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1
Tropical infectious diseases: metabolic maps and functions of the Plasmodium falciparum apicoplast.热带传染病:恶性疟原虫顶质体的代谢图谱与功能
Nat Rev Microbiol. 2004 Mar;2(3):203-16. doi: 10.1038/nrmicro843.
2
The non-photosynthetic, pathogenic green alga Helicosporidium sp. has retained a modified, functional plastid genome.非光合致病绿藻螺旋孢藻(Helicosporidium sp.)保留了一个经过修饰的、具有功能的质体基因组。
FEMS Microbiol Lett. 2004 Apr 1;233(1):153-7. doi: 10.1016/j.femsle.2004.02.006.
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NONPHOTOSYNTHETIC METABOLISM IN PLASTIDS.质体中的非光合代谢
Annu Rev Plant Physiol Plant Mol Biol. 2000 Jun;51:111-140. doi: 10.1146/annurev.arplant.51.1.111.
4
Divergent roles in Arabidopsis thaliana development and defense of two homologous genes, aberrant growth and death2 and AGD2-LIKE DEFENSE RESPONSE PROTEIN1, encoding novel aminotransferases.拟南芥发育及防御过程中两个同源基因——异常生长与死亡2(aberrant growth and death2)和类AGD2防御反应蛋白1(AGD2-LIKE DEFENSE RESPONSE PROTEIN1)的不同作用,这两个基因编码新型氨基转移酶。
Plant Cell. 2004 Feb;16(2):353-66. doi: 10.1105/tpc.019372. Epub 2004 Jan 16.
5
Comparison of plastid 16S rRNA (rrn16) genes from Helicosporidium spp.: evidence supporting the reclassification of Helicosporidia as green algae (Chlorophyta).螺旋孢子虫属质体16S rRNA(rrn16)基因的比较:支持将螺旋孢子虫重新分类为绿藻(绿藻门)的证据
Int J Syst Evol Microbiol. 2003 Nov;53(Pt 6):1719-23. doi: 10.1099/ijs.0.02559-0.
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A simple, fast, and accurate algorithm to estimate large phylogenies by maximum likelihood.一种通过最大似然法估计大型系统发育树的简单、快速且准确的算法。
Syst Biol. 2003 Oct;52(5):696-704. doi: 10.1080/10635150390235520.
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Leucine biosynthesis in fungi: entering metabolism through the back door.真菌中的亮氨酸生物合成:通过旁门进入代谢途径。
Microbiol Mol Biol Rev. 2003 Mar;67(1):1-15, table of contents. doi: 10.1128/MMBR.67.1.1-15.2003.
8
Parasite plastids: maintenance and functions.寄生虫质体:维持与功能
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9
Proteomics gives insight into the regulatory function of chloroplast thioredoxins.蛋白质组学有助于深入了解叶绿体硫氧还蛋白的调节功能。
Proc Natl Acad Sci U S A. 2003 Jan 7;100(1):370-5. doi: 10.1073/pnas.232703799. Epub 2002 Dec 30.
10
Molecular evolution of the lysine biosynthetic pathways.赖氨酸生物合成途径的分子进化
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螺旋孢子虫中靶向质体的蛋白质的核编码基因:寄生藻类中一种隐蔽质体的功能多样性

Nucleus-encoded genes for plastid-targeted proteins in Helicosporidium: functional diversity of a cryptic plastid in a parasitic alga.

作者信息

de Koning Audrey P, Keeling Patrick J

机构信息

3529-6270 University Blvd., Vancouver, BC V6T 1Z4, Canada.

出版信息

Eukaryot Cell. 2004 Oct;3(5):1198-205. doi: 10.1128/EC.3.5.1198-1205.2004.

DOI:10.1128/EC.3.5.1198-1205.2004
PMID:15470248
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC522598/
Abstract

Plastids are the organelles of plants and algae that house photosynthesis and many other biochemical pathways. Plastids contain a small genome, but most of their proteins are encoded in the nucleus and posttranslationally targeted to the organelle. When plants and algae lose photosynthesis, they virtually always retain a highly reduced "cryptic" plastid. Cryptic plastids are known to exist in many organisms, although their metabolic functions are seldom understood. The best-studied example of a cryptic plastid is from the intracellular malaria parasite, Plasmodium, which has retained a plastid for the biosynthesis of fatty acids, isoprenoids, and heme by the use of plastid-targeted enzymes. To study a completely independent transformation of a photosynthetic plastid to a cryptic plastid in another alga-turned-parasite, we conducted an expressed sequence tag (EST) survey of Helicosporidium. This parasite has recently been recognized as a highly derived green alga. Based on phylogenetic relationships to other plastid homologues and the presence of N-terminal transit peptides, we have identified 20 putatively plastid-targeted enzymes that are involved in a wide variety of metabolic pathways. Overall, the metabolic diversity of the Helicosporidium cryptic plastid exceeds that of the Plasmodium plastid, as it includes representatives of most of the pathways known to operate in the Plasmodium plastid as well as many others. In particular, several amino acid biosynthetic pathways have been retained, including the leucine biosynthesis pathway, which was only recently recognized in plant plastids. These two parasites represent different evolutionary trajectories in plastid metabolic adaptation.

摘要

质体是植物和藻类的细胞器,其中进行光合作用以及许多其他生化途径。质体含有一个小基因组,但其大多数蛋白质是在细胞核中编码,然后经翻译后靶向运输到该细胞器中。当植物和藻类失去光合作用时,它们几乎总是保留一个高度简化的“隐匿”质体。尽管隐匿质体的代谢功能鲜为人知,但已知其存在于许多生物体中。隐匿质体研究得最透彻的例子来自细胞内疟原虫——疟原虫属,它通过使用靶向质体的酶保留了一个用于脂肪酸、类异戊二烯和血红素生物合成的质体。为了研究在另一种从藻类转变而来的寄生虫中光合质体向隐匿质体的完全独立转变,我们对螺旋孢子虫进行了表达序列标签(EST)调查。这种寄生虫最近被认为是一种高度特化的绿藻。基于与其他质体同源物的系统发育关系以及N端转运肽的存在,我们鉴定出了20种可能靶向质体的酶,它们参与了多种代谢途径。总体而言,螺旋孢子虫隐匿质体的代谢多样性超过了疟原虫质体,因为它包括了已知在疟原虫质体中运作的大多数途径的代表以及许多其他途径。特别是,保留了几条氨基酸生物合成途径,包括亮氨酸生物合成途径,该途径最近才在植物质体中被发现。这两种寄生虫在质体代谢适应方面代表了不同的进化轨迹。