Anrong Jiang, Yun-Qi Mo, Ying Wang, Kuncheng Qiu, Yi-Ran Ni, Lan Ma, Rui-Tao Zhang, Yan-Qiong Zhang, Jiangfeng Wu, Bo-Tao Li
Hepatocellular carcinoma (HCC) poses significant therapeutic challenges due to its high heterogeneity and immunosuppressive tumor microenvironment (TME). Immunogenic cell death (ICD) represents a promising strategy in cancer therapy by eliciting antitumor immune responses through the controlled release of damage-associated molecular patterns (DAMPs). However, its therapeutic efficacy remains substantially limited by the immunosuppressive TME and the lack of selective targeting of conventional ICD-inducing agents. MicroRNAs (miRNAs) regulate immune checkpoints (e.g., PD-L1), TME populations (e.g., tumor-associated macrophages and regulatory T cells), and DAMPs-related pathways, positioning them to both enhance ICD and relieve its constraints. Clinical translation, however, is hindered by delivery and off-target effects. Emerging nanotechnologies, including pH-responsive and photoresponsive carriers, enable spatiotemporal co-delivery of ICD inducers (e.g., oxaliplatin) and miRNA modulators (e.g., anti-miR-21), thereby augmenting DAMP release, reprogramming the TME, and targeting competing endogenous RNA networks (e.g., lncRNA H19) to overcoming resistance. In this Review, with a focus on clinical translation, we argue that combining ICD, immune checkpoint blockade, and miRNA modulation offers a coherent framework to turn cold HCC tumors into responsive ones, thereby increasing treatment precision and sustaining benefit.