Exploiting cell death and tumor immunity in cancer therapy: challenges and future directions
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Guanhu Yang | Jie Liu | Hao Chi | Jun Zhang | Tianchi Zhang | Jiaan Lu | Ru He | Yang Liu | Jinghan Zhang | Heng Xu | Li Chen
[1] Hao Chi,et al. Unveiling the immune symphony: decoding colorectal cancer metastasis through immune interactions , 2024, Frontiers in immunology.
[2] Gang Tian,et al. Unraveling the role of disulfidptosis-related LncRNAs in colon cancer: a prognostic indicator for immunotherapy response, chemotherapy sensitivity, and insights into cell death mechanisms , 2023, Frontiers in molecular biosciences.
[3] Zhonggui He,et al. Self-engineered binary nanoassembly enabling closed-loop glutathione depletion-amplified tumor ferroptosis. , 2023, Biomaterials science.
[4] Yunyoung Nah,et al. IDO-triggered swellable polymeric micelles for IDO inhibition and targeted cancer immunotherapy. , 2023, Journal of controlled release : official journal of the Controlled Release Society.
[5] Jiao Sun,et al. Engineered small extracellular vesicles loaded with miR-654-5p promote ferroptosis by targeting HSPB1 to alleviate sorafenib resistance in hepatocellular carcinoma , 2023, Cell death discovery.
[6] Wanzun Lin,et al. Carbon ion radiotherapy combined with immunotherapy: synergistic anti-tumor efficacy and preliminary investigation of ferroptosis , 2023, Cancer Immunology, Immunotherapy.
[7] F. Gao,et al. Laser-activatable oxygen self-supplying nanoplatform for efficiently overcoming colorectal cancer resistance by enhanced ferroptosis and alleviated hypoxic microenvironment , 2023, Biomaterials Research.
[8] Xiaoding Xu,et al. Nanomedicine targeting ferroptosis to overcome anticancer therapeutic resistance , 2023, Science China. Life sciences.
[9] Pengcheng Zhang,et al. Polo-like kinase 1 suppresses lung adenocarcinoma immunity through necroptosis , 2023, Oncology research.
[10] Lu Zhang,et al. Epigenetic regulation of pyroptosis in cancer: Molecular pathogenesis and targeting strategies. , 2023, Cancer letters.
[11] Zhaofang Bai,et al. Insights on Antitumor Activity and Mechanism of Natural Benzophenanthridine Alkaloids , 2023, Molecules.
[12] Yuanyuan Yang,et al. An acid-responsive MOF nanomedicine for augmented anti-tumor immunotherapy via a metal ion interference-mediated pyroptotic pathway. , 2023, Biomaterials.
[13] Yuehua Wu,et al. MKL-1 suppresses ferroptosis by activating system Xc- and increasing glutathione synthesis , 2023, International journal of biological sciences.
[14] Ki-Tae Ha,et al. Regulated cell death pathways and their roles in homeostasis, infection, inflammation, and tumorigenesis , 2023, Experimental & molecular medicine.
[15] Shenglong Li,et al. Ferroptosis, Necroptosis, and Pyroptosis in Gastrointestinal Cancers: The Chief Culprits of Tumor Progression and Drug Resistance , 2023, Advanced science.
[16] Min Li,et al. Recent Organic Photosensitizer Designs for Evoking Proinflammatory Regulated Cell Death in Antitumor Immunotherapy , 2023, Small methods.
[17] Hamid Aria,et al. Immunogenic cell death inducer peptides: A new approach for cancer therapy, current status and future perspectives. , 2023, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[18] F. Gao,et al. Identification of copper metabolism-related subtypes and establishment of the prognostic model in ovarian cancer , 2023, Frontiers in Endocrinology.
[19] M. Scorsetti,et al. Metastases-directed stereotactic body radiotherapy in combination with targeted therapy or immunotherapy: systematic review and consensus recommendations by the EORTC-ESTRO OligoCare consortium. , 2023, The Lancet. Oncology.
[20] Qing Kong,et al. Cancer-associated pyroptosis: A new license to kill tumor , 2023, Frontiers in Immunology.
[21] Qing Yuan,et al. An Aggrephagy-Related LncRNA Signature for the Prognosis of Pancreatic Adenocarcinoma , 2023, Genes.
