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Petelinec, A.

Publications and source records attributed to Petelinec, A..

2 recordsLinked to original sources

Spheroid culture remodels mitosis and the proteome in tumor cells

Mitosis depends on precise spindle assembly and positioning, processes influenced by cell shape, size, and microenvironment. Most mechanistic insights into mitosis come from two-dimensional (2D) monolayer cultures, which lack the spatial constraints and extracellular matrix found in tissues, leaving the influence of the tissue environment on mitosis poorly understood. Here, we combine high-resolution imaging and quantitative proteomics to compare mitosis in three-dimensional (3D) multicellular spheroids, generated by magnetic levitation, with that in 2D monolayers. Using a non-transformed cell line and three cancer cell lines from breast, bone, and ovary, we show that 3D culture reshapes mitotic cells and their spindles. Tumor spheroids exhibited a prometaphase delay together with minor chromosome alignment defects, yet chromosome segregation remained largely accurate. Cells in spheroids were rounder, and their spindles were smaller, with increased multipolarity and defects in orientation and position, which varied by cell line. Proteomic profiling revealed broad downregulation of mitotic regulators in spheroids, including kinesins (KIF11, KIF4A), spindle checkpoint proteins, and APC/C components, accompanied by enrichment of metabolic and mitochondrial pathways. Together, our results reveal both shared and cell line-specific modes of mitotic restructuring and establish a framework that connects proteome state to mitotic architecture in 3D environments.

cell biology↗

A Universal Scaling Law for Mitotic Spindles Driven by Chromosome Crowding

Cells regulate the size of their internal structures to maintain function in diverse biological settings1. The mitotic spindle, a molecular micro-machine responsible for chromosome segregation2, must scale to accommodate genomes varying in size by over 10,000-fold across eukaryotes3. Yet, how spindle biomechanics adapts to vastly different genome sizes remains unknown. Here, we uncover a universal spindle scaling law, where metaphase plate width scales with genome size following a power law with an exponent of [~]1/3. We hypothesize that chromosome crowding within the metaphase plate generates compressive forces as chromosomes push against each other, thereby determining spindle size and shape. Our experiments with altered chromosome number and mechanical properties in healthy and cancerous human and mouse cells, together with a theoretical model based on inter-chromosome pushing forces and mechanical manipulations of cells, confirm this hypothesis. Extending these insights across eukaryotes, we demonstrate that chromosome crowding predicts the observed power-law scaling. The biophysical constraint of chromosome crowding offers a mechanistic explanation for the evolution of open mitosis and mitotic cell rounding, enabling the division of larger genomes. Spindle adaptability to larger genomes may promote the proliferation of polyploid cells, driving not only tumor progression but also speciation during evolution.

biophysics↗