<?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>0120-0488</journal-id>
<journal-title><![CDATA[Revista Colombiana de Entomología]]></journal-title>
<abbrev-journal-title><![CDATA[Rev. Colomb. Entomol.]]></abbrev-journal-title>
<issn>0120-0488</issn>
<publisher>
<publisher-name><![CDATA[Sociedad Colombiana de Entomología]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0120-04882016000200006</article-id>
<title-group>
<article-title xml:lang="en"><![CDATA[Effects of Capsicum baccatum and C. frutescens against Atta cephalotes (Hymenoptera: Formicidae) and the symbiotic fungus Leucoagaricus gongylophorus]]></article-title>
<article-title xml:lang="es"><![CDATA[Efectos de Capsicum baccatum y C. frutescens sobre Atta cephalotes (Hymenoptera: Formicidae) y el hongo simbionte Leucoagaricus gongylophorus]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[LOBO-ECHEVERRI]]></surname>
<given-names><![CDATA[TATIANA]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[SALAZAR]]></surname>
<given-names><![CDATA[LINA CRISTINA]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[HERNÁNDEZ]]></surname>
<given-names><![CDATA[ALEJANDRA]]></given-names>
</name>
<xref ref-type="aff" rid="A04"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[ORTIZ-REYES]]></surname>
<given-names><![CDATA[ADRIANA]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad Nacional de Colombia Facultad de Ciencias ]]></institution>
<addr-line><![CDATA[Medellín ]]></addr-line>
<country>Colombia</country>
</aff>
<aff id="A04">
<institution><![CDATA[,Facultad de Ciencias Exactas y Naturales Instituto de Biología ]]></institution>
<addr-line><![CDATA[Medellín ]]></addr-line>
<country>Colombia</country>
</aff>
<pub-date pub-type="pub">
<day>00</day>
<month>12</month>
<year>2016</year>
</pub-date>
<pub-date pub-type="epub">
<day>00</day>
<month>12</month>
<year>2016</year>
</pub-date>
<volume>42</volume>
<numero>2</numero>
<fpage>137</fpage>
<lpage>145</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0120-04882016000200006&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0120-04882016000200006&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0120-04882016000200006&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="en"><p><![CDATA[Leaf cutter ants are considered to be a major pest in the Neotropics, due to the considerable economic losses they cause by cutting large amounts of plant material to cultivate their symbiotic fungus. Their control is mainly achieved through synthetic products with adverse consequences to the environment and human health. In search for alternatives, the ethanolic extracts of leaves of Capsicum baccatum and C. frutescens (Solanaceae), were evaluated against medium size leaf cutter ant Atta cephalotes, and its symbiotic fungus Leucoagaricus gongylophorus. The results were promising as both plant extracts exhibited a combination of insecticidal and antifungal activity when evaluated at concentrations of 0.10, 0.25, and 0.50 &#37; w/v. Thus, C. baccatum was shown to be the most promising as an insecticidal while, C. frutescens presented a better antifungal activity at high concentrations. Since secondary metabolites present in plants are responsible for their bioactivity, preliminary phytochemical tests and gas chromatography coupled with mass spectrometry (GCMS) of both species were carried out. In qualitative metabolite analysis, major groups detected were alkaloids, terpenoids and phenols, which are the compounds cited with the highest frequency in the management of the leaf cutter ant. Some nuclei were confirmed by GCMS, such as caryophyllene and the alkaloid conhidrine detected in C. baccatum, and precursors of capsaicin in C. frutescens. In this way, both species are considered promising leads for a more efficient integrated management of the leaf cutter ants.]]></p></abstract>
<abstract abstract-type="short" xml:lang="es"><p><![CDATA[Las hormigas cortadoras de hojas son consideradas una plaga mayor en el Neotrópico, debido a las pérdidas económicas considerables que causan al cortar grandes cantidades de material vegetal, para cultivar su hongo simbionte. Su control se da principalmente a través de productos sintéticos con consecuencias adversas para el ambiente y la salud humana. En busca de alternativas, los extractos etanólicos de las hojas de Capsicum baccatum y C. frutescens (Solanaceae), fueron evaluados contra la hormiga cortadora de hojas Atta cephalotes y su hongo simbionte Leucoagaricus gongylophorus. Los resultados fueron prometedores, ya que ambos extractos exhibieron una combinación de actividad insecticida y antifúngica cuando fueron evaluados a concentraciones de 0,10, 0,25 y 0,50 &#37; de m/v. De tal manera, C. baccatum se destacó por su actividad insecticida, mientras que C. frutescens presentó una mayor actividad antifúngica a altas concentraciones. Como los metabolitos secundarios presentes en plantas son responsables por su bioactividad, se llevaron a cabo evaluaciones fitoquímicas preliminares y cromatografía de gases acoplada a espectroscopia de masas (CGEM) para ambas especies. En el análisis cualitativo de metabolitos los grupos mayoritarios detectados fueron alcaloides, terpenoides y fenoles, los cuales son los compuestos que más frecuentemente citan en el manejo de la hormiga cortadora de hojas. Algunos de estos núcleos fueron confirmados por CGEM, tales como el cariofileno y el alcaloide conhidrina en C. baccatum y precursores de capsaicina en C. frutescens. De esta manera, ambas especies son consideradas como una alternativa prometedora para un manejo integrado de la hormiga cortadora de hojas más eficiente.]]></p></abstract>
<kwd-group>
<kwd lng="en"><![CDATA[Antifungal activity]]></kwd>
<kwd lng="en"><![CDATA[Insecticide]]></kwd>
<kwd lng="en"><![CDATA[Leaf cutter ants]]></kwd>
<kwd lng="en"><![CDATA[Secondary metabolites]]></kwd>
<kwd lng="es"><![CDATA[Actividad antifúngica]]></kwd>
<kwd lng="es"><![CDATA[Insecticida]]></kwd>
