Pre_GI: SWBIT SVG BLASTN

Query: NC_011985:3282924 Agrobacterium radiobacter K84 chromosome 1, complete genome

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

General Information: This strain has been developed for worldwide commercial use to control crown gall. This species is used commercially to control crown gall, a tumorogenic plant disease caused by the ubiquitous soil-borne pathogen Agrobacterium tumefaciens, which affects susceptible woody plants worldwide. The pathogen is responsible for nursery and orchard losses among stone fruit trees, grapes, apples, pears, nut trees, caneberries, clematis, hops, kiwifruit, persimmons, roses and many ornamental annuals, trees and shrubs. Infected plants are usually weakened and unproductive due to their damaged root system.

- Sequence; - BLASTN hit (Low score = Light, High score = Dark)
- hypothetical protein; - cds: hover for description

BLASTN Alignment.txt

Subject: NC_002932:2142000 Chlorobium tepidum TLS, complete genome

Lineage: Chlorobaculum tepidum; Chlorobaculum; Chlorobiaceae; Chlorobiales; Chlorobi; Bacteria

General Information: This green-sulfur bacterium is a thermophile and was isolated from a New Zealand high-sulfide hot spring. Photosynthetic thermophile. Chlorobium tepidum is a member of the green-sulfur bacteria. It has been suggested that the green-sulfur bacteria were among the first photosynthetic organisms since they are anaerobically photosynthetic and may have arisen early in the Earth's history when there was a limited amount of oxygen present. This organism utilizes a novel photosynthetic system, and harvests light energy using an unusual organelle, the chlorosome, which contains an aggregate of light-harvesting centers surrounded by a protein-stabilized galactolipid monolayer that lies at the inner surface of the cytoplasmic membrane. Unlike many other photosynthetic organisms, the green-sulfur bacteria do not produce oxygen and tolerate only low levels of the molecule. This organism also fixes carbon dioxide via a reverse tricarboxylic acid cycle, using electrons derived from hydrogen or reduced sulfur to drive the reaction, instead of via the Calvin cycle like many other photosynthetic organisms.