Login / Signup

B1 oligomerization regulates PML nuclear body biogenesis and leukemogenesis.

Yuwen LiXiaodan MaZhiming ChenHaiyan WuPengran WangWenyu WuNuo ChengLonghui ZengHao ZhangXun CaiSai-Juan ChenZhu ChenGuoyu Meng
Published in: Nature communications (2019)
ProMyelocyticLeukemia (PML) protein can polymerize into a mega-Dalton nuclear assembly of 0.1-2 μm in diameter. The mechanism of PML nuclear body biogenesis remains elusive. Here, PMLRBCC is successfully purified. The gel filtration and ultracentrifugation analysis suggest a previously unrecognized sequential oligomerization mechanism via PML monomer, dimer, tetramer and N-mer. Consistently, PML B1-box structure (2.0 Å) and SAXS characterization reveal an unexpected networking by W157-, F158- and SD1-interfaces. Structure-based perturbations in these B1 interfaces not only impair oligomerization in vitro but also abolish PML sumoylation and nuclear body biogenesis in HeLaPml-/- cell. More importantly, as demonstrated by in vivo study using transgenic mice, PML-RARα (PR) F158E precludes leukemogenesis. In addition, single cell RNA sequencing analysis shows that B1 oligomerization is an important regulator in PML-RARα-driven transactivation. Altogether, these results not only define a previously unrecognized B1-box oligomerization in PML, but also highlight oligomerization as an important factor in carcinogenesis.
Keyphrases
  • single cell
  • transcription factor
  • rna seq
  • stem cells
  • dna methylation
  • mesenchymal stem cells
  • high resolution
  • mass spectrometry
  • liquid chromatography