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Search for "indole" in Full Text gives 324 result(s) in Beilstein Journal of Organic Chemistry. Showing first 200.

Facile synthesis of indolo[3,2-a]carbazoles via Pd-catalyzed twofold oxidative cyclization

  • Chao Yang,
  • Kai Lin,
  • Lan Huang,
  • Wei-dong Pan and
  • Sheng Liu

Beilstein J. Org. Chem. 2016, 12, 2490–2494, doi:10.3762/bjoc.12.243

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  • ][12]. As an interest concerning the development of synthesis methods for carbazoles, we considered that indolo[3,2-a]carbazoles 1 which represents racemosin B and its analogues also could be conveniently delivered by bidirectional indole annulations from methyl 2,4-dianilinobenzoates 2 (Scheme 1
  • -dianilinobenzoate (2f–p) with various substituents at the aniline moieties. Given the ease with which methyl 2,4-dianilinobenzoates could be assembled, further efforts were focused on the optimization studies of the key bidirectional indole annulations using 2a as the model substrate. To maximize efficiency and
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Published 22 Nov 2016
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  • dihydropyridine, hydantoin, imidazole, indole, isoquinoline, isoxazole, oxazole, 4H-pyran, pyrazine, pyridazine, pyridine, pyridinone, pyrimidine, pyrimidone, pyrrole, 3H-quinazolin-4-one, quinoline, 1H-quinolin-4-one, and thiophene. For heterocycles that are composed of a fused aromatic ring, such as
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Published 16 Nov 2016

Enduracididine, a rare amino acid component of peptide antibiotics: Natural products and synthesis

  • Darcy J. Atkinson,
  • Briar J. Naysmith,
  • Daniel P. Furkert and
  • Margaret A. Brimble

Beilstein J. Org. Chem. 2016, 12, 2325–2342, doi:10.3762/bjoc.12.226

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  • mechanism is operative [31]. Indole metabolite In 1996, during a screening program for biologically active metabolites from marine ascidians, Riguera et al. identified a small group of amino acid containing compounds in a cytotoxic extract of the ascidian Leptoclinides dubius [32]. Among these compounds was
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Published 07 Nov 2016

Chiral ammonium betaine-catalyzed asymmetric Mannich-type reaction of oxindoles

  • Masahiro Torii,
  • Kohsuke Kato,
  • Daisuke Uraguchi and
  • Takashi Ooi

Beilstein J. Org. Chem. 2016, 12, 2099–2103, doi:10.3762/bjoc.12.199

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  • quaternary and tertiary stereogenic carbon centers on biologically intriguing molecular frameworks with high fidelity. Keywords: ammonium betaine; asymmetric catalysis; Mannich reaction; organocatalysis; oxindole; Introduction Chiral indole alkaloids possessing C-3 quaternary indoline frameworks are an
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Published 28 Sep 2016

Varioloid A, a new indolyl-6,10b-dihydro-5aH-[1]benzofuro[2,3-b]indole derivative from the marine alga-derived endophytic fungus Paecilomyces variotii EN-291

  • Peng Zhang,
  • Xiao-Ming Li,
  • Xin-Xin Mao,
  • Attila Mándi,
  • Tibor Kurtán and
  • Bin-Gui Wang

Beilstein J. Org. Chem. 2016, 12, 2012–2018, doi:10.3762/bjoc.12.188

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  • indolyl-6,10b-dihydro-5aH-[1]benzofuro[2,3-b]indole derivative, varioloid A (1), was isolated from the marine alga-derived endophytic fungus Paecilomyces variotii EN-291. Its structure was elucidated on the basis of extensive analysis of 1D and 2D NMR data and the absolute configuration was determined by
  • DPPH radical scavenging activity [11], and two new prenylated indole alkaloids with cytotoxic activity [12] had been isolated and identified. In an effort to isolate additional analogues that might show similar effects, a larger fermentation was undertaken. This study led to the isolation of two
  • of the C-13 indol and dihydro-5aH-[1]benzofuro [2,3-b]indole moieties. The different biaryl torsional angles produced markedly different computed ECD spectra for the conformers having M and P helicity such as the two lowest-energy computed B3LYP/6-31G(d) conformers (Figure 4). The two high-wavelength
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Published 09 Sep 2016

