Functional analysis of TLK2 variants and their proximal interactomes implicates impaired kinase activity and

Lisa Pavinato1,2, Marina Villamor-Payà3, Maria Sanchiz-Calvo3

  • 1Department of Medical Sciences, University of Turin, Torino, Italy.

Journal of Medical Genetics
|December 16, 2020
PubMed
Abstract

Insights

New genetic variants in TLK2 were identified in patients with neurodevelopmental disorders, expanding the understanding of Mental Retardation Autosomal Dominant 57. These mutations impact TLK2 kinase activity and chromatin structure, contributing to disease.

Area of Science:

  • Genetics and Genomics
  • Neurodevelopmental Disorders
  • Molecular Biology

Background:

  • Tousled-like kinases 1 and 2 (TLK1 and TLK2) are crucial for DNA replication, cell cycle recovery, and chromatin remodeling.
  • Mutations in TLK2 are linked to Mental Retardation Autosomal Dominant 57 (MRD57), a neurodevelopmental disorder with variable symptoms.
  • Understanding TLK2's role is vital for neurodevelopmental disorder research.

Purpose of the Study:

  • To re-evaluate exome sequencing and array-CGH data in patients with neurodevelopmental disorders.
  • To investigate the interaction landscape and functional impact of TLK2 variants.
  • To identify novel pathogenic variants in TLK2 associated with MRD57.

Main Methods:

  • Whole exome sequencing and array-comparative genomic hybridization (aCGH) analysis.
  • Spatial proteomics (BioID) to map TLK2 proximity interactions.
  • Single-cell gel electrophoresis to analyze DNA damage susceptibility.

Main Results:

  • Identified three new families with MRD57 caused by novel TLK2 variants (missense, deletion, nonsense).
  • Demonstrated that identified mutations impair TLK2 kinase activity.
  • Revealed interactions between TLK2 and factors implicated in neurological disorders (e.g., CHD7, CHD8, BRD4, NACC1).
  • Showed a relaxed chromatin state and increased DNA damage susceptibility in cells with a TLK2 missense variant.

Conclusions:

  • Novel pathogenic TLK2 variants confirm and expand the MRD57 phenotype.
  • Molecular characterization provides insights into TLK2 function in neurodevelopment.
  • Findings enhance understanding of TLK2's role in neurodevelopmental disorders.

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