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Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Histidine phosphatase-ferroptosis crosstalk modulation for efficient hepatocellular carcinoma treatment
Yang Qin1, Xiaoli Ling1, Yunxian Li1
1Pharmaceutical and Biomedical Polymers Research Laboratory, Institute of Pharmacy & Pharmacology, Hunan Province Cooperative Innovation Center for Molecular Target New Drug Study, School of Pharmaceutical Science & MOE Key Lab of Rare Pediatric Disease, Hengyang Medical School, University of South China, Hengyang, 421001, China.
Abstract:
Altering the mechanisms of tumor cell death and overcoming the limitations of traditional chemotherapy is pivotal to contemporary tumor treatment. Inducing ferroptosis, while circumventing safety concerns associated with ferrous vectors, through nonferrous ferroptosis is a promising but underexplored frontier in cancer therapy. Histidine phosphatase (LHPP) has emerged as a novel therapeutic target in treating hepatocellular carcinoma (HCC), but the precise mechanism of LHPP against HCC remains unclear. Herein, we explore the effects of upregulating LHPP expression on ferroptosis and tumor immunogenicity induction by simply delivering a miRNA-363-5p inhibitor (miR-363-5pi) via a previously optimized gemcitabine-oleic acid (GOA) prodrug. Efficient miRNA encapsulation was achieved through hydrogen bonding at an optimized GOA/miRNA molar feed ratio of 250:1, affording spherical nanoparticles with a uniform hydrodynamic size of 147.1 nm and a negative potential of -21.5 mV. The mechanism of this LHPP-ferroptosis crosstalk is disclosed to be an inhibited phosphorylation of the PI3K/Akt pathway, leading to a remarkable tumor inhibition rate of 88.2% in nude mice bearing Bel-7402 tumor xenografts via a combination of LHPP-triggered nonferrous ferroptosis and GOA-induced chemotherapy. The biocompatibility of GOA/miR-363-5pi is strongly supported by their non-hematologic toxicity and insignificant organ damage. In addition, the tumor immunogenic activation potential of GOA/miR-363-5pi was finally explored. Overall, this study is the first work that elucidates the precise mechanism of LHPP for treating HCC via ferroptosis induction and achieves the transformation of chemotherapy and gene therapy into ferroptosis activation with tumor cell immunogenicity, which lays a new therapeutic foundation for the clinical treatment of HCC.
Insights
This study introduces a novel nonferrous ferroptosis therapy for liver cancer by upregulating Histidine phosphatase (LHPP) using a miRNA inhibitor delivered via a prodrug. This approach combines chemotherapy and gene therapy to activate ferroptosis and enhance tumor immunogenicity.
Area of Science:
- Biochemistry
- Nanotechnology
- Oncology
Background:
- Traditional chemotherapy faces limitations in tumor treatment.
- Inducing ferroptosis via nonferrous methods offers a promising alternative to overcome safety concerns.
- Histidine phosphatase (LHPP) is a potential therapeutic target for hepatocellular carcinoma (HCC), but its mechanism is unclear.
Purpose of the Study:
- To investigate the effects of upregulating LHPP expression on ferroptosis and tumor immunogenicity in HCC.
- To explore the mechanism of LHPP-mediated ferroptosis and its therapeutic potential.
- To develop a novel drug delivery system combining chemotherapy and gene therapy for HCC treatment.
Main Methods:
- Delivery of a miRNA-363-5p inhibitor (miR-363-5pi) using a gemcitabine-oleic acid (GOA) prodrug.
- Encapsulation of miRNA within GOA nanoparticles with optimized molar feed ratio (250:1).
- Characterization of nanoparticle size (147.1 nm) and potential (-21.5 mV).
- Evaluation of tumor inhibition rate in nude mice bearing Bel-7402 tumor xenografts.
- Assessment of biocompatibility and organ damage.
- Exploration of tumor immunogenic activation potential.
Main Results:
- Efficient encapsulation of miR-363-5pi in GOA nanoparticles.
- Upregulation of LHPP inhibited the PI3K/Akt pathway, triggering nonferrous ferroptosis.
- Achieved a significant tumor inhibition rate of 88.2% in vivo.
- Demonstrated excellent biocompatibility with no significant hematologic toxicity or organ damage.
- Confirmed tumor immunogenic activation potential of the GOA/miR-363-5pi system.
Conclusions:
- This study elucidates the mechanism of LHPP in treating HCC via ferroptosis induction.
- It successfully integrates chemotherapy and gene therapy to activate ferroptosis and enhance tumor immunogenicity.
- This approach provides a new therapeutic strategy for HCC treatment.
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