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Published on: May 5, 2023
Therapeutic silencing of KRAS using systemically delivered siRNAs
Chad V Pecot1, Sherry Y Wu2, Seth Bellister3
1Division of Cancer Medicine, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Despite being among the most common oncogenes in human cancer, to date, there are no effective clinical options for inhibiting KRAS activity. We investigated whether systemically delivered KRAS siRNAs have therapeutic potential in KRAS-mutated cancer models. We identified KRAS siRNA sequences with notable potency in knocking down KRAS expression. Using lung and colon adenocarcinoma cell lines, we assessed antiproliferative effects of KRAS silencing in vitro. For in vivo experiments, we used a nanoliposomal delivery platform, DOPC, for systemic delivery of siRNAs. Various lung and colon cancer models were used to determine efficacy of systemic KRAS siRNA based on tumor growth, development of metastasis, and downstream signaling. KRAS siRNA sequences induced >90% knockdown of KRAS expression, significantly reducing viability in mutant cell lines. In the lung cancer model, KRAS siRNA treatment demonstrated significant reductions in primary tumor growth and distant metastatic disease, while the addition of CDDP was not additive. Significant reductions in Ki-67 indices were seen in all treatment groups, whereas significant increases in caspase-3 activity were only seen in the CDDP treatment groups. In the colon cancer model, KRAS siRNA reduced tumor KRAS and pERK expression. KRAS siRNAs significantly reduced HCP1 subcutaneous tumor growth, as well as outgrowth of liver metastases. Our studies demonstrate a proof-of-concept approach to therapeutic KRAS targeting using nanoparticle delivery of siRNA. This study highlights the potential translational impact of therapeutic RNA interference, which may have broad applications in oncology, especially for traditional "undruggable" targets.
Insights
Targeting KRAS mutations with small interfering RNA (siRNA) delivered via nanoparticles shows therapeutic promise. This approach significantly reduced tumor growth and metastasis in preclinical cancer models.
Area of Science:
- Oncology
- Molecular Biology
- Nanotechnology
Background:
- KRAS is a common oncogene in human cancers, yet effective inhibitors are lacking.
- Targeting KRAS mutations remains a significant challenge in cancer therapy.
Purpose of the Study:
- To investigate the therapeutic potential of systemically delivered KRAS small interfering RNAs (siRNAs) in KRAS-mutated cancer models.
- To evaluate the efficacy of nanoparticle-delivered KRAS siRNA in reducing tumor growth and metastasis.
Main Methods:
- Identification and validation of potent KRAS siRNA sequences.
- In vitro assessment of anti-proliferative effects in lung and colon cancer cell lines.
- In vivo evaluation using a nanoliposomal delivery platform (DOPC) in various lung and colon cancer models.
Main Results:
- KRAS siRNA achieved >90% knockdown of KRAS expression, significantly reducing cancer cell viability.
- Systemic KRAS siRNA treatment significantly reduced primary tumor growth and metastasis in lung cancer models.
- KRAS siRNA reduced tumor KRAS and pERK expression, and inhibited tumor growth and liver metastasis in colon cancer models.
Conclusions:
- Systemic delivery of KRAS siRNA using nanoparticle platforms offers a viable therapeutic strategy for KRAS-mutated cancers.
- This study demonstrates a proof-of-concept for RNA interference targeting traditionally "undruggable" targets like KRAS.
- Therapeutic RNA interference holds significant translational potential for broad oncological applications.
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