<?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>0122-7483</journal-id>
<journal-title><![CDATA[Universitas Scientiarum]]></journal-title>
<abbrev-journal-title><![CDATA[Univ. Sci.]]></abbrev-journal-title>
<issn>0122-7483</issn>
<publisher>
<publisher-name><![CDATA[Facultad de Ciencias de la Pontificia Universidad Javeriana de Bogotá.]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0122-74832012000200006</article-id>
<title-group>
<article-title xml:lang="es"><![CDATA[Biosíntesis de alcaloides bencilisoquinolínicos]]></article-title>
<article-title xml:lang="en"><![CDATA[Benzylisoquinoline alkaloid biosynthesis]]></article-title>
<article-title xml:lang="pt"><![CDATA[Biossíntese de alcalóides benzilisoquinolinas]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[De-La-Cruz Chacón]]></surname>
<given-names><![CDATA[Iván]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[González-Esquinca]]></surname>
<given-names><![CDATA[Alma Rosa]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Riley-Saldaña]]></surname>
<given-names><![CDATA[Christian Anabí]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad de Ciencias y Artes de Chiapas Facultad de Ciencias Biológicas ]]></institution>
<addr-line><![CDATA[Chiapas ]]></addr-line>
<country>México</country>
</aff>
<aff id="A02">
<institution><![CDATA[,Universidad Nacional Autónoma de México Posgrado en Ciencias Biológicas ]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
<country>México</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>08</month>
<year>2012</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>08</month>
<year>2012</year>
</pub-date>
<volume>17</volume>
<numero>2</numero>
<fpage>189</fpage>
<lpage>202</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0122-74832012000200006&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0122-74832012000200006&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0122-74832012000200006&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[Los alcaloides bencilisoquinolínicos (ABI) son metabolitos especializados con una distribución filogenética antigua pero conservada todavía en clados modernos. Varios de ellos, como la morfina, sanguinerina y berberina tienen importancia en la medicina moderna. En esta revisión se analizan los aspectos más sobresalientes del estado actual de la biosíntesis de ABI. Se han realizado estudios que han permitido conocer la biosíntesis de 22 de estos metabolitos nitrogenados. En su formación participan 43 enzimas agrupadas en oxido-reductasas, transferasas y liasas, que en algunos casos representan ejemplos atípicos de la forma en la que se originó la diversificación del metabolismo secundario, entre ellos proteínas citocromo P450 (CYP450) con actividades catalíticas para la ruta de los ABI, o la enzima norcoclaurina sintasa (NCS) que esta emparentada con proteínas alergénicas de defensa. Así mismo, hay avances genéticos en los que se ha podido caracterizar 30 enzimas, permitiendo conocer procesos de regulación. Otro aspecto interesante es la compartimentación de los sitios de biosíntesis y acumulación de ABI ya que en varios casos están separados espacialmente y en distintas especies o en la misma pueden participar varios tipos de células. Ello ha sugerido el transporte intra e intercelular de los alcaloides, los precursores y de las enzimas, se ha documentado el transporte de berberina entre el citoplasma y las vacuolas del almacenamiento. El panorama de la biosíntesis de ABI se ha construido con los estudios de ejemplares de importancia farmacológica.]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[The benzylisoquinoline alkaloids (BIA) are specialized metabolites with an ancient phylogenetic distribution, but still preserved in modern clades. Some of them, such as morphine, sanguinerine or berberine, are important for modern medicine. This review discusses the highlights of the current state of the biosynthesis of BIA. There have been studies that show the biosynthesis of 22 of these nitrogenous metabolites. In their formation there are 43 enzymes grouped into oxidoreductases, transferases and lyases, which in some cases represent atypical examples of the manner in which the secondary metabolism diversification was originated. Two of these examples are the cytochrome proteins P450 (P450), with catalytic activities for ABI route, or the norcoclaurine synthase enzyme (NCS), which share substantial identity with defense allergenic proteins. Likewise, there are genetic advances that have produced the characterization of 30 enzymes, allowing knowledge of regulatory processes. Another interesting aspect is the compartmentation of the biosynthesis sites and accumulation of BIA, since in several cases they are spatially separated and in different species, or in the same species several types of cells may be involved. This has suggested intra and intercellular transport of alkaloids, precursors and enzymes, and it has been documented berberine transport between the cytoplasm and the vacuoles of storage. The picture for the biosynthesis of BIA has been constructed with exemplary studies of alkaloids with pharmacological importance.]]></p></abstract>
