<?xml version="1.0" encoding="ASCII"?><!DOCTYPE article PUBLIC "-//BEILSTEIN-INSTITUT//DTD Journal Article DTD v0.4.4 20130724//EN" "https://www.beilstein-journals.org/bjoc/content/xml/journalarticle.v044.dtd">
<article locale="en" public-id="1860-5397-5-32" publisher="Beilstein-Institut" journal="Beilstein Journal of Organic Chemistry" journal-abbreviated="Beilstein J. Org. Chem." journal-code="bjoc" issn="1860-5397" coden="BJOCBH" year="2009" volume="5" article="32" type="preliminary-communication">
<author first-name="Ellanki" middle-names="Amarender" last-name="Reddy" affiliations="a1 a2"/>
<author first-name="Aminul" last-name="Islam" affiliations="a1"/>
<author first-name="K" last-name="Mukkanti" affiliations="a2"/>
<author first-name="Venkanna" last-name="Bandameedi" affiliations="a1"/>
<author first-name="Dipal" middle-names="Ranjan" last-name="Bhowmik" affiliations="a1"/>
<author first-name="Manojit" last-name="Pal" email="manojitpal@rediffmail.com" affiliations="a3" corresponding-author="yes"/>
<affiliation id="a1" institution-required="yes">Dr. Reddy&#8217;s Laboratories Limited, Bollaram Road, Miyapur, Hyderabad 500049, Andhra Pradesh, India</affiliation>
<affiliation id="a2" institution-required="yes">Chemistry Division, Institute of Science and Technology, JNT University, Kukutpally, Hyderabad 500072, Andhra Pradesh, India</affiliation>
<affiliation id="a3" institution-required="yes">New Drug Discovery, R&amp;D Center, Matrix Laboratories Ltd., Anrich Industrial Estate, Bollaram, Jinnaram Mandal, Medak District, Andra Pradesh 502 325, India (present address: Institute of Life Science, University of Hyderabad Campus, Gachibowli, Hyderabad 500 046, Andhra Pradesh, India)</affiliation>
<editor first-name="Ilan" last-name="Marek" role="associate-editor"/>
<submission-date day="16" month="4" year="2009" hour="0" minute="0"/>
<acceptance-date day="19" month="6" year="2009" hour="0" minute="0"/>
<publication-date day="1" month="7" year="2009" hour="0" minute="0"/>
<title>
<chunk>Regioselective alkynylation followed by Suzuki coupling of 2,4-dichloroquinoline: Synthesis of 2-alkynyl-4-arylquinolines</chunk>
</title>
<keyword>
<chunk>alkyne</chunk>
</keyword>
<keyword>
<chunk>boronic acid</chunk>
</keyword>
<keyword>
<chunk>catalysis</chunk>
</keyword>
<keyword>
<chunk>2,4-dichloroquinoline</chunk>
</keyword>
<keyword>
<chunk>palladium</chunk>
</keyword>
<keyword>
<chunk>water</chunk>
</keyword>
<abstract-section>
<paragraph>
<chunk>A two step synthesis of 2-alkynyl-4-arylquinolines has been accomplished via Pd/C-mediated regioselective C-2 alkynylation of 2,4-dichloroquinoline in water followed by Suzuki coupling at C-4 of the resulting 4-chloro derivative.</chunk>
</paragraph>
</abstract-section>
<abstract-graphic public-id="1860-5397-5-32-graphical-abstract"/>
<external-link type="doi" public-id="10.3762/bjoc.5.32"/>
<section>
<title>
<chunk>Introduction</chunk>
</title>
<paragraph>
<chunk>2-Alkynyl pyridine and its benzo (i.e. quinoline) derivative possessing an aryl group at the C-4 position (</chunk>
<chunk bold="yes">A</chunk>
<chunk>, </chunk>
<link target="f1"/>
<chunk>) have attracted considerable interest due to their utility in the development of compounds of potential pharmacological interest </chunk>
<link target="b1"/>
<link target="b2"/>
<link target="b3"/>
<chunk>.</chunk>
</paragraph>
<float target="f1"/>
<paragraph>
<chunk>2-Alkenyl/alkynylquinolines, have been reported to possess anti-retroviral properties </chunk>
<link target="b4"/>
<chunk>. Only few methods are known for the synthesis of </chunk>
<chunk bold="yes">A</chunk>
<chunk>. Considering the possible C&#8211;C bond forming reactions on a pyridine/quinoline ring (</chunk>
<link target="f1"/>
<chunk>), the synthesis of </chunk>