<kwd lng="es"><![CDATA[Hormigas cortadoras de hojas]]></kwd>
<kwd lng="es"><![CDATA[Metabolitos secundarios]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <font size="2" face="Verdana">     <p align="right">&nbsp;</p>     <p align="right"><b>Secci&oacute;n  Control / Control</b></p>  <font face="Verdana" size="4"><b>Effects of <i>Capsicum baccatum </i>and <i>C. frutescens </i>against <i>Atta cephalotes</i></b> <b>(Hymenoptera: Formicidae) and the symbiotic fungus <i>Leucoagaricus gongylophorus</i></b></font></p>     <p>&nbsp;</p> <font face="Verdana" size="3"><b>Efectos  de <i>Capsicum baccatum </i>y <i>C. frutescens </i>sobre <i>Atta  cephalotes </i>(Hymenoptera: Formicidae) y  el hongo simbionte <i>Leucoagaricus gongylophorus</i></b></font></p>     <p>&nbsp;</p>     <p><b>TATIANA  LOBO-ECHEVERRI<sup>1,2</sup>,  LINA CRISTINA SALAZAR<sup>1,3</sup>,  ALEJANDRA HERN&Aacute;NDEZ<sup>4</sup> y ADRIANA  ORTIZ-REYES<sup>1,5</sup></b></p>     <p><sup>1</sup> Facultad de Ciencias, Universidad  Nacional de Colombia, Sede Medell&iacute;n. Calle 59 A 63-20, 21-326, Medell&iacute;n,  Colombia.     <br><sup>2</sup> Associate  Professor. Ph. D.  Escuela  de Qu&iacute;mica, <i><a href="mailto:tloboech@unal.edu.co">tloboech@unal.edu.co</a>, </i>corresponding author.     <br><sup>3</sup> Student, Maestr&iacute;a en Ciencias-Qu&iacute;mica, <i><a href="mailto:lcsalazarleon@gmail.com">lcsalazarleon@gmail.com</a></i>.    <br> <sup>4 </sup>Student,  Instituto   de  Biolog&iacute;a, Facultad de Ciencias Exactas y Naturales, Universidad de Antioquia.  Calle 67 N&uacute;mero 53-108, Medell&iacute;n, Colombia, <i><a href="mailto:ale8469@gmail.com">ale8469@gmail.com</a></i>.     ]]></body>
<body><![CDATA[<br><sup>5</sup> Associate Professor. Ph. D. Escuela de  Biociencias, <a href="mailto:adortizr@unal.edu.co"><i>adortizr@unal.edu.co</i></a><i>.</i></p> <hr noshade size="1"> <font face="Verdana" size="2"><b>ABSTRACT</b></font>     <p>Leaf  cutter ants are considered to be a major pest in the Neotropics, due to the  considerable economic losses  they cause by cutting large amounts of plant material to cultivate their  symbiotic fungus. Their control is mainly achieved  through synthetic products with adverse consequences to the environment and  human health. In search for alternatives,  the ethanolic extracts of leaves of <i>Capsicum  baccatum </i>and <i>C.  frutescens </i>(Solanaceae), were evaluated against  medium size leaf cutter ant <i>Atta  cephalotes</i>, and its symbiotic fungus <i>Leucoagaricus gongylophorus</i>. The results were  promising as both plant extracts exhibited a combination of insecticidal and  antifungal activity when evaluated at concentrations  of 0.10, 0.25, and 0.50 &#37; w/v. Thus, <i>C.  baccatum </i>was shown to be the most promising as  an insecticidal while, <i>C. frutescens </i>presented a better antifungal activity at high  concentrations. Since secondary metabolites present in plants  are responsible for their bioactivity, preliminary phytochemical tests and gas  chromatography coupled with mass spectrometry  (GCMS) of both species were carried out. In qualitative metabolite analysis,  major groups detected were alkaloids,  terpenoids and phenols, which are the compounds cited with the highest  frequency in the management of the leaf  cutter ant. Some nuclei were confirmed by GCMS, such as caryophyllene and the  alkaloid conhidrine detected in <i>C. baccatum</i>, and precursors of capsaicin in <i>C. frutescens</i>. In this way, both species are considered promising leads  for a more efficient integrated management of the leaf  cutter ants.</p>     <p><font face="Verdana" size="2"><b>Key words</b>:    </font>Antifungal  activity. Insecticide. Leaf cutter ants. Secondary metabolites.</p> <hr noshade size="1">     <p><font face="Verdana" size="2"><b>RESUMEN</b></font></p>     <p>Las  hormigas cortadoras de hojas son consideradas una plaga mayor en el Neotr&oacute;pico,  debido a las   p&eacute;rdidas  econ&oacute;micas considerables que causan al cortar grandes cantidades de material  vegetal, para cultivar su   hongo  simbionte. Su control se da principalmente a trav&eacute;s de productos sint&eacute;ticos con  consecuencias adversas para   el  ambiente y la salud humana. En busca de alternativas, los extractos etan&oacute;licos  de las hojas de <i>Capsicum baccatum</i>   y <i>C. frutescens </i>(Solanaceae), fueron evaluados contra la hormiga cortadora  de hojas <i>Atta cephalotes </i>y su hongo   simbionte <i>Leucoagaricus gongylophorus</i>. Los resultados fueron prometedores, ya que ambos extractos  exhibieron   una  combinaci&oacute;n de actividad insecticida y antif&uacute;ngica cuando fueron evaluados a  concentraciones de 0,10, 0,25 y   0,50  &#37; de m/v. De tal manera, <i>C.  baccatum </i>se destac&oacute; por su actividad  insecticida, mientras que <i>C.  frutescens </i>present&oacute;   una  mayor actividad antif&uacute;ngica a altas concentraciones. Como los metabolitos  secundarios presentes en plantas son   responsables  por su bioactividad, se llevaron a cabo evaluaciones fitoqu&iacute;micas preliminares  y cromatograf&iacute;a de   gases  acoplada a espectroscopia de masas (CGEM) para ambas especies. En el an&aacute;lisis  cualitativo de metabolitos   los  grupos mayoritarios detectados fueron alcaloides, terpenoides y fenoles, los  cuales son los compuestos que m&aacute;s   frecuentemente  citan en el manejo de la hormiga cortadora de hojas. Algunos de estos n&uacute;cleos  fueron confirmados   por  CGEM, tales como el cariofileno y el alcaloide conhidrina en <i>C. baccatum </i>y precursores de capsaicina en <i>C.</i>   <i>frutescens</i>. De esta manera, ambas especies son consideradas como una  alternativa prometedora para un manejo integrado  de la hormiga cortadora de hojas m&aacute;s eficiente.