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Visualizing Mitophagy with Fluorescent Dyes for Mitochondria and Lysosome
Published on: November 30, 2022
Hypoxia-reprogramed megamitochondrion contacts and engulfs lysosome to mediate mitochondrial self-digestion
Tianshu Hao1, Jianglong Yu1, Zhida Wu1
1College of Life Sciences, Taikang center for life and medical sciences, Frontier Science Center for Immunology and Metabolism, Department of Anesthesiology, Renmin Hospital of Wuhan University, Wuhan University, Wuhan, 430072, Hubei, China.
Abstract:
Mitochondria are the key organelles for sensing oxygen, which is consumed by oxidative phosphorylation to generate ATP. Lysosomes contain hydrolytic enzymes that degrade misfolded proteins and damaged organelles to maintain cellular homeostasis. Mitochondria physically and functionally interact with lysosomes to regulate cellular metabolism. However, the mode and biological functions of mitochondria-lysosome communication remain largely unknown. Here, we show that hypoxia remodels normal tubular mitochondria into megamitochondria by inducing broad inter-mitochondria contacts and subsequent fusion. Importantly, under hypoxia, mitochondria-lysosome contacts are promoted, and certain lysosomes are engulfed by megamitochondria, in a process we term megamitochondria engulfing lysosome (MMEL). Both megamitochondria and mature lysosomes are required for MMEL. Moreover, the STX17-SNAP29-VAMP7 complex contributes to mitochondria-lysosome contacts and MMEL under hypoxia. Intriguingly, MMEL mediates a mode of mitochondrial degradation, which we termed mitochondrial self-digestion (MSD). Moreover, MSD increases mitochondrial ROS production. Our results reveal a mode of crosstalk between mitochondria and lysosomes and uncover an additional pathway for mitochondrial degradation.
Insights
Hypoxia triggers mitochondria to form megamitochondria, engulfing lysosomes in a process called MMEL. This novel mechanism, mitochondrial self-digestion (MSD), degrades mitochondria and increases ROS production.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Organelle Crosstalk
Background:
- Mitochondria generate ATP via oxidative phosphorylation and sense oxygen.
- Lysosomes degrade cellular components to maintain homeostasis.
- Mitochondria-lysosome communication is crucial for cellular metabolism but poorly understood.
Purpose of the Study:
- To investigate the mechanisms and biological functions of mitochondria-lysosome communication under hypoxia.
- To identify novel pathways for mitochondrial degradation.
Main Methods:
- Induction of hypoxia in cellular models.
- Microscopy to observe mitochondrial morphology and organelle contacts.
- Genetic and biochemical analyses to identify involved molecular complexes (STX17-SNAP29-VAMP7).
Main Results:
- Hypoxia induces mitochondrial fusion into megamitochondria.
- Megamitochondria promote contact with and engulfment of lysosomes (MMEL).
- The STX17-SNAP29-VAMP7 complex mediates these interactions.
- MMEL facilitates mitochondrial self-digestion (MSD), increasing ROS production.
Conclusions:
- A novel mechanism of mitochondria-lysosome crosstalk, MMEL, is identified.
- MMEL represents a new pathway for mitochondrial degradation (MSD).
- This process links mitochondrial dynamics, lysosomal function, and cellular response to hypoxia.
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