<?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>0123-4226</journal-id>
<journal-title><![CDATA[Revista U.D.C.A Actualidad & Divulgación Científica]]></journal-title>
<abbrev-journal-title><![CDATA[rev.udcaactual.divulg.cient.]]></abbrev-journal-title>
<issn>0123-4226</issn>
<publisher>
<publisher-name><![CDATA[Universidad de Ciencias Aplicadas y Ambientales]]></publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id>S0123-42262014000200019</article-id>
<title-group>
<article-title xml:lang="en"><![CDATA[SYNTHESIS, CHARACTERIZATION AND ANTIMICROBIAL ACTIVITY OF A Pd(II) COMPLEX WITH A 1,3-DIPHENYLPYRAZOLE-4-CARBOXALDEHYDE THIOSEMICARBAZONE LIGAND]]></article-title>
<article-title xml:lang="es"><![CDATA[SÍNTESIS, CARACTERIZACIÓN Y ACTIVIDAD ANTIMICROBIAL DE UN COMPLEJO DE Pd(II) CON LIGANTE 1,3-DIFENILPIRAZOL-4-CARBOXALDEHÍDO TIOSEMICARBAZONA]]></article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Burgos C.]]></surname>
<given-names><![CDATA[Ana E.]]></given-names>
</name>
<xref ref-type="aff" rid="A01"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Tamayo]]></surname>
<given-names><![CDATA[Lenka]]></given-names>
</name>
<xref ref-type="aff" rid="A02"/>
</contrib>
<contrib contrib-type="author">
<name>
<surname><![CDATA[Torrellas-Hidalgo]]></surname>
<given-names><![CDATA[Rosabel]]></given-names>
</name>
<xref ref-type="aff" rid="A03"/>
</contrib>
</contrib-group>
<aff id="A01">
<institution><![CDATA[,Universidad Nacional de Colombia Facultad de Ciencias Departamento de Química]]></institution>
<addr-line><![CDATA[Bogotá D.C. ]]></addr-line>
<country>Colombia</country>
</aff>
<aff id="A02">
<institution><![CDATA[,Universidad Nacional de Colombia Facultad de Ciencias Departamento de Química]]></institution>
<addr-line><![CDATA[Bogotá D.C. ]]></addr-line>
<country>Colombia</country>
</aff>
<aff id="A03">
<institution><![CDATA[,Udana Inc  ]]></institution>
<addr-line><![CDATA[ ]]></addr-line>
</aff>
<pub-date pub-type="pub">
<day>31</day>
<month>12</month>
<year>2014</year>
</pub-date>
<pub-date pub-type="epub">
<day>31</day>
<month>12</month>
<year>2014</year>
</pub-date>
<volume>17</volume>
<numero>2</numero>
<fpage>477</fpage>
<lpage>486</lpage>
<copyright-statement/>
<copyright-year/>
<self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_arttext&amp;pid=S0123-42262014000200019&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_abstract&amp;pid=S0123-42262014000200019&amp;lng=en&amp;nrm=iso"></self-uri><self-uri xlink:href="http://www.scielo.org.co/scielo.php?script=sci_pdf&amp;pid=S0123-42262014000200019&amp;lng=en&amp;nrm=iso"></self-uri><abstract abstract-type="short" xml:lang="en"><p><![CDATA[This article describes the synthesis and characterization of a new complex, [Pd(Ph2PzTSC)2], formed between palladium(II) and 1,3-diphenylpyrazole-4-carboxaldehyde thiosemicarbazone ligand as a strategy for antimicrobial activity improvement the synthesized complex. The metal coordination leads to an improvement of ligand pharmacological activities and synergistic effects involving both metal ion as the ligand. The bidentate ligand is coordinated to metal ion through the azomethine nitrogen atoms and the sulphur in the form of thiol by deprotonation of the NH-C=S group. The antimicrobial activity of these new compounds was evaluated against gram-negative (Escherichia coli, Klebsiella pneumoniae and Pseudomonas aeruginosa) and gram-positive (Staphylococcus aureus and Bacillus thuringiensis) bacteria and two yeasts strains (Candida albicans and Saccharomyces cerevisiae). A comparison between the antimicrobial activity of the complex and that of the free ligand revealed that the coordination of Pd(II) improved the activity.]]></p></abstract>
