<?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>0004-0622</journal-id>
<journal-title><![CDATA[Archivos Latinoamericanos de Nutrición]]></journal-title>
<abbrev-journal-title><![CDATA[ALAN]]></abbrev-journal-title>
<issn>0004-0622</issn>
<publisher>
<publisher-name><![CDATA[Sociedad Latinoamericana de Nutrición]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0004-06222007000200002</article-id>
<title-group>
<article-title xml:lang="es"><![CDATA[Pigmentos carotenoides: consideraciones estructurales y fisicoquímicas]]></article-title>
<article-title xml:lang="en"><![CDATA[Carotenoid pigments: structural and physicochemical considerations]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Meléndez-Martínez]]></surname>
<given-names><![CDATA[Antonio J]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Vicario]]></surname>
<given-names><![CDATA[Isabel M]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Heredia]]></surname>
<given-names><![CDATA[Francisco J]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad de Sevilla Facultad de Farmacia Laboratorio de Color y Calidad de Alimentos]]></institution>
<addr-line><![CDATA[Sevilla ]]></addr-line>
<country>España</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>06</month>
<year>2007</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>06</month>
<year>2007</year>
</pub-date>
<volume>57</volume>
<numero>2</numero>
<fpage>109</fpage>
<lpage>117</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_arttext&amp;pid=S0004-06222007000200002&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_abstract&amp;pid=S0004-06222007000200002&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://ve.scielo.org/scielo.php?script=sci_pdf&amp;pid=S0004-06222007000200002&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="es"><p><![CDATA[Los pigmentos carotenoides constituyen un grupo de compuestos ubicuos en la naturaleza que realizan una serie de funciones que los hacen especiales. Así, son considerados compuestos indispensables para la vida, fundamentalmente debido a las diferentes funciones que llevan a cabo en relación con la fotosíntesis tal y como se conoce hoy en día. Durante muchos años, la importancia nutricional de los carotenoides se debió a que algunos de ellos poseen actividad provitamínica A, si bien el que el interés por estos isoprenoides se haya multiplicado en los últimos años se ha debido a una gran variedad de estudios que parecen indicar que actúan como antioxidantes y que podrían ser beneficiosos para la prevención de diversas enfermedades crónicas humanas no transmisibles, si bien existe todavía cierta controversia al respecto. En cualquier caso, las funciones y efectos debidos a estos pigmentos se deben a sus propiedades fisico-químicas y que éstas a su vez son consecuencia de su estructura química. Debido a las variadas acciones beneficiosas de las que son responsables, y sobre todo a su importancia nutricional, el objetivo fundamental de esta revisión es la descripción de dichas caracteríticas, cuyo conocimiento es indispensable para tener una visión global de los diferentes roles que desempeñan y para el diseño de nuevos estudios]]></p></abstract>
<abstract abstract-type="short" xml:lang="en"><p><![CDATA[Carotenoid are ubiquitous compounds serving a series of functions that make them special. Thus, they are regarded as essential compounds for life mainly due to the different roles they perform in photosynthesis as we currently know it. For many years, the nutritional relevance ot carotenoids was due to some of them exhibiting vitamin A activity, although theinterest in these pigments has expanded dramatically in the last years owing to a large variety of surveys that seem to indicate that they are antioxidant and may be beneficial for the prevention of several chronic non-transmissible human diseases, albeit there is some controversy in this regard. In any case, it is clear that the different functions and effects attributed to these isoprenoids stem from their physical and chemical properties, the latter being due to their chemical structure. Due to the diverse benefitial actions carotenoids are responsible for and, above all, to their nutritional importance, the main objective of this review is to describe such features, whose knowledge is indispensable to have a holistic view of the different roles they play and for the design of new studies]]></p></abstract>
<kwd-group>
<kwd lng="es"><![CDATA[Carotenoides]]></kwd>
<kwd lng="es"><![CDATA[estructura química]]></kwd>
<kwd lng="es"><![CDATA[espectroscopia]]></kwd>
<kwd lng="es"><![CDATA[espectroforometría]]></kwd>
<kwd lng="es"><![CDATA[pigmentos]]></kwd>
<kwd lng="es"><![CDATA[propiedades fisicoquímicas]]></kwd>
<kwd lng="en"><![CDATA[Carotenoids]]></kwd>
<kwd lng="en"><![CDATA[chemical structure]]></kwd>
<kwd lng="en"><![CDATA[spectroscopy]]></kwd>
<kwd lng="en"><![CDATA[spectrophotometry]]></kwd>
<kwd lng="en"><![CDATA[pigments]]></kwd>
<kwd lng="en"><![CDATA[physicochemical properties]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[ <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font size="3"><b><font face="Verdana">Pigmentos carotenoides: consideraciones estructurales</font> <font face="Verdana">y fisicoquímicas</font></b></font></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Antonio J. Meléndez-Martínez, Isabel M. Vicario, Francisco J. Heredia</b></font></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Laboratorio de Color y Calidad de Alimentos. Facultad de Farmacia. Universidad de Sevilla. 