</p>     <p><font face="Verdana" size="2"><b>Palabras clave</b>: </font>Actividad  antif&uacute;ngica. Insecticida. Hormigas cortadoras de hojas. Metabolitos  secundarios. </p> <hr noshade size="1">     <p>&nbsp;</p>     <p><font face="Verdana" size="3"><b>Introduction</b></font></p>     <p>Leaf  cutter ants of the genus <i>Atta </i>and <i>Acromyrmex</i>,  classified   into  the Attini tribe (Hymenoptera: Formicidae), are   considered  pests in the Neotropics due to the amount of leaves   they  cut to cultivate the symbiotic fungus <i>Leucoagaricus</i>   <i>gongylophorus </i>(M&ouml;ller) Singer (Chaves 2006). In the region   of  Colombia, four species of <i>Atta </i>and eight of <i>Acromyrmex</i>   have  been recognized (Fern&aacute;ndez <i>et  al</i>. 2015), from which   <i>Atta cephalotes </i>has the widest distribution predominating in  Antioquia and Valle del Cauca (Ortiz and Guzman 2007).  In  recent years, the foraging activity of the leaf cutter ants   has  intensified as deforestation and monoculture farming has increased (del Toro <i>et al</i>. 2009; Dohm <i>et  al. </i>2011).   Quantitative  data on the biomass consumption by leafcutter   ants  is lacking and the economic losses in areas of   anthropogenic  activity are difficult to estimate (Della Lucia   2003).  The control of the leaf cutter ant has been a challenge   due  to a series of adaptations, such as its social organization, hygiene,  and complex nest structure (Della Lucia <i>et  al</i>. 2014).    Such  adaptations along with their few natural enemies with   little  impact on their populations make these insects unique, so   management  should differ from those applied for other pests   (Herrera  and Valenciaga 2011). Although alternative methods   of  ant control have been studied, synthetic agrochemicals   prevail  in this case (Della Lucia <i>et  al. </i>2014). Chemicals like malathion,  perchlordecone, heptachlor, chlorpyrifos, fipronil   or  sulfuramide have been applied liquid, by thermal fogging   or  in granular baits (Paoletti and Pimentel 2000, Forti <i>et al.</i>   2007,  de Britto <i>et al</i>. 2016). Due to the lack of specificity,   these  highly persistent agrochemicals affect beneficial   insects,  mammals, and have generated resistance among ant   populations,  with adverse consequences to the environment   and  to human health (Rauh <i>et al</i>. 2012; dos Santos <i>et  al.</i>   2016).  In view of the prohibition or restriction of some   synthetic  products, their substitution for other effective and selective  substances against the leaf cutter ants is essential.</p>     <p>   Various  studies describe alternative methods to control   of  the leaf cutter ant, some reported the use of antagonist   fungus  (<i>Trichoderma viride </i>Pers., <i>T.  lignorum </i>(Tode) Harz),   and  enthomopathogens (<i>Metarhizium anisopliae </i>(Metschn.)   Sorokin, <i>Beauveria bassiana </i>Vuill, <i>Paecilomyces </i>sp.), for   species  of <i>Atta </i>and <i>Acromyrmex </i>(L&oacute;pez and Orduz 2003;   Montoya-Lerma <i>et al. </i>2012). Plant extracts have also been   evaluated  for their activity against the ant or their antifungal   potential  against <i>L. gongylophorus</i>. Due to their symbiotic   relationship,  management can be considered at an antifungal   or  insecticidal level. Thus some plant extracts or fractions   have  promising activity only against the ants such as   species  of <i>Citrus </i>(Rutaceae) that presented toxicity in topic   applications  (Fernandes <i>et al. </i>2002), or fractions derived   from  the leaves of tomato (<i>Lycopersicum esculentum </i>Mill,   Solanaceae)  with repellency in a laboratory colony of <i>A.</i>   <i>cephalotes </i>(Serna and Correa 2003). Whereas other species   have  shown activity only as antifungals, for instance the   inhibition  exhibited by <i>Simarouba versicolor </i>A. St. Hil. and   <i>S. guianensis </i>(Simaroubaceae) (Zavan 2005; Pe&ntilde;aflor <i>et al.</i> 2009).</p>     ]]></body>
<body><![CDATA[<p>   Alternatively,  some plants extracts or compounds have   shown  bioactivity against both organisms, the ant and its   symbiotic  fungus, among which the Lamiaceae and Apiaceae   families  have been the most promising families (Boulogne   <i>et al. </i>2012). Species of other plant families also had effects   in  laboratory experiments on the symbiotic fungi and on <i>A.</i>   <i>cephalotes</i>. A significant study of 89 plant species native to   Argentina  showed that 13.5 &#37; of the plants inhibited the   foraging  activity of <i>Acromyrmex lundi </i>(Guerin) and 12.3 &#37;   inhibited  the fungal growth. <i>Aristolochia argentina </i>and   <i>Fluorensia oolepsis </i>presented both activities (Diaz Napal   <i>et al</i>. 2015). Related laboratory studies against <i>Atta </i>species   and <i>L. gongylophorus </i>identified <i>Canavalia  ensiformes</i>   L.  (Fabaceae), <i>Tithonia diversifolia </i>(Hemsl.) A. Gray   (Asteraceae)  (Aubad 2010; Valderrama-Eslava <i>et  al. </i>2009),   <i>Cedrela fissiles </i>Vell. (Meliaceae) (Bueno <i>et al. </i>2005),   <i>Virola sebifera </i>L. (Myristicaceae) (Pangocca <i>et al</i>. 1996),   <i>Sesamum indicum </i>L. (Pedaliaceae) (Bueno <i>et al</i>.  2005) as   some  of the most promising leads. As for the plant-derived   compounds,  20 metabolites with insecticidal and fungicidal   activities  have been identified, where terpenoids have been   the  most promising group (Boulogne <i>et  al. </i>2012). The   sesquiterpenes  caryophyllene, caryophyllene epoxide, and   nerolidol,  reported in extracts of <i>Hymenaea  coubaril </i>L.   (Caespalpiniaceae), <i>Melampodium divaricatum </i>(L.C. Rich)   DC  (Asteraceae), and <i>Vismia baccifera </i>(L.) Triana &amp; Planch   (Clusiaceae)  with repellent and antifungal activities (Howard <i>et al. </i>1988).</p>     <p>   While  many studies have proven the efficacy of plantderived   products  (extracts and compounds) in laboratory   experiments,  follow up studies have not been carried out with   the  promising leads. Chemical control is the only method with   practical  technology (de Britto <i>et al. </i>2016) consequently the   problem  of controlling species of <i>Atta </i>in a sustainable way, still   persists.  