Interplay between ROS and autophagy in cancer cells, from tumor initiation to cancer therapy
Interplay between ROS and autophagy in cancer cells, from tumor initiation to cancer therapy
- Research Article
48
- 10.3892/ol.2016.5367
- Nov 8, 2016
- Oncology Letters
Wogonin is considered to be an inhibitor of myeloid cell leukemia 1 and B-cell lymphoma 2, and a potential antitumor drug due to its ability to induce apoptosis in certain cancer cells; however, few previous studies have reported on wogonin-induced autophagy. The aim of the present study was to investigate the influence of wogonin on autophagy in human pancreatic cancer cells (HPCCs), elucidate its mechanism, and identify strategies to increase its effectiveness as an anti-cancer treatment. HPCCs were treated with wogonin and autophagy was detected in the cells. The mechanism of wogonin-related autophagy was investigated, and the antioxidant N-acetyl-L-cysteine (NAC) was used to assess the role of reactive oxygen species (ROS) in wogonin-related autophagy. The results demonstrated that wogonin may induce autophagy by activating the Beclin-1/phosphatidylinositol-3-kinase and ROS pathways in HPCCs, and may enhance ROS generation, followed by the activation of the AKT/ULK1/4E-BP1/CYLD pathway and inhibition of the mammalian target of rapamycin signaling pathway. The incubation of HPCCs with wogonin and the antioxidant NAC, revealed that the effects of wogonin-enhanced ROS generation on autophagy-related molecules were inhibited, contributing to the inhibition of autophagy and increasing the cell death ratio through apoptosis activation in HPCCs. These studies suggest that autophagy activation, via the ROS pathway, by the antitumor drug wogonin in HPCCs may partially reduce the antitumor effects of the drug, and that the antioxidant NAC may enhance the antitumor effectiveness of wogonin via the inhibition of ROS-enhanced autophagy and the subsequent promotion of apoptosis. Therefore, the present research suggests that wogonin combined with NAC may be a novel combination therapy for clinical pancreatic cancer therapy trials.
- Research Article
58
- 10.1038/jid.2009.436
- Apr 1, 2010
- Journal of Investigative Dermatology
UVB Radiation Induces Apoptosis in Keratinocytes by Activating a Pathway Linked to “BLT2-Reactive Oxygen Species”
- Research Article
296
- 10.4161/auto.25399
- Sep 29, 2013
- Autophagy
Calreticulin surface exposure (ecto-CALR), ATP secretion, maturation of dendritic cells (DCs) and stimulation of T cells are prerequisites for anticancer therapy-induced immunogenic cell death (ICD). Recent evidence suggests that chemotherapy-induced autophagy may positively regulate ICD by favoring ATP secretion. We have recently shown that reactive oxygen species (ROS)-based endoplasmic reticulum (ER) stress triggered by hypericin-mediated photodynamic therapy (Hyp-PDT) induces bona fide ICD. However, whether Hyp-PDT-induced autophagy regulates ICD was not explored. Here we showed that, in contrast to expectations, reducing autophagy (by ATG5 knockdown) in cancer cells did not alter ATP secretion after Hyp-PDT. Autophagy-attenuated cancer cells displayed enhanced ecto-CALR induction following Hyp-PDT, which strongly correlated with their inability to clear oxidatively damaged proteins. Furthermore, autophagy-attenuation in Hyp-PDT-treated cancer cells increased their ability to induce DC maturation, IL6 production and proliferation of CD4+ or CD8+ T cells, which was accompanied by IFNG production. Thus, our study unravels a role for ROS-induced autophagy in weakening functional interaction between dying cancer cells and the immune system thereby helping in evasion from ICD prerequisites or determinants.
