Abstract
Mononucleated and binucleated polyploid hepatocytes (4n, 8n, 16n and higher) are found in all mammalian species, but the functional significance of this conserved phenomenon remains unknown. Polyploidization occurs through failed cytokinesis, begins at weaning in rodents and increases with age. Previously, we demonstrated that the opposite event, ploidy reversal, also occurs in polyploid hepatocytes generated by artificial cell fusion. This raised the possibility that somatic 'reductive mitoses' can also happen in normal hepatocytes. Here we show that multipolar mitotic spindles form frequently in mouse polyploid hepatocytes and can result in one-step ploidy reversal to generate offspring with halved chromosome content. Proliferating hepatocytes produce a highly diverse population of daughter cells with multiple numerical chromosome imbalances as well as uniparental origins. Our findings support a dynamic model of hepatocyte polyploidization, ploidy reversal and aneuploidy, a phenomenon that we term the 'ploidy conveyor'. We propose that this mechanism evolved to generate genetic diversity and permits adaptation of hepatocytes to xenobiotic or nutritional injury.
MeSH Terms
Adaptation, Physiological
Aneuploidy
Animals
Chromosome Segregation
Flow Cytometry
Genetic Variation
Hepatocytes/cytology,metabolism
In Situ Hybridization, Fluorescence
Karyotyping
Male
Mice
Mitosis
Models, Genetic
Polyploidy
Spindle Apparatus/metabolism
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
Duncan Andrew W
Oregon Stem Cell Center, Papé Family Pediatric Research Institute, Oregon Health & Science University, Portland, Oregon 97239, USA. duncanan@ohsu.edu
Taylor Matthew H
Hickey Raymond D
Hanlon Newell Amy E
Lenzi Michelle L
Olson Susan B
Finegold Milton J
Grompe Markus
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