<?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>0121-3709</journal-id>
<journal-title><![CDATA[ORINOQUIA]]></journal-title>
<abbrev-journal-title><![CDATA[Orinoquia]]></abbrev-journal-title>
<issn>0121-3709</issn>
<publisher>
<publisher-name><![CDATA[Instituto de Investigaciones de la Orinoquia Colombiana]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0121-37092014000100008</article-id>
<title-group>
<article-title xml:lang="es"><![CDATA[Canabinoides y endocanabinoides como herramienta para el desarrollo de posibles antineoplásicos en caninos: Una revisión]]></article-title>
<article-title xml:lang="en"><![CDATA[A review of cannabinoids and endocannabinoids as a tool for developing possible anti-neoplastic agents in dogs: Uma revisão]]></article-title>
<article-title xml:lang="es"><![CDATA[Canabinóides e endocanabinóides como ferramenta para o desenvolvimento de possíveis medicamentos antineoplásicos em cães]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Mayorga-Niño]]></surname>
<given-names><![CDATA[Fabio]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Torres-Vidales]]></surname>
<given-names><![CDATA[Giovanny]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,UPTC Facultad de Ciencias de la Salud Escuela de Medicina]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
</aff>
<aff id="A02">
<institution><![CDATA[,UPTC Facultad de Ciencias Agropecuarias Escuela de Medicina Veterinaria y Zootecnia]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>06</month>
<year>2014</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>06</month>
<year>2014</year>
</pub-date>
<volume>18</volume>
<numero>1</numero>
<fpage>68</fpage>
<lpage>78</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0121-37092014000100008&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0121-37092014000100008&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0121-37092014000100008&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[El tratamiento de los crecimientos neoplásicos malignos en caninos, incluye diferentes alternativas, entre las cuales se encuentra la quimioterapia. Sin embargo, los fármacos tradicionalmente utilizados presentan altos niveles de toxicidad, debido a su baja selectividad sobre células cancerosas. Los principales efectos adversos de estos compuestos son trastornos gastrointestinales, depresión de la medula ósea, alteraciones de la conducta, alopecia y un potencial carcinogénico, entre otros. En la actualidad, diferentes grupos de investigación en el mundo han estado dedicados al desarrollo de nuevas moléculas derivadas de canabinoides y/o endocanabinoides, basados en la reconocida actividad antineoplásica del tetrahidrocanabinol y de la anandamida. Los ensayos hasta ahora reportados permiten concluir que dichos compuestos ofrecen una mayor selectividad de acción sobre las células enfermas, lo cual se traduce en un menor abanico de riesgos tóxicos. Por otra parte, se ha demostrado que los tratamientos farmacológicos en cualquier patología deberían ceñirse a los ritmos biológicos con el fin de obtener una mejor respuesta terapéutica y un menor grado de efectos colaterales. El objetivo de este artículo es dar a conocer los beneficios de un futuro tratamiento antineoplásico inspirado en el comportamiento de los canabinoides y endocanabinoides en la evolución de las enfermedades neoplásicas.]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[There are several alternatives for treating malign neoplastic growths in dogs, including chemotherapy; however, traditionally used drugs have high levels of toxicity due to their low selectivity regarding cancer cells. These compounds' main adverse effects involve gastrointestinal disorders, bone marrow suppression (myelotoxicity), behavioral alterations, alopecia and carcinogenic potential. Research groups around the world are currently working on developing new drugs from cannabinoids and/or endocannabinoids-derived molecules, based on tetrahydrocannabinol and anandamide's known anti-neoplastic activity. Trials reported to date have led to concluding that such compounds offer greater selectivity regarding action on unhealthy cells, thereby representing a lower range of toxic risks. It has been shown that pharmacological treatment regarding any disease should adhere to biological rhythms to obtain a better therapeutic response and incur fewer collateral effects. This article was thus aimed at ascertaining the benefits of future antineoplastic treatment inspired by the behavior of cannabinoids and endocannabinoids in the evolution of neoplastic diseases.]]></p></abstract>
<abstract abstract-type="short" xml:lang="pt"><p><![CDATA[O tratamento de tumores malignos em cães, inclui diversas alternativas, entre as quais está a quimioterapia. Embora, as drogas convencionalmente usadas têm níveis elevados de toxicidade, devido à sua baixa selectividade sobre células cancerosas. Os principais efeitos adversos desses compostos são distúrbios gastrointestinais, depressão da medula óssea, distúrbios comportamentais, alopecia e um potencial carcinogénico, entre outras. Atualmente, diferentes grupos de pesquisa no mundo têm se dedicado ao desenvolvimento de novas moléculas derivadas de canabinóides e/ou endocanabinóides, baseados na conhecida atividade antineoplásica do tetrahidrocanabinol e da anandamida. Os experimentos relatados até agora levam à conclusão de que estes compostos oferecem uma maior seletividade de ação nas células doentes, o que resulta num menor intervalo de riscos tóxicos. Além disso, foi demonstrado que os tratamentos farmacológicos em qualquer doença deveríam estar em conformidade com os ritmos biológicos, a fim de obter uma melhor resposta terapêutica e um menor grau de efeitos colaterais. O objetivo deste artigo é apresentar os benefícios de um futuro tratamento antineoplásico inspirado no comportamento dos canabinóides e endocannabinoides na evolução das doenças neoplásicas.]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[Crecimiento neoplásico]]></kwd>
<kwd lng="es"><![CDATA[canabinoides]]></kwd>
<kwd lng="es"><![CDATA[endocanabinoides]]></kwd>
<kwd lng="es"><![CDATA[cronofarmacología]]></kwd>
<kwd lng="en"><![CDATA[Neoplastic growth]]></kwd>
<kwd lng="en"><![CDATA[cannabinoid]]></kwd>
<kwd lng="en"><![CDATA[endocannabinoid]]></kwd>
<kwd lng="en"><![CDATA[chronopharmacology]]></kwd>
<kwd lng="pt"><![CDATA[Crescimento neoplásico]]></kwd>
<kwd lng="pt"><![CDATA[Canabinóides]]></kwd>
<kwd lng="pt"><![CDATA[Endocanabinóides]]></kwd>
<kwd lng="pt"><![CDATA[Cronofarmacología]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <font face="verdana" size="2">          <p align="center"><font size="4"><b>Canabinoides y endocanabinoides como herramienta para el desarrollo de posibles antineopl&aacute;sicos en caninos. Una revisi&oacute;n</b></font></p>     <p align="center"><font size="3"><b>A review of cannabinoids and endocannabinoids as a tool for developing possible anti-neoplastic agents in dogs</b></font></p>     <p align="center"><font size="3"><b>Canabin&oacute;ides e endocanabin&oacute;ides como ferramenta para o desenvolvimento de poss&iacute;veis medicamentos antineopl&aacute;sicos em c&atilde;es. Uma revis&atilde;o</b></font></p>     <p align="right"><b>Fabio Mayorga-Ni&ntilde;o<sup><a href="#1">1</a></sup>    <br> Giovanny Torres-Vidales<sup><a href="#2">2</a></sup></b></p>     <p><a href="#nr1" name="1">1</a> Grupo de investigaci&oacute;n en Qu&iacute;mica Medicinal, Profesor asociado Escuela de Medicina, Facultad de Ciencias de la Salud, UPTC. Email: <a href="mailto:fabio.mayorga@uptc.edu.co">fabio.mayorga@uptc.edu.co</a>.    <br> <a href="#nr2" name="2">2</a> Grupo de investigaci&oacute;n en Medicina Veterinaria y Zootecnia, Profesor Asistente Escuela de Medicina Veterinaria y Zootecnia, Facultad de Ciencias Agropecuarias, UPTC.</p>     <p>Recibido: Marzo 14 de 2013</p> <hr size="1" />              <p><b>Resumen</b></p>     ]]></body>
<body><![CDATA[<p>El tratamiento de los crecimientos neopl&aacute;sicos malignos en caninos, incluye diferentes alternativas, entre   las cuales se encuentra la quimioterapia. Sin embargo, los f&aacute;rmacos tradicionalmente utilizados presentan   altos niveles de toxicidad, debido a su baja selectividad sobre c&eacute;lulas cancerosas. Los principales efectos   adversos de estos compuestos son trastornos gastrointestinales, depresi&oacute;n de la medula &oacute;sea, alteraciones   de la conducta, alopecia y un potencial carcinog&eacute;nico, entre otros. En la actualidad, diferentes grupos de   investigaci&oacute;n en el mundo han estado dedicados al desarrollo de nuevas mol&eacute;culas derivadas de canabinoides   y/o endocanabinoides, basados en la reconocida actividad antineopl&aacute;sica del tetrahidrocanabinol y de la   anandamida. Los ensayos hasta ahora reportados permiten concluir que dichos compuestos ofrecen una   mayor selectividad de acci&oacute;n sobre las c&eacute;lulas enfermas, lo cual se traduce en un menor abanico de riesgos   t&oacute;xicos. Por otra parte, se ha demostrado que los tratamientos farmacol&oacute;gicos en cualquier patolog&iacute;a deber&iacute;an   ce&ntilde;irse a los ritmos biol&oacute;gicos con el fin de obtener una mejor respuesta terap&eacute;utica y un menor grado de efectos colaterales.</p>     <p>El objetivo de este art&iacute;culo es dar a conocer los beneficios de un futuro tratamiento antineopl&aacute;sico inspirado en el comportamiento de los canabinoides y endocanabinoides en la evoluci&oacute;n de las enfermedades neopl&aacute;sicas.</p>          <p><b>Palabras clave</b>: Crecimiento neopl&aacute;sico, canabinoides, endocanabinoides, cronofarmacolog&iacute;a.</p>      <p><b>Abstract</b></p>     <p>There are several alternatives for treating malign neoplastic growths in dogs, including chemotherapy; however,   traditionally used drugs have high levels of toxicity due to their low selectivity regarding cancer cells. These   compounds' main adverse effects involve gastrointestinal disorders, bone marrow suppression (myelotoxicity), behavioral alterations, alopecia and carcinogenic potential. Research groups around the world are currently   working on developing new drugs from cannabinoids and/or endocannabinoids-derived molecules, based   on tetrahydrocannabinol and anandamide's known anti-neoplastic activity. Trials reported to date have led   to concluding that such compounds offer greater selectivity regarding action on unhealthy cells, thereby   representing a lower range of toxic risks. It has been shown that pharmacological treatment regarding any disease should adhere to biological rhythms to obtain a better therapeutic response and incur fewer collateral effects.</p>     <p>This article was thus aimed at ascertaining the benefits of future antineoplastic treatment inspired by the behavior of cannabinoids and endocannabinoids in the evolution of neoplastic diseases.</p>     <p><b>Key words</b>: Neoplastic growth, cannabinoid, endocannabinoid, chronopharmacology.</p>     <p><b>Resumo</b></p>     <p>O tratamento de tumores malignos em c&atilde;es, inclui diversas alternativas, entre as quais est&aacute; a quimioterapia. Embora, as drogas convencionalmente usadas t&ecirc;m n&iacute;veis elevados de toxicidade, devido &agrave; sua baixa   selectividade sobre c&eacute;lulas cancerosas. Os principais efeitos adversos desses compostos s&atilde;o dist&uacute;rbios   gastrointestinais, depress&atilde;o da medula &oacute;ssea, dist&uacute;rbios comportamentais, alopecia e um potencial   carcinog&eacute;nico, entre outras. Atualmente, diferentes grupos de pesquisa no mundo t&ecirc;m se dedicado ao   desenvolvimento de novas mol&eacute;culas derivadas de canabin&oacute;ides e/ou endocanabin&oacute;ides, baseados na   conhecida atividade antineopl&aacute;sica do tetrahidrocanabinol e da anandamida. Os experimentos relatados at&eacute;   agora levam &agrave; conclus&atilde;o de que estes compostos oferecem uma maior seletividade de a&ccedil;&atilde;o nas c&eacute;lulas   doentes, o que resulta num menor intervalo de riscos t&oacute;xicos. Al&eacute;m disso, foi demonstrado que os tratamentos   farmacol&oacute;gicos em qualquer doen&ccedil;a dever&iacute;am estar em conformidade com os ritmos biol&oacute;gicos, a fim de obter uma melhor resposta terap&ecirc;utica e um menor grau de efeitos colaterais.</p>     <p>O objetivo deste artigo &eacute; apresentar os benef&iacute;cios de um futuro tratamento antineopl&aacute;sico inspirado no comportamento dos canabin&oacute;ides e endocannabinoides na evolu&ccedil;&atilde;o das doen&ccedil;as neopl&aacute;sicas.</p>     ]]></body>