<abstract abstract-type="short" xml:lang="es"><p><![CDATA[En este artículo se describe la síntesis y caracterización de un nuevo complejo de paladio(II), [Pd(Ph2PzTSC)2], con el ligante 1,3-difenilpirazol-4-carboxaldehído tiosemicarbazona (Ph2PzTSC) como una estrategia para mejorar la actividad antimicrobiana del complejo formado. La coordinación del ion metálico y el efecto sinérgico entre estos, conduce a mejorar la actividad biológica del complejo. El ligante se coordina al ion metálico de modo bidentado a través del átomo de nitrógeno del azometino y del azufre en forma de tiol, por la desprotonación del grupo NH-C=S. La actividad antimicrobiana de estos compuestos fue evaluada frente a bacterias Gram-negativas (Escherichia coli, Klebsiella pneumonia, Pseudomonas aeruginosa) y Gram-positivas (Staphylococcus aureus, Bacillus thuringensis) y dos levaduras (Candida albicans y Saccharomyces cerevisiae). Cuando fueron comparados los resultados de la actividad antimicrobiana con la actividad del ligante libre, se observó que la coordinación del Pd(II) mejoró la actividad.]]></p></abstract>
<kwd-group>
<kwd lng="en"><![CDATA[Schiff base ligands]]></kwd>
<kwd lng="en"><![CDATA[Pd(II) compounds]]></kwd>
<kwd lng="en"><![CDATA[biological activity]]></kwd>
<kwd lng="es"><![CDATA[Ligantes bases de Schiff]]></kwd>
<kwd lng="es"><![CDATA[compuestos de Pd(II)]]></kwd>
<kwd lng="es"><![CDATA[actividad biológica]]></kwd>
</kwd-group>
</article-meta>
</front><body><![CDATA[  <font size="2" face="verdana">     <p align="right"><b>CIENCIAS AGROPECUARIAS-Art&iacute;culo Cient&iacute;fico</b></p>     <p align="center"><b>SYNTHESIS, CHARACTERIZATION AND ANTIMICROBIAL ACTIVITY OF A Pd(II) COMPLEX WITH A 1,3-DIPHENYLPYRAZOLE-4-CARBOXALDEHYDE THIOSEMICARBAZONE LIGAND</b></p>     <p align="center"><b>S&Iacute;NTESIS, CARACTERIZACI&Oacute;N Y ACTIVIDAD ANTIMICROBIAL DE UN COMPLEJO DE Pd(II) CON LIGANTE 1,3-DIFENILPIRAZOL-4-CARBOXALDEH&Iacute;DO TIOSEMICARBAZONA</b></p>     <p><b>Ana E. Burgos C.<sup>1</sup>, Lenka Tamayo<sup>2</sup>,  Rosabel Torrellas-Hidalgo<sup>3</sup></b></p>     <p><sup>1</sup>Ph.D. Ciencias-Qu&iacute;mica,  M.Sc. Qu&iacute;mica, Profesora Asociada en Dedicaci&oacute;n  Exclusiva, Grupo de Investigaci&oacute;n en Qu&iacute;mica de Coordinaci&oacute;n  y Bioinorg&aacute;nica,  Departamento de Qu&iacute;mica, Facultad  de Ciencias, Universidad Nacional de Colombia,  Av. Cra 30 No. 45-03,  Bogot&aacute;  D.C., Colombia.  E-mail: <a href="mailto:aeburgosc@unal.edu.co">aeburgosc@unal.edu.co</a></p>     <p><sup>2</sup>M.Sc. Qu&iacute;mica,  Qu&iacute;mica,  Grupo de Investigaci&oacute;n en Qu&iacute;mica de Coordinaci&oacute;n  y Bioinorg&aacute;nica,  Departamento de Qu&iacute;mica, Facultad  de Ciencias, Universidad Nacional de Colombia,  Av.  Cra 30 No. 45-03,  Bogot&aacute;  D.C., Colombia.  E-mail: <a href="mailto:levitalo616@gmail.com">levitalo616@gmail.com</a></p>     <p><sup>3</sup>Ph.D.  Qu&iacute;mica,  Qu&iacute;mica, Udana Inc.14027  Memorial Drive # 349, Houston,  TX, 77079.USA. E-Mail: <a href="mailto:rosabel.torrellas@gmail">rosabel.torrellas@gmail</a></p>     <p>Rev. U.D.C.A Act. &amp; Div. Cient. 17(2): 477-486, Julio-Diciembre,  2014</p> <hr>     <p><b>SUMMARY</b></p>     ]]></body>
<body><![CDATA[<p>This article describes  the synthesis and characterization of a new complex, &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;, formed between palladium(II) and  1,3-diphenylpyrazole-4-carboxaldehyde thiosemicarbazone ligand as a strategy  for antimicrobial  activity improvement   the  synthesized  complex.     The  metal  coordination leads to an improvement of ligand pharmacological activities and synergistic effects involving both metal ion as the ligand. The bidentate  ligand is coordinated to metal ion through  the azomethine  nitrogen  atoms  and  the sulphur  in the form of thiol by deprotonation of the NH-C=S  group. The antimicrobial activity of these  new compounds was evaluated  against gram-negative  (<i>Escherichia   coli</i>, <i>Klebsiella   pneumoniae </i>and <i>Pseudomonas aeruginosa</i>)  and gram-positive  (<i>Staphylococcus aureus </i>and <i>Bacillus  thuringiensis</i>)  bacteria  and two yeasts  strains  (<i>Candida  albicans </i>and <i>Saccharomyces cerevisiae</i>).  A comparison between the antimicrobial activity of the complex  and that of the free ligand revealed that the coordination of Pd(II) improved the activity.</p>     <p><b>  Key words:</b> Schiff base ligands, Pd(II) compounds, biological activity.