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<article locale="en" public-id="1860-5397-6-11" publisher="Beilstein-Institut" journal="Beilstein Journal of Organic Chemistry" journal-abbreviated="Beilstein J. Org. Chem." journal-code="bjoc" issn="1860-5397" coden="BJOCBH" year="2010" volume="6" article="11" type="full-research-paper">
<author first-name="Mohit" middle-names="L" last-name="Deb" affiliations="a1"/>
<author first-name="Pulak" middle-names="J" last-name="Bhuyan" email="pulak_jyoti@yahoo.com" affiliations="a1" corresponding-author="yes"/>
<affiliation id="a1">Medicinal Chemistry Division, North East Institute of Science &amp; Technology, Jorhat 785006, Assam, India, Fax: 0376 2370011</affiliation>
<editor first-name="Jeffrey" last-name="Aub&#233;" role="associate-editor"/>
<submission-date day="12" month="11" year="2009"/>
<acceptance-date day="28" month="1" year="2010"/>
<publication-date day="4" month="2" year="2010"/>
<title>
<chunk>Synthesis of some novel annulated pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines via stereoselective intramolecular hetero Diels&#8211;Alder reactions of 1-oxa-1,3-butadienes</chunk>
</title>
<keyword>
<chunk>&#946;-halo aldehydes</chunk>
</keyword>
<keyword>
<chunk>hetero Diels&#8211;Alder reaction</chunk>
</keyword>
<keyword>
<chunk>1-oxa-1,3-butadiene</chunk>
</keyword>
<keyword>
<chunk>pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines</chunk>
</keyword>
<keyword>
<chunk>uracil</chunk>
</keyword>
<abstract-section>
<paragraph>
<chunk>Some novel annulated pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines </chunk>
<chunk bold="yes">6</chunk>
<chunk> and </chunk>
<chunk bold="yes">7</chunk>
<chunk> were synthesized stereoselectively by intramolecular hetero Diels&#8211;Alder reactions involving 1-oxa-1,3-butadienes.</chunk>
</paragraph>
</abstract-section>
<abstract-graphic public-id="1860-5397-6-11-graphical-abstract"/>
<external-link type="doi" public-id="10.3762/bjoc.6.11"/>
<section>
<title>
<chunk>Introduction</chunk>
</title>
<paragraph>
<chunk>The importance of uracil and its annulated derivatives is well recognized by synthetic as well as biological chemists </chunk>
<link target="b1"/>
<link target="b2"/>
<link target="b3"/>
<link target="b4"/>
<link target="b5"/>
<link target="b6"/>
<link target="b7"/>
<link target="b8"/>
<chunk>. Pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines represent a broad class of annelated uracils which have received considerable attention over the past years due to their wide range of biological activities such as antibacterial </chunk>
<link target="b9"/>
<link target="b10"/>
<chunk>, antitumor </chunk>
<link target="b11"/>
<link target="b12"/>
<chunk>, cardiotonic </chunk>
<link target="b13"/>
<link target="b14"/>
<chunk>, hepatoprotective </chunk>
<link target="b13"/>
<chunk>, antihypertensive </chunk>
<link target="b13"/>
<chunk>, bronchiodilator </chunk>
<link target="b15"/>
<chunk> and vasodilator </chunk>
<link target="b16"/>
<chunk> properties. Additionally, some compounds of this type exhibit antialergic </chunk>
<link target="b17"/>
<chunk>, antimalarial </chunk>
<link target="b18"/>
<chunk>, analgesic </chunk>
<link target="b19"/>
<link target="b20"/>
<chunk> and antifungal </chunk>
<link target="b21"/>
<chunk> activity. Consequently, much effort has been directed towards the synthetic manipulation of uracil for the preparation of these complex molecules. However, there still remains many challenges in the synthesis of these naturally occurring complex molecules </chunk>
<link target="b22"/>
<link target="b23"/>
<link target="b24"/>
<link target="b25"/>
<link target="b26"/>
<link target="b27"/>
<link target="b28"/>
<link target="b29"/>
<link target="b30"/>
<link target="b31"/>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk>Hetero Diels&#8211;Alder reactions </chunk>
<link target="b32"/>
<link target="b33"/>
<link target="b34"/>
<link target="b35"/>
<chunk> are becoming a mainstay of heterocyclic and natural product synthesis. This powerful reaction method does not only allow the efficient synthesis of complex compounds starting from simple substrates but also permits the preparation of highly diversified molecules. One such reaction type, the oxabutadiene Diels&#8211;Alder reaction is a very useful method for the synthesis of dihydropyrans </chunk>
