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Virus Delivery of CRISPR Guides to the Murine Prostate for Gene Alteration
Published on: April 27, 2018
Silencing KRAS overexpression in arsenic-transformed prostate epithelial and stem cells partially mitigates malignant
Ntube N O Ngalame1, Erik J Tokar1, Rachel J Person1
1Inorganic Toxicology Group, National Toxicology Program Laboratory, Division of the National Toxicology Program, National Institute of Environmental Health Sciences, Research Triangle Park, North Carolina 27709.
Abstract:
Inorganic arsenic is a human carcinogen that likely targets the prostate. Chronic arsenic exposure malignantly transforms the RWPE-1 human prostate epithelial line to chronic arsenic exposed-prostate epithelial (CAsE-PE) cells, and a derivative normal prostate stem cell (SC) line, WPE-stem to arsenic-cancer SCs (As-CSCs). The KRAS oncogene is highly overexpressed in CAsE-PE cells and activation precedes transformation, inferring mechanistic significance. As-CSCs also highly overexpress KRAS. Thus, we hypothesize KRAS activation is key in causing and maintaining an arsenic-induced malignant phenotype, and hence, KRAS knockdown (KD) may reverse this malignant phenotype. RNA interference using shRNAmirs to obtain KRAS KD was used in CAsE-PE and As-CSC cells. Cells analyzed 2 weeks post transduction showed KRAS protein decreased to 5% of control after KD, confirming stable KD. KRAS KD decreased phosphorylated ERK, indicating inhibition of RAS/ERK signaling, a proliferation/survival pathway activated with arsenic transformation. Secreted metalloproteinase (MMP) activity was increased by arsenic-induced malignant transformation, but KRAS KD from 4 weeks on decreased secreted MMP-9 activity by 50% in As-CSCs. Colony formation, a characteristic of cancer cells, was decreased in both KRAS KD transformants. KRAS KD also decreased the invasive capacity of both cell types. KRAS KD decreased proliferation in As-CSCs, consistent with loss of rapid tumor growth. Genes predicted to impact cell proliferation (eg, Cyclin D1, p16, and p21) changed accordingly in both KD cell types. Thus, KRAS silencing impacts aspects of arsenic-induced malignant phenotype, inducing loss of many typical cancer characteristics particularly in As-CSCs.
Insights
Inorganic arsenic exposure transforms prostate cells, activating the KRAS oncogene. Silencing KRAS reversed malignant characteristics, suggesting it
Area of Science:
- Environmental Toxicology
- Cancer Biology
- Molecular Oncology
Background:
- Inorganic arsenic is a known human carcinogen with a suspected predilection for the prostate.
- Chronic arsenic exposure induces malignant transformation in prostate epithelial and stem cells.
- The KRAS oncogene is significantly overexpressed in arsenic-transformed cells, suggesting a key role.
Purpose of the Study:
- To investigate the mechanistic significance of KRAS activation in arsenic-induced prostate cancer.
- To determine if KRAS knockdown (KD) can reverse the malignant phenotype of arsenic-transformed prostate cells.
Main Methods:
- Utilized RNA interference (shRNAmirs) to achieve stable KRAS knockdown in arsenic-transformed prostate epithelial (CAsE-PE) and cancer stem (As-CSC) cells.
- Assessed changes in KRAS protein levels, RAS/ERK signaling pathway activity, and metalloproteinase (MMP) activity.
- Evaluated cancer-associated phenotypes including colony formation, invasion, proliferation, and expression of cell cycle regulatory genes.
Main Results:
- KRAS protein was reduced to 5% of control levels post-KD, confirming effective silencing.
- KRAS KD inhibited RAS/ERK signaling and decreased secreted MMP-9 activity by 50% in As-CSCs.
- Colony formation, invasion, and proliferation were significantly reduced in KRAS KD cells, with notable impacts on cell cycle genes like Cyclin D1, p16, and p21.
Conclusions:
- KRAS activation is crucial for the development and maintenance of the arsenic-induced malignant phenotype in prostate cells.
- KRAS silencing effectively reverses key cancer characteristics, particularly in arsenic-induced cancer stem cells.
- Targeting KRAS may represent a therapeutic strategy for arsenic-related prostate malignancies.
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