<body><![CDATA[<p><b>Palavras chave</b>: Crescimento neopl&aacute;sico, Canabin&oacute;ides, Endocanabin&oacute;ides, Cronofarmacolog&iacute;a.</p>  <hr size="1" />           <p><b><font size="3">Introducci&oacute;n</font></b></p>     <p>El crecimiento neopl&aacute;sico se define como una proliferaci&oacute;n   aut&oacute;noma y progresiva de las c&eacute;lulas propias   de un individuo, que en la mayor&iacute;a de los casos se correlaciona   con la aparici&oacute;n de una masa o tumor. Este   tipo de crecimientos se puede desarrollar en cualquier   especie animal; sin embargo, se ha observado que la   mayor casu&iacute;stica se presenta en caninos (Wihtrow and   Vail, 2009).</p>     <p>En la pr&aacute;ctica cl&iacute;nica de peque&ntilde;os animales, y en especial   para la especie canina, es frecuente el diagn&oacute;stico   de crecimientos neopl&aacute;sicos en diferentes sistemas   org&aacute;nicos. Estos crecimientos pueden ser de diferente   origen, dentro de los que se incluyen mesenquimales,   epiteliales, de c&eacute;lulas redondas y de c&eacute;lulas productoras   de pigmentos (Meuten, 2002). En cuanto al   comportamiento, independientemente del origen, las   neoplasias se clasifican como benignos o malignos, y   &eacute;stas &uacute;ltimas pueden ser localizadas o difusas, como es   el caso de la leucemia. Las neoplasias malignas localizadas,   eventualmente pueden expandirse a diferentes   tejidos, proceso que se conoce como met&aacute;stasis (Paolini   and Khanna, 2008).</p>     <p>En cuanto a las alternativas de tratamiento, estas pueden   ser de tipo quir&uacute;rgico, f&iacute;sico (radioterapia) y qu&iacute;mico   (quimioterapia). La finalidad de la terapia farmacol&oacute;gica   sist&eacute;mica es controlar el crecimiento neopl&aacute;sico   en el foco primario y en sitios de met&aacute;stasis (Bracho,   2011). En la actualidad, diferentes grupos de investigaci&oacute;n   en el mundo han venido demostrando las bondades   del uso de canabinoides, endocanabinoides o sus   an&aacute;logos en el tratamiento del c&aacute;ncer (Torres <i>et al</i>.,   2011; Donadelli <i>et al</i>., 2011; Velasco, S&aacute;nchez and   Guzm&aacute;n, 2012). Sin embargo, son bien conocidos los   efectos psicotr&oacute;picos que estos compuestos producen   en el individuo (Rodr&iacute;guez y Carrillo, 2005), a los cuales   no son ajenos los animales.</p>     <p>Asimismo, la medicina moderna tiende a incorporar   el concepto de cronofarmacolog&iacute;a en el tratamiento   de las diferentes patolog&iacute;as, entre ellas el c&aacute;ncer, con el prop&oacute;sito de incrementar sus acciones terap&eacute;uticas,   disminuyendo de forma importante sus efectos t&oacute;xicos   (Ohdo, 2010).</p>     <p>El prop&oacute;sito de esta revisi&oacute;n es presentar el uso potencial   de canabinoides y endocanabinoides como una   alternativa que a futuro podr&aacute; constituir un m&eacute;todo   efectivo y seguro en el tratamiento del crecimiento   neopl&aacute;sico maligno en caninos.</p>     <p>Diferentes autores han reportado la actividad antineopl&aacute;sica   de canabinoides y endocanabinoides (Sarfaraz   <i>et al</i>., 2008; Fowler <i>et al</i>., 2010; Cudaback <i>et al</i>., 2010).</p>     <p><b><font size="3">Principales f&aacute;rmacos utilizados   en c&aacute;ncer canino</font></b></p>     <p>La quimioterapia es el uso de medicamentos para inhibir   el crecimiento celular y, en medicina humana y   veterinaria, es una alternativa para el tratamiento del   c&aacute;ncer.</p>     ]]></body>
<body><![CDATA[<p>Los f&aacute;rmacos que se utilizan en el tratamiento contra   el c&aacute;ncer son agentes citot&oacute;xicos que act&uacute;an principalmente   sobre c&eacute;lulas que se encuentran en r&aacute;pida divisi&oacute;n. Una dificultad que presenta la quimioterapia es   la baja selectividad de los f&aacute;rmacos utilizados, ya que   estos no discriminan entre c&eacute;lulas sanas de alta proliferaci&oacute;n   y c&eacute;lulas neopl&aacute;sicas, las cuales presentan esta   misma caracter&iacute;stica (Aurrecochea, 2008).</p>     <p>Los principales efectos adversos que se pueden presentar   en mayor o menor medida con el uso de cualquiera   de los agentes citot&oacute;xicos son: mielosupresi&oacute;n, principalmente   neutropenia y trombocitopenia; anemia, la   cual es menos frecuente por la larga vida media de los   eritrocitos; nauseas, v&oacute;mitos diarreas y anorexia; infertilidad   y teratog&eacute;nesis; cardiotoxicidad, nefrotoxicidad   y, a su vez, todos son potencialmente carcinog&eacute;nicos   (Adams, 2001; Kukanich, 2012).</p>     <p>En la actualidad, los f&aacute;rmacos m&aacute;s utilizados en medicina   veterinaria para el tratamiento del c&aacute;ncer son:</p>     <p><b><i>Agentes alquilantes</i></b></p>     <p>Son sustancias que tienen capacidad electrof&iacute;lica, propiedad   que les permite introducir grupos alquilo a residuos   guanina del ADN, interfiriendo de esta manera   con los procesos de replicaci&oacute;n y transcripci&oacute;n, lo cual   altera la funcionalidad de los &aacute;cidos nucleicos y la progresi&oacute;n   del ciclo celular.