Shrikondawar Akshaykumar Nanaji, Chennoju Kiranmai, Ghosh Debasish Kumar, Ranjan Akash
Computational and Functional Genomics Group, Centre for DNA Fingerprinting and Diagnostics, Hyderabad, India.
Graduate Studies, Regional Centre for Biotechnology, Faridabad, India.
J Cell Physiol. 2024 Dec;239(12):e31433. doi: 10.1002/jcp.31433. Epub 2024 Sep 8.
The nucleolar localization of proteins is regulated by specific signals directing their trafficking to nucleus and nucleolus. Here, we elucidate the mechanism underlying the nuclear and nucleolar localization of the nucleomethylin (NML) protein, focusing on its nuclear localization signals (NLSs) and nucleolar localization signal (NoLS). Using a combination of bioinformatic analysis and experimental validation, we identified two monopartite and one bipartite NLS motifs within NML. The combined presence of both monopartite NLSs significantly enhances nuclear localization of the protein, while specific basic amino acid clusters within the bipartite NLS are crucial for their functionality. We also reveal the functional role of the NLS-coupled NoLS motif in driving nucleolar localization of NML, which contains an arginine-rich motif essential for its function. The basic residues of the arginine-rich motif of NoLS of NML interacts with nucleophosmin 1 (NPM1), allowing the possible liquid-liquid phase separation and retention of NML in the nucleolus. Remarkably, the strong NoLS of NML can direct the nucleolar localization of a cytosolic protein, aldolase, emphasizing its potency. Overall, our findings provide insights into the combinatorial functioning of NLSs and NoLS in regulating the subcellular localization of NML, highlighting the intricate regulatory mechanisms governing its localization within the nucleus and nucleolus.
蛋白质的核仁定位是由特定信号调控的,这些信号引导其向细胞核和核仁运输。在此,我们阐明了核甲基化蛋白(NML)的核定位和核仁定位的潜在机制,重点关注其核定位信号(NLSs)和核仁定位信号(NoLS)。通过生物信息学分析和实验验证相结合的方法,我们在NML中鉴定出两个单分型和一个双分型NLS基序。两个单分型NLS的共同存在显著增强了该蛋白的核定位,而双分型NLS内特定的碱性氨基酸簇对其功能至关重要。我们还揭示了NLS偶联的NoLS基序在驱动NML核仁定位中的功能作用,该基序包含一个对其功能至关重要的富含精氨酸的基序。NML的NoLS富含精氨酸基序的碱性残基与核磷蛋白1(NPM1)相互作用,使得NML可能发生液-液相分离并保留在核仁中。值得注意的是,NML强大的NoLS可引导胞质蛋白醛缩酶的核仁定位,凸显了其效能。总体而言,我们的研究结果为NLSs和NoLS在调节NML亚细胞定位中的组合功能提供了见解,突出了控制其在细胞核和核仁内定位的复杂调控机制。