Scope and limitations of a DMF bio-alternative within Sonogashira cross-coupling and Cacchi-type annulation

  • Kirsty L. Wilson,
  • Alan R. Kennedy,
  • Jane Murray,
  • Ben Greatrex,
  • Craig Jamieson and
  • Allan J. B. Watson

Beilstein J. Org. Chem. 2016, 12, 2005–2011, doi:10.3762/bjoc.12.187

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  • pharmaceutically relevant indole, benzofuran, and aza-indole scaffolds in a single operation (7a–f) [48][49][50][51][52]. Finally, with the viewpoint of generality of DMF substitution by Cyrene, the base/temperature sensitivity issue may have potential implications for further applications of Cyrene within well
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Published 08 Sep 2016

Rearrangements of organic peroxides and related processes

  • Ivan A. Yaremenko,
  • Vera A. Vil’,
  • Dmitry V. Demchuk and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2016, 12, 1647–1748, doi:10.3762/bjoc.12.162

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Published 03 Aug 2016

Multicomponent reactions: A simple and efficient route to heterocyclic phosphonates

  • Mohammad Haji

Beilstein J. Org. Chem. 2016, 12, 1269–1301, doi:10.3762/bjoc.12.121

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  • -component reaction for the synthesis of 1,5-benzodiazepin-2-ylphosphonates. Synthesis of indole bisphosphonates through a modified Kabachnik–Fields reaction. Synthesis of heterocyclic bisphosphonates via Kabachnik–Fields reaction of triethyl orthoformate. A domino Knoevenagel/phospha-Michael process for the
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Published 21 Jun 2016

Cyclisation mechanisms in the biosynthesis of ribosomally synthesised and post-translationally modified peptides

  • Andrew W. Truman

Beilstein J. Org. Chem. 2016, 12, 1250–1268, doi:10.3762/bjoc.12.120

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  • transferase (ComQ), which transfers an isoprenyl group to position 3 of the indole side chain of a conserved tryptophan residue [135]. This directly generates a tricyclic structure, presumably via attack of the main chain amide nitrogen onto the iminium intermediate that is generated following prenylation
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Published 20 Jun 2016

Conjugate addition–enantioselective protonation reactions

  • James P. Phelan and
  • Jonathan A. Ellman

Beilstein J. Org. Chem. 2016, 12, 1203–1228, doi:10.3762/bjoc.12.116

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  • was observed (86.5:13.5 to 89:11 er). Luo and Cheng also explored the mechanism of the Friedel–Crafts addition of indole to α-substituted vinyl ketones [52][53]. Based on DFT studies, the authors proposed that the stereoselectivity of the reaction was under Curtin–Hammett control (Scheme 28). During
  • , Luo and Cheng were able to catalyze an enantioselective Friedel–Crafts reaction between indole 136 and α-substituted acrolein 137 (Scheme 31). Acroleins containing a benzyl α-substituent performed best in the reaction with 2-methylindole (72–95% yield, 93.5:6.5 to 97:3 er). Alkyl and alkenyl
  • stabilized by an O–H/π interaction with the indole ring to explain the improvement in enantioselectivity of the protonation step when brine is used as an additive (Scheme 32). α,β-Unsaturated thioesters Lewis acids In one of the early examples of conjugate addition–enantioselective protonation, Shibasaki and
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Published 15 Jun 2016

Synthesis of 2-oxindoles via 'transition-metal-free' intramolecular dehydrogenative coupling (IDC) of sp2 C–H and sp3 C–H bonds

  • Nivesh Kumar,
  • Santanu Ghosh,
  • Subhajit Bhunia and
  • Alakesh Bisai

Beilstein J. Org. Chem. 2016, 12, 1153–1169, doi:10.3762/bjoc.12.111

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  • recently gained immense importance. 2-Oxindoles having all carbon quaternary centres at the pseudobenzylic position are common structural scaffolds in many naturally occurring alkaloids of biological relevance [22][23][24][25]. These heterocyclic motifs especially exist in indole alkaloids with a wide
  • focussed our attention to prenylated, reverse-prenylated, and geranylated hexahydropyrrolo[2,3-b]indole alkaloids showing broad biological activities [55][56][57][58][59][60][61]. For the synthesis of these compounds, we thought of utilizing the Pd-catalyzed decarboxylative strategy to install the prenyl
  • the results are summarized in Figure 5. Interestingly, under this conditions, we can synthesize a variety of 2-oxindoles 8 in moderate to good yields. There are a large number of indole alkaloids bearing a 3-arylated-2-oxindole moiety that are known for their various biological activities [65][66][67
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Published 08 Jun 2016