</p>     <p>Los efectos t&oacute;xicos comunes para todos los agentes   alquilantes incluyen mielosupresi&oacute;n, toxicidad gastrointestinal   manifestada en forma de n&aacute;useas, v&oacute;mito,   diarrea y da&ntilde;o de la mucosa del aparato digestivo. Toxicidad   gonadal que conlleva a mala calidad seminal   con oligospermia o aspermia, debido a depleci&oacute;n de   las c&eacute;lulas germinales. Toxicidad pulmonar, ya que   puede ocurrir neumon&iacute;a intersticial y fibrosis. Estos   agentes tambi&eacute;n son responsables del cuadro de alopecia   que pueden presentar los pacientes durante el   tratamiento (Aurrecochea, 2008). Dentro de los agentes   alquilantes se utilizan compuestos como: mostazas   nitrogenadas, nitrosoureas, entre otros.</p>     <p><i><b>Mostazas nitrogenadas</b></i>. Entre estos agentes se encuentran,   por ejemplo, ciclofosfamida, ifosfamida, melfal&aacute;n   y clorambucil, que son utilizados en el tratamiento tumores   malignos de gl&aacute;ndula mamaria, linfosarcomas   y mastocitomas indiferenciados (Souza <i>et al</i>., 2009). Las reacciones adversas espec&iacute;ficas para este grupo de   antineopl&aacute;sicos incluyen cistitis hemorr&aacute;gica est&eacute;ril,   acci&oacute;n teratog&eacute;nica, leucemia y nefrotoxicidad (Maddison   <i>et al</i>., 2004).</p>     <p><b><i>Nitroso&uacute;reas</i></b>. Son compuestos muy liposolubles, entre   los que se encuentran carmustina, lomustina, semustina   y nemustina. Todos traspasan con facilidad la   barrera hematoencef&aacute;lica, por lo tanto son utilizados   en neoplasias cerebrales; otros usos incluyen el tratamiento   de linfosarcomas multic&eacute;ntricos y epiteliotropos   y mastocitomas del tracto gastrointestinal (Van   Meervenne <i>et al</i>., 2012).</p>     <p>Dentro de las reacciones adversas m&aacute;s comunes se   encuentran, adem&aacute;s de las descritas para los agentes   alquilantes en general, hemiplej&iacute;a, convulsiones, cefalea,   confusi&oacute;n, edema cerebral, afasia, somnolencia,   infecci&oacute;n en el tracto urinario, tromboflebitis profunda   y hepatotoxicidad (Moore and Kitchell, 2003).</p>     <p><b><i>Cisplatino y sus derivados</i></b></p>     ]]></body>
<body><![CDATA[<p>Este grupo incluye cisplatino, carboplatino y oxaliplatino. Tales productos reaccionan con los residuos de   la posici&oacute;n N7 de la guanina y adenina, para formar   una amplia variedad de aductos mono, o bifuncionales. Dichos aductos impiden ciertos procesos celulares   que requieren la reparaci&oacute;n de ambas cadenas de   ADN. Por otra parte, la uni&oacute;n a prote&iacute;nas citoplasm&aacute;ticas   o nucleares puede tener efectos citot&oacute;xicos (Vail   <i>et al</i>., 2007).</p>     <p>En peque&ntilde;os animales son usados para el tratamiento   de carcinomas escamocelulares, mesoteliomas, linfosarcomas   y c&aacute;ncer de pulm&oacute;n, entre otros. Sus efectos   adversos incluyen nefrotoxicidad, neurotoxicidad,   n&aacute;useas, v&oacute;mito, ototoxicidad, alopecia y desequilibrio   electrol&iacute;tico (Calvelo, 2013).</p>     <p><b><i>Antimetabolitos</i></b></p>     <p>A este grupo pertenecen el metotrexate y el 5-fluorouracilo,   entre otros. Estos son utilizados en el tratamiento   del c&aacute;ncer de gl&aacute;ndula mamaria, linfomas y   osteosarcomas. Los antimetabolitos compiten con los   nucle&oacute;sidos fisiol&oacute;gicos; tienen un triple mecanismo   de acci&oacute;n a trav&eacute;s de la incorporaci&oacute;n y alteraci&oacute;n de   las macromol&eacute;culas de ADN y ARN, por interferencia   con las enzimas implicadas en la s&iacute;ntesis de &aacute;cidos   nucleicos o por modificaci&oacute;n del metabolismo de los   nucle&oacute;sidos fisiol&oacute;gicos.</p>     <p>Los efectos adversos para este grupo incluyen anemia,   hepatotoxicidad, n&aacute;useas, v&oacute;mito y cambios en la pigmentaci&oacute;n   de la piel (Maddison <i>et al</i>., 2004).</p>     <p><b><i>Antibi&oacute;ticos antitumorales</i></b></p>     <p>En este grupo se encuentran las antraciclinas, que incluyen   la doxorrubicina y daunomicina. Tienen efecto   antitumoral, ya que act&uacute;an en la fase S del ciclo   celular, inhibiendo el ADN y ARN. Dicho proceso   est&aacute; mediado por la inhibici&oacute;n de la topoisomerasa   II y la generaci&oacute;n de radicales libres. Los antibi&oacute;ticos   antitumorales son utilizados en el tratamiento del   hemangiosarcomas, liposarcomas infiltrativos, linfosarcomas   y tumor ven&eacute;reo transmisible. Los efectos   adversos de las antraciclinas incluyen mielosupresi&oacute;n,   toxicidad cardiaca, reacci&oacute;n al&eacute;rgica local y   trastornos gastrointestinales y pulmonares (Elliot <i>et al</i>., 2013; Reagan <i>et al</i>., 2013).</p>     <p><b><i>Alcaloides de la vinca</i></b></p>     <p>Este grupo incluye vincristina, vinblastina, vindesina   y vinorelbina. Estas sustancias son ciclo espec&iacute;ficas,   ya que act&uacute;an interfiriendo en la polimerizaci&oacute;n de   la tubulina, alterando de esta forma la funci&oacute;n de los   microt&uacute;bulos que forman el huso mit&oacute;tico, desencadenando   as&iacute; la muerte celular. Los alcaloides de la vinca   son utilizados en la cl&iacute;nica de peque&ntilde;os animales para   el tratamiento de carcinomas mamarios, carcinomas   nasales, tumor ven&eacute;reo transmisible, nefroblastomas,   adenocarcinomas pancre&aacute;ticos, mastocitomas y leucemias. Dentro de los efectos adversos para este grupos   se incluye neutropenia severa, signos de neurotoxicidad   por dosis acumulativas, p&eacute;rdida de fuerza muscular   e irritaci&oacute;n local fuerte cuando se presenta extravasaci&oacute;n   (Herrera <i>et al</i>, 2006).</p>     <p><b><i>El sistema endocanabinoide</i></b></p>     ]]></body>