[22] Xianjun Yu,et al. Targeting cell death pathways for cancer therapy: recent developments in necroptosis, pyroptosis, ferroptosis, and cuproptosis research , 2022, Journal of hematology & oncology.
[23] Ting Zhu,et al. ACSL3 and ACSL4, Distinct Roles in Ferroptosis and Cancers , 2022, Cancers.
[24] Guangzhen Wu,et al. Research progress in inducing immunogenic cell death of tumor cells , 2022, Frontiers in Immunology.
[25] L. Xi,et al. Gambogic Acid Induces Pyroptosis of Colorectal Cancer Cells through the GSDME-Dependent Pathway and Elicits an Antitumor Immune Response , 2022, Cancers.
[26] Gang Tian,et al. Cuprotosis Programmed-Cell-Death-Related lncRNA Signature Predicts Prognosis and Immune Landscape in PAAD Patients , 2022, Cells.
[27] F. Dilnawaz,et al. Nanoparticle-based CRISPR/Cas delivery: An emerging tactic for cancer therapy. , 2022, Current medicinal chemistry.
[28] Chao Cheng,et al. A Bioinformatics-Based Analysis of an Anoikis-Related Gene Signature Predicts the Prognosis of Patients with Low-Grade Gliomas , 2022, Brain sciences.
[29] Yue Zhao,et al. A novel anoikis-related gene signature predicts prognosis in patients with head and neck squamous cell carcinoma and reveals immune infiltration , 2022, Frontiers in Genetics.
[30] Zhou Yu,et al. A Novel Necroptosis-Related Gene Signature in Skin Cutaneous Melanoma Prognosis and Tumor Microenvironment , 2022, Frontiers in Genetics.
[31] Xuepeng Wang,et al. Autophagy, ferroptosis, pyroptosis, and necroptosis in tumor immunotherapy , 2022, Signal Transduction and Targeted Therapy.
[32] Xiaosong Li,et al. A Novel Classification Model for Lower-Grade Glioma Patients Based on Pyroptosis-Related Genes , 2022, Brain sciences.
[33] V. Richter,et al. Immunogenic Cell Death in Cancer Therapy , 2022, Acta naturae.
[34] P. Karoyan,et al. PKHB1, a thrombospondin-1 peptide mimic, induces anti-tumor effect through immunogenic cell death induction in breast cancer cells , 2022, Oncoimmunology.
[35] Yingkuan Han,et al. High‐Throughput, Living Single‐Cell, Multiple Secreted Biomarker Profiling Using Microfluidic Chip and Machine Learning for Tumor Cell Classification , 2022, Advanced healthcare materials.
[36] X. Niu,et al. Ferroptosis, necroptosis, and pyroptosis in the tumor microenvironment: perspectives for immunotherapy of SCLC. , 2022, Seminars in cancer biology.
[37] L. Zitvogel,et al. Immunogenic cell stress and death , 2022, Nature Immunology.
[38] Jun Chen,et al. Ferroptosis in cancer and cancer immunotherapy , 2022, Cancer communications.
[39] Jong-Ho Cha,et al. RIPK3 activation induces TRIM28 derepression in cancer cells and enhances the anti-tumor microenvironment , 2021, Molecular Cancer.
[40] K. Cheng,et al. Inflammation-related pyroptosis, a novel programmed cell death pathway, and its crosstalk with immune therapy in cancer treatment , 2021, Theranostics.
[41] Ling Wang,et al. Enzyme-instructed and mitochondria-targeting peptide self-assembly to efficiently induce immunogenic cell death , 2021, Acta pharmaceutica Sinica. B.
[42] Chunsheng Xiao,et al. The Host-Defense-Peptide-Mimicking Synthetic Polypeptides Effectively Enhance Antitumor Immunity through Promoting Immunogenic Tumor Cell Death. , 2021, Macromolecular bioscience.
[43] F. Bray,et al. The ever‐increasing importance of cancer as a leading cause of premature death worldwide , 2021, Cancer.
[44] D. Oh,et al. Necroptosis molecular mechanisms: Recent findings regarding novel necroptosis regulators , 2021, Experimental & Molecular Medicine.