<abstract abstract-type="short" xml:lang="pt"><p><![CDATA[Os alcalóides benzilisoquinolinas (ABI) são metabólitos especializados com uma distribuição filogenética antiga, mas ainda preservada em clados modernos. Vários deles, como a morfina, sanguinarina e berberina são importantes na medicina moderna. Neste artigo, se analisam os aspectos mais destacados do estado atual da biossíntese de ABI; há estudos que tem permitido conhecer a biossíntese de 22 desses metabólitos nitrogenados. Na sua síntese participam 43 enzimas agrupadas em oxidoreductases, transferases, liases e, em alguns casos, representam exemplos atípicos da forma pela qual se originou a diversificação do metabolismo secundário, incluindo as proteínas do citocromo P450 (CYP450), com atividades catalíticas para a rota dos ABI, ou a enzima norcoclaurina sintase (NCS), que está relacionada com proteínas alergênicas de defesa. Da mesma forma, há avanços genéticos na caracterização de 30 enzimas, permitindo conhecer processos de regulação. Outro aspecto interessante é a compartimentalização dos sítios de biossíntese e acumulação de ABI uma vez que em muitos casos estão separados espacialmente e em diferentes espécies, ou na mesma podem participar vários tipos de células. Isto há sugerido o transporte intra e intercelular de alcalóides, precursores das enzimas; tem sido documentado o transporte de berberina entre o citoplasma e os vacúolos de armazenamento. A perspectiva na biossíntese de ABI foi construída com os estudos de exemplares de importância farmacológica.]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[metabolismo especializado]]></kwd>
<kwd lng="es"><![CDATA[metabolismo secundario]]></kwd>
<kwd lng="es"><![CDATA[transporte celular]]></kwd>
<kwd lng="es"><![CDATA[compartimentación celular]]></kwd>
<kwd lng="es"><![CDATA[regulación tejido-específica]]></kwd>
<kwd lng="en"><![CDATA[specialized metabolism]]></kwd>
<kwd lng="en"><![CDATA[secondary metabolism]]></kwd>
<kwd lng="en"><![CDATA[cellular transport]]></kwd>
<kwd lng="en"><![CDATA[cell compartment]]></kwd>
<kwd lng="en"><![CDATA[tissue-specific regulation]]></kwd>
<kwd lng="pt"><![CDATA[metabolismo especializado]]></kwd>
<kwd lng="pt"><![CDATA[metabolismo secundário]]></kwd>
<kwd lng="pt"><![CDATA[transporte celular]]></kwd>
<kwd lng="pt"><![CDATA[compartimentalização celular]]></kwd>
<kwd lng="pt"><![CDATA[regulação tecido-específica]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <font size="2" face="verdana">     <p align="center"><font size=4><b>Bios&iacute;ntesis de alcaloides bencilisoquinol&iacute;nicos</b></font></p>     <p align="center"><font size=3><b>Benzylisoquinoline alkaloid biosynthesis</b></font></p>     <p align="center"><font size=3><b>Bioss&iacute;ntese de alcal&oacute;ides benzilisoquinolinas</b></font></p>     <p align="center">Iv&aacute;n De-La-Cruz Chac&oacute;n<sup>1,2</sup>, Alma Rosa Gonz&aacute;lez-Esquinca<sup>1</sup>, Christian Anab&iacute; Riley-Salda&ntilde;a <sup>1,2</sup></p>     <p align="center"><sup>1</sup>Laboratorio de Fisiolog&iacute;a y Qu&iacute;mica Vegetal, Facultad de Ciencias Biol&oacute;gicas, Universidad de Ciencias y Artes de Chiapas, Chiapas, M&eacute;xico.    <br> <sup>2</sup>Posgrado en Ciencias Biol&oacute;gicas, Universidad Nacional Aut&oacute;noma de M&eacute;xico; Distrito Federal, M&eacute;xico.</p>     <p align="center">*<a target="_blank" href="mailto:ivan.cruz@unicach.mx">ivan.cruz@unicach.mx</a>; <a target="_blank" href="mailto:aesquinca@unicach.mx">aesquinca@unicach.mx</a>; <a target="_blank" href="mailto:christian.riley@unicach.mx">christian.riley@unicach.mx</a></p>     <p align="center">Recibido: 14-07-2012; Aceptado: 05-08-2012</p> <hr>     <p><font size=3><b>Resumen</b></font></p>     ]]></body>
<body><![CDATA[<p>Los alcaloides bencilisoquinol&iacute;nicos (ABI) son metabolitos especializados con una distribuci&oacute;n filogen&eacute;tica antigua pero conservada todav&iacute;a en clados modernos. Varios de ellos, como la morfina, sanguinerina y berberina tienen importancia en la medicina moderna. En esta revisi&oacute;n se analizan los aspectos m&aacute;s sobresalientes del estado actual de la bios&iacute;ntesis de ABI. Se han realizado estudios que han permitido conocer la bios&iacute;ntesis de 22 de estos metabolitos nitrogenados. En su formaci&oacute;n participan 43 enzimas agrupadas en oxido-reductasas, transferasas y liasas, que en algunos casos representan ejemplos at&iacute;picos de la forma en la que se origin&oacute; la diversificaci&oacute;n del metabolismo secundario, entre ellos prote&iacute;nas citocromo P450 (CYP450) con actividades catal&iacute;ticas para la ruta de los ABI, o la enzima norcoclaurina sintasa (NCS) que esta emparentada con prote&iacute;nas alerg&eacute;nicas de defensa. As&iacute; mismo, hay avances gen&eacute;ticos en los que se ha podido caracterizar 30 enzimas, permitiendo conocer procesos de regulaci&oacute;n. Otro aspecto interesante es la compartimentaci&oacute;n de los sitios de bios&iacute;ntesis y acumulaci&oacute;n de ABI ya que en varios casos est&aacute;n separados espacialmente y en distintas especies o en la misma pueden participar varios tipos de c&eacute;lulas. Ello ha sugerido el transporte intra e intercelular de los alcaloides, los precursores y de las enzimas, se ha documentado el transporte de berberina entre el citoplasma y las vacuolas del almacenamiento. El panorama de la bios&iacute;ntesis de ABI se ha construido con los estudios de ejemplares de importancia farmacol&oacute;gica.