In contrast, farmers and indigenous communities in   Colombia  have traditional knowledge about the use of leaves   and  plant resins to control the leaf-cutting ants (Agudelo   2007).  Unfortunately, in many communities this knowledge   has  decreased and as homogenous monocultures have been   implemented,  traditional practices have been replaced by   the  use of commercial synthetic products. Alternatively, the   Solanaceae  is one of the families with the most poisonous   plants  (Lee 2006). Extracts of different plant parts and   compounds  have been widely use as pesticides (Chowanski   <i>et al</i>. 2016). The purpose of this study was to test the efficacy   of  the traditional use of two <i>Capsicum </i>species (Aubad 2010),   against <i>A. cephalotes </i>and its antifungal activity against <i>L.</i>   <i>gongylophorus. </i>As an initial step in the standardization of   the  whole plant extract, detection of secondary metabolites   was  performed in order to characterize the major metabolites that  could be implicated in the bioactivity.</p>     <p> <b>Materials and methods</b></p>     <p>   <b>Plant material. </b>Fruits of <i>Capsicum  baccatum </i>L. and <i>C</i>.   <i>frutescens </i>L. were bought at the local market and cultivated   between  May to September at full sun conditions, in   composted  soil, at 2120 m.s.l. Once plants grew and where   at  a young reproductive stage, 1 kg of leaves, were collected   for  laboratory analysis. For the correct identification of each   plant,  voucher samples were deposited at the Herbarium of   the  National University, Medellin (MEDEL), codified as Atta-   04  (<i>C. frutescens</i>) and Atta-12 (<i>C.  baccatum</i>). Samples were   identified  by Professor Mauricio S&aacute;nchez (Departamento de Ciencias  Forestales, Universidad Nacional de Colombia-sede Medell&iacute;n).</p>     <p><b>Plant extraction. </b>Leaves of <i>C.  baccatum </i>and <i>C</i>. <i>frutescens</i>   separately  were dried at room temperature and extracted   with  90 &#37; ethanol overnight (1L x 100 g), solvent was   drained.  This process was repeated two more times for an   exhaustive  extraction. The combined ethanol extract was   filtered  and concentrated under reduced pressure, using a   rotary  evaporator at a temperature below 40 ÂºC. The resultant   ethanolic  extract was mixed with distilled water to a 10 &#37;   solution  and defatted with hexane. Subsequently, the ethanolaqueous   extract  was extracted three times with an equal   volume  of chloroform, to afford a chloroform soluble extract.   The  resulting fraction was completely dried under vacuum for  further analysis.</p>     <p>   <b>Bioassays. </b>The ants used in the bioassays came from three   artificial  nests from colonies collected in Barbosa (Antioquia)   at  1300 m.s.l., which were established in the laboratory in   2010  (Permits under resolution 15046 Corantioquia). The   artificial  colonies were kept at a temperature of 23.45 &deg;C,   and  a relative humidity of about 62.30 &#37;, in partial darkness   with  the weekly administration of leaves of <i>Acalypha</i>   <i>wilkesiana </i>Mull. A (Euphorbiaceae), <i>Citrus </i>sp.  (Rutaceae),   and <i>Terminalia catappa </i>L. (Combretaceae) (Ortiz 1998).   The  concentrations for the biological testing were based   on  an average of previous bioassays with plant extracts of   other  studies, and the concentrations of pesticides (Loeck and Gusm&atilde;o  1998; Serna and Correa 2003).</p>     <p>   <b>Insecticidal activity<i>. </i></b>For each treatment, 50 medium-sized   <i>A. cephalotes </i>workers were picked from the artificial nests.   The  ant&#39;s size was established based on the protocols of   Giraldo  (2008). To evaluate the insecticidal bioactivity,   the  ants were distributed randomly in groups of 10 ants in   5  petri dishes (Oliveira 2006). The two <i>Capsicum </i>extracts   were  incorporated into a solid diet (Bueno <i>et  al. </i>1997), at   concentrations  of 0.1, 0.25, and 0.5 &#37; (w/v). Cellulose was   added  as a non-nutritive ingredient at concentrations of 150,   375,  and 600 mg (for 0.1, 0.25, and 0.5 &#37; w/v, respectively),   to  disperse the solid extract that was not soluble in the diet   media  (Aubad 2010). The solid diet was changed on a daily   basis  for each treatment, retiring the diet of the day before   when  it was eaten at least more than half. As negative   controls  the same diet was offered to the same number of ants   (50  individuals distributed in groups of 10 in 5 petri dishes)   without  the incorporation of the extracts, but with highest   concentration  of cellulose used to disperse the extracts at   0.5  &#37; (w/v) and another group only with the solid diet. As   positive  control, Lorsban (Dow Agro Sciences) was added   to  the diet (Aubad 2010). Assays were replicated three times   and  the number of dead ants was registered daily during five   days  to calculate the results based on the Abbott&#39;s correction for  natural mortality (Abbot 1987).</p>     <p>   <b>Antifungal activity. </b>For the antifungal assay, samples of <i>L.</i>   <i>gongylophorus </i>were taken directly from the three artificial   nests  and inoculated in PDA (potato dextrose agar), with   lactic  acid at a pH of 4.5 to avoid bacterial contamination.   The <i>in vitro </i>cultures of the fungi were kept in the dark at 26 ÂºC   with  a relative humidity of 79 &#37;. For the bioassay, the fungus   was  cultivated with the dried extracts, which were dispersed   with  cellulose in the culture media at concentrations of 0.1,   0.25,  and 0.5 &#37; (w/v). The negative controls, included the   fungus  cultivated in the PDA and cellulose without any   extract  and the fungus cultivated only in PDA (Pagnocca <i>et</i>   <i>al. </i>1996). No positive control was used since there is not a   standard  product with action against <i>L.  gongylophorus</i>. For   each  treatment, five repetitions were done. The percent of   inhibition  was calculated after measuring the fungus growth   according  to the length of four fixed perpendicular radius,   measuring  always the same radius (Maya 2002). Fungal   growth  was registered for five weeks and compared to the negative  control to calculate the inhibition percentage.</p>     <p>   <b>Data analysis. </b>For the results obtained in the insecticidal   bioassay  of <i>A. cephalotes</i>, the percentage of death ants   caused  by the treatments were calculated using the Abbott&#39;s corrected  mortality percentage formula:</p>      <p>    ]]></body>