[45] G. Kroemer,et al. Targeting ferroptosis in pancreatic cancer: a double-edged sword. , 2021, Trends in cancer.
[46] Yi-Ching Wang,et al. An innovative NRF2 nano-modulator induces lung cancer ferroptosis and elicits an immunostimulatory tumor microenvironment , 2021, Theranostics.
[47] K. Bae,et al. Lipid Metabolism and Ferroptosis , 2021, Biology.
[48] G. Kroemer,et al. Broadening horizons: the role of ferroptosis in cancer , 2021, Nature Reviews Clinical Oncology.
[49] Y. Fuchs,et al. Modes of Regulated Cell Death in Cancer. , 2021, Cancer discovery.
[50] O. Kepp,et al. Ferroptosis becomes immunogenic: implications for anticancer treatments , 2020, Oncoimmunology.
[51] Asma Ahmed,et al. Targeting immunogenic cell death in cancer , 2020, Molecular oncology.
[52] C. Glorieux,et al. Regulation of PD-L1 expression in K-ras-driven cancers through ROS-mediated FGFR1 signaling , 2020, Redox biology.
[53] D. Klionsky,et al. Ferroptosis is a type of autophagy-dependent cell death. , 2020, Seminars in cancer biology.
[54] Huijuan Jiang,et al. Abnormal Ferroptosis in Myelodysplastic Syndrome , 2020, Frontiers in Oncology.
[55] J. Tainer,et al. PD-L1-Mediated Gasdermin C Expression Switches Apoptosis to Pyroptosis in Cancer Cells and Facilitates Tumor Necrosis , 2020, Nature Cell Biology.
[56] Xianjun Yu,et al. Ferroptosis, necroptosis, and pyroptosis in anticancer immunity , 2020, Journal of Hematology & Oncology.
[57] L. Galluzzi,et al. Calreticulin and cancer , 2020, Cell Research.
[58] J. Roh,et al. Inhibition of Glutaredoxin 5 predisposes Cisplatin-resistant Head and Neck Cancer Cells to Ferroptosis , 2020, Theranostics.
[59] V. Richter,et al. Recombinant Lactaptin Induces Immunogenic Cell Death and Creates an Antitumor Vaccination Effect in Vivo with Enhancement by an IDO Inhibitor , 2020, Molecules.
[60] F. Marincola,et al. Consensus guidelines for the definition, detection and interpretation of immunogenic cell death , 2020, Journal for ImmunoTherapy of Cancer.
[61] Albert G. Tsai,et al. Multiplexed single-cell morphometry for hematopathology diagnostics , 2020, Nature Medicine.
[62] Houhe Liu,et al. Self-Delivery Nanomedicine for O2-Economized Photodynamic Tumor Therapy. , 2020, Nano letters.
[63] A. Vacca,et al. Bortezomib Treatment Modulates Autophagy in Multiple Myeloma , 2020, Journal of clinical medicine.
[64] D. Discher,et al. Macrophages show higher levels of engulfment after disruption of cis interactions between CD47 and the checkpoint receptor SIRPα , 2020, Journal of Cell Science.
[65] H. Dombret,et al. Prophylactic and therapeutic antileukemic effects induced by the AAC-11-derived Peptide RT53 , 2020, Oncoimmunology.
[66] A. Addeo,et al. The Promise of Digital Biopsy for the Prediction of Tumor Molecular Features and Clinical Outcomes Associated With Immunotherapy , 2019, Front. Med..
[67] Daidi Fan,et al. Ginsenoside Rg5 induces G2/M phase arrest, apoptosis and autophagy via regulating ROS-mediated MAPK pathways against human gastric cancer. , 2019, Biochemical pharmacology.
[68] A. Mansfield,et al. Immune Cell Infiltration May Be a Key Determinant of Long-Term Survival in Small Cell Lung Cancer. , 2019, Journal of thoracic oncology : official publication of the International Association for the Study of Lung Cancer.
[69] D. Baker,et al. Intratumoral activation of the necroptotic pathway components RIPK1 and RIPK3 potentiates antitumor immunity , 2019, Science Immunology.
[70] Chao Yang,et al. The role of necroptosis in cancer biology and therapy , 2019, Molecular Cancer.
