CHEK2 germline variants identified in familial nonmedullary thyroid cancer lead to impaired protein structure and function

Carolina Pires, Inês J. Marques, Mariana Valério, Ana Saramago, Paulo E. Santo, Sandra Santos, Margarida Silva, Margarida M. Moura, João Matos, Teresa Pereira, Rafael Cabrera, Diana Lousa, Valeriano Leite, Tiago M. Bandeiras, João B. Vicente, Branca M. Cavaco

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Abstract

Approximately 5 to 15% of nonmedullary thyroid cancers (NMTC) present in a familial form (familial nonmedullary thyroid cancers [FNMTC]). The genetic basis of FNMTC remains largely unknown, representing a limitation for diagnostic and clinical management. Recently, germline mutations in DNA repair-related genes have been described in cases with thyroid cancer (TC), suggesting a role in FNMTC etiology. Here, two FNMTC families were studied, each with two members affected with TC. Ninety-four hereditary cancer predisposition genes were analyzed through next-generation sequencing, revealing two germline CHEK2 missense variants (c.962A > C, p.E321A and c.470T > C, p.I157T), which segregated with TC in each FNMTC family. p.E321A, located in the CHK2 protein kinase domain, is a rare variant, previously unreported in the literature. Conversely, p.I157T, located in CHK2 forkhead-associated domain, has been extensively described, having conflicting interpretations of pathogenicity. CHK2 proteins (WT and variants) were characterized using biophysical methods, molecular dynamics simulations, and immunohistochemistry. Overall, biophysical characterization of these CHK2 variants showed that they have compromised structural and conformational stability and impaired kinase activity, compared to the WT protein. CHK2 appears to aggregate into amyloid-like fibrils in vitro, which opens future perspectives toward positioning CHK2 in cancer pathophysiology. CHK2 variants exhibited higher propensity for this conformational change, also displaying higher expression in thyroid tumors. The present findings support the utility of complementary biophysical and in silico approaches toward understanding the impact of genetic variants in protein structure and function, improving the current knowledge on CHEK2 variants’ role in FNMTC genetic basis, with prospective clinical translation.

Original languageEnglish
Article number105767
JournalJournal of Biological Chemistry
Volume300
Issue number3
DOIs
Publication statusPublished - Mar 2024

Keywords

  • biophysical characterization
  • CHEK2
  • DNA repair
  • familial nonmedullary thyroid cancer (FNMTC)
  • immunohistochemistry
  • molecular dynamics
  • molecular genetics
  • next-generation sequencing (NGS)

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