<body><![CDATA[<center><img src="img/revistas/rcen/v42n2/v42n2a06for1.jpg"></center></p>      <p>&nbsp;</p>     <p>Where  Co is number of live control ants after treatment, T   number  of live ants in the treatment (Puntener 1981).</p>     <p>After  calculating the percentage of mortality with   Abbott&#39;s  formula, the probability of death of ant individuals   was  assessed by applying different doses of the concentration   of  the extracts of <i>C. frutescens </i>and <i>C.  baccatum</i>. The   probability  of death of the ants was calculated by means of a   logistic  regression with binomial errors (PROBIT analysis).   Dead  ants were treated as success and alive ants as failures. To   assess  the probability of death we used the log link function   that  expresses the probability of death (<i>p</i>) as follows:</p>          <p>    <center><img src="img/revistas/rcen/v42n2/v42n2a06for2.jpg"></center></p>        <p>Where <i>x </i>is the concentration of plant extract employed and <i>a</i>   and <i>b </i>the parameters of the model (Crawley 2012).</p>     <p>Based  on the fitted logistic model, the doses of plant   concentration  needed to kill 50 &#37;, 90 &#37;, or 95 &#37; of the   individuals  of each species, were estimated. The analyses   were  performed using the R software version 3.01 (R   Core  Team 2014). We used the <i>dose.p </i>function available   in  the library MASS to calculate the doses needed to kill a   predefined  percentage of individuals.</p>     <p>For  the antifungal activity, the percentage inhibition   was  calculated based on the fungal growth (colony   diameter)  of the control samples as reference, according to the  formula:</p>      <p>    ]]></body>
<body><![CDATA[<center><img src="img/revistas/rcen/v42n2/v42n2a06for3.jpg"></center></p>      <p>   Where  C is the colony diameter (mm) of the control and T the   colony  diameter (mm) of the test plate.</p>     <p>To  identify the variation at different doses of the   antifungal  activity, a one way analysis of variance (ANOVA)   of  the percentage inhibition at each dose, was conducted.   When  significant differences were detected (&alpha; &le; 0.05), a   Tukey&rsquo;s  range test, with a confidence level of 95 &#37;, was   done  to establish the differences at each level of activity. The   analyses  were performed using the R software version 3.01   (R  Core Team 2014).</p>     <p>   <b>Phytochemical analysis. </b>Alkaloids<i>: </i>The dry ethanolic   extracts  (4 mL) of <i>C. baccatum </i>and <i>C.  frutescens </i>were stirred   with  4 mL of 1 &#37; HCl on steam bath, this was filtered and   separated  in 4 tubes (1 mL each). Each tube was analyzed by   four  different reagents, namely, Dragendorff, Mayer, Valser   and  ammonium Reineckate. Change of color or turbidity of   the  resulting precipitate was taken as evidence of the presence of  alkaloids (Kavit <i>et al. </i>2013).</p>     <p>   Anthraquinones:  The Borntr&auml;ger reaction was carried   out,  starting with a basic hydrolysis with KOH (5 &#37;) to the   ethanolic  extracts (5 mL), which was then was acidified with   acetic  acid and re-extracted with benzene. The resultant   extraction  was stirred with 2.5 mL of NaOH (10 &#37;). The   red  coloration in the alkaline phase was considered positive (Yusuf <i>et al. </i>2014).</p>     <p>   Cardiotonic  glicosides: Keller-kiliani test was performed,   in  which 1mL of glacial acetic acid and 1-2 drops of FeCl3   was  added followed by 1mL of concentrated H2SO4 to  2 mL   of  the extract of each <i>Capsicum </i>species. Green blue color   indicated  the presence of cardiac glycosides (Parekh and Chanda  2007).</p>     <p>   Coumarins:  the Lock test was carried out taking 2 mL   of  the ethanolic extracts that were covered with filter paper   impregnated  with a diluted NaOH solution in a steam bath.   The  filter paper was removed and the extract was analyzed   under  UV light. A yellow fluorescence was an indication of the  presence of coumarins (Lock 1988).</p>     <p>   Saponins:  The dried extracts (2 mL) were re-dissolved in   5  ml of distilled water, then shaked well and evaluated for its frothing  persistence (Kavit <i>et al. </i>2013).</p>     <p>   Steroids  and triterpenes: The extracts were dried and rediluted   in  2 mL of chloroform that was separated in 2 tubes for the  Salkowski test and the Liberman-Burchard reaction. For this  last reaction, green coloration was taken as the presence   of  steroids, while a violet coloration indicated triterpenes.   Reddish  brown coloration of interface indicated the presence of  Terpenes for Salkowski (Tiwari <i>et  al</i>. 2011).</p>     <p>   Tannins:  The extracts were dried and re-dissolved   with  distilled water (3 mL) and 2 drops of ferric chloride   were  added. The blue coloration was taken as positive for   hydrolysable  tannins and green coloration for condensed   tannins  (Tiwari <i>et al</i>. 2011).</p>     ]]></body>
