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A complete genome for the common marmoset
Prajna Hebbar1, Tamara Potapova2, Hailey Loucks1
1UC Santa Cruz Genomics Institute, University of California, Santa Cruz, Santa Cruz, CA 95060, USA.
Cell
|August 6, 2026
Summary
We present a complete telomere-to-telomere (T2T) genome assembly for the common marmoset, a key primate model. This high-quality reference genome resolves complex regions, enhancing its use in studying evolution and human disease.
Area of Science:
- Genomics
- Primate Evolution
- Comparative Genomics
Background:
- The common marmoset is a crucial model organism for primate evolution and human disease research.
- Previous genome assemblies had limitations in resolving complex genomic regions.
Purpose of the Study:
- To generate a high-quality, telomere-to-telomere (T2T) reference genome assembly for the common marmoset.
- To resolve previously inaccessible genomic regions, including centromeres and sex chromosomes.
- To identify novel genes and understand primate genome evolution.
Main Methods:
- Telomere-to-telomere (T2T) sequencing and assembly.
- Analysis of complex genomic regions such as centromeres, sex chromosomes, and satellite DNA.
- Identification and characterization of lineage-specific genes and transcript models.
Main Results:
- A complete T2T reference assembly and three near-T2T haplotypes for the common marmoset were generated.
- Previously unresolved regions, including centromeres, sex chromosomes, and the MHC, were resolved.
- Marmoset centromeres feature chromosomal-specific dimeric alpha satellites, with inactive ancestral remnants.
- Gene-poor, satellite-rich acrocentric chromosome short arms were assembled, harboring rDNA and sharing pseudo-homolog regions (PHRs).
- Over 500 marmoset-lineage-specific transcribed genes with novel transcript models or expansions were identified.
Conclusions:
- The T2T reference genome significantly enhances the common marmoset's utility as a model organism.
- This resource provides critical insights into primate genome evolution, particularly concerning centromere structure and evolution.
- The identification of novel genes and genomic features advances our understanding of marmoset biology and its relevance to human disease.
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