Structure-function relationships explain CTCF zinc finger mutation phenotypes in cancer

Charles G Bailey1,2,3, Shailendra Gupta4,5, Cynthia Metierre1,2

  • 1Cancer and Gene Regulation Laboratory Centenary Institute, The University of Sydney, Camperdown, NSW, 2050, Australia.

Insights

Cancer-associated mutations in CCCTC-binding factor (CTCF) zinc fingers can disrupt DNA binding and gene regulation. Some mutations lead to loss-of-function, while others cause gain-of-function, explaining diverse cellular effects.

Area of Science:

  • Molecular biology
  • Structural biology
  • Cancer genetics

Background:

  • CCCTC-binding factor (CTCF) is crucial for gene regulation and chromatin structure.
  • CTCF mutations are frequent in cancer, but their structural and functional impacts are poorly understood.

Purpose of the Study:

  • To investigate the molecular and structural effects of cancer-specific CTCF zinc finger mutations.
  • To correlate these structural changes with functional alterations in DNA binding, gene regulation, and cell proliferation.

Main Methods:

  • Molecular and structural characterization of five cancer-associated CTCF missense zinc finger mutations.
  • Functional assays assessing anti-proliferative effects, DNA binding affinity, and transcriptional regulation.
  • Molecular docking and molecular dynamics simulations to analyze mutation impacts on protein-DNA interactions.

Main Results:

  • Mutations L309P, R339W, and R377H completely abrogated CTCF's anti-proliferative effects, while R339Q showed intermediate abrogation and G420D enhanced it.
  • DNA binding at specific sites was disrupted, leading to abrogated transcriptional regulation for some mutants.
  • Molecular dynamics revealed that mutations affecting direct DNA contact caused loss-of-function, whereas R339Q and G420D gained stability via new DNA bonds.

Conclusions:

  • Cancer-associated CTCF zinc finger mutations exhibit a range of functional impacts, including loss-, change-, and gain-of-function.
  • These diverse effects on cell growth and gene regulation are explained by structure-function relationships.
  • Understanding these mutation impacts is key to explaining diverse cellular phenotypes in mutant CTCF-driven cancers.

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