Bacteria
From Wikipedia, the free encyclopedia
The
bacteria (
[bækˈtɪəriə] (help·info);
singular:
bacterium)
[α] are a large group of unicellular,
prokaryote microorganisms. Typically a few
micrometres in length, bacteria have a wide range of shapes, ranging from
spheres to rods and spirals. Bacteria are ubiquitous in every
habitat on
Earth, growing in soil,
acidic hot springs,
radioactive waste,
[2] water, and deep in the
Earth's crust, as well as in organic matter and the live bodies of plants and animals. There are typically 40 million bacterial
cells in a gram of soil and a million bacterial cells in a millilitre of
fresh water; in all, there are approximately five
nonillion (5×10
30) bacteria on Earth,
[3] forming much of the world's
biomass.
[3] Bacteria are vital in recycling nutrients, with many steps in
nutrient cycles depending on these organisms, such as the
fixation of nitrogen from the
atmosphere and
putrefaction. However, most bacteria have not been characterized, and only about half of the
phyla of bacteria have species that can be
grown in the laboratory.
[4] The study of bacteria is known as
bacteriology, a branch of
microbiology.
There are approximately ten times as many bacterial cells in the
human flora of bacteria as there are human cells in the body, with large numbers of bacteria on the
skin and as
gut flora.
[5] The vast majority of the bacteria in the body are rendered harmless by the protective effects of the
immune system, and a few are
beneficial. However, a few species of bacteria are
pathogenic and cause
infectious diseases, including
cholera,
syphilis,
anthrax,
leprosy and
bubonic plague. The most common fatal bacterial diseases are
respiratory infections, with
tuberculosis alone killing about 2 million people a year, mostly in
sub-Saharan Africa.
[6] In
developed countries,
antibiotics are used to treat
bacterial infections and in agriculture, so
antibiotic resistance is becoming common. In industry, bacteria are important in
sewage treatment, the production of
cheese and
yoghurt through
fermentation, as well as in
biotechnology, and the manufacture of antibiotics and other chemicals.
[7]
Once regarded as plants constituting the class Schizomycetes, bacteria are now classified as
prokaryotes. Unlike cells of animals and other
eukaryotes, bacterial cells do not contain a
nucleus and rarely harbour
membrane-bound organelles. Although the term
bacteria traditionally included all prokaryotes, the
scientific classification changed after the discovery in the 1990s that prokaryotes consist of two very different groups of organisms that
evolved independently from an ancient common ancestor. These
evolutionary domains are called Bacteria and
Archaea.
[8]
History of bacteriology
Bacteria were first observed by
Antonie van Leeuwenhoek in 1676, using a single-lens
microscope of his own design.
[9] He called them "animalcules" and published his observations in a series of letters to the
Royal Society.
[10][11][12] The name
bacterium was introduced much later, by
Christian Gottfried Ehrenberg in 1838.
[13]
Louis Pasteur demonstrated in 1859 that the
fermentation process is caused by the growth of microorganisms, and that this growth is not due to
spontaneous generation. (
Yeasts and
molds, commonly associated with fermentation, are not bacteria, but rather
fungi.) Along with his contemporary,
Robert Koch, Pasteur was an early advocate of the
germ theory of disease.
[14] Robert Koch was a pioneer in medical microbiology and worked on
cholera,
anthrax and
tuberculosis. In his research into tuberculosis, Koch finally proved the germ theory, for which he was awarded a
Nobel Prize in 1905.
[15] In
Koch's postulates, he set out criteria to test if an organism is the cause of a
disease, and these postulates are still used today.
[16]
Though it was known in the nineteenth century that bacteria are the cause of many diseases, no effective
antibacterial treatments were available.
[17] In 1910,
Paul Ehrlich developed the first antibiotic, by changing dyes that selectively stained
Treponema pallidum—the
spirochaete that causes
syphilis—into compounds that selectively killed the pathogen.
[18] Ehrlich had been awarded a 1908 Nobel Prize for his work on
immunology, and pioneered the use of stains to detect and identify bacteria, with his work being the basis of the
Gram stain and the
Ziehl-Neelsen stain.
[19]
A major step forward in the study of bacteria was the recognition in 1977 by
Carl Woese that
archaea have a separate line of evolutionary descent from bacteria.
[20] This new
phylogenetic taxonomy was based on the
sequencing of
16S ribosomal RNA, and divided prokaryotes into two evolutionary domains, as part of the
three-domain system.
[21]
Origin and early evolution
The ancestors of modern bacteria were single-celled microorganisms that were the
first forms of life to develop on earth, about 4 billion years ago. For about 3 billion years, all organisms were microscopic, and bacteria and archaea were the dominant forms of life.
[22][23] Although bacterial
fossils exist, such as
stromatolites, their lack of distinctive
morphology prevents them from being used to examine the history of bacterial evolution, or to date the time of origin of a particular bacterial species. However, gene sequences can be used to reconstruct the bacterial
phylogeny, and these studies indicate that bacteria diverged first from the archaeal/eukaryotic lineage.
[24] The
most recent common ancestor of bacteria and archaea was probably a
hyperthermophile that lived about 2.5 billion–3.2 billion years ago.
[25][26]
Bacteria were also involved in the second great evolutionary divergence, that of the archaea and eukaryotes. Here, eukaryotes resulted from ancient bacteria entering into
endosymbiotic associations with the ancestors of eukaryotic cells, which were themselves possibly related to the
Archaea.
[27][28] This involved the engulfment by proto-eukaryotic cells of alpha-proteobacterial symbionts to form either
mitochondria or
hydrogenosomes, which are still found in all known Eukarya (sometimes in highly
reduced form, e.g. in ancient "amitochondrial" protozoa). Later on, some eukaryotes that already contained mitochondria also engulfed cyanobacterial-like organisms. This led to the formation of
chloroplasts in algae and plants. There are also some algae that originated from even later endosymbiotic events. Here, eukaryotes engulfed a eukaryotic algae that developed into a "second-generation" plastid.
[29][30] This is known as
secondary endosymbiosis.
Morphology
Bacteria display a wide diversity of shapes and sizes, called
morphologies. Bacterial cells are about one tenth the size of eukaryotic cells and are typically 0.5–5.0
micrometres in length. However, a few species–for example
Thiomargarita namibiensis and
Epulopiscium fishelsoni–are up to half a millimetre long and are visible to the unaided eye.
[31] Among the smallest bacteria are members of the genus
Mycoplasma, which measure only 0.3 micrometres, as small as the largest
viruses.
[32] Some bacteria may be even smaller, but these
ultramicrobacteria are not well-studied.
[33]
Most bacterial species are either spherical, called
cocci (
sing. coccus, from Greek
kókkos, grain, seed) or rod-shaped, called
bacilli (
sing. bacillus, from
Latin baculus, stick). Elongation is associated with swimming.
[34] Some rod-shaped bacteria, called
vibrio, are slightly curved or comma-shaped; others, can be spiral-shaped, called
spirilla, or tightly coiled, called
spirochaetes. A small number of species even have tetrahedral or cuboidal shapes.
[35] More recently, bacteria were discovered deep under the Earth's crust that grow as long rods with a star-shaped cross-section. The large surface area to volume ratio of this morphology may give these bacteria an advantage in nutrient-poor environments.
[36] This wide variety of shapes is determined by the bacterial
cell wall and
cytoskeleton, and is important because it can influence the ability of bacteria to acquire nutrients, attach to surfaces, swim through liquids and escape
predators.
[37][38]
Many bacterial species exist simply as single cells, others associate in characteristic patterns:
Neisseria form diploids (pairs),
Streptococcus form chains, and
Staphylococcus group together in "bunch of grapes" clusters. Bacteria can also be elongated to form filaments, for example the
Actinobacteria. Filamentous bacteria are often surrounded by a sheath that contains many individual cells. Certain types, such as species of the genus
Nocardia, even form complex, branched filaments, similar in appearance to fungal
mycelia.