</p> <hr>     <p><b>RESUMEN</b></p>     <p>En este  art&iacute;culo se describe  la s&iacute;ntesis  y caracterizaci&oacute;n de un  nuevo  complejo  de  paladio(II), &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;, con  el ligante 1,3-difenilpirazol-4-carboxaldeh&iacute;do tiosemicarbazona (Ph<sub>2</sub>PzTSC) como  una  estrategia  para  mejorar  la actividad antimicrobiana  del  complejo   formado.   La  coordinaci&oacute;n del ion met&aacute;lico  y el efecto  sin&eacute;rgico  entre  estos,  conduce a mejorar  la actividad biol&oacute;gica del complejo.  El ligante se coordina  al ion met&aacute;lico  de  modo  bidentado a  trav&eacute;s  del &aacute;tomo de nitr&oacute;geno  del azometino  y del azufre en forma de tiol, por la desprotonaci&oacute;n del grupo NH-C=S. La actividad antimicrobiana  de  estos   compuestos fue  evaluada  frente a  bacterias   Gram-negativas  (<i>Escherichia   coli,  Klebsiella pneumonia,  Pseudomonas  aeruginosa</i>)   y  Gram-positivas (<i>Staphylococcus   aureus,    Bacillus    thuringensis</i>)   y  dos levaduras  (<i>Candida  albicans </i>y <i>Saccharomyces cerevisiae</i>). Cuando  fueron  comparados los resultados  de  la actividad antimicrobiana con la actividad del ligante libre, se observ&oacute; que la coordinaci&oacute;n del Pd(II) mejor&oacute; la actividad.</p>     <p><b>   Palabras  clave:</b>  Ligantes  bases   de  Schiff,  compuestos de Pd(II), actividad biol&oacute;gica.</p> <hr>     <p><b>INTRODUCTION</b></p>     <p>Thiosemicarbazones are an important  and  versatile type of ligands due to the potential donor  atoms  that they possess, among  which sulfur is of paramount importance in the metal-ligand  linkage  (Matesanz <i>et  al</i>. 2013).  These  are  strong metal  chelating  agents  and  moreover  some  of them  have showed  antineoplastic activity by themselves.   It has  been demonstrated that  the  biochemical   mechanism of  action involves, among  others,  ribonucleotide  reductase inhibition and  non-covalent  DNA binding (Lobana <i>et al</i>. 2009;  Matesanz  &amp; Souza,  2009).  Thiosemicarbazones also  have  wide pharmacological versatility and cytotoxic, antitumor, antimalarial, antimicrobial,  and  antiviral properties  (Da Silva <i>et al</i>. 2013a).  The  thiosemicarbazones and  their complexes  with transition metals are of great chemical and biological interest because they exhibit diverse pharmacological actions,  which include antibacterial,  antifungal, antitumor, antiviral, and antimalarial activities, among  others (Husain <i>et al</i>. 2007; Beraldo &amp; Gambino, 2004; Salman &amp; Mohamad,  2009; Matesanz <i>et al</i>. 2013;   Rebolledo <i>et al</i>. 2005;  Da Silva <i>et al</i>. 2013a;  Pelosi, 2010).  On the other  hand,  the pyrazole nucleus  and its  derivatives  exhibit  a  diverse  range  of  pharmacological activities, presenting  cytotoxic, antitumor, analgesic,  antiinflammatory,  antipyretic,  antibacterial,  antioxidant,  antiviral, anticonvulsant, muscle  relaxant  and  antifungal  properties,  and  hypoglycemic  effects  (Leovac <i>et al</i>. 2007;  Hashimoto <i>et al</i>. 2002;  Habeeb <i>et al</i>. 2001;  Price &amp; Jorgensen, 2000; Ali <i>et  al</i>.  2012).  Due  to  its wide range  of biological  activity, pyrazole ring constitutes a relevant  functional  group  in pharmaceutical industry. In fact, such  a heterocyclic  moiety represents the core structure  for number  of drugs (Anoop &amp; Ranab,  2010).  Moreover, the various biological activities exhibited by Pd(II) complexes  with ligands of electron donor atoms, such as nitrogen and sulfur in the thiosemicarbazones, have prompted the study of these  compounds (Gambino <i>et al. </i>2007<i>; </i>Garoufis <i>et al</i>. 2009).</p>     <p>   This work is aimed  to describe  the synthesis  and  chemical characterization of a new Pd(II) complex obtained  by the reaction of Ph<sub>2</sub>PzTSC with PdCl<sub>2</sub> as a strategy for antimicrobial activity improvement  of the synthesized  complex.  