41012 Sevilla, España</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>RESUMEN. </b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Los pigmentos carotenoides constituyen un grupo de</font> <font face="Verdana" size="2">compuestos ubicuos en la naturaleza que realizan una serie de funciones</font> <font face="Verdana" size="2">que los hacen especiales. Así, son considerados compuestos</font> <font face="Verdana" size="2">indispensables para la vida, fundamentalmente debido a las diferentes</font> <font face="Verdana" size="2">funciones que llevan a cabo en relación con la fotosíntesis tal y</font> <font face="Verdana" size="2">como se conoce hoy en día. Durante muchos años, la importancia</font> <font face="Verdana" size="2">nutricional de los carotenoides se debió a que algunos de ellos poseen</font> <font face="Verdana" size="2">actividad provitamínica A, si bien el que el interés por estos</font> <font face="Verdana" size="2">isoprenoides se haya multiplicado en los últimos años se ha debido a</font> <font face="Verdana" size="2">una gran variedad de estudios que parecen indicar que actúan como</font> <font face="Verdana" size="2">antioxidantes y que podrían ser beneficiosos para la prevención de</font> <font face="Verdana" size="2">diversas enfermedades crónicas humanas no transmisibles, si bien</font> <font face="Verdana" size="2">existe todavía cierta controversia al respecto. En cualquier caso, las</font> <font face="Verdana" size="2">funciones y efectos debidos a estos pigmentos se deben a sus propiedades</font> <font face="Verdana" size="2">fisico-químicas y que éstas a su vez son consecuencia de su</font> <font face="Verdana" size="2">estructura química. Debido a las variadas acciones beneficiosas de</font> <font face="Verdana" size="2">las que son responsables, y sobre todo a su importancia nutricional,</font> <font face="Verdana" size="2">el objetivo fundamental de esta revisión es la descripción de dichas</font> <font face="Verdana" size="2">caracteríticas, cuyo conocimiento es indispensable para tener una</font> <font face="Verdana" size="2">visión global de los diferentes roles que desempeñan y para el diseño</font> <font face="Verdana" size="2">de nuevos estudios.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Palabras clave:</b> Carotenoides, estructura química, espectroscopia,</font> <font face="Verdana" size="2">espectroforometría, pigmentos, propiedades fisicoquímicas.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>SUMMARY. </b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><b><font face="Verdana" size="2">Carotenoid pigments: structural and</font> </b><font face="Verdana" size="2"><b>physicochemical considerations. </b>Carotenoid are ubiquitous</font> <font face="Verdana" size="2">compounds serving a series of functions that make them special.</font> <font face="Verdana" size="2">Thus, they are regarded as essential compounds for life mainly due</font> <font face="Verdana" size="2">to the different roles they perform in photosynthesis as we currently</font> <font face="Verdana" size="2">know it. For many years, the nutritional relevance ot carotenoids</font> <font face="Verdana" size="2">was due to some of them exhibiting vitamin A activity, although theinterest in these pigments has expanded dramatically in the last years</font> <font face="Verdana" size="2">owing to a large variety of surveys that seem to indicate that they are</font> <font face="Verdana" size="2">antioxidant and may be beneficial for the prevention of several chronic</font> <font face="Verdana" size="2">non-transmissible human diseases, albeit there is some controversy</font> <font face="Verdana" size="2">in this regard. In any case, it is clear that the different functions and</font> <font face="Verdana" size="2">effects attributed to these isoprenoids stem from their physical and</font> <font face="Verdana" size="2">chemical properties, the latter being due to their chemical structure.</font> <font face="Verdana" size="2">Due to the diverse benefitial actions carotenoids are responsible for</font> <font face="Verdana" size="2">and, above all, to their nutritional importance, the main objective of</font> <font face="Verdana" size="2">this review is to describe such features, whose knowledge is indispensable</font> <font face="Verdana" size="2">to have a holistic view of the different roles they play and</font> <font face="Verdana" size="2">for the design of new studies.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Key words:</b> Carotenoids, chemical structure, spectroscopy,</font> <font face="Verdana" size="2">spectrophotometry, pigments; physicochemical properties.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Recibido:</b> 20-03-2007</font> <font face="Verdana" size="2"><b>Aceptado:</b> 11-07-2007</font></p>     ]]></body>
<body><![CDATA[<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>INTRODUCCION</b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Los carotenoides son compuestos ubicuos en la naturaleza,</font> <font face="Verdana" size="2">cuya presencia en diversas estructuras de plantas y en gran</font> <font face="Verdana" size="2">variedad de animales, algas, hongos y bacterias se ha descrito</font> <font face="Verdana" size="2">desde hace décadas (1-4). Estos pigmentos no sólo son</font> <font face="Verdana" size="2">responsables del color de flores (colza, caléndula, diente deleón, crisantemo, etc.) (5-7) y frutos (tomates, naranjas,</font> <font face="Verdana" size="2">pimientos, albaricoque, melocotón, etc.) (8-12) para favorecer</font> <font face="Verdana" size="2">la polinización y dispersión de semillas, o de estructuras</font> <font face="Verdana" size="2">animales como las plumas y picos de algunos pájaros (13,14),</font> <font face="Verdana" size="2">el exoesqueleto de crustáceos (15) y el músculo o la piel de</font> <font face="Verdana" size="2">algunos peces (16, 17) para otros fines, en algunos casos no</font> <font face="Verdana" size="2">muy claros (3,4), sino que realizan otras funciones que los</font> <font face="Verdana" size="2">hacen pigmentos especiales. Así, son considerados compuestos</font> <font face="Verdana" size="2">indispensables para la vida, fundamentalmente debido a las</font> <font face="Verdana" size="2">funciones que llevan a cabo en relación con la fotosíntesis</font> <font face="Verdana" size="2">(captación de luz, fotoprotección, disipación de excesos de</font> <font face="Verdana" size="2">energía, desactivación de oxígeno singlete, etc.), hasta el punto</font> <font face="Verdana" size="2">de que sin ellos, la fotosíntesis, tal y como se conoce hoy en</font> <font face="Verdana" size="2">día, sería inviable (18-20). Así, se ha demostrado ampliamente</font> <font face="Verdana" size="2">que como consecuencia de la inhibición de la enzima fitoeno</font> <font face="Verdana" size="2">sintasa con herbicidas se producen fenómenos de</font> <font face="Verdana" size="2">fotooxidación que conducen a la destrucción de las moléculas</font> <font face="Verdana" size="2">de clorofila (21,22).