[39]
Bacteria often attach to surfaces and form dense aggregations called
biofilms or
bacterial mats. These films can range from a few micrometers in thickness to up to half a meter in depth, and may contain multiple species of bacteria,
protists and
archaea. Bacteria living in biofilms display a complex arrangement of cells and extracellular components, forming secondary structures such as microcolonies, through which there are networks of channels to enable better diffusion of nutrients.
[40][41] In natural environments, such as soil or the surfaces of plants, the majority of bacteria are bound to surfaces in biofilms.
[42] Biofilms are also important in medicine, as these structures are often present during chronic bacterial infections or in infections of
implanted medical devices, and bacteria protected within biofilms are much harder to kill than individual isolated bacteria.
[43]
Even more complex morphological changes are sometimes possible. For example, when starved of amino acids,
Myxobacteria detect surrounding cells in a process known as
quorum sensing, migrate towards each other, and aggregate to form fruiting bodies up to 500 micrometres long and containing approximately 100,000 bacterial cells.
[44] In these fruiting bodies, the bacteria perform separate tasks; this type of cooperation is a simple type of
multicellular organisation. For example, about one in 10 cells migrate to the top of these fruiting bodies and
differentiate into a specialised dormant state called myxospores, which are more resistant to drying and other adverse environmental conditions than are ordinary cells.
[45]
Cellular structure
Intracellular structures
The bacterial cell is surrounded by a
lipid membrane, or
cell membrane, which encloses the contents of the cell and acts as a barrier to hold nutrients,
proteins and other essential components of the
cytoplasm within the cell. As they are
prokaryotes, bacteria do not tend to have membrane-bound
organelles in their cytoplasm and thus contain few large intracellular structures. They consequently lack a
nucleus,
mitochondria,
chloroplasts and the other organelles present in eukaryotic cells, such as the
Golgi apparatus and
endoplasmic reticulum.
[46] Bacteria were once seen as simple bags of cytoplasm, but elements such as
prokaryotic cytoskeleton,
[47][48] and the localization of proteins to specific locations within the cytoplasm
[49] have been found to show levels of complexity. These subcellular compartments have been called "bacterial hyperstructures".
[50]
Micro-compartments such as
carboxysome[51] provides a further level of organization, which are compartments within bacteria that are surrounded by
polyhedral protein shells, rather than by lipid membranes.
[52] These "polyhedral organelles" localize and compartmentalize bacterial metabolism, a function performed by the membrane-bound organelles in eukaryotes.
[53][54]
Many important
biochemical reactions, such as
energy generation, occur by
concentration gradients across membranes, a potential difference also found in a
battery. The general lack of internal membranes in bacteria means reactions such as
electron transport occur across the cell membrane between the cytoplasm and the
periplasmic space.
[55] However, in many photosynthetic bacteria the plasma membrane is highly folded and fills most of the cell with layers of light-gathering membrane.
[56] These light-gathering complexs may even form lipid-enclosed structures called
chlorosomes in
green sulfur bacteria.
[57] Other proteins import nutrients across the cell membrane, or to expel undesired molecules from the cytoplasm.
Bacteria do not have a membrane-bound nucleus, and their
genetic material is typically a single circular
chromosome located in the cytoplasm in an irregularly shaped body called the
nucleoid.
[59] The nucleoid contains the chromosome with associated proteins and
RNA. The order
Planctomycetes are an exception to the general absence of internal membranes in bacteria, because they have a membrane around their nucleoid and contain other membrane-bound cellular structures.
[60] Like all
living organisms, bacteria contain
ribosomes for the production of proteins, but the structure of the bacterial ribosome is different from those of
eukaryotes and
Archaea.
[61]
Some bacteria produce intracellular nutrient storage granules, such as
glycogen,
[62] polyphosphate,
[63] sulfur[64] or
polyhydroxyalkanoates.
[65] These granules enable bacteria to store compounds for later use. Certain bacterial species, such as the
photosynthetic Cyanobacteria, produce internal gas vesicles, which they use to regulate their buoyancy - allowing them to move up or down into water layers with different light intensities and nutrient levels.
[66]
Around the outside of the cell membrane is the bacterial
cell wall. Bacterial cell walls are made of
peptidoglycan (called murein in older sources), which is made from
polysaccharide chains cross-linked by unusual
peptides containing D-
amino acids.
[67] Bacterial cell walls are different from the cell walls of
plants and
fungi, which are made of
cellulose and
chitin, respectively.
[68] The cell wall of bacteria is also distinct from that of Archaea, which do not contain peptidoglycan. The cell wall is essential to the survival of many bacteria, and the antibiotic
penicillin is able to kill bacteria by inhibiting a step in the synthesis of peptidoglycan.
[68]
There are broadly speaking two different types of cell wall in bacteria, called
Gram-positive and
Gram-negative. The names originate from the reaction of cells to the
Gram stain, a test long-employed for the classification of bacterial species.
[69]
Gram-positive bacteria possess a thick cell wall containing many layers of peptidoglycan and
teichoic acids. In contrast, Gram-negative bacteria have a relatively thin cell wall consisting of a few layers of peptidoglycan surrounded by a second
lipid membrane containing
lipopolysaccharides and
lipoproteins. Most bacteria have the Gram-negative cell wall, and only the
Firmicutes and
Actinobacteria (previously known as the low G+C and high G+C Gram-positive bacteria, respectively) have the alternative Gram-positive arrangement.
[70] These differences in structure can produce differences in antibiotic susceptibility; for instance,
vancomycin can kill only Gram-positive bacteria and is ineffective against Gram-negative
pathogens, such as
Haemophilus influenzae or
Pseudomonas aeruginosa.
[71]
In many bacteria an
S-layer of rigidly arrayed protein molecules covers the outside of the cell.
[72] This layer provides chemical and physical protection for the cell surface and can act as a
macromolecular diffusion barrier. S-layers have diverse but mostly poorly understood functions, but are known to act as virulence factors in
Campylobacter and contain surface
enzymes in
Bacillus stearothermophilus.
[73]
Flagella are rigid protein structures, about 20
nanometres in diameter and up to 20 micrometres in length, that are used for motility. Flagella are driven by the energy released by the transfer of
ions down an
electrochemical gradient across the cell membrane.
[74]
Fimbriae are fine filaments of protein, just 2–10 nanometres in diameter and up to several micrometers in length. They are distributed over the surface of the cell, and resemble fine hairs when seen under the
electron microscope. Fimbriae are believed to be involved in attachment to solid surfaces or to other cells and are essential for the virulence of some bacterial pathogens.
[75] Pili (
sing. pilus) are cellular appendages, slightly larger than fimbriae, that can transfer
genetic material between bacterial cells in a process called
conjugation (see bacterial genetics, below).
[76]
Capsules or slime layers are produced by many bacteria to surround their cells, and vary in structural complexity: ranging from a disorganised
slime layer of extra-cellular
polymer, to a highly structured
capsule or
glycocalyx. These structures can protect cells from engulfment by eukaryotic cells, such as
macrophages.
[77] They can also act as antigens and be involved in cell recognition, as well as aiding attachment to surfaces and the formation of biofilms.
[78]
The assembly of these extracellular structures is dependent on bacterial
secretion systems. These transfer proteins from the cytoplasm into the periplasm or into the environment around the cell. Many types of secretion systems are known and these structures are often essential for the
virulence of pathogens, so are intensively studied.
[79]
Endospores
Certain
genera of Gram-positive bacteria, such as
Bacillus,
Clostridium,
Sporohalobacter,
Anaerobacter and
Heliobacterium, can form highly resistant, dormant structures called
endospores.
[80] In almost all cases, one endospore is formed and this is not a reproductive process, although
Anaerobacter can make up to seven endospores in a single cell.
[81] Endospores have a central core of
cytoplasm containing
DNA and
ribosomes surrounded by a cortex layer and protected by an impermeable and rigid coat.
Endospores show no detectable
metabolism and can survive extreme physical and chemical stresses, such as high levels of
UV light,
gamma radiation,
detergents,
disinfectants, heat, pressure and
desiccation.
