<?xml version="1.0" encoding="ISO-8859-1"?><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance">
<front>
<journal-meta>
<journal-id>0123-4226</journal-id>
<journal-title><![CDATA[Revista U.D.C.A Actualidad & Divulgación Científica]]></journal-title>
<abbrev-journal-title><![CDATA[rev.udcaactual.divulg.cient.]]></abbrev-journal-title>
<issn>0123-4226</issn>
<publisher>
<publisher-name><![CDATA[Universidad de Ciencias Aplicadas y Ambientales]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0123-42262013000100002</article-id>
<title-group>
<article-title xml:lang="es"><![CDATA[ANÁLISIS EVOLUTIVO DE LA ADHESIÓN: EVIDENCIA DE SELECCIÓN POSITIVA OPERANTE SOBRE EL LOCUS AlpAB Y EL GEN horB DE Helicobacter pylori]]></article-title>
<article-title xml:lang="en"><![CDATA[MOLECULAR EVOLUTIONARY ANALYSIS OF ADHERENCE: EVIDENCE OF POSITIVE SELECTION OPERATING ON AlpAB LOCUS AND horB ADHESINS OF Helicobacter pylori]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Gutiérrez-Escobar]]></surname>
<given-names><![CDATA[Andrés Julián]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad de Ciencias Aplicadas y Ambientales Facultad de Medicina Grupo de Ciencias Básicas y Genética Humana Aplicada (GIBGA)]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
</aff>
<pub-date pub-type="pub">
<day>30</day>
<month>06</month>
<year>2013</year>
</pub-date>
<pub-date pub-type="epub">
<day>30</day>
<month>06</month>
<year>2013</year>
</pub-date>
<volume>16</volume>
<numero>1</numero>
<fpage>3</fpage>
<lpage>15</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0123-42262013000100002&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0123-42262013000100002&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0123-42262013000100002&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[La adherencia es un proceso clave para la infección por Helicobacter pylori, regulada por la expresión coordinada de adhesinas. Dentro de este grupo encontramos las proteínas AlpA/B y HorB que, recientemente, han llamado la atención de la comunidad científica, por su papel en el fitness de la bacteria. El objetivo del presente estudio fue describir la historia evolutiva de AlpA/B y HorB, desde un enfoque filogeográfico. Para este fin, se descargaron secuencias específicas para AlpA, AlpB y HorB desde Uniprot y fueron analizadas en Muscle, Mega 5.1, PhyML 3.0.1, DNAsp 5.0 y PAML 4.5. En este estudio, se identificó que los genes alpA, alpB y horB siguen un modelo evolutivo de nacimiento y de muerte de genes, bajo selección purificadora. Además, se detectaron patrones de diferenciación genética significativos para alpA, entre las poblaciones de América-Europa (FsT 0,51395) y de Europa-Asia (FsT 0,46030) y para alpB, entre las poblaciones de América-Europa (FsT 0,43711), datos soportados por la prueba McDonald y Kreitman. Seguidamente, mediante la herramienta PAML 4.5, se detectó que un 9,51% de la proteína AlpA, un 8,5% de la proteína AlpB y un 5% de la proteína HorBestán bajo selección positiva, determinando la presencia de linajes selectivos de H. pylori para zonas geográficas específicas, que favorecen la adherencia al hospedero. Finalmente, se concluye que los genes codificantes para las adhesinas AlpAB y HorB tienen procesos de adaptación locales correlacionados con los orígenes filogeográficos de las cepas analizadas.]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[The adherence to the epithelial gastric cell is a key step in the physiopathology of Helicobacter pylori infection. There are several outer membrane proteins involved in the adherence that are expressed in a sequential fashion, meanwhile the attachment to the host cell takes place. Currently, the adhesins AlpA, AlpB and HorB have attracted the attention because of i) its role in the adherence, ii) The differential activation of intracellular pathways in the gastric host epithelial cell between Asian and European strains and iii) in its role in the fitness according to gene deletion studies. It is largely known that H. pylori have a global distribution