<link target="b36"/>
<link target="b37"/>
<link target="b38"/>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk>Heterocyclic &#946;-halo aldehydes are very interesting compounds which can be transformed in a number of ways to fused heterocycles </chunk>
<link target="b39"/>
<link target="b40"/>
<chunk> by using the reactivity of halide for nucleophilic substitution in combination with a multitude of transformation possibilities from the aldehyde function.</chunk>
</paragraph>
</section>
<section>
<title>
<chunk>Results and Discussion</chunk>
</title>
<paragraph>
<chunk>As part of our continued interest in uracils </chunk>
<link target="b41"/>
<link target="b42"/>
<link target="b43"/>
<link target="b44"/>
<link target="b45"/>
<chunk> and the development of highly expedient methods for the synthesis of diverse heterocyclic compounds of biological importance </chunk>
<link target="b46"/>
<link target="b47"/>
<link target="b48"/>
<link target="b49"/>
<link target="b50"/>
<chunk>, we now report the stereoselective synthesis of some new complex annulated pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines by intramolecular hetero Diels&#8211;Alder reactions involving 1-oxa-1,3-butadienes (</chunk>
<link target="s1"/>
<chunk>).</chunk>
</paragraph>
<float target="s1"/>
<paragraph>
<chunk>The key intermediate, the 2-chloro-3-formyl uracil derivative </chunk>
<chunk bold="yes">1</chunk>
<chunk> (&#946;-halo aldehyde), was prepared by the reaction of </chunk>
<chunk italic="yes">N,N</chunk>
<chunk>-dimethyl barbituric acid with Vielsmeier reagent (DMF + POCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>) using excess phosphorous oxychloride as solvent following our published method </chunk>
<link target="b51"/>
<chunk>. The nucleophilic substitution of the chloro group of </chunk>
<chunk bold="yes">1</chunk>
<chunk> by allyl amines </chunk>
<chunk bold="yes">2</chunk>
<chunk> afforded the 6-</chunk>
<chunk italic="yes">N</chunk>
<chunk>-allyl-1,3-dimethyl-5-formyl uracils </chunk>
<chunk bold="yes">3</chunk>
<chunk>. Compounds </chunk>
<chunk bold="yes">3</chunk>
<chunk> were then reacted with cyclic &#946;-diamides/&#946;-diketones </chunk>
<chunk bold="yes">4</chunk>
<chunk> in presence of a base catalyst (usually piperidine) to produce the 1-oxa-1,3-butadienes </chunk>
<chunk bold="yes">5</chunk>
<chunk> which underwent intramolecular Diels&#8211;Alder reaction under reflux conditions in toluene (12 to 15 h) to give the cycloadducts. In most of cases the formation of two compounds was observed. The compounds were separated by column chromatography and their structures were determined from their spectroscopic data as the </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-(</chunk>
<chunk bold="yes">6</chunk>
<chunk>) and </chunk>
<chunk italic="yes">trans</chunk>
<chunk>-(</chunk>
<chunk bold="yes">7</chunk>
<chunk>) isomers of the cycloadduct. The generality of the reaction was established by synthesizing a series of tetracyclic annulated uracil derivatives </chunk>
<chunk bold="yes">6a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">h</chunk>
<chunk> and </chunk>
<chunk bold="yes">7a</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">e</chunk>
<chunk>. Our results are recorded in </chunk>
<link target="t1"/>
<chunk>.</chunk>
</paragraph>
<float target="t1"/>
<paragraph>
<chunk>In all of the reactions the </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-annelated products were formed either predominantly or exclusively. As the oxabutadiene is part of a cyclic compound and two carbon atoms to which the dienophile is attached are part of a ring system, the </chunk>
<chunk italic="yes">endo</chunk>
<chunk>-transition state is energetically more favorable than the </chunk>
<chunk italic="yes">exo</chunk>
<chunk>-transition state, and thus the </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-cycloadducts were formed predominantly (entries 1&#8211;5). In case of entries 6&#8211;8, the bulky ethyl group further favors the </chunk>
<chunk italic="yes">endo</chunk>
