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Pseudomonas Aeruginosa

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Pseudomonas Aeruginosa
Name
Institutional Affiliation
Pseudomonas aeruginosa
Pseudomonas aeruginosa is a rod-like monoflagellated bacterium with absurd nutritional resourcefulness. The domain of the organism is Bacteria. It falls and the category of Proteobacteria in the phylum. Gammaproteobacteria is the class. The order of the body is Pseudimonadales (Joshua, 2010). The family is Pseudomonadaceae. Genus is Pseudomonas Migula. It utilizes aerobic respiration as its central metabolism but can respire anaerobically on nitrate. Pseudomonas aeruginosa is found in various parts of the environment such as soil, water, humans, animal plants, and sewage. It is an essential pathogen to the human. It belongs to the family of Pseudomonadaceae.
Specialized and Structural characters
Pseudomonas aeruginosa has a genome size of about five Mbp. The genome has genomic islands together with islets. The main genome has a low level of nucleotide. It also has one supercoiled chromosome that is circular (Stanisish, 2015). The chromosome is positioned in the cytoplasm. As a pathogen, it has various chromosome-mobilizing plasmids. Pseudomonas aeruginosa is a gram harmful microbe. The organism depends on flagellum to move around. It has a pile that helps it to adhere to the host cell surface.
Similar Species
Pseudomonas borbori
Pseudomonas flavescens
Pseudomonas oleovorans
Pseudomonas straminea
Pseudomonas resinovorans
Pseudomonas alcaligenes
Pseudomonas pseudoalcaligenes
Pseudomona mendocina
Pseudomonas argentinensis
Pseudomonas cirtonellolis
Genome Sequence
The genome is the heritable materials of an organism.

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They include the genes together with the noncoding DNA and genetic elements. Genome sequencing is achieved through implementation of genome little gun sampling (Joshua, 2010). Pseudomonas aeruginosa has 6.3 million base pairs (Mbp).
Pathogen city
Animal Pathogenicity
Pseudomonas aeruginosa do well in the hospital surrounding. It is a huge problem in this environment. According to research, it is the second most common infection in patients who have been hospitalized (Stanisish, 2015). Pseudomonas aeruginosa secretes a protein which is the result of the pathogenesis. It has got various secretion systems. Those systems release proteins that are useful for the pathogenesis survival.
Enzymatic catalytic systems
Pseudomonas aeruginosa has three similar genes for the protease. They are designed such that they are ampD, ampD2, ampD3. AmpD is a recycling enzyme. ampD2, ampD3 turn over cell wall of the organism.
How to Remove Pseudomonas aeruginosa from Water
Disinfection Method. We can use this method to chemically disinfect water thus removing Pseudomonas aeruginosa from the water.
An Effective sampling for bacteria. The water can be taken to a sterile sampling point thus removing Pseudomonas aeruginosa from the water.
Heating. Water can be passed through stainless steel heat exchanger removing Pseudomonas aeruginosa.
Ultra Violet purification. The ultraviolet system is installed in the water chambers thus purifying the water.
Shock Chlorination. Use a certain amount of chlorine to do away with the How to Remove Pseudomonas aeruginosa from Water
Disinfection Method. We can use this method to chemically disinfect water thus removing Pseudomonas aeruginosa from the water.
An Effective sampling for bacteria. The water can be taken to a sterile sampling point thus removing Pseudomonas aeruginosa from the water.
Heating. Water can be passed through stainless steel heat exchanger removing Pseudomonas aeruginosa.
Iodine disinfection. Adding iodine in water can help in killing of the bacteria
Overcoming the problem
Practice good hygiene as an individual. One is supposd to ensure that he is clean so as to avoid coming into contact with the bacteria.
Ensure there is proper waste management for your surroundings. The waste should be propelled, disposed and well managed to prevent the problems brought by the bacteria.

Reference
BIBLIOGRAPHY l 1033 Joshua, L. (2010). Pseudomonas Encyclopedia of Microbiology. San Diego , 876-891.
Stanisish, R. (2015). Gene Transfer in Pseudomonas. Genetic and Biochemistry, 170-175.

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