The antimicrobial activity of both the new compound synthesized and the corresponding ligand against  gram-negative and  grampositive bacteria and two yeasts strains has been evaluated. In many cases, metal coordination leads to an improvement of thiosemicarbazone pharmacological activities and synergistic effects involving both metal and the thiosemicarbazone have been reported (Da Silva <i>et al.</i> 2013b).</p>     <p><b>MATERIALS AND METHODS</b></p>     <p>   These  compounds were characterized using  spectroscopic techniques (infrared, FTIR and  mono  and  two dimensional nuclear  magnetic   resonance, NMR). Fast  atom  bombardment  (FAB) mass  spectrometry was also used  to elucidate the structure  of the Pd(II) complex. The antimicrobial activity of the synthesized  compounds was evaluated  against  grampositive and gram-negative bacteria and two yeasts strains.</p>     ]]></body>
<body><![CDATA[<p>   Melting points  of the  synthesized  compounds were determined  using  Mettler FP90  equipment with central  processing,  heating  cell FP82HT  and  microscope Olympus  CH-2 with digital calibration.  IR spectra  were obtained  on  a Shimadzu  model  8400/8900 FTIR instrument  over the  wave- number  range  of 4000  to 250  cm<sup>-1</sup> and  on a Nicolet iS10   Spectrometer (Thermo  Fisher  Scientific). The  samples  for FTIR were prepared  in KBr pellets. The <sup>1</sup>H NMR, <sup>13</sup>C NMR, and bidimensional  spectra were obtained  with a Bruker Ultra- shieldTM 400 MHz NMR, using TMS as internal standard and DMSO-d<sub>6</sub> as a deuterated solvent. The high resolution mass  spectrum with an EBE configuration was captured on an AutoSpec  M is a forward geometry;  configuration was obtained  using a UTOSPEC-Q device. It was used for positive ion FAB analysis, and thioglycerol was used as the ionization matrix. Antimicrobial assays  were performed  with the following microorganisms:  i)  gram-positive   bacteria: <i>Staphylococcus aureus </i>ATCC 29213 and <i>Bacillus thuringiensis </i>sp.; ii) gramnegative bacteria: <i>Escherichia  coli </i>ATCC 25922, <i>Klebsiella pneumoniae </i>ATCC 700603, and <i>Pseudomonas aeruginosa </i>sp.; and iii) yeasts: <i>Candida  albicans </i>ATCC 10231  and <i>Saccharomyces cerevisiae </i>ATCC 38626.</p>     <p>   <b>Synthesis of Ph<sub>2</sub>PzTSC ligand: </b>The Ph<sub>2</sub>PzTSC ligand was prepared  according  to the procedure of Leovac <i>et al. </i>(2007) using  a molar  ratio of 1:1.  The percentage yield was 80%, which is similar to the yield reported  in the literature (Leovac <i>et al. </i>2007).</p>     <p>   The Ph<sub>2</sub>PzTSC compound exhibited the following properties:  M.P.: 216&deg;C (reported 217&deg;C). Yield: 80%. IR (KBr)/cm<sup>-1</sup>: (NH<sub>2</sub> asym  and  sym), 3143  (NH hydrazine), 1590  (C=N  azomethine), 1551  (C=N  pyrazole), 1209  (NHC=S),  1096  (C=S). <sup>1</sup>H NMR (400 MHz, DMSO-d<sub>6</sub>): d 7.39 (t, <sup>1</sup>H, J 7.2 Hz, Hp '), 7.45-7.60 (m, 5H, Hm', Hm, Hp), 7.69 (d, 2H, Ho), 7.76 (brs, 1H, H-NH<sub>2</sub>), 7.91 (d, 2H, J 7.7 Hz, Hoâ€™), 8.22 (brs, <sup>1</sup>H, H-NH<sub>2</sub> ), 8.24 (s, <sup>1</sup>H, CH=N), 9.18 (s, <sup>1</sup>H, H-5 pz), 11.33 ppm (s, 1H, NH-C=S). <sup>13</sup>C NMR (400 MHz, DMSO-d<sub>6</sub>): &delta; 117.7 (C-4 pz), 118.9 (Co'), 127.4 (Cp'), 128.1 (C-5pz), 128.6 (Co), 129.0 (Cp), 129.2 (Cm), 130.1 (Cm'), 132.5 (Ci), 135.4 (CH=N), 139.5 (Ciâ€™), 151.8 (C-3pz), 178.0 (C=S).</p>     <p><b>Synthesis      of       &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;       Complex: </b>The &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex  (<a href="#f1">Figure 1</a>), was synthesized  using a 1:1 metal-ligand  molar ratio. Palladium(II) chloride (PdCl<sub>2</sub>, 27.6 mg, 0.15 mmol) was dissolved by heating  in 10 mL of methanol  and  was subsequently added  to a hot solution  of Ph<sub>2</sub>PzTSC (50 mg, 0.15 mmol) in 10mL of acetone. The mix ture was kept under continued reflux for 24 h. An orange solid was obtained,  and it was washed several times with methanol to remove the excess metal. The solid was subsequently dried with anhydrous  calcium chloride, and the percent  yield was 49%. The complex is stable at room  temperature (19 &plusmn; 1 &deg;C) and  is soluble  