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Monitoring Dynamic Changes In Mitochondrial Calcium Levels During Apoptosis Using A Genetically Encoded Calcium Sensor
Published on: April 1, 2011
Notch1 Modulation of Cellular Calcium Regulates Mitochondrial Metabolism and Anti-Apoptotic Activity in T-Regulatory
Neetu Saini1,2, Sowmya Lakshminarayanan3, Priyanka Kundu3
1Regulation of Cell Fate, Institute for Stem Cell Science and Regenerative Medicine (inStem), Bengaluru, India.
Abstract:
As the major hub of metabolic activity and an organelle sequestering pro-apoptogenic intermediates, mitochondria lie at the crossroads of cellular decisions of death and survival. Intracellular calcium is a key regulator of these outcomes with rapid, uncontrolled uptake into mitochondria, activating pro-apoptotic cascades that trigger cell death. Here, we show that calcium uptake and mitochondrial metabolism in murine T-regulatory cells (Tregs) is tuned by Notch1 activity. Based on analysis of Tregs and the HEK cell line, we present evidence that modulation of cellular calcium dynamics underpins Notch1 regulation of mitochondrial homeostasis and consequently anti-apoptotic activity. Targeted siRNA-mediated ablations reveal dependency on molecules controlling calcium release from the endoplasmic reticulum (ER) and the chaperone, glucose-regulated protein 75 (Grp75), the associated protein Voltage Dependent Anion Channel (VDAC)1 and the Mitochondrial Calcium Uniporter (MCU), which together facilitate ER calcium transfer and uptake into the mitochondria. Endogenous Notch1 is detected in immune-complexes with Grp75 and VDAC1. Deficits in mitochondrial oxidative and survival in Notch1 deficient Tregs, were corrected by the expression of recombinant Notch1 intracellular domain, and in part by recombinant Grp75. Thus, the modulation of calcium dynamics and consequently mitochondrial metabolism underlies Treg survival in conditions of nutrient stress. This work positions a key role for Notch1 activity in these outcomes.
Insights
Notch1 activity regulates mitochondrial calcium uptake and metabolism, crucial for T-regulatory cell survival during nutrient stress. This pathway impacts cell death decisions by controlling mitochondrial homeostasis.
Area of Science:
- Cell Biology
- Immunology
- Mitochondrial Biology
Background:
- Mitochondria are central to cell death and survival decisions.
- Mitochondrial calcium uptake is a key regulator of apoptosis.
- T-regulatory cells (Tregs) play critical roles in immune homeostasis.
Purpose of the Study:
- To investigate the role of Notch1 activity in regulating mitochondrial calcium dynamics and metabolism in Tregs.
- To elucidate the molecular mechanisms by which Notch1 influences Treg survival and mitochondrial homeostasis.
Main Methods:
- Analysis of murine Tregs and HEK cell line.
- siRNA-mediated gene silencing.
- Detection of protein interactions using immune-complex assays.
- Assessment of mitochondrial oxidative metabolism and cell survival.
Main Results:
- Notch1 activity modulates calcium uptake and mitochondrial metabolism in Tregs.
- Notch1 regulation involves calcium release from the endoplasmic reticulum (ER) via Grp75, VDAC1, and MCU.
- Notch1 interacts with Grp75 and VDAC1.
- Notch1 deficiency impairs Treg mitochondrial function and survival, which can be rescued by Notch1 or Grp75 re-expression.
Conclusions:
- Notch1 activity is a key regulator of Treg mitochondrial homeostasis and survival.
- Modulation of calcium dynamics by Notch1 is critical for Treg survival under nutrient stress.
- This study reveals a novel role for Notch1 in linking cellular metabolism and immune cell survival.
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