</p>     <p><b>Palabras clave: </b>metabolismo especializado, metabolismo secundario, transporte celular, compartimentaci&oacute;n celular, regulaci&oacute;n tejido-espec&iacute;fica.</p> <hr>     <p><font size=3><b>Abstract</b></font></p>     <p>The benzylisoquinoline alkaloids (BIA) are specialized metabolites with an ancient phylogenetic distribution, but still preserved in modern clades. Some of them, such as morphine, sanguinerine or berberine, are important for modern medicine. This review discusses the highlights of the current state of the biosynthesis of BIA. There have been studies that show the biosynthesis of 22 of these nitrogenous metabolites. In their formation there are 43 enzymes grouped into oxidoreductases, transferases and lyases, which in some cases represent atypical examples of the manner in which the secondary metabolism diversification was originated. Two of these examples are the cytochrome proteins P450 (P450), with catalytic activities for ABI route, or the norcoclaurine synthase enzyme (NCS), which share substantial identity with defense allergenic proteins. Likewise, there are genetic advances that have produced the characterization of 30 enzymes, allowing knowledge of regulatory processes. Another interesting aspect is the compartmentation of the biosynthesis sites and accumulation of BIA, since in several cases they are spatially separated and in different species, or in the same species several types of cells may be involved. This has suggested intra and intercellular transport of alkaloids, precursors and enzymes, and it has been documented berberine transport between the cytoplasm and the vacuoles of storage. The picture for the biosynthesis of BIA has been constructed with exemplary studies of alkaloids with pharmacological importance.</p>     <p><b>Key words: </b>specialized metabolism, secondary metabolism, cellular transport, cell compartment, tissue-specific regulation.</p> <hr>     <p><font size=3><b>Resumo</b></font></p>     <p>Os alcal&oacute;ides benzilisoquinolinas (ABI) s&atilde;o metab&oacute;litos especializados com uma distribui&ccedil;&atilde;o filogen&eacute;tica antiga, mas ainda preservada em clados modernos. V&aacute;rios deles, como a morfina, sanguinarina e berberina s&atilde;o importantes na medicina moderna. Neste artigo, se analisam os aspectos mais destacados do estado atual da bioss&iacute;ntese de ABI; h&aacute; estudos que tem permitido conhecer a bioss&iacute;ntese de 22 desses metab&oacute;litos nitrogenados. Na sua s&iacute;ntese participam 43 enzimas agrupadas em oxidoreductases, transferases, liases e, em alguns casos, representam exemplos at&iacute;picos da forma pela qual se originou a diversifica&ccedil;&atilde;o do metabolismo secund&aacute;rio, incluindo as prote&iacute;nas do citocromo P450 (CYP450), com atividades catal&iacute;ticas para a rota dos ABI, ou a enzima norcoclaurina sintase (NCS), que est&aacute; relacionada com prote&iacute;nas alerg&ecirc;nicas de defesa. Da mesma forma, h&aacute; avan&ccedil;os gen&eacute;ticos na caracteriza&ccedil;&atilde;o de 30 enzimas, permitindo conhecer processos de regula&ccedil;&atilde;o. Outro aspecto interessante &eacute; a compartimentaliza&ccedil;&atilde;o dos s&iacute;tios de bioss&iacute;ntese e acumula&ccedil;&atilde;o de ABI uma vez que em muitos casos est&atilde;o separados espacialmente e em diferentes esp&eacute;cies, ou na mesma podem participar v&aacute;rios tipos de c&eacute;lulas. Isto h&aacute; sugerido o transporte intra e intercelular de alcal&oacute;ides, precursores das enzimas; tem sido documentado o transporte de berberina entre o citoplasma e os vac&uacute;olos de armazenamento. A perspectiva na bioss&iacute;ntese de ABI foi constru&iacute;da com os estudos de exemplares de import&acirc;ncia farmacol&oacute;gica.</p>     <p><b>Palavras-chave: </b>metabolismo especializado, metabolismo secund&aacute;rio, transporte celular, compartimentaliza&ccedil;&atilde;o celular, regula&ccedil;&atilde;o tecido-espec&iacute;fica.</p> <hr>     <p><font size=3><b>Introducci&oacute;n</b></font></p>     <p>Las plantas producen metabolitos secundarios, recientemente renombrados como metabolitos especializados, mol&eacute;culas que no son ubicuas, y que no est&aacute;n directamente involucradas con los procesos primarios de crecimiento y desarrollo, lo que significa que no son necesarias en el metabolismo primario, pero que cumplen con alguna funci&oacute;n ecol&oacute;gica y que toman precursores para su bios&iacute;ntesis del metabolismo primario (1-4).</p>     ]]></body>
