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Wang, U.-T. T.

Publications and source records attributed to Wang, U.-T. T..

2 recordsLinked to original sources

Ki67 regulates nuclear lipid accumulation at the chromosomal periphery to facilitate chromosome individualization during mitosis

Nuclear lipids play roles in regulatory processes such as signaling, transcriptional regulation, and DNA repair. In this report, we demonstrate that nuclear lipids may contribute to Ki-67-regulated chromosome integrity during mitosis. In COS-7 cells, nuclear lipids are enriched at the perichromosomal layer and excluded from intrachromosomal regions during early mitosis, but are then detected in intrachromosomal regions during late mitosis, as revealed by TT-ExM, an improved expansion microscopy technique that enables high-sensitivity, super-resolution imaging of proteins, lipids, and nuclear DNA. The nuclear non-histone protein Ki-67 acts as a surfactant to form a repulsive molecular brush around fully condensed sister chromatids in early mitosis, preventing the diffusion or penetration of nuclear lipids into intrachromosomal regions. Ki-67 is phosphorylated during mitosis by cyclin-dependent kinase 1 (CDK1), the best-known master regulator of the cell cycle. Both Ki-67 knockdown and reduced Ki-67 phosphorylation by CDK1 inhibitors allow nuclear lipids to penetrate chromosomal regions. Thus, both Ki-67 protein level and phosphorylation status during mitosis appear to influence the perichromosomal distribution of nuclear lipids. Ki-67 knockdown and CDK1 inhibition also lead to uneven chromosome disjunction between daughter cells, highlighting the critical role of this regulatory mechanism in ensuring accurate chromosome segregation. Given that Ki-67 has been proposed to promote chromosome individualization during open mitosis in vertebrates, our results reveal that nuclear lipid enrichment at the perichromosomal layer enhances Ki-67s ability to form a protective chromosomal envelope, which is critical for correct chromosome segregation and maintenance of genome integrity during mitosis.

cell biology↗

Expansion microscopy with trypsin digestion and tyramide signal amplification (TT-ExM) for protein and lipid staining

Expansion microscopy, whereby the relative positions of biomolecules are physically increased via hydrogel expansion, can be used to reveal ultrafine structures of cells under a conventional microscope. Despite its utility for achieving super-resolution imaging, expansion microscopy suffers two major drawbacks, namely proteolysis and swelling effects that, respectively, induce protein loss and dilute fluorescence signals. Here, we report two improvements to expansion microscopy that overcome these two challenges, i.e., deploying trypsin digestion to reduce protein loss and tyramide signal amplification to enhance fluorescence signal. We name our new methodology TT-ExM to indicate dual trypsin and tyramide treatments. TT-ExM may be applied for both antibody and lipid staining. Notably, we demonstrate better protein retention for endoplasmic reticulum and mitochondrial markers in COS-7 cell cultures following 2-h trypsin treatment. Subsequent lipid staining revealed the complex 3D membrane structures in entire cells. Through combined lipid and DNA staining, our TT-ExM methodology highlighted mitochondria by revealing their DNA and membrane structures in cytoplasm, as well as the lipid-rich structures formed via phase separation in nuclei at interphase. We also observed lipid-rich chromosome matrices in the mitotic cells. Thus, TT-ExM significantly enhances fluorescent signals and generates high-quality and ultrafine-resolution images under confocal microscopy.

cell biology↗