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Durante años, la importancia nutricional de los</font> <font face="Verdana" size="2">carotenoides se debió sobre todo al hecho de que algunosposeen actividad provitamínica A, la cual sigue siendo objetode estudio en la actualidad (23,24-33). No obstante, el que el</font> <font face="Verdana" size="2">interés por estos compuestos isoprenoides se haya multiplicado</font> <font face="Verdana" size="2">no solo en Latinoamérica (34-37), sino a nivel mundial (38,39),se ha debido a estudios en los que se concluye que son</font> <font face="Verdana" size="2">compuestos antioxidantes (40-42) y beneficiosos para la</font> <font face="Verdana" size="2">prevención de diversas enfermedades, como ciertos tipos de</font> <font face="Verdana" size="2">cáncer (43-45), trastornos oculares (46,47) y vasculares</font> <font face="Verdana" size="2">(48,49), etc, si bien existe aún cierta controversia al respecto</font> <font face="Verdana" size="2">(50,51). Así, el interés actual en los pigmentos carotenoides</font> <font face="Verdana" size="2">desde un punto de vista nutricional es claro, tal que los artículos</font> <font face="Verdana" size="2">de revisión en los que se discute las propiedades antioxidantesy beneficiosas para la salud de los humanos son numerosos</font> <font face="Verdana" size="2">(52-55), así como aquellos que tratan sobre la biodisponibilidad</font> <font face="Verdana" size="2">de los mismos (56-58).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">En relación con todo ello, resulta claro afirmar que las</font> <font face="Verdana" size="2">funciones y efectos de estos pigmentos se deben a sus</font> <font face="Verdana" size="2">propiedades físicas y químicas, las cuales son consecuencia</font> <font face="Verdana" size="2">de su estructura química. Debido a las acciones beneficiosas</font> <font face="Verdana" size="2">de las que son responsables, y sobre todo a su creciente</font> <font face="Verdana" size="2">importancia en el campo de la Nutrición, el objetivo de esta</font> <font face="Verdana" size="2">revisión es la descripción de dichas caracteríticas.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Estructura química</b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Como ocurre con cualquier compuesto químico, las funciones</font> <font face="Verdana" size="2">de los carotenoides son debidas en última instancia a</font> <font face="Verdana" size="2">su estructura química. En el caso particular de estos</font> <font face="Verdana" size="2">isoprenoides, la característica estructural más llamativa es el</font> <font face="Verdana" size="2">sistema de d.e.c. (d.e.c.) característico de sus moléculas, que</font> <font face="Verdana" size="2">es el principal responsable de su espectro de absorción,</font> <font face="Verdana" size="2">reactividad, forma, localización en estructuras subcelulares y</font> <font face="Verdana" size="2">de su papel en procesos de transferencia de energía (18). Así,</font> <font face="Verdana" size="2">el número de d.e.c. no sólo afecta a sus propiedades de absorción</font> <font face="Verdana" size="2">de luz y por tanto a su color (59,60), sino también a su</font> <font face="Verdana" size="2">reactividad frente a radicales (61,62), a la forma de la molécula</font> <font face="Verdana" size="2">(63) y a su efectividad en los procesos de transferencia de</font> <font face="Verdana" size="2">energía dentro del aparato fotosintético (64, 65).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Químicamente la mayoría de los carotenoides son</font> <font face="Verdana" size="2">tetraterpenoides, compuestos de 40 átomos de carbono formados</font> <font face="Verdana" size="2">por ocho unidades isoprenoides unidas de forma que</font> <font face="Verdana" size="2">la secuencia se invierte en el centro de la molécula. Es decir,</font> <font face="Verdana" size="2">la unión de dichas unidades es &quot;cabeza-cola&quot;, excepto en el</font> <font face="Verdana" size="2">centro de la molécula, donde es &quot;cabeza-cabeza&quot;. Debido a</font> <font face="Verdana" size="2">ello, los dos grupos metilo centrales de la cadena poliénica</font> <font face="Verdana" size="2">están separados por seis átomos de carbono, mientras que el</font> <font face="Verdana" size="2">resto están separados por cinco. Algunos carotenoides son</font> <font face="Verdana" size="2">acíclicos, si bien la mayoría contienen anillos a uno o ambos</font> <font face="Verdana" size="2">extremos de la molécula. Considerando los elementos químicos</font> <font face="Verdana" size="2">presentes en sus moléculas, los carotenoides pueden dividirse</font> <font face="Verdana" size="2">en dos grandes grupos: carotenos, que son hidrocarburos,</font> <font face="Verdana" size="2">y xantófilas, que contienen átomos de oxígeno. Éste puede</font> <font face="Verdana" size="2">estar presente en forma de grupo hidroxilo (zeinoxantina,</font> <font face="Verdana" size="2">lactucaxantina, etc.), metoxilo (esferoidenona, espiriloxantina,</font> <font face="Verdana" size="2">etc.), epóxido (anteraxantina, licopeno-1,2-epóxido, etc.),</font> <font face="Verdana" size="2">carbonilo (capsantina, esferoidenona, etc.) o carboxilo</font> <font face="Verdana" size="2">(norbixina, neurosporaxantina, etc.), principalmente (66,67).