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Inhibition of ABL1 by tyrosine kinase inhibitors leads to a downregulation of MLH1 by Hsp70-mediated lysosomal protein degradation

  • Hannah G. Daniels
  • , Breanna G. Knicely
  • , Anna Kristin Miller
  • , Ana Thompson
  • , Rina Plattner
  • , Eva M. Goellner

Producción científica: Articlerevisión exhaustiva

2 Citas (Scopus)

Resumen

The DNA mismatch repair (MMR) pathway and its regulation are critical for genomic stability. Mismatch repair (MMR) follows replication and repairs misincorporated bases and small insertions or deletions that are not recognized and removed by the proofreading polymerase. Cells deficient in MMR exhibit an increased overall mutation rate and increased expansion and contraction of short repeat sequences in the genome termed microsatellite instability (MSI). MSI is often a clinical measure of genome stability in tumors and is used to determine the course of treatment. MMR is also critical for inducing apoptosis after alkylation damage from environmental agents or DNA-damaging chemotherapy. MLH1 is essential for MMR, and loss or mutation of MLH1 leads to defective MMR, increased mutation frequency, and MSI. In this study, we report that tyrosine kinase inhibitors, imatinib and nilotinib, lead to decreased MLH1 protein expression but not decreased MLH1 mRNA levels. Of the seven cellular targets of Imatinib and nilotinib, we show that silencing of ABL1 also reduces MLH1 protein expression. Treatment with tyrosine kinase inhibitors or silencing of ABL1 results in decreased apoptosis after treatment with alkylating agents, suggesting the level of MLH1 reduction is sufficient to disrupt MMR function. We also report MLH1 is tyrosine phosphorylated by ABL1. We demonstrate that MLH1 downregulation by ABL1 knockdown or inhibition requires chaperone protein Hsp70 and that MLH1 degradation can be abolished with the lysosomal inhibitor bafilomycin. Taken together, we propose that ABL1 prevents MLH1 from being targeted for degradation by the chaperone Hsp70 and that in the absence of ABL1 activity at least a portion of MLH1 is degraded through the lysosome. This study represents an advance in understanding MMR pathway regulation and has important clinical implications as MMR status is used in the clinic to inform patient treatment, including the use of immunotherapy.

Idioma originalEnglish
Número de artículo940073
PublicaciónFrontiers in Genetics
Volumen13
DOI
EstadoPublished - oct 20 2022

Nota bibliográfica

Publisher Copyright:
Copyright © 2022 Daniels, Knicely, Miller, Thompson, Plattner and Goellner.

Financiación

This publication was supported by an NIH/NIEHS grant R00ES026653 and a Markey Foundation Markey Women Strong Distinguished Researcher award to EG. This publication was also supported by UK-CARES through Grant P30 ES026529 as a Career Development Award to EG. Its contents are solely the responsibility of the authors and do not necessarily represent the official views of the NIEHS. AT was supported by ACS IRG-19-140-31, Diversity in Cancer Research Supplement. RP’s research is supported by the Lloyd Charitable Trust, Cancer Center Support Pilot grant (5P30CA177558) and NIH/NCI R01s CA211137 and CA258751.

FinanciadoresNúmero del financiador
R.P. Lloyd Charitable Trust5P30CA177558
Markey Foundation Markey Women Strong
UK-CARESP30 ES026529
National Institutes of Health (NIH)
American Cancer Society-Michigan Cancer Research FundIRG-19-140-31
American Cancer Society-Michigan Cancer Research Fund
National Childhood Cancer Registry – National Cancer InstituteCA258751, R01s CA211137
National Childhood Cancer Registry – National Cancer Institute
National Institutes of Health/National Institute of Environmental Health SciencesR00ES026653
National Institutes of Health/National Institute of Environmental Health Sciences

    ASJC Scopus subject areas

    • Molecular Medicine
    • Genetics
    • Genetics(clinical)

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