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Targeting the Kynureninase-HDAC6-Complement Axis as a Novel Therapeutic Strategy in Glioblastoma
Arif Ul Hasan1, Sachiko Sato1, Mami Obara1
1Department of Pharmacology, School of Medicine, Iwate Medical University, Yahaba 028-3694, Japan.
Abstract:
Background/Objectives: Glioblastoma (GBM) is an aggressive brain tumor known for its profound heterogeneity and treatment resistance. Dysregulated complement signaling and epigenetic alterations have been implicated in GBM progression. This study identifies kynureninase (KYNU), a key enzyme in the kynurenine pathway, as a novel regulator of complement components and investigates its interaction with histone deacetylase 6 (HDAC6) in the context of therapeutic targeting. Methods: KYNU expression, and its association with complement signaling in GBM, were analyzed using publicly available datasets (TCGA, GTEx, HPA). Pathway enrichment was performed via LinkedOmics. In vitro studies in GBM cell lines (U87, U251, T98G) assessed the effects of KYNU silencing and treatment with an HDAC6 inhibitor (tubastatin) and a BET inhibitor (apabetalone) on gene expression and cell viability. Results: Bioinformatic analyses revealed significant overexpression of KYNU in GBM tissues compared to normal brain tissue. KYNU expression was positively associated with genes involved in complement and coagulation cascades. In vitro experiments demonstrated that KYNU silencing reduced the expression of C3, C3AR1, and C5AR1 and suppressed GBM cell viability. Treatment with tubastatin, while reducing viability, paradoxically upregulated complement genes, suggesting potential limitations in therapeutic efficacy. However, this effect was mitigated by KYNU knockdown. Combined treatment with apabetalone and tubastatin effectively suppressed KYNU expression and enhanced cytotoxicity, particularly in cells with high complement expression. Conclusions: Our findings establish the KYNU-HDAC6-complement axis as a critical regulatory pathway in GBM. Targeting KYNU-mediated complement activation through combined epigenetic approaches-such as HDAC6 and BET inhibition-represents a promising strategy to overcome complement-driven resistance in GBM therapy.
Insights
This study reveals kynureninase (KYNU) regulates complement pathways in glioblastoma (GBM). Targeting KYNU with epigenetic inhibitors like HDAC6 and BET inhibitors offers a new strategy against treatment-resistant GBM.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Immunology
Background:
- Glioblastoma (GBM) is a highly aggressive brain tumor characterized by heterogeneity and resistance to therapy.
- Dysregulated complement signaling and epigenetic alterations are implicated in GBM progression.
- Kynureninase (KYNU), an enzyme in the kynurenine pathway, is identified as a novel regulator of complement components.
Purpose of the Study:
- To identify kynureninase (KYNU) as a novel regulator of complement components in glioblastoma (GBM).
- To investigate the interaction between KYNU and histone deacetylase 6 (HDAC6) in GBM.
- To explore therapeutic targeting of the KYNU-HDAC6-complement axis.
Main Methods:
- Bioinformatic analysis of public datasets (TCGA, GTEx, HPA) for KYNU expression and complement signaling association.
- Pathway enrichment analysis using LinkedOmics.
- In vitro studies involving KYNU silencing and treatment with HDAC6 (tubastatin) and BET (apabetalone) inhibitors in GBM cell lines.
Main Results:
- KYNU is significantly overexpressed in GBM tissues and positively associated with complement/coagulation cascade genes.
- KYNU silencing reduced complement gene expression (C3, C3AR1, C5AR1) and GBM cell viability.
- Combined epigenetic inhibition (apabetalone + tubastatin) suppressed KYNU and enhanced GBM cell cytotoxicity, particularly in complement-high cells.
Conclusions:
- The KYNU-HDAC6-complement axis is a critical regulatory pathway in GBM.
- Targeting KYNU-mediated complement activation via combined epigenetic inhibition (HDAC6 and BET inhibitors) is a promising strategy.
- This approach may overcome complement-driven resistance in GBM therapy.
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