Novel mutations in RASGRP2, which encodes CalDAG-GEFI, abrogate Rap1 activation, causing platelet dysfunction

María Luisa Lozano1, Aaron Cook2, José María Bastida3

  • 1Servicio de Hematología y Oncología Médica, Hospital Universitario Morales Meseguer, Centro Regional de Hemodonación, Universidad de Murcia, Instituto Murciano de Investigaciones Biomédicas-Arrixaca, Murcia, Spain;

Blood
|May 29, 2016
PubMed

Insights

Novel RASGRP2 gene mutations cause CalDAG-GEFI deficiency, leading to bleeding disorders and impaired platelet and neutrophil integrin activation. This research identifies new genetic causes for platelet dysfunction.

Area of Science:

  • Hematology
  • Genetics
  • Molecular Biology

Background:

  • Platelet dysfunction, including Glanzmann's thrombasthenia, can arise from genetic defects affecting αIIbβ3 integrin function.
  • The RASGRP2 gene encodes CalDAG-GEFI, a protein crucial for the inside-out activation of αIIbβ3 integrins in platelets and neutrophils.

Observation:

  • Two unrelated families presented with bleeding diathesis and platelet dysfunction.
  • Next-generation sequencing and whole-exome sequencing identified novel, function-disrupting homozygous RASGRP2 mutations in affected individuals.
  • CalDAG-GEFI expression was significantly reduced in patient platelets, with impaired nucleotide exchange activity observed for the p.Ser381Phe variant.

Findings:

  • Homozygous RASGRP2 mutations led to CalDAG-GEFI deficiency, causing agonist-specific defects in platelet αIIbβ3 integrin activation and aggregation.
  • Neutrophil integrin activation was also impaired in patients.
  • Granule secretion, platelet spreading, and clot retraction remained largely unaffected.

Implications:

  • These findings represent the first reported cases of CalDAG-GEFI deficiency due to homozygous RASGRP2 mutations.
  • This deficiency impacts both leukocyte and platelet integrin activation, highlighting a critical role for CalDAG-GEFI in immune and hemostatic functions.
  • Identifies novel genetic targets for understanding and potentially treating bleeding disorders and immune deficiencies.

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