with regional divergent populations that have evolved following host conditions. Here, it was indentified that the evolutionary history of alpA, alpB and HorB adhesins followed a birth and death evolution model under purifying selection in which the deleterious mutations have been actively purged from the population allowing the fixation of beneficial changes for the fitness. It was detected based on permutation tests that H. pyloriÂ´s populations from America-Europe (FsT0.51395.) and Asia-Europe (FsT 0.46030) for alpA and the populations from America-Europe (FsT 0.43711) for alpB present a significant genetic differentiation mediated by positive selection as suggest by the MKT test results. Finally, it was found using PAML that a 9.51% of alpA, a 8.5% of alpB and a 5% of HorB proteins evolved under strong specific positive selection following linage specific geographic patterns.]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[Adhesión]]></kwd>
<kwd lng="es"><![CDATA[locus AlpAB]]></kwd>
<kwd lng="es"><![CDATA[selección positiva]]></kwd>
<kwd lng="es"><![CDATA[hipótesis de la reina roja]]></kwd>
<kwd lng="es"><![CDATA[coevolución]]></kwd>
<kwd lng="en"><![CDATA[Adhesion]]></kwd>
<kwd lng="en"><![CDATA[AlpAB locus]]></kwd>
<kwd lng="en"><![CDATA[molecular evolution]]></kwd>
<kwd lng="en"><![CDATA[positive selection]]></kwd>
<kwd lng="en"><![CDATA[Red Queen hypothesis]]></kwd>
<kwd lng="en"><![CDATA[coevolution]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <html> <head><title>REVISTA 2013-1.indb</title> </head> <font size="2" face="Verdana">     <p align="right"><b>CIENCIAS DE LA SALUD-Art&iacute;culo Cient&iacute;fico</b></p>     <p align="center"><b>AN&Aacute;LISIS EVOLUTIVO DE LA ADHESI&Oacute;N: EVIDENCIA DE SELECCI&Oacute;N POSITIVA OPERANTE  SOBRE EL LOCUS  AlpAB Y EL GEN horB DE <i>Helicobacter pylori</i></b></p>     <p align="center"><b>MOLECULAR EVOLUTIONARY ANALYSIS OF ADHERENCE: EVIDENCE OF POSITIVE SELECTION OPERATING ON AlpAB LOCUS  AND horB ADHESINS OF <i>Helicobacter pylori</i></b></p>     <p><b>Andr&eacute;s Juli&aacute;n Guti&eacute;rrez-Escobar<sup>1</sup></b></p>     <p><sup>1</sup>Bi&oacute;logo,  Maestr&iacute;a en Ciencias B&aacute;sicas  M&eacute;dicas. Docente  Investigador  Facultad  de Medicina U.D.C.A, Coordinador Laboratorio de Biolog&iacute;a Molecular, Grupo de Ciencias B&aacute;sicas  y Gen&eacute;tica  Humana Aplicada (GIBGA). Universidad de Ciencias Aplicadas y Ambientales U.D.C.A, Bogot&aacute;,  Colombia. E-mail: <a href="mailto:andresgutierrez@colombia.com">andresgutierrez@colombia.com</a></p>     <p>Rev. U.D.C.A Act. &amp; Div. Cient. 16(1): 3 - 15, 2013</p> <hr>     <p><b>RESUMEN</b></p>     <p>  La adherencia es un proceso  clave para la infecci&oacute;n por <i>Helicobacter  pylori</i>,  regulada  por la expresi&oacute;n  coordinada de adhesinas. Dentro de este grupo encontramos las prote&iacute;nas  AlpA/B y HorB que, recientemente, han llamado la atenci&oacute;n  de la comunidad cient&iacute;fica, por su papel  en el fitness de la bacteria.  El objetivo del presente  estudio fue describir la historia evolutiva de AlpA/B y HorB, desde  un enfoque  filogeogr&aacute;fico. Para este fin, se descargaron secuencias espec&iacute;ficas para AlpA, AlpB y HorB desde Uniprot y fueron analizadas en Muscle, Mega 5.1, PhyML 3.0.1,  DNAsp 5.0 y PAML 4.5. En este estudio,  se identific&oacute; que los genes <i>alpA, alpB </i>y <i>horB </i>siguen  un modelo  evolutivo de nacimiento y de muerte  de genes,  bajo  selecci&oacute;n  purificadora.  Adem&aacute;s,  se  detectaron patrones de diferenciaci&oacute;n  gen&eacute;tica  significativos para alpA, entre  las  poblaciones de  Am&eacute;rica-Europa  (FsT 0,51395)  y de Europa-Asia (FsT 0,46030)  y para alpB, entre las poblaciones de Am&eacute;rica-Europa  (FsT 0,43711), datos  soportados por  la prueba  McDonald  y Kreitman.  Seguidamente, mediante la herramienta PAML 4.5, se detect&oacute;  que un 9,51% de la prote&iacute;na  AlpA, un 8,5% de la prote&iacute;na  AlpB y un 5% de la prote&iacute;na HorBest&aacute;n  bajo selecci&oacute;n positiva, determinando la presencia  de linajes selectivos de <i>H. pylori </i>para zonas geogr&aacute;ficas espec&iacute;ficas, que favorecen la adherencia al hospedero. Finalmente, se concluye que los genes  codificantes  para las adhesinas AlpAB y HorB tienen procesos de adaptaci&oacute;n locales  correlacionados con  los or&iacute;genes  filogeogr&aacute;ficos de las cepas analizadas.</p>     <p><b>  Palabras  clave:</b> Adhesi&oacute;n,  locus  AlpAB, selecci&oacute;n  positiva, hip&oacute;tesis de la reina roja, coevoluci&oacute;n.</p> <hr>     ]]></body>
