Complete genomes of a multi-generational pedigree to expand studies of genetic and epigenetic inheritance
Cechova, M.; Potapova, T. A.; Rechtsteiner, A.; Hickey, G.; Mari, R. S.; Mastoras, M.; Menendez, J.; Polakova, N.; Hebbar, P.; Ryabov, F.; Loucks, H.; Groot, A.; Pavlik, T.; Asri, M.; Dong, S.; Yan, S. M.; Lucas, J. K.; Solar, S. J.; Borchers, M.; Mattingly, M.; McKinney, S.; Kratka, M.; Mikhailova, C.; Hanak, O.; Saha, S. T.; Xu, E.; Antipov, D.; Koren, S.; Eizenga, J. M.; McNulty, B.; Gardner, J. M. V.; Hillaker, T.; Violich, I.; Markovic, C.; Kruglyak, S.; Levy, S.; Wolf, T. H.; Mitchell, M. W.; Scheinfeldt, L.; Cheng, H.; Alexandrov, I. A.; McCoy, R. C.; Paten, B.; Phillippy, A. M.; Zook,
Show abstract
Pedigree analysis remains the gold standard for rare disease diagnostics, yet whole genome sequencing studies typically omit critical regions like centromeres, telomeres, and acrocentric chromosome p-arms. Here, we present telomere-to-telomere (T2T) reference genomes for four self-identified African American individuals of admixed ancestry spanning three generations. Our parent-of-origin assigned, chromosome-level assemblies revealed precise meiotic recombination breakpoints in previously inaccessible regions, including recombination events across acrocentric and subtelomeric sequences. Centromeric regions were highly stable, with multi-megabase arrays inherited intact across three generations, while the position of kinetochore assembly sites remained consistent and predominantly associated with the p-arm proximal region. The relative lengths of telomeres on individual chromosomes were maintained across generations. Using a targeted rDNA assembly approach, we reconstructed a complete megabase-scale ribosomal DNA (rDNA) array corresponding to the paternal chromosome 14. This openly available pedigree provides a benchmark dataset for studying recombination and genetic and epigenetic variation across the complete genome.
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