Intact Cohesion, Anaphase, and Chromosome Segregation in Human Cells Harboring Tumor-Derived Mutations in STAG2

Jung-Sik Kim1, Xiaoyuan He1, Bernardo Orr2

  • 1Lombardi Comprehensive Cancer Center, Georgetown University School of Medicine, Washington, D.C, United States of America.

Plos Genetics
|February 13, 2016
PubMed

Insights

Mutations in the cohesin subunit STAG2 can disrupt cell division. However, many cancer-associated STAG2 mutations do not cause aneuploidy, suggesting alternative roles in tumor development.

Area of Science:

  • Cell Biology
  • Cancer Genetics
  • Molecular Oncology

Background:

  • Somatic mutations in the cohesin complex subunit STAG2 are observed across various cancers.
  • Previous studies suggest STAG2 inactivation causes cohesion loss and aneuploidy in experimental models.
  • However, human tumors with STAG2 mutations often remain euploid, creating a discrepancy.

Purpose of the Study:

  • To investigate the impact of tumor-derived STAG2 mutations on cohesin composition and mitotic phenotypes.
  • To reconcile the observed differences between experimental findings and naturally occurring human tumors regarding STAG2 mutations and ploidy.

Main Methods:

  • Analysis of cohesin protein interactions with wild-type and mutant STAG2.
  • Introduction of nine tumor-derived STAG2 mutations into endogenous STAG2 alleles in cultured human cells using AAV-mediated gene targeting.
  • Assessment of sister chromatid cohesion, anaphase progression, and chromosome counts.

Main Results:

  • Many mutant STAG2 proteins maintain cohesin interaction but reduce interactions with regulatory subunits (WAPL, PDS5A, PDS5B).
  • Nonsense STAG2 mutations caused cohesion and anaphase defects, while missense mutations showed wild-type behavior.
  • Only one of nine tested tumor-derived mutations led to significant changes in chromosome number.

Conclusions:

  • Not all tumor-derived STAG2 mutations result in cohesion, segregation, or ploidy defects.
  • The functional consequences of STAG2 inactivation in human cancer cells may extend beyond direct effects on chromosome integrity.
  • Further research is needed to elucidate the broader roles of STAG2 mutations in cancer pathogenesis.

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