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Updated: May 27, 2026

High-Resolution Fluorespirometry to Assess Dynamic Changes in Mitochondrial Membrane Potential in Human Immune Cells
Published on: May 24, 2024
Mitochondrial flagella-like extensions (MitoFLARE) dysfunction triggers STING-mediated immune dysregulation in sepsis
Weilong Hong1, Ruiyan Ma2, Shiyun Long1
1Department of Critical Care Medicine, The Second Affiliated Hospital of Chongqing Medical University, Chongqing, China.
Abstract:
Sepsis is an immune dysregulation syndrome triggered by infection, characterized by host self-damage due to immune imbalances. This study focuses on dynamic changes of mitochondrial symbiotic function in host cells during sepsis and systematically investigates dysregulation of mitochondrial communication modes and the intrinsic link between mitochondrial DNA (mtDNA) release and immune dysregulation. We demonstrate that during early-stage LPS treatment, mitochondria actively remodel by extruding flagella-like extensions (termed mitoFLARE). These structures, nanotubes mediating long-distance transport, form through glycosylated TRAK1 binding FHL2 to drive actin network formation, thereby shifting mitochondrial communication from direct fusion to nanotube-mediated transport. This helps maintain dynamic exchange within the inner mitochondrial membrane under LPS treatment. However, as inflammation progresses, deteriorated mitochondrial quality control disrupts the MICOS-SAM complex, abrogates inner-outer membrane anchoring, and suppresses mitoFLARE functions. All these ultimately enhance endoplasmic reticulum-mitochondrial contacts to promote outer membrane rupture and result in mtDNA release into the cytoplasm to activate cGAS-STING signaling, further triggering immune dysregulation and inflammatory storm, culminating in programmed cell death and organ dysfunction. This study elucidates the pivotal role of dysregulated mitochondrial-host symbiosis in sepsis progression and provides important insights into the underlying mechanisms of sepsis-associated immune imbalances, laying a theoretical foundation for targeted therapy development.
Insights
Sepsis disrupts mitochondrial communication, causing self-damage. Damaged mitochondria release DNA, activating immune responses and leading to organ failure, highlighting a key sepsis mechanism.
Area of Science:
- Cell Biology
- Immunology
- Mitochondrial Biology
Background:
- Sepsis involves immune dysregulation and host self-damage.
- Mitochondrial function is critical in sepsis pathogenesis.
- Understanding mitochondrial communication in sepsis is vital.
Purpose of the Study:
- Investigate dynamic changes in mitochondrial symbiotic function during sepsis.
- Explore dysregulation of mitochondrial communication modes.
- Elucidate the link between mitochondrial DNA release and immune dysregulation.
Main Methods:
- Studied dynamic mitochondrial remodeling using LPS treatment models.
- Analyzed mitochondrial outer membrane dynamics and endoplasmic reticulum contacts.
- Investigated mitochondrial DNA release and downstream immune signaling pathways.
Main Results:
- Mitochondria form flagella-like extensions (mitoFLAREs) via TRAK1-FHL2-actin for early communication.
- Deteriorated mitochondrial quality control disrupts MICOS-SAM complex and mitoFLAREs in later stages.
- Enhanced ER-mitochondria contacts promote outer membrane rupture, mtDNA release, and cGAS-STING activation.
Conclusions:
- Dysregulated mitochondrial-host symbiosis is pivotal in sepsis progression.
- Mitochondrial communication shifts from fusion to nanotube-mediated transport early on.
- mtDNA release due to mitochondrial damage drives sepsis-induced immune storm and organ dysfunction.
Related Concept Videos
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