<body><![CDATA[<p>Dentro de estos metabolitos especializados se encuentran los alcaloides, cerca de 21, 000 compuestos encontrados hasta hoy en el 20% de la plantas, son mol&eacute;culas nitrogenadas de bajo peso molecular con una amplia variedad de estructuras qu&iacute;micas y de actividades biol&oacute;gicas (5-8). Algunos de ellos como la vincristina y el taxol son usados como f&aacute;rmacos anticancer&iacute;genos y otros m&aacute;s incluyendo a la morfina como potentes analg&eacute;sicos. Hasta ahora, la raz&oacute;n de ser de los alcaloides en las plantas est&aacute; justificada por sus implicaciones ecol&oacute;gicas, ya que son barreras qu&iacute;micas contra fitopat&oacute;genos (bacterias, hongos y virus) y herb&iacute;voros o reservorios de nitr&oacute;geno (6, 9).</p>     <p>La importancia de estos compuestos naturales tanto para las plantas como para los humanos ha llamado la atenci&oacute;n de varios investigadores. Se han podido determinar aspectos celulares y moleculares de su bios&iacute;ntesis, entre ellos las formas, los sitios, los momentos y la regulaci&oacute;n (10-12). Uno de los puntos m&aacute;s interesantes es el relacionado con la compartimentaci&oacute;n de las rutas de bios&iacute;ntesis, en donde est&aacute;n involucrados diferentes tejidos, c&eacute;lulas, org&aacute;nulos y transportadores espec&iacute;ficos. El entendimiento de estos aspectos permite un acercamiento a la forma en la cual las c&eacute;lulas y los tejidos de las plantas resuelven un movimiento coordinado de precursores, intermediario, productos, enzimas y transcritos para la formaci&oacute;n de metabolitos secundarios. En el estudio de este tema est&aacute; integrado el uso de herramientas modernas y tradicionales en las &aacute;reas de biolog&iacute;a celular y molecular, gen&eacute;tica, qu&iacute;mica y bioqu&iacute;mica y en varios casos son investigaciones de frontera. En este trabajo se documenta el conocimiento actual sobre la bios&iacute;ntesis de alcaloides bencilisoquinol&iacute;nicos y su coordinaci&oacute;n espacio temporal.</p>     <p><b>Bios&iacute;ntesis de alcaloides bencilisoquinol&iacute;nicos</b></p>     <p>El primer alcaloide bencilisoquinol&iacute;nico (ABI) conocido fue la morfina, aislada del opio por Friedrich Wilhelm Sert&uuml;rner en 1804, constituyendo todo un suceso en la qu&iacute;mica de los productos naturales (13, 14). Hoy se cuenta con un n&uacute;mero cercano a 2500 estructuras, que se caracterizan por presentar un esqueleto carbonado b&aacute;sico que proviene de un enlace entre un anillo isoquinol&iacute;nico y otro bencil (sistema 1-benciltetrahidroisoquinolina, 1-btiq) (15). La diversidad estructural resulta de las modificaciones al esqueleto 1-btiq por hidroxilaciones, reducciones, oxidaciones, formaci&oacute;n de enlaces C-C y O- y A-metilaciones (16, 17), de tal forma que se pueden distinguir b&aacute;sicamente 13 subtipos: simples, aporfinas, benzofenantridinas, bisbencilisoquinolinas, cularinas, ftalideisoquinolinas, morfinanos, morfinandienonas, pavinas/isopavinas, protoberberinas, protopinas, rhoeadinas/paverrubinas, y secoberberinas (<a href="#f1">Figura 1</a>) (16, 18, 19).</p>     <center><a name="f1"><img src="img/revistas/unsc/v17n2/v17n2a06f1.jpg"></a></center>     <p>Los ABI adem&aacute;s de ser reconocidos por las propiedades farmacol&oacute;gicas que exhiben (<a href="#t1">Tabla 1</a>), tienen importancia biol&oacute;gica porque son mol&eacute;culas con un origen vegetal evolutivo antiguo, producidas principalmente por Angiospermas primitivas y conservados en clados modernos (19, 20).</p>     <center><a name="t1"><img src="img/revistas/unsc/v17n2/v17n2a06t1.jpg"></a></center>     <p>Los estudios para tratar de establecer la bios&iacute;ntesis de ABI inician en 1910 con Winterstein &amp; Trier en Alemania, se&ntilde;alando los primeros precursores derivados de la tirosina. Es decir, han pasado doscientos a&ntilde;os desde el aislamiento del primer ABI, y cien del inicio de los estudios para tratar de descubrir como se forman en las plantas (21).</p>     <p>Aunque te&oacute;ricamente los amino&aacute;cidos L-tirosina y L-fenilalanina son considerados como precursores b&aacute;sicos de toda la diversidad de ABI, &uacute;nicamente con el primero se han reportado trabajos de incorporaci&oacute;n a la ruta de bios&iacute;ntesis (16, 21, 22).</p>     <p>La bios&iacute;ntesis de ABI puede agruparse artificialmente en tres intervalos a) la producci&oacute;n del precursor central de todos los ABI, S-norcoclaurina, desde dos mol&eacute;culas de L-tirosina, b) la transformaci&oacute;n de 5-norcoclaurina a S-reticulina, el intermediarion principal de diversificaci&oacute;n de la ruta y c) las rutas de diversificaci&oacute;n que dan origen a los diferentes tipos de ABI (<a href="#f2">Figura 2</a>). Las dos primeras partes que forman el n&uacute;cleo de la bios&iacute;ntesis est&aacute;n bastante bien caracterizadas a nivel prote&oacute;mico y gen&oacute;mico, sin embargo, hay 4 enzimas que a&uacute;n no han sido aisladas y/o caracterizadas de plantas productoras de ABI aunque se ha reconocido su actividad catal&iacute;tica (21, 23-25). En tanto que, sobre la diversificaci&oacute;n de la ruta, los avances m&aacute;s importantes se han centrado sobre seis ramas que inician con <i>(S)- </i>reticulina y permiten la bios&iacute;ntesis de alcaloides a) bencilisoquinol&iacute;nicos simples (papaverina) (26-29), b) tipo protoberberina (berberina) (22, 30-32), c) tipo benzofenantidrina (sanguinerina) (33-36), d) morfinanos (morfina) (17,37), e) aporfina (magnoflorina) (30) y f) tipo fthalideisoquinolina (noscapina) (32). As&iacute; tambi&eacute;n se conocen las enzimas que producen los ABI dim&eacute;ricos como la berbamunina que se originan de un precursor que precede a la (S)-reticulina (38-39). Dependiendo de la ruta de diversificaci&oacute;n se necesitan entre diez y veinte enzimas para obtener un alcaloide como producto final (<a href="#t2">Tabla 2</a>).</p>     ]]></body>
<body><![CDATA[<center><a name="f2"><img src="img/revistas/unsc/v17n2/v17n2a06f2.jpg"></a></center>     <center><a name="t2"><img src="img/revistas/unsc/v17n2/v17n2a06t2.jpg"></a></center>     <p>Un esquema actualizado de la diversidad biosint&eacute;tica se representa en la  <a href="#f2">figura 2</a>. Este plano bioqu&iacute;mico se ha construido con estudios de bios&iacute;ntesis en plantas y/o cultivos celulares de <i>Argemone mexicana, Berber&iacute;s stolonifera, B. beaniana, B. canadiensis, Coptis japonica, Corydalis vaginans, Eschscholzia californica, Papaver somniferum, P. bracteatum, Thalictrum flavum, T. tuberosum, T. bulgaricum, Tinospora caffra, T. cordifolia </i>y <i>Sanguinaria canadiense.</i></p>     <p></p>     <p>En suma, se ha podido dilucidar la participaci&oacute;n de 43 enzimas en la bios&iacute;ntesis de los ABI, agrupadas en 25 oxidoreductasas, 15 transferasas y 3 liasas. Dentro de las oxidoreductasas, sobresalen las dependientes de citocromo P450 (CYP), tanto por el n&uacute;mero (diez) como por sus caracter&iacute;sticas enzim&aacute;ticas, por ejemplo, las CYP80 y CYP719 encontradas en la ruta de los ABI, son enzimas t&iacute;picas de las plantas productoras de alcaloides (40,41). En tanto que, las de la familia CYP719A han sido encontradas solo en plantas productoras de ABI, catalizando la formaci&oacute;n de los puentes metilendioxi (28), lo que talvez signifique que la evoluci&oacute;n de estas CYP permiti&oacute; la presencia y diversificaci&oacute;n de los ABI. Otro grupo representativo de enzimas de la ruta son las S-adenosil-L-metionina metiltransferasas (trece). La metilaci&oacute;n enzim&aacute;tica es una reacci&oacute;n ubicua que ocurre en diversos organismos y resulta en la modificaci&oacute;n de las mol&eacute;culas para diferentes prop&oacute;sitos funcionales o regulatorios, en la bios&iacute;ntesis de ABI participan tres N-metiltransferasas y diez O-metiltransferasas (OMT). Las OMT catalizan la transferencia de un grupo metilo desde S-adenosil-L-metionina a un &aacute;tomo de ox&iacute;geno de un hidroxilo y participan en la formaci&oacute;n no solo de ABI sino de varios metabolitos especializados, permitiendo la diversificaci&oacute;n de estructuras y en muchos casos la alteraci&oacute;n de la solubilidad de la mol&eacute;cula y el incremento de sus actividades ecol&oacute;gicas (42). Las dos liasas tienen una participaci&oacute;n clave en la ruta, la TYDC que desv&iacute;a la tirosina a la bios&iacute;ntesis de ABI y la NCS que produce el precursor central, ambas son estimuladas por la presencia de pat&oacute;genos (43, 44). En el caso de la NCS hay estudios que la emparenta gen&eacute;ticamente con prote&iacute;nas que aparecen en la planta en condiciones patol&oacute;gicas, agrupadas bajo el nombre gen&eacute;rico de Pathogenesis-Related, prote&iacute;nas PR o de patogenicidad. La enzima NCS es la &uacute;nica prote&iacute;na conocida de la familia PR10 tipo Betv1 (prote&iacute;nas alerg&eacute;nicas) que demuestra de manera inequ&iacute;voca actividad catal&iacute;tica en las plantas (44). Como se puede constatar la bios&iacute;ntesis de ABI tiene enzimas especiales que hacen muy atractivo su estudio bioqu&iacute;mico, gen&eacute;tico, fisiol&oacute;gico y evolutivo.</p>     <p>Ha sido posible caracterizar los ADN complementarios de cerca de 30 enzimas, 24 solo en <i>P. sominferum, </i>lo que ha permitido conocer aspectos moleculares sobre la regulaci&oacute;n de esta ruta (11, 45-49). Los avances m&aacute;s importantes se centran sobre la bios&iacute;ntesis de algunos compuestos sobresalientes por su importancia medicinal, la mayor parte de las rutas de diversificaci&oacute;n permanecen desconocidas.</p>     <p><b>Compartimentaci&oacute;n de los sitios de bios&iacute;ntesis y acumulaci&oacute;n de ABI</b></p>     <p>Se ha avanzado en la comprensi&oacute;n de la bios&iacute;ntesis del metabolismo especializado, incluso de la expresi&oacute;n y regulaci&oacute;n de los genes implicados, sin embargo son escasos los estudios sobre los mecanismos que gobiernan la distribuci&oacute;n espacial de las enzimas, cofactores y sustratos que intervienen en la bios&iacute;ntesis de alcaloides (50). Este aspecto es importante para todo el metabolismo en general, ya que por si solas, la distribuci&oacute;n y localizaci&oacute;n espec&iacute;fica en diferentes sitios celulares o tisulares de las enzimas han sido consideradas como otro mecanismos de regulaci&oacute;n, la compartimentaci&oacute;n permite la optimizaci&oacute;n de reacciones enzim&aacute;ticas al procurar diversos entornos de pH subcelulares, permitiendo el funcionamiento simult&aacute;neo de las v&iacute;as que compiten por los mismos sustratos, evita adem&aacute;s, los ciclos f&uacute;tiles y confina los metabolitos t&oacute;xicos. Sin embargo y con frecuencia esta separaci&oacute;n requiere del transporte de los diferentes metabolitos de un punto a otro para su conversi&oacute;n (51-53), por tanto, existen prote&iacute;nas espec&iacute;ficas de transporte que facilitan y regular la importaci&oacute;n y exportaci&oacute;n de metabolitos a trav&eacute;s de membranas, contribuyendo al control del flujo entre compartimentos (54).