<body><![CDATA[<p><b>SUMMARY</b></p>     <p>The adherence to the epithelial gastric cell is a key step in the physiopathology  of <i>Helicobacter  pylori </i>infection. There are several outer membrane proteins  involved in the adherence that are expressed  in a sequential  fashion, meanwhile the attachment to the host cell takes place. Currently, the adhesins  AlpA, AlpB and  HorB have attracted the attention  because of i)  its role in the  adherence, ii) The differential activation of intracellular pathways in the gastric host epithelial cell between  Asian and  European  strains  and  iii) in its role in the fitness according  to gene deletion studies. It is largely known that <i>H. pylori </i>have a global distribution with regional divergent populations  that have evolved following host conditions.  Here, it was indentified that the evolutionary history of alpA, alpB and  HorB adhesins  followed a birth and  death  evolution model under purifying selection in which the deleterious mutations have been actively purged  from the population  allowing the fixation of beneficial changes for the fitness. It was detected based on permutation tests that <i>H. pyloriÂ´</i>s populations from America-Europe  (FsT0.51395.) and  Asia-Europe (FsT 0.46030)  for alpA and  the populations  from America-Europe (FsT 0.43711)  for alpB present  a significant genetic differentiation mediated  by positive selection  as suggest  by the MKT test  results.  Finally, it was found  using  PAML that a 9.51% of alpA, a 8.5% of alpB and a 5% of HorB proteins evolved  under  strong   specific  positive  selection  following linage specific geographic patterns.</p>     <p><b>  Key  words:</b>  Adhesion,  AlpAB locus,  molecular   evolution, positive selection,  Red Queen  hypothesis,  coevolution.</p> <hr>     <p><b>INTRODUCCI&Oacute;N</b></p>     <p>Helicobacter  pylori es una bacteria Gram-negativa que hace parte de la microbiota normal del est&oacute;mago humano (Bik <i>et al.</i> 2006), ya que no siempre desarrolla un proceso  infeccioso (Mbulaiteye <i>et al.</i> 2009); sin embargo, cuando  se presenta  una infecci&oacute;n activa, se asocia con &uacute;lcera, con gastritis y con c&aacute;ncer  g&aacute;strico (Blaser <i>et al.</i> 1995).</p>     <p>La mucosa g&aacute;strica  es un nicho hostil y cambiante para  la mayor&iacute;a  de pat&oacute;genos bacterianos; no obstante, las bacterias del g&eacute;nero <i>Helicobacter </i>han logrado adaptarse por medio de la regulaci&oacute;n  de la respuesta inflamatoria del hospedero (Algood &amp; Cover, 2006;  Kusters <i>et al</i>. 2006) y por sus caracter&iacute;sticas evolutivas.</p>     <p>  Las poblaciones de <i>H. pylori </i>se caracterizan  por ser gen&eacute;ticamente diversas,  evidenciar ritmos  de evoluci&oacute;n r&aacute;pidos, ser recombinantes, estar  geogr&aacute;ficamente aisladas  siguiendo el patr&oacute;n de las migraciones humanas y presentar  modos  de trasmisi&oacute;n  intrafamiliares (Achtman <i>et al. </i>1999; Falush <i>et al. </i>2003; Kersulyte <i>et al</i>. 2000; Suerbaum <i>et al. </i>1998). Estas caracter&iacute;sticas han  ocasionado que  las cepas  evolucionen como  linajes espec&iacute;ficos  en regiones  geogr&aacute;ficas  particulares  (Falush <i>et  al. </i>2003);  es  as&iacute;, como  se  han  identificado cepas  t&iacute;picas para  &Aacute;frica, Europa,  Asia y Am&eacute;rica, con  correlaciones  cl&iacute;nicas diferenciales (Liu <i>et al</i>. 