<body><![CDATA[<p>En las &uacute;ltimas dos d&eacute;cadas se ha identificado, tanto   en animales como en seres humanos, el llamado   <i>sistema endocanabionoide</i>, el cual est&aacute; constituido   por los receptores canabinoides, los ligandos end&oacute;genos   y las enzimas responsables de su formaci&oacute;n y   destrucci&oacute;n (Pertwee, 2008; Velasco, S&aacute;nchez and   Guzm&aacute;n, 2012).</p>     <p><b><i>Receptores</i></b></p>     <p>Hasta 1988 se pensaba que la marihuana ejerc&iacute;a sus   efectos de una manera independiente de receptores. Para esta &eacute;poca se descubrieron receptores sobre   los cuales se confirm&oacute; la acci&oacute;n del &Delta;<sup>9</sup>-THC, en   el cerebro de porcinos. A aquellos receptores se les   denomin&oacute; CB1. M&aacute;s adelante se identificaron otros   receptores similares en zonas corporales perif&eacute;ricas,   a los que se denomin&oacute; CB2 (Munro <i>et al</i>., 1993; Guzm&aacute;n,   2003; Malfitano <i>et al</i>., 2011). Posteriormente,   en 1990, Matsuda y colaboradores reportaron la caracterizaci&oacute;n   del receptor CB1 y en 1993, Munro y   colaboradores informaron de la plena identificaci&oacute;n   del receptor CB2.</p>     <p>Se ha establecido que los receptores CB1 se localizan   principalmente en el sistema nervioso central, determin&aacute;ndose   en forma bastante detallada la distribuci&oacute;n de   estos receptores en los cerebros de algunos animales y   en seres humanos (Herkenham <i>et al</i>., 1990; Mailleux   and Vanderhaeghen, 1992; Tsou <i>et al</i> 1998; Smith <i>et al</i>., 2010). As&iacute; mismo, se encuentran en menor concentraci&oacute;n   en algunos tejidos perif&eacute;ricos, tales como   el bazo, el coraz&oacute;n, la pr&oacute;stata, los ovarios, el &uacute;tero y,   a nivel presin&aacute;ptico, en terminales nerviosas (Galiegue   <i>et al</i>., 1995; Ishac <i>et al</i>., 1996; Pertwee <i>et al</i>., 2010).</p>     <p>Los receptores CB2, por su parte, se localizan principalmente   en el bazo, am&iacute;gdalas y sistema inmune. Los efectos inmunosupresores de la marihuana pueden   explicarse por la presencia de receptores CB2 en estos   tejidos (Mayorga y C&aacute;rdenas, 2009; Atwood and   Mackie, 2010).</p>     <p>Los principales mecanismos intracelulares en los que   est&aacute;n implicados los receptores CB1 incluyen inhibici&oacute;n   de la adenilato ciclasa, regulaci&oacute;n de diferentes   canales i&oacute;nicos y la activaci&oacute;n de la v&iacute;a de las MAP   quinasas (Howlett, 1998). La estimulaci&oacute;n de los receptores   canabinoides induce una inhibici&oacute;n de los   canales de calcio y un aumento de la conductancia   del potasio. El efecto combinado sobre ambos tipos de   canales parece ser la base de la inhibici&oacute;n de la liberaci&oacute;n   de neurotransmisores (Bouaboula <i>et al</i>., 1995;   Patcher <i>et al</i>., 2006; Katona and Freund, 2008).</p>     <p>Adem&aacute;s de los tipos de receptores ya comentados, los   canabinoides y endocanabinoides pueden actuar sobre receptores vanilloides (Grotenherm, 2004; Marini   <i>et al</i>., 2009).</p>     <p><b><i>Endocanabinoides</i></b></p>     <p>Los ligandos de los receptores CB1 y CB2, as&iacute; como   de los vanilloides inicialmente conocidos, eran los canabinoides   derivados de la Cannabis sativa, principalmente   el &Delta;<sup>9</sup>-THC. Cuando en 1988 se descubrieron primero   los receptores CB1 y luego los CB2, se pens&oacute; que   la presencia de estos receptores supon&iacute;a la existencia   de ligandos end&oacute;genos, espec&iacute;ficos de tales receptores. Fue esto lo que motiv&oacute; a los cient&iacute;ficos a investigar   en la b&uacute;squeda e identificaci&oacute;n de estos compuestos   hasta entonces desconocidos. As&iacute;, en 1992, Devane   y colaboradores reportaron el aislamiento de un nuevo   constituyente cerebral, encontrado por ellos en el   cerebro de porcinos, pero que luego fue detectado   en humanos y muchos otros animales. A este nuevo   compuesto lo llamaron anandamida. Mechoulam, en   1995, inform&oacute; de la presencia de otro compuesto de   alto inter&eacute;s: el <i>2-araquidonoilglicerol</i>.</p>     <p>Se ha demostrado que los endocanabinoides, especialmente   la anandamida, est&aacute;n implicados en m&uacute;ltiples   procesos biol&oacute;gicos entre los cuales est&aacute;n: desarrollo   neuronal, acci&oacute;n neuromoduladora, metabolismo,   funciones cardiovascular, respiratoria, endocrina, sexual,   sangu&iacute;nea, as&iacute; como en procesos inflamatorios,   analgesia, respuesta inmune y crecimiento neopl&aacute;sico,   entre otros (Bosier <i>et al</i>., 2010; Jenny <i>et al</i>., 2010;   Guindon and Hohmann, 2011).</p>     ]]></body>
<body><![CDATA[<p>Qu&iacute;micamente la anandamida es la etanolamida del   &aacute;cido araquid&oacute;nico, lo cual habla claramente de su   posible relaci&oacute;n con las prostaglandinas, leucotrienos,   tromboxanos y, en fin, con aquellos metabolitos   que se desprenden de la cascada del &aacute;cido araquid&oacute;nico   y que est&aacute;n implicados en importantes procesos   como la inflamaci&oacute;n, funci&oacute;n sangu&iacute;nea, contracci&oacute;n   de m&uacute;sculo liso, etc. La s&iacute;ntesis de la anandamida,   que es el canabinoide end&oacute;geno m&aacute;s estudiado hasta   la fecha, se produce mediante la hidr&oacute;lisis de la   N-araquidonilfosfatidiletanolamina, un precursor fosfo-lip&iacute;dico. Este proceso se lleva a cabo catalizado   por una fosfolipasa D (Giuffrida <i>et al</i>., 1999). Esta hidr&oacute;lisis   ocurre en el momento en que el organismo   requiera la liberaci&oacute;n de la anandamida. Esta liberaci&oacute;n   se hace de una manera dependiente de canales   de calcio; sin embargo, existe evidencia de que   receptores acoplados a prote&iacute;nas G pueden disparar   este proceso, tal como sucede con los receptores dopamin&eacute;rgicos   D<sub>2</sub> (Liu <i>et al</i>., 2008; Jenny <i>et al</i>; 2010). La vida media de la anandamida es muy corta, lo cual   hace dif&iacute;cil la tarea de su aislamiento. La enzima encargada   de realizar la hidr&oacute;lisis es la amidohidrolasa   de &aacute;cido graso (FAAH) (Mallat <i>et al</i>., 2011).</p>     <p>Adem&aacute;s de la anandamida y del 2-araquidonoilglicerol,   posteriormente se descubrieron otros endocanabinoides   que ofrecen interesantes perspectivas farmacol&oacute;gicas:   nolad&iacute;n &eacute;ter, que activa receptores CB1 (Porter   <i>et al</i>., 2002); la virodhamina, es el &eacute;ster del &aacute;cido araquid&oacute;nico   y la etanolamina, que act&uacute;a sobre receptores   CB1 (Huang <i>et al</i>., 2002) y, finalmente, el agonista   vanilloide N-araquidonoildopamina, que tambi&eacute;n exhibe   afinidad por receptores canabinoides (Nelson <i>et al</i>., 2001).