Computational and cellular studies reveal structural destabilization and degradation of MLH1 variants in Lynch syndrome

Elife. 2019 Nov 7:8:e49138. doi: 10.7554/eLife.49138.

Abstract

Defective mismatch repair leads to increased mutation rates, and germline loss-of-function variants in the repair component MLH1 cause the hereditary cancer predisposition disorder known as Lynch syndrome. Early diagnosis is important, but complicated by many variants being of unknown significance. Here we show that a majority of the disease-linked MLH1 variants we studied are present at reduced cellular levels. We show that destabilized MLH1 variants are targeted for chaperone-assisted proteasomal degradation, resulting also in degradation of co-factors PMS1 and PMS2. In silico saturation mutagenesis and computational predictions of thermodynamic stability of MLH1 missense variants revealed a correlation between structural destabilization, reduced steady-state levels and loss-of-function. Thus, we suggest that loss of stability and cellular degradation is an important mechanism underlying many MLH1 variants in Lynch syndrome. Combined with analyses of conservation, the thermodynamic stability predictions separate disease-linked from benign MLH1 variants, and therefore hold potential for Lynch syndrome diagnostics.

Keywords: cancer biology; chaperone; computational biology; human; proteasome; protein misfolding; protein quality control; systems biology.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Cell Line
  • Colorectal Neoplasms, Hereditary Nonpolyposis / pathology*
  • Computational Biology
  • Humans
  • Mismatch Repair Endonuclease PMS2 / metabolism
  • MutL Protein Homolog 1 / chemistry*
  • MutL Protein Homolog 1 / metabolism*
  • MutL Proteins / metabolism
  • Neoplasm Proteins / metabolism
  • Protein Conformation
  • Protein Folding*
  • Protein Stability
  • Proteolysis*

Substances

  • Neoplasm Proteins
  • PMS1 protein, human
  • PMS2 protein, human
  • Mismatch Repair Endonuclease PMS2
  • MutL Protein Homolog 1
  • MutL Proteins