<body><![CDATA[<p>   Quantification  of flavonoids: An initial calibration curve   was  done with quercetin. For each of the <i>Capsicum </i>species, a   mixture  of 0.5 mL of the ethanolic extract (0.1 &#37; v/v) with 0.5   mL  of a solution of aluminum trichloride (2 &#37;) was prepared.   The  absorption was read after 40 minutes at 420 nm in a UVVis   spectrophotometer  (Hitachi UV-Vis model 150-20). The   total  concentration of flavonoid was expressed as quercetin   equivalents  (mg of quercetin per g of plant extract), based on   the  calibration curve. All determinations were carried out in   triplicates  (Woisky and Salatino 1998).</p>     <p>   Quantification  of total phenols<i>: </i>The Folin-Ciocalteu   colorimetric  method was carried as reported in the literature   (Singleton <i>et al. </i>1965). For each of the <i>Capsicum </i>species   50  Î¼L of the ethanolic extract was mixed to 125 Î¼L of the   Folin  reagent, and 400 Î¼L of sodium carbonate 7.1 &#37; (w/w),   adding  distilled water up to 1000 Î¼L. The reading was done   at  760 nm using the spectrophotometer and a comparison was   established  with the standard curve using gallic acid as the   phenolic  standard. Each <i>Capsicum </i>extract was analyzed in   triplicated  and results were expressed as mg of equivalent of   gallic  acid per grams of extract.</p>     <p>   Detection  of compounds by gas chromatography coupled to   mass  spectrometry (GCMS)<i>: </i>Two samples of each <i>Capsicum</i>   species  were prepared, one was the resulting fraction after the   initial  fractionation and partition procedure described above   (1),  and nitrogen containing compound sample (2). This   later  sample was prepared from 100 mg of each ethanolic   extract  that was dissolved in 3 mL of H2S04 (2  &#37; w/v). This   was  re-extracted with diethilic ether and NaOH (20 &#37; pH   9-10)  was added and extracted again with ethyl acetate and   dried.  The resultant fraction (10 mg) was diluted in 5 mL of   pyridine  and <i>N</i>,<i>O</i>-bis (trimethylsilyl) trifluoroacetamide with   1  &#37; of trimethylchlorodesilane (BSTFA+TMCS, Supelco), as   derivatizing  agents (Schummer <i>et al. </i>2009). The mixture was   heated  for 30 min at 100 ÂºC. Furthermore, 5 Î¼L of the samples   (1)  and (2), of <i>C. baccatum </i>and <i>C.  frutescens </i>were injected in   a  gas chromatographer (Agilent 6890), coupled with a mass   spectrometer  (Agilent 5973), with a capillary column (Agilent   19091J-413,  30.0 m x 320.0 Î¼m x 0.25 Î¼m) using helium gas   grade  5 (AGA Fano S.A., UAP 99.999 &#37;) at a flux of 1 mL/   min  (lineal velocity 37 cm/s). The injection was at split-less   mode  with a maximum temperature of 350 &deg;C. The run was at   SCAN  mode with a waiting time of 6 min for the solvent, and   an  interval of masses between <i>m/z </i>30-800. The chromatograms   were  analyzed with AMDIS software (Automated Mass   Spectral  Deconvolution and Identification System) (Augusto   <i>et al. </i>2000), and the spectral database NIST 98 (2001).</p>     <p><b>Results</b></p>     <p>   <b>Insecticidal activity. </b>The two species of <i>Capsicum </i>showed   a  positive and significant connection betwe en plant extract   concentrations  and the probability of death of ant individuals  <a href="#tab1"> (Table  1</a>; <a href="#fig1">Fig. 1)</a>. The total residual deviance of the model   was  0.98 for <i>C. frutescens </i>and 56.2 for <i>C.  baccatum.</i></p>          <p align="center"><a name="tab1"></a> <img src="img/revistas/rcen/v42n2/v42n2a06tab1.jpg"></p>      <p align="center"><a name="fig1"></a> <img src="img/revistas/rcen/v42n2/v42n2a06fig1.jpg"></p>     <p>   However,  the concentration of plant extract of <i>C.  baccatum</i>   needed  to kill a predefined proportion of ant individuals was   significant  lower than that of <i>C. frutescens </i> <a href="#tab2">(Table 2)</a>.</p>            <p align="center"><a name="tab2"></a> <img src="img/revistas/rcen/v42n2/v42n2a06tab2.jpg"></p>      <p>   <b>Antifungal activity. </b>According to the ANOVA <a href="#fig2">(Fig. 2)</a>, both   species  presented significant differences in their activity   when  compared to the control samples. In <i>C.  frutescens</i>   the  antifungal activity was increased proportionally to the   concentration,  while for <i>C. baccatum </i>there were no difference   between  0.1 and 0.25 &#37; (w/v). Only at a concentration   of  0.5 &#37; w/v the activity was significantly different. Additionally,   significant  differences between <i>C. baccatum </i>and <i>C.</i>   <i>frutescens </i>were found, in each of the concentrations evaluated   (F  = 141.4; df = 152; P &lt; 0.001) <a href="#fig2">(Fig. 2).</a> There were no   significant  differences between both positive controls (with   cellulose  added and without).</p>            ]]></body>
<body><![CDATA[<p align="center"><a name="fig2"></a> <img src="img/revistas/rcen/v42n2/v42n2a06fig2.jpg"></p>      <p>   <b>Phytochemical analysis. </b>In the qualitative colorimetric tests,   cardiotonic  glycosides, coumarins, steroids and triterpenes,   alkaloids,  and phenols were detected for both <i>Capsicum</i> species  <a href="#tab3">(Table 3)</a>.</p>         <p align="center"><a name="tab3"></a> <img src="img/revistas/rcen/v42n2/v42n2a06tab3.jpg"></p>     <p>   In  the detection of compounds by GCMS, the   chromatograms  evidenced differences in the composition   of  volatile compounds between both species <a href="#tab4">(Table 4)</a>. The   most  relevant finding in <i>C. baccatum </i>was the presence of   caryophyllene  and conhidrine, which were not detected in   <i>C. frutescens. </i>In this last species, a high content of phytol,   22,23-dihydrostigmasterol,  campesterol and some fatty   acids  ethyl esthers, were identified as the most abundant compounds  <a href="#tab4">(Table 4)</a>.</p>         <p align="center"><a name="tab4"></a> <img src="img/revistas/rcen/v42n2/v42n2a06tab4.jpg"></p>     <p>   In  the derivatized samples (nitrogen containing compounds)   of <i>C. frutescens</i>, two characteristic molecular ions   of <i>m/z </i>224 and <i>m/z </i>209 were evidenced, which were not   detected  in <i>C. baccatum</i>. These fragments are typical of TMSderivatized   vanillylamine  and a 4-hydroxy-3-methoxybenzyl   fragment,  respectively.