[82] In this dormant state, these organisms may remain viable for millions of years,
[83][84] and endospores even allow bacteria to survive exposure to the
vacuum and radiation in space.
[85] Endospore-forming bacteria can also cause disease: for example,
anthrax can be contracted by the inhalation of
Bacillus anthracis endospores, and contamination of deep puncture wounds with
Clostridium tetani endospores causes
tetanus.
[86]
Metabolism
Bacteria exhibit an extremely wide variety of
metabolic types.
[87] The distribution of metabolic traits within a group of bacteria has traditionally been used to define their
taxonomy, but these traits often do not correspond with modern genetic classifications.
[88] Bacterial metabolism is classified into
nutritional groups on the basis of three major criteria: the kind of
energy used for growth, the source of
carbon, and the
electron donors used for growth. An additional criterion of respiratory microorganisms are the
electron acceptors used for aerobic or
anaerobic respiration.
[89]
Carbon metabolism in bacteria is either
heterotrophic, where
organic carbon compounds are used as carbon sources, or
autotrophic, meaning that cellular carbon is obtained by
fixing carbon dioxide. Heterotrophic bacteria include parasitic types. Typical autotrophic bacteria are phototrophic
cyanobacteria, green sulfur-bacteria and some
purple bacteria, but also many chemolithotrophic species, such as nitrifying or sulfur-oxidising bacteria.
[90] Energy metabolism of bacteria is either based on
phototrophy, the use of light through
photosynthesis, or on
chemotrophy, the use of chemical substances for energy, which are mostly oxidised at the expense of oxygen or alternative electron acceptors (aerobic/anaerobic respiration).
Finally, bacteria are further divided into
lithotrophs that use inorganic electron donors and
organotrophs that use organic compounds as electron donors. Chemotrophic organisms use the respective electron donors for energy conservation (by aerobic/anaerobic respiration or fermentation) and biosynthetic reactions (e.g. carbon dioxide fixation), whereas phototrophic organisms use them only for biosynthetic purposes. Respiratory organisms use
chemical compounds as a source of energy by taking electrons from the
reduced substrate and transferring them to a
terminal electron acceptor in a
redox reaction. This reaction releases energy that can be used to synthesise
ATP and drive metabolism. In
aerobic organisms,
oxygen is used as the electron acceptor. In
anaerobic organisms other
inorganic compounds, such as
nitrate,
sulfate or carbon dioxide are used as electron acceptors. This leads to the ecologically important processes of
denitrification, sulfate reduction and
acetogenesis, respectively.
Another way of life of chemotrophs in the absence of possible electron acceptors is fermentation, where the electrons taken from the reduced substrates are transferred to oxidised intermediates to generate reduced fermentation products (e.g.
lactate,
ethanol,
hydrogen,
butyric acid). Fermentation is possible, because the energy content of the substrates is higher than that of the products, which allows the organisms to synthesise ATP and drive their metabolism.
[91][92]
These processes are also important in biological responses to
pollution; for example,
sulfate-reducing bacteria are largely responsible for the production of the highly toxic forms of
mercury (
methyl- and
dimethylmercury) in the environment.
[93] Non-respiratory anaerobes use
fermentation to generate energy and reducing power, secreting metabolic by-products (such as
ethanol in brewing) as waste.
Facultative anaerobes can switch between fermentation and different
terminal electron acceptors depending on the environmental conditions in which they find themselves.
Lithotrophic bacteria can use inorganic compounds as a source of energy. Common inorganic electron donors are hydrogen,
carbon monoxide,
ammonia (leading to
nitrification),
ferrous iron and other reduced metal ions, and several reduced
sulfur compounds. Unusually, the gas
methane can be used by
methanotrophic bacteria as both a source of
electrons and a substrate for carbon
anabolism.
[94] In both aerobic phototrophy and
chemolithotrophy, oxygen is used as a terminal electron acceptor, while under anaerobic conditions inorganic compounds are used instead. Most lithotrophic organisms are autotrophic, whereas organotrophic organisms are heterotrophic.
In addition to fixing carbon dioxide in photosynthesis, some bacteria also fix
nitrogen gas (
nitrogen fixation) using the enzyme
nitrogenase. This environmentally important trait can be found in bacteria of nearly all the metabolic types listed above, but is not universal.
[95]
Growth and reproduction
Unlike multicellular organisms, increases in the size of bacteria (
cell growth) and their reproduction by
cell division are tightly linked in unicellular organisms. Bacteria grow to a fixed size and then reproduce through
binary fission, a form of
asexual reproduction.
[96] Under optimal conditions, bacteria can grow and divide extremely rapidly, and bacterial populations can double as quickly as every 9.8 minutes.
[97] In cell division, two identical
clone daughter cells are produced. Some bacteria, while still reproducing asexually, form more complex reproductive structures that help disperse the newly formed daughter cells. Examples include fruiting body formation by
Myxobacteria and aerial
hyphae formation by
Streptomyces, or budding. Budding involves a cell forming a protrusion that breaks away and produces a daughter cell.
In the laboratory, bacteria are usually grown using solid or liquid media. Solid
growth media such as
agar plates are used to isolate pure cultures of a bacterial strain. However, liquid growth media are used when measurement of growth or large volumes of cells are required. Growth in stirred liquid media occurs as an even cell suspension, making the cultures easy to divide and transfer, although isolating single bacteria from liquid media is difficult. The use of selective media (media with specific nutrients added or deficient, or with antibiotics added) can help identify specific organisms.
[99]
Most laboratory techniques for growing bacteria use high levels of nutrients to produce large amounts of cells cheaply and quickly. However, in natural environments nutrients are limited, meaning that bacteria cannot continue to reproduce indefinitely. This nutrient limitation has led the evolution of different growth strategies (see
r/K selection theory). Some organisms can grow extremely rapidly when nutrients become available, such as the formation of
algal (and cyanobacterial) blooms that often occur in lakes during the summer.
[100] Other organisms have adaptations to harsh environments, such as the production of multiple
antibiotics by
Streptomyces that inhibit the growth of competing microorganisms.
[101] In nature, many organisms live in communities (e.g.
biofilms) which may allow for increased supply of nutrients and protection from environmental stresses.
[42] These relationships can be essential for growth of a particular organism or group of organisms (
syntrophy).
[102]
Bacterial growth follows three phases. When a population of bacteria first enter a high-nutrient environment that allows growth, the cells need to adapt to their new environment. The first phase of growth is the
lag phase, a period of slow growth when the cells are adapting to the high-nutrient environment and preparing for fast growth. The lag phase has high biosynthesis rates, as proteins necessary for rapid growth are produced.
[103] The second phase of growth is the
logarithmic phase (log phase), also known as the exponential phase. The log phase is marked by rapid
exponential growth. The rate at which cells grow during this phase is known as the
growth rate (
k), and the time it takes the cells to double is known as the
generation time (
g). During log phase, nutrients are metabolised at maximum speed until one of the nutrients is depleted and starts limiting growth. The final phase of growth is the
stationary phase and is caused by depleted nutrients. The cells reduce their metabolic activity and consume non-essential cellular proteins. The stationary phase is a transition from rapid growth to a stress response state and there is increased expression of genes involved in
DNA repair,
antioxidant metabolism and
nutrient transport.
[104]
Genetics
Most bacteria have a single circular
chromosome that can range in size from only 160,000
base pairs in the
endosymbiotic bacteria
Candidatus Carsonella ruddii,
[105] to 12,200,000 base pairs in the soil-dwelling bacteria
Sorangium cellulosum.
[106] Spirochaetes of the
genus Borrelia are a notable exception to this arrangement, with bacteria such as
Borrelia burgdorferi, the cause of
Lyme disease, containing a single linear chromosome.
[107] The genes in bacterial genomes are usually a single continuous stretch of DNA and although several different types of
introns do exist in bacteria, these are much more rare than in eukaryotes.
[108]
Bacteria may also contain
plasmids, which are small extra-chromosomal DNAs that may contain genes for
antibiotic resistance or
virulence factors.