in DMSO. The  &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex decomposed at 290 &deg;C. Yield: 49%. IR (KBr)/cm<sup>-1</sup>: 3250-3423  (NH<sub>2</sub> asym and  sym), 1615  (C=N  azomethine),  1594 (C=N  pyrazole), 1051  (NN), 756 (CS), 550 (Pd-N). <sup>1</sup>H NMR (400  MHz, DMSO-d<sub>6</sub>): &delta; 7.41  (t, 4H Hp' and  H-NH<sub>2</sub>), 7.48-7.58  (m, 12H,  H-NH<sub>2</sub>, Hm', Hm, Hp), 7.65  (d, 4H, <i>J </i>7.7  Hz, Ho), 7.97  (d, 4H, <i>J </i>7.7  Hz, Ho'), 8.36  (s, 1H, CH=N),  9.46 (s, <sup>1</sup>H, H-5 pz). <sup>13</sup>C NMR (400 MHz, DMSO-d<sub>6</sub>): &delta; 112.8 (C-4 pz), 119.1  (Co'), 127.3  (Cp'), 128.6  (Cm), 128.8  (Cp, Co), 129.5  (Cm'), 131.1  (Ci), 133.0  (C-5 pz), 138.7  (Ci'), 144.2  (CH=N), 154.1  (C-3 pz), 172.2  (C-S).</p>       <p><a name="f1"></a>    <p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19f1.jpg"></p>      <p><b>Antimicrobial   activity   assays: </b>The   antibacterial   activity assays  were performed  using  the  disk diffusion method  in a  Petri dish.  The culture  medium  used  was TSA (Trypticase  Soy Agar) for bacteria  and PDA (Potato Dextrose Agar, Scharlau) for yeasts.  The minimum  inhibitory concentration (MIC) method  was used to estimate the lowest inhibitory concentration  (in &micro;g/mL or ppm) based  on the methodology of Tamayo <i>et al</i>. (2014).</p>     <p>   Twenty microliters of each test compound (Ph<sub>2</sub>PzTSC, PdCl<sub>2</sub> and   &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;)  dissolved   in  DMSO  in  a  concentration  range  between  50  and  500  ppm  (282  - 2820  &micro;M) for PdCl<sub>2</sub>, 155  - 1556  &micro;M  for Ph<sub>2</sub>PzTSC,  66  - 669&micro;M  for &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;,  were  dissolved  in  DMSO  and  placed  in  7mm-diameter wells, were the microorganisms under evaluation were grown (~10<sup>8</sup> UFC/mL) in their respective  culture media.  The  microbial  culture  was  incubated at  35&deg;C  for 24 h for the bacterial strains and at 20&deg;C  for 72 h for yeast strains.  DMSO was used  as  a control  solvent. Cephalothin  (40 mg/mL) was utilized as a positive control for all bacterial strains,  except for <i>P. aeruginosa</i>, where ciprofloxacin (0.3%) was used. Clotrimazole (1%) was used  for the cultivation of yeasts.  The susceptibility of microorganisms to each  of the tested  compounds was determined through  observation  of the formation of an inhibition zone around each well on agar, which was measured in millimeters.</p>         <p><b>RESULTS AND DISCUSSION</b></p>     <p>The IR spectrum of the Ph<sub>2</sub>PzTSC ligand showed  the characteristic  bands  of the compound reported  in the literature (Leovac <i>et al</i>. 2007).  These  observations confirmed  the formation of the thiosemicarbazone compounds (<a href="#f1">Figure 1</a>).</p>     ]]></body>
<body><![CDATA[<p>   The <sup>1</sup>H NMR spectrum of the Ph<sub>2</sub>PzTSC ligand in DMSO-d<sub>6</sub> at 200 MHz has been  reported  by Leovac <i>et al</i>. (2007). The spectrum of the compound synthesized  here  was obtained  using  a 400  MHz instrument  with DMSO-d<sub>6</sub> and  produced the following signals: triplet at 7.39ppm integrated  to 1 proton (Hp) with <i>J </i>7.2 Hz; multiplet at 7.45-7.60 ppm integrated  to 5 protons  (Hm, Hm, Hp); doublet  at 7.69ppm with <i>J </i>7.6 Hz integrated  to 2 protons  (Ho); broad  singlet at 7.76  ppm corresponding to 1 of the  2 non-equivalent  protons  of the NH<sub>2</sub> group;  double  at 7.91ppm with <i>J </i>7.7 Hz, integrated  to 2 protons  (Ho); broad  singlet at 8.22ppm corresponding to the other not-equivalent  proton  of the NH<sub>2</sub> group;  singlet at  8.24ppm integrated  to the proton  of the azomethine  group (CH = N); singlet at 9.18ppm integrated  to 1 proton  corresponding to H-5 Pz, and a downfield singlet at 11.33ppm integrated  to the proton  of the NH-C=S  group  (<a href="#f2">Figure 2a</a>). The <sup>13</sup>C NMR spectrum showed  the  13  carbon  signals  expected  for the reported  structure  (<a href="#f2">Figure 2b</a>), with chemical shifts similar to those described in the literature (Leovac <i>et al</i>.  