<?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>0253-570X</journal-id>
<journal-title><![CDATA[Revista de Salud Animal]]></journal-title>
<abbrev-journal-title><![CDATA[Rev Salud Anim.]]></abbrev-journal-title>
<issn>0253-570X</issn>
<publisher>
<publisher-name><![CDATA[Centro Nacional de Sanidad Agropecuaria]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0253-570X2007000100010</article-id>
<title-group>
<article-title xml:lang="es"><![CDATA[MODELACIÓN POR HOMOLOGÍA DE LA CATEPSINA B DE Fasciola hepatica]]></article-title>
<article-title xml:lang="en"><![CDATA[COMPARATIVE PROTEIN STRUCTURE MODELLING OF CATHEPSIN B FROM Fasciola hepatica]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Naranjo]]></surname>
<given-names><![CDATA[D]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Díaz de Arce]]></surname>
<given-names><![CDATA[Heydi]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Pérez]]></surname>
<given-names><![CDATA[E]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Valiente]]></surname>
<given-names><![CDATA[P.A]]></given-names>
</name>
<xref ref-type="aff" rid="A03"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Carrasco]]></surname>
<given-names><![CDATA[R]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Martínez]]></surname>
<given-names><![CDATA[Siomara]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Centro Nacional de Sanidad Agropecuaria (CENSA) Laboratorios de Biología Molecular Virología Animal]]></institution>
<addr-line><![CDATA[La Habana ]]></addr-line>
<country>Cuba</country>
</aff>
<aff id="A02">
<institution><![CDATA[,Centro de Química Farmacéutica (CQF)  ]]></institution>
<addr-line><![CDATA[La Habana ]]></addr-line>
<country>Cuba</country>
</aff>
<aff id="A03">
<institution><![CDATA[,Universidad de La Habana Facultad de Biología ]]></institution>
<addr-line><![CDATA[Ciudad de La Habana ]]></addr-line>
<country>Cuba</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>04</month>
<year>2007</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>04</month>
<year>2007</year>
</pub-date>
<volume>29</volume>
<numero>1</numero>
<fpage>58</fpage>
<lpage>64</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://scielo.sld.cu/scielo.php?script=sci_arttext&amp;pid=S0253-570X2007000100010&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://scielo.sld.cu/scielo.php?script=sci_abstract&amp;pid=S0253-570X2007000100010&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://scielo.sld.cu/scielo.php?script=sci_pdf&amp;pid=S0253-570X2007000100010&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[Se aborda la modelación por homología de una proteína que puede ser blanco potencial en la terapia de la fasiolosis. La catepsina B de Fasciola hepatica es una cisteína proteasa de excreción-secreción presente en los estadios juveniles del parásito. En una primera fase de este estudio proponemos un modelo tridimensional por homología de la catepsina B, utilizando como moldes catepsinas B de humano y rata (1PBH, 2PBH y 3PBH, 1MIR) del PDB (protein data bank). Se chequeó su calidad por el WHAT IF y se obtuvo una energía final total de -6750.96 KJ/mol por el campo de fuerza GROMOS96. Además se identificaron su sitio activo (Cys 104, His 275, Asn 295) y los aminoácidos que lo estabilizan por puentes de hidrógeno (Val 107, Phe 250, Gly 302), así como se predijo su estructura secundaria. El modelo tridimensional puede emplearse para realizar tamizaje virtual utilizando programas de docking y bases de datos de compuestos químicos virtuales del tipo "aceptores de Michael".]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[Cathepsin B was selected as a possible new therapeutic target of Fasciola hepatica. This is a cystein excretion protease present in the early phases of the parasite. First, we propose a three-dimensional model by homology of the cathepsin B of F.hepatica, by using as templates cathepsins B of human and rat (1PBH, 2PBH and 3PBH, 1MIR) from PDB (protein data bank). Its quality was checked by WHAT IF and a total final energy was -6750.96 KJ/mol as measure by GROMOS96. The active site (Cys 104, His 275, Asn 295) and amino acids involved in its stabilization by hydrogen bonds (Val 107, Phe 250, Gly 302), were identified. Also its secondary structure was predicted. The three-dimensional model could be employed in order to perform virtual screening by means of docking programs and data bases of virtual chemical compounds of the type "Michael acceptors".]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[Fasciola hepatica]]></kwd>