<chunk>-transition and in these cases </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-annelated products were formed exclusively. In some of our previous efforts, we also obtained either </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-isomers or the mixtures of both the </chunk>
<chunk italic="yes">cis</chunk>
<chunk>- and </chunk>
<chunk italic="yes">trans</chunk>
<chunk>-isomers </chunk>
<link target="b52"/>
<link target="b53"/>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk>When </chunk>
<chunk italic="yes">N</chunk>
<chunk>-methylallylamine (</chunk>
<chunk bold="yes">2b</chunk>
<chunk>) or </chunk>
<chunk italic="yes">N</chunk>
<chunk>-benzylallylamine (</chunk>
<chunk bold="yes">2c</chunk>
<chunk>) was used for the reaction as shown in </chunk>
<link target="s1"/>
<chunk>, the Knoevenagel condensation did not occur even after refluxing in the presence of piperidine. The reason might be the delocalization of the lone pair on the allyl nitrogen through the formyl group which makes it less electrophilic towards the active methylene compounds. However, the use of a stronger base, e.g. </chunk>
<chunk italic="yes">N,N</chunk>
<chunk>-diisopropylethylamine (DIPEA) under refluxing conditions in ethanol for 3 h gave quite satisfactory results in all cases. In the case of </chunk>
<chunk italic="yes">N</chunk>
<chunk>-phenylallylamine substituted uracils the condensation reactions proceeded normally in the presence of either of the bases.</chunk>
</paragraph>
</section>
<section>
<title>
<chunk>Conclusion</chunk>
</title>
<paragraph>
<chunk>In summary, we report the stereoselective preparation of some new complex tetracyclic annulated uracil derivatives by intramolecular hetero Diels&#8211;Alder reactions involving 1-oxa-1,3-butadiene. This reaction, which can also be investigated for the synthesis of many other heyterocyclic compounds of biological importance, is a valuable addition to the chemistry of uracils.</chunk>
</paragraph>
</section>
<section>
<title>
<chunk>Experimental</chunk>
</title>
<paragraph>
<chunk>All reagents and solvents were of reagent grade and were used without drying. The IR spectra were recorded on a Perkin Elmer system-2000 FTIR spectrometer. </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR and </chunk>
<chunk superscript="yes">13</chunk>
<chunk>C NMR spectra were recorded on Bruker Avance-DPX 300 MHz and 75 MHz FT NMR in CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk> using TMS as the internal standard. LR-MS were recorded on a Bruker Daltonics ESQUIRE 3000 LC ESI ion trap mass spectrometer and HRMS were obtained with a MALDI-TOF instrument. Elemental analyses were performed on a Perkin Elmer-2400 spectrometer. Analytical TLC and column chromatography were performed using E. Merck aluminum-backed silica gel plates coated with silica gel G and E. Merck silica gel (100&#8211;200&#160;Mesh); melting points (uncorrected) were determined on a B&#252;chi B-540 apparatus.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes">Preparation of 1,3-dimethyl-6-chloro-5-formyluracil (1):</chunk>
<chunk> DMF (12 ml) in a 100&#160;ml round bottomed flask was very slowly treated with phosphorous oxychloride (46 ml) with cooling after the addition of every 1 ml portion of POCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>. 1,3-Dimethylbarbituric acid (4 g) was added and the mixture heated under reflux for 1 h. Excess POCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk> was removed under reduced pressure. The viscous mixture was poured into ice-cold water and then extracted with dichloromethane (two to three times). After drying with sodium sulfate, the dichloromethane was removed under reduced pressure. The brown compound obtained contained some impurities and was used without further purification.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes">Reaction of 1,3-dimethyl-6-chloro-5-formyluracil (1) with </chunk>
<chunk bold="yes" italic="yes">N</chunk>
<chunk bold="yes">-allylanilines/</chunk>
<chunk bold="yes" italic="yes">N</chunk>
<chunk bold="yes">-allylamines (2) and preparation of 6-amino-5-formyluracils 3:</chunk>
<chunk> Compound </chunk>
<chunk bold="yes">1</chunk>
<chunk> (2 mmol, 404 mg) dissolved in dichloromethane, was treated with an equivalent amount of </chunk>
