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#REDIRECT [[Influenza]]
{{flu}}
{{evolutionary biology}}
{{Lead rewrite|date=April 2010}}

The virus causing [[influenza]] is one of the best known pathogens found in various [[species]]. In particular, the virus is found in birds as well as [[mammal]]s including horses, pigs, and humans.<ref name=six>''{{cite journal |doi=10.1371/journal.pone.0005022 |last1=Liu |first1=S |last2=Kang |first2=J |last3=Chen |first3= J |last4=Tai |first4=D |last5=Jiang |first5=W |last6=Hou |first6=G |last7=Chen |first7=J |last8=Li |first8=J |last9=Huang |first9=B |year=2009 |title=Panorama phylogenetic diversity and distribution of type A influenza virus |journal=PLoS ONE |volume=4 |pages=1–20 |url=http://www.plosone.org/article/info:doi%2F10.1371%2Fjournal.pone.0005022 |editor1-last=Field |editor1-first=Dawn |issue=3 }}''</ref> The [[phylogeny]], or the evolutionary history of a particular species, is an important component when analyzing the '''evolution of influenza'''. Phylogenetic trees are graphical models of the relationships between various species. They can be used to trace the virus back to particular species and show how organisms that look so different may be so closely related.<ref name=six/>

==Mechanisms of evolution==
Two common mechanisms by which viruses evolve are [[reassortment]] and [[genetic drift]].<ref name=nine>''{{cite journal |doi=10.1007/BF01728660 |last1=Scholtissek |first1=C |year=1995 |title=Molecular evolution of influenza viruses|journal=Virus Genes |volume=11 |issue=2–3 |pages=209–215 |url=http://springerlink.metapress.com/content/v5747t6n11622627/fulltext.pdf |pmid=8828147 }}''</ref>

===Reassortment===
Reassortment allows new viruses to evolve under both natural conditions and in artificial cultures.<ref name=nine/> In fact, the 1957 evolution of the H2N2 virus is thought to be a result of reassortment.<ref name=nine/> In this case, human H1N1 strains and avian influenza A [[genes]] were mixed.<ref name=nine/> Infecting tissue cultures can demonstrate how [[pathogenic]] qualities can evolve for a particular species even though the reassorted virus may be nonpathogenic for another species.<ref name=nine/> A prime example of evolution under natural conditions is the reassortment of two avian influenza strains that were discovered in dead seals back in 1979.<ref name=nine/>

===Drift===
New viruses can also emerge by drift. Drift can refer to [[genetic drift]] or [[antigenic]] drift.<ref name=nine/> [[Mutation]] and [[selection]] for the most advantageous variation of the virus takes place during this form of evolution.<ref name=nine/> Antigenic mutants can evolve quickly due to the high mutation rate in viruses. Influenza antigenic drift happens when two influenza viruses infect on cell. When new ones come out they have a segment from the others genome that could let some but not enough antibodies to bind. Also the receptor could not bind to antibodies.<ref name=nine/> This evolution occurs under the pressure of [[antibodies]] or immune system responses.<ref name=nine/>

==Transmission==
===Species and barriers===
The transmission, or how the influenza virus is passed from one species to another, varies. There are barriers that prevent the flow of the virus between some species ranging from high to low transmission. For example, there is no direct pathway between humans and birds.<ref name=nine/> Pigs however, serve as an open pathway. There is a limited barrier for them to spread the virus.<ref name=nine/> Therefore, pigs act as a donator of the virus relatively easily.

===Geographic differences===
Phylogenetic maps are a graphical representation of the geographic relationships among species. They indicate that the human influenza virus is minimally impacted by geographic differences.<ref name=six/> However, both swine and avian influenza does appear to be geographically dependent.<ref name=six/> All three groups (avian, swine, and human) show chronological differences. The human influenza virus is retained in humans only, meaning it does not spread to other species.<ref name=six/> Some [[lineages]] and sublineages of the virus emerge and may be more prevalent in certain locations. For instance, many human influenza outbreaks begin in Southeast Asia.<ref name=nine/>

==Phylogenetic analysis==
Phylogenetic analysis can help determine past viruses and their patterns as well as determining a [[common ancestor]] of the virus. Past studies reveal that an avian virus spread to pigs and then to humans approximately 100 years ago.<ref name=nine/> This resulted in human lineages further evolving and becoming more prominent and stable.<ref name=nine/>