<kwd lng="es"><![CDATA[catepsina B]]></kwd>
<kwd lng="es"><![CDATA[modelación por homología]]></kwd>
<kwd lng="es"><![CDATA[PDB]]></kwd>
<kwd lng="en"><![CDATA[Fasciola hepatica]]></kwd>
<kwd lng="en"><![CDATA[cathepsin B proteases]]></kwd>
<kwd lng="en"><![CDATA[comparative protein structure modelling]]></kwd>
<kwd lng="en"><![CDATA[protein data bank]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[ <div align="right"><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><B>Comunicaci&oacute;n    corta </B></font><B> </B></div> <B>     <P>     <P>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="4">MODELACI&Oacute;N    POR HOMOLOG&Iacute;A DE LA CATEPSINA B DE <I>Fasciola hepatica</I></font><font face="Verdana, Arial, Helvetica, sans-serif" size="2">    </font>     <P>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b><font size="3">COMPARATIVE    PROTEIN STRUCTURE MODELLING OF CATHEPSIN B FROM <i>Fasciola hepatica </i></font></b></font>     <P>     <P>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">D. Naranjo*, Heydi    D&iacute;az de Arce *, E. P&eacute;rez*, P.A. Valiente***, R.Carrasco<I>*</I>*    y Siomara Mart&iacute;nez*</font> </B>      <P> <font face="Verdana, Arial, Helvetica, sans-serif" size="2"><I>Laboratorios    de Biolog&iacute;a Molecular* y Virolog&iacute;a Animal*, Centro Nacional de    Sanidad Agropecuaria (CENSA), Apartado 10, San Jos&eacute; de las Lajas, La    Habana, Cuba. Correo electr&oacute;nico: dany@censa.edu.cu; **Centro de Qu&iacute;mica    Farmac&eacute;utica<B> </B>(CQF), C.P. 11600, Apartado 16042, Rpto. Atabey,    Ave. 21 &amp; Calle 200, La Habana, Cuba; ***Facultad de Biolog&iacute;a, Universidad    de La Habana, Calle 25, No. 455, Vedado, Ciudad de La Habana, Cuba </I></font>     ]]></body>
<body><![CDATA[<P>     <P>  <hr noshade size="1">     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><B>RESUMEN</B></font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Se aborda la modelaci&oacute;n    por homolog&iacute;a de una prote&iacute;na que puede ser blanco potencial en    la terapia de la fasiolosis<I>.</I> La catepsina B de <I>Fasciola hepatica</I>    es una ciste&iacute;na proteasa de excreci&oacute;n-secreci&oacute;n presente    en los estadios juveniles del par&aacute;sito. En una primera fase de este estudio    proponemos un modelo tridimensional por homolog&iacute;a de la catepsina B,    utilizando como moldes catepsinas B de humano y rata (1PBH, 2PBH y 3PBH, 1MIR)    del PDB (protein data bank). Se cheque&oacute; su calidad por el WHAT IF y se    obtuvo una energ&iacute;a final total de -6750.96 KJ/mol por el campo de fuerza    GROMOS96. Adem&aacute;s se identificaron su sitio activo (Cys 104, His 275,    Asn 295) y los amino&aacute;cidos que lo estabilizan por puentes de hidr&oacute;geno    (Val 107, Phe 250, Gly 302), as&iacute; como se predijo su estructura secundaria.    El modelo tridimensional puede emplearse para realizar tamizaje virtual utilizando    programas de docking y bases de datos de compuestos qu&iacute;micos virtuales    del tipo &quot;aceptores de Michael&quot;. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Palabras clave:</b>    Fasciola hepatica; catepsina B; modelaci&oacute;n por homolog&iacute;a; PDB.</font> <hr noshade size="1">     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>ABSTRACT</b></font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Cathepsin B was    selected as a possible new therapeutic target of <I>Fasciola hepatica</I>. This    is a cystein excretion protease present in the early phases of the parasite.    First, we propose a three-dimensional model by homology of the cathepsin B of    <I>F.hepatica</I>, by using as templates cathepsins B of human and rat (1PBH,    2PBH and 3PBH, 1MIR) from PDB (protein data bank). Its quality was checked by    WHAT IF and a total final energy was -6750.96 KJ/mol as measure by GROMOS96.    The active site (Cys 104, His 275, Asn 295) and amino acids involved in its    stabilization by hydrogen bonds (Val 107, Phe 250, Gly 302), were identified.    Also its secondary structure was predicted. The three-dimensional model could    be employed in order to perform virtual screening by means of docking programs    and data bases of virtual chemical compounds of the type &quot;Michael acceptors&quot;.</font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2"><b>Key words: </b>Fasciola    hepatica; cathepsin B proteases; comparative protein structure modelling; protein    data bank</font>. <hr noshade size="1">     <P>     <P>     ]]></body>
