YIF1B mutations cause a post-natal neurodevelopmental syndrome associated with Golgi and primary cilium alterations

Jorge Diaz1, Xavier Gérard2, Michel-Boris Emerit1

  • 1INSERM UMR894, Center for Psychiatry and Neuroscience, Paris F-75014, Université Paris Descartes, Sorbonne Paris Cité - Paris 5, France.

Insights

Mutations in the YIF1B gene cause neurodevelopmental delay in children by affecting protein transport and cell structure. This discovery links Golgi and cilia diseases, offering a new target for early diagnosis.

Area of Science:

  • Genetics
  • Neuroscience
  • Cell Biology

Background:

  • Human neurodevelopmental delay is linked to brain abnormalities and can lead to premature death.
  • The YIF1B gene encodes a protein crucial for intracellular transport and Golgi apparatus structure.

Purpose of the Study:

  • To investigate the clinical features and underlying cellular mechanisms of neurodevelopmental delay caused by YIF1B gene mutations.
  • To establish a link between Golgi and ciliopathies in the context of neurodevelopmental disorders.

Main Methods:

  • Clinical evaluation of 10 patients with YIF1B mutations.
  • Generation and analysis of a Yif1b knockout (KO) mouse model.
  • Assessment of cellular and subcellular structures, including endoplasmic reticulum, Golgi apparatus, and primary cilia.

Main Results:

  • Patients exhibited global developmental delay, motor and visual deficits, enlarged ventricles, myelination issues, and cerebellar atrophy.
  • Yif1b KO mice showed similar neurological defects and cellular alterations.
  • YIF1B mutations led to primary cilia abnormalities despite the protein not being localized to cilia.

Conclusions:

  • YIF1B is essential for early post-natal human development, particularly neurodevelopment.
  • The study identifies a novel link between Golgi and ciliopathies, proposing a broader class of neurodevelopmental diseases involving protein trafficking defects.

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