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EGCG Disrupts the LIN28B/Let-7 Interaction and Reduces Neuroblastoma Aggressiveness
Simona Cocchi1, Valentina Greco1, Viktoryia Sidarovich1
1Department of Cellular, Computational and Integrative Biology (CIBIO), University of Trento, 38123 Trento, Italy.
Abstract:
Neuroblastoma (NB) is the most commonly diagnosed extracranial solid tumor in children, accounting for 15% of all childhood cancer deaths. Although the 5-year survival rate of patients with a high-risk disease has increased in recent decades, NB remains a challenge in pediatric oncology, and the identification of novel potential therapeutic targets and agents is an urgent clinical need. The RNA-binding protein LIN28B has been identified as an oncogene in NB and is associated with a poor prognosis. Given that LIN28B acts by negatively regulating the biogenesis of the tumor suppressor let-7 miRNAs, we reasoned that selective interference with the LIN28B/let-7 miRNA interaction would increase let-7 miRNA levels, ultimately leading to reduced NB aggressiveness. Here, we selected (-)-epigallocatechin 3-gallate (EGCG) out of 4959 molecules screened as the molecule with the best inhibitory activity on LIN28B/let-7 miRNA interaction and showed that treatment with PLC/PLGA-PEG nanoparticles containing EGCG (EGCG-NPs) led to an increase in mature let-7 miRNAs and a consequent inhibition of NB cell growth. In addition, EGCG-NP pretreatment reduced the tumorigenic potential of NB cells in vivo. These experiments suggest that the LIN28B/let-7 miRNA axis is a good therapeutic target in NB and that EGCG, which can interfere with this interaction, deserves further preclinical evaluation.
Insights
Epigallocatechin gallate (EGCG) delivered via nanoparticles inhibits neuroblastoma (NB) growth by targeting the LIN28B/let-7 miRNA pathway. This approach shows promise for treating aggressive pediatric cancers.
Area of Science:
- Pediatric Oncology
- Molecular Biology
- Nanomedicine
Background:
- Neuroblastoma (NB) is a leading cause of childhood cancer death, with high-risk cases remaining challenging.
- The oncogene LIN28B promotes NB progression by suppressing tumor suppressor let-7 miRNAs.
- Targeting the LIN28B/let-7 miRNA axis presents a potential therapeutic strategy for NB.
Purpose of the Study:
- To identify agents that interfere with the LIN28B/let-7 miRNA interaction to inhibit NB.
- To evaluate the efficacy of epigallocatechin gallate (EGCG) loaded nanoparticles in preclinical NB models.
Main Methods:
- Screening of 4959 molecules to identify LIN28B/let-7 miRNA inhibitors.
- Formulation of EGCG into PLC/PLGA-PEG nanoparticles (EGCG-NPs).
- Assessment of EGCG-NP effects on let-7 miRNA levels, NB cell growth, and in vivo tumor formation.
Main Results:
- EGCG demonstrated potent inhibition of the LIN28B/let-7 miRNA interaction.
- EGCG-NPs increased mature let-7 miRNA levels in NB cells.
- EGCG-NP treatment inhibited NB cell growth and reduced tumor formation in vivo.
Conclusions:
- The LIN28B/let-7 miRNA pathway is a viable therapeutic target in neuroblastoma.
- EGCG, delivered via nanoparticles, shows significant preclinical efficacy against NB.
- Further investigation of EGCG-NPs is warranted for neuroblastoma treatment.
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