[71] M. Socinski,et al. Atezolizumab plus bevacizumab and chemotherapy in non-small-cell lung cancer (IMpower150): key subgroup analyses of patients with EGFR mutations or baseline liver metastases in a randomised, open-label phase 3 trial. , 2019, The Lancet. Respiratory medicine.
[72] A. Chinnaiyan,et al. CD8+ T cells regulate tumor ferroptosis during cancer immunotherapy , 2019, Nature.
[73] W. Gu,et al. ALOX12 is required for p53-mediated tumor suppression through a distinct ferroptosis pathway , 2019, Nature Cell Biology.
[74] Qin Xu,et al. Reprogramming Tumor Immune Microenvironment (TIME) and Metabolism via Biomimetic Targeting Codelivery of Shikonin/JQ1. , 2019, Nano letters.
[75] D. Tang,et al. The release and activity of HMGB1 in ferroptosis. , 2019, Biochemical and biophysical research communications.
[76] J. Galon,et al. Approaches to treat immune hot, altered and cold tumours with combination immunotherapies , 2019, Nature Reviews Drug Discovery.
[77] P. Karoyan,et al. CD47 agonist peptide PKHB1 induces immunogenic cell death in T‐cell acute lymphoblastic leukemia cells , 2018, Cancer science.
[78] Wenbin Lin,et al. Nanoparticle-Mediated Immunogenic Cell Death Enables and Potentiates Cancer Immunotherapy. , 2018, Angewandte Chemie.
[79] M. Sperandio,et al. Priming anti-tumor immunity by radiotherapy: Dying tumor cell-derived DAMPs trigger endothelial cell activation and recruitment of myeloid cells , 2018, Oncoimmunology.
[80] Jiahong Zhou,et al. Photosensitizer and Autophagy Promoter Coloaded ROS-Responsive Dendrimer-Assembled Carrier for Synergistic Enhancement of Tumor Growth Suppression. , 2018, Small.
[81] G. Kroemer,et al. The anticancer peptide RT53 induces immunogenic cell death , 2018, PloS one.
[82] Daqing He,et al. Anti-tumor properties of anthocyanins from Lonicera caerulea 'Beilei' fruit on human hepatocellular carcinoma: In vitro and in vivo study. , 2018, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[83] M. Kamal,et al. Anti-cancer Effects of Metformin: Recent Evidences for its Role in Prevention and Treatment of Cancer. , 2018, Current drug metabolism.
[84] G. Kroemer,et al. Inhibition of Aurora Kinase A Induces Necroptosis in Pancreatic Carcinoma. , 2017, Gastroenterology.
[85] E. Nakano,et al. The effects of EPA and DHA enriched fish oil on nutritional and immunological markers of treatment naïve breast cancer patients: a randomized double-blind controlled trial , 2017, Nutrition Journal.
[86] Paul C. Wang,et al. Carrier-free, self-assembled pure drug nanorods composed of 10-hydroxycamptothecin and chlorin e6 for combinatorial chemo-photodynamic antitumor therapy in vivo. , 2017, Nanoscale.
[87] B. Stockwell,et al. Ferroptosis: A Regulated Cell Death Nexus Linking Metabolism, Redox Biology, and Disease , 2017, Cell.
[88] Xiaoyuan Chen,et al. Chemotherapeutic drug‐photothermal agent co‐self‐assembling nanoparticles for near‐infrared fluorescence and photoacoustic dual‐modal imaging‐guided chemo‐photothermal synergistic therapy , 2017, Journal of controlled release : official journal of the Controlled Release Society.
[89] Zhenyu Li,et al. Ferroptosis: A Novel Anti-tumor Action for Cisplatin , 2017, Cancer research and treatment : official journal of Korean Cancer Association.
[90] Yoosoo Yang,et al. Exosome-SIRPα, a CD47 blockade increases cancer cell phagocytosis. , 2017, Biomaterials.
[91] Dongyang Zhao,et al. A rapid albumin-binding 5-fluorouracil prodrug with a prolonged circulation time and enhanced antitumor activity. , 2017, Biomaterials science.
[92] L. Galluzzi,et al. Necroptosis: Mechanisms and Relevance to Disease. , 2017, Annual review of pathology.
[93] D. Green,et al. Necroptosis in development, inflammation and disease , 2016, Nature Reviews Molecular Cell Biology.
