Arctigenin induces necroptosis through mitochondrial dysfunction with CCN1 upregulation in prostate cancer cells
Yoon-Jin Lee1,2, Hae-Seon Nam2, Moon-Kyun Cho2
1Department of Biochemistry, College of Medicine, Soonchunhyang University, 31, Soonchunhyang 6-gil, Dongnam-gu, Cheonan, 31151, Republic of Korea.
Abstract:
Arctigenin, a mitochondrial complex I inhibitor, has been identified as a potential anti-tumor agent, but the involved mechanism still remains elusive. Herein, we studied the underlying mechanism(s) of action of arctigenin on acidity-tolerant prostate cancer PC-3AcT cells in the lactic acid-containing medium. At concentration showing no toxicity on normal prostate epithelial RWPE-1 and HPrEC cells, arctigenin alone or in combination with docetaxel induced significant cytotoxicity in PC-3AcT cells compared to parental PC-3 cells. With arctigenin treatment, reactive oxygen species (ROS) levels, annexin V-PE positive fractions, sub-G0/G1 peak in cell cycle analysis, mitochondrial membrane depolarization, and cell communication network factor 1 (CCN1) levels were increased, while cellular ATP content and phospho (p)-Akt level were decreased. Pretreatment with ROS scavenger N-acetylcysteine effectively reversed the series of phenomena caused by arctigenin, suggesting that ROS served as upstream molecules of arctigenin-driven cytotoxicity. Meanwhile, arctigenin increased the levels of p-receptor-interacting serine/threonine-protein kinase 3 (p-RIP3) and p-mixed lineage kinase domain-like pseudokinase (p-MLKL) as necroptosis mediators, and pretreatment with necroptosis inhibitor necrostatin-1 restored their levels and cell viability. Treatment of spheroids with arctigenin resulted in necroptotic cell death, which was prevented by N-acetylcysteine. The siRNA-based knockdown of CCN1 suppressed the levels of MLKL, B-cell lymphoma 2 (Bcl-2), and induced myeloid leukemia cell differentiation (Mcl-1) with increased cleavage of Bcl-2-associated X (Bax) and caspase-3. Collectively, these results provide new insights into the molecular mechanisms underlying arctigenin-induced cytotoxicity, and support arctigenin as a potential therapeutic agent for targeting non-Warburg phenotype through induction of necroptosis via ROS-mediated mitochondrial damage and CCN1 upregulation.
Insights
Arctigenin induces prostate cancer cell death through necroptosis, a process involving reactive oxygen species and cell communication factor 1. This study reveals arctigenin
Area of Science:
- Biochemistry
- Cell Biology
- Oncology
Background:
- Arctigenin is a potential anti-tumor agent, but its mechanism of action is unclear.
- Prostate cancer cells exhibit altered metabolism, particularly in acidic environments.
Purpose of the Study:
- To elucidate the mechanism of arctigenin-induced cytotoxicity in acidity-tolerant prostate cancer cells.
- To investigate arctigenin's effects on reactive oxygen species (ROS), necroptosis, and cell communication network factor 1 (CCN1).
Main Methods:
- Treatment of PC-3AcT prostate cancer cells with arctigenin, docetaxel, N-acetylcysteine, and necrostatin-1.
- Analysis of cytotoxicity, ROS levels, apoptosis, cell cycle, mitochondrial membrane potential, ATP content, Akt phosphorylation, and necroptosis markers (RIP3, MLKL).
- siRNA-mediated knockdown of CCN1 and assessment of downstream effects on apoptosis and cell death regulators.
Main Results:
- Arctigenin induced significant cytotoxicity in PC-3AcT cells, increasing ROS, apoptosis, cell cycle arrest, and mitochondrial damage.
- Arctigenin activated necroptosis pathways (RIP3, MLKL) and upregulated CCN1.
- ROS and CCN1 were identified as key mediators of arctigenin's cytotoxic effects, leading to apoptosis and necroptosis.
Conclusions:
- Arctigenin triggers prostate cancer cell death via ROS-mediated mitochondrial damage and CCN1 upregulation, inducing necroptosis.
- Arctigenin demonstrates potential as a therapeutic agent for non-Warburg phenotype prostate cancer.
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