<chunk bold="yes">A</chunk>
<chunk> can be carried out following two main strategies e.g. (a) arylation at C-4 followed by alkynylation at C-2 or (b) alkynylation at C-2 followed by arylation at C-4. Methodologies based on strategy &#8216;a&#8217; have been reported earlier. For example, Sonogashira coupling of a terminal alkyne with 2-chloro-4-aryl substituted quinoline </chunk>
<link target="b3"/>
<chunk> in the presence of (PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk>)</chunk>
<chunk subscript="yes">2</chunk>
<chunk>PdCl</chunk>
<chunk subscript="yes">2</chunk>
<chunk>-CuI or treatment of 4-aryl pyridine-</chunk>
<chunk italic="yes">N</chunk>
<chunk>-oxide with alkynyl Grignard </chunk>
<link target="b5"/>
<chunk> provided the required quinoline or pyridine derivatives, respectively. Notably, synthesis of </chunk>
<chunk bold="yes">A</chunk>
<chunk> following the strategy &#8216;b&#8217; has not been explored. In our effort towards the synthesis of quinoline derivatives of potential biological significance we have reported Pd/C-mediated regioselective C-2 alkynylation of 2,4-dichloroquinoline in water </chunk>
<link target="b6"/>
<chunk>. However, only one example of regioselective C-2 alkynylation was reported and no detailed study has been carried out previously. Herein we report the preparation of a series of 2-alkynyl-4-chloroquinoline (</chunk>
<chunk bold="yes">3</chunk>
<chunk>) followed by successful Suzuki coupling at C-4 of compound </chunk>
<chunk bold="yes">3</chunk>
<chunk> leading to the corresponding 4-arylated derivatives (</chunk>
<chunk bold="yes">5</chunk>
<chunk>) in good yields (</chunk>
<link target="s1"/>
<chunk>). To the best of our knowledge this is the first synthesis of 2-alkynyl-4-arylquinolines following such a strategy.</chunk>
</paragraph>
<float target="s1"/>
</section>
<section>
<title>
<chunk>Results and Discussion</chunk>
</title>
<paragraph>
<chunk>A number of 2-alkynyl-4-chloroquinolines (</chunk>
<chunk bold="yes">3</chunk>
<chunk>) were prepared via coupling of 2,4-dichloroquinoline (</chunk>
<chunk bold="yes">1</chunk>
<chunk>) in the presence of 10% Pd/C (10 mol%), PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk> (20 mol%) and CuI (5 mol%) as a catalyst system in water. The results are presented in </chunk>
<link target="t1"/>
<chunk>. Both aryl and alkyl substituted terminal alkynes participated well in this C&#8211;C bond forming reaction to afford the desired product in good yields. The reaction was found to be highly selective for mono-substituted product and no dialkynylated product was isolated from the reaction mixture. Moreover, the reaction displayed good regioselectivity for C-2 alkynylation though the formation of C-4 alkynylated product cannot be ruled out completely. Regioselectivity for C-2 alkynylation was confirmed by NOE (Nuclear Overhauser Effect) studies using compound </chunk>
<chunk bold="yes">3a</chunk>
<chunk>. Irradiation of protons of the benzene ring attached to the alkynyl group resulted in enhancement of the singlet at &#948; 8.03 assigned to the C-3 hydrogen of the quinoline ring. If the alkyne was at C-4, NOE enhancement at C-5 is expected in addition to C-3. It is note worthy that the use of the Sonogashira coupling or its modified form has been employed for the preparation of 2-alkynylquinolines or related derivatives earlier </chunk>
<link target="b7"/>
<link target="b8"/>
<link target="b9"/>
<link target="b10"/>
<link target="b11"/>
<link target="b12"/>
<link target="b13"/>
<link target="b14"/>
<link target="b15"/>
<link target="b16"/>
<link target="b17"/>
<chunk>.</chunk>
</paragraph>
<float target="t1"/>
<paragraph>
<chunk>Next, in order to prepare 2-alkynyl-4-arylquinolines (</chunk>
<chunk bold="yes">5</chunk>
