FP7Индивидуална стипендия2013–2015

COSP · Identification and characterization of factors involved in chromosome organization and septum positioning in bacteria

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2013-02-01 → 2015-01-31
Финансиране от ЕС
200 372 €
Участници
1
Схема
MC-IEF

Линиите свързват координатора с партньорите.

Накратко на български

Бактерията Bacillus subtilis се използва, за да се открият протеини, които организират ДНК и помагат за точното разпределяне на хромозомите между двете дъщерни клетки. Това помага да се разбере как се контролира деленето на клетката и формирането на спори.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Identification and characterization of factors involved in chromosome organization and septum positioning in bacteria

Discovery and characterization of important factors that help the model bacterium B. subtilis to organize its DNA The Marie-Curie IEF project COSP was aimed at the identification of novel factors that help to organize the cellular DNA (the chromosome) and therefore contribute to efficient chromosome segregation (equally dividing of the chromosome copies of the DNA between two daughter cells) during the cell cycle of the soil bacterium Bacillus subtilis. Since B. subtilis is a highly accessible organism in terms of molecular biology and genetics, and there is already a profound understanding of cell cycle-related processes in this bacterium, it was an obvious choice to use it as the object of study for the project. The Errington lab has a long history in investigating the B. subtilis cell cycle, and its ability to form spores that can survive adverse conditions. The molecular processes going on during spore formation make it particularly apt for the analysis of chromosome organization. It was previously shown that a number of protein factors are involved that ensure that the chromosome is efficiently divided between two daughter cells during sporulation. In this project we set out to develop a genetic screening system based on B. subtilis sporulation. We used a reporter gene that enables visual selection of interesting bacterial colonies on the basis of their colour (blue or white). Spore formation in B. subtilis can be stimulated by growing and then starving a bacterial culture. In the first stages of sporulation the cell divides asymmetrically, with the cell division septum being placed close to one of the cell poles. At this stage, the dividing cell contains two chromosomes, one for the cellular part that eventually becomes the spore (prespore) and one for the mother cell compartment. Initially, only about 1/3 of the chromosome is present in the prespore compartment, comprising a specific region surrounding the origin of chromosome replication (oriC); the remaining part of this chromosome resides in the mother cell compartment. This incorrectly positioned chromosome segments is then moved into the prespore by a transporter protein called SpoIIIE. Mutations abolishing SpoIIIE function trap the cells in a state in which the prespore chromosome is incompletely segregated with only the origin region in the correct compartment. This feature of spoIIIE mutants provides a powerful tool with which to probe the cellular mechanisms that place the oriC region specifically close to the prespore cell pole. The mother cell and the prespore have distinct genetic programs determining their respective fates. Genetic constructs based on the different genetic programs of prespore and mother cell were designed that allowed us to probe changes in the location of chromosomal regions near to (proximal) or distant from (distal) oriC. Especially fruitful turned out to be a screen that looked for mutations leading to aberrant localization of oriC outside of the prespore, i.e. in the mother cell compartment. A pool of random bacterial mutants was screened to find mutants in which the localization of oriC was perturbed. The genes identified by these mutations lay in the soj gene and two other genes not previously implicated in chromosome segregation. Characterisation of these genes has provided important insights into their functions. Our results give new insights into the details of chromosome organization in B. subtilis. Understanding this and other aspects of the bacterial cell cycle, which are vital for bacterial growth, may have important implications for antimicrobial drug development.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The cell cycle is one of the most pivotal and fundamental processes in biology and encompasses a set of inter-related events, most prominently, chromosome replication, chromosome segregation and cell division. Each of these steps is highly complex, and bacterial cells offer the opportunity to study cell cycle processes in a simplified, relatively tractable context. Investigation of the bacterial cell cycle would not only be of benefit to basic understanding of this process in living organisms in general, it is also highly relevant to pathogenesis and antibacterial drug development.Bacillus subtilis is a particularly good model for studying the bacterial cell cycle for several reasons. First, it is highly tractable as an experimental system. Second, the asymmetric cell division used during the early stages of sporulation, provides certain important experimental opportunities. Third, research on the cell cycle of B. subtilis is at the frontiers of our knowledge about this process.By setting up genetic screens based on asymmetric cell division during sporulation in B. subtilis, this project aims to discover novel factors involved in proper chromosome organization and septum positioning, two important elements of the cell cycle. In addition, chromosome condensation will be studied in more detail using methods based on chromosome conformation capture (3C) technology. By exploiting the wide array of molecular and cell biology tools and techniques available in the host lab, the function of the identified factors will be further investigated.Overall, this project is expected to yield novel insights into the bacterial cell cycle, especially with regard to chromosome structure and placement of the septum during cell division. Also, the project and research environment offer the researcher an excellent opportunity to develop scientifically and prepare for a leading independent position.""

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз