Targeting cancer epigenetics with CRISPR-dCAS9: Principles and prospects

Mohammad Mijanur Rahman1, Trygve O Tollefsbol2

  • 1Department of Biology, University of Alabama at Birmingham, 1300 University Boulevard, Birmingham, AL 35294, USA.

Insights

Epigenetic editing using CRISPR-dCas9 offers a novel precision cancer therapy approach by targeting cancer hallmarks. While promising, challenges in delivery and specificity require further research for clinical application.

Area of Science:

  • Molecular Biology
  • Genetics
  • Cancer Research

Background:

  • Cancer treatment is shifting towards precision medicine.
  • CRISPR-dCas9, adapted from the CRISPR-Cas system, is an emerging precision therapy.
  • CRISPR-dCas9 can be ligated to epigenetic effectors (EE) for epigenetic editing.

Purpose of the Study:

  • To discuss the rationale of epigenetic editing as a cancer therapeutic strategy.
  • To outline the derivation of sgRNA-dCas9 from the CRISPR-Cas system.
  • To update the current status of sgRNA-dCas9 use in cancer (in vivo and in vitro).

Main Methods:

  • Review of CRISPR-dCas9 technology and its adaptation for epigenetic editing.
  • Molecular illustration of CRISPR-dCas9-mediated epigenetic and transcriptional modulation.
  • Evaluation of challenges and ongoing improvements in sgRNA-dCas9 methodology.

Main Results:

  • CRISPR-dCas9-EE complexes can alter cancerous epigenetic features.
  • sgRNA-dCas9 demonstrates potential for epigenetic and transcriptional modulation in cancer.
  • Current use of sgRNA-dCas9 in cancer research is primarily in vitro and in vivo experimental settings.

Conclusions:

  • Epigenetic editing with CRISPR-dCas9 is a prospective cancer therapeutic strategy.
  • Significant challenges remain, including off-target effects, sgRNA design, target selection, and delivery systems.
  • Ongoing improvements in sgRNA-dCas9 methodology are crucial for its clinical translation.

Related Concept Videos

CRISPR01:59

CRISPR

Genome editing technologies allow scientists to modify an organism’s DNA via the addition, removal, or rearrangement of genetic material at specific genomic locations. These types of techniques could potentially be used to cure genetic disorders such as hemophilia and sickle cell anemia. One popular and widely used DNA-editing research tool that could lead to safe and effective cures for genetic disorders is the CRISPR-Cas9 system. CRISPR-Cas9 stands for Clustered Regularly Interspaced...
57.2K
CRISPR/Cas9 Genome Editing01:28

CRISPR/Cas9 Genome Editing

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...
1.4K
CRISPR and crRNAs02:53

CRISPR and crRNAs

Bacteria and archaea are susceptible to viral infections just like eukaryotes; therefore, they have developed a unique adaptive immune system to protect themselves. Clustered regularly interspaced short palindromic repeats and CRISPR-associated proteins (CRISPR-Cas) are present in more than 45% of known bacteria and 90% of known archaea.
The CRISPR-Cas system stores a copy of foreign DNA in the host genome and uses it to identify the foreign DNA upon reinfection. CRISPR-Cas has three different...
18.5K
Homologous Recombination02:31

Homologous Recombination

The basic reaction of homologous recombination (HR) involves two chromatids that contain DNA sequences sharing a significant stretch of identity. One of these sequences uses a strand from another as a template to synthesize DNA in an enzyme-catalyzed reaction. The final product is a novel amalgamation of the two substrates. To ensure an accurate recombination of sequences, HR is restricted to the S and G2 phases of the cell cycle. At these stages, the DNA has been replicated already and the...
62.0K
Epigenetic Regulation01:37

Epigenetic Regulation

Epigenetic changes alter the physical structure of the DNA without changing the genetic sequence and often regulate whether genes are turned on or off. This regulation ensures that each cell produces only proteins necessary for its function. For example, proteins that promote bone growth are not produced in muscle cells. Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
X-chromosome...
3.6K