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本文引用的文献

1
Mitochondrial tRNA import--the challenge to understand has just begun.线粒体转运RNA的导入——有待理解的挑战才刚刚开始。
Biol Chem. 2009 Aug;390(8):717-22. doi: 10.1515/BC.2009.101.
2
Evolution of ultrasmall spliceosomal introns in highly reduced nuclear genomes.超小型剪接体内含子在高度简化核基因组中的进化
Mol Biol Evol. 2009 Aug;26(8):1699-705. doi: 10.1093/molbev/msp081. Epub 2009 Apr 20.
3
Another acquisition of a primary photosynthetic organelle is underway in Paulinella chromatophora.在嗜盐绿藻中,另一次对初级光合细胞器的获取正在进行中。
Curr Biol. 2009 Apr 14;19(7):R284-5. doi: 10.1016/j.cub.2009.02.043.
4
Chloroplast two-component systems: evolution of the link between photosynthesis and gene expression.叶绿体双组分系统:光合作用与基因表达之间联系的进化
Proc Biol Sci. 2009 Jun 22;276(1665):2133-45. doi: 10.1098/rspb.2008.1426. Epub 2009 Feb 25.
5
Kinetoplastid guide RNA biogenesis is dependent on subunits of the mitochondrial RNA binding complex 1 and mitochondrial RNA polymerase.动质体引导RNA的生物合成依赖于线粒体RNA结合复合体1的亚基和线粒体RNA聚合酶。
RNA. 2009 Apr;15(4):588-99. doi: 10.1261/rna.1411809. Epub 2009 Feb 18.
6
Steady-state levels of imported tRNAs in Chlamydomonas mitochondria are correlated with both cytosolic and mitochondrial codon usages.衣藻线粒体中导入的tRNA的稳态水平与胞质和线粒体密码子使用情况均相关。
Nucleic Acids Res. 2009 Apr;37(5):1521-8. doi: 10.1093/nar/gkn1073. Epub 2009 Jan 12.
7
The ancestral symbiont sensor kinase CSK links photosynthesis with gene expression in chloroplasts.祖先共生体传感激酶CSK将光合作用与叶绿体中的基因表达联系起来。
Proc Natl Acad Sci U S A. 2008 Jul 22;105(29):10061-6. doi: 10.1073/pnas.0803928105. Epub 2008 Jul 16.
8
Non-DNA-templated addition of nucleotides to the 3' end of RNAs by the mitochondrial RNA polymerase of Physarum polycephalum.多头绒泡菌线粒体RNA聚合酶在RNA 3'端进行的非DNA模板指导的核苷酸添加
Mol Cell Biol. 2008 Sep;28(18):5795-802. doi: 10.1128/MCB.00356-08. Epub 2008 Jun 23.
9
Dinoflagellates: a mitochondrial genome all at sea.甲藻:一个漂泊不定的线粒体基因组。
Trends Genet. 2008 Jul;24(7):328-35. doi: 10.1016/j.tig.2008.04.001. Epub 2008 May 29.
10
Genome-based analysis of Chlamydomonas reinhardtii exoribonucleases and poly(A) polymerases predicts unexpected organellar and exosomal features.基于基因组的莱茵衣藻外切核糖核酸酶和聚腺苷酸聚合酶分析预测出意外的细胞器和外泌体特征。
Genetics. 2008 May;179(1):125-36. doi: 10.1534/genetics.107.086223.

细胞器基因组的组织和表达。

Organization and expression of organellar genomes.

机构信息

Department of Biochemistry, University of Cambridge, Tennis Court Road, Cambridge CB2 1QW, UK.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2010 Mar 12;365(1541):785-97. doi: 10.1098/rstb.2009.0250.

DOI:10.1098/rstb.2009.0250
PMID:20124345
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2817230/
Abstract

Protist mitochondrial genomes show a very wide range of gene content, ranging from three genes for respiratory chain components in Apicomplexa and dinoflagellates to nearly 100 genes in Reclinomonas americana. In many organisms the rRNA genes are fragmented, although still functional. Some protist mitochondria encode a full set of tRNAs, while others rely on imported molecules. There is similarly a wide variation in mitochondrial genome organization, even among closely related groups. Mitochondrial gene expression and control are generally poorly characterized. Transcription probably relies on a 'viral-type' RNA polymerase, although a 'bacterial-type' enzyme may be involved in some cases. Transcripts are heavily edited in many lineages. The chloroplast genome generally shows less variation in gene content and organization, although greatly reduced genomes are found in dinoflagellate algae and non-photosynthetic organisms. Genes in the former are located on small plasmids in contrast to the larger molecules found elsewhere. Control of gene expression in chloroplasts involves transcriptional and post-transcriptional regulation. Redox poise and the ATP/ADP ratio are likely to be important determinants. Some protists have an additional extranuclear genome, the nucleomorph, which is a remnant nucleus. Nucleomorphs of two separate lineages have a number of features in common.

摘要

原生动物的线粒体基因组显示出非常广泛的基因内容,范围从顶复动物门和甲藻门的三个呼吸链成分基因到美洲袋鞭藻的近 100 个基因。在许多生物中,rRNA 基因是碎片化的,但仍然具有功能。一些原生动物线粒体编码一套完整的 tRNA,而其他则依赖于导入的分子。线粒体基因组的组织也存在广泛的变化,即使在密切相关的群体中也是如此。线粒体基因的表达和调控通常特征不明显。转录可能依赖于“病毒型”RNA 聚合酶,尽管在某些情况下可能涉及“细菌型”酶。在许多谱系中,转录物都经过大量编辑。叶绿体基因组在基因含量和组织上的变化一般较少,但在甲藻门藻类和非光合生物中发现了大大简化的基因组。前者的基因位于小质粒上,而不是其他地方发现的较大分子上。叶绿体基因表达的控制涉及转录和转录后调控。氧化还原平衡和 ATP/ADP 比可能是重要的决定因素。一些原生动物有一个额外的核外基因组,即类核体,它是一个遗留的核。两个不同谱系的类核体具有一些共同的特征。