</p>     <p>Como ya se adelant&oacute;, existen enzimas responsables de   la formaci&oacute;n e hidr&oacute;lisis de la anandamida, el endocanabinoide   que ofrece mayor perspectiva e inter&eacute;s farmacol&oacute;gico. En la formaci&oacute;n de la anandamida interviene   una fosfolipasa D, para permitir su liberaci&oacute;n a   partir de la N-araquidonilfosfatidiletanolamina, y para   su degradaci&oacute;n act&uacute;a la FAAH (Mallat <i>et al</i>., 2011).</p>     <p><b><font size="3">Nuevas perspectivas farmacol&oacute;gicas para   el tratamiento del c&aacute;ncer en caninos</font></b></p>     <p>Desde siglos atr&aacute;s, la marihuana ha sido utilizada con   prop&oacute;sitos medicinales y recreativos. En la actualidad,   la medicina aprovecha los efectos antiem&eacute;ticos   y analg&eacute;sicos del tetrahidrocanabinol (THC), presente   en la marihuana, como paliativo de algunos s&iacute;ntomas   del c&aacute;ncer y su tratamiento (Guzm&aacute;n, 2003; Pertwee, 2009; Velasco <i>et al</i>., 2012).</p>     <p>Investigaciones recientes han demostrado que el THC   es mucho m&aacute;s que un paliativo. En 1975 se conoci&oacute;   la actividad antineopl&aacute;sica del THC (Munson <i>et al</i>.,   1975; Guzm&aacute;n, 2003; Sarfaraz <i>et al</i>., 2008), pese   a que posteriormente se han reportado estudios que   muestran que los canabinoides tambi&eacute;n pueden presentar   efectos pro-proliferativos en c&aacute;ncer, cuando   se administran a dosis micromolares, ya que a estas   concentraciones ejerce actividad antiapopt&oacute;tica (Hart   <i>et al</i>., 2004; Flygare and Sander, 2008; Guindon and   Hohmann, 2011). En 1998, De Petrocellis, Bifulco, Di   Marzo y col, as&iacute; como S&aacute;nchez y colaboradores en   2006 se pronunciaron respecto a la importante acci&oacute;n   inhibitoria de la anandamida sobre la proliferaci&oacute;n de   c&eacute;lulas de c&aacute;ncer de seno humano, a trav&eacute;s de la activaci&oacute;n   de receptores CB2; lo que a su vez detiene el   ciclo celular en la transici&oacute;n G2-M, v&iacute;a subregulaci&oacute;n   del gen Cdc2, induciendo de esta forma la muerte celular   por apoptosis. Con base en este conocimiento en   humanos, y dado que no existen estudios al respecto   en caninos, podemos inferir que tal afirmaci&oacute;n pudiera   ser extrapolable a tal especie, dadas las similitudes etiol&oacute;gicas, histol&oacute;gicas y bioqu&iacute;micas de esta patolog&iacute;a   entre dichas poblaciones; situaci&oacute;n que deber comprobarse   con futuras investigaciones. Bifulco y col. en   2001 estudiaron la influencia del sistema canabinoide   en el control del crecimiento de tumores dependiente   del oncog&eacute;n ras. Bifulco y Di Marzo en 2002 convocaron   a unir esfuerzos en la b&uacute;squeda de nuevas mol&eacute;culas   derivadas de endocanabinoides con el prop&oacute;sito   de lograr un mejor control del c&aacute;ncer. Guzm&aacute;n insisti&oacute;   en 2003 en el potencial anticancer&iacute;geno de los canabinoides,   y sobre esta base, tambi&eacute;n se deber&aacute; explorar   la acci&oacute;n de los endocanabinoides. La inhibici&oacute;n de la   angiog&eacute;nesis tumoral por parte de los canabinoides fue   propuesta por Jorcano y colaboradores en 2003 y, posteriormente,   por Strieter en 2005. Nuevamente, Bl&aacute;zquez,   Guzm&aacute;n y colaboradores, en 2004, informaron   que los canabinoides inhiben el factor de crecimiento   endotelial en gliomas, como un importante aporte al   entendimiento de la acci&oacute;n de estos compuestos sobre   c&eacute;lulas cancerosas. El efecto positivo de los canabinoides   en el control del c&aacute;ncer de pr&oacute;stata fue reportado   por Sarfaraz y colaboradores en 2005. Ese mismo a&ntilde;o,   Nithipatikon y su grupo de trabajo informaron de nuevos   inhibidores de la hidr&oacute;lisis del 2-araquidonoilglicerol   como alternativa para el tratamiento de neoplasias   malignas de pr&oacute;stata; mientras que Grimaldi, Di   Marzo, Bifulco y colaboradores confirmaron en 2006 y   Guindon and Hohmann en 2011, la interesante acci&oacute;n   inhibitoria de la anandamida sobre c&eacute;lulas de c&aacute;ncer   de seno. De Morrow y col. reportaron en 2007 la acci&oacute;n   de los endocanabinoides sobre el crecimiento del   colangiocarcinoma; en abril del mismo a&ntilde;o, Bifulco,   Laezza, Gazzero y Pentimalli publicaron una interesante   revisi&oacute;n acerca de los endocanabinoides como   supresores emergentes de la angiog&eacute;nesis y la invasi&oacute;n   tumoral, y, como ya se ha mencionado, son muchos   los investigadores que se han dedicado a estudiar los   posibles &eacute;xitos de la terapia canabinoide en el tratamiento   del c&aacute;ncer.</p>     <p><b><i>Posibles mecanismos de acci&oacute;n antineopl&aacute;sica de   canabinoides/endocannabinoides</i></b></p>     <p>En la actualidad se han propuesto diferentes mecanismos   de acci&oacute;n antineopl&aacute;sica de los canabinoides y   los endocanabinoides. Una de las formas que ha resultado   &uacute;til para conseguir la acci&oacute;n antineopl&aacute;sica de los   endocanabinoides es el bloqueo de las enzimas que   inactivan dichos compuestos. Se ha demostrado que   los niveles de canabinoides end&oacute;genos, principalmente   anandamida, resultan ser considerablemente m&aacute;s altos   en c&eacute;lulas cancerosas y premalignas, que en tejidos   normales (Ligresti <i>et al</i>., 2003). Basados en esto, se han   hecho intentos por incrementar la concentraci&oacute;n local   de endocanabinoides en las c&eacute;lulas tumorales bloqueando   su sistema de transporte o las enzimas que los   inactivan, como la monoacilglicerol (MAGL) y la amidohidrolasa   de &aacute;cido graso (FAAH). De esta manera,   se han inducido los efectos antitumorales de las rutas   de se&ntilde;alizaci&oacute;n de los receptores canabinoides (CB),   en varios tipos de c&aacute;ncer como los de tiroides, cerebro   y pr&oacute;stata (Bifulco <i>et al</i>., 2004; Nithipatikon <i>et al</i>.,   2004; Nithipatikon <i>et al</i>., 2005; De Lago <i>et al</i>., 2006;   Endsley <i>et al</i>., 2007). El bloqueo del metabolismo de la   anandamida puede resultar &uacute;til en el control del c&aacute;ncer,   ya que adem&aacute;s de incrementar los niveles de este   endocanabinoide, evita la generaci&oacute;n de etanolamina   (Matas <i>et al</i>., 2007). Sin embargo, se ha observado que   las sustancias hasta ahora ensayadas para bloquear las   enzimas que degradan la anandamida y el 2-araquidonoilglicerol,   as&iacute; como el inhibidor del transporte de   anandamida VDM11, presentan algunos efectos colaterales   diversos e inespec&iacute;ficos (De Lago <i>et al</i>., 2006);   lo cual motiva el dise&ntilde;o de nuevas mol&eacute;culas con el   prop&oacute;sito de conseguir una acci&oacute;n m&aacute;s espec&iacute;fica y   limpia sobre la degradaci&oacute;n y transporte de los endocanabinoides. Esta estrategia convendr&iacute;a ensayarla   paralelamente con consideraciones acerca de los ritmos   biol&oacute;gicos celulares que pudieran alterar el comportamiento   de las c&eacute;lulas cancer&iacute;genas (Goldbeter <i>et al</i>., 2007), as&iacute; como el momento de mayor activaci&oacute;n   de las MAGL y FAAH, lo cual constituir&iacute;a hasta ahora   un criterio novedoso en la lucha por la b&uacute;squeda de   nuevas herramientas contra el c&aacute;ncer (Smolensky and   Peppas, 2007).</p>     <p>Existen efectos directos e indirectos de los canabinoides   sobre el c&aacute;ncer que se pueden explicar a trav&eacute;s de   diferentes mecanismos de acci&oacute;n. Se sabe que los canabinoides   ex&oacute;genos pueden atacar directamente las   c&eacute;lulas cancerosas a trav&eacute;s de su uni&oacute;n a receptores   CB. Aquello afecta las rutas de se&ntilde;alizaci&oacute;n celular,   lo cual puede inducir la supresi&oacute;n del crecimiento celular,   as&iacute; como su muerte o inhibir la migraci&oacute;n. Adem&aacute;s,   los canabinoides pueden actuar indirectamente,   inhibiendo el proceso de la angiog&eacute;nesis o por interferencia   con el sistema inmune (Flygare and Sander,   2008). En tumores cerebrales, los canabinoides inducen   la muerte celular porque estimulan la s&iacute;ntesis de   ceramida de novo, resultando en apoptosis (G&oacute;mez   del Pulgar <i>et al</i>., 2002; Gomez del Pulgar and De Ceballos,   2002; Flygare and Sander, 2008).</p>     <p>Dado que el c&aacute;ncer de seno puede ser dependiente de   hormonas como los estr&oacute;genos y la prolactina, cuando   se da, los canabinoides inducen la supresi&oacute;n del crecimiento   porque influyen en la subregulaci&oacute;n de los   receptores de prolactina, adem&aacute;s de contrarrestar los   efectos pro proliferativos de la prolactina misma (Flygare   an Sadner, 2008; Guindon and Hohmann, 2011). Sin embargo, se ha demostrado que los canabinoides,   adem&aacute;s, inhiben el c&aacute;ncer de seno por acci&oacute;n directa   sobre receptores CB2 (Grimaldi <i>et al</i>., 2006).</p>     ]]></body>
<body><![CDATA[<p>En el c&aacute;ncer de pr&oacute;stata incurren al menos tres factores   sobre los cuales act&uacute;an los canabinoides: por una   parte, en sus c&eacute;lulas se expresan niveles superiores de   receptores CB1 y CB2 a las c&eacute;lulas normales de pr&oacute;stata;   en segundo lugar, de forma similar a como ocurre con   el c&aacute;ncer de seno, en las c&eacute;lulas cancerosas de pr&oacute;stata   tambi&eacute;n se expresan receptores de prolactina (Melck <i>et al</i>., 2000; Guindon and Hohmann, 2011). Finalmente,   el receptor del factor de crecimiento endotelial, EGFR,   encontrado en tales c&eacute;lulas. Los canabinoides act&uacute;an   sobre los tres factores, controlando de esta manera el   crecimiento de las c&eacute;lulas anormales. La acci&oacute;n sobre   los EGFR resulta en una inhibici&oacute;n de la proliferaci&oacute;n   en el d&iacute;a 3 y en muerte celular masiva en el d&iacute;a 5 por   apoptosis/necrosis (Mimeault <i>et al</i>., 2003). Adem&aacute;s,   se ha reportado que los canabinoides subregulan el   receptor de andr&oacute;genos y el ant&iacute;geno espec&iacute;fico de   pr&oacute;stata (Sarfaraz <i>et al</i>., 2006).</p>     <p>En c&aacute;ncer de colon, tambi&eacute;n se expresan receptores CB1   y CB2, y se sabe que los canabinoides inducen apoptosis   de estas c&eacute;lulas anormales a trav&eacute;s de efectos mediados   por receptores CB1 (Flygare and Sander, 2008). Otro mecanismo a trav&eacute;s del cual act&uacute;an los canabinoides   es la inhibici&oacute;n de la angiog&eacute;nesis, bloqueando los   factores proangiog&eacute;nicos o por efecto directo sobre la   formaci&oacute;n de vasos in vivo. Esto ha sido especialmente   estudiado en c&aacute;ncer de piel, tiroides y gliomas, ya que   se ha observado que los canabinoides inhiben la producci&oacute;n   del factor de crecimiento endotelial vascular,   VEGF (Portella <i>et al</i>., 2003; Bl&aacute;zquez <i>et al</i>., 2004), un   factor proangiog&eacute;nico. Actualmente se avanza en el entendimiento   de si los canabinoides son realmente efectivos   en condiciones como la leucemia mieloide aguda   (AML), s&iacute;ndromes mielodisapl&aacute;sicos o des&oacute;rdenes mieloproliferativos   (Flygare and Sander, 2008), ya que ha   sido documentado que condiciones como la AML expresan   receptores CB2 (Alberich <i>et al</i>., 2004).</p>     <p>Cuando se analiza el potencial terap&eacute;utico de los canabinoides   en c&aacute;ncer, deben considerarse los posibles   efectos procancer&iacute;genos de estos compuestos, ya   que existen algunos reportes que indican que compuestos   como el THC y la anandamida pueden inducir   activaci&oacute;n del factor de crecimiento endotelial   (VEGF) en l&iacute;neas de c&eacute;lulas de c&aacute;ncer, tales como   c&aacute;ncer de pulm&oacute;n, carcinoma escamoso de piel, carcinoma   de vejiga, glioblastoma, astrocitoma y c&aacute;ncer   de ri&ntilde;&oacute;n v&iacute;a activaci&oacute;n de receptores CB2, cuando   existen concentraciones micromolares de los canabinoides   (Hart <i>et al</i>., 2004).