<chunk>) we planned to exploit the reactivity of chloro group of </chunk>
<chunk bold="yes">3</chunk>
<chunk> towards Suzuki arylation reaction. Accordingly, a variety of arylboronic acids were coupled with </chunk>
<chunk bold="yes">3</chunk>
<chunk> and results of this study are summarized in </chunk>
<link target="t2"/>
<chunk>. The Suzuki reaction was carried out using arylboronic acids in the presence of (PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk>)</chunk>
<chunk subscript="yes">2</chunk>
<chunk>PdCl</chunk>
<chunk subscript="yes">2</chunk>
<chunk> as a catalyst, CsCO</chunk>
<chunk subscript="yes">3</chunk>
<chunk> as a base, tricyclohexyl phophine, (PCy</chunk>
<chunk subscript="yes">3</chunk>
<chunk>) as a ligand in dioxane&#8211;water at 80 &#176;C. The arylboronic acids used in this reaction include phenylboronic acid (entries 1&#8211;6, </chunk>
<link target="t2"/>
<chunk>), 3-methoxyphenylboronic acid (entry 7, </chunk>
<link target="t2"/>
<chunk>) and 4-fluorophenyl boronic acid (entry 8, </chunk>
<link target="t2"/>
<chunk>), all of which participated well in the coupling reaction with </chunk>
<chunk bold="yes">3</chunk>
<chunk>. A number of 2-alkynyl-4-arylquinolines (</chunk>
<chunk bold="yes">5</chunk>
<chunk>) were prepared in good to excellent yields without affecting the alkynyl substituents present in compound </chunk>
<chunk bold="yes">3</chunk>
<chunk>.</chunk>
</paragraph>
<float target="t2"/>
<paragraph>
<chunk>The reaction mechanism of the present stepwise C&#8211;C bond forming reactions consisting of alkynylation followed by arylation is shown in </chunk>
<link target="s2"/>
<chunk>. The Pd/C&#8211;Cu mediated coupling of 2,4 dichloroquinoline (</chunk>
<chunk bold="yes">1</chunk>
<chunk>) with terminal alkynes (</chunk>
<chunk bold="yes">2</chunk>
<chunk>) in water proceeds via normal Sonogashira pathway </chunk>
<link target="b6"/>
<chunk>. Due to the presence of electronegative nitrogen atom the chloro group at the azomethine carbon is more susceptible to undergo oxidative addition with Pd(0) than chloro group at C-4. Moreover, the coordination of quinoline nitrogen to the palladium </chunk>
<link target="b18"/>
<link target="b19"/>
<chunk> controls the regioselectivity in alkynylation of 2,4-dichloroquinoline at C-2 position. The 2-alkynyl-4-chloroquinolines </chunk>
<chunk bold="yes">3</chunk>
<chunk> thus formed then undergo Suzuki reaction in the next step. Oxidative addition of Pd</chunk>
<chunk superscript="yes">0</chunk>
<chunk> generated in situ to compound </chunk>
<chunk bold="yes">3</chunk>
<chunk> followed by trans-organometallation of the resultant aryl-palladium complex formed with arylboronic acids provides the desired compound </chunk>
<chunk bold="yes">5</chunk>
<chunk>.</chunk>
</paragraph>
<float target="s2"/>
</section>
<section>
<title>
<chunk>Conclusions</chunk>
</title>
<paragraph>
<chunk>In conclusion, a two-step method consisting of alkynylation followed by arylation has been developed for the synthesis of 2-alkynyl-4-arylquinolines. The alkynylation step involved Pd/C&#8211;Cu mediated regioselective C-2 alkynylation of 2,4-dichloroquinoline in water to afford 2-alkynyl-4-chloroquinoline. The arylation step is a Pd-mediated (Suzuki) coupling of 2-alkynyl-4-chloro derivative with arylboronic acids in aqueous media to give the target compounds. The process is amenable to the diversity-oriented synthesis of quinoline derivatives of potential pharmacological significance and may therefore find wide usage in organic/medicinal chemistry.</chunk>
</paragraph>
</section>
<section>
<title>
<chunk>Experimental</chunk>
</title>
<paragraph>
<chunk>General Procedure for the preparation of compound </chunk>
<chunk bold="yes">5</chunk>
<chunk>: A mixture of alkyne </chunk>
