SALL4 promotes glycolysis and chromatin remodeling via modulating HP1α-Glut1 pathway

J Kim1,2, S Xu1, L Xiong2

  • 1Cancer Research Institute, School of Basic Medical Sciences, Southern Medical University, Guangzhou, China.

Oncogene
|August 1, 2017
PubMed

Insights

SALL4 promotes cancer chemo-resistance by enhancing DNA repair and glycolysis. It achieves this by opening chromatin structure via the HP1α-Glut1 axis, aiding cancer cell survival.

Area of Science:

  • Oncology
  • Molecular Biology
  • Epigenetics

Background:

  • SALL4 is implicated in chemo-resistance across various cancers.
  • Open chromatin is crucial for DNA damage response (DDR) and repair.
  • The precise mechanism of SALL4 in chemo-resistance requires elucidation.

Observation:

  • SALL4 destabilizes heterochromatin protein 1α (HP1α) by recruiting CUL4B, leading to open chromatin.
  • SALL4 silencing reduces Glut1 expression and glycolysis in cancer cells.
  • Increased HP1α suppresses open chromatin, glycolysis, and Glut1.

Findings:

  • SALL4 promotes Glut1 expression and open chromatin via an HP1α-dependent pathway.
  • Restoring Glut1 rescues impaired DDR in SALL4-deficient cancer cells.
  • The HP1α-Glut1 axis is vital for SALL4-mediated DDR.

Implications:

  • SALL4 drives drug resistance by enhancing DDR and DNA repair.
  • This occurs through promoting glycolysis and subsequent chromatin remodeling.
  • Targeting the SALL4-HP1α-Glut1 pathway may offer novel chemo-resistance strategies.

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