ORI NUMBER · Unravelling the effect of origin number on the success of genome replication
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2017-12-01 → 2019-11-30
- Финансиране от ЕС
- 195 455 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Репликацията на ДНК се контролира чрез специални протеини, които определят кога и къде започва копирането на генома. Разбирането на тези механизми помага при търсенето на нови мишени за противоракова терапия и обяснява причините за развитието на синдрома „Майер-Горлин“.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Unravelling the effect of origin number on the success of genome replication
The control of cell division underpins the multicellular basis of mammalian development. To avoid deleterious re-replication events, the process of DNA replication is divided into two non-overlapping steps, first the “licensing” of potential replication origins during G1 and then their sequential “firing” during only S phase. The “pre-replicative complex” (CDC6, CDT1and ORC proteins), license origins in late G1 phase, loading MCM2-7 (mini chromosome maintenance) double hexamers onto the DNA. However, due to the size of their genome, mammalian cells have a high risk that a replication failure occurs somewhere in the genome. MCM-driven replication forks can irreversibly stall when they encounter DNA damage or tightly bound protein-DNA complexes, resulting in gross chromosomal defects and ultimately, cell death. To minimise the probability of these catastrophic events, two mechanisms are in place: the licensing of “dormant origins” and the existence of a “licensing checkpoint” in late G1. At the moment, the exact regulation of the licensing system and these two safety mechanisms in primary cells is largely unknown. Therefore, a greater understanding of the threshold value of licensing that is needed to activate the licensing checkpoint is important to identify new highly selective anticancer targets. Meier-Gorlin syndrome (MGS) is a human syndrome characterised by developmental defects, microcephaly and dwarfism but without evidence of chromosomal instability. It is caused by mutations in pre-RC proteins, especially in the ORC complex. However, a number of different cellular and phenotypic abnormalities have been observed in mouse, in vitro human models and patients, with reduced licensing (MCM mutants). These show proliferation defects, genome instability and cancer susceptibility. Therefore, a deeper understanding of pre-RC mutations in primary cell models is required to clarify how these proteins interact with other regulatory systems. This knowledge has significant potential to uncover cell-specific differences in replication licensing and the maintenance of mammalian genome stability. Such findings are vital to the development and refinement of anti-cancer therapeutics. In this project I investigated how to generate recombinant human iPS cells (hiPSCs) using Crispr/Cas9 technology for MGS-relevant ORC1 mutations and more broadly the licensing system in MGS primary cells versus cancer cell lines. In this context, the objectives of this project were: 1) To determine if MGS mutations impair origin licensing and licensing checkpoint activation in hiPSCs 2) To clarify different effects of mutant ORC and MCM on the molecular pathways of the licensing checkpoint in genetically modified hiPSCs 3) To perform comparative analyses of these effects on origin licensing and licensing checkpoint activation in hiPS-derived clinically-relevant lineages (neural, cardiac, pulmonary) and mammalian cancer cell lines.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
DNA replication must be regulated in eukaryotic cells to ensure that the genome is precisely duplicated. The process is split into two non-overlapping stages: origin “licensing” and origin “firing”. During licensing in G1, ORC loads MCM2-7 onto DNA, and during the firing stage in S phase MCM2-7 is activated to drive replication forks. To prevent re-replication of DNA no new origins must be licensed once S phase begins. Since replication forks can irreversibly stall, it is crucial that sufficient origins are licensed before S phase entry. The “licensing checkpoint” prevents cells in G1 with too few licensed origins from entering S phase. A number of different MCM and ORC mutations have been identified, leading to cancer susceptibility, proliferation defects and/or developmental abnormalities. However, it is hard to explain the spectrum of defects caused by specific mutations, such as in Meier-Gorlin Syndrome. In this project, I will use genome editing to engineer iPS cells with specific mutations in MCM and ORC proteins to determine the effects on origin licensing, licensing checkpoint activation and genome stability. I will use state-of-the-art quantitative proteomics, next generation sequencing and flow cytometry to unravel the molecular mechanisms underpinning the licensing checkpoint and to define the core molecular pathways that coordinate DNA replication and the cell cycle. A comparison of the effect of ORC and MCM mutations in clinically-relevant cells derived from iPSCs and in cancer cell lines will allow me to understand cell-type specific differences in regulation of DNA replication and explain the effects of these mutations on human patients. These new results will open new possibilities to develop specific anti-cancer drugs against selected components of the licensing checkpoint system. Moreover, it will allow me to merge neurodevelopment, DNA replication, stem cell biology and cancer research, laying the foundations upon which to build my future career.
Оригинален текст от CORDIS (на английски).
Участници
- UNIVERSITY OF DUNDEE · DundeeКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
