2024/01/08 by Jolien J. E. van Hooff, Maximilian W.D. Raas, Eelco C. Tromer +1 · 1 voice · 4 citations
Agricultural and Biological Sciences · Biochemistry, Genetics and Molecular Biology · #Chromosomal and Genetic Variations #Genomics and Chromatin Dynamics #Genomics and Phylogenetic Studies
paper · pdf · doi:10.1101/2024.01.07.573240
openalex publication_date 2024/01/08 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/22
Summary Chromosome organization ensures accurate DNA replication, segregation, gene regulation and DNA damage repair. Across the tree of life, protein assemblages termed Structural Maintenance of Chromosomes (SMC) complexes determine chromosome organization. Eukaryotes usually have four SMC complex types (condensin I, condensin II, cohesin, and SMC5/6), whereas prokaryotes mostly have one. The expanded set is probably needed to accommodate the considerably larger eukaryotic genomes. Despite their essential functions, SMC complexes exhibit notable variation among model organisms, suggesting underexplored diversity across eukaryotes. Here, we provide a thorough reconstruction of the evolution of SMC complex subunits and accessory proteins across eukaryotes. We show that the last eukaryotic common ancestor (LECA) had all four complete SMC complexes, supporting the notion that LECA was already a sophisticated cell. At later timepoints, condensin II was lost at least thirty times, rendering it one of the most frequently lost eukaryotic cellular machineries. We identify multiple components (e.g., Sororin, Securin, Nse5, and Nse6) as much more ancient and widespread than previously appreciated. Finally, we traced the prokaryotic origins of these complexes and propose an ancient SMC complex was already duplicated in the ancestor of TACK and Asgard archaea, suggesting a sophisticated chromosome organization in the archaeal ancestor of eukaryotes. The eukaryotic SMC complex inventory was further expanded through gene duplications, highlighting the importance of these events in the emergence of eukaryotic complexity. Altogether, our results address questions and raise new ones about how SMC complex evolution affected the genome organizations of ancestral and contemporary organisms.