2005; Covacci <i>et al. </i>1999).</p>     <p>  La prevalencia  de la infecci&oacute;n y la especificidad  regional de las cepas sugieren que <i>H. pylori </i>coevoluciona  con su hospedero (Algood &amp; Cover, 2006), por tanto,  es factible plantear que los genes  importantes para el &eacute;xito reproductivo  de las poblaciones del pat&oacute;geno evolucionan  bajo selecci&oacute;n  positiva (Covacci <i>et al</i>. 1999).  Ejemplos  claros  de este  tipo de genes  son  los factores  de  virulencia cagA (Delgado <i>et  al</i>.  2011), vacA, BabA, OpiA, SabA (Torres <i>et al</i>. 2010) y genes  similares a Sel1 (Masako <i>et al</i>. 2007).</p>     <p>  Algunos de los procesos bacterianos que mayor relaci&oacute;n tienen con el &eacute;xito reproductivo (fitness) son la adherencia y la colonizaci&oacute;n  a la c&eacute;lula  epitelial hospedera. La adherencia de <i>H. pylori </i>a la c&eacute;lula epitelial g&aacute;strica  es importante en la colonizaci&oacute;n del tejido, adem&aacute;s, de participar en la respuesta inmune,  tanto  celular como  humoral  (Evans <i>et al</i>. 2000; Odenbreit,  2005).</p>     <p>De hecho,  la expresi&oacute;n  de factores  proinflamatorios,  como  la IL-8, requiere  de este  contacto inicial, entre  la bacteria  y la c&eacute;lula blanco (Aihara <i>et al</i>. 1997). A la fecha, se han descrito un n&uacute;mero  de adhesinas, incluyendo BabA (Ilver <i>et al</i>.  1998),  SabA (Mahdavi <i>et  al. </i>2002),  OipA (Yamaoka <i>et  al</i>.  2000), HopZ (Peck <i>et al</i>. 1999), AlpA/AlpB (Odenbreit <i>et al</i>.  1999; 2002) y HorB (Snelling <i>et al</i>. 2007).</p>     ]]></body>
<body><![CDATA[<p>  Dentro  del  grupo  de  las  adhesinas existen  tres  prote&iacute;nas:  AlpA, AlpB y HorB, cuya funci&oacute;n ha sido caracterizada y estudiada en diferentes modelos  experimentales. Las dos primeras conforman un oper&oacute;n  y codifican para  adhesinas, cuya actividad ha sido probada  en cortes  de tejido embebido en parafina, en cultivo celular, en modelo  animal y en muestras de origen humano (Odenbreit <i>et al. </i>1999).  Recientemente, se  ha  identificado  que  la laminina,  propia  de  la matriz extracelular  del tejido g&aacute;strico,  es  el receptor  para  estas  dos adhesinas (Senkovich <i>et al</i>. 2011).</p>     <p>  Por otra  parte,  se ha demostrado el papel  del locus  AlpAB en  la adhesi&oacute;n  a la mucosa g&aacute;strica  y en  la expresi&oacute;n  de interleucinas  del hospedero (Odenbreit <i>et al. </i>1999; Lu <i>et al</i>.  2007).  En estos  trabajos,  se  demostr&oacute; que  la deleci&oacute;n  de estos genes  reduce  la expresi&oacute;n de IL-6 en c&eacute;lulas epiteliales g&aacute;stricas y, adem&aacute;s, que la reducci&oacute;n  de la expresi&oacute;n de IL-8 es  dependiente del origen  filogeogr&aacute;fico  de  las cepas,  observ&aacute;ndose una  diferencia significativa entre  cepas  del este asi&aacute;tico  y cepas  del oeste,  lo que  se conoce, actualmente, como la hip&oacute;tesis este-oeste (Lu <i>et al</i>. 2007).</p>     <p>  Las adhesinas AlpAB activan v&iacute;as de se&ntilde;alizaci&oacute;n intracelular, mediada por quinasas, c-Fos  y la prote&iacute;na  de  respuesta al AMP c&iacute;clico; sin embargo, la activaci&oacute;n del N-terminal de la quinasa Jun, c-jun y el NFkapaB fue exclusiva para las cepas  del este asi&aacute;tico.  Estos resultados  sugieren  que la variaci&oacute;n geogr&aacute;fica  de estas  adhesinas se puede  relacionar  con  las prevalencias  observadas de  c&aacute;ncer  g&aacute;strico,  debido  a  los efectos  diferenciales  observados sobre  la c&eacute;lula epitelial en cepas  del este  y del oeste,  adem&aacute;s de procesos evolutivos, a nivel molecular,  que a&uacute;n no han sido descritos  para AlpAB (Kwong &amp; Tiing, 2010). Finalmente, se ha determinado que HorB, adem&aacute;s de ser una adhesina, es un factor de colonizaci&oacute;n importante para la bacteria (Snelling <i>et al</i>. 2007).