</p>     <p>En la bios&iacute;ntesis y almacenamiento de ABI participan diferentes tipos de tejidos, c&eacute;lulas y org&aacute;nulos, por ejemplo en <i>P. somniferum, </i>la bios&iacute;ntesis de morfina y noscapina ocurre en los tallos y ra&iacute;ces y se acumulan en el citoplasma de c&eacute;lulas especializadas (c&eacute;lulas latic&iacute;feras) de los carpelos y de las c&aacute;psulas de los frutos, mientras que la sanguinarina es biosintetizada y acumulada en las ra&iacute;ces; en <i>B. stolonifera, </i>la berberina al parecer es biosintetizada y almacenada en todos los &oacute;rganos (23, 35, 55).</p>     <p>Generalmente las enzimas se encuentran reunidas en un solo tejido aunque pueden tener una distribuci&oacute;n m&aacute;s amplia, algunas como NCS, SalSyn y SaIR involucradas en la bios&iacute;ntesis de morfina, son m&aacute;s abundantes en ra&iacute;ces y brotes que en el resto de la planta (56-58). Otras como NMCH son m&aacute;s abundantes en los tallos y disminuyen gradualmente en las ra&iacute;ces, hojas y tejidos florales (58). Inclusive los transcriptos de la SOMT, enzima que participa en la bios&iacute;ntesis de noscapina, se acumulan mayormente en los tejidos a&eacute;reos de <i>P. somniferum </i>en donde ocurre la acumulaci&oacute;n de los alcaloides (32).</p>     ]]></body>
<body><![CDATA[<p>Esta diferenciaci&oacute;n espacial puede ser mayor ya que la expresi&oacute;n gen&eacute;tica y la actividad de las enzimas correspondientes, se ubica exclusivamente en ciertas c&eacute;lulas o compartimentos subcelulares. Por ejemplo Bird <i>et al. </i>(2003), Weid <i>et al. </i>(2004) y Samanani <i>et al. </i>(2006) demostraron en <i>Papaver somniferum </i>que en la bios&iacute;ntesis y acumulaci&oacute;n de morfina, sanguinarina y alcaloides relacionados, participan distintos tipos de c&eacute;lulas del floema tanto de los tallos como de las ra&iacute;ces (59-61). Utilizando t&eacute;cnicas de inmunofluorescencia e hibridaci&oacute;n de ARN <i>in situ </i>Bird <i>et al. </i>(2003) y Samanani <i>et al. </i>(2006) encontraron que 7 de las 14 enzimas de la ruta para alcaloides tipo morfina &#91;6OMT, CNMT, NMCH, 4&#39;OMT, BBE, SaIAT y COR&#93; est&aacute;n localizadas en los elementos cribosos, mientras que los transcritos de &eacute;stas se encuentran en las c&eacute;lulas acompa&ntilde;antes y los alcaloides en c&eacute;lulas latic&iacute;feras (59,61). En tanto que Weid <i>et al. </i>(2004) y Kutchan (2005) se&ntilde;alan que en los tallos las enzimas 4&#39;OMT y SaIAT est&aacute;n ubicadas en el par&eacute;nquima y COR en las c&eacute;lulas latic&iacute;feras, mientras que en la ra&iacute;z las enzimas 4&#39;OMT, 7&#39;OMT y SaIAT fueron encontradas en el periciclo del estele y BBE en las c&eacute;lulas del par&eacute;nquima del cortex (10, 60). La diferencia de resultados pareciera estar en el grado de desarrollo de los tejidos vasculares que se analizaron en esos estudios, mientras que Weid <i>et al. </i>(2004) al parecer tomaron muestras en donde los elementos cribosos aun eran inmaduros, Samanani <i>et al. </i>(2002 y 2006) analizaron ejemplares con grados de madurez completos (60, 62). Los autores por su lado tambi&eacute;n atribuyen diferencias en los m&eacute;todos y t&eacute;cnicas de estudio, as&iacute; como en las variedades de las plantas analizadas por ejemplo la variedad de pobreza en morfina <i>vs </i>silvestre, as&iacute; como en las condiciones de cultivo (controladas <i>vs </i>campo). En todo caso surge la pregunta &iquest;La bios&iacute;ntesis de alcaloides en <i>P. somniferum </i>ocurre durante su desarrollo en diferentes sitios? Esta interesante discusi&oacute;n entre el grupo de P. Facchini y T. M. Kutchan, tiene en com&uacute;n la menci&oacute;n de que la localizaci&oacute;n de los componentes del metabolismo de ABI est&aacute; altamente compartimentada. A su vez, la participaci&oacute;n de los elementos cribosos en la bios&iacute;ntesis de ABI rompe el paradigma de que estas c&eacute;lulas solamente pose&iacute;an un n&uacute;mero limitado de prote&iacute;nas requeridas para la conservaci&oacute;n celular y el transporte de solutos (12). En esta d&eacute;cada, a los elementos cribosos tambi&eacute;n se le han atribuido otras funciones fisiol&oacute;gicas que incluyen el transporte de macromol&eacute;culas de informaci&oacute;n y la bios&iacute;ntesis de &aacute;cido jasm&oacute;nico, &aacute;cido asc&oacute;rbico y compuestos de defensa (63). Adem&aacute;s Bock <i>et al. </i>(2002) se&ntilde;alan que BBE est&aacute; tambi&eacute;n en los idioblastos de las hojas (64)</p>     <p><i>Thalictrum flavum </i>tambi&eacute;n produce y acumula abundantes