Bacteria, as asexual organisms, inherit identical copies of their parent's genes (i.e., they are
clonal). However, all bacteria can evolve by selection on changes to their genetic material
DNA caused by
genetic recombination or
mutations. Mutations come from errors made during the replication of DNA or from exposure to
mutagens. Mutation rates vary widely among different species of bacteria and even among different clones of a single species of bacteria.
[109] Genetic changes in bacterial genomes come from either random mutation during replication or "stress-directed mutation", where genes involved in a particular growth-limiting process have an increased mutation rate.
[110]
Some bacteria also transfer genetic material between cells. This can occur in three main ways. Firstly, bacteria can take up exogenous DNA from their environment, in a process called
transformation. Genes can also be transferred by the process of
transduction, when the integration of a bacteriophage introduces foreign DNA into the chromosome. The third method of gene transfer is
bacterial conjugation, where DNA is transferred through direct cell contact. This gene acquisition from other bacteria or the environment is called
horizontal gene transfer and may be common under natural conditions.
[111] Gene transfer is particularly important in
antibiotic resistance as it allows the rapid transfer of resistance genes between different pathogens.
[112]
Bacteriophages
Bacteriophages are viruses that change the bacterial DNA. Many types of bacteriophage exist, some simply infect and
lyse their
host bacteria, while others insert into the bacterial chromosome. A bacteriophage can contain genes that contribute to its host's
phenotype: for example, in the evolution of
Escherichia coli O157:H7 and
Clostridium botulinum, the
toxin genes in an integrated phage converted a harmless ancestral bacteria into a lethal pathogen.
[113] Bacteria resist phage infection through
restriction modification systems that degrade foreign DNA,
[114] and a system that uses
CRISPR sequences to retain fragments of the genomes of phage that the bacteria have come into contact with in the past, which allows them to block virus replication through a form of
RNA interference.
[115][116] This CRISPR system provides bacteria with
acquired immunity to infection.
Behavior
Secretion
Bacteria frequently secrete chemicals into their environment in order to modify it favorably. The
secretions are often proteins and may act as enzymes that digest some form of food in the environment.
Bioluminescence
A few bacteria have chemical systems that generate light. This
bioluminescence often occurs in bacteria that live in association with fish, and the light probably serves to attract fish or other large animals.
[117]
Multicellularity
(
See also: Prokaryote#Sociality)
Bacteria often function as multicellular aggregates known as
biofilms, exchanging a variety of molecular signals for
inter-cell communication, and engaging in coordinated multicellular behavior.
[118][119]
The communal benefits of multicellular cooperation include a cellular division of labor, accessing resources that cannot effectively be utilized by single cells, collectively defending against antagonists, and optimizing population survival by differentiating into distinct cell types.
[118] For example, bacteria in biofilms can have more than 500 times increased resistance to
antibacterial agents than individual "planktonic" bacteria of the same species.
[119]
One type of inter-cellular communication by a molecular signal is called
quorum sensing, which serves the purpose of determining whether there is a local population density that is sufficiently high that it is productive to invest in processes that are only successful if large numbers of similar organisms behave similarly, as in excreting digestive enzymes or emitting light.
It is thought that bacteria are too small to use
pheromones to attract other individuals, as is common among animals.
[120]
Movement
Many bacteria can move using a variety of mechanisms:
flagella are used for swimming through water;
bacterial gliding and twitching motility move bacteria across surfaces; and changes of buoyancy allow vertical motion.
[121]
Flagellum of Gram-negative Bacteria. The base drives the rotation of the hook and filament.
Swimming bacteria frequently move near 10 body lengths per second and a few as fast as 100. This makes them at least as fast as fish, on a relative scale.
[122]
In twitching motility, bacterial use their type IV
pili as a grappling hook, repeatedly extending it, anchoring it and then retracting it with remarkable force (>80
pN).
[123]
Flagella are semi-rigid cylindrical structures that are rotated and function much like the propeller on a ship. Objects as small as bacteria operate a low
Reynolds number and cylindrical forms are more efficient that the flat, paddle-like, forms appropriate at human size scale.
[124]
Bacterial species differ in the number and arrangement of flagella on their surface; some have a single flagellum (
monotrichous), a flagellum at each end (
amphitrichous), clusters of flagella at the poles of the cell (
lophotrichous), while others have flagella distributed over the entire surface of the cell (
peritrichous). The bacterial flagella is the best-understood motility structure in any organism and is made of about 20 proteins, with approximately another 30 proteins required for its regulation and assembly.
[121] The flagellum is a rotating structure driven by a reversible motor at the base that uses the
electrochemical gradient across the membrane for power.
[125] This motor drives the motion of the filament, which acts as a propeller.
Many bacteria (such as
E. coli) have two distinct modes of movement: forward movement (swimming) and tumbling. The tumbling allows them to reorient and makes their movement a three-dimensional
random walk.
[126] (See external links below for link to videos.) The flagella of a unique group of bacteria, the
spirochaetes, are found between two membranes in the periplasmic space. They have a distinctive
helical body that twists about as it moves.
[121]
Motile bacteria are attracted or repelled by certain
stimuli in behaviors called
taxes: these include
chemotaxis,
phototaxis and
magnetotaxis.
[127][128] In one peculiar group, the
myxobacteria, individual bacteria move together to form waves of cells that then differentiate to form fruiting bodies containing spores.
[45] The
myxobacteria move only when on solid surfaces, unlike
E. coli which is
motile in liquid or solid media.
Several
Listeria and
Shigella species move inside host cells by usurping the
cytoskeleton, which is normally used to move
organelles inside the cell. By promoting
actin polymerization at one pole of their cells, they can form a kind of tail that pushes them through the host cell's cytoplasm.
[129]
Classification and identification
Streptococcus mutans visualized with a Gram stain
Classification seeks to describe the diversity of bacterial species by naming and grouping organisms based on similarities. Bacteria can be classified on the basis of cell structure,
cellular metabolism or on differences in cell components such as
DNA,
fatty acids, pigments,
antigens and
quinones.
[99] While these schemes allowed the identification and classification of bacterial strains, it was unclear whether these differences represented variation between distinct species or between strains of the same species. This uncertainty was due to the lack of distinctive structures in most bacteria, as well as
lateral gene transfer between unrelated species.
[130] Due to lateral gene transfer, some closely related bacteria can have very different morphologies and metabolisms. To overcome this uncertainty, modern bacterial classification emphasizes
molecular systematics, using genetic techniques such as
guanine cytosine ratio determination, genome-genome hybridization, as well as
sequencing genes that have not undergone extensive lateral gene transfer, such as the
rRNA gene.
[131] Classification of bacteria is determined by publication in the International Journal of Systematic Bacteriology,
[132] and Bergey's Manual of Systematic Bacteriology.
[133] The
International Committee on Systematic Bacteriology (ICSB) maintains international rules for the naming of bacteria and taxonomic categories and for the ranking of them in the
International Code of Nomenclature of Bacteria.
The term "bacteria" was traditionally applied to all microscopic, single-celled prokaryotes. However, molecular systematics showed prokaryotic life to consist of two separate
domains, originally called
Eubacteria and
Archaebacteria, but now called
Bacteria and
Archaea that evolved independently from an ancient common ancestor.
[8] The archaea and eukaryotes are more closely related to each other than either is to the bacteria. These two domains, along with Eukarya, are the basis of the
three-domain system, which is currently the most widely used classification system in microbiolology.
[134] However, due to the relatively recent introduction of molecular systematics and a rapid increase in the number of genome sequences that are available, bacterial classification remains a changing and expanding field.
[4][135] For example, a few biologists argue that the Archaea and Eukaryotes evolved from Gram-positive bacteria.
[136]
Identification of bacteria in the laboratory is particularly relevant in
medicine, where the correct treatment is determined by the bacterial species causing an infection. Consequently, the need to identify human pathogens was a major impetus for the development of techniques to identify bacteria.
The
Gram stain, developed in 1884 by
Hans Christian Gram, characterises bacteria based on the structural characteristics of their cell walls.