</font> <font face="Verdana" size="2">Otros grupos oxigenados presentes en carotenoides son</font> <font face="Verdana" size="2">acetatos (fucoxantina, dinoxantina, etc.), lactonas (peridinina,</font> <font face="Verdana" size="2">uriólido, etc.) y sulfatos (caloxantina-3-sulfato, nostoxantina-</font> <font face="Verdana" size="2">3-sulfato, etc.) (63,68-70).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Las xantófilas hidroxílicas pueden existir en la naturaleza</font> <font face="Verdana" size="2">en estado libre o esterificadas con ácidos grasos (palmítico,</font> <font face="Verdana" size="2">linoleico, linolénico, esteárico, mirístico, láurico, oleico, etc.)en pimientos y derivados, patatas, mango, cítricos, etc (71-</font> <font face="Verdana" size="2">75). Precisamente, la esterificación de carotenoides está suscitando</font> <font face="Verdana" size="2">gran interés recientemente, concretamente en relación</font> <font face="Verdana" size="2">a la biodisponibilidad de los pigmentos (76,77), a su</font> <font face="Verdana" size="2">efecto en las reacciones de los carotenoides con radicales libres</font> <font face="Verdana" size="2">(78) y a su papel durante la maduración de frutos (79).</font> <font face="Verdana" size="2">Existen asimismo glucósidos (crocina, zeaxantina</font> <font face="Verdana" size="2">monoramnósido, etc.) y glucosil ésteres de xantófilas</font> <font face="Verdana" size="2">(crocetina monoglucosil éster, glucosil éster del ácido</font> <font face="Verdana" size="2">diapolicopenodioico, etc.), los cuales se han descrito en estigmas</font> <font face="Verdana" size="2">de azafrán, frutos de gardenia, bacterias, etc. (63,69,70,</font> <font face="Verdana" size="2">80-82). Los carotenoides pueden encontrarse además formando</font> <font face="Verdana" size="2">complejos hidrosolubles estables con proteínas,</font> <font face="Verdana" size="2">lipoproteínas o glucoproteínas sobre todo en animales invertebrados</font> <font face="Verdana" size="2">acuáticos como gambas, langostas y cangrejos, entre</font> <font face="Verdana" size="2">muchos otros (3,15, 83).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">No todos los carotenoides constan de ocho unidades</font> <font face="Verdana" size="2">isoprenoides, ya que algunos, denominados apocarotenoides,</font> <font face="Verdana" size="2">poseen un esqueleto de menos de 40 átomos de carbono, debido</font> <font face="Verdana" size="2">probablemente a escisiones en uno (por ejemplo el âapo-</font> <font face="Verdana" size="2">8’-carotenal, pigmento presente en el níspero (84) y en</font> <font face="Verdana" size="2">cítricos (85), entre otras fuentes) o ambos extremos de la molécula(como por ejemplo la crocetina, pigmento característico</font> <font face="Verdana" size="2">del azafrán (86)) (<a href="#fig1">Figura 1</a>). Otros apocarotenoides han</font> <font face="Verdana" size="2">sido identificados en diversas fuertes, como las semillas de</font> <font face="Verdana" size="2">Bixa orellana (87), el pimiento (88), flores de Boronia</font> <font face="Verdana" size="2">megastigma (89), etc. Otros carotenoides con un número de</font> <font face="Verdana" size="2">átomos de carbono diferente de 40 son los norcarotenoides,</font> <font face="Verdana" size="2">como la peridinina, en los que uno, dos o tres átomos de carbono</font> <font face="Verdana" size="2">han sido eliminados del esqueleto hidrocarbonado, o</font> <font face="Verdana" size="2">los secocarotenoides (como la â-carotenona) en los que se ha</font> <font face="Verdana" size="2">roto un enlace entre carbonos adyacentes (excepto los carbonos</font> <font face="Verdana" size="2">1 y 6 de anillos). Otros carotenoides poseen 45 o 50 átomos</font> <font face="Verdana" size="2">de carbono, y se forman por la adición de unidades</font> <font face="Verdana" size="2">isoprenoides a los grupos terminales, como por ejemplo la</font> <font face="Verdana" size="2">decaprenoxantina. En cuanto a los retrocarotenoides (como</font> <font face="Verdana" size="2">la rodoxantina), la posición de los dobles enlaces a lo largo</font> <font face="Verdana" size="2">de la cadena poliénica está invertida, de forma que los carbonos</font> <font face="Verdana" size="2">15 y 15’ están unidos por un enlace simple (<a href="#fig1">Figura 1</a>)</font> <font face="Verdana" size="2">(63,70, 90, 91).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><a name="fig1"></a></p>     ]]></body>
<body><![CDATA[<p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>FIGURA 1. </b>Estructuras químicas de </font> <font size="2" face="Symbol">b</font><font face="Verdana" size="2">-apo-8’-carotenal, crocetina,</font> <font face="Verdana" size="2">peridinina, decaprenoxantina, semi-&nbsp;</font><font size="2" face="Symbol"> b</font><font face="Verdana" size="2">-carotenona</font> <font face="Verdana" size="2">y rodoxantina</font></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><img border="0" src="/img/fbpe/alan/v57n2/art02fig1.gif" align="center" width="336" height="666"></p>     
