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相关概念视频

lncRNA - Long Non-coding RNAs02:39

lncRNA - Long Non-coding RNAs

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In humans, more than 80% of the genome gets transcribed. However, only around 2% of the genome codes for proteins. The remaining part produces non-coding RNAs which includes ribosomal RNAs, transfer RNAs, telomerase RNAs, and regulatory RNAs, among other types. A large number of regulatory non-coding RNAs have been classified into two groups depending upon their length – small non-coding RNAs, such as microRNA, which are less than 200 nucleotides in length, and long non-coding RNA...
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Methods to Investigate the Regulatory Role of Small RNAs and Ribosomal Occupancy of Plasmodium falciparum10:22

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Human microRNAs translocate from host erythrocytes to Plasmodium falciparum parasites. Here, the techniques used to transfect synthetic microRNAs into host erythrocytes and isolate all RNAs from P. falciparum are described. In addition, this paper will detail a method of polysome isolation in P. falciparum to determine the ribosomal occupancy and translational potential of parasite transcripts.
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Plants grow throughout their lives; this is called indeterminate growth, and it distinguishes plants from most animals. Although certain parts of plants stop growing (e.g., leaves and flowers), others grow continuously—like roots and stems.
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PIWI-interacting RNAs, or piRNAs, are the most abundant short non-coding RNAs. More than 20,000 genes have been found in humans that code for piRNAs while only 2000 genes have been found for miRNAs. piRNAs can act at the transcriptional and post-transcriptional levels and have a vital role in silencing transposable elements present in germ cells. They are also involved in epigenetic silencing and activation. Previously, they were thought to function only in germ cells but new evidence suggests...
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Plants have the impressive ability to create their own food through photosynthesis. However, plants often require assistance from organisms in the soil to acquire the nutrients they need to function correctly. Both bacteria and fungi have evolved symbiotic relationships with plants that help the species to thrive in a wide variety of environments.
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相关实验视频

Updated: Jan 20, 2026

Long Non-coding RNAs: Chromatin Modification, Cell Differentiation & Immune Response
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非编码RNA在平衡植物生长和防御方面的监管作用

Sukanya Dutta1,2, Niraj Kumar1,2, Ratul Saikia1,2

  • 1Biological Sciences and Technology Division, CSIR-North East Institute of Science & Technology, Jorhat, Assam, India.

Physiologia plantarum
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概括

植物面临着生长与防御的权衡. 非编码RNAs (ncRNAs) 是关键的调节者,微调资源分配以平衡生长和免疫力,为改善作物弹性提供潜力.

关键词:
植物免疫力 植物免疫力植物的弹性 植物的弹性资源分配的资源分配.转录规则 转录规则 转录规则

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相关实验视频

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Long Non-coding RNAs: Chromatin Modification, Cell Differentiation & Immune Response
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科学领域:

  • 植物分子生物学 植物分子生物学
  • 植物生理学 植物生理学
  • 遗传学和基因组学 遗传学和基因组学

背景情况:

  • 植物必须平衡生长和免疫防御,因为投资其中一个往往会损害另一个.
  • 生态最佳性原则建议战略性资源配置,以最大限度地提高植物的健康状况.
  • 多omics技术揭示了增长-防御权衡背后的复杂分子机制.

研究的目的:

  • 审查非编码RNAs (ncRNAs) 在调解植物生长-防御平衡中的作用.
  • 探索ncRNA如何在发育和免疫途径中微调基因表达.
  • 讨论ncRNA驱动调节对提高作物改进的潜力.

主要方法:

  • 文献综述综合了关于ncRNAs和植物生长防御的当前研究.
  • 分析多主题数据以确定监管网络.
  • 对ncRNA与植物激素信号交互的讨论.

主要成果:

  • 非编码RNAs (ncRNAs) 在植物生长防御监管环境中起到关键调节者的作用.
  • 特定的ncRNAs在反回路中充当调控中心,影响资源分配.
  • ncRNA与植物激素信号网络相互作用,以微调基因表达.

结论:

  • 了解ncRNA驱动的调节对于破译植物生长防御权衡至关重要.
  • 利用ncRNA机制为开发高产,抗压作物提供了一条途径.
  • 这种方法支持可持续农业,潜在地绕过传统的增长-防御约束.