</p>     <p>  Derivado de los estudios  anteriores,  se sabe que la deleci&oacute;n de  los genes  alpA, alpB y HorB provoca  una  disminuci&oacute;n significativa (entre el 60 al 70%) en la capacidad de adhesi&oacute;n  del microorganismo a la c&eacute;lula hospedera, hecho que indica que estas enzimas son importantes para el &eacute;xito reproductivo del pat&oacute;geno y quiz&aacute;s su ausencia podr&iacute;a limitar la supervivencia de la bacteria;  no obstante, a la fecha,  los procesos evolutivos que dan forma a los representantes modernos de estas tres prote&iacute;nas para los diferentes linajes de <i>H. pylori</i>, se desconocen (Kwong &amp; Tiing, 2010).</p>     <p>  Es por esto que en el presente  estudio,  se investig&oacute; la din&aacute;mica evolutiva y poblacional  de los genes  alpA, alpB y HorB de <i>H. pylori</i>, a partir de cepas  representantes de diferentes regiones geogr&aacute;ficas.  Se aplicaron modelos  evolutivos de secuencias basados en codones en conjunci&oacute;n  con  modelos  de m&aacute;xima verosimilitud y se analizaron las relaciones  entre polimorfismos  espec&iacute;ficos y sus implicaciones evolutivas. Se demostr&oacute; que  los tres  genes  presentan clara  evidencia  de una fuerte selecci&oacute;n  positiva operante, lo que indica que la capacidad de adhesi&oacute;n  a la c&eacute;lula hospedera evoluciona de manera independiente y local para cada regi&oacute;n geogr&aacute;fica.</p>     <p><b>MATERIALES Y M&Eacute;TODOS</b></p>     <p>En el presente  trabajo,  se sigui&oacute; la metodolog&iacute;a propuesta por Delgado <i>et al</i>. (2011), pero con algunas  modificaciones leves. Brevemente,  se realiz&oacute; Blast (Altschul <i>et al</i>. 1997), en la base  de datos  Uniprot, con las siguientes  secuencias semilla: O25570, para  AlpA; O25595, para  AlpB y O24941, para  HorB  de  la cepa  26695,   contra  genomas representantes  de  diferentes  poblaciones humanas, as&iacute;: &Aacute;frica J99  NC_000921;   SouthAfrica7  NC_017361.1;   Gambia   94/24  NC_017371.1;    Am&eacute;rica:   Cuz20      NC_017358.1;    Shi470  NC_010698, V225d CP001582; Europa: 26695 NC_000915,  HPGA1 NC_008086, P12 CP001217, G27 NC_011333; Asia: F16  NC_017368.1, 35A NC_017360.1, 51 NC_017382.1 e India7 NC_017372.1.</p>     <p>  Las secuencias de los genomas, se eligieron seg&uacute;n  la epidemiolog&iacute;a  molecular,  revisada en Suzuki <i>et al</i>. (2012). Las secuencias hom&oacute;logas identificadas  fueron  alineadas   con Muscle (Edgar, 2004), usando condiciones por defecto.  Los alineamientos fueron inspeccionados visualmente  y los formatos  finales para los an&aacute;lisis evolutivos, se obtuvieron con Seaview (Gouy e<i>t al</i>. 2010) y Jalview (Clamp <i>et al</i>. 2004).</p>     <p>  Seguidamente, se us&oacute; Jmodeltest (Posada, 2008), para identificar el modelo evolutivo que mejor explicaba el alineamiento de ADN. Se us&oacute; el programa DNAsp5.0 (Librado &amp; Rozas,  2009),  para  realizar las  pruebas:   MKT McDonald-Kreitman, Permutaci&oacute;n (FsT bajo 50000  r&eacute;plicas) y de recombinaci&oacute;n. Finalmente, se aplic&oacute; MEGA 5.1 (Tamura <i>et al</i>. 2011), para la prueba Tajima (Tajima, 1989) y la prueba Z (Zhang <i>et al</i>. 1998).</p>     <p>  Para  la reconstrucci&oacute;n filogen&eacute;tica,  se  utiliz&oacute; PhyML 3.0.1 (Guindon <i>et  al</i>.  2010),  estimando  las  opciones   Ts/Tv,  la proporci&oacute;n  de sitios no variables y la distribuci&oacute;n  Gamma;  la robustez  estad&iacute;stica, se obtuvo mediante  1000  repeticiones  Bootstrap.  Los &aacute;rboles  filogen&eacute;ticos  se  visualizaron en la herramienta Njplot (Perri&egrave;re &amp; Gouy, 1996); las filogenias tambi&eacute;n  se desarrollaron  por medio  del m&eacute;todo  NeighborJoining  (Saitou  &amp; Nei, 1987),  bajo  el modelo  de  distancia GTR, con 1000 repeticiones  Bootstrap,  aplicando MEGA 5.1 (Tamura <i>et al</i>. 2011).</p>     ]]></body>
