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Updated: May 12, 2026

Development and Maintenance of a Preclinical Patient Derived Tumor Xenograft Model for the Investigation of Novel Anti-Cancer Therapies
Published on: September 30, 2016
Atorvastatin as a pleiotropic anticancer agent: mechanisms, evidence, and therapeutic repurposing potential
Jiaqi Su1, Caifeng Ji2,3, Xinlu Niu4
1School of pharmacy, Hebei Medical University, Shijiazhuang, China.
Abstract:
Cancer remains a leading cause of global mortality, with incidence and mortality rates rising annually. Atorvastatin, a widely used statin, primarily functions by inhibiting 3-hydroxy-3-methylglutaryl-coenzyme A (HMG-CoA) reductase, the rate-limiting enzyme in the mevalonate pathway, thereby lowering cholesterol. Accumulating preclinical and clinical evidence suggests that ATV possesses significant anticancer properties beyond its lipid-lowering effects, positioning it as a promising candidate for adjunctive cancer therapy. The anticancer efficacy of ATV stems fundamentally from its disruption of the mevalonate pathway, which impedes the critical isoprenylation of small GTPases (e.g., Ras, Rho). This inhibition cascades into multifaceted antitumor activities, including the induction of apoptosis and autophagy, dysregulation of the cell cycle, suppression of proliferation, migration, and invasion. ATV further modulates key oncogenic signaling pathways and exhibits potent anti-inflammatory and antioxidant effects within the tumor microenvironment. Crucially, evidence demonstrates that integrating ATV into multimodality regimens-such as alongside immune checkpoint inhibitors and metabolic modulators-significantly improves survival outcomes in patients, substantiating its clinical translational potential. However, a comprehensive and systematic evaluation of its pleiotropic anticancer mechanisms and therapeutic potential is lacking. This review aims to fill this gap by systematically summarizing the efficacy and molecular mechanisms of ATV across various malignancies, alongside its cytoprotective effects on normal tissues. The challenges and future directions for its clinical translation in oncology are also critically discussed.
Insights
Atorvastatin (ATV), a cholesterol-lowering drug, shows significant anticancer effects by disrupting the mevalonate pathway. This review explores ATV
Area of Science:
- Oncology
- Pharmacology
- Molecular Biology
Background:
- Cancer is a leading global cause of mortality with rising rates.
- Atorvastatin (ATV), a statin, inhibits HMG-CoA reductase, lowering cholesterol.
- Emerging evidence suggests ATV has anticancer properties beyond lipid-lowering.
Purpose of the Study:
- To systematically review ATV's anticancer efficacy and molecular mechanisms across malignancies.
- To evaluate ATV's cytoprotective effects on normal tissues.
- To discuss challenges and future directions for ATV's clinical translation in oncology.
Main Methods:
- Systematic review of preclinical and clinical evidence.
- Analysis of ATV's impact on the mevalonate pathway and downstream signaling.
- Evaluation of ATV's role in multimodality cancer therapy.
Main Results:
- ATV disrupts the mevalonate pathway, inhibiting small GTPase isoprenylation.
- This leads to apoptosis, autophagy, cell cycle dysregulation, and suppressed proliferation, migration, and invasion.
- ATV modulates oncogenic pathways and exhibits anti-inflammatory and antioxidant effects.
- Combination therapy with ATV improves survival outcomes in cancer patients.
Conclusions:
- ATV demonstrates significant pleiotropic anticancer activities.
- Its disruption of the mevalonate pathway is a key anticancer mechanism.
- ATV holds promise as an adjunctive cancer therapy, with potential for improved patient outcomes.
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