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Arsenene-Vanadene nanodots co-activate Apoptosis/Ferroptosis for enhanced chemo-immunotherapy
Li He1, WeiYe Ren1, WeiYi Cheng1
1College of Pharmaceutical Sciences, Zhejiang Chinese Medical University, Hangzhou, 310053, PR China.
Abstract:
Triple-Negative Breast Cancer (TNBC) represents a highly aggressive subtype of breast cancer with an unfavorable prognosis, characterized by minimal immune infiltration and pronounced immune suppression, resulting in a limited response to immunotherapy. In this study, a multifunctional Arsenene-Vanadene nanodot (AsV) drug delivery system is introduced, which responds to the tumor microenvironment by releasing arsenic and vanadium. Arsenic undergoes oxidation to generate highly toxic trivalent arsenic, which induces apoptosis in tumor cells while utilizing apoptotic cell debris to transiently activate the immune system. Additionally, arsenic binds to cysteine, indirectly facilitating ferroptosis. Concurrently, vanadium's redox cycling properties are harnessed to trigger a Fenton-like reaction, promoting lipid peroxidation. Furthermore, ferroptosis is enhanced through the depletion of glutathione and inactivation of glutathione peroxidase 4 (GPX4), leading to the release of damage-associated molecular patterns and thereby amplifying the anti-tumor immune response. This study represents the first instance of integrating arsenene's apoptosis-inducing properties with vanadium's ferroptosis-enhancing effects, providing a synergistic approach to improving the immunotherapeutic response and offering a potential strategy for enhancing TNBC prognosis. STATEMENT OF SIGNIFICANCE: Triple-negative breast cancer (TNBC) exhibits resistance to immunotherapy due to its highly immunosuppressive tumor microenvironment. In this study, tumour-responsive Arsenene-Vanadene nanodots (AsV) were developed to induce a synergistic effect by triggering apoptosis and ferroptosis through microenvironment-specific mechanisms. The arsenic component generates cytotoxic trivalent arsenic, promoting apoptosis while binding to cysteine, thereby reducing GSH synthesis. Simultaneously, vanadium initiates lipid peroxidation through Fenton-like reactions and disruption of the glutathione/GPX4 axis, further amplifying ferroptotic cell death. This dual-action system transforms tumor cell debris into immune-stimulating signals while circumventing conventional immunotherapy limitations. As the first strategy integrating arsenic-induced apoptosis with vanadium-enhanced ferroptosis, this approach provides a mechanistic framework to overcome TNBC immunosuppression through coordinated cell death pathways, demonstrating potential for precision nanomedicine applications.
Insights
Researchers developed novel Arsenene-Vanadene nanodots (AsV) to combat aggressive triple-negative breast cancer (TNBC). This system triggers both apoptosis and ferroptosis, enhancing the anti-tumor immune response to improve TNBC treatment outcomes.
Area of Science:
- Nanomedicine
- Cancer Biology
- Immunotherapy
Background:
- Triple-Negative Breast Cancer (TNBC) is aggressive with poor prognosis and limited immunotherapy response due to immune suppression.
- Current treatments face challenges in overcoming the immunosuppressive tumor microenvironment in TNBC.
Purpose of the Study:
- To develop a multifunctional Arsenene-Vanadene nanodot (AsV) drug delivery system for TNBC.
- To investigate the synergistic effects of AsV in inducing apoptosis and ferroptosis to enhance anti-tumor immunity.
Main Methods:
- Fabrication of Arsenene-Vanadene (AsV) nanodots responsive to the tumor microenvironment.
- Investigating arsenic-induced apoptosis and ferroptosis via cysteine binding and trivalent arsenic generation.
- Analyzing vanadium-mediated Fenton-like reactions to promote lipid peroxidation and glutathione depletion.
Main Results:
- AsV nanodots effectively release arsenic and vanadium in the tumor microenvironment.
- Arsenic induces tumor cell apoptosis and indirectly facilitates ferroptosis.
- Vanadium enhances ferroptosis by promoting lipid peroxidation and disrupting the glutathione/GPX4 pathway, amplifying anti-tumor immunity.
Conclusions:
- This study introduces the first strategy integrating arsenic-induced apoptosis with vanadium-enhanced ferroptosis for TNBC.
- The AsV system synergistically triggers coordinated cell death pathways to overcome TNBC immunosuppression.
- This approach offers a promising nanomedicine strategy to improve TNBC immunotherapy response and prognosis.

