MicroRNA‑34a mediates atrial fibrillation through regulation of Ankyrin‑B expression

Yun Zhu1, Zezhou Feng1, Wei Cheng2

  • 1Department of Cardiovascular Surgery, Xinqiao Hospital, Third Military Medical University, Chongqing 400037, P.R. China.

Insights

MicroRNA-34a (miR-34a) may play a key role in atrial fibrillation (AF) by regulating Ankyrin-B (Ank-B) expression. This finding offers new insights into AF mechanisms and potential therapeutic targets.

Area of Science:

  • Cardiovascular Disease
  • Molecular Biology
  • Genetics

Background:

  • Atrial fibrillation (AF) is common, recurrent, and deadly, with poorly understood mechanisms.
  • MicroRNAs (miRs) are implicated in cardiovascular disease pathogenesis.
  • Ankyrin-B (Ank-B), an adaptor protein, is linked to AF.

Purpose of the Study:

  • To investigate the role of miR-34a in AF through regulation of Ank-B expression.
  • To explore the relationship between miR-34a, Ank-B, and cardiac electrophysiology.

Main Methods:

  • Western blot analysis of Ank-B expression in atrial tissue from AF patients and controls.
  • Reverse transcription-quantitative polymerase chain reaction (RT-qPCR) for miR-34a expression.
  • Dual-luciferase assays to confirm miR-34a binding to the Ankyrin 2 gene's 3' UTR.
  • Modulation of miR-34a expression and assessment of Ank-B, sodium-calcium exchanger 1 (NCX1), and intracellular calcium (Ca2+) signaling.

Main Results:

  • Ank-B expression was lower, while miR-34a expression was higher in AF patient atria.
  • miR-34a directly targets the Ankyrin 2 gene, regulating Ank-B expression.
  • Modulating miR-34a altered Ank-B, NCX1 levels, and intracellular Ca2+ signaling.

Conclusions:

  • miR-34a plays a significant role in early electrophysiological remodeling in AF by regulating Ank-B.
  • This study provides valuable insights into AF pathogenesis.
  • miR-34a and Ank-B represent promising targets for AF diagnosis and therapy.

Related Concept Videos

Regulation of Expression Occurs at Multiple Steps02:24

Regulation of Expression Occurs at Multiple Steps

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...
26.5K
Regulation of Expression Occurs at Multiple Steps02:24

Regulation of Expression Occurs at Multiple Steps

4.0K
MicroRNAs01:22

MicroRNAs

MicroRNA (miRNA) are short, regulatory RNA transcribed from introns—non-coding regions of a gene—or intergenic regions—stretches of DNA present between genes. Several processing steps are required to form biologically active, mature miRNA. The initial transcript, called primary miRNA (pri-mRNA), base-pairs with itself forming a stem-loop structure. Within the nucleus, an endonuclease enzyme, called Drosha, shortens the stem-loop structure into hairpin-shaped pre-miRNA. After...
24.3K
MicroRNAs01:22

MicroRNAs

MicroRNA (miRNA) are short, regulatory RNA transcribed from introns (non-coding regions of a gene) or intergenic regions (stretches of DNA present between genes). Several processing steps are required to form biologically active, mature miRNA. The initial transcript, called primary miRNA (pri-mRNA), base-pairs with itself, forming a stem-loop structure. Within the nucleus, an endonuclease enzyme, called Drosha, shortens the stem-loop structure into hairpin-shaped pre-miRNA. After the pre-miRNA...
4.1K
Amyloid Fibrils03:03

Amyloid Fibrils

Amyloid fibrils are aggregates of misfolded proteins.  Under most circumstances, misfolded proteins are either refolded by chaperone proteins or degraded by the proteasome. However, in the case of a mutation or a disease, these proteins can accumulate to form large clusters and often further assemble to form elongated fibers, called fibrils. 
Amyloid deposits were observed as early as 1639 in the liver and the spleen.   In 1854, Rudolph Virchow performed iodine staining,...
12.0K
Amyloid Fibrils03:03

Amyloid Fibrils

6.5K