</p>     <p>   <b>Discussion</b></p>     <p>   In  the search of methods to control leaf cutter ants, it is   relevant  to consider that the symbiotic relationship between   ants  of the genus <i>Atta </i>and the fungus <i>L.  gongylophorus</i>,   implies  that the negative effect on the survival of one of the   organisms  involved will compromise the survival of the other   (Seal  2006). However, as evidenced in the present study both   species  of <i>Capsicum </i>exhibited bioactivity against the ants   and  the fungi <a href="#fig1">(Figs. 1</a> and <a href="#fig2">2)</a>, which is significant according   to  some authors that have pointed out that plants containing   chemicals  with both activities, are the most promising leads   (Boulogne <i>et al. </i>2012). In accordance to this argument, the   study  conducted by Diaz Napal and collaborators (2015)   found  a promising lead out of a screening of 89 native   Argentinian  plant species against <i>Acromyrmex lundi </i>and its   symbiotic  fungus. The best activity was found in <i>Aristolochia</i>   <i>argentina </i>Griseb (Aristolochiaceae), from which the lactone,   argentilactone  was identified through bioassay-guided fractionation   presenting  antiforaging and antifungal activities.   The  authors suggest that the link between both activities is   related  to the type of chemical defenses in the plant developed   as  a protection mechanism, emphasizing in the importance   of  addressing at once various types of bioactivities (Diaz   Napal  2015). In this sense, plant biomass-degrading enzymes   that  are in the fungal gongylidia play an important role in   the  biodegradation in fungal gardens (Aylward <i>et al. </i>2015).   Therefore  some authors propose that secondary metabolites   that  inhibit fungal enzymatic activity could cause leaves to be   rejected  by forager ants (Nichols-Orians and Schultz 1990).   The  evolutionary relationship of plants and these insects has   led  to complicated interactions between these two groups, so   plants  that exert activity over the fungus and the ants could   act  efficiently in the integrated management of the leaf cutter   ants  by affecting both organisms simultaneously.</p>     <p>   Together  with enthomopathogenic microorganisms,   plants  are the most widely studied options in the leaf cutter   ant  control (Valderrama-Eslava <i>et  al. </i>2009; Boulogne <i>et</i>   <i>al</i>. 2012, Montoya-Lerma <i>et  al. </i>2012, Diaz Napal <i>et al</i>.   2015).  The Solanaceae is among the top five plant families   with  reported insecticidal activity and in the seventh place   as  an antifungal (Boulogne <i>et  al</i>. 2012). Numerous species   within  this family have ecological importance because the   production  of compounds that affects insects belonging to   most  orders (Chowanski <i>et al. </i>2016). In this family, phenolic compounds such as eugenol  and cinnamaldehyde have been   reported  in <i>Capsicum </i>species and <i>Lycopersicon  esculentum</i>   Mill.,  while the monoterpene pulegone and the alkaloids   tomatine  and solamargine have been found in <i>Capsicum</i>   and <i>Solanum </i>species, as compounds with insecticidal and   antifungal  properties (G&uuml;ntner <i>et al. </i>2000, Boulogne <i>et  al.</i>   2012).  Overall in the literature, it was established that the   most  cited compounds for the control of the leaf cutter ant   were  terpenoids, alkaloids, and phenols (Boulogne <i>et al.</i> 2012).  In accordance, these nuclei were detected in both   species  of <i>Capsicum </i>in the phytochemical screening <a href="#tab3">(Table 3)</a>,  but differences in the presence of specific compounds   were  shown in the analysis through GCMS <a href="#tab4">(Table 4)</a>. This   particular  chemical composition is reflected in the bioactivity,   while <i>C baccatum </i>was 2.2 times more toxic than <i>C. frutescens</i>   in  the assays against <i>A. cephalotes </i> <a href="#fig1">(Fig. 1)</a>, this later species   exhibited  a total inhibition of the fungal growth at the highest   concentration <a href="#fig2"> (Fig. 2)</a>.</p>     <p>   In  terms of the three major groups of compounds reported   for  its antifungal and insecticidal activity, for terpenoids the   most  relevant finding was the presence of caryophyllene in   <i>C. baccatum </i><a href="#tab4">(Table 4)</a>. These byciclic sesquiterpenes have   been  recognized contributing to the general resistance of   plants  affecting a wide range of fungi (Bakkali <i>et  al. </i>2008).   Caryophyllene  oxide was reported as a defensive compound   in  leaves of <i>Hymenaea courbaril </i>L. (Fabaceae) against   ants  of the genus <i>Atta </i>(Hubbell <i>et  al. </i>1983). Additionally,   Howard <i>et al. </i>(1989) demonstrated that caryophyllene   oxide  presented adverse effects against the leaf cutter ant   and  inhibited completely its symbiotic fungus. Moreover,   caryophyllenes  have been recognized as one of most   promising  type of compounds in the control of the leaf cutter   ants  (Boulogne <i>et al. </i>2012). A related group to triterpenes   is  sterols, which were identified in both <i>Capsicum </i>species   <a href="#tab4">(Table 4)</a>, and have shown toxicity for <i>L.  gongylophorus</i>   (Marsaro <i>et al. </i>2004). Otherwise, alkaloids as the second   most  cited group of compounds in the control of leaf cutter   ants,  are frequently reported in members of the Solanaceae   family,  having a defensive role against fungi and insects   (Boulogne <i>et al. </i>2012, Chowanski <i>et  al. </i>2016), In particular,   the  piperidinic alkaloid conhidrine was detected for <i>C.