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Updated: Feb 1, 2026

Building Up a High-throughput Screening Platform to Assess the Heterogeneity of HER2 Gene Amplification in Breast Cancers
Published on: December 5, 2017
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.
Background:
HER2 positive Breast Cancers (BC) have aggressive behavior and poor prognosis. Previously, we have identified miR-342-5p as an upstream regulator of HER2 signaling, as well as inhibitor of HER2 positive BC cell line growth.
Objective:
Here, we aimed to further investigate the molecular mechanisms behind miR-342-5pinduced HER2 pathway deregulation.
Method:
Two HER2 amplified breast cancer cell lines were transiently transfected with miR-342-5p mimic or negative control, and gene expression was analyzed by Agilent microarrays. Three clinical datasets with BC patients were used to identify correlations between candidate genes and miR-342- 5p, and associations with survival.
Results:
Pathway analyses of all deregulated genes revealed a significant suppression of the HER2 downstream pathways ERK/MAPK and SAPK/JNK, whereas the miR-342-5p predicted target genes were enriched for pathways associated with cell motility.Biological functions linked to mitochondrial stability were ranked among the top toxicological functions in both gene lists. Among the most deregulated genes, Cytochrome B5 Reductase 3 (CYB5R3) and Rap Guanine Nucleotide Exchange Factor 6 (RAPGEF6) significantly anticorrelated and correlated, respectively, with miR-342-5p in all three clinical BC datasets. Low CYB5R3 levels and high RAPGEF6 levels were significantly associated with survival, although this was not directly associated with HER2 expression.
Conclusion:
Our data suggest that miR-342-5p overexpression in HER2 positive BC cell lines elicits broad effects on HER2 downstream signaling, cell motility and mitochondrial stability. Together these effects may render cells less proliferative and more sensitive to cellular stress.
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.
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