- Research Article
34
- 10.1074/jbc.m111.280990
- Oct 1, 2011
- Journal of Biological Chemistry
The process of autophagy is situated at the intersection of multiple cell signaling pathways, including cell metabolism, growth, and death, and hence is subject to multiple forms of regulation. We previously reported that inhibition of isoprenylcysteine carboxylmethyltransferase (Icmt), which catalyzes the final step in the post-translational prenylation of so-called CAAX proteins, results in the induction of autophagy which enhances cell death in some cancer cells. In this study, using siRNA-mediated knockdown of a group of small GTPases that are predicted Icmt substrates, we identify Rac3 GTPase as a negative regulator of the process of autophagy. Knockdown of Rac3, but not the closely related isoforms Rac1 and Rac2, results in induction of autophagy. Ectopic expression of Rac3, significantly rescues cells from autophagy and cell death induced by Icmt inhibition, strengthening the notion of an isoform-specific autophagy regulatory function of Rac3. This role of Rac3 was observed in multiple cell lines with varying Rac subtype expression profiles, suggesting its broad involvement in the process. The identification of this less-studied Rac member as a novel regulator provides new insight into autophagy and opens opportunities in identifying additional regulatory inputs of the process.
- Research Article
100
- 10.1038/mtna.2013.45
- Sep 1, 2013
- Molecular Therapy. Nucleic Acids
Therapeutic Silencing of Bcl-2 by Systemically Administered siRNA Nanotherapeutics Inhibits Tumor Growth by Autophagy and Apoptosis and Enhances the Efficacy of Chemotherapy in Orthotopic Xenograft Models of ER (−) and ER (+) Breast Cancer
- Research Article
- 10.1158/1538-7445.am2017-3318
- Jul 1, 2017
- Cancer Research
Antiestrogen resistance is the major impediment to the eradication of estrogen receptor positive (ER+) breast cancer. Approximately 30% of ER+ breast tumors initially responsive to antiestrogen therapy will acquire resistance. One approach to reducing the occurrence of acquired antiestrogen resistance is to identify and target key signaling nodes that specifically attenuate the ability of antiestrogens to kill cancer cells. Toward this goal, we identified MEK/MAPK1/2 as a key molecular target based on the general inability of antiestrogens to effectively block MEK1/MAPK1/2-mediated phosphorylation of BimEL in breast cancer cells. BimEL is a pro-apoptotic member of the BH3 family of proteins that is inactivated (degraded by the proteasome) when phosphorylated by MAPK1/2. The combination of an antiestrogen and MEK1 inhibitor robustly-induced BimEL-dependent breast cancer cell apoptosis (Periyasamy-Thandavan et al., 2012). However, a subpopulation of breast cancer cells survive this combined treatment via an autophagy-dependent mechanism. Based on the key role of JNK in regulating autophagy in cancer cells via BimEL phosphorylation, we hypothesized that JNK was a key effector of autophagy in breast cancer cells surviving antiestrogen treatment when used as a single agent or in combination with a MEK inhibitor. To test this hypothesis, we utilized the selective JNK inhibitor SP600125 as a single agent or in combination with estradiol (E2), 4-hydroxytamoxifen (4-OHT), and/or U0126 (a selective MEK1 inhibitor). Treatments were conducted with the antiestrogen-sensitive cell lines MCF-7 and T-47D and the antiestrogen resistant cell line TR5, previously derived in our laboratory by a step-wise 4-OHT selection. Effects on cell death (determination of apoptosis) and autophagy (determination of autophagy levels and flux) were evaluated for the various hormonal treatments conducted in the presence or absence of JNK inhibition. These studies showed that: (1) targeting JNK in antiestrogen sensitive breast cancer cells induces apoptosis with caspase-dependent cleavage of PARP as a surrogate marker of apoptosis; (2) JNK activity is elevated in antiestrogen resistant TR5 cells and JNK inhibition induces TR5 cell death; and (3) antiestrogen sensitive and resistant breast cancer cells dying as a result of JNK inhibition can show extensive cytosolic vacuolization with the autophagy protein LC3 (ATG8) localized to the aberrant vacuoles. Overall, our results support the conclusion that JNK plays a key autophagy-dependent