<body><![CDATA[<p>  Para el an&aacute;lisis de selecci&oacute;n positiva los alineamientos fueron analizados  usando el m&oacute;dulo  codeml  del programa PAML  4.5 (Yang, 2007).  Se emple&oacute;  el &aacute;rbol descrito  en la reconstrucci&oacute;n  filogen&eacute;tica,  adem&aacute;s del generado por el servidor selecton  (Stern <i>et  al. </i>2007),  bajo  el modelo  M8a. Para  el an&aacute;lisis de selecci&oacute;n positiva, se emplearon las metodolog&iacute;as propuestas por Yang <i>et al</i>. 2005;  2000;  Yang  &amp; Swanson,  2002; Yang, 1998; Yang &amp; Nielsen, 2002; Zhang <i>et al</i>. 2005,  utilizadas para el an&aacute;lisis de genes  de <i>H. pylori</i>. Se emplearon  los modelos  evolutivos M0 (Neutral), M1 (casi neutral), M2 (selecci&oacute;n),  M3 (distribuci&oacute;n  discreta),  M7 (distribuci&oacute;n beta) y M8 (distribuci&oacute;n  beta,  p y q). Se asumi&oacute;  un valor &omega; similar para cada  rama  del &aacute;rbol, pero se permiti&oacute; variaci&oacute;n entre codones individuales de los genes,  para medir la heterogeneidad de la variaci&oacute;n de las presiones  selectivas.</p>     <p>  Se realiz&oacute; la prueba <i>Likelihood  ratio test </i>usando la herramienta Jmodel  test. Se compararon los modelos  M0/M1/M7 que no detectan sitios bajo la condici&oacute;n &omega; &gt; 1 (selecci&oacute;n positiva), con los modelos  M2/M3/M8 que s&iacute; lo permiten;  cada an&aacute;lisis fue repetido tres veces con diferentes valores in&iacute;ciales &omega;, para evitar problemas de &oacute;ptimos  locales. Las comparaciones, se desarrollaron  usando una distribuci&oacute;n <i>X</i>2, bajo las indicaciones  de Delgado <i>et al</i>. (2011) y las instrucciones de los desarrolladores de PAML 4.5.  Todos  los sitios con valores &omega; &gt; 1 se consideraron bajo selecci&oacute;n positiva. El mismo procedimiento, se llev&oacute; a cabo para cada subgrupo de genes  correspondientes a regiones  geogr&aacute;ficas  espec&iacute;ficas.</p>     <p><b>RESULTADOS Y DISCUSI&Oacute;N</b></p>     <p><b>An&aacute;lisis  filogen&eacute;tico y  poblacional   de  los  genes alpA, alpB y HorB de H. pylori: </b>La reconstrucci&oacute;n filogen&eacute;tica de los genes alpA, alpB y HorB replica, de manera  relativamente fiel, la filogenia aceptada para <i>H. pylori </i>(Suzuki <i>et al</i>. 2012), logrando agrupar  las cepas  seg&uacute;n  origen  geogr&aacute;fico,  con valores bootstrap significativos. En los &aacute;rboles,  se observan m&uacute;ltiples eventos de duplicaci&oacute;n (flechas) de genes, que dieron origen  a los representantes modernos, con  una  mayor acumulaci&oacute;n de cambios  sin&oacute;nimos  que de cambios  no sin&oacute;nimos  (alpApS = 0,081  y pN = 0,0031,  alpBpS =0.1007 y pN = 0,0283,  HorBpS= 0.0890  y pN=  0,0082),  por lo que se puede  sugerir que estas  adhesinas siguen  un modelo  de evoluci&oacute;n  de  nacimiento y muerte  de  genes,  mediado  por procesos de selecci&oacute;n purificadora (<a href="#f1">Figura 1</a>).</p>     <p><a name="f1"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02f1.jpg"></p>     <p>  Los resultados  de la prueba  Tajima (D) son  negativos  para los  tres  genes,  indicando  una  expansi&oacute;n  poblacional  con una baja frecuencia de polimorfismo, similar a lo que sucede  despu&eacute;s de eventos selectivos, como cuellos de botella y que es  concordante con  procesos de selecci&oacute;n  purificadora,  lo cual,  fue identificado  con  la prueba  Z, que  confirm&oacute;  estos datos (<a href="#t1">Tabla 1</a>).</p>     <p><a name="t1"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02t1.jpg"></p>     <p>Bajo  este  mobdoeoltostreavpolmutaivyoo,resseae5li0m%inyan&aacute;rbaolelelosscodnelseetn&eacute;rseoo. s con efectos negativos para el "fitness" de las poblaciones del pat&oacute;geno, lo que genera un espacio selectivo para la fijaci&oacute;n de mutaciones ben&eacute;ficas.  De esta manera, se podr&iacute;a sugerir que  la capacidad de adherencia a la c&eacute;lula hospedera por parte de <i>H. pylori, </i>mediada por los genes alpA, alpB y HorB, est&aacute; bajo un constante proceso  de adaptaci&oacute;n y de mejoramiento, en relaci&oacute;n con su hospedero.</p>     ]]></body>
