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Optimization of a Multiplex RNA-based Expression Assay Using Breast Cancer Archival Material
Published on: August 1, 2018
Functional analysis of a putative HER2-associated expressed enhancer, Her2-Enhancer1, in breast cancer cells
Mahdieh Rojhannezhad1, Bahram M Soltani1, Mohammad Vasei2
1Department of Molecular Genetics, Faculty of Biological Sciences, Tarbiat Modares University, Tehran, Iran.
Abstract:
HER-2/neu (HER2) is a member of the epidermal growth factor receptors family, encoding a protein with tyrosine kinase activity. Following the gene amplification or increased HER2 transcription, carcinogenesis has been observed in some cancers. Genetic and epigenetic changes occurring in enhancer sequences can deeply affect the expression and transcriptional regulation of downstream genes, which can cause some physiological and pathological changes, including tumor progression. A therapeutic approach that directly targets the genomic sequence alterations is of high importance, with low side effects on healthy cells. Here, we employed the CRISPR/Cas9 method to genetically knockout an expressed putative enhancer (GH17J039694; we coined it as Her2-Enhancer1) located within the HER2 gene, 17q12: 39,694,339-39,697,219 (UCSC-hg38). We then investigated the potential regulatory effect of Her2-Enhancer1 on HER2 and HER2-interacting genes. To evaluate the cis and trans effects of Her2-Enhancer1, genetic manipulation of this region was performed in HER2-positive and -negative breast cancer cells. Our bioinformatics and real-time PCR data revealed that this putative enhancer region is indeed expressed, and acts as an expressed enhancer. Further functional analysis on edited and unedited cells revealed a significant alteration in the expression of HER2 variants, as well as some other target genes of HER2. Moreover, the apoptosis rate was considerably elevated within the edited cells. As we expected, Western blot analysis confirmed a reduction in protein levels of HER2, GRB7, the gene interacting with HER2, and P-AKT in the PI3K/AKT pathway. Altogether, our findings revealed an enhancer regulatory role for Her2-Enhancer1 on HER2 and HER2-interacting genes; and that this region has a potential for targeted therapy of HER2-positive cancers.
Insights
Researchers used CRISPR/Cas9 to disable a HER2 enhancer, reducing HER2 expression and increasing apoptosis in cancer cells. This highlights a potential new therapeutic target for HER2-positive cancers.
Area of Science:
- Genomics
- Molecular Biology
- Cancer Research
Background:
- HER2/neu (HER2) is a key protein in epidermal growth factor receptor family, implicated in carcinogenesis via gene amplification or increased transcription.
- Genetic and epigenetic changes in enhancer sequences significantly impact gene expression and regulation, influencing physiological and pathological processes like tumor progression.
- Targeting genomic alterations directly offers a promising therapeutic strategy with potentially fewer side effects on healthy cells.
Purpose of the Study:
- To genetically knockout a specific HER2 enhancer (Her2-Enhancer1) using CRISPR/Cas9.
- To investigate the regulatory role of Her2-Enhancer1 on HER2 and its interacting genes.
- To evaluate the therapeutic potential of targeting Her2-Enhancer1 in HER2-positive cancers.
Main Methods:
- CRISPR/Cas9 gene editing to knockout the Her2-Enhancer1 region within the HER2 gene.
- Bioinformatics analysis and real-time PCR to confirm enhancer expression and assess gene regulation.
- Functional analysis in HER2-positive and -negative breast cancer cells, including Western blot and apoptosis assays.
Main Results:
- Confirmed Her2-Enhancer1 as an expressed enhancer regulating HER2 and interacting genes.
- Demonstrated significant alterations in HER2 variants and target gene expression in edited cells.
- Observed increased apoptosis rates and reduced protein levels of HER2, GRB7, and P-AKT in edited cells.
Conclusions:
- Her2-Enhancer1 plays a crucial regulatory role in the expression of HER2 and associated genes.
- Targeting Her2-Enhancer1 presents a potential novel therapeutic strategy for HER2-positive cancers.
- This study provides a foundation for developing gene-editing based therapies for specific cancer types.
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