Catalytic asymmetric synthesis of biologically important 3-hydroxyoxindoles: an update

  • Bin Yu,
  • Hui Xing,
  • De-Quan Yu and
  • Hong-Min Liu

Beilstein J. Org. Chem. 2016, 12, 1000–1039, doi:10.3762/bjoc.12.98

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  • , the same group extended this protocol to other electron-rich aromatics such as anisole, furan, indole and aniline, generating the corresponding products in good to excellent yields (Scheme 47) [64]. This method may provide a fast entry to the 3-indolyloxindoles (also known as indol-3-ylmethanols
  • ), which have been widely used as versatile intermediates for synthesizing biologically important indole containing compounds. The method was also successfully applied to the construction of the tetracyclic core that exists in natural azonazine through a reductive cyclization/MnO2-mediated intramolecular
  • cyclization, giving the tricyclic N-heterocyclic core. Very recently, Shi and co-workers reported the chiral phosphoric acid (CPA, cat. 31)-catalyzed asymmetric dearomatization reactions of tryptamines with 3-indolyl-3-hydroxyoxindoles, affording the indole-containing tricyclic N-heterocycles in a highly
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Published 18 May 2016

Iridium/N-heterocyclic carbene-catalyzed C–H borylation of arenes by diisopropylaminoborane

  • Mamoru Tobisu,
  • Takuya Igarashi and
  • Naoto Chatani

Beilstein J. Org. Chem. 2016, 12, 654–661, doi:10.3762/bjoc.12.65

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  • ) system. Results and Discussion On the basis of a superior reactivity of indoles in several C–H borylation reactions [7][8][9], we initially examined the borylation of indole 2 with aminoborane 1g using an iridium catalyst under forcing conditions (140 °C, 15 h). Although all the attempts to isolate an
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Published 07 Apr 2016

The aminoindanol core as a key scaffold in bifunctional organocatalysts

  • Isaac G. Sonsona,
  • Eugenia Marqués-López and
  • Raquel P. Herrera

Beilstein J. Org. Chem. 2016, 12, 505–523, doi:10.3762/bjoc.12.50

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  • derivative 4 to develop the first organocatalytic enantioselective Friedel–Crafts (F–C) alkylation of indoles, employing nitroalkenes as versatile electrophiles. In the presence of catalyst 4, the differently functionalized indole derivatives 2 reacted with aryl and alkyl nitroalkenes 3 in dichloromethane at
  • to explain the sense of the asymmetric induction observed in the reaction, some experiments with structurally modified catalysts (4' and 4'') were carried out. The results obtained using indole (2a) and β-nitrostyrene (3a) supported the importance of the hydroxy group, since low yield and selectivity
  • hydroxy group would interact with the NH of the indole by a weak hydrogen bond, driving the attack to the Si face of the nitroalkene in a stereocontrolled manner. In a recent study of this F–C alkylation, Herrera’s group has provided computational evidence of the reaction pathway, which confirms the
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Published 14 Mar 2016

Recent advances in N-heterocyclic carbene (NHC)-catalysed benzoin reactions

  • Rajeev S. Menon,
  • Akkattu T. Biju and
  • Vijay Nair

Beilstein J. Org. Chem. 2016, 12, 444–461, doi:10.3762/bjoc.12.47

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  • Melchiorre. A Diels–Alder reaction of indole-2,3-quinodimethane 76 (generated from 77 and the prolinol catalyst 78 ) with the enone 79 affords a tetrahydrocarbazole derivative 80. The NHC precatalyst 22 then promotes an intramolecular cross-benzoin condensation of the keto-aldehyde to furnish the tetracyclic
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Published 09 Mar 2016

