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Hyperphosphatemia, Phosphoprotein Phosphatases, and Microparticle Release in Vascular Endothelial Cells
Nima Abbasian1, James O Burton2, Karl E Herbert3
1Departments of Infection, Immunity and Inflammation and.
Insights
High phosphate levels in advanced CKD cause endothelial cell dysfunction and microparticle (MP) formation. This study reveals how elevated phosphate triggers cellular stress, leading to procoagulant MPs and increased thrombotic risk.
Area of Science:
- Cardiovascular Biology
- Nephrology
- Cellular Physiology
Background:
- Hyperphosphatemia in advanced chronic kidney disease (CKD) is linked to cardiovascular risk.
- Endothelial cell (EC) dysfunction and increased circulating endothelial microparticles (MPs) contribute to a prothrombotic state in CKD patients.
Purpose of the Study:
- To investigate the mechanism by which hyperphosphatemia induces MP formation from ECs.
- To determine if elevated intracellular inorganic phosphate (Pi) directly causes EC stress and procoagulant MP generation.
Main Methods:
- Cultured human ECs (EAhy926) were incubated with elevated extracellular Pi (2.5 mM).
- Intracellular Pi, protein phosphorylation, cytoskeletal changes, and MP release were measured.
- MP procoagulant activity was assessed using a thrombin generation assay.
Main Results:
- Elevated extracellular Pi increased intracellular Pi via PiT1 transporters, leading to global protein phosphorylation and MP release.
- Pi-induced MPs expressed VE-cadherin and phosphatidylserine, exhibiting significantly higher procoagulant activity.
- The effects were independent of oxidative stress or apoptosis.
Conclusions:
- Hyperphosphatemia induces EC stress and procoagulant MP formation through elevated intracellular Pi.
- This provides a novel mechanism linking hyperphosphatemia, MP generation, and thrombotic risk in CKD.
- The findings suggest a widely applicable mechanism of Pi-induced cellular stress in mammalian cells.
Abstract:
Hyperphosphatemia in patients with advanced CKD is thought to be an important contributor to cardiovascular risk, in part because of endothelial cell (EC) dysfunction induced by inorganic phosphate (Pi). Such patients also have an elevated circulating concentration of procoagulant endothelial microparticles (MPs), leading to a prothrombotic state, which may contribute to acute occlusive events. We hypothesized that hyperphosphatemia leads to MP formation from ECs through an elevation of intracellular Pi concentration, which directly inhibits phosphoprotein phosphatases, triggering a global increase in phosphorylation and cytoskeletal changes. In cultured human ECs (EAhy926), incubation with elevated extracellular Pi (2.5 mM) led to a rise in intracellular Pi concentration within 90 minutes. This was mediated by PiT1/slc20a1 Pi transporters and led to global accumulation of tyrosine- and serine/threonine-phosphorylated proteins, a marked increase in cellular Tropomyosin-3, plasma membrane blebbing, and release of 0.1- to 1-μm-diameter MPs. The effect of Pi was independent of oxidative stress or apoptosis. Similarly, global inhibition of phosphoprotein phosphatases with orthovanadate or fluoride yielded a global protein phosphorylation response and rapid release of MPs. The Pi-induced MPs expressed VE-cadherin and superficial phosphatidylserine, and in a thrombin generation assay, they displayed significantly more procoagulant activity than particles derived from cells incubated in medium with a physiologic level of Pi (1 mM). These data show a mechanism of Pi-induced cellular stress and signaling, which may be widely applicable in mammalian cells, and in ECs, it provides a novel pathologic link between hyperphosphatemia, generation of MPs, and thrombotic risk.
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