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Updated: Jun 3, 2026

A Thermoplasmonic Approach for Investigating Plasma Membrane Repair in Living Cells and Model Membranes
Published on: January 19, 2024
Tailored protection against plasmalemmal injury by annexins with different Ca2+ sensitivities
Sarah Potez1, Miriam Luginbühl, Katia Monastyrskaya
1Department of Cell Biology, Institute of Anatomy, University of Bern, 3012 Bern, Switzerland.
Abstract:
The annexins, a family of Ca(2+)- and lipid-binding proteins, are involved in a range of intracellular processes. Recent findings have implicated annexin A1 in the resealing of plasmalemmal injuries. Here, we demonstrate that another member of the annexin protein family, annexin A6, is also involved in the repair of plasmalemmal lesions induced by a bacterial pore-forming toxin, streptolysin O. An injury-induced elevation in the intracellular concentration of Ca(2+) ([Ca(2+)](i)) triggers plasmalemmal repair. The highly Ca(2+)-sensitive annexin A6 responds faster than annexin A1 to [Ca(2+)](i) elevation. Correspondingly, a limited plasmalemmal injury can be promptly countered by annexin A6 even without the participation of annexin A1. However, its high Ca(2+) sensitivity makes annexin A6 highly amenable to an unproductive binding to the uninjured plasmalemma; during an extensive injury accompanied by a massive elevation in [Ca(2+)](i), its active pool is severely depleted. In contrast, annexin A1 with a much lower Ca(2+) sensitivity is ineffective at the early stages of injury; however, it remains available for the repair even at high [Ca(2+)](i). Our findings highlight the role of the annexins in the process of plasmalemmal repair; a number of annexins with different Ca(2+)-sensitivities provide a cell with the means to react promptly to a limited injury in its early stages and, at the same time, to withstand a sustained injury accompanied by the continuous formation of plasmalemmal lesions.
Insights
Annexin A6, a calcium-sensitive protein, repairs cell membrane injuries faster than annexin A1. Different annexins provide layered protection against both minor and major cell membrane damage.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Annexins are Ca(2+)- and lipid-binding proteins crucial for intracellular functions.
- Annexin A1 is known to participate in resealing plasmalemmal injuries.
- Cell membrane integrity is vital and relies on rapid repair mechanisms.
Purpose of the Study:
- To investigate the role of annexin A6 in repairing cell membrane (plasmalemmal) lesions.
- To compare the function and calcium sensitivity of annexin A6 and annexin A1 in membrane repair.
- To understand how different annexins contribute to cellular defense against injury.
Main Methods:
- Induction of plasmalemmal lesions using streptolysin O, a bacterial toxin.
- Monitoring intracellular calcium concentration ([Ca(2+)](i)) changes during injury.
- Observing the response and localization of annexin A6 and annexin A1.
Main Results:
- Annexin A6 is involved in repairing plasmalemmal lesions induced by streptolysin O.
- Annexin A6 responds more rapidly than annexin A1 to elevated intracellular calcium.
- Annexin A6 can repair minor injuries independently, while annexin A1 is effective during sustained, extensive injuries with high calcium levels.
Conclusions:
- Annexins A6 and A1 play distinct but complementary roles in plasmalemmal repair.
- The differential calcium sensitivity of annexins allows for a flexible and robust cellular repair response.
- This multi-annexin system ensures prompt reaction to limited damage and resilience against severe, ongoing membrane injury.
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