Study on the synthesis of the cyclopenta[f]indole core of raputindole A

  • Nils Marsch,
  • Mario Kock and
  • Thomas Lindel

Beilstein J. Org. Chem. 2016, 12, 334–342, doi:10.3762/bjoc.12.36

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  • Nils Marsch Mario Kock Thomas Lindel Institute of Organic Chemistry, TU Braunschweig, Hagenring 30, 38106 Braunschweig, Germany 10.3762/bjoc.12.36 Abstract The raputindoles from the rutaceous tree Raputia simulans share a cyclopenta[f]indole partial structure the synthesis of which is subject of
  • this investigation. An efficient route to a series of 1,5-di(indol-6-yl)pentenones was developed via Mo/Au-catalyzed Meyer–Schuster rearrangement of tertiary propargylic alcohol precursors. However, none of the enones underwent the desired Nazarov cyclization to a cyclopenta[f]indole. More suitable
  • which provided the hydrogenated tricyclic cyclopenta[f]indole core system in high yield. Keywords: gold-catalyzed reactions; heterocycles; indole alkaloids; natural products; synthesis; Introduction The raputindoles (1, raputindole A, Figure 1) from the rutaceous tree Raputia simulans Kallunki
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Published 23 Feb 2016

Natural products from microbes associated with insects

  • Christine Beemelmanns,
  • Huijuan Guo,
  • Maja Rischer and
  • Michael Poulsen

Beilstein J. Org. Chem. 2016, 12, 314–327, doi:10.3762/bjoc.12.34

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  • identified as piericidin derivatives (e.g., piericidin A1 (1), Figure 3) and the chlorinated indole derivative streptochlorin (2). Imaging analysis based on a combination of laser desorption/ionization (LDI)–time of flight (TOF) mass spectrometry imaging visualized the spatial distribution of the antibiotics
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Published 19 Feb 2016

Pyridylidene ligand facilitates gold-catalyzed oxidative C–H arylation of heterocycles

  • Kazuhiro Hata,
  • Hideto Ito,
  • Yasutomo Segawa and
  • Kenichiro Itami

Beilstein J. Org. Chem. 2015, 11, 2737–2746, doi:10.3762/bjoc.11.295

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  • hereroarenes that has been known to be very sluggish with typical ligand systems [68][69][70][71][72]. In this paper, the C–H arylation reactions of isoxazole, indole, and benzothiophene are presented. In addition, direct observation and isolation of PyC-gold(III) complexes are described. Results and
  • reaction gave sterically congested heterobiaryl 3da in 17% yield (Table 2, entry 8). In the case of the reaction of indole 1e, 3-arylindole 3ea was exclusively obtained in 44% yield (Table 2, entry 9). On the other hand, arylation of benzo[b]thiophene (1f) mainly afforded 2-arylbenzothiophene 3fa along
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Published 28 Dec 2015

Recent advances in copper-catalyzed asymmetric coupling reactions

  • Fengtao Zhou and
  • Qian Cai

Beilstein J. Org. Chem. 2015, 11, 2600–2615, doi:10.3762/bjoc.11.280

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  • desymmetrization strategy. Construction of cyano-bearing all-carbon quaternary stereocenters. An unexpected inversion of the enantioselectivity in the asymmetric C–N coupling reactions using chiral octahydro-1H-indole-2-carboxylic acid as the ligand. Differentiation of two nucleophilic amide groups. Synthesis of
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Published 15 Dec 2015

Biocatalysis for the application of CO2 as a chemical feedstock

  • Apostolos Alissandratos and
  • Christopher J. Easton

Beilstein J. Org. Chem. 2015, 11, 2370–2387, doi:10.3762/bjoc.11.259

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  • drive the equilibrium toward carboxylation, such as high CO2 concentration. Successful examples include the carboxylation of phenol and hydroxystyrene derivatives including catechol [102], guaiacol [110], indole [101] and pyrrole [100] (Scheme 7). Isocitrate dehydrogenase As discussed above, as part of
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Published 01 Dec 2015

Beyond catalyst deactivation: cross-metathesis involving olefins containing N-heteroaromatics

  • Kevin Lafaye,
  • Cyril Bosset,
  • Lionel Nicolas,
  • Amandine Guérinot and
  • Janine Cossy

