Rhodopseudomonas palustris HaA2

Gram-negativeBacilliMotileFacultative

Kingdom

Pseudomonadati

Phylum

Pseudomonadota

Class

Alphaproteobacteria

Order

Hyphomicrobiales

Family

Nitrobacteraceae

Genus

Rhodopseudomonas

Description

Rhodopseudomonas bacteria are purple nonsulfur phototrophic organisms that can be found many types of marine environments and soils. It converts sunlight into energy and converts atmospheric carbon dioxide into biomass. R. palustris has the potential to be very useful because it can degrade and recycle several different aromatic compounds that make up lignin, the "main constituent of wood and the second most abundant polymer on earth" (DOE). Thus, this bacteria and those like it may be useful in removing these types of waste from the environment. In addition, R. palustris converts N2 into NH4 and H2, which can be used as a biofuel.Rhodopseudomonas palustris, whose genome has been sequenced by the DOE Joint Genome Institute, has a certain genetic system that allows genes to be moved in and out of the bacterium easily. This allows researchers to target certain genes for mutagenesis and "rapidly apply information gained from genome sequencing to the developing area of functional genomics" (DOE). The genome, which is 5.46 Mb in length and is comprised of about 4,800 genes, encodes for proteins involved in a verstile and flexible metabolism as well as a cellular differentiation and a budding reproduction. It is similar to the genome of Bradyrhizobium japonicum including many homologous genes, such as terminal oxidase genes.Rhodopseudomonas bacteria have a photosynthetic reaction center containing bacteriochlorophyll b that was first found in 1963 and classified 3 years later and have a range of metabolic processes (Lang and Oesterhelt 1989). R. viridis is an anaerobic, photosynthetic bacterium that has microaerophilic growth capacity. It is one of the most metabolically versatile bacteria known with the ability to convert carbon dioxide gas into cell mass and nitrogen gas into ammonia and hydrogen gas. R. palustris has an interesting reproduction through budding and asymmetric cell division: one daughter cell is a motile swarmer cell and the other is a stalked nonmotile cell. Another major developmental process of R. palustris is the differentiation of "an elaborate system of intracytoplasmic membrane vesicles when cells run out of oxygen and are placed in light" (DOE). These intracytoplasmic membranes, which are named thylakoids, contain the photosynthetic reaction centers and occur only in anaerobic conditions. The thylakoids are integral membrane protein-reaction center complexes that catalyze light-induced electron transport through the photosynthetic membrane. (Lang and Oesterhelt 1989) They also house photosynthetic pigments and associated proteins (DOE). Also during anaerobic conditions, R. palustris increases its biomass by absorbing carbon dioxide and "degrading organic compounds including such toxic compounds as 3-chlorobenzoateto cellular building blocks" (DOE). When oxygen is available, the bacterium degrades several types of carbon-containing compounds like sugars, lignin, monomers, and methanol through respiration (DOE).Studies have shown that Rhodopseudomonas viridis grows well at 30C in light under at a 13 hour generation and under microaerophilic growth conditions in the dark at a 24 hour generation time. In addition, the bacterium did not grow anaerobically in the darkness or aerobically in the light. The bacterium was able to use dimethyl sulfoxide, potassium nitrate, or sodium nitrite as a terminal electron acceptor instead of oxygen. (Lang and Oesterhelt 1989) In general, this bacterium can be found in many different soils and marine environments.Rhodopseudomonas palustris, along with Rhodospirillum rubrum and Rhodospirillum photometricum, grow phototrophically on several two- and three-carbon halocarboxylic acids in the presence of CO2 through reductive dehalogenation and assimilation of the resulting acid. This ability to utilize halocarboxylic acids suggests that they might be able to assist in the removal of these enironmental pollutants from illuminated anaerobic habitats like lakes, waste lagoons, sediments of ditches and ponds, mud, and moise soil (McGrath and Harfoot 1997). This bacterium also has the ability to convert N2 into NH4 and H2, which can be used as a biofuel.(From http://microbewiki.kenyon.edu/index.php/Rhodopseudomonas) (MicrobeWiki: Rhodopseudomonas)

