Abstract
In human and other metazoans, the determinants of replication origin location and strength are still elusive. Origins are licensed in G1 phase and fired in S phase of the cell cycle, respectively. It is debated which of these two temporally separate steps determines origin efficiency. Experiments can independently profile mean replication timing (MRT) and replication fork directionality (RFD) genome-wide. Such profiles contain information on multiple origins’ properties and on fork speed. Due to possible origin inactivation by passive replication, however, observed and intrinsic origin efficiencies can markedly differ. Thus, there is a need for methods to infer intrinsic from observed origin efficiency, which is context-dependent. Here, we show that MRT and RFD data are highly consistent with each other but contain information at different spatial scales. Using neural networks, we infer an origin licensing landscape that, when inserted in an appropriate simulation framework, jointly predicts MRT and RFD data with unprecedented precision and underlies the importance of dispersive origin firing. We furthermore uncover an analytical formula that predicts intrinsic from observed origin efficiency combined with MRT data. Comparison of inferred intrinsic origin efficiencies with experimental profiles of licensed origins (ORC, MCM) and actual initiation events (Bubble-seq, SNS-seq, OK-seq, ORM) show that intrinsic origin efficiency is not solely determined by licensing efficiency. Thus, human replication origin efficiency is set at both the origin licensing and firing steps.
Funder
Agence Nationale de la Recherche
Cancéropôle Ile de France
Ligue Nationale Contre le Cancer
Association pour la Recherche sur le Cancer
Fondation pour la Recherche Médicale
CHIST-ERA
Publisher
Public Library of Science (PLoS)
Subject
Computational Theory and Mathematics,Cellular and Molecular Neuroscience,Genetics,Molecular Biology,Ecology,Modeling and Simulation,Ecology, Evolution, Behavior and Systematics
Reference80 articles.
1. Genome Duplication
2. A double-hexameric mcm2-7 complex is loaded onto origin dna during licensing of eukaryotic dna replication;Cecile Evrin;Proceedings of the National Academy of Sciences,2009
3. Concerted loading of mcm2–7 double hexamers around dna during dna replication origin licensing;Dirk Remus;Cell,2009
4. Mechanism of head-to-head mcm double-hexamer formation revealed by cryo-em;Thomas CR Miller;Nature,2019
5. Structural mechanism for replication origin binding and remodeling by a metazoan origin recognition complex and its co-loader cdc6;Jan Marten Schmidt and Franziska Bleichert;Nature communications,2020
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