[94] Gang Chen,et al. Ferroptosis, a new form of cell death, and its relationships with tumourous diseases , 2016, Journal of cellular and molecular medicine.
[95] Ruirui Xing,et al. Carrier-Free, Chemophotodynamic Dual Nanodrugs via Self-Assembly for Synergistic Antitumor Therapy. , 2016, ACS applied materials & interfaces.
[96] M. Bertrand,et al. Vaccination with Necroptotic Cancer Cells Induces Efficient Anti-tumor Immunity. , 2016, Cell reports.
[97] Yajing Wang,et al. Dietary cholesterol promotes AOM-induced colorectal cancer through activating the NLRP3 inflammasome. , 2016, Biochemical pharmacology.
[98] L. Zitvogel,et al. The oncolytic peptide LTX-315 triggers immunogenic cell death , 2016, Cell Death and Disease.
[99] Xiaoyan Zhang,et al. Single-band upconversion nanoprobes for multiplexed simultaneous in situ molecular mapping of cancer biomarkers , 2015, Nature Communications.
[100] Matthew E. Welsch,et al. Pharmacological inhibition of cystine–glutamate exchange induces endoplasmic reticulum stress and ferroptosis , 2014, eLife.
[101] Matthew E. Welsch,et al. Regulation of Ferroptotic Cancer Cell Death by GPX4 , 2014, Cell.
[102] M. Junttila,et al. Influence of tumour micro-environment heterogeneity on therapeutic response , 2013, Nature.
[103] S. Mehrotra,et al. Redox regulation of T-cell function: from molecular mechanisms to significance in human health and disease. , 2013, Antioxidants & redox signaling.
[104] Peter Vandenabeele,et al. Necroptosis: the release of damage-associated molecular patterns and its physiological relevance. , 2013, Immunity.
[105] M. R. Lamprecht,et al. Ferroptosis: An Iron-Dependent Form of Nonapoptotic Cell Death , 2012, Cell.
[106] F. Di Virgilio,et al. Autophagy-Dependent Anticancer Immune Responses Induced by Chemotherapeutic Agents in Mice , 2011, Science.
[107] R. Binder,et al. CD91-dependent programming of T-helper cell responses following heat shock protein immunization. , 2011, Nature communications.
[108] Y. Ho,et al. Arsenic trioxide and radiation enhance apoptotic effects in HL-60 cells through increased ROS generation and regulation of JNK and p38 MAPK signaling pathways. , 2011, Chemico-biological interactions.
[109] D. V. Von Hoff,et al. CBP501-Calmodulin Binding Contributes to Sensitizing Tumor Cells to Cisplatin and Bleomycin , 2011, Molecular Cancer Therapeutics.
[110] D. Hanahan,et al. Hallmarks of Cancer: The Next Generation , 2011, Cell.
[111] Michael R. Elliott,et al. Nucleotides released by apoptotic cells act as a find-me signal to promote phagocytic clearance , 2009, Nature.
[112] H Abrahamse,et al. Photodynamic therapy (PDT): a short review on cellular mechanisms and cancer research applications for PDT. , 2009, Journal of photochemistry and photobiology. B, Biology.
[113] T. Ozben. Oxidative stress and apoptosis: impact on cancer therapy. , 2007, Journal of pharmaceutical sciences.
[114] H. Osada,et al. Inhibition of ADP/ATP Exchange in Receptor-Interacting Protein-Mediated Necrosis , 2006, Molecular and Cellular Biology.
[115] Alexei Degterev,et al. Chemical inhibitor of nonapoptotic cell death with therapeutic potential for ischemic brain injury , 2005, Nature chemical biology.
[116] M. Lotze,et al. Dealing with death: HMGB1 as a novel target for cancer therapy. , 2003, Current opinion in investigational drugs.
[117] Brian Seed,et al. Fas triggers an alternative, caspase-8–independent cell death pathway using the kinase RIP as effector molecule , 2000, Nature Immunology.
[118] Arjan W. Griffioen,et al. Convergence and amplification of toll-like receptor (TLR) and receptor for advanced glycation end products (RAGE) signaling pathways via high mobility group B1 (HMGB1) , 2008, Angiogenesis.