2007).  Dimensional  experiments  (HSQC  and  HMBC) confirmed the proposed structure  (<a href="#f3">Figure 3</a>).</p>         <p><a name="f2"></a>    <p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19f2.jpg"></p>           <p><a name="f3"></a>    <p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19f3.jpg"></p>     <p><b>&#91;Pd(Ph</b>2<b>PzTSC)</b>2<b>&#93;    complex: </b>The   IR   spectrum   of   the &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex  did not show the stretching  band of  the  n(NH) group  at  3150  cm<sup>-1</sup> attributed  to  hydrazine, which  suggests the  possible  deprotonation of  this  group (Leovac <i>et al</i>. 2007). Additionally, the presence of a new band of lower intensity was observed  at 1051cm<sup>-1</sup>, which was attributed  to the stretching  band  of a n(NN) group;  the presence  of this band  confirmed  the deprotonation of the n(NH) group  of  hydrazine. The IR spectrum of the  Pd(II) complex showed  a lower intensity band  at 550cm<sup>-1</sup> corresponding to n(Pd-N) (Gambino <i>et al</i>. 2007). Furthermore, no bands  were observed  in the  region  between  305  and  335cm<sup>-1</sup>, which is normally  associated with n(Pd-Cl) stretching;  the  lack of these bands suggests that the ligand was not in the coordination sphere. Additionally, the bands of the azomethine  (C=N) and thiocarbonyl  (C-S) groups  were shifted, which suggests that the coordination of the ligand to the metal ion occurred  through  the nitrogen and the sulfur atoms,  respectively.</p>     <p> When comparing the  chemical  shifts in the <sup>1</sup>H NMR spectrum   of  the   free  ligand   (Ph<sub>2</sub>PzTSC)  with  the   complex (&#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;) in &#91;DMSO-d<sub>6</sub>&#93; (<a href="#f4">Figure 4</a>), no chemical shift for the proton  of the NH-C=S  group was observed.  This result suggested that  the ligand was thiolated  and  eliminates the  possibility of a  structure  in which the  ligand  is in the tautomeric  thione.  The upfield chemical  shifts of the amino group  protons   overlapped  the  multiplet  in the  region  between 7.48  and 7.58ppm and the triplet at 7.41ppm, which suggests that  the  electron  density on  the  thioamide  group (-CSNH<sub>2</sub>) changed due  to  the  thione-thiol  modification  of the thiocarbonyl group. In addition, a 0.1ppm (&Delta;&delta;) downshift shift of the  proton  signal of the  azomethine  group  relative  to the position of the signal of the free ligand was observed, which suggests a lower electron  density on the azomethine group  and  indicates  that  the  metal  is coordinated through  the available electron pair of the nitrogen atom of that group.</p>       <p><a name="f4"></a>    <p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19f4.jpg"></p>     <p>   Assignments  of the  signals  in the <sup>13</sup>C NMR spectrum are based  on the chemical  shifts and intensity patterns  and coordination  induced  shift (CIS) of the  carbon  signals  in the complex,  in comparison to those  of the free ligand, &Delta;&delta; = &delta; (complex) - &delta; (free ligand).</p>     ]]></body>
<body><![CDATA[<p>   The <sup>13</sup>C NMR spectrum of the &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex (<a href="#f4">Figure 4</a>) showed  a signal at 172.6ppm. A comparison of this signal with the chemical  shift of the free ligand (178.0ppm) revealed an upfield shift of 5.4ppm (&Delta;&delta;). This spectroscopic evidence indicates  that the Pd(II) is coordinated to the sulfur atom of the thiocarbonyl group in its thiol form (Leovac <i>et al</i>.  2007; Casas <i>et al</i>. 1998; Rodr&iacute;guez-Arg&uuml;elles <i>et al</i>. 1995).</p>     <p>   Moreover, a downfield shift of the carbon  of the azomethine  group at 144.2ppm and &Delta;&delta;= 8.8ppm compared with the signal of carbon  in the free ligand occurred.  This spectroscopic evidence  indicates  a lower electron  density  on  the  azomethine group and suggests that the metal is coordinated to the electron pair of the nitrogen in the azomethine group (Leovac <i>et al</i>. 