Targeted proteomics of extreme vascular phenotypes in type 1 diabetes: the ESCAPER study

Ola Ekström1,2, Cecilia Kennbäck3,4, Valeriya Lyssenko3,5

  • 1Department of Clinical Sciences Malmö, Lund University, Lund, Sweden. ola.ekstrom@med.lu.se.

Insights

Individuals with Type 1 Diabetes (T1D) can be resilient to cardiovascular disease (CVD) complications. This study identified distinct protein profiles associated with T1D resilience, revealing molecular mechanisms underlying vascular health in diabetes.

Area of Science:

  • Endocrinology
  • Cardiology
  • Proteomics

Background:

  • Cardiovascular disease (CVD) is a major complication for individuals with Type 1 Diabetes (T1D).
  • A subset of T1D patients exhibit resilience to macrovascular and renal complications despite long-term hyperglycemia.
  • Understanding the molecular basis of this resilience is crucial for developing targeted therapies.

Purpose of the Study:

  • To characterize the proteomic profile of cardiovascular resilience in T1D.
  • To compare protein expression between T1D patients with and without long-term vascular complications.
  • To identify molecular mechanisms associated with vascular resilience in T1D.

Main Methods:

  • Utilized a targeted proteomic approach (Olink Cardiovascular panel III) analyzing 92 proteins.
  • Compared 92 long-standing T1D patients without complications ('Escapers') against 57 T1D patients with accelerated vascular pathology ('Rapid Progressors').
  • Proteomic data were analyzed after adjustment for age, sex, HbA1c, and eGFR.

Main Results:

  • Twenty proteins significantly differed between 'Rapid Progressors' and 'Escapers' (FDR < 0.05).
  • Elevated proteins in 'Rapid Progressors' included Caspase-3, markers of platelet activation (GP6, P-Selectin), and leukocyte adhesion (JAM-A).
  • Resilient 'Escapers' showed lower levels of von Willebrand Factor (vWF) and Paraoxonase 3 (PON3) compared to 'Rapid Progressors'.

Conclusions:

  • Cardiovascular resilience in T1D is associated with distinct molecular mechanisms.
  • Vascular progression in T1D involves apoptosis, fibrosis, and platelet activation.
  • A unique proteomic signature, including higher vWF and PON3, characterizes resilience in long-term T1D.

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