<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Debido a la presencia del sistema de d.e.c., podrían existir,</font> <font face="Verdana" size="2">en teoría, muchos isómeros geométricos de cadacarotenoide, si bien, debido a impedimentos estéricos, sólo</font> <font face="Verdana" size="2">algunos son estables (18,63,92). La mayoría de los</font> <font face="Verdana" size="2">carotenoides naturales son isómeros todo-trans (todo-E), aunquetambién existen isómeros cis (isómeros Z) en fuentes naturales,</font> <font face="Verdana" size="2">como es el caso de la bixina, presente como (9’Z)-</font> <font face="Verdana" size="2">bixina en las semilla de Bixa orellana (93), y del fitoeno, presente</font> <font face="Verdana" size="2">comúnmente como (15Z)-fitoeno en productos vegetales y microorganismos (94,95), entre otros. El análisis por</font> <font face="Verdana" size="2">cromatografía líquida de isómeros geométricos de carotenoides</font> <font face="Verdana" size="2">se ha visto favorecido en los últimos años debido al desarrollo</font> <font face="Verdana" size="2">de columnas C30, cuyo diseño las hace muy eficientes para su</font> <font face="Verdana" size="2">separación (96, 97). Así, diferentes isómeros de carotenoides</font> <font face="Verdana" size="2">han sido objeto de estudio en una gran variedad de fuentes, como</font> <font face="Verdana" size="2">vegetales (98), zumo de zanahorias y bebidas enriquecidas en</font> <font face="Verdana" size="2">vitaminas (99), mango (100), zumo de naranja (101,102), flores</font> <font face="Verdana" size="2">(6,103), etc. El estudio de isómeros geométricos de carotenoides</font> <font face="Verdana" size="2">resulta especialmente interesante debido a que parece que presentan</font> <font face="Verdana" size="2">distintas actividades o reactividad frente a diversos agentes</font> <font face="Verdana" size="2">y que podrían absorberse en diferente medida (104, 105).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">No obstante, debe tenerse en cuenta que los isómeros cis pueden</font> <font face="Verdana" size="2">ser en ocasiones artefactos, producidos durante la manipulación</font> <font face="Verdana" size="2">de las muestras o debido a tratamientos tecnológicos o</font> <font face="Verdana" size="2">culinarios (106,107). Por otra parte, muchos carotenoides naturales</font> <font face="Verdana" size="2">poseen centros quirales, por lo que pueden existir diversos</font> <font face="Verdana" size="2">isómeros ópticos de cada uno de ellos, como es el caso de la</font> <font face="Verdana" size="2">zeaxantina (<a href="#fig2">Figura 2</a>), capsantina, aloxantina, neoxantina y</font> <font face="Verdana" size="2">muchísimos otros (2,63,70).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><a name="fig2"></a></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>FIGURA 2. </b></font><font face="Verdana" size="2">Configuraciones de la zeaxantina</font> </p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><img border="0" src="/img/fbpe/alan/v57n2/art02fig2.gif" align="center" width="411" height="380"></p>     
<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Nomenclatura</b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Tradicionalmente, los carotenoides se nombraron en función</font> <font face="Verdana" size="2">de la fuente de la que se aislaron por primera vez. Así, el</font> <font face="Verdana" size="2">término caroteno proviene del nombre científico de la zanahoria(Daucus carota L.), mientras que los pigmentos aislados</font> <font face="Verdana" size="2">del pensamiento (Viola tricolor L.) y algunas algas del</font> <font face="Verdana" size="2">género Fucus se denominaron violaxantina y fucoxantina, respectivamente.</font> <font face="Verdana" size="2">En la actualidad también se usa una nomenclaturasemi-sistemática que proporciona información estructural</font> <font face="Verdana" size="2">(<a href="#tab1">Tabla 1</a>). Así, se consideran las dos mitades de la molécula</font> <font face="Verdana" size="2">del carotenoide, y el compuesto se nombra como derivado</font> <font face="Verdana" size="2">del caroteno correspondiente, especificándose los grupos terminales</font> <font face="Verdana" size="2">mediante letras griegas (<a href="#fig3">Figura 3</a>). Los cambios en elnivel de hidrogenación y la presencia de sustituyentes se indican</font> <font face="Verdana" size="2">mediante el empleo de prefijos y sufijos.</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><a name="tab1"></a></p>     ]]></body>
<body><![CDATA[<p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>TABLA 1. </b></font><font face="Verdana" size="2">Nombres semi-sistemáticos de diversos carotenoides</font></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><img border="0" src="/img/fbpe/alan/v57n2/art02tab1.gif" align="center" width="491" height="248"></p>     
<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><a name="fig3"></a></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>FIGURA 3. </b></font><font face="Verdana" size="2">Grupos terminales presentes en las moléculas</font> <font face="Verdana" size="2">de los pigmentos carotenoides</font></p>     <p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><img border="0" src="/img/fbpe/alan/v57n2/art02fig3.gif" align="center" width="455" height="238"></p>     
<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2"><b>Propiedades físico-químicas</b></font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Los carotenoides son compuestos lipídicos, aunque existen</font> <font face="Verdana" size="2">algunas excepciones, por lo que son insolubles en agua y</font> <font face="Verdana" size="2">solubles en disolventes orgánicos como acetona, metanol, éter</font> <font face="Verdana" size="2">dietílico, hexano, cloroformo y piridina, entre muchos otros.