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Updated: Sep 17, 2025

Measuring Mitochondrial Function of Naïve and Effector CD8 T Cells
Published on: March 28, 2025
SMRT-depleted conventional DCs maintain inflammation despite lower glycolysis via mTOR signalling and succinate
Kaushik Sen1,2, Rashmirekha Pati1, Gyan Prakash Mishra1
1Immunogenomics & Systems Biology Lab, Institute of Life Sciences (ILS), Bhubaneswar, Odisha, 751023, India.
Abstract:
Inflammatory diseases implicate a synchronised immune-metabolic rewiring to maintain homeostasis. The regulatory mechanisms governing the transcriptional control of immune-centric metabolic adjustments in dendritic cells (DCs) remains elusive. Recently we reported that Ncor2 (SMRT) loss of function in DCs potentiates strong inflammation. We found that SMRT depletion in DCs triggers a metabolic shift resulting in sustained and strong inflammation despite reduced glycolysis. This is in contrast to the widely accepted notion that glycolytic pathway activation is essential for inducing inflammation. Downregulation of mTOR emerged as a pivotal factor in attenuating the glycolytic rate. Significant metabolic alterations led to rewiring of the TCA-cycle by triggering anaplerotic glutamine catabolism and promoting succinate oxidation, thereby sustaining the inflammatory potential. Simultaneous treatment with succinate transport inhibitor DEBM and mTOR inducer Mhy1485 remarkably suppressed inflammation ex vivo and in vivo. Our findings also depicted an inverse correlation between SMRT levels with human autoimmune diseases.
Insights
Loss of SMRT in dendritic cells causes inflammation by altering immune cell metabolism, contrary to current understanding. Targeting succinate oxidation and mTOR pathways suppressed this inflammation, suggesting new therapeutic avenues for autoimmune diseases.
Area of Science:
- Immunology
- Metabolic pathways
- Cellular metabolism
Background:
- Immune homeostasis relies on coordinated immune-metabolic adaptations.
- Regulatory mechanisms of metabolic adjustments in dendritic cells (DCs) are not fully understood.
- Loss of Ncor2 (SMRT) in DCs was previously shown to potentiate inflammation.
Purpose of the Study:
- To elucidate the transcriptional control of immune-centric metabolic adjustments in DCs.
- To investigate the metabolic consequences of SMRT loss in DCs.
- To identify potential therapeutic targets for SMRT-mediated inflammation.
Main Methods:
- Investigated metabolic shifts in SMRT-depleted DCs.
- Analyzed the role of mTOR in regulating glycolytic rate.
- Examined alterations in the TCA-cycle, including glutamine catabolism and succinate oxidation.
- Evaluated the efficacy of DEBM and Mhy1485 in suppressing inflammation ex vivo and in vivo.
Main Results:
- SMRT depletion in DCs induced a metabolic shift, causing sustained inflammation despite reduced glycolysis.
- mTOR downregulation was identified as a key factor in attenuating the glycolytic rate.
- Rewiring of the TCA-cycle involved increased glutamine catabolism and succinate oxidation, sustaining inflammation.
- Simultaneous treatment with DEBM and Mhy1485 significantly suppressed inflammation.
- An inverse correlation was observed between SMRT levels and human autoimmune diseases.
Conclusions:
- SMRT loss in DCs triggers inflammation through a unique metabolic rewiring, challenging the established role of glycolysis.
- Targeting succinate oxidation and mTOR pathways offers a potential therapeutic strategy for inflammatory and autoimmune diseases.
- SMRT represents a potential biomarker and therapeutic target in human autoimmune conditions.
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