<chunk bold="yes">3</chunk>
<chunk> (1.0 mmol) and (PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk>)</chunk>
<chunk subscript="yes">2</chunk>
<chunk>PdCl</chunk>
<chunk subscript="yes">2</chunk>
<chunk> (0.05 mmol) in dioxane (5.0 mL) was stirred for 10 min under nitrogen at room temperature and then heated to 80 &#176;C. To this mixture was added a solution of PCy</chunk>
<chunk subscript="yes">3</chunk>
<chunk> (0.05 mmol) and CsCO</chunk>
<chunk subscript="yes">3</chunk>
<chunk> (3.5 mmol) dissolved in water (3.0 mL) and arylboronic acid (1.5 mmol) dissolved in dioxane (3.0 mL) at the same temperature. The mixture was stirred at 80 &#176;C according to the time indicated in </chunk>
<link target="t2"/>
<chunk>. After completion of the reaction the mixture was cooled to room temperature, concentrated under vacuum and the residue was extracted with EtOAc (3 &#215; 30 mL). The organic layers were collected, combined, washed with cold water (3 &#215; 30 mL), dried over anhydrous Na</chunk>
<chunk subscript="yes">2</chunk>
<chunk>SO</chunk>
<chunk subscript="yes">4</chunk>
<chunk> and concentrated under vacuum. The crude product was purified by column chromatography on silica gel, using light petroleum ether (60&#8211;80 &#176;C)-ethyl acetate to afford the desired product. Spectral data for selected compounds; Compound</chunk>
<chunk bold="yes"> 5a</chunk>
<chunk>; light brown gum, Rf (20% ethyl acetate/n-hexane) 0.21; </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR (CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>, 400 MHz) &#948; 8.14 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 8.0 Hz, 1H), 7.85 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 8.0 Hz, 1H), 7.69 (t, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.8 Hz, 1H), 7.50&#8211;7.41 (m, 7H), 2.49 (t, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.0 Hz, 2H), 1.69&#8211;1.21 (m, 8H), 0.91&#8211;0.8 (m, 3H); IR (cm</chunk>
<chunk superscript="yes">&#8722;1</chunk>
<chunk>, neat) 2927, 2225, 1587, 1543, 1357; m/z (ES Mass) 314 (M+1, 100%); </chunk>
<chunk superscript="yes">13</chunk>
<chunk>C NMR (CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>, 50 MHz) 148.5, 143.6, 137.5 (2C), 129.6 (3C), 128.4 (2C), 126.7 (2C), 125.5 (3C), 124.3, 92.2, 81.0, 76.3, 31.3, 29.6, 28.0, 24.6, 22.5; HRMS (ESI): calcd for C</chunk>
<chunk subscript="yes">23</chunk>
<chunk>H</chunk>
<chunk subscript="yes">23</chunk>
<chunk>N (M+H)</chunk>
<chunk superscript="yes">+</chunk>
<chunk> 314.1909, found 314.1896. Compound </chunk>
<chunk bold="yes">5b</chunk>
<chunk>, low melting solid, R</chunk>
<chunk subscript="yes">f</chunk>
<chunk> (20% ethyl acetate/n-hexane) 0.28; </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR (CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>, 400 MHz) &#948; 8.20 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.8 Hz, 1H), 7.87 (d, </chunk>
<chunk italic="yes">J</chunk>
<chunk> = 7.8 Hz, 1H), 7.75&#8211;7.71 (m, 1H), 7.56&#8211;7.47 (m, 9H), 7.25&#8211;7.17 (m, 2H), 2.38 (s, 3H); IR (cm</chunk>
<chunk superscript="yes">&#8722;1</chunk>
<chunk>, Neat) 2924, 2216, 1583, 1541; m/z (ES Mass) 320 (M+1, 100%); </chunk>
<chunk superscript="yes">13</chunk>
<chunk>C NMR (CDCl</chunk>
<chunk subscript="yes">3</chunk>
<chunk>, 50 MHz) 148.6, 148.5, 143.2 (2C), 139.3 (2C), 137.3 (2C), 134, 132, 129.5 (3C), 129.3 (2C), 126.9 (2C), 125.6 (2C), 124.4, 118.9, 90.2, 88.8, 29.0; HRMS (ESI): calcd for C</chunk>
<chunk subscript="yes">24</chunk>
<chunk>H</chunk>
<chunk subscript="yes">17</chunk>
<chunk>N (M+H)</chunk>
<chunk superscript="yes">+</chunk>
<chunk> 320.1439, found 320.1454.</chunk>
</paragraph>
</section>
<album-graphics>
<graphic public-id="1860-5397-5-32-1"/>
