PAR-4/Ca2+-calpain pathway activation stimulates platelet-derived microparticles in hyperglycemic type 2 diabetes

Alessandra Giannella1, Giulio Ceolotto1, Claudia Maria Radu1

  • 1Metabolic Disease Unit, Department of Medicine-DIMED, Via Giustiniani, 2, 35128, Padova, Italy.

Abstract

Insights

Poorly controlled type 2 diabetes (T2DM) increases platelet microparticles (PMP) via PAR-4 activation, leading to inflammation. This highlights PAR-4 as a key target for managing T2DM complications.

Area of Science:

  • Cardiovascular Research
  • Diabetes Mellitus Research
  • Hematology

Background:

  • Type 2 diabetes (T2DM) is associated with a prothrombotic state.
  • Microparticles (MPs), particularly platelet-derived MPs (PMP), are implicated as mediators and markers in T2DM complications.
  • Understanding the mechanisms of MP release and their inflammatory effects is crucial for managing T2DM.

Purpose of the Study:

  • To investigate circulating MP levels in T2DM patients with good (GGC) versus poor (PGC) glycemic control.
  • To elucidate the in vitro molecular pathways of PMP release from platelets in T2DM.
  • To assess the pro-inflammatory effects of PMP on macrophages.

Main Methods:

  • Flow cytometry and ELISA were used to quantify circulating MPs (CD62E+, CD62P+, CD142+, CD45+), ICAM-1, VCAM-1, and IL-6 in T2DM patients and controls.
  • In vitro studies examined PMP release and platelet activation from GGC and PGC subjects.
  • Pro-inflammatory effects of PMP on THP-1 macrophages were evaluated.

Main Results:

  • Significantly higher levels of CD62P+ (PMP) and CD142+ MPs were observed in PGC T2DM patients compared to GGC T2DM and normal glucose tolerance (NGT) groups.
  • PMP levels correlated with HbA1c and IL-6.
  • In vitro, thrombin-induced PMP release was higher in PGC T2DM, mediated by PAR-4 activation via a Ca2+-calpain-dependent pathway.
  • Uptake of PMP from PGC platelets into macrophages increased IL-6 release through NF-kB pathway activation.

Conclusions:

  • Poor glycemic control in T2DM elevates PMP levels.
  • PAR-4 receptor activation is a key mechanism driving PMP release and subsequent inflammation in poorly controlled T2DM.
  • PAR-4 represents a potential therapeutic target for mitigating inflammation and thrombotic risks in T2DM.

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