[69] The thick layers of peptidoglycan in the "Gram-positive" cell wall stain purple, while the thin "Gram-negative" cell wall appears pink. By combining morphology and Gram-staining, most bacteria can be classified as belonging to one of four groups (Gram-positive cocci, Gram-positive bacilli, Gram-negative cocci and Gram-negative bacilli). Some organisms are best identified by stains other than the Gram stain, particularly mycobacteria or
Nocardia, which show
acid-fastness on
Ziehl–Neelsen or similar stains.
[138] Other organisms may need to be identified by their growth in special media, or by other techniques, such as
serology.
Culture techniques are designed to promote the growth and identify particular bacteria, while restricting the growth of the other bacteria in the sample. Often these techniques are designed for specific specimens; for example, a
sputum sample will be treated to identify organisms that cause
pneumonia, while
stool specimens are cultured on
selective media to identify organisms that cause
diarrhoea, while preventing growth of non-pathogenic bacteria. Specimens that are normally sterile, such as
blood,
urine or
spinal fluid, are cultured under conditions designed to grow all possible organisms.
[99][139] Once a pathogenic organism has been isolated, it can be further characterised by its morphology, growth patterns such as (
aerobic or
anaerobic growth,
patterns of hemolysis) and staining.
As with bacterial classification, identification of bacteria is increasingly using molecular methods. Diagnostics using such DNA-based tools, such as
polymerase chain reaction, are increasingly popular due to their specificity and speed, compared to culture-based methods.
[140] These methods also allow the detection and identification of "
viable but nonculturable" cells that are metabolically active but non-dividing.
[141] However, even using these improved methods, the total number of bacterial species is not known and cannot even be estimated with any certainty. Following present classification, there are fewer than 9,000 known species of bacteria (including cyanobacteria),
[142] but attempts to estimate the true level of bacterial diversity have ranged from 10
7 to 10
9 total species - and even these diverse estimates may be off by many orders of magnitude.
[143][144]
Interactions with other organisms
Despite their apparent simplicity, bacteria can form complex associations with other organisms. These
symbiotic associations can be divided into
parasitism,
mutualism and
commensalism. Due to their small size, commensal bacteria are ubiquitous and grow on animals and plants exactly as they will grow on any other surface. However, their growth can be increased by warmth and
sweat, and large populations of these organisms in humans are the cause of
body odor.
Predators
Some species of bacteria kill and then consume other microorganisms, these species called
predatory bacteria.
[145] These include organisms such as
Myxococcus xanthus, which forms swarms of cells that kill and digest any bacteria they encounter.
[146] Other bacterial predators either attach to their prey in order to digest them and absorb nutrients, such as
Vampirococcus, or invade another cell and multiply inside the cytosol, such as
Daptobacter.
[147] These predatory bacteria are thought to have evolved from
saprophages that consumed dead microorganisms, through adaptations that allowed them to entrap and kill other organisms.
[148]
Mutualists
Certain bacteria form close spatial associations that are essential for their survival. One such mutualistic association, called interspecies hydrogen transfer, occurs between clusters of
anaerobic bacteria that consume
organic acids such as
butyric acid or
propionic acid and produce
hydrogen, and
methanogenic Archaea that consume hydrogen.
[149] The bacteria in this association are unable to consume the organic acids as this reaction produces hydrogen that accumulates in their surroundings. Only the intimate association with the hydrogen-consuming Archaea keeps the hydrogen concentration low enough to allow the bacteria to grow.
In soil, microorganisms which reside in the
rhizosphere (a zone that includes the
root surface and the soil that adheres to the root after gentle shaking) carry out
nitrogen fixation, converting nitrogen gas to nitrogenous compounds.
[150] This serves to provide an easily absorbable form of nitrogen for many plants, which cannot fix nitrogen themselves. Many other bacteria are found as
symbionts in humans and other organisms. For example, the presence of over 1,000 bacterial species in the normal human
gut flora of the
intestines can contribute to gut immunity, synthesise
vitamins such as
folic acid,
vitamin K and
biotin, convert
milk protein to
lactic acid (see
Lactobacillus), as well as fermenting complex undigestible
carbohydrates.
[151][152][153] The presence of this gut flora also inhibits the growth of potentially pathogenic bacteria (usually through
competitive exclusion) and these beneficial bacteria are consequently sold as
probiotic dietary supplements.
[154]
Color-enhanced scanning electron micrograph showing
Salmonella typhimurium (red) invading cultured human cells
Pathogens
If bacteria form a parasitic association with other organisms, they are classed as
pathogens. Pathogenic bacteria are a major cause of human death and disease and cause infections such as
tetanus,
typhoid fever,
diphtheria,
syphilis,
cholera,
foodborne illness,
leprosy and
tuberculosis. A pathogenic cause for a known medical disease may only be discovered many years after, as was the case with
Helicobacter pylori and
peptic ulcer disease. Bacterial diseases are also important in
agriculture, with bacteria causing
leaf spot,
fire blight and
wilts in plants, as well as
Johne's disease,
mastitis,
salmonella and
anthrax in farm animals.
Each species of pathogen has a characteristic spectrum of interactions with its human
hosts. Some organisms, such as
Staphylococcus or
Streptococcus, can cause skin infections,
pneumonia,
meningitis and even overwhelming
sepsis, a systemic
inflammatory response producing
shock, massive
vasodilation and death.
[155] Yet these organisms are also part of the normal human flora and usually exist on the skin or in the
nose without causing any disease at all. Other organisms invariably cause disease in humans, such as the
Rickettsia, which are
obligate intracellular parasites able to grow and reproduce only within the cells of other organisms. One species of Rickettsia causes
typhus, while another causes
Rocky Mountain spotted fever.
Chlamydia, another phylum of obligate intracellular parasites, contains species that can cause pneumonia, or
urinary tract infection and may be involved in
coronary heart disease.
[156] Finally, some species such as
Pseudomonas aeruginosa,
Burkholderia cenocepacia, and
Mycobacterium avium are
opportunistic pathogens and cause disease mainly in people suffering from
immunosuppression or
cystic fibrosis.
[157][158]
Overview of bacterial infections and main species involved.
[159][160] Bacterial infections may be treated with
antibiotics, which are classified as
bacteriocidal if they kill bacteria, or
bacteriostatic if they just prevent bacterial growth. There are many types of antibiotics and each class
inhibits a process that is different in the pathogen from that found in the host. An example of how antibiotics produce selective toxicity are
chloramphenicol and
puromycin, which inhibit the bacterial
ribosome, but not the structurally different eukaryotic ribosome.
[161] Antibiotics are used both in treating human disease and in
intensive farming to promote animal growth, where they may be contributing to the rapid development of
antibiotic resistance in bacterial populations.
[162] Infections can be prevented by
antiseptic measures such as sterilizating the skin prior to piercing it with the needle of a syringe, and by proper care of indwelling catheters. Surgical and dental instruments are also
sterilized to prevent contamination by bacteria.
Disinfectants such as
bleach are used to kill bacteria or other pathogens on surfaces to prevent contamination and further reduce the risk of infection.
Significance in technology and industry
Bacteria, often
lactic acid bacteria such as
Lactobacillus and
Lactococcus, in combination with
yeasts and
molds, have been used for thousands of years in the preparation of
fermented foods such as
cheese,
pickles,
soy sauce,
sauerkraut,
vinegar,
wine and
yoghurt.
[163][164]
The ability of bacteria to degrade a variety of organic compounds is remarkable and has been used in waste processing and
bioremediation. Bacteria capable of digesting the
hydrocarbons in
petroleum are often used to clean up
oil spills.
[165] Fertilizer was added to some of the beaches in
Prince William Sound in an attempt to promote the growth of these naturally occurring bacteria after the infamous 1989
Exxon Valdez oil spill. These efforts were effective on beaches that were not too thickly covered in oil. Bacteria are also used for the
bioremediation of industrial
toxic wastes.