<chunk italic="yes">N</chunk>
<chunk>-allylaniline (</chunk>
<chunk bold="yes">2a</chunk>
<chunk>) (2&#160;mmol, 266&#160;mg) and triethylamine (2 mmol), and the mixture stirred at room temperature for 2 h. The solvent was evaporated and the residue was purified by column chromatography (silica gel, 100&#8211;200&#160;Mesh) using dichloromethane to give </chunk>
<chunk bold="yes">3a</chunk>
<chunk> as a yellow solid 568 mg (95%). Similarly, </chunk>
<chunk bold="yes">3b</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk> were prepared from the reaction of </chunk>
<chunk bold="yes">1</chunk>
<chunk> with </chunk>
<chunk bold="yes">2b</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">c</chunk>
<chunk>.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes">Knoevenagel condensation of 3 with cyclic &#946;-diamide/&#946;-diketones 4 and synthesis of 5:</chunk>
<chunk> Equimolar amounts of </chunk>
<chunk bold="yes">3a</chunk>
<chunk> (2 mmol, 598 mg) and </chunk>
<chunk bold="yes">4a</chunk>
<chunk> (2 mmol, 312 mg) were mixed thoroughly in a round-bottomed flask containing water (8 ml). Two drops of piperidine (in case of Meldrum&#8217;s acid (</chunk>
<chunk bold="yes">4b</chunk>
<chunk>), piperidine acetate was used) were added and the mixture stirred for 4&#160;h. The solid was removed by filtration and recrystallized from ethanol to afford a white solid (769 mg, 88%). The compound was assigned structure </chunk>
<chunk bold="yes">5a</chunk>
<chunk> from a consideration of its spectroscopic data. In case of </chunk>
<chunk italic="yes">N</chunk>
<chunk>-methylallylamine </chunk>
<chunk bold="yes">2b</chunk>
<chunk> and </chunk>
<chunk italic="yes">N</chunk>
<chunk>-benzylallylamine </chunk>
<chunk bold="yes">2c</chunk>
<chunk>, </chunk>
<chunk italic="yes">N,N</chunk>
<chunk>-diisopropylethylamine (DIPEA) was used as catalyst for the Knoevenagel condensation and reactions were performed under reflux in ethanol for 3&#160;h. The method gave satisfactory yields of up to 90%. Compounds </chunk>
<chunk bold="yes">5b</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">h</chunk>
<chunk> were synthesized similarly.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes">Intramolecular Diels&#8211;Alder reaction of compound 5:</chunk>
<chunk> Compound </chunk>
<chunk bold="yes">5a</chunk>
<chunk> (1&#160;mmol, 437&#160;mg) was dissolved in toluene (6&#160;ml) and heated under reflux for 15&#160;h. After completion of the reaction (as monitored by TLC), the solvent was removed under reduced pressure. Two products (indicated by TLC) were separated by column chromatography using 65% ethyl acetate in petroleum ether. The structures were assigned from a combination of their spectral data and elemental analysis. From the value of coupling constant, it was established that the products </chunk>
<chunk bold="yes">6a/7a</chunk>
<chunk> are </chunk>
<chunk italic="yes">cis</chunk>
<chunk>-/</chunk>
<chunk italic="yes">trans</chunk>
<chunk>-isomers, respectively. Total yield = 64% (280&#160;mg). The other hetero Diels&#8211;Alder products </chunk>
<chunk bold="yes">6b</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">h</chunk>
<chunk> and </chunk>
<chunk bold="yes">7b</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">e</chunk>
<chunk> were synthesized similarly.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes" italic="yes">cis</chunk>
<chunk bold="yes">-isomer 6a:</chunk>
<chunk> mp 312&#8211;314 &#176;C. IR (KBr); 3033, 2954, 1698, 1687, 1165, 744 cm</chunk>
<chunk superscript="yes">&#8722;1</chunk>
<chunk>. </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR (300 MHz, CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>); &#948;, 2.96 (s, 3H), 2.98 (s, 3H), 3.21 (s, 3H), 3.47 (s, 3H), 3.59&#8211;3.68 (m, 3H), 4.23 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 5.28 Hz, 2H), 4.39 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 6.39 Hz, 1H), 7.0 (t, 2H, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.41 Hz), 7.17&#8211;7.27 (m, 3H). </chunk>
<chunk superscript="yes">13</chunk>
<chunk>C&#160;NMR (75 MHz, CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>); &#948;, 163.21, 156.35, 153.37, 149.54, 136.91, 129.95, 123.86, 118.69, 104.32, 89.61, 51.52, 37.05, 32.05, 29.0, 28.78, 28.31, 26.18. </chunk>
