色狗尾草利用 NADP-苹果酸酶亚型 C(4)光合作用系统来固定碳,因此是剖析 C(4)光合作用的潜在强大模型系统。在这里,我们总结了一些最近的进展,这些进展有望极大地加速绿色狗尾草作为遗传系统的应用。其中包括我们最近从种子愈伤组织中成功再生植物、建立瞬时转化系统和发展稳定转化的努力。

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本文引用的文献

1
The evolution of C photosynthesis.C4光合作用的进化。
New Phytol. 2004 Feb;161(2):341-370. doi: 10.1111/j.1469-8137.2004.00974.x.
2
Callus induction and high frequency plant regeneration in Italian millet (Setaria italica).意大利小米(Setaria italica)愈伤组织诱导和高频植物再生。
Plant Cell Rep. 1988 Dec;7(7):557-9. doi: 10.1007/BF00272756.
3
The origins of C4 grasslands: integrating evolutionary and ecosystem science.C4 草地的起源:进化与生态系统科学的整合。
Science. 2010 Apr 30;328(5978):587-91. doi: 10.1126/science.1177216.
4
Genome sequencing and analysis of the model grass Brachypodium distachyon.拟南芥基因组测序和分析。
Nature. 2010 Feb 11;463(7282):763-8. doi: 10.1038/nature08747.
5
Phylogenetic analyses reveal the shady history of C4 grasses.系统发生分析揭示了 C4 禾本科植物的阴暗历史。
Proc Natl Acad Sci U S A. 2010 Feb 9;107(6):2532-7. doi: 10.1073/pnas.0909672107. Epub 2010 Feb 8.
6
Exploring plant transcriptomes using ultra high-throughput sequencing.利用超高通量测序技术探索植物转录组。
Brief Funct Genomics. 2010 Mar;9(2):118-28. doi: 10.1093/bfgp/elp057. Epub 2010 Feb 3.
7
Reconstruction of metabolic pathways, protein expression, and homeostasis machineries across maize bundle sheath and mesophyll chloroplasts: large-scale quantitative proteomics using the first maize genome assembly.重建玉米束鞘和叶肉叶绿体中的代谢途径、蛋白质表达和内稳态机制:使用第一个玉米基因组组装进行大规模定量蛋白质组学研究。
Plant Physiol. 2010 Mar;152(3):1219-50. doi: 10.1104/pp.109.152694. Epub 2010 Jan 20.
8
Transgenic maize lines with cell-type specific expression of fluorescent proteins in plastids.具有质体中荧光蛋白细胞类型特异性表达的转基因玉米品系。
Plant Biotechnol J. 2010 Feb;8(2):112-25. doi: 10.1111/j.1467-7652.2009.00463.x. Epub 2009 Dec 28.
9
Single-molecule sequencing of an individual human genome.对单个人类基因组进行单分子测序。
Nat Biotechnol. 2009 Sep;27(9):847-50. doi: 10.1038/nbt.1561. Epub 2009 Aug 10.
10
Energy. Driving on biomass.能源。以生物质为动力。
Science. 2009 May 22;324(5930):1019-20. doi: 10.1126/science.1171740.