Pre_GI: SWBIT SVG BLASTP

Query: NC_014323:3669704 Herbaspirillum seropedicae SmR1 chromosome, complete genome

Lineage: Herbaspirillum seropedicae; Herbaspirillum; Oxalobacteraceae; Burkholderiales; Proteobacteria; Bacteria

General Information: Root-associated nitrogen-fixing bacterium. Herbaspirillum seropedicae is an endophitic nitrogen-fixing beta-Proteobacteria found associated with important crops such as sugarcane, wheat, maize, rice and sorghum. It is non-phytopathogenic and produces interesting biotechnological products such as polybetaalkanoates and cyanophycin. Herbaspirillum seropedicae was isolated from the roots of rice plants, and is member of a group of free-living soil bacteria known to promote plant growth. The yields of rice and sorghum were significantly increased when grown in soil inoculated with Herbaspirillum seropedicae.

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BLASTP Alignment.txt

Subject: NC_003062:50756 Agrobacterium tumefaciens str. C58 chromosome circular, complete

Lineage: Agrobacterium fabrum; Agrobacterium; Rhizobiaceae; Rhizobiales; Proteobacteria; Bacteria

General Information: This strain is a biovar 1 nopaline-producing strain originally isolated from a cherry tree tumor. Strains of Agrobacterium are classified in three biovars based on their utilisation of different carbohydrates and other biochemical tests. The differences between biovars are determined by genes on the single circle of chromosomal DNA. Biovar differences are not particularly relevant to the pathogenicity of A. tumefaciens, except in one respect: biovar 3 is found worldwide as the pathogen of gravevines. This species causes crown gall disease of a wide range of dicotyledonous (broad-leaved) plants, especially members of the rose family such as apple, pear, peach, cherry, almond, raspberry and roses. Because of the way that it infects other organisms, this bacterium has been used as a tool in plant breeding. Any desired genes, such as insecticidal toxin genes or herbicide-resistance genes, can be engineered into the bacterial DNA, and then inserted into the plant genome. This process shortens the conventional plant breeding process, and allows entirely new (non-plant) genes to be engineered into crops.