cantidades de ABI tipo protoberberina en distintas c&eacute;lulas de las ra&iacute;ces y rizomas. En ra&iacute;ces, los ABI se localizan en las c&eacute;lulas maduras de la endodermis en el inicio del crecimiento secundario, mientras que los transcritos g&eacute;nicos de nueve de las doce enzimas (TYDC, NCS, 6OMT, CNMT, NMCH, 4&#39;OMT, BBE, SOMT, CAS) implicadas en su bios&iacute;ntesis est&aacute;n ubicados en la endodermis inmadura, periciclo y en algunos casos en las c&eacute;lulas adyacentes corticales del meristemo apical. En tanto que, en los rizomas los alcaloides se depositan en la m&eacute;dula y el cortex y los transcritos g&eacute;nicos de las nueve enzimas en el protodermis del primordio foliar (31, 62). Esto significa que los sitios de bios&iacute;ntesis y acumulaci&oacute;n est&aacute;n separados espacialmente y que en distintas especies o en la misma pueden participar distintos tipos de c&eacute;lulas.</p>     <p>La bios&iacute;ntesis de ABI est&aacute; compartimentada subcelularmente, las dos primeras partes de la ruta de tirosina a (S)-norcoclaurina y de (S)-norcoclaurina a (S)-reticulina, se realizan en el citosol, mientras que las rutas de diversificaci&oacute;n en ves&iacute;culas membranosas cuya independencia o asociaci&oacute;n al ret&iacute;culo endopl&aacute;smico est&aacute; en plena discusi&oacute;n (<a href="#f3">Figura 3</a>) (11, 12, 37, 65). Esta compartimentaci&oacute;n de enzimas, sustratos y productos implica la coordinaci&oacute;n y regulaci&oacute;n de la ruta lo que no ocurrir&iacute;a si las enzimas y los sustratos se movieran libremente en el citosol (12, 66).</p>     <center><a name="f3"><img src="img/revistas/unsc/v17n2/v17n2a06f3.jpg"></a></center>     <p>Para la producci&oacute;n de alcaloides tipo benzofenantridina (sanguinarina) desde (S)-reticulina se necesitan siete enzimas, cuatro de ellas (BBE, CFS, SPS y MSH), se localizaron (utilizando gradientes de centrifugaci&oacute;n con sacarosa) en fracciones de membranas con una densidad espec&iacute;fica de &delta; = 1,14 g/mL y solo una (P6H) estuvo asociada a una fracci&oacute;n de membrana con una densidad de &delta; = 1,11 g/mL, consistente con la del ret&iacute;culo endoplasm&aacute;tico (RE) (12, 37, 65). La enzima STS que participa en la bios&iacute;ntesis de alcaloides tipo morfina, y las enzimas (S)-tetrahidroprotoberberina oxidasa (STOX), canadina oxidasa (CDO: CYp719A1) y (S)-adenosil-l-metionina: columbamina-O-metiltransferasa participantes en la bios&iacute;ntesis de alcaloides tipo protoberberina se localizan tambi&eacute;n en fracciones microsomales con una densidad 1,14 g/mL (37, 67). La asociaci&oacute;n de estas enzimas con fracciones de membrana de densidad m&aacute;s grande que las del ret&iacute;culo endopl&aacute;smico es lo que permiti&oacute; especular la presencia de &quot;ves&iacute;culas biosintentizadoras de alcaloides (VSA)&quot; (68). Estas ves&iacute;culas se han encontrado en algunas especies productoras de ABI (Annonaceae, Berberidaceae, Menispermaceae y Ranunuculaceae), en <i>Berber&iacute;s </i>y <i>Coptis </i>se observaron como agregados dentro de vacuolas peque&ntilde;as conteniendo alcaloides y enzimas (11, 67). Es interesante el hecho de que la adici&oacute;n de precursores a las ves&iacute;culas dio como resultado intermediarios avanzados de la ruta, y si adem&aacute;s se suplementa con una sola enzima (SOMT, que no estaba asociada a estos compartimentos), se encuentra una producci&oacute;n de ABI congruente con la ruta (67).</p>     <p>Sin embargo, otros autores dudan de la autonom&iacute;a de estas ves&iacute;culas, argumentando que con excepci&oacute;n de la BBE, las enzimas mencionadas, son dependientes del citocromo P450, por lo que se ha sugerido que son prote&iacute;nas ubicadas (integrales o parciales) en las membranas del ret&iacute;culo endospl&aacute;smico (RE) o en compartimentos derivados de este, asociadas a enzimas NAD(P)H dependiente de citocromo P450 como donadora de electrones (12, 37, 65). Adem&aacute;s el pH &oacute;ptimo de BBE es de 8,8, acorde al de las membranas del RE (65, 68). Sin dejar de notar que la ubicaci&oacute;n de los transcriptos en otras c&eacute;lulas volver&iacute;a complejo la independencia de compartimentos de bios&iacute;ntesis.</p>     <p>Alcantara <i>et al. </i>(2005) utilizando centrifugaci&oacute;n en gradiente de densidad y t&eacute;cnicas de inmunolocalizaci&oacute;n, sit&uacute;o las enzimas NMCH y BBE en el ret&iacute;culo endoplasm&aacute;tico y COR en el citosol de c&eacute;lulas de <i>P. somniferum </i>(68). En este mismo estudio se document&oacute; que al contaminar los cultivos celulares de <i>P. somniferum </i>con el hongo fitopat&oacute;geno <i>Botrytis cinerea, </i>aumentaron tanto las enzimas como el alcaloide sanguinarina, y que est&aacute;n asociados con el desprendimiento de ves&iacute;culas prolongadas desde el lumen del RE y a su vez conectadas con la vacuola central. En estas extensiones tambi&eacute;n estuvieron presentes las enzimas NMCH y BBE, lo que permite conjeturar que la bios&iacute;ntesis de ABI est&aacute; asociada al ret&iacute;culo endopl&aacute;smico.