</i>   <i>baccatum </i>by GCMS <a href="#tab4">(Table 4)</a>, which has been known for its   activity  as antibiotic, insecticidal, and antifungal (Gregor&iacute;-   Vald&eacute;s  2005). Other nitrogen containing compounds well   known  in <i>Capsicum </i>species are capsaicinoids. Capsaicin   (8-methyl-N-vanillyl-6-nonenamide)  has been reported   as  an antifungal (Ozcelik <i>et  al. </i>2011), and has shown   activity  against the crop pests <i>Myzus  persicae </i>(Sulz) and   <i>Leptinotarsa decemlineata </i>Say (Chowanski <i>et  al. </i>2016). In   this  way in the GCMS analysis, a molecular ion typical for   TMS-derivatized  vanillylamide at <i>m/z </i>224 and a fragment   of <i>m/z </i>209 characteristic of 4-hydroxy-3-methoxybenzyl   were  detected in <i>C. frutescens</i>, as the basic precursors   for  capsaicin (Keum <i>et al. </i>2012). Generally capsaicinoids   are  produced in the fruits, but some authors explain its   translocation  to leaves and twigs to accomplish a protective   role  for the plant (Broderick and Cooke 2009). Finally, the   other  relevant group of compounds detected quantitatively   for  both plant species was phenols <a href="#tab3">(Table 3)</a>. This type of   metabolites  has been well recognized in chemical signaling.    It  has been discussed that the acidity of the sap is related   to  the presence of phenolic compounds, which are fungal   inhibitors,  as well (Davidson and Fisher 1991; Magalh&atilde;es   <i>et al. </i>2008). Overall, a total of twenty chemical classes of   secondary  metabolites have been reported in the leaf cutter   ant  control (Boulogne <i>et al. </i>2012). It is noticeable the   specific  advantages of plants containing compounds such   as  terpenoids and phenols, which are known to have strong chemical defensive  activity against insects, bacteria and   fungi  (Karamanoli <i>et al. </i>2000).</p>     ]]></body>
<body><![CDATA[<p>   The  results obtained in this study carried out as <i>in vitro</i>   studies,  are considered a first step in the use of <i>Capsicum </i>leaf   extracts  in the cutter ant control. The bioactivity found for   <i>C. baccatum </i>and <i>C.  frutescens </i>could be considered for the   approach  proposed by some authors of preparing a mixture   of  plant extracts (Montoya-Lerma <i>et  al. </i>2012). Additionally   this  supports the traditional practice of some communities   in  the Amazon that use a mixture of <i>Capsicum </i>species   to  control leaf cutter ants (Personal communication with   Liced  Agudelo). Furthermore, the use of plant extracts has   to  be supported by standardization studies since secondary   metabolites  in plants can increase or be produced <i>de  novo </i>as   a  response to pest invasion (Miresmailli and Isman 2014). In   this  way by identifying the compounds responsible for the   bioactivity  and proving its presence in the extract is a step that   has  to be complemented by the <i>in  situ </i>activity. Some authors   point  out that standardized plant extracts with a mixture of   active  phytochemicals should reduce the rate of evolution of   conventional  resistance compared with the selection pressure   exerted  by single pure toxin (Della Lucia <i>et  al. </i>2014). Plant   extracts  are a complex chemical mix, hence insects are   affected  by many different compounds that usually have a   broad  physiological activity, which reduces the probability of   developing  resistance. In this way, because the leaf cutter ant   management  is still very complex, research in plant derived   products  and follow-up studies in the field conditions, should   be  prioritized in the search of promising alternatives.</p>     <p>   <b>Conclusions</b></p>     <p>   Both  plant extracts exhibited a combination of insecticidal   and  antifungal activity, being <i>C.  baccatum </i>the best lead   as  an insecticidal while, <i>C.  frutescens </i>presented a better   antifungal  activity at high concentrations. In the qualitative   phytochemical  tests the same type of compounds were detected   in  both species of <i>Capsicum</i>. Chemically related compounds   have  similar actions, which supports the promising bioactivity   obtained  for both <i>Capsicum </i>species. Further studies in the   isolation  and identification of compounds, could support the   standardization  of these plant extracts.</p>     <p>   <b>Acknowledgements</b></p>     <p>   Authors  acknowledge Professors &Aacute;lvaro Duque for his advice   in  the statistical analysis, and Jair Gaviria and the Instrumental   Analysis  Laboratory of the Universidad Nacional de   Colombia-Sede  Medell&iacute;n, for the acquisition of spectral data.   We  also acknowledge to the &quot;Departamento Administrativo   de  Ciencia, Tecnolog&iacute;a e Inovaci&oacute;n, COLCIENCIAS&quot; for   the  financial support under the grant 495-2009. LC. Salazar   in  thankful for the financial support given by the program   &quot;Jovenes  Investigadores&quot; COLCIENCIAS 566. Authors   acknowledge  the reviewers for their input in improving the   manuscript.</p>     <p>   <b>Literature cited</b></p>     <!-- ref --><p>   ABBOT,  W. A. 1987. Classic paper: Abbot&#39;s formula. A method   of  computing the effectiveness of an insecticide. Journal of the   American  Mosquito Control Association 3: 302-303.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2600463&pid=S0120-0488201600020000600001&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     <!-- ref --><p>   Agudelo,  L. 2007. Plantas utilizadas en el manejo de la hormiga   &quot;propia  arriera&quot; (<i>Atta sexdens </i>F. Smith) en las chagras indigenas   Ticuna  (Sector sur PNN Amacayacu, Amazonas, Colombia).   Undergraduate  final report in Biology. Instituto de Biologia,   Universidad  de Antioquia. Medellin, Colombia. 64 p.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=2600465&pid=S0120-0488201600020000600002&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     ]]></body>
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