<body><![CDATA[<P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La infecci&oacute;n    causada por el trematodo <I>Fasciola hepatica</I> es una enfermedad de importancia    m&eacute;dico veterinaria (17). En Cuba, la fasciolosis hep&aacute;tica es enzo&oacute;tica    en los ganados bovino y ovino. El inter&eacute;s en esta parasitosis, considerada    por varios autores como emergente, es debido al elevado n&uacute;mero de casos    reportados en humanos en algunos pa&iacute;ses de zonas tropicales y subtropicales    (18). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Los efectos secundarios    de los f&aacute;rmacos existentes -de precios elevados-, la persistencia en    los alimentos, la generaci&oacute;n de resistencia por parte del par&aacute;sito    que ha llevado a la falla terap&eacute;utica, y la necesidad de desarrollar    compuestos contra estadios inmaduros o intrahep&aacute;ticos de <I>F. hepatica</I>    que eviten la patolog&iacute;a asociada a la migraci&oacute;n a trav&eacute;s    del par&eacute;nquima o la v&iacute;a biliar; pone de manifiesto la urgente    necesidad de contar con nuevas mol&eacute;culas para combatir esta enfermedad.    </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Entre los principales    candidatos antig&eacute;nicos para la protecci&oacute;n contra <I>Fasciola hepatica</I>    est&aacute;n las proteasas secretadas por este par&aacute;sito (22,<B> </B>29);    mayoritariamente de la familia de las ciste&iacute;no proteasas (5). En el estado    adulto se producen al menos cinco actividades tipo catepsina L y dos actividades    tipo catepsina B (9), de las que algunas est&aacute;n codificadas por familias    multig&eacute;nicas (33). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La catepsina B    es una ciste&iacute;no proteasa de la familia de la papaina. Es un candidato    potencial para el desarrollo de f&aacute;rmacos contra la fasciolosis, puesto    que la neutralizaci&oacute;n de su actividad puede reducir la capacidad del    estadio juvenil de establecer la infecci&oacute;n y por lo tanto, se pudiera    eliminar la enfermedad antes de que se produzcan da&ntilde;os en el h&iacute;gado    del hospedero por la migraci&oacute;n de los par&aacute;sitos (24). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">En los hospederos    definitivos del par&aacute;sito la catepsina B est&aacute; ocluida en los lisosomas;    y junto a otras catepsinas est&aacute; implicada en la degradaci&oacute;n de    prote&iacute;nas, activaci&oacute;n de zim&oacute;genos, procesamiento de ant&iacute;genos,    metabolismo y apoptosis. La catepsina B est&aacute; relacionada con un gran    n&uacute;mero de enfermedades en humanos como el c&aacute;ncer, artritis reumatoide,    osteoporosis y Alzheimer (2). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Las funciones de    la catepsina B est&aacute;n aun en procesos de investigaci&oacute;n y han sido    obstaculizados por la carencia de la prote&iacute;na para el estudio, a partir    de su fuente natural, puesto que la misma se produce en cantidades peque&ntilde;as    por los estadios juveniles (24). Adem&aacute;s, no est&aacute; disponible su    informaci&oacute;n estructural, as&iacute; como para la vasta mayor&iacute;a    de las secuencias de prote&iacute;nas. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Para el dise&ntilde;o    racional de f&aacute;rmacos se necesita informaci&oacute;n estructural, que    se determina por cristalograf&iacute;a de rayos X, resonancia magn&eacute;tica    nuclear o modelaci&oacute;n por homolog&iacute;a. Por consiguiente, constituye    una necesidad suplir esta carencia y es por esto que los m&eacute;todos computacionales    para la predicci&oacute;n de estructuras de prote&iacute;nas, como la modelaci&oacute;n    comparativa, han ganado en popularidad desde hace pocos a&ntilde;os (27, 31,    32). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">El objetivo de    este trabajo es la modelaci&oacute;n por homolog&iacute;a de la catepsina B,    para realizar futuros ensayos <I>in silico </I>con sustancias tipo aceptores    de Michael; que est&aacute;n reportados como inhibidores irreversibles, y forman    un enlace covalente estable con el grupo tiol del sitio activo de las ciste&iacute;no    proteasas (15). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Como material inicial    de trabajo se emple&oacute; la secuencia aminoac&iacute;dica del precursor de    la catepsina B (38070 Da) con n&uacute;mero de acceso Q8I7B2 en la base de datos    UNIPROT (14). A partir de esta secuencia se identificaron las prote&iacute;nas    con mayores por cientos de similitud -hom&oacute;logas-, de estructuras resueltas    en la base de datos PDB (Protein Data Bank), mediante un BLAST (Basic Local    Aligment Tool) (1) versi&oacute;n 2.0. Los patrones de homolog&iacute;a utilizados    son las estructuras de las prote&iacute;nas catepsinas B de humano y de rata,    en presencia o ausencia de inhibidor: 1PBH (Resoluci&oacute;n 3.2 &Aring;) (34),    1MIR_A (Resoluci&oacute;n 2.8 &Aring;) (4), 1GMY_&Aring; (Resoluci&oacute;n    1.9 &Aring;) (6) y 1THE_A (Resoluci&oacute;n 1.9 &Aring;) (12). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Se identificaron    los amino&aacute;cidos involucrados en el sitio activo por el servidor Catalytic    Site Atlas (11) versi&oacute;n 2.1.8 y se predijeron los residuos funcionales    mediante el PSI-BLAST (26) con el empleo de todas las bases de datos no redundantes.    </font>     ]]></body>
<body><![CDATA[<P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La alineaci&oacute;n    m&uacute;ltiple de secuencias se obtuvo por el CLUSTAL W 1.8 (30) y el modelo    de homolog&iacute;a fue construido por el servidor SWISS-MODEL (27). Adem&aacute;s    se obtuvo un modelo por defecto en el servidor del SWISS-MODEL, y emple&oacute;    como patrones las prote&iacute;nas 1PBH, 2PBH y 3PBH (Resoluci&oacute;n 3.3    &Aring;) (34) y 1MIR (Cadenas A y B, Resoluci&oacute;n 2.8 &Aring;) (4) para    un total de 5 patrones. Los ficheros de los modelos fueron almacenados y editados    como texto en el programa bloc de notas de Microsoft y desde aqu&iacute; directamente    importadas al programa WHAT IF v.19 (36). Fueron optimizados por el campo de    fuerza de GROMOS96 (200 ciclos &quot;steepest&quot; descendentes y 300 ciclos    de gradientes conjugados). La asignaci&oacute;n de estructura secundaria se    realiz&oacute; a trav&eacute;s del programa DSSP (13). Todas las manipulaciones    gr&aacute;ficas y de estructura fueron hechas en el programa Swiss PDB Viewer    (DeepView) (8). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Se seleccionaron    las estructuras patr&oacute;n con los siguientes valores de identidad/similitud    para las estructuras patr&oacute;n: 1PBH 50/65 %, 1MIR 49/66 %, 1GMY 57/ 69%,    1THE 55/ 69 %. Estos valores de las estructuras cristalogr&aacute;ficas, con    homolog&iacute;as mayores al 65% e identidad superiores o igual al 49%, se consideran    suficientes para realizar un modelo por homolog&iacute;a. Para dos prote&iacute;nas    con una identidad de secuencia &#179;50%, la desviaci&oacute;n cuadr&aacute;tica    media de los &aacute;tomos del esqueleto del n&uacute;cleo es aproximadamente    &#163;1.0 &Aring;, y no existen diferencias estructurales relevantes fuera de    la regi&oacute;n del n&uacute;cleo. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">El alineamiento    m&uacute;ltiple de secuencia muestra un patr&oacute;n continuo (Figura 1) sin    brechas significativas. Se conservan la ciste&iacute;na 104, la histidina 275    y la asparagina 295, entre ellos forman la tr&iacute;ada catal&iacute;tica.    En el caso de la prote&iacute;na 1MIR no se conserva la ciste&iacute;na porque    est&aacute; mutada por una serina. Estas prote&iacute;nas pertenecen a la familia    de las peptidasas C1, que se caracterizan por la d&iacute;ada catal&iacute;tica    Cys e His, aunque otros residuos son importantes en la cat&aacute;lisis; en    este caso, la Gln 98 favorece la formaci&oacute;n de la cavidad del oxiani&oacute;n,    mientras que la Asn 295 orienta el anillo imidazol de la His catal&iacute;tica.    