</font> <font face="Verdana" size="2">Debido a su carácter hidrofóbico se encuentran normalmente</font> <font face="Verdana" size="2">en ambientes lipófilos, como en membranas, si bien su asociación</font> <font face="Verdana" size="2">con proteínas o reacciones de glicosilación les permiten</font> <font face="Verdana" size="2">también estar presentes en medios acuosos (4,18). En relacióncon el papel de los pigmentos carotenoides en membranas</font> <font face="Verdana" size="2">de distinta naturaleza (41,108), cabe señalar que los</font> <font face="Verdana" size="2">carotenos permanecen en el interior de las mismas, mientras</font> <font face="Verdana" size="2">que las xantófilas pueden encontrarse en otras localizaciones</font> <font face="Verdana" size="2">en las que interaccionan a través de sus grupos hidroxílicos</font> <font face="Verdana" size="2">con moléculas de fosfolípidos (18). La asociación con proteínas</font> <font face="Verdana" size="2">permite además a los carotenoides permanecer en una</font> <font face="Verdana" size="2">posición correcta con respecto a otras moléculas, siendo ejemplos</font> <font face="Verdana" size="2">claros de este hecho los complejos pigmento-proteina que</font> <font face="Verdana" size="2">mantienen a carotenoides y clorofilas en posiciones adecuadas</font> <font face="Verdana" size="2">para los procesos de transferencia de energía que tienen</font> <font face="Verdana" size="2">lugar durante la fotosíntesis (109, 110).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Los carotenoides ácidos pueden formar sales sódicas o</font> <font face="Verdana" size="2">potásicas solubles en agua por tratatamiento con álcali, como</font> <font face="Verdana" size="2">es el caso de bixina, astaceno o mitiloxantina (66,111). Lascarotenoproteínas son también solubles en agua y muy estables</font> <font face="Verdana" size="2">(4). El color de estos complejos es estable durante años a</font> <font face="Verdana" size="2">temperatura ambiente y en contacto con el aire, por lo que</font> <font face="Verdana" size="2">tienen un gran interés como posibles colorantes (83). El carácter</font> <font face="Verdana" size="2">hidrofóbico de la mayoría de los carotenoides hace que</font> <font face="Verdana" size="2">tiendan a la agregación y cristalización en medio acuoso (18),</font> <font face="Verdana" size="2">siendo un ejemplo típico los cristales de licopeno en loscromoplastos de los tomates (112,113). Los puntos de fusión</font> <font face="Verdana" size="2">son elevados, generalmente comprendidos en el rango 130-</font> <font face="Verdana" size="2">220°C y la solubilidad de los cristales generalmente pequeña,</font> <font face="Verdana" size="2">siendo mejor en disolventes orgánicos clorados y en benceno</font> <font face="Verdana" size="2">(66,111).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">El sistema de d.e.c. de las moléculas de carotenoides esresponsable de su intenso color. Para que estos pigmentostengan una coloración perceptible son necesarios al menossiete d.e.c.. Así, el æ-caroteno (7 d.e.c.) es amarillo pálido,mientras que fitoeno (3 d.e.c.) y fitoflueno (5 d.e.c.), son incoloros</font> <font face="Verdana" size="2">(60). El color se debe concretamente a la oscilación</font> <font face="Verdana" size="2">de los electrones a lo largo de la cadena hidrocarbonada</font> <font face="Verdana" size="2">insaturada. La absorción de luz produce el paso de la molécula</font> <font face="Verdana" size="2">de su estado energético basal a otro de mayor energía</font> <font face="Verdana" size="2">llamado estado excitado. En el caso de los carotenoides, la</font> <font face="Verdana" size="2">transición electrónica se produce de orbitales ð enlazantes a</font> <font face="Verdana" size="2">orbitales ð* antienlazantes. Como consecuencia de la</font> <font face="Verdana" size="2">deslocalización de los electrones a lo largo de la cadena</font> <font face="Verdana" size="2">hidrocarbonada, debido a la presencia de numerosos d.e.c. en</font> <font face="Verdana" size="2">ésta, la molécula en estado excitado no posee un alto contenido</font> <font face="Verdana" size="2">energético, de ahí que la energía de la radiación visible sea</font> <font face="Verdana" size="2">normalmente suficiente para que se produzca el salto electrónico</font> <font face="Verdana" size="2">(59). La asociación de carotenoides con proteínas</font> <font face="Verdana" size="2">estabiliza a los pigmentos además de extender el rango de</font> <font face="Verdana" size="2">colores a verde, azul y púrpura. Así, el máximo de absorción</font> <font face="Verdana" size="2">de astaxantina en acetona es 478 nm, mientras que el de la á</font> <font face="Verdana" size="2">-crustacianina es 632 nm, de ahí su coloración azulada (114).</font> <font face="Verdana" size="2">Analíticamente, el color de los carotenoides es de gran importancia,</font> <font face="Verdana" size="2">ya que un cambio de color durante el análisis es</font> <font face="Verdana" size="2">indicativo de degradación o de modificación estructural de</font> <font face="Verdana" size="2">los pigmentos. De igual forma, el color permite monitorizar</font> <font face="Verdana" size="2">su separación mediante cromatografía en columna y en capa</font> <font face="Verdana" size="2">fina (111,115).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">En los últimos años, han aparecido estudios en los que se</font> <font face="Verdana" size="2">propone la medida objetiva del color como una potente herramientaen el ámbito del control de calidad para la estimación</font> <font face="Verdana" size="2">rápida del contenido en carotenoides en diversas fuentes,como tomates (8), zumo de naranja (9) y albaricoques</font> <font face="Verdana" size="2">(11), fundamentalmente debido a las ventajas que ofrecen tales</font> <font face="Verdana" size="2">medidas, como rapidez, no destrucción de las muestras, versatilidad,etc. Así, la medida objetiva del color se ha propuestorecientemente como un método apropiado para la determinación</font> <font face="Verdana" size="2">de la actividad vitamínica A de zumos de naranja de</font> <font face="Verdana" size="2">una forma más eficiente, rápida y realista en el ámbito del</font> <font face="Verdana" size="2">control de calidad (25). Aparte de estos estudios en los que el</font> <font face="Verdana" size="2">color se ha correlacionado de algún modo con el contenido</font> <font face="Verdana" size="2">en carotenoides, existen otros muchos en los que el contenido</font> <font face="Verdana" size="2">de estos pigmentos y el color de diferentes muestras se ha</font> <font face="Verdana" size="2">analizado paralelamente (116,117). En este sentido debe también</font> <font face="Verdana" size="2">tenerse en cuenta que diversas técnicas espectroscópicas</font> <font face="Verdana" size="2">se usan, aunque sin obtener parámetros cromáticos, para el</font> <font face="Verdana" size="2">análisis de estos compuestos (118,119).</font></p>     ]]></body>
