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MTHFR functions as a metabolic checkpoint in NSCLC through SLC25A26-mediated SHMT2 inhibition
Lan Li1,2, YiRan Yang3,4, ShiQing Wang3
1Shanghai Chest Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai, China. lilan1316@163.com.
Abstract:
The progression of non-small cell lung cancer (NSCLC) is driven by metabolic plasticity and evasion of apoptotic surveillance, mechanisms that remain incompletely understood. Here, through integrated transcriptomic-metabolomic profiling, molecular interaction mapping, and functional validation, we unveiled a dual regulatory mechanism governed by the MTHFR/SLC25A26 axis that suppresses NSCLC. Clinical cohort analyses revealed concurrent downregulation of MTHFR and SLC25A26 in NSCLC tissues, which strongly correlated with poor prognosis. Mechanistically, MTHFR directly binds and stabilizes SLC25A26, whereas SLC25A26 accelerates SHMT2 degradation via the ubiquitin-proteasome pathway and concurrently suppresses AKT-driven MYB transcriptional activation. This coordinated disruption of serine/one-carbon metabolism and oncogenic signaling significantly inhibited tumor growth in patient-derived xenograft models. Crucially, we identified SLC25A26 as a mitochondrial transporter-ubiquitin adapter hybrid that destabilizes SHMT2 through ubiquitination, whereas its interaction with MTHFR prevents metabolic dysregulation induced by the C677T mutation. Our findings establish the MTHFR/SLC25A26 axis as a master regulator of metabolic-transcriptional crosstalk, providing a therapeutic framework for targeting enzyme stability and kinase signaling in NSCLC treatment. The MTHFR/SLC25A26 axis suppresses NSCLC progression through catalytic activity-dependent stabilization of SLC25A26 by MTHFR, where SLC25A26 functions as a ubiquitin adapter to degrade SHMT2 while concurrently repressing AKT-MYB-driven SHMT2 transcription; clinical downregulation of this axis predicts poor prognosis, and MTHFR overexpression inhibits tumor growth in vivo.
Insights
The MTHFR/SLC25A26 axis suppresses non-small cell lung cancer (NSCLC) by regulating metabolism and signaling. Downregulation of this axis in NSCLC patients predicts poor prognosis, highlighting its therapeutic potential.
Area of Science:
- Oncology
- Molecular Biology
- Metabolism
Background:
- Non-small cell lung cancer (NSCLC) progression involves metabolic plasticity and apoptosis evasion.
- The precise regulatory mechanisms underlying these processes are not fully understood.
Purpose of the Study:
- To elucidate the regulatory role of the MTHFR/SLC25A26 axis in NSCLC.
- To investigate the molecular mechanisms by which this axis suppresses tumor growth.
- To assess the clinical significance of MTHFR/SLC25A26 downregulation in NSCLC prognosis.
Main Methods:
- Integrated transcriptomic-metabolomic profiling.
- Molecular interaction mapping and functional validation.
- Analysis of clinical NSCLC cohorts and patient-derived xenograft models.
Main Results:
- A dual regulatory mechanism by the MTHFR/SLC25A26 axis was identified, suppressing NSCLC.
- Concurrent downregulation of MTHFR and SLC25A26 in NSCLC tissues correlated with poor prognosis.
- MTHFR stabilizes SLC25A26, which degrades SHMT2 and suppresses AKT-MYB signaling, inhibiting tumor growth.
Conclusions:
- The MTHFR/SLC25A26 axis is a master regulator of metabolic-transcriptional crosstalk in NSCLC.
- This axis offers a potential therapeutic strategy targeting enzyme stability and kinase signaling for NSCLC treatment.
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