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Pineda-Santaella, A.

Publications and source records attributed to Pineda-Santaella, A..

2 recordsLinked to original sources

Metazoan-like kinetochore arrangement masked by the interphase RabI configuration

During cell cycle progression in metazoan, the kinetochore, the protein complex attached to centromeres which directly interacts with the spindle microtubules, the vehicle of chromosome segregation, is assembled at mitotic onset and disassembled during mitotic exit. This program is assumed to be absent in budding and fission yeast because kinetochore proteins are stably maintained at the centromeres throughout the entire cell cycle. In this work, we show that the assembly program at the mitotic onset of the Ndc80 complex, a crucial part of the outer kinetochore, is unexpectedly conserved in Schizosaccharomyces pombe. We have identified this behavior by removing the Rabl chromosome configuration during interphase, in which centromeres are permanently associated with the nuclear envelope beneath the spindle pole body. Hence, the Rabl configuration masks the presence of a program to recruit Ndc80 at mitotic onset in fission yeast, similar to that taking place in metazoan. Besides the evolutionary implications of our observations, we think that our work will help understand the molecular processes behind the kinetochore assembly program during mitotic entry using fission yeast as the model organism.

cell biology

Loss of Kinesin-8 improves the robustness of the acentrosomal spindle

Chromosome segregation in female meiosis is inherently error-prone, among other reasons, because the acentrosomal spindle assembles and segregates chromosomes without the major microtubule-organizing centres in eukaryotes, the centrosomes, which causes high rate of aneuploidy. The molecular basis underlying formation of acentrosomal spindles is not as well-understood as that of centrosomal spindles and, consequently, strategies to improve spindle robustness are difficult to address. Recently, we noticed during fission yeast meiosis the formation of unexpected microtubules arrays, independent of the spindle pole bodies (yeast centrosome equivalent), with ability to segregate chromosomes. Here, we establish such microtubules formation as bonafide self-assembled spindles that depend on the canonical microtubule crosslinker Ase1/PRC1, share similar structural polarity and harbour the microtubule polymerase Alp14/XMAP215, while being independent of conventional {gamma}-tubulin-mediated nucleation mechanisms. Remarkably, acentrosomal spindle robustness was reinforced by deletion of the Klp6/Kinesin-8, which, consequently, led to a reduced meiotic aneuploidy rate. Our results enlighten the molecular basis of acentrosomal meiosis, a crucial event in understanding gametogenesis.

cell biology