<body><![CDATA[<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">El espectro de absorción UV-Vis de los carotenoides es</font> <font face="Verdana" size="2">de interés para aclarar su estructura. Normalmente aparecen</font> <font face="Verdana" size="2">tres máximos cuyas longitudes de onda (ë) dependen del número</font> <font face="Verdana" size="2">de d.e.c. y del disolvente empleado para la medida</font> <font face="Verdana" size="2">(59,111), si bien el máximo de absorción (ëmáx) de los</font> <font face="Verdana" size="2">carotenoides in vivo aparece a longitudes de onda unos</font> <font face="Verdana" size="2">10 nm mayores en comparación con los máximos en hexano</font> <font face="Verdana" size="2">o etanol, debido a su presencia en un ambiente proteico o</font> <font face="Verdana" size="2">lipídico (4). Independientemente del disolvente, las ëmáx aumentancon la longitud del cromóforo (59), de forma que los</font> <font face="Verdana" size="2">dobles enlaces no conjugados no afectan significativamenteal espectro. No obstante, cuando existen d.e.c. en un anillo,</font> <font face="Verdana" size="2">debido a que éste no es coplanar con la cadena poliénica lineal,las ëmáx aparecen a longitudes de onda menores en comparación</font> <font face="Verdana" size="2">con los carotenoides no cíclicos con el mismo número</font> <font face="Verdana" size="2">de d.e.c. (120). Los grupos carbonílicos conjugados conla cadena poliénica también aumentan la longitud del</font> <font face="Verdana" size="2">cromóforo. Así, la presencia de uno de estos grupos en un</font> <font face="Verdana" size="2">anillo hace que los máximos se localicen a ë aproximadamente</font> <font face="Verdana" size="2">10 nm superiores, mientras que su presencia en la cadenapoliénica hace que se desplacen a longitudes de onda en</font> <font face="Verdana" size="2">torno a 30 nm superiores (115,121). Los grupos hidroxilo y</font> <font face="Verdana" size="2">metoxilo, sin embargo, no afectan al cromóforo, de ahí que</font> <font face="Verdana" size="2">los espectros del â-caroteno y sus hidroxiderivados âcriptoxantinay zeaxantina sean prácticamente idénticos. Por</font> <font face="Verdana" size="2">otra parte, la forma del espectro y la persistencia de las bandasde absorción, lo que comúnmente se conoce como estructurafina, reflejan el grado de planaridad del cromóforo. Elsistema de d.e.c. de los carotenoides acíclicos puede adoptaruna conformación casi planar, de ahí que sus espectros presenten</font> <font face="Verdana" size="2">máximos y mínimos perfectamente definidos, aunque</font> <font face="Verdana" size="2">la persistencia de las bandas disminuye cuando existen más</font> <font face="Verdana" size="2">de nueve d.e.c.. El espectro de los carotenoides cíclicos en los</font> <font face="Verdana" size="2">que el cromóforo no se extiende a los anillos presenta también</font> <font face="Verdana" size="2">bandas de absorción persistentes (120), aunque cuando</font> <font face="Verdana" size="2">la conjugación se extiende a anillos existen impedimentos</font> <font face="Verdana" size="2">estéricos entre el grupo metilo en el carbono 5 del anillo y el</font> <font face="Verdana" size="2">átomo de hidrógeno del carbono 8 de la cadena poliénica, que</font> <font face="Verdana" size="2">hacen que los dobles enlaces de los anillos no sean coplanares</font> <font face="Verdana" size="2">con los de la cadena poliénica. Como consecuencia se produce</font> <font face="Verdana" size="2">un desplazamiento hipsocrómico (a ë menores) de las ëmáx,</font> <font face="Verdana" size="2">un efecto hipocrómico (disminución de la absorción) y una</font> <font face="Verdana" size="2">pérdida de estructura fina (115,120). Así, la primera banda de</font> <font face="Verdana" size="2">absorción de carotenoides con dos anillos â, como â-caroteno,</font> <font face="Verdana" size="2">â-criptoxantina y zeaxantina, se reduce a una mera inflexión</font> <font face="Verdana" size="2">(67). Cuando existen grupos carbonilos conjugados con la</font> <font face="Verdana" size="2">cadena poliénica, se produce un desplazamiento batocrómico</font> <font face="Verdana" size="2">(a ë mayores) de los máximos, además de una pérdida de estructura</font> <font face="Verdana" size="2">fina, de forma que el espectro de estos compuestos,</font> <font face="Verdana" size="2">como astaxantina, cantaxantina o capsorrubina, entre otros,</font> <font face="Verdana" size="2">se reduce a una curva simétrica o a una banda principal con</font> <font face="Verdana" size="2">inflexiones a uno y otro lado (59,67,115). El espectro de</font> <font face="Verdana" size="2">isómeros Z o cis presenta algunas peculiaridades con respecto</font> <font face="Verdana" size="2">a los de isómeros todo-E o todo-trans. Así, el máximo de</font> <font face="Verdana" size="2">absorción se localiza a ë entre 2 y 6 nm menores en el caso de</font> <font face="Verdana" size="2">isómeros mono-cis, la estructura fina disminuye y una nueva</font> <font face="Verdana" size="2">banda de absorción aparece en la región ultravioleta</font> <font face="Verdana" size="2">(59,92,115).