| ID | 71101 |
| FullText URL | |
| Author |
Kon, Tetsuo
Department of Neurosciences and Developmental Biology, University of Vienna
Kataoka, Kosuke
Graduate School of Engineering, Tokyo University of Agriculture and Technology
Luo, Yi‐Jyun
Biodiversity Research Center, Academia Sinica
Wibisana, Johannes Nicolaus
Genomics and Regulatory Systems Unit, Okinawa Institute of Science and Technology Graduate University
Toga, Kouhei
Laboratory of BioDX, PtBio Co‐Creation Research Center, Genome Editing Innovation Center, Hiroshima University
Uno, Narumi
Laboratory of Bioengineering, School of Life Sciences, Tokyo University of Pharmacy and Life Sciences
Monden, Yuki
Graduate School of Environmental, Life, Natural Science, and Technology, Okayama University
Kaken ID
publons
researchmap
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| Abstract | Advances in long-read sequencing and Hi–C scaffolding have made chromosome-level genome assembly increasingly accessible to individual laboratories, shifting genome research from large consortium-led projects toward investigator-driven studies across diverse taxa. This transition allows researchers to select organisms based on biological questions rather than the prior availability of genomic resources. In this review, we summarize the core experimental and computational steps for generating, evaluating, and annotating chromosome-level assemblies, and examine how they have advanced research in non-model organisms and genetically complex systems. Representative case studies illustrate four major contributions: resolving structural variation and lineage-specific genome architecture, linking genome organization to phenotypic innovation and plasticity, reconstructing deep chromosome evolution and macrosynteny, and distinguishing homologous and homoeologous chromosomes in polyploid genomes. These examples show that chromosome-level assemblies provide more than complete reference sequences. They establish a continuous genomic coordinate system through which genes, regulatory elements, transposable element insertions, sequence variants, and cellular states can be interpreted within broader chromosomal, population, and evolutionary contexts. We describe this integrative perspective as “glocal biology.” Future progress will require pangenomic, population-scale, and haplotype-resolved resources integrated with multi-omics and functional analyses. Collectively, chromosome-level genomics is reshaping life science by embedding molecular functions within chromosomal and evolutionary contexts.
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| Keywords | chromosome-level genome assembly
genome evolution
Hi–C scaffolding
long-read sequencing
non-model animals
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| Published Date | 2026-08-21
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| Publication Title |
Genes to Cells
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| Volume | volume31
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| Issue | issue5
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| Publisher | Wiley
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| Start Page | e70145
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| ISSN | 1356-9597
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| NCID | AA11078945
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| Content Type |
Journal Article
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| language |
English
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| OAI-PMH Set |
岡山大学
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| Copyright Holders | © 2026 The Author(s).
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| File Version | publisher
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| PubMed ID | |
| DOI | |
| Related Url | isVersionOf https://doi.org/10.1111/gtc.70145
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| License | http://creativecommons.org/licenses/by/4.0/
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| Citation | Kon, T., K. Kataoka, Y.-J. Luo, et al. 2026. “ Transforming Life Science Through Chromosome-Level Genome Assemblies.” Genes to Cells 31, no. 5: e70145. https://doi.org/10.1111/gtc.70145.
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