<body><![CDATA[<p>Recientemente, se  identificaron  marcadas diferencias  funcionales entre cepas del este y del oeste de <i>H. pylori </i>con respecto a la activaci&oacute;n de se&ntilde;ales proinflamatorias  en la c&eacute;lula hospedera, mediadas por el locus AlpAB (Lu <i>et al</i>. 2007), lo que sugiere la existencia de eventos selectivos variables entre cepas de diferentes regiones del globo. Los resultados  de los an&aacute;lisis de permutaci&oacute;n permitieron detectar  diferencias significativas para alpA entre las poblaciones de Am&eacute;rica-Europa (FsT 0,  51395)  y de  Europa-Asia  (FsT 0,46030);  adem&aacute;s,  tambi&eacute;n  se reporta,  por primera  vez, una  diferencia  significativa para  el gen  alpB, entre  las poblaciones de Am&eacute;rica- Europa (FsT 0,43711)  (<a href="#t2">Tabla 2A</a>).</p>     <p><a name="t2"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02t2.jpg"></p>     <p>  Con el an&aacute;lisis de   los genes  con la prueba  de McDonald y  Kreitman,  se  logr&oacute;  identificar, por  primera  vez, que  las diferencias  observadas por  el test  de  permutaci&oacute;n entre  las poblaciones de Am&eacute;rica-Europa  y de Europa-Asia para alpA y  entre  las poblaciones de  Am&eacute;rica-Europa  para  alpB han ocurrido  por  eventos  de  selecci&oacute;n  direccional  o  selecci&oacute;n positiva (<a href="#t2">Tabla 2B</a>).</p>     <p><b>Eventos  de selecci&oacute;n positiva:  Panorama mundial y por linajes regionales: </b>Los modelos  selectivos M2 y M3 lograron detectar  sitios bajo selecci&oacute;n positiva; sin embargo, su poder predictivo se afecta en casos de recombinaci&oacute;n, proceso  que es muy com&uacute;n  en <i>H. pylori </i>y que ocurre  en los tres genes  estudiados en el presente  estudio (<a href="#t1">Tabla 1</a>). Por este motivo,  se emple&oacute;  el modelo  M8, cuyo valor predictivo no se afecta por recombinaci&oacute;n (Yang, 2007).  Es importante aclarar que solamente se muestran los residuos  bajo selecci&oacute;n  positiva identificados  por el modelo,  que mejor explica la evoluci&oacute;n de las secuencias, despu&eacute;s de aplicar la prueba  LRT (Likeli- hood Radio Test) (<a href="#t3">Tabla 3</a>).</p>     <p><a name="t3"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02t3.jpg"></p>     <p>  A nivel poblacional, los an&aacute;lisis realizados con la herramienta PAML indican  que  el 9,51% del gen  alpA, el 8,5% del gen alpB y el 5% del gen  est&aacute;n  bajo selecci&oacute;n  positiva, lo cual, es  significativo si se  comparan con  los estudios  realizados para la regi&oacute;n 3Â´ del gen <i>cag </i>con solamente un 6,95% o de la regi&oacute;n central de <i>babA</i>, con un 9,4% (Masako <i>et al</i>. 2007); esto sugiere que un porcentaje  significativo de las prote&iacute;nas  est&aacute;n  siendo seleccionadas en las poblaciones estudiadas.</p>     <p>  Hace  poco  tiempo,  se  determin&oacute;  que  la laminina  es  el ligando  para las adhesinas AlpAB; sin embargo, esta prote&iacute;na es de expresi&oacute;n constitutiva en el humano y, a diferencia de otras adhesinas, como BabA que tiene un receptor  de expresi&oacute;n inducible, la interacci&oacute;n  receptor  ligando puede  no ser  la causa  directa del tipo de selecci&oacute;n natural (selecci&oacute;n positiva), operante sobre el locus. Recientemente, se ha identificado que las prote&iacute;nas  AlpA, AlpB y HorB son inmunodominantes  y quiz&aacute;s es uno de los factores que est&aacute; produciendo la carrera adaptativa  entre <i>H. pylori </i>y su hospedero.</p>     <p>  Estos  resultados   son  inquietantes, debido  a  que  sugieren  que  estas  tres adhesinas tienden  a ser mega  diversas  a nivel  poblacional  y, adem&aacute;s, est&aacute;n  bajo  constante selecci&oacute;n positiva, lo que, probablemente, genere  fenotipos adhesivos  m&aacute;s virulentos y especializados, connotando un nuevo papel de la adhesi&oacute;n  en la diferenciaci&oacute;n  local o regional de cepas  (<a href="#t4">Tabla 4</a>).</p>     ]]></body>