</font></p>     <p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">Los carotenoides en disolución, obedecen la ley de Lambert-Beer, de ahí que se cuantifiquen espectrofotométricamente, relacionando la absorbancia a una determinada <span style="font-size:12.0pt;font-family:&quot;Times New Roman&quot;; mso-fareast-font-family:&quot;Times New Roman&quot;;mso-ansi-language:ES;mso-fareast-language: ES;mso-bidi-language:AR-SA">&#955; </span>con un valor estándar expresado como coeficiente de absorción, ya sea el coeficiente de absorción específico, <img border="0" src="/img/fbpe/alan/v57n2/art02form1.gif" width="30" height="15">, que se define como la absorbancia teórica de una disoluciónde concentración 1% (P/V) en una cubeta de 1 cm de paso de luz, o el coeficiente de absorción molar, <span style="mso-fareast-font-family: Times New Roman; mso-ansi-language: ES; mso-fareast-language: ES; mso-bidi-language: AR-SA">&#949;</span>, definido como la absorbancia teórica de una disolución de concentración 1 molar. Ambos coeficientes están relacionados por la fórmula <span style="mso-fareast-font-family: Times New Roman; mso-ansi-language: ES; mso-fareast-language: ES; mso-bidi-language: AR-SA"> </font><font face="Verdana" size="3">&#949;</font><font face="Verdana" size="2">=<img border="0" src="/img/fbpe/alan/v57n2/art02form2.gif" width="228" height="21"> Teoricamente, &#949; es caracteristico </font> </span><font face="Verdana" size="2">del cromóforo e independiente del peso molecular del carotenoide, por lo que podría ser considerado el mismo para carotenoides distintos con idéntico cromóforo, como por ejemplo </font><font size="2" face="Symbol">b</font><font face="Verdana" size="2">-caroteno y zeaxantina. En cambio, los valores de <img border="0" src="/img/fbpe/alan/v57n2/art02form1.gif" width="30" height="15"> no serían los mismos para ambos compuestos, si bien están relacionados por sus pesos moleculares:</font></p>     
<p ALIGN="center" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><img border="0" src="/img/fbpe/alan/v57n2/art02form3.gif" width="421" height="32"></p>     
<p ALIGN="justify" style="word-spacing: 0; line-height: 100%; margin-bottom: 0"><font face="Verdana" size="2">La exactitud de la cuantificación de los carotenoides depende,</font> <font face="Verdana" size="2">por tanto, de la de los coeficientes de absorción. Parala determinación de estos coeficientes se recomienda pesar</font> <font face="Verdana" size="2">con precisión entre 1 y 2 mg del pigmento puro y disolverlos</font> <font face="Verdana" size="2">completamente en un disolvente apropiado (59). Este procedimiento</font> <font face="Verdana" size="2">suele ser bastante complicado, sobre todo si los</font> <font face="Verdana" size="2">carotenoides están cristalizados, por lo que el contenido en</font> <font face="Verdana" size="2">carotenoides es frecuentemente subestimado (66). La determinación</font> <font face="Verdana" size="2">cuantitativa de los pigmentos carotenoides, implica</font> <font face="Verdana" size="2">por tanto una cierta inexactitud. En relación con este hecho,</font> <font face="Verdana" size="2">cabe señalar que los coeficientes de absorción de los isómeroscis son sensiblemente menores que los de los correspondientes</font> <font face="Verdana" size="2">isómeros todo-trans, si bien pocos han sido determinados</font> <font face="Verdana" size="2">experimentalmente (70), por lo que la cuantificación de los</font> <font face="Verdana" size="2">isómeros cis con los valores tabulados para los isómeros todotrans</font> <font face="Verdana" size="2">implica aún un mayor grado de inexactitud. En la literatura</font> <font face="Verdana" size="2">existen tablas en las que se indican los valores de los</font> <font face="Verdana" size="2">coeficientes de absorción, generalmente el específico, para</font> <font face="Verdana" size="2">distintos carotenoides en varios disolventes, especificándose</font> <font face="Verdana" size="2">asímismo la <span style="font-size:12.0pt;font-family:&quot;Times New Roman&quot;; mso-fareast-font-family:&quot;Times New Roman&quot;;mso-ansi-language:ES;mso-fareast-language: ES;mso-bidi-language:AR-SA">&#955; </span>a la que debe llevarse a cabo la medida de</font> <font face="Verdana" size="2">absorbancia (59,67,122,123). No obstante, debido a las dificultades</font> <font face="Verdana" size="2">inherentes a la determinación experimental de los</font> <font face="Verdana" size="2">coeficientes de absorción, existen discrepancias en algunos</font> <font face="Verdana" size="2">de los valores de tabulados (66,115). Para calcular la concentración</font> <font face="Verdana" size="2">de un determinado carotenoide se aplica la fórmula x</font>  <font face="Verdana" size="2">= Ay/(<img border="0" src="/img/fbpe/alan/v57n2/art02form1.gif" width="30" height="15">×100) (120), donde x es el peso del carotenoide en</font> <font face="Verdana" size="2">gramos, y es el volumen de la disolución en mililitros, A la</font> <font face="Verdana" size="2">absorbancia medida experimentalmente y <img border="0" src="/img/fbpe/alan/v57n2/art02form1.gif" width="30" height="15"> el coeficiente</font> <font face="Verdana" size="2">de absorción específico. Cuando no se ha determinado el coeficiente</font> <font face="Verdana" size="2">de absorción específico para un carotenoide o bien</font> <font face="Verdana" size="2">se pretende estimar el contenido total de carotenoides de un</font> <font face="Verdana" size="2">extracto, se suele usar un valor arbitrario de 2500 (121).</font></p>     
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<article-title xml:lang="en"><![CDATA[Carotenoids]]></article-title>
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<name>
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<source><![CDATA[Chemistry and Biochemistry of plant pigments]]></source>
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<article-title xml:lang="en"><![CDATA[Carotenoid analytical methods]]></article-title>
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</article>