[166] In the
chemical industry, bacteria are most important in the production of
enantiomerically pure chemicals for use as
pharmaceuticals or
agrichemicals.
[167]
Bacteria can also be used in the place of
pesticides in the
biological pest control. This commonly involves
Bacillus thuringiensis (also called BT), a Gram-positive, soil dwelling bacterium. Subspecies of this bacteria are used as a
Lepidopteran-specific
insecticides under trade names such as Dipel and Thuricide.
[168] Because of their specificity, these pesticides are regarded as
environmentally friendly, with little or no effect on humans,
wildlife,
pollinators and most other
beneficial insects.
[169][170]
Because of their ability to quickly grow and the relative ease with which they can be manipulated, bacteria are the workhorses for the fields of
molecular biology,
genetics and
biochemistry. By making mutations in bacterial DNA and examining the resulting phenotypes, scientists can determine the function of genes,
enzymes and
metabolic pathways in bacteria, then apply this knowledge to more complex organisms.
[171] This aim of understanding the biochemistry of a cell reaches its most complex expression in the synthesis of huge amounts of
enzyme kinetic and
gene expression data into
mathematical models of entire organisms. This is achievable in some well-studied bacteria, with models of
Escherichia coli metabolism now being produced and tested.
[172][173] This understanding of bacterial metabolism and genetics allows the use of
biotechnology to
bioengineer bacteria for the production of therapeutic proteins, such as
insulin,
growth factors, or
antibodies.
[174][175]
See also
Notes
α. ^ The word
bacteria derives from the
Greek βακτήριον,
baktērion, meaning "small staff".
References
- ^ "Bacteria (eubacteria)". Taxonomy Browser. NCBI. http://www.ncbi.nlm.nih.gov/Taxonomy/Browser/wwwtax.cgi?mode=Undef&id=2&lvl=3&lin=f&keep=1&srchmode=1&unlock. Retrieved 2008-09-10.
- ^ Fredrickson JK, Zachara JM, Balkwill DL, et al. (July 2004). "Geomicrobiology of high-level nuclear waste-contaminated vadose sediments at the Hanford site, Washington state". Applied and Environmental Microbiology 70 (7): 4230–41. doi:10.1128/AEM.70.7.4230-4241.2004. PMID 15240306.
- ^ a b Whitman WB, Coleman DC, Wiebe WJ (June 1998). "Prokaryotes: the unseen majority". Proceedings of the National Academy of Sciences of the United States of America 95 (12): 6578–83. doi:10.1073/pnas.95.12.6578. PMID 9618454.
- ^ a b Rappé MS, Giovannoni SJ (2003). "The uncultured microbial majority". Annual Review of Microbiology 57: 369–94. doi:10.1146/annurev.micro.57.030502.090759. PMID 14527284.
- ^ Sears CL (October 2005). "A dynamic partnership: celebrating our gut flora". Anaerobe 11 (5): 247–51. doi:10.1016/j.anaerobe.2005.05.001. PMID 16701579.
- ^ "2002 WHO mortality data". http://www.who.int/healthinfo/bodgbd2002revised/en/index.html. Retrieved 2007-01-20.
- ^ Ishige T, Honda K, Shimizu S (April 2005). "Whole organism biocatalysis". Current Opinion in Chemical Biology 9 (2): 174–80. doi:10.1016/j.cbpa.2005.02.001. PMID 15811802.
- ^ a b Woese CR, Kandler O, Wheelis ML (June 1990). "Towards a natural system of organisms: proposal for the domains Archaea, Bacteria, and Eucarya". Proceedings of the National Academy of Sciences of the United States of America 87 (12): 4576–9. doi:10.1073/pnas.87.12.4576. PMID 2112744.
- ^ Porter JR (June 1976). "Antony van Leeuwenhoek: tercentenary of his discovery of bacteria". Bacteriological Reviews 40 (2): 260–9. PMID 786250. PMC 413956. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=786250.
- ^ van Leeuwenhoek A (1684). "An abstract of a letter from Mr. Anthony Leevvenhoek at Delft, dated Sep. 17, 1683, Containing Some Microscopical Observations, about Animals in the Scurf of the Teeth, the Substance Call'd Worms in the Nose, the Cuticula Consisting of Scales". Philosophical Transactions (1683–1775) 14: 568–574. http://www.journals.royalsoc.ac.uk/content/120136/?k=Sep.+17%2c+1683. Retrieved 2007-08-19.
- ^ van Leeuwenhoek A (1700). "Part of a Letter from Mr Antony van Leeuwenhoek, concerning the Worms in Sheeps Livers, Gnats, and Animalcula in the Excrements of Frogs". Philosophical Transactions (1683–1775) 22: 509–518. http://www.journals.royalsoc.ac.uk/link.asp?id=4j53731651310230. Retrieved 2007-08-19.
- ^ van Leeuwenhoek A (1702). "Part of a Letter from Mr Antony van Leeuwenhoek, F. R. S. concerning Green Weeds Growing in Water, and Some Animalcula Found about Them". Philosophical Transactions (1683-1775) 23: 1304–11. doi:10.1098/rstl.1702.0042. http://www.journals.royalsoc.ac.uk/link.asp?id=fl73121jk4150280. Retrieved 2007-08-19.
- ^ "Etymology of the word "bacteria"". Online Etymology dictionary. http://www.etymonline.com/index.php?term=bacteria. Retrieved 2006-11-23.
- ^ "Pasteur's Papers on the Germ Theory". LSU Law Center's Medical and Public Health Law Site, Historic Public Health Articles. http://biotech.law.lsu.edu/cphl/history/articles/pasteur.htm#paperII. Retrieved 2006-11-23.
- ^ "The Nobel Prize in Physiology or Medicine 1905". Nobelprize.org. http://nobelprize.org/nobel_prizes/medicine/laureates/1905/. Retrieved 2006-11-22.
- ^ O'Brien S, Goedert J (1996). "HIV causes AIDS: Koch's postulates fulfilled". Curr Opin Immunol 8 (5): 613–618. doi:10.1016/S0952-7915(96)80075-6. PMID 8902385.
- ^ Thurston A (2000). "Of blood, inflammation and gunshot wounds: the history of the control of sepsis". Aust N Z J Surg 70 (12): 855–61. doi:10.1046/j.1440-1622.2000.01983.x. PMID 11167573.
- ^ Schwartz R (2004). "Paul Ehrlich's magic bullets". N Engl J Med 350 (11): 1079–80. doi:10.1056/NEJMp048021. PMID 15014180.
- ^ "Biography of Paul Ehrlich". Nobelprize.org. http://nobelprize.org/nobel_prizes/medicine/laureates/1908/ehrlich-bio.html. Retrieved 2006-11-26.
- ^ Woese C, Fox G (1977). "Phylogenetic structure of the prokaryotic domain: the primary kingdoms". Proc Natl Acad Sci USA 74 (11): 5088–5090. doi:10.1073/pnas.74.11.5088. PMID 270744.
- ^ Woese CR, Kandler O, Wheelis ML (June 1990). "Towards a natural system of organisms: proposal for the domains Archaea, Bacteria, and Eucarya". Proceedings of the National Academy of Sciences of the United States of America 87 (12): 4576–9. doi:10.1073/pnas.87.12.4576. PMID 2112744.
- ^ Schopf J (1994). "Disparate rates, differing fates: tempo and mode of evolution changed from the Precambrian to the Phanerozoic". Proc Natl Acad Sci USA 91 (15): 6735–42. doi:10.1073/pnas.91.15.6735. PMID 8041691.
- ^ DeLong E, Pace N (2001). "Environmental diversity of bacteria and archaea". Syst Biol 50 (4): 470–78. doi:10.1080/106351501750435040. PMID 12116647.
- ^ Brown JR, Doolittle WF (December 1997). "Archaea and the prokaryote-to-eukaryote transition". Microbiology and Molecular Biology Reviews 61 (4): 456–502. PMID 9409149. PMC 232621. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=9409149.
