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Published on: March 30, 2018
Corneal epithelial cells upregulate macropinocytosis to engulf metabolically active axonal mitochondria released by
Sonali Pal-Ghosh1, Himani Datta-Majumdar1, Soneha Datta1
1Department of Anatomy and Cell Biology, GW School of Medicine and Health Sciences, Washington DC, 20037, USA.
Purpose:
To determine the mechanisms used to internalize mitochondria by corneal epithelial cells after in vivo corneal trephine injury and in vitro in corneal epithelial cells.
Methods:
Male and female mice were subjected to trephine injury and euthanized immediately, 6, and 24 h after injury. Macropinocytosis was quantified in vivo using 70 kD fluorescent dextran. Mitochondrial content was assessed by immunofluorescence and metabolic activity quantified by Seahorse assay immediately and 6 h after injury. In vitro experiments using human corneal and limbal epithelial (HCLE) cells and isolated mitochondria were performed to assess mitochondrial transfer in the presence of the gap junction inhibitor 18α-glycyrrhetinc acid and the macropincytosis inhibitor ethylisopropylamiloride.
Results:
Mitochondria accumulate within apical epithelial cell layers within minutes of trephine injury. Macropinocytosis also increases within minutes of trephine injury. Oxygen Consumption Rates increase in the corneal epithelium 6 h after trephine injury in males and females. Inhibiting gap junctions increases mitochondrial engulfment while inhibiting macropinocytosis prevents engulfment of mitochondria by corneal epithelial cells in vitro.
Conclusions:
Molecules released by injured cells and severed axons induce macropinocytosis in corneal epithelial cells within minutes of trephine injury. An increase in oxygen consumption rate in the corneal epithelium after trephine injury indicates that axonal mitochondria can evade lysosomal degradation for at least 6 h. In vitro studies using isolated labeled and unlabeled mitochondria and control and mechanically stressed human corneal epithelial cells confirm the involvement of macropinocytosis in the engulfment of free and vesicle bound mitochondria by corneal epithelial cells.
Insights
Corneal epithelial cells internalize mitochondria via macropinocytosis following injury. This process, crucial for corneal wound healing, involves engulfing mitochondria to restore cellular energy and function.
Area of Science:
- Ophthalmology
- Cell Biology
- Wound Healing
Background:
- Corneal epithelial injury triggers cellular responses to maintain tissue integrity.
- Mitochondria are vital for cellular energy production and survival.
Purpose of the Study:
- To elucidate the mechanisms of mitochondrial internalization by corneal epithelial cells after injury.
- To investigate the role of macropinocytosis in this process.
Main Methods:
- In vivo mouse models with corneal trephine injury.
- In vitro studies using human corneal epithelial cells and isolated mitochondria.
- Quantification of macropinocytosis and assessment of mitochondrial content and metabolic activity.
Main Results:
- Mitochondria accumulate in corneal epithelial cells rapidly after injury.
- Macropinocytosis is significantly upregulated within minutes of corneal trephine injury.
- Inhibition of macropinocytosis blocks mitochondrial engulfment by corneal epithelial cells in vitro.
Conclusions:
- Macropinocytosis is the primary mechanism for corneal epithelial cells to internalize mitochondria post-injury.
- Internalized axonal mitochondria may evade lysosomal degradation, supporting corneal epithelial metabolic function.
- This study highlights a novel pathway for mitochondrial transfer in corneal wound repair.
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