Analysis can also feature relationships between species. The 1918 Spanish influenza virus demonstrates this. Even though the [[hemagglutinin]] (HA) gene was closer in relation to avian strains than mammalian ones, it was, in fact, mammalian.<ref name=two>''{{cite journal |doi=10.1073/pnas.96.4.1651 |last1=Reid |first1=A |last2=Fanning |first2=T |last3=Hultin |first3=J |last4= Taubenberger |first4= J |year=1999 |title=Origin and evolution of the 1918 "Spanish" influenza virus hemagglutinin gene|journal=Proceedings of the National Academy of Sciences USA |volume=96 |pages=1651–1656 |url=http://www.pnas.org/content/96/4/1651.full.pdf |issue=4 |pmid=9990079 |pmc=15547}}''</ref> The gene may have been adapting in humans even prior to 1918.<ref name=two/> Breaking down the phylogenetic history of the influenza virus shows that there is a common ancestor that reaches back before the 1918 outbreak that links the current human virus to the swine virus.<ref name=three>''{{cite journal |last1=Gorman |first1=O |last2=Donis |first2=R |last3=Kawaoka |first3=Y |last4=Webster |first4=R |year=1990 |title=Evolution of influenza A virus PB2 genes: implications for evolution of the ribonucleoprotein complex and origin of human influenza A virus|journal=Journal of Virology |volume=64 |issue=10 |pages=4893–4902 |url=http://jvi.asm.org/cgi/content/abstract/64/10/4893 |pmid=2398532 |pmc=247979 }}''</ref> The ancestor was derived from an avian host.<ref name=nine/>

==Future impact==
Looking at the past phylogenetic relationships of the influenza virus can help lead to information regarding treatment resistance, selecting vaccine strains, and future influenza strains.

In current years, there has been a huge increase in the amount of resistance to certain drugs, including the antiviral compound [[adamantine]].<ref name=seven>''{{cite journal |doi=10.1093/molbev/msm103 |last1=Simonsen |first1=L |last2=Viboud |first2=C |last3=Grenfell |first3=B |last4=Dushoff |first4=J |last5=Jennings |first5=L |last6=Smit |first6=M |last7=Macken |first7=C |last8=Hata |first8=M |last9=Gog |first9=J |year=2007 |title=The genesis and spread of reassortment human influenza A/H3N2 viruses conferring adamantane resistance |journal=Molecular Biology and Evolution |volume=24 |issue=8 |pages=1811–20 |url=http://mbe.oxfordjournals.org/cgi/content/full/24/8/1811#SEC4 |pmid=17522084 }}''</ref> In fact, its resistance has recently climbed from 2 percent to nearly 90 percent.<ref name=seven/> These records of built up resistance infer that drugs, such as adamantine, will not be useful against the influenza virus in the future.

Various lineages may continue their presence and reassort indicating the importance of a complete-genome approach to determine new influenza strains and future epidemics.<ref name=eight>''{{cite journal |doi=10.1371/journal.pbio.0030300 |last1=Holmes |first1=E |last2=Ghedin |first2=E |last3=Miller |first3=N |last4=Taylor |first4=J |last5=Bao |first5=Y |last6=St George |first6=K |last7=Grenfell |first7=B |last8=Salzberg |first8=S |last9=Fraser |first9=C |first10=D |last11=Taubenberger |first11=J |year=2005 |title=Whole-Genome Analysis of Human Influenza A Virus Reveals Multiple Persistent Lineages and Reassortment among Recent H3N2 Viruses |journal=Plos Biology |volume=3 |pages=1579–1589 |url=http://www.plosbiology.org/article/info:doi/10.1371/journal.pbio.0030300 |pmid=16026181 |pmc=1180517 |issue=9 |unused_data=last 10=Lipman}}''</ref><ref name=ten>''{{cite journal |last1=Vana |first1=G |last2=Westover |first2=K |year=2008 |title=Origin of the 1918 Spanish influenza virus: A comparative genomic analysis |journal=Molecular Phylogenetics and Evolution |volume=3 |pages=1100–1110 }}''</ref> In terms of vaccine strain selection, antigenic [[clades]] evolve by reassortment, not by antigenic drift.<ref name=eight/> This was shown in the 2003-2004 influenza outbreak.<ref name=eight/>

Phylogenetic trees can help determine what [[codons]] in the HA gene of the influenza A virus have changed in past outbreaks.<ref name=five>''{{cite journal |doi=10.1093/jhered/91.3.183 |last1=Fitch |first1=W |last2=Bush |first2=R |last3=Bender |first3=C |last4=Subbarao |first4=K |last5=Cox |first5=N |title=Predicting the evolution of human influenza A |journal=Journal of Heredity |volume=91 |issue=3 |pages=183–185 |url=http://jhered.oxfordjournals.org/cgi/reprint/91/3/183 |year=2000 |pmid=10833042}}''</ref> The more mutations there are in a virus strain, the more likely that strain is to be a generator of a new lineage in future influenza seasons.<ref name=five/>

==References==
<references/>
{{Evolution}}


[[Category:Influenza]]
[[Category:Influenza]]

Latest revision as of 03:27, 14 June 2021

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