</p>     <p>Por otra parte, puesto que los canabinoides pueden   suprimir las respuestas mediadas por c&eacute;lulas y la respuesta   humoral inmune, deben tenerse en cuenta los   efectos sobre la inmunidad del tumor cuando se considere   atacar el sistema canabinoide in vivo (Klein <i>et al</i>.,   2003). La administraci&oacute;n de canabinoides a ratones   transplantados, con c&aacute;ncer, carentes de receptores CB,   puede promover el crecimiento del c&aacute;ncer mediante la   supresi&oacute;n de la respuesta anti-tumoral inmune. Se ha   demostrado, adem&aacute;s, que el antagonista del receptor   canabinoide CB1, SR141716A, en bajas dosis, presenta   efectos anticancer&iacute;genos en algunas l&iacute;neas de c&aacute;ncer,   tales como c&aacute;ncer de seno, de tiroides y carcinoma   de colon (Sarnataro <i>et al</i>., 2006). Se ha postulado   un mecanismo de acci&oacute;n antineopl&aacute;sico diferente, de   los endocannabinoides, particularmente de la anandamida,   a trav&eacute;s de receptores vanilloides (Maccarrone   <i>et al</i>., 2000; Contassot <i>et al</i>., 2004). Tambi&eacute;n se ha sugerido   que la anandamida induce muerte celular de   manera independiente del receptor, a trav&eacute;s de su interacci&oacute;n   con dominios de membrana ricos en colesterol. Lo mismo sucede con el colangiocarcinoma, en el   que la anandamida induce apoptosis e inhibe la proliferaci&oacute;n   celular mediante esta interacci&oacute;n, a trav&eacute;s de   la acumulaci&oacute;n de ceramida (De Morrow <i>et al</i>., 2007). Otro mecanismo observado a partir de estudios en animales   de experimentaci&oacute;n, implica la interacci&oacute;n de la   ciclooxigenasa (COX) y la lipooxigenasa (LOX), lo cual   se observ&oacute; cuando la administraci&oacute;n de metanandamida   estimul&oacute; la proliferaci&oacute;n celular de una manera independiente   de receptores CB, mediante la inducci&oacute;n   de COX-2 (Gardner <i>et al</i>., 2003), mientras una dosis   10 veces menor redujo la met&aacute;stasis de una manera   dependiente del receptor CB1 (Portella <i>et al</i>., 2003).</p>     <p>Finalmente, existe una creciente evidencia de que los   canabinoides pueden actuar de una manera selectiva   sobre c&eacute;lulas cancerosas, ya que estas expresan con   mayor facilidad receptores CB en comparaci&oacute;n con las   c&eacute;lulas sanas, lo cual hace que su acci&oacute;n sobre &eacute;stas   &uacute;ltimas sea m&iacute;nima. Lo anterior explica la menor sensibilidad   de estas c&eacute;lulas a la acci&oacute;n de tales compuestos   (Flygare and Sander, 2008). Se ha demostrado que la   acci&oacute;n del THC sobre c&eacute;lulas de glioma resulta en s&iacute;ntesis   de ceramida y muerte celular, mientras que la misma   sustancia brinda una acci&oacute;n protectora sobre los astrocitos   contra el estr&eacute;s oxidativo (Carracedo <i>et al</i>., 2004).</p>     <p><b><font size="3">Posible influencia de la cronobiolog&iacute;a   en la acci&oacute;n anticancer&iacute;gena de los   canabinoides y endocanabinoides</font></b></p>     <p>Los ritmos circadianos en los seres vivos gobiernan un   gran n&uacute;mero de funciones fisiol&oacute;gicas, incluyendo el ciclo sue&ntilde;o-despertar, la producci&oacute;n de hormonas, la   formaci&oacute;n y liberaci&oacute;n de neurotransmisores y el ciclo   celular, entre otros. As&iacute;, los ritmos biol&oacute;gicos juegan   un papel importante tanto en la salud como en la enfermedad. &Eacute;sta es la raz&oacute;n por la cual en la actualidad   se est&aacute; haciendo un gran esfuerzo por conocer los par&aacute;metros   de la cronofarmacolog&iacute;a, que permitan una   acci&oacute;n cronoterap&eacute;utica eficaz y potencialmente exenta   de las complicaciones que trae el uso de f&aacute;rmacos   en horarios establecidos sin tener en cuenta los ciclos   circadianos. Estudios de varios agentes antineopl&aacute;sicos   han demostrado que cada uno posee un patr&oacute;n de acci&oacute;n   cronofarmacol&oacute;gica &oacute;ptimo, de acuerdo con la   fase del ciclo celular en la cual ejercen su acci&oacute;n citot&oacute;xica   (L&eacute;vi, 2001; L&eacute;vi, 2002; Mormont and L&eacute;vi,   2003). As&iacute;, el 5-fluorouracilo (5-FU) presenta un pico   m&aacute;ximo de acci&oacute;n citot&oacute;xica a las 4 p.m (Goldbeter <i>et al</i>., 2007), para pacientes con c&aacute;ncer, cuya actividad   es diurna, y, posiblemente, resultar&aacute; diferente en pacientes   con c&aacute;ncer cuya actividad sea nocturna. Hasta   el momento es poco lo que se ha hecho al respecto,   considerando la acci&oacute;n antineopl&aacute;sica de los endocanabinoides   y canabinoides.</p>     <p><b><font size="3">Conclusiones</font></b></p>     <p>La quimioterapia actual del c&aacute;ncer, que utiliza f&aacute;rmacos   como los agentes alquilantes, antimetabolitos,   antibi&oacute;ticos antineopl&aacute;sicos, cisplatino y sus derivados   y alcaloides de la vinca, ha resultado efectiva en muchos   de los tratamientos antineopl&aacute;sicos en la especie   canina. Sin embargo, son bien conocidos los efectos   t&oacute;xicos de dichos tratamientos. La comunidad cient&iacute;fica   ofrece para un futuro mediano nuevas alternativas   terap&eacute;uticas, basadas en el comportamiento de   los canabinoides y endoconabinoides en el control de   las enfermedades neopl&aacute;sicas, teniendo en cuenta su   alto grado de selectividad sobre c&eacute;lulas cancerosas; lo   anterior mitiga muchos de los efectos adversos observados   en los tratamientos tradicionales. Dicha actividad   podr&iacute;a potenciarse teniendo en cuenta los criterios   cronofarmacol&oacute;gicos que orientan los ritmos biol&oacute;gicos   del paciente.</p>     <p><b><font size="3">Referencias</font></b></p>     ]]></body>
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