扫类植物的重组和反处理揭示了异质植物中线粒体进化的通用路线图
Liming Cai1,2, Justin C Havird1, Robert K Jansen1
1Department of Integrative Biology, University of Texas at Austin, Austin, TX 78705.
bioRxiv : the preprint server for biology
|February 24, 2025
概括
发生光合作用丧失的寄生植物表现出显著的线粒体基因组变化. 新型RNA介导的基因转移机制驱动了异质植物中的这些进化转变.
科学领域:
- 进化生物学是进化的生物学.
- 基因组学就是基因组学.
- 植物科学 植物科学
背景情况:
- 异质型生物体表现出改变的生命史策略,影响遗传功能.
- 缺乏光合作用的全寄生植物具有降解的塑基因组,但它们的线粒体基因组 (线粒体基因组) 进化仍在争论中.
研究的目的:
- 调查异质变异对奥罗班氏菌中线粒体基因组进化的影响.
- 确定寄生植物过渡到非光合作用生活方式的遗传变化和进化机制.
主要方法:
- 来自45种奥罗巴切亚种的线粒基因组的比较分析.
- 对基因组混合,RNA编辑,细胞内基因转移 (IGT) 和水平基因转移 (HGT) 的检查.
- 识别RNA介导的反处理和新型基因转移机制.
主要成果:
- 与异质变性相关的线粒基因组中可测量的遗传变化.
- DNA重组和修复,特别是RNA介导的反处理,是基因组进化的关键驱动力.
- 发现了一种新的RNA介导的IGT和HGT机制.
- 一个通用的剂量效应机制解释了塑性DNA转移到异构体中的线粒体.
结论:
- 异构植物中线粒体基因组的进化是由增加的重组和修复驱动的,而不仅仅是放松的选择.
- 异质植物中线粒体进化的通用路线图涉及到差异化的基因组结构.
- 这些发现提供了关于使寄生植物生存的遗传适应性的见解.
关键词:
在 MTPTPTTT 的情况下.编辑RNA的RNA编辑横向基因转移是指水平基因转移.细胞内基因转移是细胞内基因转移.在Operon中使用.再组合的复合方式.放松的选择选择.重复的重复重复的重复进行回收处理.更多相关视频
09:53Author Spotlight: Advancing Techniques and Discoveries in Protein Synthesis and Assembly Through Innovative Mitochondrial Research
Published on: June 7, 2024
847
07:26Discrimintion and Mapping of the Primary and Processed Transcripts in Maize Mitochondrion Using a Circular RT-PCR-based Strategy
Published on: July 29, 2019
6.1K
相关概念视频
Overview of Transposition and Recombination
15.2K
Transposons make up a significant part of genomes of various organisms. Therefore, it is believed that transposition played a major evolutionary role in speciation by changing genome sizes and modifying gene expression patterns. For example, in bacteria, transposition can lead to conferring antibiotic resistance. Movement of transposable elements within the genetic pool of pathogenic bacteria can aid in transfer of antibiotic-resistant genetic elements. In eukaryotes, transposons can carry out...
15.2K
Gene Conversion
9.6K
Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...
9.6K
Exon Recombination
3.5K
The evolution of new genes is critical for speciation. Exon recombination, also known as exon shuffling or domain shuffling, is an important means of new gene formation. It is observed across vertebrates, invertebrates, and in some plants such as potatoes and sunflowers. During exon recombination, exons from the same or different genes recombine and produce new exon-intron combinations, which might evolve into new genes.
Exon shuffling follows “splice frame rules.” Each exon...
Exon shuffling follows “splice frame rules.” Each exon...
3.5K
Conservative Site-specific Recombination and Phase Variation
5.9K
Because the DNA segments are cut and reorganized in a direction-specific manner, site-specific recombination has emerged as an efficient genetic engineering technique. Flippase and Cyclization recombinases or Flp and Cre, respectively, are two members of the tyrosine recombinase family derived from bacteriophages, that are used to mediate site-specific DNA insertions, deletions, and targeted expression of proteins in mammalian cell lines.
The recognition sites for Cre recombinase called LoxP...
The recognition sites for Cre recombinase called LoxP...
5.9K
Export of Mitochondrial and Chloroplast Genes
3.6K
A eukaryotic cell can have up to three different types of genetic systems: nuclear, mitochondrial, and chloroplast. During evolution, organelles have exported many genes to the nucleus; this transfer is still ongoing in some plant species. Approximately 18% of the Arabidopsis thaliana nuclear genome is thought to be derived from the chloroplast’s cyanobacterial ancestor, and around 75% of the yeast genome derived from the mitochondria’s bacterial ancestor. This export has occurred...
3.6K
Crossing Over
4.1K
Crossing over is the exchange of genetic information between homologous chromosomes during prophase I of meiosis I. Genetic recombination gives rise to allelic diversity in the newly formed daughter cells. In humans, crossing over produces genetically distinct haploid egg and sperm cells that undergo fertilization to produce unique offspring. Before cell division starts, the germ cell’s chromosome(s) undergo duplication in the S phase of the cell cycle. As the cells enter prophase I,...
4.1K