<chunk italic="yes">m/z</chunk>
<chunk> 438.2 (M + H)</chunk>
<chunk superscript="yes">+</chunk>
<chunk>. Anal. Calcd for C</chunk>
<chunk subscript="yes">22</chunk>
<chunk>H</chunk>
<chunk subscript="yes">23</chunk>
<chunk>N</chunk>
<chunk subscript="yes">5</chunk>
<chunk>O</chunk>
<chunk subscript="yes">5</chunk>
<chunk>; C, 60.41; H, 5.26; N, 16.01; found C, 60.68; H, 5.33; N, 15.87.</chunk>
</paragraph>
<paragraph>
<chunk bold="yes" italic="yes">trans</chunk>
<chunk bold="yes">-isomer 7a:</chunk>
<chunk> mp 317&#8211;318 &#176;C. IR (KBr); 3033, 2954, 1698, 1687, 1165, 744 cm</chunk>
<chunk superscript="yes">&#8722;1</chunk>
<chunk>. </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H&#160;NMR (300 MHz, CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>); &#948;, 2.96 (s, 3H), 2.98 (s, 3H), 3.21 (s, 3H), 3.45 (s, 3H), 3.53&#8211;3.67 (m, 3H), 4.24 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 5.8 Hz, 2H), 4.36 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 11.7 Hz, 1H), 7.08 (t, 2H, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.36 Hz), 7.17&#8211;7.27 (m, 3H). </chunk>
<chunk superscript="yes">13</chunk>
<chunk>C&#160;NMR (75 MHz, CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>); &#948;, 163.26, 156.35, 153.30, 149.47, 136.91, 129.63, 123.86, 118.65, 105.47, 89.61, 51.31, 37.43, 32.05, 29.11, 28.78, 28.31, 26.18. </chunk>
<chunk italic="yes">m/z</chunk>
<chunk> 438.2 (M + H)</chunk>
<chunk superscript="yes">+</chunk>
<chunk>. Anal. Calcd for C</chunk>
<chunk subscript="yes">22</chunk>
<chunk>H</chunk>
<chunk subscript="yes">23</chunk>
<chunk>N</chunk>
<chunk subscript="yes">5</chunk>
<chunk>O</chunk>
<chunk subscript="yes">5</chunk>
<chunk>; C, 60.41; H, 5.26; N, 16.01; found C, 60.65; H, 5.37; N, 15.82.</chunk>
</paragraph>
</section>
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<caption>
<paragraph>
<chunk>Stereoselective synthesis of some new complex annulated pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines by intramolecular hetero Diels&#8211;Alder reactions involving 1-oxa-1,3-butadienes.</chunk>
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<caption>
<paragraph>
<chunk>Synthesis of some novel annulated pyrido[2,3-</chunk>
<chunk italic="yes">d</chunk>
<chunk>]pyrimidines </chunk>
<chunk bold="yes">6</chunk>
<chunk>/</chunk>
<chunk bold="yes">7</chunk>
<chunk>.</chunk>
<chunk superscript="yes">a</chunk>
</paragraph>
</caption>
<table-row type="header1">
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Entry</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Allyl amines </chunk>
<chunk bold="yes">(2)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Compound </chunk>
<chunk bold="yes">(4)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Product yield</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Reaction time (h)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk italic="yes">cis</chunk>
<chunk> </chunk>
<chunk bold="yes">:</chunk>
<chunk> </chunk>
<chunk italic="yes">trans</chunk>
</paragraph>
<paragraph>
<chunk bold="yes">6 : 7</chunk>
</paragraph>
</table-cell>
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<table-row>
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<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>1</chunk>
</paragraph>
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<paragraph>
<inline-float target="i1"/>
</paragraph>
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<table-cell horizontal-alignment="center">
<paragraph>
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</paragraph>
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<paragraph>
<chunk bold="yes">6a</chunk>
<chunk> + </chunk>
<chunk bold="yes">7a</chunk>
<chunk> (64%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>15</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>78 : 22</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>2</chunk>
</paragraph>
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<paragraph>
<inline-float target="i3"/>
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<table-cell horizontal-alignment="center">
<paragraph>
