Irrev Fork Arrest · Deciphering the mechanism of irreversible replication fork arrest
„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“
- Период
- 2020-04-01 → 2022-03-31
- Финансиране от ЕС
- 212 934 €
- Участници
- 1
- Схема
- MSCA-IF-EF-ST
Линиите свързват координатора с партньорите.
Накратко на български
Механизмите на необратимото спиране на репликационните вилки се изследват, за да се разбере как се копира ДНК в клетките. Това е важно, защото помага да се разберат защитните процеси на организма при възникване на грешки или повреди в генома.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Deciphering the mechanism of irreversible replication fork arrest
The replication or copy of genomic DNA is a complex and regulated process, requiring the coordinated action of multiple specialised replication proteins. In eukaryotic cells, like those of human and yeast cells, the genome is made of double-stranded DNA (dsDNA) forming the famous DNA double helix. To replicate it, DNA must be first unwound, exposing the two single DNA strands, and then two new copies of DNA can be synthesised. The replication proteins can elegantly coordinate the unwinding of DNA with the synthesis of the new daughter DNA strands. In eukaryotes, DNA replication initiates simultaneously at multiple sites along the genome known as origins of replication (Figure 1A). In each origin of replication, dsDNA is unwound leading to the formation of a DNA bubble with edges that resemble a fork, known as replication forks (Figure 1B). Replication forks and their replisomes move in opposing directions as they unwind parental DNA and synthesise the new DNA copies (Figure 1C). DNA replication is an essential process for live, but it is also a very challenging and dangerous process. DNA is usually wrapped and protected from external threats; however, to allow DNA replication, it needs to be exposed and unwound, posing risk to it being damaged. Moreover, despite DNA replication process is extremely efficient and accurate, errors can occur leading to mutations or to the synthesis of incomplete copies of DNA. To repair DNA damage, correct mutations, and ensure that the genome is replicated entirely, cells possess multiple safeguard mechanisms. The safeguard mechanisms can act any time that a cell replicates its DNA, but they are especially important to ensure cell survival in the presence of what is known as “replication stress”. Replication stress is a term used to describe a situation where DNA replication is affected and cannot proceed normally. Although not exclusively, cells famous for having a lot of replication stress are the cancer cells, putatively due to the presence of damaged DNA in these cells, that is likely more difficult to replicate. Moreover, replication stress in cancer cells could be due to exhaustion of the replication components caused by the increased replication and division of these cells. More knowledge is required to understand replication stress and its consequences to, for example, address if replication stress is cause or consequence of cancer cell transformation. In the presence of replication stress, cells need to protect replication forks to prevent further DNA damage, and at the same time, they need to ensure that replication forks will be able to restart and complete genome replication. The DNA damage checkpoint pathway (the checkpoint) is one of the key safeguard mechanisms to survive to replication stress. It has been shown that, in the absence of an intact checkpoint, stressed replication forks fail to restart replication after episodes of replication stress, which leads to incomplete genome replication, massive accumulation of DNA damage and cell death. Despite the importance of DNA replication and of the checkpoint pathway to ensure that cells can survive to replication stress, there are still many questions remaining to fully understand these processes. Better understanding can be key to understand the transformations that precede the formation of anomalous cells such as cancer cells, and to help identify future treatment avenues to prevent or revert such transformations. The main objectives of this project, summarised in Figure 1D, aimed to study: 1. Special characteristics of stressed replication forks. 2. Requirements of replication forks to restart after episodes of replication stress. 3. How the checkpoint protects forks to allow DNA replication restart after replication stress. From our results, we can conclude that in the presence of replication stress, several aspects of replication forks are changed, and their ability to restart after stress episodes can be affected. Moreover, we have identified putative mechanisms by which the checkpoint could protect forks from replication stress to allow restart, ensuring genome replication and cell survival.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
DNA replication is essential for cell proliferation. Obstacles to replication generate replication stress by stalling replication forks. In response to replication stress, cells activate the DNA damage checkpoint pathway that coordinates a cellular response to prevent DNA damage and ensure cell survival. One essential function of the checkpoint is to stabilise stalled replication forks and ensure that replication will resume after obstacles are removed. Specifically, the yeast checkpoint effector kinase Rad53 and its human counterpart Chk1 are essential to prevent irreversible replication fork arrest (IRFA), DNA damage and cell death under replication stress. A screen to identify factors required to promote IRFA has revealed a role for unrestricted recombination events in promoting IRFA. However, mechanistic studies are still required to understand how the checkpoint stabilises stalled forks and prevents IRFA. Recently, in vitro replication reconstitution with yeast purified proteins in the lab has helped uncover important mechanisms of DNA replication. I will use this system to reconstitute IRFA in vitro and determine the proteins and enzymatic activities required to promote IRFA in the absence of the checkpoint. I will then look for phosphorylation targets of Rad53 to understand how the checkpoint prevents IRFA. I will study changes at the DNA and replisome of stalled replication forks by 2D electrophoresis, mass spectrometry and cryo-EM to understand the causes of the irreversibility of IRFA. We seek to better characterise an essential function of the DNA damage checkpoint and define a new role for unrestricted recombination in promoting DNA damage. Main challenges of current cancer therapies include the appearance of surviving checkpoint-deficient cancer cells. Despite constant replication stress, it is unknown why these cells do not suffer irreversible fork arrest. Understanding IRFA could help design new therapies to target checkpoint-deficient cancer cells.
Оригинален текст от CORDIS (на английски).
Участници
- THE FRANCIS CRICK INSTITUTE LIMITED · LondonКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