</p>     <p>Un hecho contundente es que los ABI se almacenan en vacuolas; los alcaloides berberina, code&iacute;na, morfina, noscapina, papaverina, (S)-reticulina, sanguinarina, (5)-escoulerina y teba&iacute;na, fueron encontrados en vacuolas de diferentes densidades en cultivos celulares de <i>P. bracteatum </i>y <i>Coptis jap&oacute;nica </i>(37, 55, 70-72). En las vacuolas latic&iacute;feras de <i>Chelidonium majus </i>las concentraciones de sanguinarina, chelidonina y berberina se aproximaron a 500 y 1000 mM, mientras que en las del latex de <i>P. somniferum </i>a 500 mM de morfina y en vacuolas de c&eacute;lulas de <i>Coptis jap&oacute;nica </i>hasta 72 mM de berberina (55, 71).</p>     <p>La participaci&oacute;n de varios tipos de c&eacute;lulas y de org&aacute;nulos en la bios&iacute;ntesis y acumulaci&oacute;n de ABI supone el transporte de sustratos, intermediarios y productos desde los sitios productores (ves&iacute;culas de RE de elementos cribosos y/o par&eacute;nquima en <i>P. somniferum) </i>a los sitios de dep&oacute;sito (vacuolas de c&eacute;lulas latic&iacute;feras). El transporte de metabolitos secundarios ha empezado a ser sistem&aacute;ticamente estudiado (73), algunas revisiones pueden leerse en Yazaki, 2005; Roytrakul y Veepoorte, 2007; Yazaki et al. 2008 (72, 74, 75).</p>     <p>Para los alcaloides bencilisoquinol&iacute;nicos se han propuesto y documentado dos mecanismos de transporte hacia las vacuolas y uno en el tr&aacute;nsito por la membrana plasm&aacute;tica. Matile (1984) y Otani <i>et al. </i>(2005) se&ntilde;alan que algunos ABI pueden almacenarse en la vacuola mediante un modelo simple causado por un gradiente de pH conocido como &quot;trampa de iones&quot;, proponen que en el caso de alcaloides de car&aacute;cter lipof&iacute;lico y en una situaci&oacute;n de pH neutro como la del citosol, pueden cruzar el tonoplasto (membrana que delimita la vacuola celular) por difusi&oacute;n simple, y una vez dentro debido al ambiente &aacute;cido que hay en ella y a la presencia de sales inorg&aacute;nicas se protonizan a cationes hidrof&ntilde;icos lo que impide su regreso a trav&eacute;s de la membrana quedando atrapados en este compartimento (71, 75, 76). Un ejemplo de esto parece ocurrir con sanguinarina (una mol&eacute;cula lipof&iacute;lica) y con otros alcaloides no bencilisoquinol&iacute;nicos (ajmalicina, cinchonamina, colchicina, ergotamina, nicotina, vinblastina y vindolina, Revisado en Wink y Roberts, 1998) (55). Otani <i>et al. </i>(2005) se&ntilde;alan, por otra parte que el tr&aacute;fico est&aacute; asociado a un mecanismo de transporte secundario utilizando el gradiente electroqu&iacute;mico de protones (H+), estos investigadores sugieren que la berberina se mueve de esta forma a trav&eacute;s del tonoplasto mediante una prote&iacute;na cotransportadora tipo antiporte, aprovechando la expulsi&oacute;n de un prot&oacute;n para introducir el alcaloide a la vacuola con una Km de 43,7 mM (71).</p>     ]]></body>
<body><![CDATA[<p>Para el paso por las membranas plasm&aacute;ticas se ha implicado la participaci&oacute;n de prote&iacute;nas transportadoras ABC de la membrana impulsadas por ATP (ATP <i>bindig cassette). </i>El &uacute;nico ejemplo es el paso de la berberina a trav&eacute;s del plasmalema de c&eacute;lulas de <i>Coptis jap&oacute;nica </i>y de <i>Thalictrum flavum </i>(77-79). Para <i>C. jap&oacute;nica </i>la prote&iacute;na fue gen&eacute;ticamente caracterizada como CjMDR1, dada su similitud con la familia de las prote&iacute;nas transportadoras ABC f&aacute;rmaco resistentes (MDR por sus siglas en ingl&eacute;s) (78).</p>     <p>Estos estudios se&ntilde;alan que el transporte de berberina en las c&eacute;lulas ocurre mediante dos mecanismos de transporte, uno impulsado por prote&iacute;nas transportadoras ABC (intracelular) y el otro por cotransportadores proton-antiportador (intercelular). Este &uacute;ltimo tipo de mecanismo parece estar tambi&eacute;n implicado en el tr&aacute;fico de (S)-reticulina y (S)-escoulerina en las vacuolas de <i>Fumaria capreolata </i>(71, 72, 80).</p>     <p><font size=3><b>Conclusi&oacute;n</b></font></p>     <p>La bios&iacute;ntesis de alcaloides bencilisoquinol&iacute;nicos, implica una coordinaci&oacute;n de varios procesos biol&oacute;gicos tanto celulares como moleculares. La separaci&oacute;n de estos eventos en tiempo y espacio, deja ver un mecanismo regulatorio complejo, en el cual est&aacute;n implicados, genes, enzimas, metabolitos secundarios, transportadores espec&iacute;ficos, diferentes tejidos, c&eacute;lulas y compartimentos. La visi&oacute;n que se tiene de ello todav&iacute;a es parcial y fragmentaria, lo que a su vez la convierte en un reto intelectual en el &aacute;rea del metabolismo especializado.</p>     <p><b>Financiaci&oacute;n</b></p>     <p>Este trabajo fue soportado en parte por una beca del Consejo Nacional de Ciencia y Tecnolog&iacute;a de M&eacute;xico (CONACyT).</p>     <p><b>Conflicto de intereses</b></p>     <p>Los autores no tienen conflicto de intereses con relaci&oacute;n a este trabajo</p> <hr>     <p><font size=3><b>Referencias</b></font></p>     <!-- ref --><p>1. Hagel JM, Facchini PJ. 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