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In vivo Measurement of the Mouse Pulmonary Endothelial Surface Layer
Published on: February 22, 2013
Myosin Light Chain Kinase-Mediated Endothelial Hyperpermeability Underlies Temsirolimus-Induced Lung Injury
Xiaolin Chen1, Jianhui Chen1, Shuihong Liu1
1Department of Clinical Laboratory, Pingxiang People's Hospital, Gannan Medical University, Pingxiang, Jiangxi, China.
Abstract:
Pulmonary toxicity is a common adverse effect of temsirolimus (a first-generation mammalian target of rapamycin (mTOR) inhibitor), but its mechanisms are unclear. Disruption of endothelial-barrier integrity is key in the pathophysiology of lung injury. We investigated the role and mechanisms of endothelial-barrier dysfunction in the pathogenesis of temsirolimus-induced lung injury. We evaluated the impact of temsirolimus on the permeability of human pulmonary microvascular endothelial cells (HPMECs) using transendothelial electrical resistance and albumin leakage while simultaneously investigating its effects on Ca2+ release via ryanodine receptors (RyRs) in endothelial cells (ECs). The roles of myosin light chain kinase (MLCK) in endothelial-barrier permeability were studied in MLCK small interfering (si)RNA-transfected HPMECs. In addition, we established a mouse model subjected to intraperitoneal injections of temsirolimus to explore its effects on pulmonary vascular permeability and lung injury. We highlighted the contribution of the MLCK to temsirolimus-induced vascular hyperpermeability and lung injury, supported by studies in two lines of transgenic mice with knocking out MLCK or conditional deletion of MLCK in the endothelium. Temsirolimus increased the permeability of HPMECs, which was correlated with the phosphorylation of myosin light chain (MLC), MLCK activation, and the formation of F-actin stress fibers. Temsirolimus caused a rise in intracellular Ca2+ leakage within HPMECs, an effect that was reversed by pretreatment with ryanodine. The latter diminished the phosphorylation of MLCK/MLC induced by temsirolimus, which subsequently led to disruption of the endothelial barrier in HPMECs. Aligning with these in vitro findings, temsirolimus administration resulted in dysfunction of the lung-vascular barrier, characterized by increased protein levels in bronchoalveolar lavage fluid (BALF) and increased permeability of the lung capillary endothelium. Mice with systemic and EC-specific MLCK knockout exhibited reduced temsirolimus-induced pulmonary microvascular hyperpermeability and lung injury. Temsirolimus induced pulmonary endothelial hyperpermeability mediated (at least in part) by the Ca2+-dependent MLCK/p-MLC pathway caused EC contraction and contributed to lung injury through mTOR-independent mechanisms.
Insights
Temsirolimus causes lung injury by increasing pulmonary endothelial permeability via the Ca2+-dependent myosin light chain kinase (MLCK) pathway, independent of mTOR. Blocking MLCK reduces this temsirolimus-induced lung damage.
Area of Science:
- Pharmacology
- Cell Biology
- Pulmonary Medicine
Background:
- Pulmonary toxicity is a known adverse effect of temsirolimus, a mammalian target of rapamycin (mTOR) inhibitor.
- The precise mechanisms underlying temsirolimus-induced lung injury, particularly endothelial-barrier dysfunction, remain unclear.
Purpose of the Study:
- To investigate the role and mechanisms of endothelial-barrier dysfunction in temsirolimus-induced lung injury.
- To elucidate the contribution of calcium release and myosin light chain kinase (MLCK) in this process.
Main Methods:
- In vitro studies using human pulmonary microvascular endothelial cells (HPMECs) to assess permeability, Ca2+ release, and MLCK activity.
- In vivo studies using a mouse model of temsirolimus-induced lung injury, including genetically modified mice lacking MLCK.
- Assessed transendothelial electrical resistance, albumin leakage, intracellular Ca2+ levels, and myosin light chain phosphorylation.
Main Results:
- Temsirolimus increased HPMEC permeability, correlating with MLCK activation and myosin light chain phosphorylation.
- Temsirolimus induced intracellular Ca2+ release in HPMECs, which was reversed by ryanodine, subsequently reducing MLCK/MLC phosphorylation and endothelial barrier disruption.
- In vivo, temsirolimus caused lung vascular barrier dysfunction, and mice with MLCK knockout showed reduced injury.
Conclusions:
- Temsirolimus induces pulmonary endothelial hyperpermeability and lung injury through a Ca2+-dependent MLCK/p-MLC pathway, leading to endothelial cell contraction.
- This mechanism of lung injury appears to be independent of mTOR signaling.
- Targeting MLCK may offer a therapeutic strategy to mitigate temsirolimus-induced pulmonary toxicity.