Tambi&eacute;n como residuos funcionales conservados se encuentran las Cys 89,    101, 104, 137, 138, 141, 145, 174, 182, 194 y 204; Gly 142, 144, 148 y 244;    Asp 219 y 255; Trp 86, 105, la Arg 83 y la His 275. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Es de inter&eacute;s    para el dise&ntilde;o de un inhibidor selectivo, el entorno de la histidina    275, GKHAIRIIGWG, ya que a su extremo amino se enlaza una lisina, no conservada    en las dem&aacute;s secuencias, por su condici&oacute;n de amino&aacute;cido    b&aacute;sico; a diferencia de la glicina, conservada en esta posici&oacute;n    para las restantes secuencias. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La energ&iacute;a    final del modelo por defecto, calculada por GROMOS96 fue de -6527.277 KJ/molkJ/mol,    con lo que es m&aacute;s estable que el primer modelo obtenido, con una energ&iacute;a    final total de -6750.96 KJ/mol. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La calidad del    modelo obtenido por defecto se verific&oacute; mediante el uso del mapa de Ramachandran    (Figura 2), donde la mayor&iacute;a de los amino&aacute;cidos se encontraron    en las conformaciones posibles de las cadenas polipept&iacute;dicas. En este    mapa se obtuvieron once amino&aacute;cidos fuera de las zonas de plegamiento    permitidas. La Asn 298 pertenece a una l&aacute;mina beta, la Leu 329 a una    h&eacute;lice; mientras que Asn 8, Gln 12, Phe 13, Glu 14, Thr 56, Ser 99, Asn    122, Thr 201, y Gln330, se encuentran dentro de lazos donde los propios patrones    poseen divergencias, y por lo tanto sus posiciones presentan desviaciones comprensibles    de los valores normales. A pesar de la amplia flexibilidad de estas regiones    se puede afirmar que el modelo puede ser considerado como v&aacute;lido, siempre    y cuando estas zonas err&oacute;neas no intervengan directamente con el objetivo    por el que se obtiene. Con relaci&oacute;n a los lazos, la catepsina B se destaca    en la familia de la papaina por la presencia de un lazo de oclusi&oacute;n sobre    el sitio activo; en el que se encuentra conservada una Histidina (His184). En    el caso de mam&iacute;feros existe un d&iacute;mero de histidinas, que intervienen    en el mecanismo de reacci&oacute;n por la formaci&oacute;n de puentes de hidr&oacute;genos    entre el sustrato y los NH de los grupos imidazol de estos residuos (2). </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">En la estructura    secundaria m&aacute;s probable (Figura 3) es significativo el extremo N-terminal    donde predominan las hojas beta, mientras que hacia el extremo C-terminal son    las h&eacute;lices. Los amino&aacute;cidos del sito activo se encuentran formando    lazos. </font>     <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">Los amino&aacute;cidos    involucrados en el sitio activo, en el modelo obtenido ocupan las posiciones    104, 275 y 295 (Figura 4); que a su vez est&aacute;n estabilizados por puentes    de hidr&oacute;geno con la valina 107, fenilalanina 250 y glicina 302 (Figura    5). </font>     <P>      <P><font face="Verdana, Arial, Helvetica, sans-serif" size="2">La modelaci&oacute;n    por homolog&iacute;a o modelaci&oacute;n comparativa es un modo en desarrollo    paulatino, eficiente de obtener informaci&oacute;n acerca de una prote&iacute;na    de inter&eacute;s (16). Una vez obtenido el modelo, puede ser &uacute;til para    dise&ntilde;ar mutantes en pruebas de hip&oacute;tesis sobre la funci&oacute;n    proteica (3,38), identificar el sitio activo y sitios de uni&oacute;n (28),    identificar, dise&ntilde;ar y desarrollar ligandos a un sito de uni&oacute;n    determinado (23), modelar la especificidad de un sustrato (39), predecir ep&iacute;topes    antig&eacute;nicos (25), simular docking prote&iacute;na-prote&iacute;na (35),    inferir funci&oacute;n a partir de potenciales electrost&aacute;ticos calculados    (19), facilitar emplazamientos moleculares en estructuras determinadas por rayos    X (10), refinar modelos basados en construcciones por RMN (21), examinar y desarrollar    alineamientos de estructuras y secuencias (37), confirmar relaciones estructurales    remotas (7,20), y racionalizar observaciones experimentales conocidas. </font>     ]]></body>
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