Laboratory of Biochemistry, School of Pharmacy, Kitasato University, 5-9-1, Shirokane, Minato-Ku, 108-8641 Tokyo, Japan.
Laboratory of Physical Chemistry for Drug Design, School of Pharmacy, Kitasato University, 5-9-1, Shirokane, Minato-Ku, 108-8641 Tokyo, Japan.
J Biochem. 2023 Oct 31;174(5):461-476. doi: 10.1093/jb/mvad061.
The nucleolus is a membrane-less nuclear body that typically forms through the process of liquid-liquid phase separation (LLPS) involving its components. NPM1 drives LLPS within the nucleolus and its oligomer formation and inter-oligomer interactions play a cooperative role in inducing LLPS. However, the molecular mechanism underlaying the regulation of liquid droplet quality formed by NPM1 remains poorly understood. In this study, we demonstrate that the N-terminal and central acidic residues within the intrinsically disordered regions (IDR) of NPM1 contribute to attenuating oligomer stability, although differences in the oligomer stability were observed only under stringent conditions. Furthermore, the impact of the IDRs is augmented by an increase in net negative charges resulting from phosphorylation within the IDRs. Significantly, we observed an increase in fluidity of liquid droplets formed by NPM1 with decreased oligomer stability. These results indicate that the difference in oligomer stability only observed biochemically under stringent conditions has a significant impact on liquid droplet quality formed by NPM1. Our findings provide new mechanistic insights into the regulation of nucleolar dynamics during the cell cycle.
核仁是一种无膜的核体,通常通过其成分参与的液-液相分离(LLPS)过程形成。NPM1 驱动核仁内的 LLPS,其寡聚体形成和寡聚体相互作用在诱导 LLPS 中发挥协同作用。然而,NPM1 形成的液滴质量的调控的分子机制仍知之甚少。在这项研究中,我们证明了 NPM1 无规则区域(IDR)内的 N 端和中心酸性残基有助于减弱寡聚体稳定性,尽管仅在严格条件下观察到寡聚体稳定性的差异。此外,IDR 内的磷酸化导致净负电荷增加,从而增强了 IDR 的影响。重要的是,我们观察到随着寡聚体稳定性降低,由 NPM1 形成的液滴的流动性增加。这些结果表明,仅在严格条件下通过生化方法观察到的寡聚体稳定性差异对 NPM1 形成的液滴质量有重大影响。我们的发现为细胞周期中核仁动力学的调控提供了新的机制见解。