Cell cycle-specific phase separation regulated by protein charge blockiness
- Nat Cell Biol. 2022 May;24(5):625-632. doi: 10.1038/s41556-022-00903-1.
- 1. Graduate School of Biostudies, Kyoto University, Kyoto, Japan.
- 2. Graduate School of Science, The University of Tokyo, Tokyo, Japan.
- 3. Cellular Dynamics Laboratory, RIKEN Cluster for Pioneering Research, Saitama, Japan.
- 4. Division of Cell Signaling, Fujii Memorial Institute of Medical Sciences, Tokushima University, Tokushima, Japan.
- 5. Chromosome Dynamics Laboratory, RIKEN Cluster for Pioneering Research, Saitama, Japan.
- 6. Graduate School of Biostudies, Kyoto University, Kyoto, Japan. [email protected].
Dynamic morphological changes of intracellular organelles are often regulated by protein phosphorylation or dephosphorylation1-6. Phosphorylation modulates stereospecific interactions among structured proteins, but how it controls molecular interactions among unstructured proteins and regulates their macroscopic behaviours remains unknown. Here we determined the cell cycle-specific behaviour of Ki-67, which localizes to the nucleoli during interphase and relocates to the chromosome periphery during Mitosis. Mitotic hyperphosphorylation of disordered repeat domains of Ki-67 generates alternating charge blocks in these domains and increases their propensity for liquid-liquid phase separation (LLPS). A phosphomimetic sequence and the sequences with enhanced charge blockiness underwent strong LLPS in vitro and induced chromosome periphery formation in vivo. Conversely, mitotic hyperphosphorylation of NPM1 diminished a charge block and suppressed LLPS, resulting in nucleolar dissolution. Cell cycle-specific phase separation can be modulated via phosphorylation by enhancing or reducing the charge blockiness of disordered regions, rather than by attaching phosphate groups to specific sites.