One of the major strategies for evolution of bacteria, accompanied by pronounced changes in their genetic organization, is the formation of symbioses with eukaryotes. They provide their micropartners with nutrients and ecological niches, in which bacteria implement trophic or protective functions used by their hosts. Acquisition of the ability for symbiosis is associated with formation of specialized sym gene systems, which is often accompanied by a modification in bacterial genome structure. In nodule bacteria (rhizobia) – N2-fixing symbionts of leguminous plants, most of which belong to α-proteobacteria of order Hyphomicrobiales, the symbiogenic changes in genomes vary depending on the taxonomic position. In the evolutionarily primary rhizobia of family Bradyrhizobiaceae, which emerged directly from free-living N2-fixers, transition to symbiosis is accompanied by a significant (1.5–2 times) increase in the genome size. However, their genomes retain a unitary structure: in the majority of Bradyrhizobium strains, more than 95% of genes are located in chromosomes. In the secondary rhizobia of family Phyllobacteriaceae (Mesorhizobium, Phyllobacterium), which emerged by transfer of sy
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