FP7Индивидуална стипендия2013–2015

BMC · Bacteria with Multiple Chromosomes: Interplay between genome architecture and cell physilogy

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2013-03-01 → 2015-02-28
Финансиране от ЕС
201 932 €
Участници
1
Схема
MC-IIF

Линиите свързват координатора с партньорите.

Накратко на български

Бактериите с множество хромозоми, като Vibrio cholerae, се изучават чрез преместване на групи гени в генома им. Това помага да се разбере как разположението на генетичната информация влияе върху физиологията и растежа на клетката.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Bacteria with Multiple Chromosomes: Interplay between genome architecture and cell physilogy

Recently, the first artificial cell was generated by chemically synthetizing the whole DNA of a Mycoplasma mycoides and transplanting it into a recipient cell. This study was the proof of principle that genomes can be designed in silico, chemically synthetized and introduced into a cell to replace the endogenous genome. This opens the possibility to generate microorganism à la carte. However, the basic requirements of bacterial genome architecture are not yet understood. Such knowledge is needed before being able to design novel life forms. In this vein, increasing evidence indicates that nucleoid spatiotemporal organization is crucial for bacterial physiology since these microorganism lack compartmentalized nucleus. Compounding the problem, at least 10% of known bacteria harbor multiple chromosomes. The evolutionary advantage of this trait remains obscure. Additionally, it is still unclear how bacterial gene order within the chromosome can influence cell physiology. The in silico analysis of an ever-increasing number of complete bacterial genome sequences permitted the detection of correlations between gene positioning and global growth control. However, very few studies were able to address this issue experimentally. We designed a project to tackle these issues. We used Vibrio cholerae as working organism since it the model of bacteria with multiple chromosomes (BMC) and it has been extensively studied using genetic and molecular biology tools. Importantly, Vibrio cholerae is a globally important pathogen. We developed novel recombineering tools that allowed us to precisely relocate a locus harboring half of the ribosomal protein genes to different regions within the Vibrio cholerae genome without widely altering its structure. We coined the term “positional genetics” to describe this approach as it does not assess gene-function relationships but rather how gene location influences bacterial physiology. We generated a set of isogenic mutants that displayed different phenotypes. First, increasing distance between this locus and the origin of replication resulted in slower growth rates. Second, relocation of this major cluster of ribosomal protein genes far away from its original location impaired the ability of these Vibrio cholerae mutants to infect the model organism Drosophila melanogaster. We showed that replication-linked RP gene dosage reduction is the main mechanism behind these phenotypes, imposing strong constraints on their genomic location. We establish that the genomic position of RP genes is linked to bacterial growth rate, suggesting that this is a common rule for genes involved in the expression of genetic information in bacteria. We were able to rationally tune bacterial growth rate by the relocation of RP genes. Simultaneously, we provide insight into the evolution of bacteria with multiple chromosomes. Application of similar strategies using other bacterial models and targeting different genes will provide insights into the rules of genome organization. In this vein, understanding the genomic factors affecting GR would permit to reprogram bacterial growth, help to predict the behavior of more complex biological systems, and develop better theoretical models, thus promising a deep impact in genome design, bioengineering and biotechnology.

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

Цел на проекта

Bacteria with Multiple-Chromosomes (BMC) are relatively frequent. This project was designed to understand the advantages of such a genomic organization. Based on observations from comparative genomics these could be: shorter generation time by providing additionalorigins of replication, a differential chromosome copy number regulation that changes relatives gene doses of the unlinked gene sets and physical separation of the “core genome” and the “flexible genome” genes. This project will focus principally on the two last hypothesesaddressing them experimentally using leading-edge techniques. Vibrio cholera will be used as model. Its genome consists of two circular chromosomes that vary in their origin of replication (oriCI and oriCII respectively). The project will study extensively rearranged V. cholera strains obtained through genomic engineering techniques. Monochromosomal under oriCI or oriCII derivatives will be employed. Strains where both chromosomes will be under oriCI or oriCII control will also be analyzed. All strains transcriptomes will be analyzed using Illumina RNA-seq. These studies will show to what extent variation in genome structure can affect the relative gene expression. The exploration of the relative accessibility of the two chromosomes to DNA integration will be probed. These experiments will contribute to understand differences in architecture plasticity, gene content and lack of genetic flux between both chromosomes.The proposed researcher profile matches to project needs. The host institution has all facilities needed. All former trainees of the proposed supervisor have progressed in their academic careers. Hence the project is feasible and has great chances to be completed successfully.EU excellence and competiveness in Science will benefit from training shuch an excellent applicant in the best scientific environment and will give the chance to generate a long-term collaboration with Argentina.""

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз