Gram-negative bacteria: Difference between revisions

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* Most, with few exceptions, do not form [[Endospore|spores]]
* Most, with few exceptions, do not form [[Endospore|spores]]


However, the LPS-diderm group (corresponding to kingdom [[Pseudomonadati]], formerly "Hydrobacteria") is not the only type of bacteria that stain negative.<ref name="valid-dom-kingdom">{{cite journal |last1=Göker |first1=Markus |last2=Oren |first2=Aharon |title=Valid publication of names of two domains and seven kingdoms of prokaryotes |journal=International Journal of Systematic and Evolutionary Microbiology |date=22 January 2024 |volume=74 |issue=1 |doi=10.1099/ijsem.0.006242|pmid=38252124 }}</ref> ''[[Mycobacterium]]'' (or rather most of [[Mycobacteriales]]), which does not belong in the group, have independently evolved an outer cell membrane, with a cell wall made of [[mycolic acid]].<ref name=Gupta19myc>{{cite journal |last1=Gupta |first1=Radhey S. |title=Commentary: Genome-Based Taxonomic Classification of the Phylum Actinobacteria |journal=Frontiers in Microbiology |date=22 February 2019 |volume=10 |page=206 |doi=10.3389/fmicb.2019.00206 |quote=Mycolic acids are important constituents of the cell envelopes of most members.|doi-access=free |pmid=30853945 |pmc=6395429 }}</ref> This gives it very different structure and features.<ref name="Desvaux et al., 2009"/><ref name="Sutcliffe, 2010"/><ref name="Guptac"/><ref name="pmid19667386">{{cite journal|vauthors=Marchandin H, Teyssier C, Campos J, Jean-Pierre H, Roger F, Gay B, Carlier JP, Jumas-Bilak E |title=Negativicoccus succinicivorans gen. nov., sp. nov., isolated from human clinical samples, emended description of the family Veillonellaceae and description of Negativicutes classis nov., Selenomonadales ord. nov. and Acidaminococcaceae fam. nov. in the bacterial phylum Firmicutes |journal=Int. J. Syst. Evol. Microbiol. |volume=60 |issue=Pt 6 |pages=1271–9 |date=June 2010 |pmid=19667386 |doi=10.1099/ijs.0.013102-0|doi-access=free }}</ref>
However, the LPS-diderm group (corresponding to kingdom [[Pseudomonadati]], formerly "Hydrobacteria") is not the only type of bacteria that stain negative.<ref name="valid-dom-kingdom">{{cite journal |last1=Göker |first1=Markus |last2=Oren |first2=Aharon |title=Valid publication of names of two domains and seven kingdoms of prokaryotes |journal=International Journal of Systematic and Evolutionary Microbiology |date=22 January 2024 |volume=74 |issue=1 |doi=10.1099/ijsem.0.006242|pmid=38252124 |doi-access=free }}</ref> ''[[Mycobacterium]]'' (or rather most of [[Mycobacteriales]]), which does not belong in the group, have independently evolved an outer cell membrane, with a cell wall made of [[mycolic acid]].<ref name=Gupta19myc>{{cite journal |last1=Gupta |first1=Radhey S. |title=Commentary: Genome-Based Taxonomic Classification of the Phylum Actinobacteria |journal=Frontiers in Microbiology |date=22 February 2019 |volume=10 |page=206 |doi=10.3389/fmicb.2019.00206 |quote=Mycolic acids are important constituents of the cell envelopes of most members.|doi-access=free |pmid=30853945 |pmc=6395429 }}</ref> This gives it very different structure and features.<ref name="Desvaux et al., 2009"/><ref name="Sutcliffe, 2010"/><ref name="Guptac"/><ref name="pmid19667386">{{cite journal|vauthors=Marchandin H, Teyssier C, Campos J, Jean-Pierre H, Roger F, Gay B, Carlier JP, Jumas-Bilak E |title=Negativicoccus succinicivorans gen. nov., sp. nov., isolated from human clinical samples, emended description of the family Veillonellaceae and description of Negativicutes classis nov., Selenomonadales ord. nov. and Acidaminococcaceae fam. nov. in the bacterial phylum Firmicutes |journal=Int. J. Syst. Evol. Microbiol. |volume=60 |issue=Pt 6 |pages=1271–9 |date=June 2010 |pmid=19667386 |doi=10.1099/ijs.0.013102-0|doi-access=free }}</ref>
 
In many gram-negative bacteria, the [[IgaA]] membrane protein negatively regulates the Rcs phosphorelay system, a key envelope stress response pathway that helps maintain cell envelope integrity.


== Classification ==
== Classification ==
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{{Further|Bacteria#Classification and identification}}
{{Further|Bacteria#Classification and identification}}
{{Technical|section|date=March 2014}}
{{Technical|section|date=March 2014}}
{{Split section|Gram stain |discuss=Gram stain#Move Taxonomy sections here |date=November 2023}}
{{Split section|Gram stain|discuss=Gram stain#Move Taxonomy sections here |date=November 2023}}
Bacteria are traditionally classified based on their [[Gram stain|Gram-stain]]ing response into the [[gram-positive]] and gram-negative bacteria. Having just one membrane, the gram-positive bacteria are also known as [[monoderm bacteria]], while gram-negative bacteria, having two membranes, are also known as '''diderm bacteria'''. It was traditionally thought that the groups represent lineages, i.e., the extra membrane only evolved once, such that gram-negative bacteria are more closely related to one another than to any gram-positive bacteria. While this is often true, the classification system breaks down in some cases, with lineage groupings not matching the staining result.<ref name="Guptab">{{cite journal|last=Gupta |first=RS |title=Protein phylogenies and signature sequences: A reappraisal of evolutionary relationships among archaebacteria, eubacteria, and eukaryotes |journal=Microbiol. Mol. Biol. Rev. |volume=62 |issue=4 |pages=1435–91 |date=December 1998 |pmid=9841678 |pmc=98952 |doi=10.1128/MMBR.62.4.1435-1491.1998}}</ref><ref name="Guptad">{{cite journal | author = Gupta RS | title = The natural evolutionary relationships among prokaryotes | journal = Crit. Rev. Microbiol. | volume = 26 | issue = 2 | pages = 111–31 | year = 2000 | pmid = 10890353 | doi = 10.1080/10408410091154219 | url = http://www.life.illinois.edu/govindjee/Part2/15_Gupta.pdf | citeseerx = 10.1.1.496.1356 | s2cid = 30541897 | access-date = 2017-10-24 | archive-date = 2018-07-20 | archive-url = https://web.archive.org/web/20180720153253/http://www.life.illinois.edu/govindjee/Part2/15_Gupta.pdf | url-status = live }}</ref><ref name="Desvaux et al., 2009">{{cite journal |vauthors=Desvaux M, Hébraud M, Talon R, Henderson IR | title = Secretion and subcellular localizations of bacterial proteins: a semantic awareness issue | journal = Trends Microbiol. | volume = 17 | issue = 4 | pages = 139–45 |date=April 2009 | pmid = 19299134 | doi = 10.1016/j.tim.2009.01.004 }}</ref><ref name="Sutcliffe, 2010">{{cite journal | author = Sutcliffe IC | title = A phylum level perspective on bacterial cell envelope architecture | journal = Trends Microbiol. | volume = 18 | issue = 10 | pages = 464–70 |date=October 2010 | pmid = 20637628 | doi = 10.1016/j.tim.2010.06.005 }}</ref> Thus, Gram staining cannot be reliably used to assess familial relationships of bacteria. Nevertheless, staining often gives reliable information about the composition of the cell membrane, distinguishing between the presence or absence of an [[bacterial outer membrane|outer lipid membrane]].<ref name="Guptab"/><ref name="Guptaa">{{cite journal | author = Gupta RS | title = What are archaebacteria: life's third domain or monoderm prokaryotes related to gram-positive bacteria? A new proposal for the classification of prokaryotic organisms | journal = Mol. Microbiol. | volume = 29 | issue = 3 | pages = 695–707 |date=August 1998 | pmid = 9723910 | doi = 10.1046/j.1365-2958.1998.00978.x | doi-access = free }}</ref>
Bacteria are traditionally classified based on their [[Gram stain|Gram-staining]] response into the [[gram-positive]] and gram-negative bacteria. Having just one membrane, the gram-positive bacteria are also known as [[monoderm bacteria]], while gram-negative bacteria, having two membranes, are also known as '''diderm bacteria'''. It was traditionally thought that the groups represent lineages, i.e., the extra membrane only evolved once, such that gram-negative bacteria are more closely related to one another than to any gram-positive bacteria. While this is often true, the classification system breaks down in some cases, with lineage groupings not matching the staining result.<ref name="Guptab">{{cite journal|last=Gupta |first=RS |title=Protein phylogenies and signature sequences: A reappraisal of evolutionary relationships among archaebacteria, eubacteria, and eukaryotes |journal=Microbiol. Mol. Biol. Rev. |volume=62 |issue=4 |pages=1435–91 |date=December 1998 |pmid=9841678 |pmc=98952 |doi=10.1128/MMBR.62.4.1435-1491.1998}}</ref><ref name="Guptad">{{cite journal | author = Gupta RS | title = The natural evolutionary relationships among prokaryotes | journal = Crit. Rev. Microbiol. | volume = 26 | issue = 2 | pages = 111–31 | year = 2000 | pmid = 10890353 | doi = 10.1080/10408410091154219 | url = http://www.life.illinois.edu/govindjee/Part2/15_Gupta.pdf | citeseerx = 10.1.1.496.1356 | s2cid = 30541897 | access-date = 2017-10-24 | archive-date = 2018-07-20 | archive-url = https://web.archive.org/web/20180720153253/http://www.life.illinois.edu/govindjee/Part2/15_Gupta.pdf | url-status = live }}</ref><ref name="Desvaux et al., 2009">{{cite journal |vauthors=Desvaux M, Hébraud M, Talon R, Henderson IR | title = Secretion and subcellular localizations of bacterial proteins: a semantic awareness issue | journal = Trends Microbiol. | volume = 17 | issue = 4 | pages = 139–45 |date=April 2009 | pmid = 19299134 | doi = 10.1016/j.tim.2009.01.004 }}</ref><ref name="Sutcliffe, 2010">{{cite journal | author = Sutcliffe IC | title = A phylum level perspective on bacterial cell envelope architecture | journal = Trends Microbiol. | volume = 18 | issue = 10 | pages = 464–70 |date=October 2010 | pmid = 20637628 | doi = 10.1016/j.tim.2010.06.005 }}</ref> Thus, Gram staining cannot be reliably used to assess familial relationships of bacteria. Nevertheless, staining often gives reliable information about the composition of the cell membrane, distinguishing between the presence or absence of an [[bacterial outer membrane|outer lipid membrane]].<ref name="Guptab"/><ref name="Guptaa">{{cite journal | author = Gupta RS | title = What are archaebacteria: life's third domain or monoderm prokaryotes related to gram-positive bacteria? A new proposal for the classification of prokaryotic organisms | journal = Mol. Microbiol. | volume = 29 | issue = 3 | pages = 695–707 |date=August 1998 | pmid = 9723910 | doi = 10.1046/j.1365-2958.1998.00978.x | doi-access = free }}</ref>


Of these two structurally distinct groups of [[Prokaryote|prokaryotic]] organisms, monoderm prokaryotes are thought to be ancestral. Based upon a number of different observations, including that the gram-positive bacteria are the most sensitive to [[antibiotics]] and that the gram-negative bacteria are, in general, [[antimicrobial resistance|resistant]] to antibiotics, it has been proposed that the outer cell membrane in gram-negative bacteria (diderms) evolved as a protective mechanism against antibiotic [[Evolutionary pressure|selection pressure]].<ref name="Guptab"/><ref name="Guptad"/><ref name="Guptaa"/><ref name="Guptac">{{cite journal | author = Gupta RS | title = Origin of diderm (gram-negative) bacteria: antibiotic selection pressure rather than endosymbiosis likely led to the evolution of bacterial cells with two membranes | journal = Antonie van Leeuwenhoek | volume = 100 | issue = 2 | pages = 171–82 |date=August 2011 | pmid = 21717204 | pmc = 3133647 | doi = 10.1007/s10482-011-9616-8 }}</ref> Some bacteria such as ''[[Deinococcus]]'', which stain gram-positive due to the presence of a thick [[peptidoglycan]] layer, but also possess an outer cell membrane are suggested as intermediates in the transition between monoderm (gram-positive) and diderm (gram-negative) bacteria.<ref name="Guptab"/><ref name="Guptac"/>  
Of these two structurally distinct groups of [[Prokaryote|prokaryotic]] organisms, monoderm prokaryotes are thought to be ancestral. Based upon a number of different observations, including that the gram-positive bacteria are the most sensitive to [[antibiotics]] and that the gram-negative bacteria are, in general, [[antimicrobial resistance|resistant]] to antibiotics, it has been proposed that the outer cell membrane in gram-negative bacteria (diderms) evolved as a protective mechanism against antibiotic [[Evolutionary pressure|selection pressure]].<ref name="Guptab"/><ref name="Guptad"/><ref name="Guptaa"/><ref name="Guptac">{{cite journal | author = Gupta RS | title = Origin of diderm (gram-negative) bacteria: antibiotic selection pressure rather than endosymbiosis likely led to the evolution of bacterial cells with two membranes | journal = Antonie van Leeuwenhoek | volume = 100 | issue = 2 | pages = 171–82 |date=August 2011 | pmid = 21717204 | pmc = 3133647 | doi = 10.1007/s10482-011-9616-8 }}</ref> Some bacteria such as ''[[Deinococcus]]'', which stain gram-positive due to the presence of a thick [[peptidoglycan]] layer, but also possess an outer cell membrane are suggested as intermediates in the transition between monoderm (gram-positive) and diderm (gram-negative) bacteria.<ref name="Guptab"/><ref name="Guptac"/>  
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The difficulty lies in the other taxa that also have a diderm structure.
The difficulty lies in the other taxa that also have a diderm structure.
* The first group is [[Paraphyly|paraphyletic]]. It includes a number of taxa (including [[Negativicutes]], [[Fusobacteriota]], [[Synergistota]], and [[Elusimicrobiota]]) that are either part of the [[phylum]] [[Bacillota]] (a monoderm group) or branches in its proximity.<ref name="Sutcliffe, 2010"/><ref name="Guptac"/><ref name="pmid19667386"/> They lack the [[GroEL]] CSI signature, which is proof that they do not belong in the former group.<ref name="Guptac"/> Some members are likely monoderm, just with a very thin layer of LPS to not appear on the stain. Others have more convoluted structures.<ref name="pmid39162559">{{cite journal |last1=Choi |first1=JK |last2=Poudel |first2=S |last3=Yee |first3=N |last4=Goff |first4=JL |title=Deeply branching Bacillota species exhibit atypical Gram-negative staining. |journal=Microbiology Spectrum |date=3 October 2024 |volume=12 |issue=10 |pages=e0073224 |doi=10.1128/spectrum.00732-24 |pmid=39162559|pmc=11448272 }}</ref>
* The first group is [[Paraphyly|paraphyletic]]. It includes a number of taxa (including [[Negativicutes]], [[Fusobacteriota]], [[Synergistota]], and [[Elusimicrobiota]]) that are either part of the [[phylum]] [[Bacillota]] (a monoderm group) or branches in its proximity.<ref name="Sutcliffe, 2010"/><ref name="Guptac"/><ref name="pmid19667386"/> They lack the [[GroEL]] CSI signature, which is proof that they do not belong in the former group.<ref name="Guptac"/> Some members are likely monoderm, just with a very thin layer of LPS to not appear on the stain. Others have more convoluted structures.<ref name="pmid39162559">{{cite journal |last1=Choi |first1=JK |last2=Poudel |first2=S |last3=Yee |first3=N |last4=Goff |first4=JL |title=Deeply branching Bacillota species exhibit atypical Gram-negative staining |journal=Microbiology Spectrum |date=3 October 2024 |volume=12 |issue=10 |pages=e0073224 |doi=10.1128/spectrum.00732-24 |pmid=39162559|pmc=11448272 }}</ref>
* The second group are the clinically-relevant ''[[Mycobacterium]]'', expanding to most of its encompassing order of [[Mycobacteriales]]. They do not have the CSI, and their cell wall is made of a different substance: [[mycolic acid]].<ref name=Gupta19myc/>
* The second group are the clinically-relevant ''[[Mycobacterium]]'', expanding to most of its encompassing order of [[Mycobacteriales]]. They do not have the CSI, and their cell wall is made of a different substance: [[mycolic acid]].<ref name=Gupta19myc/>


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The outer membrane protects the bacteria from several [[antibiotic]]s, [[dye]]s, and [[detergent]]s that would normally damage either the inner membrane or the cell wall (made of [[peptidoglycan]]). The outer membrane provides these bacteria with resistance to [[lysozyme]] and [[penicillin]]. The [[Periplasm|periplasmic space]] (space between the two cell membranes) also contains [[enzyme]]s which break down or modify antibiotics. Drugs commonly used to treat gram negative infections include amino, carboxy and ureido penicillins ([[ampicillin]], [[amoxicillin]], [[Piperacillin|pipercillin]], [[ticarcillin]]). These drugs may be combined with [[beta-lactamase inhibitor]]s to combat the presence of enzymes that can digest these drugs (known as [[beta-lactamase]]s) in the peri-plasmic space. Other classes of drugs that have gram negative spectrum include [[cephalosporin]]s, [[monobactam]]s ([[aztreonam]]), [[Aminoglycoside|aminoglycosides]], [[quinolone antibiotic|quinolones]], [[macrolide]]s, [[chloramphenicol]], [[Antifolate|folate antagonists]], and [[carbapenem]]s.<ref>{{cite web|last=Glück|first=Thomas|url=https://www.jwatch.org/id200312120000007/2003/12/12/gram-negative-bacteria-and-broad-spectrum|title=Gram-Negative Bacteria and Broad-Spectrum Antibiotics: Good News Except for Fluoroquinolones|publisher=NEJM Journal Watch|website=www.jwatch.org|date=12 December 2003|access-date=10 March 2018|archive-date=10 March 2018|archive-url=https://web.archive.org/web/20180310074653/https://www.jwatch.org/id200312120000007/2003/12/12/gram-negative-bacteria-and-broad-spectrum|url-status=live}}</ref>
The outer membrane protects the bacteria from several [[antibiotic]]s, [[dye]]s, and [[detergent]]s that would normally damage either the inner membrane or the cell wall (made of [[peptidoglycan]]). The outer membrane provides these bacteria with resistance to [[lysozyme]] and [[penicillin]]. The [[Periplasm|periplasmic space]] (space between the two cell membranes) also contains [[enzyme]]s which break down or modify antibiotics. Drugs commonly used to treat gram negative infections include amino, carboxy and ureido penicillins ([[ampicillin]], [[amoxicillin]], [[Piperacillin|pipercillin]], [[ticarcillin]]). These drugs may be combined with [[beta-lactamase inhibitor]]s to combat the presence of enzymes that can digest these drugs (known as [[beta-lactamase]]s) in the peri-plasmic space. Other classes of drugs that have gram negative spectrum include [[cephalosporin]]s, [[monobactam]]s ([[aztreonam]]), [[Aminoglycoside|aminoglycosides]], [[quinolone antibiotic|quinolones]], [[macrolide]]s, [[chloramphenicol]], [[Antifolate|folate antagonists]], and [[carbapenem]]s.<ref>{{cite web|last=Glück|first=Thomas|url=https://www.jwatch.org/id200312120000007/2003/12/12/gram-negative-bacteria-and-broad-spectrum|title=Gram-Negative Bacteria and Broad-Spectrum Antibiotics: Good News Except for Fluoroquinolones|publisher=NEJM Journal Watch|website=www.jwatch.org|date=12 December 2003|access-date=10 March 2018|archive-date=10 March 2018|archive-url=https://web.archive.org/web/20180310074653/https://www.jwatch.org/id200312120000007/2003/12/12/gram-negative-bacteria-and-broad-spectrum|url-status=live}}</ref>


== Orthography: Capitalization ==
== Orthography: capitalization ==
<!--Please keep this text synched with that of [[Gram-positive bacteria#Orthographic note]].-->
<!--Please keep this text synched with that of [[Gram-positive bacteria#Orthographic note]].-->
The adjectives ''gram-positive'' and ''gram-negative'' derive from the surname of [[Hans Christian Gram]], a Danish bacteriologist; as [[Eponym#Orthographic conventions|eponymous adjectives]], their initial letter can be either capital ''G'' or lower-case ''g'', depending on which [[style guide]] (e.g., that of the [[Centers for Disease Control and Prevention|CDC]]), if any, governs the document being written.<ref>{{cite web |publisher=Centers for Disease Control and Prevention |title=Preferred Usage - Emerging Infectious Disease journal - CDC |url=https://wwwnc.cdc.gov/eid/page/preferred-usage |work=CDC.gov |access-date=2018-03-04 |archive-date=2018-01-29 |archive-url=https://web.archive.org/web/20180129223909/https://wwwnc.cdc.gov/eid/page/preferred-usage |url-status=live }}</ref> This is further explained at ''[[Gram staining#Orthographic note|Gram staining § Orthographic note]]''.
The adjectives ''gram-positive'' and ''gram-negative'' derive from the surname of [[Hans Christian Gram]], a Danish bacteriologist; as [[Eponym#Orthographic conventions|eponymous adjectives]], their initial letter ''G'' can be either capital or lower-case, depending on which [[style guide]] (e.g., that of the [[Centers for Disease Control and Prevention|CDC]]), if any, governs the document being written.<ref>{{cite web |publisher=Centers for Disease Control and Prevention |title=Preferred Usage - Emerging Infectious Disease journal - CDC |url=https://wwwnc.cdc.gov/eid/page/preferred-usage |work=CDC.gov |access-date=2018-03-04 |archive-date=2018-01-29 |archive-url=https://web.archive.org/web/20180129223909/https://wwwnc.cdc.gov/eid/page/preferred-usage |url-status=live }}</ref> This is further explained at ''[[Gram staining#Orthographic note|Gram staining § Orthographic note]]''.


== See also ==
== See also ==

Revision as of 00:08, 11 June 2025

Template:Short description

File:Pseudomonas aeruginosa Gram.jpg
Microscopic image of gram-negative Pseudomonas aeruginosa bacteria (pink-red rods)

Gram-negative bacteria are bacteria that, unlike gram-positive bacteria, do not retain the crystal violet stain used in the Gram staining method of bacterial differentiation.[1] Their defining characteristic is that their cell envelope consists of a thin peptidoglycan cell wall sandwiched between an inner (cytoplasmic) membrane and an outer membrane.[2] These bacteria are found in all environments that support life on Earth.

Within this category, notable species include the model organism Escherichia coli, along with various pathogenic bacteria, such as Pseudomonas aeruginosa, Chlamydia trachomatis, and Yersinia pestis. They pose significant challenges in the medical field due to their outer membrane, which acts as a protective barrier against numerous antibiotics (including penicillin), detergents that would normally damage the inner cell membrane, and the antimicrobial enzyme lysozyme produced by animals as part of their innate immune system. Furthermore, the outer leaflet of this membrane contains a complex lipopolysaccharide (LPS) whose lipid A component can trigger a toxic reaction when the bacteria are lysed by immune cells. This reaction may lead to septic shock, resulting in low blood pressure, respiratory failure, reduced oxygen delivery, and lactic acidosis.[3]

Several classes of antibiotics have been developed to target gram-negative bacteria, including aminopenicillins, ureidopenicillins, cephalosporins, beta-lactam-betalactamase inhibitor combinations (such as piperacillin-tazobactam), folate antagonists, quinolones, and carbapenems. Many of these antibiotics also cover gram-positive bacteria. The antibiotics that specifically target gram-negative organisms include aminoglycosides, monobactams (such as aztreonam), and ciprofloxacin.

Characteristics

File:Gram negative cell wall.svg
Gram-negative (LPS-diderm) cell wall structure
File:Gram-Cell-wall.svg
Gram-positive and -negative bacteria are differentiated chiefly by their cell wall structure

Conventional gram-negative (LPS-diderm) bacteria display the following characteristics:Script error: No such module "Unsubst".

However, the LPS-diderm group (corresponding to kingdom Pseudomonadati, formerly "Hydrobacteria") is not the only type of bacteria that stain negative.[4] Mycobacterium (or rather most of Mycobacteriales), which does not belong in the group, have independently evolved an outer cell membrane, with a cell wall made of mycolic acid.[5] This gives it very different structure and features.[6][7][8][9]

In many gram-negative bacteria, the IgaA membrane protein negatively regulates the Rcs phosphorelay system, a key envelope stress response pathway that helps maintain cell envelope integrity.

Classification

Along with cell shape, Gram staining is a rapid diagnostic tool and once was used to group species at the subdivision of Bacteria. Historically, the kingdom Monera was divided into four divisions based on Gram staining: Firmicutes (+), Gracillicutes (−), Mollicutes (0) and Mendocutes (var.).[10] Since 1987, the monophyly of the gram-negative bacteria has been disproven with molecular studies.[11]

Current knowledge divides the gram-negatives into two large groups and some straddlers. The more "conventional" gram-negatives with an LPS outer membrane do share a common ancestor and are grouped in kingdom Pseudomonadati.[4] The less conventional ones are, as mentioned above, the order Mycobacteriales, have a mycolic acid cell wall and an outer membrane.[5] The kingdom and the order are each monophyletic (or rather, not holyphyletic), but the "LPS-diderm" and "mycolic-diderm" groups are not, because some bacteria in the kingdom and the order do not, in fact, stain gram negative. They will be discussed in the next section.

Taxonomy

Script error: No such module "Labelled list hatnote". Script error: No such module "labelled list hatnote". Script error: No such module "Unsubst". Script error: No such module "Unsubst". Bacteria are traditionally classified based on their Gram-staining response into the gram-positive and gram-negative bacteria. Having just one membrane, the gram-positive bacteria are also known as monoderm bacteria, while gram-negative bacteria, having two membranes, are also known as diderm bacteria. It was traditionally thought that the groups represent lineages, i.e., the extra membrane only evolved once, such that gram-negative bacteria are more closely related to one another than to any gram-positive bacteria. While this is often true, the classification system breaks down in some cases, with lineage groupings not matching the staining result.[12][13][6][7] Thus, Gram staining cannot be reliably used to assess familial relationships of bacteria. Nevertheless, staining often gives reliable information about the composition of the cell membrane, distinguishing between the presence or absence of an outer lipid membrane.[12][14]

Of these two structurally distinct groups of prokaryotic organisms, monoderm prokaryotes are thought to be ancestral. Based upon a number of different observations, including that the gram-positive bacteria are the most sensitive to antibiotics and that the gram-negative bacteria are, in general, resistant to antibiotics, it has been proposed that the outer cell membrane in gram-negative bacteria (diderms) evolved as a protective mechanism against antibiotic selection pressure.[12][13][14][8] Some bacteria such as Deinococcus, which stain gram-positive due to the presence of a thick peptidoglycan layer, but also possess an outer cell membrane are suggested as intermediates in the transition between monoderm (gram-positive) and diderm (gram-negative) bacteria.[12][8]

The conventional LPS-diderm group of gram-negative bacteria (e.g., Pseudomonadota, Aquificota, Chlamydiota, Bacteroidota, Chlorobiota, "Cyanobacteria", Fibrobacterota, Verrucomicrobiota, Planctomycetota, Spirochaetota, Acidobacteriota) are uniquely identified by a few conserved signature indel (CSI) in the HSP60 (GroEL) protein. The presence of this CSI in all sequenced species of conventional lipopolysaccharide-containing gram-negative bacterial phyla provides evidence that these phyla of bacteria form a monophyletic clade and that no loss of the outer membrane from any species from this group has occurred.[8] They have accordingly been assigned a kingdom Pseudomonadati (formerly "Hydrobacteria").[4]

The difficulty lies in the other taxa that also have a diderm structure.

Example species

The proteobacteria are a major superphylum of gram-negative bacteria, including E. coli, Salmonella, Shigella, and other Enterobacteriaceae, Pseudomonas, Moraxella, Helicobacter, Stenotrophomonas, Bdellovibrio, acetic acid bacteria, Legionella etc. Other notable groups of gram-negative bacteria include the cyanobacteria, spirochaetes, and green sulfur bacteria.[16][17][18]

Medically-relevant gram-negative diplococci include the four types that cause a sexually transmitted disease (Neisseria gonorrhoeae[19]), a meningitis (Neisseria meningitidis[20]), and respiratory symptoms (Moraxella catarrhalis,[21] A coccobacillus Haemophilus influenzae is another medically relevant coccal type.[22]

Medically relevant gram-negative bacilli include a multitude of species. Some of them cause primarily respiratory problems (Klebsiella pneumoniae, Legionella pneumophila, Pseudomonas aeruginosa), primarily urinary problems (Escherichia coli, Proteus mirabilis, Enterobacter cloacae, Serratia marcescens), and primarily gastrointestinal problems (Helicobacter pylori, Salmonella enteritidis, Salmonella typhi).Script error: No such module "Unsubst".

Gram-negative bacteria associated with hospital-acquired infections include Acinetobacter baumannii, which cause bacteremia, secondary meningitis, and ventilator-associated pneumonia in hospital intensive-care units.

Bacterial transformation

Transformation is one of three processes for horizontal gene transfer, in which exogenous genetic material passes from one bacterium to another, the other two being conjugation (transfer of genetic material between two bacterial cells in direct contact) and transduction (injection of foreign DNA by a bacteriophage virus into the host bacterium).[23][24] In transformation, the genetic material passes through the intervening medium, and uptake is completely dependent on the recipient bacterium.[23]

As of 2014 about 80 species of bacteria were known to be capable of transformation, about evenly divided between gram-positive and gram-negative bacteria; the number might be an overestimate since several of the reports are supported by single papers.[23] Transformation has been studied in medically important gram-negative bacteria species such as Helicobacter pylori, Legionella pneumophila, Neisseria meningitidis, Neisseria gonorrhoeae, Haemophilus influenzae and Vibrio cholerae.[25] It has also been studied in gram-negative species found in soil such as Pseudomonas stutzeri, Acinetobacter baylyi, and gram-negative plant pathogens such as Ralstonia solanacearum and Xylella fastidiosa.[25]

Role in disease

File:Diagnostic algorithm of possible bacterial infection.png
Example of a workup algorithm of possible bacterial infection in cases with no specifically requested targets (non-bacteria, mycobacteria etc.), with most common situations and agents seen in a New England setting. Clinically significant gram-negative bacteria are usually rods, as shown near bottom right. Although some gram-negative bacteria can be recognized by "bench tests", diagnosis in the modern microbiology lab usually involves MALDI-TOF and/or multitarget assay.

One of the several unique characteristics of gram-negative bacteria is the structure of the bacterial outer membrane. The outer leaflet of this membrane contains lipopolysaccharide (LPS), whose lipid A portion acts as an endotoxin.[1] If gram-negative bacteria enter the circulatory system, LPS can trigger an innate immune response, activating the immune system and producing cytokines (hormonal regulators). This leads to inflammation and can cause a toxic reaction, resulting in fever, an increased respiratory rate, and low blood pressure. That is why some infections with gram-negative bacteria can lead to life-threatening septic shock.[3]

The outer membrane protects the bacteria from several antibiotics, dyes, and detergents that would normally damage either the inner membrane or the cell wall (made of peptidoglycan). The outer membrane provides these bacteria with resistance to lysozyme and penicillin. The periplasmic space (space between the two cell membranes) also contains enzymes which break down or modify antibiotics. Drugs commonly used to treat gram negative infections include amino, carboxy and ureido penicillins (ampicillin, amoxicillin, pipercillin, ticarcillin). These drugs may be combined with beta-lactamase inhibitors to combat the presence of enzymes that can digest these drugs (known as beta-lactamases) in the peri-plasmic space. Other classes of drugs that have gram negative spectrum include cephalosporins, monobactams (aztreonam), aminoglycosides, quinolones, macrolides, chloramphenicol, folate antagonists, and carbapenems.[26]

Orthography: capitalization

The adjectives gram-positive and gram-negative derive from the surname of Hans Christian Gram, a Danish bacteriologist; as eponymous adjectives, their initial letter G can be either capital or lower-case, depending on which style guide (e.g., that of the CDC), if any, governs the document being written.[27] This is further explained at Gram staining § Orthographic note.

See also

References

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Notes

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External links

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