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Biology subjects

Dec, L.

Publications and source records attributed to Dec, L..

2 recordsLinked to original sources

Architecture and Function of Holocentric CENP-A-Independent Kinetochores

Kinetochores are essential macromolecular complexes that anchor chromosomes to the mitotic spindle to ensure faithful cell division1. Despite their critical role, the structural organization of kinetochores assembled on centromeres with vastly distinct architectures across diverse species remains poorly understood2,3. To address this question, we determined the cryo-EM structures of the inner kinetochore (CCAN) from the silkmoth Bombyx mori, an insect that lacks the canonical centromere-specifying histone variant CENP-A and exhibits chromosome-wide centromeric activity (holocentric). Our analysis reveals that B. mori CCAN assembles via atypical histone-fold protein dimerization into a self-contained, head-to-head dimer that topologically entraps and loops DNA, creating a point-centromere-like architecture. This structure also incorporates four previously uncharacterized Centromeric Subunit proteins that are evolutionarily repurposed from the outer kinetochore Dam1/DASH complex. Our work establishes this self-contained CCAN dimer as a key structural unit that forms the basis of a holocentric organization and suggests that large-scale centromere architectures can emerge from the modular arrangement of such discrete kinetochore units.

cell biology↗

Harnessing hydrodynamics for high-yield production of extracellular vesicles from stem cells spheroids with specific cargo profiling

This study presents a novel method and device for the hydrodynamic production of extracellular vesicles (EVs) derived from biomimetic multicellular 3D spheroids, enabling high-throughput particle release that is 10 to 20 times higher than in non-stimulated conditions. The device facilitates the formation of spheroids from human mesenchymal stem cells (hMSCs), offering an all-in-one approach for both spheroid generation and EV release. Production times are reduced to just a few hours, with yield further increased by alternating periods of high hydrodynamic flow and spheroid recovery in a sequential production approach. Using this system, we explored the impact of hydrodynamic and starvation conditions on the protein cargo of EVs, identifying distinct protein markers through proteomics. Specifically, hydrodynamic stimulation enriched EVs in plasma membrane-derived and mitochondrial proteins, revealing divergent biogenesis pathways. Importantly, the produced EVs exhibited therapeutic properties, with demonstrated effects in wound healing, angiogenesis, and anti-inflammatory responses, some showing enhanced efficacy under hydrodynamic stimulation.

bioengineering↗