survival role in breast cancer cells. Ongoing studies aim to identify the specific JNK protein(s) that disrupt autophagy and enhance death of breast cancer cells toward the goal of identifying specific molecular targets to block autophagy in breast cancer cells. Citation Format: Rohit Munagala, Carol Joseph, Annie Liu, Kebin Liu, Muthusamy Thangaraju, Patricia V. Schoenlein. A critical role for c-Jun N-terminal kinase in autophagy and cell survival of breast cancer cells [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2017; 2017 Apr 1-5; Washington, DC. Philadelphia (PA): AACR; Cancer Res 2017;77(13 Suppl):Abstract nr 3318. doi:10.1158/1538-7445.AM2017-3318
- Research Article
58
- 10.1016/j.procbio.2020.09.032
- Sep 30, 2020
- Process Biochemistry
A paradoxical role of reactive oxygen species in cancer signaling pathway: Physiology and pathology
- Research Article
88
- 10.1038/bjc.2014.281
- Jun 3, 2014
- British Journal of Cancer
Background:Dichloroacetate (DCA) has been found to have antitumour properties.Methods:We investigated the cellular and metabolic responses to DCA treatment and recovery in human colorectal (HT29, HCT116 WT and HCT116 Bax-ko), prostate carcinoma cells (PC3) and HT29 xenografts by flow cytometry, western blotting, electron microscopy, 1H and hyperpolarised 13C-magnetic resonance spectroscopy.Results:Increased expression of the autophagy markers LC3B II was observed following DCA treatment both in vitro and in vivo. We observed increased production of reactive oxygen species (ROS) and mTOR inhibition (decreased pS6 ribosomal protein and p4E-BP1 expression) as well as increased expression of MCT1 following DCA treatment. Steady-state lactate excretion and the apparent hyperpolarised [1-13C] pyruvate-to-lactate exchange rate (kPL) were decreased in DCA-treated cells, along with increased NAD+/NADH ratios and NAD+. Steady-state lactate excretion and kPL returned to, or exceeded, control levels in cells recovered from DCA treatment, accompanied by increased NAD+ and NADH. Reduced kPL with DCA treatment was found in HT29 tumour xenografts in vivo.Conclusions:DCA induces autophagy in cancer cells accompanied by ROS production and mTOR inhibition, reduced lactate excretion, reduced kPL and increased NAD+/NADH ratio. The observed cellular and metabolic changes recover on cessation of treatment.
- Research Article
2
- 10.1371/journal.pone.0326224
- Jun 18, 2025
- PLOS One
Cancer patients with psychotic disorders have occasionally exhibited reduced tumor sizes following long-term antipsychotic treatment. Previous studies have shown that antipsychotic drugs, such as clozapine, could inhibit cancer cell proliferation, but the underlying mechanisms remain unclear. This study investigates the anti-tumor effects of clozapine on breast cancer cells and explores its mechanisms of action. We used clonogenic and MTT assays to assess cell proliferation, flow cytometry and western blotting analyses to evaluate cell cycle distribution, apoptosis, and autophagy following clozapine exposure. The results show that clozapine downregulates Cyclin D1, CDK4, and CDK6, while upregulating p21 and p27 in MCF-7 cells, leading to G0/G1 phase arrest. Clozapine exposure also increases reactive oxygen species (ROS), apoptosis and autophagy levels. Notably, treatment with the antioxidant α-Tocopherol restores cell viability and reduces ROS and autophagy, indicating that ROS plays a central role in clozapine-induced cytotoxicity. Additionally, inhibition of autophagy using chloroquine enhances clozapine-induced apoptosis and further reduces cell viability. These findings suggest that clozapine induces apoptosis and autophagy through ROS generation and that combining clozapine with autophagy inhibitors could sensitize MCF-7 cells to treatment. Furthermore, clozapine induces significant cytotoxicity in MDA-MB-231 cells, an aggressive, ER-negative breast cancer model, through similar ROS- and autophagy-mediated mechanisms. The addition of α-Tocopherol similarly rescued these cells from clozapine-induced cell death. Overall, our study demonstrates that clozapine suppresses the growth of both MCF-7 and MDA-MB-231 breast cancer cells by inducing cytotoxicity via ROS and autophagy, highlighting its potential as a therapeutic agent, especially in combination with autophagy inhibitors.