- sp. nov". Int J Syst Evol Microbiol 54 (Pt 3): 651–7. doi:10.1099/ijs.0.02746-0. PMID 15143003. http://ijs.sgmjournals.org/cgi/content/full/54/3/651.
- ^ Wanger, G; Onstott, TC; Southam, G (2008). "Stars of the terrestrial deep subsurface: A novel `star-shaped' bacterial morphotype from a South African platinum mine". Geobiology 6 (3): 325–330. doi:10.1111/j.1472-4669.2008.00163.x. PMID 18498531.
- ^ Cabeen M, Jacobs-Wagner C (2005). "Bacterial cell shape". Nat Rev Microbiol 3 (8): 601–10. doi:10.1038/nrmicro1205. PMID 16012516.
- ^ Young K (2006). "The selective value of bacterial shape". Microbiol Mol Biol Rev 70 (3): 660–703. doi:10.1128/MMBR.00001-06. PMID 16959965.
- ^ Douwes K, Schmalzbauer E, Linde H, Reisberger E, Fleischer K, Lehn N, Landthaler M, Vogt T (2003). "Branched filaments no fungus, ovoid bodies no bacteria: Two unusual cases of mycetoma". J Am Acad Dermatol 49 (2 Suppl Case Reports): S170–3. doi:10.1067/mjd.2003.302. PMID 12894113.
- ^ Donlan R (2002). "Biofilms: microbial life on surfaces". Emerg Infect Dis 8 (9): 881–90. PMID 12194761.
- ^ Branda S, Vik S, Friedman L, Kolter R (2005). "Biofilms: the matrix revisited". Trends Microbiol 13 (1): 20–26. doi:10.1016/j.tim.2004.11.006. PMID 15639628.
- ^ a b Davey M, O'toole G (2000). "Microbial biofilms: from ecology to molecular genetics". Microbiol Mol Biol Rev 64 (4): 847–67. doi:10.1128/MMBR.64.4.847-867.2000. PMID 11104821.
- ^ Donlan RM, Costerton JW (2002). "Biofilms: survival mechanisms of clinically relevant microorganisms". Clin Microbiol Rev 15 (2): 167–93. doi:10.1128/CMR.15.2.167-193.2002. PMID 11932229.
- ^ Shimkets L (1999). "Intercellular signaling during fruiting-body development of Myxococcus xanthus". Annu Rev Microbiol 53: 525–49. doi:10.1146/annurev.micro.53.1.525. PMID 10547700.
- ^ a b Kaiser D (2004). "Signaling in myxobacteria". Annu Rev Microbiol 58: 75–98. doi:10.1146/annurev.micro.58.030603.123620. PMID 15487930.
- ^ Berg JM, Tymoczko JL Stryer L (2002). Molecular Cell Biology (5th ed.). WH Freeman. ISBN 0-7167-4955-6.
- ^ Gitai Z (2005). "The new bacterial cell biology: moving parts and subcellular architecture". Cell 120 (5): 577–86. doi:10.1016/j.cell.2005.02.026. PMID 15766522.
- ^ Shih YL, Rothfield L (September 2006). "The bacterial cytoskeleton". Microbiology and Molecular Biology Reviews 70 (3): 729–54. doi:10.1128/MMBR.00017-06. PMID 16959967.
- ^ Gitai Z (March 2005). "The new bacterial cell biology: moving parts and subcellular architecture". Cell 120 (5): 577–86. doi:10.1016/j.cell.2005.02.026. PMID 15766522.
- ^ Norris V, den Blaauwen T, Cabin-Flaman A, et al. (March 2007). "Functional taxonomy of bacterial hyperstructures". Microbiol. Mol. Biol. Rev. 71 (1): 230–53. doi:10.1128/MMBR.00035-06. PMID 17347523. PMC 1847379. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=17347523.
- ^ Kerfeld CA, Sawaya MR, Tanaka S, et al. (August 2005). "Protein structures forming the shell of primitive bacterial organelles". Science (journal) 309 (5736): 936–8. doi:10.1126/science.1113397. PMID 16081736.
- ^ Bobik, T. A. (2007). "Bacterial Microcompartments" (PDF). Microbe (Am Soc Microbiol) 2: 25–31. http://www.asm.org/ASM/files/ccLibraryFiles/Filename/000000002765/znw00107000025.pdf.
- ^ Bobik, TA (2006). "Polyhedral organelles compartmenting bacterial metabolic processes" (PDF). Applied Microbiology and Biotechnology 70 (5): 517–525. doi:10.1007/s00253-005-0295-0. PMID 16525780. http://www.springerlink.com/index/EM21R3556222521H.pdf.
- ^ Yeates TO, Kerfeld CA, Heinhorst S, Cannon GC, Shively JM (August 2008). "Protein-based organelles in bacteria: carboxysomes and related microcompartments". Nat. Rev. Microbiol. 6 (9): 681–691. doi:10.1038/nrmicro1913. PMID 18679172.
- ^ Harold FM (June 1972). "Conservation and transformation of energy by bacterial membranes". Bacteriological Reviews 36 (2): 172–230. PMID 4261111. PMC 408323. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=4261111.
- ^ Bryant, DA; Frigaard, NU (2006). "Prokaryotic photosynthesis and phototrophy illuminated". Trends Microbiol. 14 (11): 488. doi:10.1016/j.tim.2006.09.001. PMID 16997562.
- ^ Psencík J, Ikonen TP, Laurinmäki P, et al. (August 2004). "Lamellar organization of pigments in chlorosomes, the light harvesting complexes of green photosynthetic bacteria". Biophys. J. 87 (2): 1165–72. doi:10.1529/biophysj.104.040956. PMID 15298919. PMC 1304455. http://www.biophysj.org/cgi/pmidlookup?view=long&pmid=15298919.
- ^ Tanaka S, Kerfeld CA, Sawaya MR, et al. (February 2008). "Atomic-level models of the bacterial carboxysome shell". Science (journal) 319 (5866): 1083–6. doi:10.1126/science.1151458. PMID 18292340.
- ^ Thanbichler M, Wang S, Shapiro L (2005). "The bacterial nucleoid: a highly organized and dynamic structure". J Cell Biochem 96 (3): 506–21. doi:10.1002/jcb.20519. PMID 15988757.
- ^ Fuerst J (2005). "Intracellular compartmentation in planctomycetes". Annu Rev Microbiol 59: 299–328. doi:10.1146/annurev.micro.59.030804.121258. PMID 15910279.
- ^ Poehlsgaard J, Douthwaite S (2005). "The bacterial ribosome as a target for antibiotics". Nat Rev Microbiol 3 (11): 870–81. doi:10.1038/nrmicro1265. PMID 16261170.
- ^ Yeo M, Chater K (2005). "The interplay of glycogen metabolism and differentiation provides an insight into the developmental biology of Streptomyces coelicolor". Microbiology 151 (Pt 3): 855–61. doi:10.1099/mic.0.27428-0. PMID 15758231. http://mic.sgmjournals.org/cgi/content/full/151/3/855?view=long&pmid=15758231.
- ^ Shiba T, Tsutsumi K, Ishige K, Noguchi T (2000). "Inorganic polyphosphate and polyphosphate kinase: their novel biological functions and applications". Biochemistry (Mosc) 65 (3): 315–23. PMID 10739474. http://protein.bio.msu.ru/biokhimiya/contents/v65/full/65030375.html.
- ^ Brune DC (June 1995). "Isolation and characterization of sulfur globule proteins from Chromatium vinosum and Thiocapsa roseopersicina". Archives of Microbiology 163 (6): 391–9. doi:10.1007/BF00272127. PMID 7575095.
- ^ Kadouri D, Jurkevitch E, Okon Y, Castro-Sowinski S (2005). "Ecological and agricultural significance of bacterial polyhydroxyalkanoates". Critical Reviews in Microbiology 31 (2): 55–67. doi:10.1080/10408410590899228. PMID 15986831.
- ^ Walsby AE (March 1994). "Gas vesicles". Microbiological Reviews 58 (1): 94–144. PMID 8177173. PMC 372955. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=8177173.