2007).</p>     <p>   The positive ion FAB mass  spectrum of the &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex  (<a href="#f5">Figure 5</a>), showed a <i>m/z </i>peak at 750.8350 related to  the  fragment  &#91;M + 3H&#93;<sup>+</sup>,  a new peak  at <i>m/z </i>772.8362 related to the fragment  &#91;M + Na + 3H&#93;, and another  peak at <i>m/z </i>789.4041 related to the fragment  &#91;M + K + 3H&#93;. These species  originated  from  fragmentation, involve binding  or loss of some  hydrogen atoms  in these fragments.  This complex, &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93;,  was prepared  in a  1:1  metal-ligand  molar ratio, however the complex  obtained  presented a 2:1 metal-ligand  molar ratio. This is indicated  by the FAB mass  spectrum, as  the  peak  of major  abundance was observed at an <i>m/z </i>750.8350, confirming the molecular  mass  of the compound. Taking into account this mass-charge ratio and that  obtained  by <sup>1</sup>H and <sup>13</sup>C NMR spectra  the  purity, these results confirm that the &#91;Pd (Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex  was successfully formed.</p>         <p><a name="f5"></a>    <p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19f5.jpg"></p>     <p>   <b>Antimicrobial activity assays: </b>The compounds Ph<sub>2</sub>PzTSC and &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; did not demonstrate antifungal activity in the range of concentrations used. Furthermore, the metal precursor (PdCl<sub>2</sub>) did not exhibit neither antimicrobial nor antifungal activity in the concentration range used (<a href="#t1">Table 1</a>).</p>     <p>   The  Ph<sub>2</sub>PzTSC  ligand  exhibited  antibacterial  activity inhibition only for <i>Staphylococcus aureus</i>,  with a minimum  inhibitory concentration of 1400 &micro;M and with an inhibition halo of 10mm  (<a href="#t1">Table 1</a>). The  complex  &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; showed activity for the  gram-positive  bacteria <i>S.  aureus </i>(<a href="#t1">Table 1a, b</a>). A minimum  inhibitory concentration (MIC) of 268&micro;M was observed for <i>S. aureus </i>with an inhibition halo of 14mm. The results  suggest  that the antimicrobial  activity occurs  due to synergy between the metal and the ligand. This finding indicated  that  the  metal  ion improved  the  antibacterial  activity compared to the inhibition of the free ligand at a concentration of 1400&micro;M. This behavior can be explained by the Overtone's concept of cell permeability (Prabhakaran <i>et al</i>. 2008) and Tweedy's chelation  theory (Tweedy, 1964). According to the Overtone's concept, the lipid membrane that surrounds the  cell facilitates the  passage of only lipid-soluble materials; therefore,  the  lipid is an important  factor  that  controls the antimicrobial activity. Tweedy's chelation  theory, explains that the ion polarity of Pd(II) is reduced  by overlapping of the ligand orbitals and the exchange  of the partial positive charge  of the metal  ion to the donor  atoms  of the ligand; thereby, the delocalization of &pi;-electrons increases  on the chelate ring and improves the lipophilicity of the complexes.</p>     <p>   The increment  in lipophilicity that increases  the penetration of the  complex  into  the  lipid's membrane and  blocks  the metal  binding  sites  in the  microorganisms' enzymes  might disturb  the  process  of cell respiration  and  the  synthesis  of proteins, thereby inhibiting the growth of the organism (Prabhakaran <i>et al</i>. 2008).</p>     <p>   The results of the antimicrobial activity (<a href="#t1">Table 1a, b</a>) indicated that the synthesized compounds exhibit a smaller halo of inhibition with respect  to the  positive controls  used,  which suggests that the compounds are less bioavailable. However, considering   the  concentrations used  for the  antimicrobial  controls in the biological testing, it can be seen that the synthesized Pd(II) complex has a high growth inhibitory effect on the gram-positive bacteria <i>S. aureus</i>. For example, for <i>S. aureus </i>a concentration of 268&micro;M of the &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex originated a 14mm  zone of inhibition, while for the same  bacteria the positive antimicrobial control used (cephalothin) showed a 34mm  zone of inhibition but a 373  times  higher concentration (100'000&micro;M). For free ligand, at the concentration  used  (1400&micro;M),  and  this inhibition was also  higher (&gt;70 times) that the positive antimicrobial control used.</p>       <p><a name="t1"></a>    ]]></body>
