4.2 Article

Silver nanoparticles induce a non-immunogenic tumor cell death

相关参考文献

注意:仅列出部分参考文献,下载原文获取全部文献信息。
Review Biochemistry & Molecular Biology

Cancer Therapy by Silver Nanoparticles: Fiction or Reality?

David Kovacs et al.

Summary: This review highlights the potential of silver nanoparticles in cancer treatment, including their cancer-specific targeting, reduced side effects, and strong anti-cancer properties. It also discusses the critical hurdles in their clinical utilization.

INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES (2022)

Review Chemistry, Physical

Synthesis, Characterization and Biomedical Application of Silver Nanoparticles

Ashwini Naganthran et al.

Summary: Silver nanoparticles (AgNPs) have been widely used in biotechnology due to their antibacterial, antiviral, and antifungal properties. This study analyzed the trends in AgNPs synthesis methods and their applications in the biomedical field. The results showed that AgNPs have excellent properties in antibacterial, antiviral, and anticancer applications.

MATERIALS (2022)

Review Biotechnology & Applied Microbiology

The interaction between nanoparticles and immune system: application in the treatment of inflammatory diseases

Jin Liu et al.

Summary: Nanoparticles are emerging tools in the biomedical field that can have diverse effects on the organism and potentially change disease treatment paradigms. However, our understanding of how nanoparticles influence immune responses is limited, and clinical trials are needed to evaluate their safety and long-term effects. This review provides an overview of recent advances in nanoparticles and their interaction with the immune system, focusing on their application in the management of inflammatory diseases.

JOURNAL OF NANOBIOTECHNOLOGY (2022)

Article Chemistry, Multidisciplinary

Silver nanoparticles induce mitochondria-dependent apoptosis and late non-canonical autophagy in HT-29 colon cancer cells

Jun Bao et al.

Summary: This study synthesized AgNPs using gallic acid as a reductant and characterized them using various techniques. The synthesized AgNPs exhibited cytotoxicity on colorectal adenocarcinoma cells (HT-29) and induced apoptosis and non-canonical autophagy. Further research using animal models is needed to understand the exact mechanisms of AgNPs in the treatment of digestive tract neoplasms.

NANOTECHNOLOGY REVIEWS (2022)

Editorial Material Pharmacology & Pharmacy

Role of nanoparticle-mediated immunogenic cell death in cancer immunotherapy

Yajie Sun et al.

ASIAN JOURNAL OF PHARMACEUTICAL SCIENCES (2021)

Article Environmental Sciences

Mitophagy-lysosomal pathway is involved in silver nanoparticle-induced apoptosis in A549 cells

Jiangyan Li et al.

Summary: The study showed that the cytotoxicity of silver nanoparticles on A549 cells led to apoptosis and mitochondrial injury, triggering autophagy and mitophagy, and also causing lysosomal damage and oxidative/antioxidant imbalance.

ECOTOXICOLOGY AND ENVIRONMENTAL SAFETY (2021)

Review Immunology

Immunogenic Cell Death Induction by Ionizing Radiation

Mengqin Zhu et al.

Summary: Immunogenic cell death (ICD) is a regulated form of cell death induced by various stresses, which releases DAMPs such as HMGB1, CRT, ATP, and HSPs to produce antitumor immunity. Ionizing radiation (IR) has been shown to induce ICD, with factors like dose, type, and fractionation influencing its induction.

FRONTIERS IN IMMUNOLOGY (2021)

Review Medicine, Research & Experimental

Molecular mechanisms of chemo- and radiotherapy resistance and the potential implications for cancer treatment

Ya-Ping Liu et al.

Summary: Cancer is a leading cause of death worldwide, with surgery being the primary treatment approach. Resistance to radiotherapy and chemotherapy may lead to treatment failure. Understanding the molecular mechanisms of resistance can potentially improve treatment outcomes.

MEDCOMM (2021)

Review Cell Biology

Calreticulin and cancer

Jitka Fucikova et al.

Summary: CALR is a protein located in the endoplasmic reticulum that plays important roles in cellular processes and protein folding. It acts as a chaperone in healthy cells, assisting protein folding and supporting Ca2+-dependent processes, while also being exposed on the cell surface in cancer cells to promote immunogenic cell death. Loss-of-functionCALRmutations can promote oncogenesis by impairing cellular homeostasis and compromising natural and therapy-driven immunosurveillance.

CELL RESEARCH (2021)

Article Environmental Sciences

Silver nanoparticles modulate mitochondrial dynamics and biogenesis in HepG2 cells

Jiangyan Li et al.

ENVIRONMENTAL POLLUTION (2020)

Review Oncology

Targeting immunogenic cell death in cancer

Asma Ahmed et al.

MOLECULAR ONCOLOGY (2020)

Review Cell Biology

Immunogenic cell death in cancer therapy: Present and emerging inducers

Jingyi Zhou et al.

JOURNAL OF CELLULAR AND MOLECULAR MEDICINE (2019)

Review Chemistry, Multidisciplinary

Biomedical Applications of Silver Nanoparticles: An Up-to-Date Overview

Alexandra-Cristina Burdusel et al.

NANOMATERIALS (2018)

Article Biochemistry & Molecular Biology

Importance of eIF2α Phosphorylation as a Protective Mechanism Against Heat Stress in Mouse Male Germ Cells

Jungbin Yoon et al.

MOLECULAR REPRODUCTION AND DEVELOPMENT (2017)

Review Nanoscience & Nanotechnology

Mechanisms of silver nanoparticle-induced toxicity and important role of autophagy

Bin-Hsu Mao et al.

NANOTOXICOLOGY (2016)

Article Chemistry, Multidisciplinary

Size- and Shape-Dependent Antibacterial Studies of Silver Nanoparticles Synthesized by Wet Chemical Routes

Muhammad Akram Raza et al.

NANOMATERIALS (2016)

Review Immunology

Oncology Meets Immunology: The Cancer-Immunity Cycle

Daniel S. Chen et al.

IMMUNITY (2013)

Article Biochemical Research Methods

NIH Image to ImageJ: 25 years of image analysis

Caroline A. Schneider et al.

NATURE METHODS (2012)

Article Cell Biology

Anti-proliferative activity of silver nanoparticles

P. V. AshaRani et al.

BMC CELL BIOLOGY (2009)

Article Immunology

Caspase-dependent immunogenicity of doxorubicin-induced tumor cell death

N Casares et al.

JOURNAL OF EXPERIMENTAL MEDICINE (2005)