- ^ van Heijenoort J (2001). "Formation of the glycan chains in the synthesis of bacterial peptidoglycan". Glycobiology 11 (3): 25R–36R. doi:10.1093/glycob/11.3.25R. PMID 11320055. http://glycob.oxfordjournals.org/cgi/content/full/11/3/25R.
- ^ a b Koch A (2003). "Bacterial wall as target for attack: past, present, and future research". Clin Microbiol Rev 16 (4): 673–87. doi:10.1128/CMR.16.4.673-687.2003. PMID 14557293. PMC 207114. http://cmr.asm.org/cgi/content/full/16/4/673?view=long&pmid=14557293.
- ^ a b Gram, HC (1884). "Über die isolierte Färbung der Schizomyceten in Schnitt- und Trockenpräparaten". Fortschr. Med. 2: 185–189.
- ^ Hugenholtz P (2002). "Exploring prokaryotic diversity in the genomic era". Genome Biology 3 (2): REVIEWS0003. doi:10.1186/gb-2002-3-2-reviews0003. PMID 11864374. PMC 139013. http://genomebiology.com/1465-6906/3/REVIEWS0003.
- ^ Walsh F, Amyes S (2004). "Microbiology and drug resistance mechanisms of fully resistant pathogens". Curr Opin Microbiol 7 (5): 439–44. doi:10.1016/j.mib.2004.08.007. PMID 15451497.
- ^ Engelhardt H, Peters J (1998). "Structural research on surface layers: a focus on stability, surface layer homology domains, and surface layer-cell wall interactions". J Struct Biol 124 (2–3): 276–302. doi:10.1006/jsbi.1998.4070. PMID 10049812.
- ^ Beveridge T, Pouwels P, Sára M, Kotiranta A, Lounatmaa K, Kari K, Kerosuo E, Haapasalo M, Egelseer E, Schocher I, Sleytr U, Morelli L, Callegari M, Nomellini J, Bingle W, Smit J, Leibovitz E, Lemaire M, Miras I, Salamitou S, Béguin P, Ohayon H, Gounon P, Matuschek M, Koval S (1997). "Functions of S-layers". FEMS Microbiol Rev 20 (1–2): 99–149. PMID 9276929.
- ^ Kojima S, Blair D (2004). "The bacterial flagellar motor: structure and function of a complex molecular machine". Int Rev Cytol 233: 93–134. doi:10.1016/S0074-7696(04)33003-2. PMID 15037363.
- ^ Beachey E (1981). "Bacterial adherence: adhesin-receptor interactions mediating the attachment of bacteria to mucosal surface". J Infect Dis 143 (3): 325–45. PMID 7014727.
- ^ Silverman P (1997). "Towards a structural biology of bacterial conjugation". Mol Microbiol 23 (3): 423–9. doi:10.1046/j.1365-2958.1997.2411604.x. PMID 9044277.
- ^ Stokes R, Norris-Jones R, Brooks D, Beveridge T, Doxsee D, Thorson L (2004). "The glycan-rich outer layer of the cell wall of Mycobacterium tuberculosis acts as an antiphagocytic capsule limiting the association of the bacterium with macrophages". Infect Immun 72 (10): 5676–86. doi:10.1128/IAI.72.10.5676-5686.2004. PMID 15385466. PMC 517526. http://iai.asm.org/cgi/content/full/72/10/5676?view=long&pmid=15385466.
- ^ Daffé M, Etienne G (1999). "The capsule of Mycobacterium tuberculosis and its implications for pathogenicity". Tuber Lung Dis 79 (3): 153–69. doi:10.1054/tuld.1998.0200. PMID 10656114.
- ^ Finlay BB, Falkow S (June 1997). "Common themes in microbial pathogenicity revisited". Microbiology and Molecular Biology Reviews 61 (2): 136–69. PMID 9184008. PMC 232605. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=9184008.
- ^ Nicholson WL, Munakata N, Horneck G, Melosh HJ, Setlow P (September 2000). "Resistance of Bacillus endospores to extreme terrestrial and extraterrestrial environments". Microbiology and Molecular Biology Reviews 64 (3): 548–72. doi:10.1128/MMBR.64.3.548-572.2000. PMID 10974126. PMC 99004. http://mmbr.asm.org/cgi/pmidlookup?view=long&pmid=10974126.
- ^ Siunov A, Nikitin D, Suzina N, Dmitriev V, Kuzmin N, Duda V (1999). "Phylogenetic status of Anaerobacter polyendosporus, an anaerobic, polysporogenic bacterium" (PDF). Int J Syst Bacteriol 49 Pt 3: 1119–24. PMID 10425769. http://ijs.sgmjournals.org/cgi/reprint/49/3/1119.pdf.
- ^ Nicholson W, Fajardo-Cavazos P, Rebeil R, Slieman T, Riesenman P, Law J, Xue Y (2002). "Bacterial endospores and their significance in stress resistance". Antonie Van Leeuwenhoek 81 (1–4): 27–32. doi:10.1023/A:1020561122764. PMID 12448702.
- ^ Vreeland R, Rosenzweig W, Powers D (2000). "Isolation of a 250 million-year-old halotolerant bacterium from a primary salt crystal". Nature 407 (6806): 897–900. doi:10.1038/35038060. PMID 11057666.
- ^ Cano R, Borucki M (1995). "Revival and identification of bacterial spores in 25- to 40-million-year-old Dominican amber". Science 268 (5213): 1060–4. doi:10.1126/science.7538699. PMID 7538699.
- ^ Nicholson W, Schuerger A, Setlow P (2005). "The solar UV environment and bacterial spore UV resistance: considerations for Earth-to-Mars transport by natural processes and human spaceflight". Mutat Res 571 (1–2): 249–64. doi:10.1016/j.mrfmmm.2004.10.012. PMID 15748651.
- ^ Hatheway CL (January 1990). "Toxigenic clostridia". Clinical Microbiology Reviews 3 (1): 66–98. PMID 2404569. PMC 358141. http://cmr.asm.org/cgi/pmidlookup?view=long&pmid=2404569.
- ^ Nealson K (1999). "Post-Viking microbiology: new approaches, new data, new insights". Orig Life Evol Biosph 29 (1): 73–93. doi:10.1023/A:1006515817767. PMID 11536899.
- ^ Xu J (2006). "Microbial ecology in the age of genomics and metagenomics: concepts, tools, and recent advances". Mol Ecol 15 (7): 1713–31. doi:10.1111/j.1365-294X.2006.02882.x. PMID 16689892.
- ^ Zillig W (1991). "Comparative biochemistry of Archaea and Bacteria". Curr Opin Genet Dev 1 (4): 544–51. doi:10.1016/S0959-437X(05)80206-0. PMID 1822288.
- ^ Hellingwerf K, Crielaard W, Hoff W, Matthijs H, Mur L, van Rotterdam B (1994). "Photobiology of bacteria". Antonie Van Leeuwenhoek 65 (4): 331–47. doi:10.1007/BF00872217. PMID 7832590.
- ^ Zumft W (1 December 1997). "Cell biology and molecular basis of denitrification". Microbiol Mol Biol Rev 61 (4): 533–616. PMID 9409151. PMC 232623. http://mmbr.asm.org/cgi/reprint/61/4/533?view=long&pmid=9409151.
- ^ Drake H, Daniel S, Küsel K, Matthies C, Kuhner C, Braus-Stromeyer S (1997). "Acetogenic bacteria: what are the in situ consequences of their diverse metabolic versatilities?". Biofactors 6 (1): 13–24. doi:10.1002/biof.5520060103. PMID 9233536.
- ^ Morel, FMM; Kraepiel AML, Amyot M (1998). "The chemical cycle and bioaccumulation of mercury". Annual Review of Ecological Systems 29: 543–566. doi:10.1146/annurev.ecolsys.29.1.543.
- ^ Dalton H (2005). "The Leeuwenhoek Lecture 2000 the natural and unnatural history of methane-oxidizing bacteria". Philos Trans R Soc Lond B Biol Sc