<graphic public-id="1860-5397-5-32-i1"/>
</album-graphics>
<inline-graphics>
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<graphic id="i7" public-id="1860-5397-5-32-i9"/>
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<figures>
<figure id="f1">
<caption>
<paragraph>
<chunk>2-Alkynyl-4-aryl pyridine and its benzo derivative.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-5-32-1"/>
</figure>
</figures>
<schemes>
<scheme id="s1">
<caption>
<paragraph>
<chunk>Sequential synthesis of 2-alkynyl-4-arylquinolines from 2,4-dichloroquinoline under palladium catalysis.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-5-32-i1"/>
</scheme>
<scheme id="s2">
<caption>
<paragraph>
<chunk>The reaction mechanism of stepwise C&#8211;C bond forming reactions.</chunk>
</paragraph>
</caption>
<graphic public-id="1860-5397-5-32-i2"/>
</scheme>
</schemes>
<tables>
<table id="t1">
<caption>
<paragraph>
<chunk>Pd/C-mediated [Pd/C (10 mol%)&#8211;CuI (5 mol%)&#8211;PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk> (20 mol%)] synthesis of 2-alkynyl-4-chloroquinolines (</chunk>
<chunk bold="yes">3</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>
<paragraph>
<chunk>Terminal alkynes (</chunk>
<chunk bold="yes">2</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Time (h)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Products (</chunk>
<chunk bold="yes">3</chunk>
<chunk>)</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Yield (%)</chunk>
<chunk superscript="yes">c</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell column-span="5" type="horizontal-line"/>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>1.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i1"/>
</paragraph>
<paragraph>
<chunk bold="yes">2a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>10</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i2"/>
</paragraph>
<paragraph>
<chunk bold="yes">3a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>88</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>2.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i3"/>
</paragraph>
<paragraph>
<chunk bold="yes">2b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>8</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i4"/>
</paragraph>
<paragraph>
<chunk bold="yes">3b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>85</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>3.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i5"/>
</paragraph>
<paragraph>
<chunk bold="yes">2c</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>10</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i6"/>
</paragraph>
<paragraph>
<chunk bold="yes">3c</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>90</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>4.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i7"/>
</paragraph>
<paragraph>
<chunk bold="yes">2d</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>12</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i8"/>
</paragraph>
<paragraph>
<chunk bold="yes">3d</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>92</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>5.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i9"/>
</paragraph>
<paragraph>
<chunk bold="yes">2e</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>12</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i10"/>
</paragraph>
<paragraph>
<chunk bold="yes">3e</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>90</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>6.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i11"/>
</paragraph>
<paragraph>
<chunk bold="yes">2f</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>8</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i12"/>
