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本文引用的文献

1
Deletion of glycine decarboxylase in Arabidopsis is lethal under nonphotorespiratory conditions.拟南芥中甘氨酸脱羧酶的缺失在非光呼吸条件下是致死的。
Plant Physiol. 2007 Jul;144(3):1328-35. doi: 10.1104/pp.107.099317. Epub 2007 May 11.
2
Locating proteins in the cell using TargetP, SignalP and related tools.使用TargetP、SignalP及相关工具在细胞中定位蛋白质。
Nat Protoc. 2007;2(4):953-71. doi: 10.1038/nprot.2007.131.
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SUBA: the Arabidopsis Subcellular Database.SUBA:拟南芥亚细胞数据库。
Nucleic Acids Res. 2007 Jan;35(Database issue):D213-8. doi: 10.1093/nar/gkl863. Epub 2006 Oct 28.
4
Photorespiration-deficient Mutants of Arabidopsis thaliana Lacking Mitochondrial Serine Transhydroxymethylase Activity.缺乏线粒体丝氨酸转羟甲基酶活性的拟南芥光呼吸缺陷突变体。
Plant Physiol. 1981 Apr;67(4):666-71. doi: 10.1104/pp.67.4.666.
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A spatiotemporal analysis of enzymatic activities associated with carbon metabolism in wild-type and mutant embryos of Arabidopsis using in situ histochemistry.利用原位组织化学对拟南芥野生型和突变体胚胎中与碳代谢相关的酶活性进行时空分析。
Plant J. 2006 Apr;46(1):155-69. doi: 10.1111/j.1365-313X.2006.02682.x.
6
The photorespiratory Arabidopsis shm1 mutant is deficient in SHM1.光呼吸的拟南芥shm1突变体缺乏SHM1。
Plant Physiol. 2006 Jan;140(1):59-66. doi: 10.1104/pp.105.071399. Epub 2005 Dec 9.
7
The analysis of folate and its metabolic precursors in biological samples.生物样品中叶酸及其代谢前体的分析。
Anal Biochem. 2006 Jan 15;348(2):163-84. doi: 10.1016/j.ab.2005.09.017. Epub 2005 Oct 5.
8
5-Formyltetrahydrofolate is an inhibitory but well tolerated metabolite in Arabidopsis leaves.5-甲酰四氢叶酸是拟南芥叶片中的一种抑制性代谢物,但耐受性良好。
J Biol Chem. 2005 Jul 15;280(28):26137-42. doi: 10.1074/jbc.M503106200. Epub 2005 May 11.
9
A gene expression map of Arabidopsis thaliana development.拟南芥发育的基因表达图谱。
Nat Genet. 2005 May;37(5):501-6. doi: 10.1038/ng1543. Epub 2005 Apr 3.
10
AMPDB: the Arabidopsis Mitochondrial Protein Database.AMPDB:拟南芥线粒体蛋白质数据库。
Nucleic Acids Res. 2005 Jan 1;33(Database issue):D605-10. doi: 10.1093/nar/gki048.

拟南芥10-甲酰四氢叶酸脱甲酰酶对光呼吸至关重要。

Arabidopsis 10-formyl tetrahydrofolate deformylases are essential for photorespiration.

作者信息

Collakova Eva, Goyer Aymeric, Naponelli Valeria, Krassovskaya Inga, Gregory Jesse F, Hanson Andrew D, Shachar-Hill Yair

机构信息

Plant Biology Department, Michigan State University, East Lansing, Michigan 48824, USA.

出版信息

Plant Cell. 2008 Jul;20(7):1818-32. doi: 10.1105/tpc.108.058701. Epub 2008 Jul 15.

DOI:10.1105/tpc.108.058701
PMID:18628352
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2518232/
Abstract

In prokaryotes, PurU (10-formyl tetrahydrofolate [THF] deformylase) metabolizes 10-formyl THF to formate and THF for purine and Gly biosyntheses. The Arabidopsis thaliana genome contains two putative purU genes, At4g17360 and At5g47435. Knocking out these genes simultaneously results in plants that are smaller and paler than the wild type. These double knockout (dKO) mutant plants show a 70-fold increase in Gly levels and accumulate elevated levels of 5- and 10-formyl THF. Embryo development in dKO mutants arrests between heart and early bent cotyledon stages. Mature seeds are shriveled, accumulate low amounts of lipids, and fail to germinate. However, the dKO mutant is only conditionally lethal and is rescued by growth under nonphotorespiratory conditions. In addition, culturing dKO siliques in the presence of sucrose restores normal embryo development and seed viability, suggesting that the seed and embryo development phenotypes are a result of a maternal effect. Our findings are consistent with the involvement of At4g17360 and At5g47435 proteins in photorespiration, which is to prevent excessive accumulation of 5-formyl THF, a potent inhibitor of the Gly decarboxylase/Ser hydroxymethyltransferase complex. Supporting this role, deletion of the At2g38660 gene that encodes the bifunctional 5,10-methylene THF dehydrogenase/5,10-methenyl THF cyclohydrolase that acts upstream of 5-formyl THF formation restored the wild-type phenotype in dKO plants.

摘要

在原核生物中,PurU(10-甲酰四氢叶酸[THF]脱甲酰基酶)将10-甲酰THF代谢为甲酸和THF,用于嘌呤和甘氨酸的生物合成。拟南芥基因组包含两个推定的purU基因,At4g17360和At5g47435。同时敲除这些基因会导致植株比野生型更小、更苍白。这些双敲除(dKO)突变体植株的甘氨酸水平增加了70倍,并积累了高水平的5-和10-甲酰THF。dKO突变体的胚胎发育在心脏期和早期弯曲子叶期之间停止。成熟种子皱缩,脂质积累量低,无法发芽。然而,dKO突变体只是条件致死的,在非光呼吸条件下生长可使其得到拯救。此外,在蔗糖存在的情况下培养dKO角果可恢复正常的胚胎发育和种子活力,这表明种子和胚胎发育表型是母体效应的结果。我们的研究结果与At4g17360和At5g47435蛋白参与光呼吸一致,即防止5-甲酰THF(甘氨酸脱羧酶/丝氨酸羟甲基转移酶复合物的有效抑制剂)过度积累。支持这一作用的是,缺失编码在5-甲酰THF形成上游起作用的双功能5,10-亚甲基THF脱氢酶/5,10-亚甲烯基THF环水解酶的At2g38660基因恢复了dKO植株的野生型表型。