Taxonomy

KingdomPseudomonadati
PhylumPseudomonadota
ClassAlphaproteobacteria
OrderHyphomicrobiales
FamilyNitrobacteraceae
GenusRhodopseudomonas
SpeciesRhodopseudomonas palustris
StrainHaA2

Profile

Physiology
Gram staining propertiesNegative
ShapeBacilli
MobilityYes
Flagellar presenceYes
Number of membranes2
Image of Rhodopseudomonas palustris HaA2
Ecology, Host, and Life Cycle
Oxygen requirementsFacultative
Optimal temperature25
Temperature rangeMesophilic
HabitatMultiple
Biotic relationshipFree living
Host(s)Not Available
Cell arrangementSingles
SporulationNot Available
Energy sourcePhototroph
PathogenicityNo

Genome Summary

Rhodopseudomonas palustris HaA2

Accession NumberNC_007778.1

Gene Summary

Adenine Count

Not Available

Thymine Count

Not Available

Guanine Count

Not Available

Cytosine Count

Not Available

Genome Length

Not Available

Protein-coding Genes

4760 genes

Non-Coding Genes

69 genes

# of Chromosomes/Plasmids

1

Genes

NameLocus TagUniProtStrandCoordinatesMolecular Weight
Hypothetical proteinRPB_RS17435Not Available-3961739 - 396231120306.4
Putative chitinaseRPB_RS17440Not Available-3962314 - 396311428369.2
Hypothetical proteinRPB_RS24905Not Available-3963280 - 396511561995.1
Tail proteinRPB_RS17450Not Available-3965132 - 3968989136180.0
Gta-like proteinRPB_RS17455Not Available-3969295 - 396973816101.2
Minor tail proteinRPB_RS17460Not Available-3969792 - 397071231299.9
Tail proteinRPB_RS17465Not Available-3970911 - 397154622765.1
Putative bacteriotail tape measure proteinRPB_RS17470Not Available-3971822 - 397241219861.5
rcc01693 family proteinRPB_RS17475Not Available-3972409 - 39726127626.15
gene transfer agent family proteinRPB_RS17480Not Available-3972609 - 397292310539.5

Displaying genes 1 – 10 of 4829 in total

Pathways

0 pathways

No pathways found

No metabolic pathways have been associated with this bacterium yet.

Metabolites

86 records
Metabolite IDMetabolite nameStructureCAS number
BASm0000237(R)-4'-phosphopantothenateC9H18NO8PChemical structure of (R)-4'-phosphopantothenateNot available
Average299.2149Da
Monoisotopic299.0770031Da
BASm00002512-dehydropantoateC6H9O4Chemical structure of 2-dehydropantoateNot available
Average145.1333Da
Monoisotopic145.050083776Da
BASm0000377(S)-malateC4H4O5Chemical structure of (S)-malateNot available
Average132.0716Da
Monoisotopic132.005873238Da
BASm0000387(6R)-5,10-methylene-5,6,7,8-tetrahydrofolateC20H21N7O6Chemical structure of (6R)-5,10-methylene-5,6,7,8-tetrahydrofolateNot available
Average455.432Da
Monoisotopic455.1564286Da
BASm0000401(S)-2-succinylamino-6-oxoheptanedioateC11H12NO8Chemical structure of (S)-2-succinylamino-6-oxoheptanedioateNot available
Average286.218Da
Monoisotopic286.0579371Da
BASm00007164-methylsulfanyl-2-oxobutanoateC5H7O3SChemical structure of 4-methylsulfanyl-2-oxobutanoateNot available
Average147.17Da
Monoisotopic147.012138839Da
BASm0000989GlycerolC3H8O3Chemical structure of Glycerol56-81-5
Average92.0938Da
Monoisotopic92.04734412Da
BASm0001717fumarateC4H2O4Chemical structure of fumarateNot available
Average114.0563Da
Monoisotopic113.9953086Da
BASm0001767oxalateC2O4Chemical structure of oxalateNot available
Average88.019Da
Monoisotopic87.979658488Da
BASm0001779orotateC5H3N2O4Chemical structure of orotateNot available
Average155.09Da
Monoisotopic155.0098302Da

Displaying 1–10 of 86 metabolites