- Research Article
64
- 10.4161/auto.28954
- May 16, 2014
- Autophagy
Ribonucleotide reductase (RNR) plays a critical role in catalyzing the biosynthesis and maintaining the intracellular concentration of 4 deoxyribonucleoside triphosphates (dNTPs). Unbalanced or deficient dNTP pools cause serious genotoxic consequences. Autophagy is the process by which cytoplasmic constituents are degraded in lysosomes to maintain cellular homeostasis and bioenergetics. However, the role of autophagy in regulating dNTP pools is not well understood. Herein, we reported that starvation- or rapamycin-induced autophagy was accompanied by a decrease in RNR activity and dNTP pools in human cancer cells. Furthermore, downregulation of the small subunit of RNR (RRM2) by siRNA or treatment with the RNR inhibitor hydroxyurea substantially induced autophagy. Conversely, cancer cells with abundant endogenous intracellular dNTPs or treated with dNTP precursors were less responsive to autophagy induction by rapamycin, suggesting that autophagy and dNTP pool levels are regulated through a negative feedback loop. Lastly, treatment with si-RRM2 caused an increase in MAP1LC3B, ATG5, BECN1, and ATG12 transcript abundance in xenografted Tu212 tumors in vivo. Together, our results revealed a previously unrecognized reciprocal regulation between dNTP pools and autophagy in cancer cells.
- Research Article
- 10.1158/1538-7445.am2012-4654
- Apr 15, 2012
- Cancer Research
Our previous studies reported that docosahexaenoic acid (DHA) induces autophagy through p53 inhibition in the wild-type p53 cancer cells. This study attempts to elucidate the molecular mechanism underlying DHA-induced autophagy in PC3 and DU145 prostate cancer cells harboring mutant p53. DHA increased both the level of microtubule-associated protein light-chain 3 (LC3) and the number of autophagic vacuoles. Autophagic flux assay confirmed that DHA-induced increase in LC3-II and autophagic vesicles was an outcome of autophagic process activation, indicating that DHA also induces autophagy in p53 mutant cancer cells. DHA treatment also increased the level of reactive oxygen species (ROS) as measured by dihydroethidine staining, and pretreatment of an antioxidant, N-acetylcysteine (NAC), significantly inhibited the ROS production as well as autophagy induced by DHA, suggesting that ROS regulates the autophagic process triggered by DHA. Further experiments showed that the mechanism of DHA-induced autophagy associated with ROS production was related to a decrease in the activity of mammalian target of rapamycin (mTOR). NAC remarkably restored the decreases in the levels of phospho-mTOR and 4EBP, an mTOR downstream molecule, induced by DHA as analyzed by the Western blot assay. Furthermore, the level of phospho-AMPK, which negatively regulates mTOR was increased, while phospho-Akt was reduced during the DHA-induced autophagy, indicating the involvement of AMPK and Akt signalings. Collectively, our results demonstrate that DHA induces autophagy through the ROS-mediated mTOR inactivation in p53 mutant prostate cancer cells. This work was supported by the National Research Foundation of Korea (NRF) grant funded by the Korea government (MEST) (No. 2011-0006232]. Citation Format: {Authors}. {Abstract title} [abstract]. In: Proceedings of the 103rd Annual Meeting of the American Association for Cancer Research; 2012 Mar 31-Apr 4; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2012;72(8 Suppl):Abstract nr 4654. doi:1538-7445.AM2012-4654
- Research Article
23
- 10.1016/j.pharep.2016.07.011
- Jul 30, 2016
- Pharmacological Reports
Autophagy in MCF-7 cancer cells induced by copper complexes.
