Germline Mutation in EXPH5 Implicates the Rab27B Effector Protein Slac2-b in Inherited Skin Fragility

John A McGrath1, Kristina L Stone, Rumena Begum

  • 1St John's Institute of Dermatology, King's College London (Guy's Campus), London SE1 9RT, UK. john.mcgrath@kcl.ac.uk

Insights

Genetic mutations in the EXPH5 gene cause inherited skin fragility. This study identifies a new role for Slac2-b protein in keratinocyte adhesion and cytoskeletal integrity, expanding the understanding of skin disease.

Area of Science:

  • Genetics
  • Dermatology
  • Cell Biology

Background:

  • Rab GTPase effector proteins, such as Slac2-b (EXPH5), are implicated in vesicle trafficking.
  • The role of Slac2-b in human disease and skin biology remains largely unknown.

Observation:

  • Whole-exome sequencing identified a homozygous frameshift mutation (c.5786delC) in EXPH5 in three siblings with inherited skin fragility.
  • Affected individuals presented with generalized scale-crusts, trauma-induced blisters, and pigmentary mottling.

Findings:

  • The mutation truncates the Slac2-b protein, leading to its loss in skin.
  • This resulted in disrupted keratinocyte adhesion, cytoskeletal abnormalities (keratin intermediate filaments), and increased perinuclear vesicles.
  • Slac2-b was observed to colocalize with Rab27B and β4 integrin at adhesion sites.

Implications:

  • This study establishes an unexpected role for Slac2-b in keratinocyte biology and inherited skin fragility.
  • It expands the known spectrum of human diseases linked to GTPase effector proteins.
  • Highlights potential therapeutic targets for genetic skin disorders.

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