MLL3 is a de novo cause of endocrine therapy resistance

Kimberly M Stauffer1, David L Elion1, Rebecca S Cook1

  • 1Vanderbilt University, Nashville, Tennessee, USA.

Cancer Medicine
|September 28, 2021
PubMed
Abstract

Insights

Mutations in the epigenetic enzyme MLL3 (monomethyltransferase) are common in ER+ breast cancer. Loss of MLL3 function leads to endocrine therapy resistance, impacting treatment decisions.

Area of Science:

  • Oncology
  • Epigenetics
  • Genomics

Background:

  • Recurrent mutations in epigenetic enzymes are frequent in cancer.
  • MLL3 (monomethyltransferase) mutations are common in ER+ breast cancer.
  • MLL3 regulates H3K4me1 marks, which define enhancers crucial for ERα binding in ER+ breast cancer.

Purpose of the Study:

  • To investigate the genomic and transcriptomic consequences of MLL3 knockdown in ER+ breast cancer cells.
  • To determine if MLL3 mutation affects ERα genomic binding and transcriptional regulation.
  • To explore the link between MLL3 function and endocrine therapy response.

Main Methods:

  • Investigated genomic consequences of MLL3 knockdown in an ER+ breast cancer cell line.
  • Utilized H3K4me1 and ERα ChIP-seq, RNA-seq, and motif analysis.
  • Assessed tamoxifen and fulvestrant resistance in MLL3 knockdown cells.

Main Results:

  • MLL3 knockdown caused significant loss of H3K4me1 and altered ERα binding sites.
  • Transcriptome reorganization occurred, with new ERα binding sites linked to essential genes.
  • MLL3 knockdown cells exhibited resistance to endocrine therapies (tamoxifen, fulvestrant).
  • SP1 transcription factor emerged as critical in MLL3 knockdown cells, with increased binding at new ERα sites.

Conclusions:

  • Loss of functional MLL3 leads to endocrine therapy resistance in ER+ breast cancer.
  • Genotyping for MLL3 mutations is important for guiding treatment strategies.
  • MLL3's role in epigenetic regulation impacts ERα activity and therapeutic response.

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