Pushing the limits of HiFi assemblies reveals centromere diversity between two Arabidopsis thaliana genomes

Author:

Rabanal Fernando A1ORCID,Gräff Maike1,Lanz Christa1,Fritschi Katrin1ORCID,Llaca Victor2,Lang Michelle2,Carbonell-Bejerano Pablo1,Henderson Ian3ORCID,Weigel Detlef1ORCID

Affiliation:

1. Department of Molecular Biology, Max Planck Institute for Biology Tübingen , 72076 Tübingen , Germany

2. Genomics Technologies, Corteva Agriscience , Johnston , IA 50131 , USA

3. Department of Plant Sciences, University of Cambridge , Cambridge , CB2 3EA , UK

Abstract

Abstract Although long-read sequencing can often enable chromosome-level reconstruction of genomes, it is still unclear how one can routinely obtain gapless assemblies. In the model plant Arabidopsis thaliana, other than the reference accession Col-0, all other accessions de novo assembled with long-reads until now have used PacBio continuous long reads (CLR). Although these assemblies sometimes achieved chromosome-arm level contigs, they inevitably broke near the centromeres, excluding megabases of DNA from analysis in pan-genome projects. Since PacBio high-fidelity (HiFi) reads circumvent the high error rate of CLR technologies, albeit at the expense of read length, we compared a CLR assembly of accession Eyach15-2 to HiFi assemblies of the same sample. The use of five different assemblers starting from subsampled data allowed us to evaluate the impact of coverage and read length. We found that centromeres and rDNA clusters are responsible for 71% of contig breaks in the CLR scaffolds, while relatively short stretches of GA/TC repeats are at the core of >85% of the unfilled gaps in our best HiFi assemblies. Since the HiFi technology consistently enabled us to reconstruct gapless centromeres and 5S rDNA clusters, we demonstrate the value of the approach by comparing these previously inaccessible regions of the genome between the Eyach15-2 accession and the reference accession Col-0.

Funder

Human Frontiers Science Program (HFSP) Long-Term Fellowship

DFG

Max Planck Society

Publisher

Oxford University Press (OUP)

Subject

Genetics

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