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Updated: Feb 16, 2026

Simultaneous Measurements of Intracellular Calcium and Membrane Potential in Freshly Isolated and Intact Mouse Cerebral Endothelium
Published on: January 20, 2019
Protective role of FKBP51 in calcium entry-induced endothelial barrier disruption
Caleb L Hamilton1,2, Pierre I Kadeba1,2, Audrey A Vasauskas3
11 5557 Department of Biochemistry and Molecular Biology , University of South Alabama, Mobile, AL, USA.
Insights
The immunophilin FKBP51 protects the pulmonary endothelium by inhibiting store-operated calcium entry (ISOC). Overexpressing FKBP51 preserves endothelial barrier integrity and reduces gap formation, while FKBP51 knockout mice show increased permeability.
Area of Science:
- Cell Biology
- Physiology
- Immunology
Background:
- Pulmonary artery endothelial cells (PAECs) have a store-operated calcium entry current (ISOC) that can disrupt the endothelial barrier.
- The immunophilin FKBP51 inhibits ISOC, but its protective role against barrier disruption is unknown.
Purpose of the Study:
- To determine if FKBP51 inhibition of ISOC protects the endothelial barrier from calcium entry-induced disruption.
- To investigate the role of the microtubule network in FKBP51-mediated ISOC inhibition.
Main Methods:
- Measured ISOC effects on endothelial barrier function in FKBP51-overexpressing PAECs and FKBP51 knockout mice.
- Utilized electric cell-substrate impedance sensing (ECIS) and dextran flux assays.
- Assessed microtubule polymerization in FKBP51-overexpressing PAECs.
Main Results:
- FKBP51 overexpression reduced actin stress fiber and inter-endothelial cell gap formation.
- FKBP51 overexpression attenuated the decrease in endothelial resistance and abolished thapsigargin-induced dextran flux.
- FKBP51 knockout mice exhibited increased calcium entry-induced permeability compared to wild-type mice.
- FKBP51 overexpression correlated with increased microtubule polymerization.
Conclusions:
- FKBP51 is a novel regulator of endothelial barrier integrity.
- FKBP51 protects the endothelium against calcium entry-induced disruption by inhibiting ISOC, partly through microtubule polymerization.
Abstract:
Pulmonary artery endothelial cells (PAECs) express a cation current, ISOC (store-operated calcium entry current), which when activated permits calcium entry leading to inter-endothelial cell gap formation. The large molecular weight immunophilin FKBP51 inhibits ISOC but not other calcium entry pathways in PAECs. However, it is unknown whether FKBP51-mediated inhibition of ISOC is sufficient to protect the endothelial barrier from calcium entry-induced disruption. The major objective of this study was to determine whether FKBP51-mediated inhibition of ISOC leads to decreased calcium entry-induced inter-endothelial gap formation and thus preservation of the endothelial barrier. Here, we measured the effects of thapsigargin-induced ISOC on the endothelial barrier in control and FKBP51 overexpressing PAECs. FKBP51 overexpression decreased actin stress fiber and inter-endothelial cell gap formation in addition to attenuating the decrease in resistance observed with control cells using electric cell-substrate impedance sensing. Finally, the thapsigargin-induced increase in dextran flux was abolished in FKBP51 overexpressing PAECs. We then measured endothelial permeability in perfused lungs of FKBP51 knockout (FKBP51-/-) mice and observed increased calcium entry-induced permeability compared to wild-type mice. To begin to dissect the mechanism underlying the FKBP51-mediated inhibition of ISOC, a second goal of this study was to determine the role of the microtubule network. We observed that FKBP51 overexpressing PAECs exhibited increased microtubule polymerization that is critical for inhibition of ISOC by FKBP51. Overall, we have identified FKBP51 as a novel regulator of endothelial barrier integrity, and these findings are significant as they reveal a protective mechanism for endothelium against calcium entry-induced disruption.
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