</paragraph>
<paragraph>
<chunk bold="yes">3f</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>87</chunk>
</paragraph>
</table-cell>
</table-row>
<table-footer>
<paragraph>
<chunk superscript="yes">a</chunk>
<chunk>All the reactions were carried out by using compound </chunk>
<chunk bold="yes">1</chunk>
<chunk> (1.0 equiv), terminal alkyne </chunk>
<chunk bold="yes">2</chunk>
<chunk> (1.5 equiv), 10% Pd/C (0.026 equiv), PPh</chunk>
<chunk subscript="yes">3</chunk>
<chunk> (0.20 equiv), CuI (0.05 equiv), and Et</chunk>
<chunk subscript="yes">3</chunk>
<chunk>N (3.0 equiv) at 80&#160;&#176;C.</chunk>
</paragraph>
<paragraph>
<chunk superscript="yes">b</chunk>
<chunk>Identified by </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR, IR, and MS.</chunk>
</paragraph>
<paragraph>
<chunk superscript="yes">c</chunk>
<chunk>Isolated yields.</chunk>
</paragraph>
</table-footer>
</table>
<table id="t2">
<caption>
<paragraph>
<chunk>Synthesis of 2-alkynyl-4-arylquinolines (</chunk>
<chunk bold="yes">5</chunk>
<chunk>).</chunk>
</paragraph>
</caption>
<table-row type="header1">
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>Entry</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>4-Chloro compd (</chunk>
<chunk bold="yes">3</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Arylboronic acid (</chunk>
<chunk bold="yes">4</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Product</chunk>
<chunk superscript="yes">a</chunk>
<chunk> (</chunk>
<chunk bold="yes">5</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Time (h)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>Yield (%)</chunk>
<chunk superscript="yes">b</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell column-span="6" type="horizontal-line"/>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>1.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3e</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>phenylboronic acid (</chunk>
<chunk bold="yes">4a</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i13"/>
</paragraph>
<paragraph>
<chunk bold="yes">5a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>4</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>83</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>2.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">4a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i14"/>
</paragraph>
<paragraph>
<chunk bold="yes">5b</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>88</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>3.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3c</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">4a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i15"/>
</paragraph>
<paragraph>
<chunk bold="yes">5c</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>2</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>87</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>4.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3d</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">4a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i16"/>
</paragraph>
<paragraph>
<chunk bold="yes">5d</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>4</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>82</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>5.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">4a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i17"/>
</paragraph>
<paragraph>
<chunk bold="yes">5e</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>2</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>84</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>6.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3f</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">4a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i18"/>
