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Updated: Jan 7, 2026

Immunofluorescence Analysis of Endogenous and Exogenous Centromere-kinetochore Proteins
Published on: March 3, 2016
CentriVision: Una plataforma integrada para el análisis de centrómeros a multi-escala en plantas
Mei-Fang Lan1, Xi-Yin Wang2, Xian-Chun Zhang3
1Center for Genomics and Bio-computing, School of Life Science, College of Sciences, North China University of Science and Technology, Tangshan 063000, China; State Key Laboratory of Plant Diversity and Specialty Crops and Key Laboratory of Systematic and Evolutionary Botany, Institute of Botany, the Chinese Academy of Sciences, Beijing 100093, China; College of Life Sciences, University of Chinese Academy of Sciences, Beijing 100049, China; China National Botanical Garden, Beijing, China.
Abstract:
Centromeres are crucial for chromosome segregation and genome stability, and with the advent of telomere-to-telomere (T2T) assemblies, they are increasingly becoming indispensable focal points of genome-wide studies. Thus, we developed CentriVision, a modular bioinformatics platform that unifies candidate centromere identification, structural similarity assessment, DNA repeat unit decomposition, and a framework for exploring potential relationships between single-nucleotide conservation and functional features. The platform provides a suite of analytical tools-including editing-distance dotplots, intra-segment heatmaps, kilobase-scale mini-dotplots, repeat monomer scanning with conserved site visualization, and satellite DNA expansion divergence estimation. These analyses can be further integrated with CENH3 ChIP-seq data. When applied to representative plants, CentriVision achieved high accuracy and uncovered diverse organizational patterns: Arabidopsis thaliana centromeres are composed primarily of 178-188 bp repeats interspersed with rarer ∼502 bp variants that exhibit pronounced sequence conservation yet only background CENH3-ChIP signal, suggesting they may represent pre-centromeric sequences overlooked in earlier studies; Oryza sativa contains two dominant classes rather previously reported one class of centromeric repeats; By contrast, Zea mays exhibited a pattern of strongly biased expansion toward evolving a single dominant repeat unit, showing a distinct evolutionary strategy of centromere reconstruction. Papaver setigerum displays a notably three-layered nested repeat structure. Integration of repeat sequence divergence and CENH3 binding further revealed species-specific evolutionary trajectories. Together, these findings advance our understanding of centromere structure and function. CentriVision offers a reproducible, scalable and user-friendly framework that quantitatively connects repeat evolution, structural variation, and functional epigenomics, to help provide new insights into the architecture and diversification of plant centromeres.
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