
handle: 10256/27522 , 10803/695461
Origin licensing ensures that eukaryotic cells replicate their DNA precisely once per cell cycle. The ORC complex, together with the licensing factors Cdc6 and Cdt1, load the core of the replicative helicase (M2-7), as a double hexamer (DH). Licensing starts assembling the helicase loaders ring around duplex DNA (ORC/Cdc6 or OC). Later, this complex recruits a second ring, integrated by the core of the helicase plus the loading factor Cdt1 (M2-7/Cdt1 or MC). In a stepwise manner, both rings (OC and MC) are stacked and ultimately, results in the DH assembling. In yeast, all the licensing proteins are essential. Their specific function, at molecular and mechanistic level, has been an active area of research for the last 15 years. This thesis aims to understand the essential function of two licensing factors, Cdt1 and Orc6. Both proteins are the only licensing factors not related to the ATPase-Associated with various cellular Activities (AAA+) superfamily. We found that DNA insertion during licensing occurs through a series of synchronized events in which Cdt1 plays a critical role. The stacking between the OC and the MC complexes enable the insertion of duplex DNA into the M2-7. This process requires the conserved C terminal winged-helix domain (C-WHD) of Cdt1. Without this domain, the M2-7 splits into two halves. Specifically, the C-WHD of Cdt1 must interact with the C-WHD of Mcm6, enabling the latching between the MC and the OC rings, through a conserved interaction with the Orc5 AAA+ lid. Orc6 has two domains, N terminal domain (NTD) and C terminal domain (CTD), separated by a long linker. Our results suggest, that these domains have independent functions during licensing and surprisingly, both domains are functional even if not physically linked. While the Orc6 CTD contributes to the initial recruitment of the MC by OC complex, the NTD is essential in the latest stages of licensing. Particularly, it is required to close and/or stabilize the closed form of the M2-7. Additionally, we also have unveiled how ORC’s CDK phosphorylation ensure once per cell cycle. While Orc2 phosphorylation inhibits the initial recruitment of the MC by the OC, Orc6 phosphorylation inhibits a latest stage in licensing, through its NTD
Programa de Doctorat en Biologia Molecular, Biomedicina i Salut
Preparació d'orígens, Biologia cel·lular, Origin licensing, Biología celular, ADN, Ciclo celular, Replication, Orc6, Proteins, 577, Cell cycle, Cicle cel·lular, Replicació, 576, Replicación, Preparación de orígenes, Cdt1, Proteínas, Cellular biology, Proteïnes
Preparació d'orígens, Biologia cel·lular, Origin licensing, Biología celular, ADN, Ciclo celular, Replication, Orc6, Proteins, 577, Cell cycle, Cicle cel·lular, Replicació, 576, Replicación, Preparación de orígenes, Cdt1, Proteínas, Cellular biology, Proteïnes
| selected citations These citations are derived from selected sources. This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 0 | |
| popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Average | |
| influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Average | |
| impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Average |