<body><![CDATA[<p align="center"><img src="img/revistas/rudca/v17n2/v17n2a19t1.jpg"></p>     <p>   These  antimicrobial  tests  show an interesting  of newly synthesized &#91;Pd(Ph<sub>2</sub>PzTSC)<sub>2</sub>&#93; complex  to be used  as an antimicrobial compound specifically to gram-positive  bacteria  (<i>S. aureus</i>). This complex should  also used  in biological assays to observe  its effect against  tumor  cells, since similar Pd(II) compounds  have  shown  promising   effects  against   these type of cells (Husain <i>et al</i>, 2007; Beraldo &amp; Gambino,  2004; Kavala-Demertzi <i>et al</i>. 2013;  Kovala-Demertzi <i>et al</i>. 1999; Quiroga <i>et al</i>. 1998; Tamayo <i>et al</i>. 2014).</p>     <p>   A novel Pd(II) complex  with the 1,3-diphenylpyrazole-4-carboxaldehyde  thiosemicarbazone (Ph<sub>2</sub>PzTSC) ligand was synthesized and characterized. According to the results obtained  using different techniques, the complex exhibits ambidentate coordination through  nitrogen  and sulfur atoms  in the thiol form.  The  results  of various spectroscopic techniques and mass spectrometry (FAB) confirm the proposed structure  for the compound.</p>     <p>   The  synthesized  compounds showed  antimicrobial  activity only against  gram-positive  bacteria <i>S. aureus </i>and this activity was higher than that of the antibiotic controls. The formation of the metal complex induces  significant changes in the antimicrobial activity of the free ligand.</p>     <p><b>Acknowledgments:</b>  The  authors   wish to  acknowledge   financial  support  from the  Direcci&oacute;n  de  Investigaci&oacute;n,  Sede Bogot&aacute;   (DIB, Bogot&aacute;   Research   Directorate),   Project  No.201010016735, and the Vicerrector&iacute;a de Investigaci&oacute;n for financial support for the translation of this manuscript through  the ''Convocatoria Nacional Fortalecimiento de la Visibilidad de Producci&oacute;n  Acad&eacute;mica  mediante  el apoyo  para  traducci&oacute;n de estilo de art&iacute;culos de investigaci&oacute;n 2011-2012'', both from the National University of Colombia. We also thank Professor Milton Crosby, Faculty of Science in the Department of Pharmacy  at the National University of Colombia, by supplying the strains used in the bioassays. <u>Conflict of interest</u>: This paper  was prepared  with the participation  of all the authors,  who declare that no conflict of interest that threatens the validity of the results presented.</p>     <p><b>REFERENCES</b></p>     <!-- ref --><p>1. ALI, I.; WANI, W.A.; KHAN, A.; HAQUE, A.; AHMAD, A.; SALEEM, K.; MANZOOR, N. 2012.  Synthesis  and synergistic antifungal activities of a pyrazoline based  ligand and its copper(II) and nickel(II) complexes with conventional antifungals.  Microb. Pathog.  53:66-73.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=000059&pid=S0123-4226201400020001900001&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     <!-- ref --><p>   2.  ANOOP,  S.;  RANAB, A.C.  2010.   Synthesis   and   anticonvulsant    activity  of   1-&#91;(4,   5-dihydro-5-phenyl-3-(phenylamino)pyrazol-1-yl)&#93;ethanone    derivatives. J. Chem. Pharm.  Res. 2(1): 505-511.    &nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;&nbsp;[&#160;<a href="javascript:void(0);" onclick="javascript: window.open('/scielo.php?script=sci_nlinks&ref=000061&pid=S0123-4226201400020001900002&lng=','','width=640,height=500,resizable=yes,scrollbars=1,menubar=yes,');">Links</a>&#160;]<!-- end-ref --></p>     ]]></body>
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