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</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6b</chunk>
<chunk> + </chunk>
<chunk bold="yes">7b</chunk>
<chunk> (55%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>12</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>84 : 16</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>3</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i5"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i6"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6c</chunk>
<chunk> + </chunk>
<chunk bold="yes">7c</chunk>
<chunk> (62%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>16</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>78 : 22</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>4</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i7"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i8"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6d</chunk>
<chunk> + </chunk>
<chunk bold="yes">7d</chunk>
<chunk> (50%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>12</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>88 : 12</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>5</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i9"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i10"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6e</chunk>
<chunk> + </chunk>
<chunk bold="yes">7e</chunk>
<chunk> (60%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>16</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>76 : 24</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>6</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i11"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i12"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6f</chunk>
<chunk> (62%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>15</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>100 : 0</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>7</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i13"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i14"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6g</chunk>
<chunk> (60%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>16</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>100 : 0</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>8</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i15"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<inline-float target="i16"/>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk bold="yes">6h</chunk>
<chunk> (57%)</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>16</chunk>
</paragraph>
</table-cell>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>100 : 0</chunk>
</paragraph>
</table-cell>
</table-row>
<table-footer>
<paragraph>
<chunk superscript="yes">a</chunk>
<chunk>All the reactions were carried out under reflux conditions.</chunk>
</paragraph>
<paragraph>
<chunk superscript="yes">b</chunk>
<chunk>Isolated yields.</chunk>
</paragraph>
</table-footer>
</table>
</tables>
<supporting-information>
<supporting-information-file id="si1" public-id="1860-5397-6-11-S1">
<caption>
<paragraph>
<chunk>Spectroscopic and elemental analyses data of the compounds </chunk>
<chunk bold="yes">6b&#8211;h</chunk>
<chunk> and </chunk>
<chunk bold="yes">7b&#8211;e</chunk>
<chunk>.</chunk>
</paragraph>
</caption>
</supporting-information-file>
</supporting-information>
<end-section>
<title>
<chunk>Acknowledgements</chunk>
</title>
<paragraph>
<chunk>We thank the DST, New Delhi, for financial support. M. L. Deb thanks the CSIR (India) for the award of Senior Research Fellowship and Director, NEIST, Jorhat for providing the facilities to perform the work.</chunk>
</paragraph>
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<copyright year="2010" holder="Deb and Bhuyan; licensee Beilstein-Institut." link="http://creativecommons.org/licenses/by/2.0">
<paragraph>
<chunk>This is an Open Access article under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.</chunk>
</paragraph>
<paragraph>
<chunk>The license is subject to the </chunk>
<chunk italic="yes">Beilstein Journal of Organic Chemistry</chunk>
<chunk> terms and conditions: (http://www.beilstein-journals.org/bjoc)</chunk>
</paragraph>
</copyright>
</article>