- Research Article
30
- 10.1155/2016/3897250
- Nov 22, 2015
- Oxidative Medicine and Cellular Longevity
Nrf2 (NF-E2-related factor 2) pathway and autophagy both can respond to oxidative stress to promote cancer cells to survive in the tumor microenvironment. We, therefore, explored the relevance between Nrf2 pathway and autophagy in pancreatic cancer cells upon stimulation of reactive oxygen species (ROS). Pancreatic cancer cells were cultured under controlled ROS stressing condition or basal condition. Different inhibitors were used to prevent autophagy at particular stages. Nrf2 siRNA was used to inhibit Nrf2 pathway activation. Ad-mRFP-GFP-LC3 infection was used to monitor autophagic flux. The result shows that a small amount of exogenous hydrogen peroxide (H2O2) can significantly improve the level of intracellular ROS. Moreover, our findings indicate that ROS promotes the activation of both Nrf2 pathway and autophagy in pancreatic cancer cells. Moreover, our data demonstrate that suppression of autophagic activity at particular stages results in an increased promotion of Nrf2 pathway activation upon ROS stimulation. Furthermore, we found that silencing of Nrf2 promotes autophagy upon ROS stimulation. In addition, Nrf2 interference effectively promotes autophagic flux upon ROS stimulation. In summary, our findings suggest that Nrf2 pathway and autophagy have a negative interaction with each other upon ROS stimulation.
- Single Book
77
- 10.1007/978-3-319-10079-1
- Jan 1, 2015
Compartmentalization of Reactive Oxygen Species and Nitric Oxide Production in Plant Cells - An Overview.- Established and Proposed Roles of Xanthine Oxidoreductase in Oxidative and Reductive Pathways in Plants.- The Roles of Plant Peroxidases in the Metabolism of Reactive Nitrogen Species and Other Nitrogenous Compounds.- Mitochondrial Signaling in Plants Under Hypoxia: Use of Reactive Oxygen Species (ROS) and Reactive Nitrogen Species (RNS).-Feedback Loop of Non-Coupled Respiration and Reactive Oxygen Species Production in Plant Mitochondria.- Antioxidative Systems and Stress Tolerance - Insight from Wild and Cultivated Tomato Species.- The Role of Reactive Oxygen Species Under Ammonium Nutrition.- Allelopathic Compounds as Oxidative Stress Agents: Yes or NO.- The Role of Reactive Oxygen and Nitrogen Species in Bioenergetics, Metabolism and Signaling During Seed Germination.- ROS Signalling in Plant Embryogenesis.- Nitrosative Door in Seed Dormancy Alleviation and Germination.- Dissecting Nitric Oxide Signaling in Nucleus: Role of S-Nitrosylation in Regulating Nuclear Proteins.- Nitration and S-Nitrosylation: Two Post-Translational Modifications (Ptms) Mediated by Reactive Nitrogen Species (RNS) and Their Role in Signalling Processes of Plant Cells.- S-Nitrosoglutathione Reductase: A Key Regulator of S-Nitrosylation in Plant Development and Stress Responses.- Interaction of Calcium Signaling With Reactive Oxygen and Reactive Nitrogen Species.
- Research Article
47
- 10.1021/acsabm.0c00448
- Jun 26, 2020
- ACS Applied Bio Materials
The biomechanical environment of natural or synthetic extracellular matrices (ECMs) is identified to play a considerable role in embryonic development in stem cell fate and also in cancer development and fibrotic diseases. However, rare evidence shows the impact of biomechanical signals such as ECM stiffness on cancer cell stemness and autophagy, which makes huge contributions to cancer and many developmental and physiological processes. Furthermore, the influence and mechanism of ECM stiffness on autophagy in cancer cells remains unclear. Herein, we employed fibronectin-coated polyacrylamide hydrogels as the substrates for culturing breast cancer cells. We found that a soft environment was beneficial for the maintenance of cancer stem cell (CSC) population in breast cancer cells, which likely led to aggravated chemoresistance. Conversely, nutritional deprivation-induced autophagy was elevated along with increasing matrix stiffness. In addition, we found that though the central regulator of mechanotransduction, the yes-associated protein, YAP, was beneficial for autophagy activation, unexpectedly, it was not the main cause of rigid substrate promoting autophagy. In contrast, the YAP was crucial for a compliant environment for maintaining breast cancer stem cells and promoting chemotherapeutic resistance. We also found that the Rho-ROCK-ERK signal pathway and actin cytoskeleton were essential for the regulation of autophagy by matrix stiffness. Taken together, our study showed the important influence of ECM stiffness on stemness and autophagy in breast cancer cells and revealed the possible signal pathway involved in the mechanotransduction in autophagy activation, which provides significant implications for the study of cancer progression and design of hydrogels for tissue engineering in clinical therapy.