<body><![CDATA[<p><a name="t4"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02t4.jpg"></p>     <p>Seguidamente, los an&aacute;lisis  de  selecci&oacute;n  positiva realizados sobre las diferentes  regiones  geogr&aacute;ficas  del gen <i>alpA</i>, indican que cada una presenta  su propia l&iacute;nea evolutiva con m&uacute;ltiples sitios bajo selecci&oacute;n  positiva, lo cual, sugiere y afianza los resultados  arriba descritos de que los procesos selectivos son  altamente locales  y especializados  para  con  esta  enzima,  constituy&eacute;ndose quiz&aacute;s no solamente como  un nuevo indicador de la virulencia, sino tambi&eacute;n,  como  un marcador diferenciador de cepas,  a nivel local para las regiones.</p>     <p>Para el gen <i>alpB</i>,  no se detectaron eventos  selectivos para los representantes del linaje africano, pero s&iacute; se identificaron residuos  bajo selecci&oacute;n  positiva para  los linajes americano, asi&aacute;tico y europeo, respectivamente. Los eventos selectivos son particularmente intensos para el linaje asi&aacute;tico, mostrando m&uacute;ltiples sitios bajo selecci&oacute;n  positiva, lo que  quiz&aacute;s se pueda  correlacionar  con las prevalencias de c&aacute;ncer g&aacute;strico, halladas en la regi&oacute;n. Finalmente, cabe mencionar que aunque se identificaron &uacute;nicamente tres residuos  bajo selecci&oacute;n en los linajes africanos  y asi&aacute;ticos  para el gen <i>horB</i>, &eacute;ste es importante para el fitness de la especi, porque  se constituye en un blanco terap&eacute;utico ideal (<a href="#t5">Tabla 5</a>).</p>     <p><a name="t5"></a></p>    <p align="center"><img src="img/revistas/rudca/v16n1/v16n1a02t5.jpg"></p>     <p><b>S&iacute;ntesis evolutiva de la adhesi&oacute;n mediada por el locus AlpAB y HorB:</b> El modo  de evoluci&oacute;n bajo selecci&oacute;n  purificadora purga fenotipos delet&eacute;reos en t&eacute;rminos  de la adhesi&oacute;n  a la c&eacute;lula hospedera y, por ende,  deja un nicho disponible para  aquellos  fenotipos  con  mejor  capacidad de reconocimiento  del hospedero. En  el presente   estudio,  se  sugiere que  se  pueden  estar  generando variantes  locales  del pat&oacute;geno  con patrones de adaptaci&oacute;n regional, en t&eacute;rminos  de la adherencia, que son  mediados por eventos  de selecci&oacute;n positiva sobre locus AlpAB y HorB, que benefician el fitness de las poblaciones del pat&oacute;geno; estos cambios  son diferencialmente locales, significando que las cepas de cada regi&oacute;n geogr&aacute;fica evolucionan de manera  independiente y, posiblemente,  presentan un patr&oacute;n de adhesi&oacute;n  propio, efecto que necesita  ser evaluado con mayor profundidad.</p>     <p>  El locus AlpAB y el gen <i>HorB </i>est&aacute;n  siendo  perfeccionados al interactuar  con factores  del hospedero que,  posiblemente,  tambi&eacute;n  est&aacute;n  evolucionando  bajo  presiones  evolutivas locales,  estableciendo, de  esta  manera, una  competencia o  carrera  coevolutiva entre  pat&oacute;geno y hospedero, ya que ambas especies  presentan una velocidad diferencial adaptativa, en la que el pat&oacute;geno persigue  a su hospedero, que se podr&iacute;a explicar bajo la hip&oacute;tesis  coevolutiva de la reina roja (Woolhouse <i>et al</i>. 2002).</p>     <p><b>Agradecimientos: </b>Agradezco al Doctor  Juan  Carlos Morales, al Doctor  Carlos Barrag&aacute;n  y al Doctor  Martin Bayona, por sus valiosos aportes,  tanto te&oacute;ricos como  de estilo, para la consecuci&oacute;n del presente  trabajo. <u>Conflicto de intereses</u>: El manuscrito fue preparado y revisado  por el autor,  quien declara que no existe ning&uacute;n conflicto de inter&eacute;s que ponga  en riesgo la validez de los resultados  presentados. <u>Financiaci&oacute;n</u>:  Este  estudio  es  parte  de  una  investigaci&oacute;n  en  curso aprobada y financiada por la Universidad de Ciencias Aplicadas y Ambientales U.D.C.A, en agosto  de 2012.</p>     <p><b>BIBLIOGRAF&Iacute;A</b></p>     ]]></body>
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