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相关概念视频

CRISPR/Cas9 Genome Editing01:28

CRISPR/Cas9 Genome Editing

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The CRISPR-Cas system serves as a bacterial defense mechanism against invading genetic elements such as viruses and plasmids, forming the foundation for its adaptation as a powerful genome-editing tool. Originally discovered in prokaryotes, this system has been repurposed to revolutionize genetic engineering across a wide range of organisms, including plants, animals, and humans. The core component, Cas9, is an endonuclease derived from Streptococcus pyogenes, capable of introducing...
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RNA Editing02:23

RNA Editing

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RNA editing is a post-transcriptional modification where a precursor mRNA (pre-mRNA) nucleotide sequence is changed by base insertion, deletion, or modification. The extent of RNA editing varies from a few hundred bases, in mitochondrial DNA of trypanosomes, to a just single base, in nuclear genes of mammals. Even a single base change in the pre-mRNA can convert a codon for one amino acid into the codon for another amino acid or a stop codon. This type of re-coding can significantly affect the...
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Genomics02:02

Genomics

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Genomics is the science of genomes: it is the study of all the genetic material of an organism. In humans, the genome consists of information carried in 23 pairs of chromosomes in the nucleus, as well as mitochondrial DNA. In genomics, both coding and non-coding DNA is sequenced and analyzed. Genomics allows a better understanding of all living things, their evolution, and their diversity. It has a myriad of uses: for example, to build phylogenetic trees, to improve productivity and...
39.8K
Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes02:16

Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes

15.4K
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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Genome Size and the Evolution of New Genes03:21

Genome Size and the Evolution of New Genes

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While every living organism has a genome of some kind (be it RNA, or DNA), there is considerable variation in the sizes of these blueprints. One major factor that impacts genome size is whether the organism is prokaryotic or eukaryotic. In prokaryotes, the genome contains little to no non-coding sequence, such that genes are tightly clustered in groups or operons sequentially along the chromosome. Conversely, the genes in eukaryotes are punctuated by long stretches of non-coding sequence.
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Uncertainty in Measurement: Accuracy and Precision03:37

Uncertainty in Measurement: Accuracy and Precision

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Scientists typically make repeated measurements of a quantity to ensure the quality of their findings and to evaluate both the precision and the accuracy of their results. Measurements are said to be precise if they yield very similar results when repeated in the same manner. A measurement is considered accurate if it yields a result that is very close to the true or the accepted value. Precise values agree with each other; accurate values agree with a true value. 
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相关实验视频

Updated: Jan 24, 2026

Embryo Microinjection and Knockout Mutant Identification of CRISPR/Cas9 Genome-Edited Helicoverpa Armigera Hübner
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精确的基因组编辑过程及其在人工智能驱动的植物中的应用.

Bo Jiang1,2,3, Zeyu An4, Linlin Niu1,2,3

  • 1State Key Laboratory of Tree Genetics and Breeding, College of Biological Sciences and Technology, Beijing Forestry University, Beijing, 100083, China.

Functional & integrative genomics
|May 24, 2025
PubMed
概括

包括CRISPR-Cas,基因和主要编辑器在内的基因组编辑技术正在彻底改变生物技术和植物育种. 人工智能的整合进一步提高了基因组工程的精度和效率,以应对全球挑战.

关键词:
人工智能的人工智能是人工智能.基础编辑 基础编辑这就是CRISPR-Cas.精确的基因组编辑.首席编辑 总编辑

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Author Spotlight: Streamlining Rice Breeding with CRISPR/Cas for Obtaining Optimal Phenotypic and Agronomic Traits
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CRISPR-Cas9-Mediated Precise Knock-In Edits in Zebrafish Hearts
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科学领域:

  • 生物技术是生物技术.
  • 基因组工程是基因组工程.
  • 植物育种 植物育种

背景情况:

  • 基因组编辑技术使精确的基因修改成为可能,从早期的工具发展到CRISPR-Cas系统.
  • 基因编辑器,基因编辑器和主要编辑器代表了基因组工程的重大进步.
  • 人工智能 (AI) 越来越多地集成到基因组编辑中,提高精度和简化工作流程.

研究的目的:

  • 审查早期的基因组编辑技术 (大核细胞酶,ZFN,TALEN,CRISPR-Cas).
  • 引入下一代工具,如基础和主要编辑器及其植物应用程序.
  • 总结和展望人工智能与基因组编辑的整合,以期未来的进展.

主要方法:

  • 关于基因组编辑技术的文献综述.
  • 详细介绍基础和主要编辑器.
  • 在优化编辑系统,预测效率和设计策略方面,人工智能应用的概述.

主要成果:

  • 历史和当前基因组编辑工具的概述.
  • 突出了植物中基础和主要编辑器的高级应用.
  • 确定AI在改进编辑系统优化,效率预测和战略设计方面的作用.

结论:

  • 基因组编辑技术提供了广泛的应用,特别是在用于改善特征的植物育种中.
  • 先进的基因组编辑工具和人工智能之间的协同作用为全球挑战提供了创新的解决方案.
  • 未来的前景包括提高精度,效率和更广泛地利用基因组编辑来促进健康,繁荣和可持续性.