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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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siRNA - Small Interfering RNAs02:30

siRNA - Small Interfering RNAs

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Small interfering RNAs, or siRNAs, are short regulatory RNA molecules that can silence genes post-transcriptionally, as well as the transcriptional level in some cases. siRNAs are important for protecting cells against viral infections and silencing transposable genetic elements.
In the cytoplasm, siRNA is processed from a double-stranded RNA, which comes from either endogenous DNA transcription or exogenous sources like a virus. This double-stranded RNA is then cleaved by the...
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Experimental RNAi02:15

Experimental RNAi

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RNA interference (RNAi) is a cellular mechanism that inhibits gene expression by suppressing its transcription or activating the RNA degradation process. The mechanism was discovered by Andrew Fire and Craig Mello in 1998 in plants. Today, it is observed in almost all eukaryotes, including protozoa, flies, nematodes, insects, parasites, and mammals. This precise cellular mechanism of gene silencing has been developed into a technique that provides an efficient way to identify and determine the...
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Small interfering RNAs (siRNA)02:30

Small interfering RNAs (siRNA)

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RNA Interference01:23

RNA Interference

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RNA interference (RNAi) is a process in which a small non-coding RNA molecule blocks the post-transcriptional expression of a gene by binding to its messenger RNA (mRNA) and preventing the protein from being translated.
This process occurs naturally in cells, often through the activity of genomically-encoded microRNAs. Researchers can take advantage of this mechanism by introducing synthetic RNAs to deactivate specific genes for research or therapeutic purposes. For example, RNAi could be used...
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piRNA - Piwi-interacting RNAs02:57

piRNA - Piwi-interacting RNAs

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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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Related Experiment Video

Updated: Aug 3, 2025

RNA Blot Analysis for the Detection and Quantification of Plant MicroRNAs
14:41

RNA Blot Analysis for the Detection and Quantification of Plant MicroRNAs

Published on: July 11, 2020

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Small Non-coding RNA in Plants: From Basic Science to Innovative Applications.

Giulia Tarquini1, Erika Cione1

  • 1GalaScreen Laboratories, Department of Pharmacy, Health and Nutritional Sciences, University of Calabria, 87036, Rende (CS), Italy.

Microrna (Shariqah, United Arab Emirates)
|April 11, 2023
PubMed
Summary

Artificial small RNAs (sRNAs) offer innovative agricultural solutions by controlling plant diseases and enhancing crop traits. This technology leverages plant RNA silencing pathways for improved food production.

Keywords:
AGODCLPTGS.RISCmicroRNAssRNAs

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Last Updated: Aug 3, 2025

RNA Blot Analysis for the Detection and Quantification of Plant MicroRNAs
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Area of Science:

  • Plant biology
  • Biotechnology
  • Agricultural science

Background:

  • Plants utilize diverse small RNAs (sRNAs) for gene regulation via RNA silencing.
  • Agriculture faces challenges like increased food demand, necessitating innovative solutions.
  • Artificial sRNAs present a promising biotechnological approach for crop improvement.

Approach:

  • This review explores the application of synthetic sRNAs to modulate plant physiology.
  • It examines how artificial sRNAs trigger specific RNA silencing pathways.
  • The review also discusses microRNAs and plant-derived edible nanoparticles (ENPs).

Key Points:

  • Artificial sRNAs can control plant diseases and enhance genetic/agronomic traits.
  • Synthetic sRNA application induces targeted physiological responses.
  • Edible plant microRNAs and ENPs also play roles in plant biology and nutrition.

Conclusions:

  • Artificial sRNAs are a powerful tool for sustainable agriculture.
  • Understanding plant RNA silencing mechanisms is crucial for optimizing sRNA applications.
  • Further research into ENPs could reveal novel nutritional benefits.