Lymphocyte cytosolic protein 1 (L-plastin) I232F mutation impairs granulocytic proliferation and causes neutropenia

Upendra Mahat1, Bhavuk Garg2, Chao-Yie Yang3

  • 1Department of Pediatric Hematology Oncology and Bone Marrow Transplantation, and.

Blood Advances
|January 6, 2022
PubMed

Insights

A new Lymphocyte Cytosolic Protein 1 (LCP1) mutation causes neutropenia and granulocytic dysplasia by disrupting actin dynamics, leading to impaired cell function and increased nuclear localization of the mutant protein.

Area of Science:

  • Immunology
  • Cell Biology
  • Genetics

Background:

  • Neutrophils are crucial for pathogen clearance and tissue repair, relying on actin cytoskeleton dynamics.
  • Neutropenia, a low neutrophil count, increases susceptibility to infections.

Observation:

  • A child presented with severe neutropenia, soft tissue infections, and pneumonia.
  • Bone marrow examination revealed granulocytic hypoplasia with dysplasia.
  • Whole-exome sequencing identified a de novo heterozygous missense mutation (I232F) in LCP1, encoding an F-actin-binding protein.

Findings:

  • LCP1 I232F expression in cells caused dysplastic granulocytic features, decreased proliferation, and G2/M cell cycle arrest.
  • Mutant LCP1 impaired cell motility and invasiveness, with increased F-actin and nuclear localization.
  • Oxidative burst function remained normal, and apoptosis/unfolded protein response genes were not upregulated.

Implications:

  • LCP1 is implicated in granulopoiesis, and the I232F variant causes neutropenia and granulocytic dysplasia.
  • Aberrant actin regulation by LCP1 is a potential mechanism for neutropenia.
  • This discovery opens new avenues for understanding and potentially treating neutrophil disorders.

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