miR-342-5p as a Potential Regulator of HER2 Breast Cancer Cell Growth

Evita Maria Lindholm1, Suvi-Katri Leivonen2, Eldri Undlien1

  • 1Department of Cancer Genetics, Institute for Cancer Research, Oslo University Hospital, The Norwegian Radium Hospital, Oslo, Norway.

Abstract

Insights

MicroRNA-342-5p (miR-342-5p) inhibits HER2 positive breast cancer growth by affecting HER2 signaling, cell motility, and mitochondrial stability. This suggests potential new therapeutic strategies for aggressive breast cancer.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • HER2 positive breast cancer (BC) exhibits aggressive behavior and poor prognosis.
  • miR-342-5p was previously identified as an upstream regulator of HER2 signaling and an inhibitor of HER2 positive BC cell growth.

Purpose of the Study:

  • To investigate the molecular mechanisms underlying miR-342-5p-induced HER2 pathway deregulation.
  • To explore the functional impact of miR-342-5p on breast cancer cells.

Main Methods:

  • Transient transfection of HER2 amplified breast cancer cell lines with miR-342-5p mimic or control.
  • Gene expression analysis using Agilent microarrays.
  • Correlation analysis with three clinical breast cancer datasets to assess gene-miR associations and survival outcomes.

Main Results:

  • Pathway analysis revealed significant suppression of HER2 downstream pathways (ERK/MAPK, SAPK/JNK) upon miR-342-5p overexpression.
  • miR-342-5p targeted genes were enriched in pathways related to cell motility.
  • Biological functions linked to mitochondrial stability were significantly affected.
  • Cytochrome B5 Reductase 3 (CYB5R3) and Rap Guanine Nucleotide Exchange Factor 6 (RAPGEF6) showed significant inverse and direct correlation with miR-342-5p in clinical datasets, respectively.
  • Low CYB5R3 and high RAPGEF6 levels were associated with improved survival.

Conclusions:

  • miR-342-5p overexpression in HER2 positive BC cells broadly impacts HER2 signaling, cell motility, and mitochondrial stability.
  • These combined effects may reduce cell proliferation and increase sensitivity to cellular stress, offering potential therapeutic avenues.

Related Concept Videos

Cell Potential and Free Energy02:58

Cell Potential and Free Energy

Thermodynamics of a Redox Reaction
Thermodynamics is the branch of physics dealing with the relationship between heat and other forms of energy. In an electrochemical cell, chemical energy is converted into electrical energy.
Thus, a link can be predicted between cell potential, free energy change, and the equilibrium constant for the reaction. Cell potential can also be measured as the oxidant or the reducing strength, and similar acid-base strength measures are reflected in equilibrium...
46.5K
pH Regulation in Cells01:28

pH Regulation in Cells

pH plays a critical role in maintaining normal cellular activities. It helps maintain the structure and function of various proteins, dictates the charge on cellular membranes, and is crucial for metabolic reactions inside the cell. Moreover, cells use the energy from the proton motive force to generate ATP.
Cytosolic pH
Under physiological conditions, the cytosolic pH is slightly more acidic than the extracellular pH. However, cells must prevent further acidification of their cytosol to...
7.6K
Epigenetic Regulation01:46

Epigenetic Regulation

Epigenetic mechanisms play an essential role in healthy development. Conversely, precisely regulated epigenetic mechanisms are disrupted in diseases like cancer.
33.8K
Regulated Protein Degradation02:58

Regulated Protein Degradation

It is vital to regulate the activity of enzymatic as well as non-enzymatic proteins inside the cell. This can be achieved either through creating a balance between their rate of synthesis and degradation or regulating the intrinsic activity of the protein. Both these regulation mechanisms play an essential role in the normal functioning of cells.
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
8.9K
GTPases and their Regulation02:14

GTPases and their Regulation

Guanine nucleotide-binding proteins (G-proteins), also known as GTPases, are a superfamily of proteins that regulate many cellular processes, such as cell signaling, vesicular transport, and the regulation of cell shape and motility. Mutation or dysfunction of these proteins can lead to disease. There are around 40,000 known G-proteins that can broadly be classified into two groups ‒  small G-proteins consisting of a single domain and large multi-domain G-proteins.
Large G-proteins,...
9.8K
Master Transcription Regulators02:23

Master Transcription Regulators

Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a  complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
7.8K