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Open access Jul 2026

Metabolic-Immune Reprogramming via CuZnS@BSA Nanoregulators to Overcome Resistance in Triple-Negative Breast Cancer

Rationale Since the therapeutic resistance of triple-negative breast cancer (TNBC) is mainly attributable to excessive glutathione (GSH) accumulation and its ‘cold’ immune landscape, we designed biomimetic CuZnS@BSA nanoregulators that exploit a pH-triggered ‘disarm-and-attack’ cascade, thereby initiating a well-defined, sequential therapeutic process in the acidic tumor microenvironment. Methods Biomimetic CuZnS@BSA nanoclusters were synthesized via a self-assembly method. Their pH-responsive release kinetics and synergistic therapeutic mechanisms (GSH depletion, ROS generation, and cuproptosis) were systematically evaluated in vitro using 4T1 cells. In vivo anti-tumor efficacy, immune microenvironment remodeling, and anti-metastatic effects were investigated in subcutaneous and lung metastasis TNBC mouse models, both alone and in combination with PD-L1 blockade. Results The platform first releases H2S to deplete intracellular GSH, thus removing the major antioxidant defenses of the tumor, then follows with the release of Cu2+ to induce cuproptosis, which effectively bypasses the apoptosis resistance commonly seen in TNBC. In addition, the released Zn2+ acts as an immune modulator by promoting the recognition of leaked mitochondrial DNA. This activates the cGAS-STING signaling pathway, and in vivo experiments clearly showed that it remodels the tumor microenvironment in a highly favorable manner, characterized by increased CD8+ T cell infiltration and enhanced dendritic cell maturation. Conclusion Combining this nanoregulator with PD-L1 blockade led to potent suppression of both subcutaneous tumor growth and lung metastasis, thus providing a direct, elegant link between metabolic reprogramming and systemic immune activation for TNBC therapy.

Jingyi Yang, Qi Li, Pi Zhao et al. · 0 citations
Review Open access Jul 2026

Research progress on the association of maternal high-fat diet with offspring neurodevelopment and susceptibility to Parkinson's disease

Maternal high-fat diet (mHFD) is a growing global nutritional concern during pregnancy. It induces maternal systemic low-grade inflammation and oxidative stress, reshaping the intrauterine milieu via the placenta and causing selective developmental impairments in offspring midbrain dopaminergic (DA) neurons—including aberrant precursor proliferation/differentiation, simplified synapses, and nigrostriatal circuit deficits—which may increase adulthood Parkinson's disease (PD) susceptibility. Mechanistically, mHFD acts through two synergistic pathways: persistent activation of the insulin resistant–NF-κB inflammatory axis and suppression of PINK1/Parkin-mediated mitophagy, mutually reinforcing and compromising DA neuron resilience. This article reviews the pathological process of mHFD-mediated remodeling of the intrauterine microenvironment to increase the susceptibility of offspring PD and its two core mechanism pathways: the continuous activation of the IR-NF-κB inflammatory pathway and the functional inhibition of the PINK1/Parkin-mediated mitophagy pathway. On this basis, multi-dimensional early warning markers based on inflammatory factors, mitophagy-related molecules, epigenetic markers and nutritional exposure indicators, as well as potential intervention strategies such as nutritional supplementation, anti-inflammatory and pro-mitophagy targeting the above pathways were summarized, in order to provide a theoretical reference for the primary prevention of PD.

Qi Li, Zhixiang Jia, Musi Ji et al. · 0 citations