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相关概念视频

Animal Mitochondrial Genetics02:59

Animal Mitochondrial Genetics

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Among all the organelles in an animal cell, only mitochondria have their own independent genomes. Animal mitochondrial DNA is a double-stranded, closed-circular molecule with around 20,000 base pairs. Mitochondrial DNA is unique in that one of its two strands, the heavy, or H, -strand is guanine rich, whereas the complementary strand is cytosine rich and called the light, or L, -strand. Compared to nuclear DNA, mitochondrial DNA has a very low percentage of non-coding regions and is marked by...
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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...
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Chromatin is the massive complex of DNA and proteins packaged inside the nucleus. The complexity of chromatin folding and how it is packaged inside the nucleus greatly influences  access to genetic information. Generally, the nucleus' periphery is considered transcriptionally repressive, while the cell's interior is considered a transcriptionally active area. 
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Most DNA resides in the nucleus of a cell. However, some organelles in the cell cytoplasm⁠—such as chloroplasts and mitochondria⁠—also have their own DNA. These organelles replicate their DNA independently of the nuclear DNA of the cell in which they reside. Non-nuclear inheritance describes the inheritance of genes from structures other than the nucleus.
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The present-day mitochondrial and chloroplast genomes have retained some of the characteristics of their ancestral prokaryotes and also have acquired new attributes during their evolution within eukaryotic cells. Like prokaryotic genomes, mitochondrial and chloroplast genomes neither bind with histone-like proteins nor show complex packaging into chromosome-like structures, as observed in eukaryotes. Unlike mitotic cell divisions observed in eukaryotic cells, mitochondria and chloroplasts...
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A gene is the fundamental unit of heredity. Every individual has two copies of each gene, one inherited from each parent. Although most people contain the same genes, there is a small fraction that is slightly different amongst people. A gene with a small difference in its sequence of DNA bases forms different alleles, contributing to different phenotypes.
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线粒体和核基因表达过程之间的动力二分法.

Erik McShane1, Mary Couvillion1, Robert Ietswaart1

  • 1Department of Genetics, Blavatnik Institute, Harvard Medical School, Boston, MA 02115, USA.

Molecular cell
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概括

氧化酸化 (OXPHOS) 的线粒体和核基因表达协调不平衡. 这项研究揭示了线粒体mRNA.

关键词:
对于LRPPRCRC来说,这是一个很大的问题.李氏病是李氏病的一种疾病.在RNA生命周期中,RNA的生命周期基因调节 基因调节 基因调节遗传冲突 遗传冲突代谢调节 代谢调节线粒体的基因表达.线粒体的翻译核电平衡中的核电平衡.器官细胞生物发生.氧化酸化是一种氧化酸化.

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科学领域:

  • 细胞生物学 细胞生物学
  • 分子生物学分子生物学
  • 遗传学 是一个遗传学.

背景情况:

  • 氧化酸化 (OXPHOS) 复合体需要来自线粒体和核DNA的协调基因表达.
  • 在这两个区间之间平衡OXPHOS子单元生物发生仍然是分子生物学中的一个关键挑战.

研究的目的:

  • 量化分析人类核和线粒体信使RNAs (mt-mRNAs) 的生命周期.
  • 为OXPHOS确定协调细胞核和线粒体之间的基因表达的调节机制.

主要方法:

  • 核和mt-mRNA生命周期 (生产,加工,核糖体结合,降解) 的并行定量分析.
  • 定量建模和线粒体因子LRPPRC和FASTKD5.5的耗尽.
  • 基因表达阶段的动态分析.

主要成果:

  • 在核mRNA和mt-mRNA生命周期之间观察到显著的动态差异.
  • 与核mRNA相比,mt-mRNA的产生速度更高,降解速度更快,并积累到更高的水平.
  • 线粒体前mRNA的多基质性驱动表达差异,由LRPPRC和FASTKD5.5等因素调节.

结论:

  • 线粒体基因表达本质上比核基因表达更快,更不稳定.
  • 较慢的线粒体转化率被认为是解决线粒体表达失衡的关键机制.
  • 线粒体作为协调线粒体和核之间的基因表达的中心点.