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Regulation of Expression Occurs at Multiple Steps02:24

Regulation of Expression Occurs at Multiple Steps

22.0K
Gene expression can be regulated at almost every step from gene to protein. Transcription is the step that is most commonly regulated. This involves the binding of proteins to short regulatory sequences on the DNA. This association can either promote or inhibit the transcription of a gene associated with the respective sequence.
Transcription results in the generation of precursor (pre-mRNA) that consists of both exons and introns, which needs further processing before being translated to a...
22.0K
mRNA Stability and Gene Expression02:51

mRNA Stability and Gene Expression

5.5K
The structure and stability of mRNA molecules regulates gene expression, as mRNAs are a key step in the pathway from gene to protein. In eukaryotes, the half-life of mRNA varies from a few minutes up to several days. mRNA stability is essential in growth and development. The absence of the proteins regulating its stability, such as tristetraprolin in mice, can cause systemic issues, including bone marrow overgrowth, inflammation, and autoimmunity.
Cis-acting Elements involved in mRNA stability
5.5K
RNA Stability01:53

RNA Stability

33.1K
Intact DNA strands can be found in fossils, while scientists sometimes struggle to keep RNA intact under laboratory conditions. The structural variations between RNA and DNA underlie the differences in their stability and longevity. Because DNA is double-stranded, it is inherently more stable. The single-stranded structure of RNA is less stable but also more flexible and can form weak internal bonds. Additionally, most RNAs in the cell are relatively short, while DNA can be up to 250 million...
33.1K
Covalently Linked Protein Regulators02:04

Covalently Linked Protein Regulators

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Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein....
6.7K
Regulated mRNA Transport02:22

Regulated mRNA Transport

6.2K
In eukaryotes, transcription and translation are compartmentalized; an mRNA is first synthesized in the nucleus and then selectively transported to the cytoplasm for protein synthesis. Before transport, a pre-mRNA undergoes several steps of post-transcriptional modifications including splicing, 5' capping, and the addition of a poly-adenine tail. Various proteins bind to the pre-mRNA during these modifications. The mRNA transport takes place with the help of multiple proteins playing...
6.2K
Regulation of Expression at Multiple Steps01:23

Regulation of Expression at Multiple Steps

849
The gene expression in cells is regulated at different stages: (i) transcription, (ii) RNA processing, (iii) RNA localization, and (iv) translation. Transcriptional regulation is mediated by regulatory proteins such as transcription factors, activators, or repressors—these control gene expression by initiating or inhibiting the transcription of genes. Once a precursor or pre-mRNA is produced, it undergoes post-transcriptional modification, including 5' capping, splicing, and the...
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Related Experiment Video

Updated: May 15, 2025

High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes
09:44

High-throughput Screening for Chemical Modulators of Post-transcriptionally Regulated Genes

Published on: March 3, 2015

9.4K

Advances in i-motif structures: Stability, gene expression, and therapeutic applications.

Mengqing Wu1, Yang Liu1, Xiao Zhu1

  • 1College of Basic Medicine, Zunyi Medical University, Zunyi 563000, Guizhou Province, China.

International Journal of Biological Macromolecules
|April 28, 2025
PubMed
Summary
This summary is machine-generated.

The i-motif, a pH-sensitive DNA structure, regulates gene expression and offers therapeutic potential. Advances in nanotechnology and precision medicine highlight its role in treating diseases like cancer.

Keywords:
I-motifLigand compoundsOncogenes

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Area of Science:

  • Biochemistry and Molecular Biology
  • Genetics
  • Nanotechnology

Background:

  • The i-motif is a unique DNA secondary structure formed by cytosine-rich sequences under acidic conditions.
  • It is implicated in the regulation of gene expression, particularly in the promoter regions of key oncogenes (e.g., Bcl-2, C-MYC, KRAS).
  • Its pH-sensitive nature presents opportunities for targeted therapies and diagnostic tools.

Purpose of the Study:

  • To review the multifaceted roles of i-motifs in biological processes.
  • To explore the therapeutic potential of i-motifs in various diseases, including oncology, metabolic disorders, and neurodegenerative conditions.
  • To highlight recent advances and future directions in i-motif-based nanotechnology and precision medicine.

Main Methods:

  • Literature review of studies on i-motif structure, function, and applications.
  • Analysis of i-motif interactions with transcription factors and ligands.
  • Examination of i-motif-based nanotechnology, including pH sensors and drug delivery systems.

Main Results:

  • i-motifs dynamically regulate oncogene activity through interactions with transcription factors.
  • pH-sensitive i-motif structures enable development of cellular pH sensors ('i-switch') and targeted drug delivery systems (DNA hydrogels).
  • Challenges exist in developing specific i-motif ligands and detection methodologies.

Conclusions:

  • i-motifs are crucial therapeutic targets and versatile tools with significant potential in precision medicine.
  • Further research is needed to overcome current challenges and fully harness i-motif applications.
  • i-motif-based strategies show promise for treating a range of diseases by leveraging their unique pH-dependent properties.