</paragraph>
<paragraph>
<chunk bold="yes">5f</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>79</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>7.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>3-methoxy-phenylboronic acid (</chunk>
<chunk bold="yes">4b</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i19"/>
</paragraph>
<paragraph>
<chunk bold="yes">5g</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>2</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>86</chunk>
</paragraph>
</table-cell>
</table-row>
<table-row>
<table-cell horizontal-alignment="center">
<paragraph>
<chunk>8.</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk bold="yes">3a</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>4-fluoro-phenylboronic acid (</chunk>
<chunk bold="yes">4c</chunk>
<chunk>)</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<inline-float target="i20"/>
</paragraph>
<paragraph>
<chunk bold="yes">5h</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>2</chunk>
</paragraph>
</table-cell>
<table-cell>
<paragraph>
<chunk>86</chunk>
</paragraph>
</table-cell>
</table-row>
<table-footer>
<paragraph>
<chunk superscript="yes">a</chunk>
<chunk>Identified by </chunk>
<chunk superscript="yes">1</chunk>
<chunk>H NMR, IR, and MS.</chunk>
</paragraph>
<paragraph>
<chunk superscript="yes">b</chunk>
<chunk>Isolated yields.</chunk>
</paragraph>
</table-footer>
</table>
</tables>
<substances>
<substance id="1860-5397-5-32-QNBJYUUUYZVIJP-UHFFFAOYSA-N">
<inchi-key>QNBJYUUUYZVIJP-UHFFFAOYSA-N</inchi-key>
<inchi>InChI=1S/C9H5Cl2N/c10-7-5-9(11)12-8-4-2-1-3-6(7)8/h1-5H</inchi>
<smiles>C1=CC2=C(C=C1)N=C(C=C2Cl)Cl</smiles>
<extended-smiles>C1=CC=C2C(=C1)C(=CC(=N2)Cl)Cl |(32.63,-472.99,;32.63,-485.19,;43.2,-491.29,;53.77,-485.19,;53.77,-472.99,;43.2,-466.9,;64.34,-466.9,;74.91,-472.99,;74.91,-485.19,;64.34,-491.29,;85.45,-491.29,;64.34,-454.7,)|</extended-smiles>
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  0  0  0     0  0            999 V3000
M  V30 BEGIN CTAB
M  V30 COUNTS 12 13 0 0 0
M  V30 BEGIN ATOM
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M  V30 2 C 32.63338 -485.18967 0 0
M  V30 3 C 43.2011 -491.28735 0 0
M  V30 4 C 53.77145 -485.18967 0 0
M  V30 5 C 53.77145 -472.99432 0 0
M  V30 6 C 43.2011 -466.89661 0 0
M  V30 7 N 64.33919 -491.28735 0 0
M  V30 8 C 74.90956 -485.18967 0 0
M  V30 9 C 74.90956 -472.99432 0 0
M  V30 10 C 64.33919 -466.89661 0 0
M  V30 11 Cl 64.33919 -454.70129 0 0
M  V30 12 Cl 85.44553 -491.28735 0 0
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M  V30 BEGIN BOND
M  V30 1 2 1 2
M  V30 2 1 2 3
M  V30 3 2 3 4
M  V30 4 1 4 5
M  V30 5 2 5 6
M  V30 6 1 1 6
M  V30 7 1 4 7
M  V30 8 2 7 8
M  V30 9 1 8 9
M  V30 10 2 9 10
M  V30 11 1 5 10
M  V30 12 1 10 11
M  V30 13 1 8 12
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<supporting-information>
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<caption>
<paragraph>
<chunk>Spectral data of 2-alkynyl-4-arylquinolines </chunk>
<chunk bold="yes">5c</chunk>
<chunk>&#8211;</chunk>
<chunk bold="yes">h</chunk>
<chunk>.</chunk>
</paragraph>
</caption>
</supporting-information-file>
</supporting-information>
<end-section>
<title>
<chunk>Acknowledgements</chunk>
</title>
<paragraph>
<chunk>The authors thank Dr. V. Dahanukar and Mr. A. Mukherjee for their encouragement and the analytical group for spectral data. Mr. E.A.R. thanks CPS-DRL, Hyderabad, India for allowing him to pursue this work as a part of his Ph.D. program.</chunk>
</paragraph>
</end-section>
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<chunk> terms and conditions: (http://www.beilstein-journals.org/bjoc)</chunk>
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</copyright>
</article>
