Accelerated apoptosis of neutrophils in familial mediterranean Fever

Gayane Manukyan1, Rustam Aminov2, Gagik Hakobyan3

  • 1Group of Molecular and Cellular Immunology, Institute of Molecular Biology, National Academy of Sciences , Yerevan , Armenia.

Insights

Neutrophils from familial Mediterranean fever (FMF) patients show increased spontaneous apoptosis, even in remission. This accelerated cell death in FMF may help reduce inflammation and tissue damage during disease flares.

Area of Science:

  • Immunology
  • Molecular Biology
  • Genetics

Background:

  • Familial Mediterranean fever (FMF) is an autoinflammatory disorder caused by mutations in the MEFV gene, encoding pyrin.
  • Pyrin's role in apoptosis is crucial, but how mutations affect this process remains unclear.
  • Understanding neutrophil apoptosis in FMF is vital for disease management.

Purpose of the Study:

  • To investigate ex vivo neutrophil apoptosis rates in FMF patients.
  • To analyze the expression of apoptosis-related proteins in FMF neutrophils.
  • To explore potential mechanisms underlying altered apoptosis in FMF.

Main Methods:

  • Ex vivo analysis of systemic neutrophil apoptosis using flow cytometry.
  • Quantitative reverse transcription polymerase chain reaction (RT-qPCR) for apoptosis-related gene expression.
  • Monitoring of apoptosis-involved protein levels.

Main Results:

  • Neutrophils from FMF patients in remission exhibited significantly higher spontaneous apoptosis rates compared to controls.
  • Elevated apoptosis rates were sustained after 24-hour incubation.
  • Increased caspase-3 mRNA levels were observed in FMF neutrophils.
  • Induced apoptosis rates were also elevated but largely due to higher basal rates.
  • No conventional molecular mechanisms fully explained the enhanced neutrophil apoptosis.

Conclusions:

  • Neutrophils from FMF patients display accelerated spontaneous apoptosis.
  • The precise molecular mechanisms require further investigation.
  • Accelerated neutrophil apoptosis may serve as a protective mechanism against inflammation and tissue damage in FMF.

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