Beilstein J. Org. Chem. 2015, 11, 2223–2241, doi:10.3762/bjoc.11.241

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  • their studies towards ergot alkaloids synthesis, Martin and co-workers used a RCM to form the tetracyclic compound 43 incorporating an indole moiety. A poor yield was obtained in the presence of the GI catalyst and the more reactive Schrock complex 44 had to be used instead. Worthy of note, the indole
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Published 18 Nov 2015

Recent advances in copper-catalyzed C–H bond amidation

  • Jie-Ping Wan and
  • Yanfeng Jing

Beilstein J. Org. Chem. 2015, 11, 2209–2222, doi:10.3762/bjoc.11.240

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  • )/Cu(I) process, Himo and co-workers [57] provided a different Cu(II)/Cu(I) mechanism to explain the selectivity of this C-2 amidation transformation based on the study with DFT calculation. As outlined in Scheme 12, the calculation results suggested that the C-2 amidation of indole was possibly
  • for lactam synthesis. Copper-catalyzed amidation/sulfonamidation of aryl C–H bonds. C–H amidation of pyridinylbenzenes and indoles. Mechanism of the Cu-catalyzed C2-amidation of indoles. Copper-catalyzed, 2-phenyl oxazole-assisted C–H amidation of benzamides. DG-assisted amidation/imidation of indole
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Published 17 Nov 2015

Synthesis of constrained analogues of tryptophan

  • Elisabetta Rossi,
  • Valentina Pirovano,
  • Marco Negrato,
  • Giorgio Abbiati and
  • Monica Dell’Acqua

Beilstein J. Org. Chem. 2015, 11, 1997–2006, doi:10.3762/bjoc.11.216

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  • -carbon atom of the amino acid function and the C-2 carbon of the indole ring (tetrahydrocarbazole derivatives). The first report on the synthesis and biological evaluation of a constrained tryptophan analogue appeared in the literature in 1973 [11]. Maki and co-workers reported the synthesis of 3-amino
  • from the biological evaluation to the chemistry of tryptophan analogues, the above described two categories were synthesized according to the Pictet–Spengler reaction or by Fischer indole synthesis [11][12][13][14]. However, Fischer indolization suffers from the lack of regioselectivity depending on
  • -vinylindoles 1a–j. Results are shown in Table 2. Table 2, entries 1 and 2 report the best results for the cycloaddition reaction of 1a with 2, obtained during the reaction conditions screening (see Table 1). Quite surprisingly, indole 1b bearing a methyl group at the distal position of the diene system, gives
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Published 27 Oct 2015

Synthesis of quinoline-3-carboxylates by a Rh(II)-catalyzed cyclopropanation-ring expansion reaction of indoles with halodiazoacetates

  • Magnus Mortén,
  • Martin Hennum and
  • Tore Bonge-Hansen

Beilstein J. Org. Chem. 2015, 11, 1944–1949, doi:10.3762/bjoc.11.210

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  • halodiazoacetates. The formation of the quinoline structure is probably the result of a cyclopropanation at the 2- and 3-positions of the indole followed by ring-opening of the cyclopropane and elimination of H–X. Keywords: catalysis; cyclopropanation; indole; quinoline; Rh(II); ring expansion; Introduction The
  • indole moiety is found in a large number of bioactive natural products [1][2] and pharmaceutical compounds [3][4] and there has been a large synthetic effort going into the search for mild, efficient and selective procedures for the derivatization of indoles. One of the most efficient approaches is the
  • [15]. The substitution pattern of the indole substrate can have a significant effect on chemo- and regioselectivity. Electron-rich indoles typically give selective alkylation at the C3 position in the absence of a preexisting C3-substituent. In the presence of a C3-substituent, the alkylation is
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Published 20 Oct 2015

Fe(II)/Et3N-Relay-catalyzed domino reaction of isoxazoles with imidazolium salts in the synthesis of methyl 4-imidazolylpyrrole-2-carboxylates, its ylide and betaine derivatives

  • Ekaterina E. Galenko,
  • Olesya A. Tomashenko,
  • Alexander F. Khlebnikov,
  • Mikhail S. Novikov and
  • Taras L. Panikorovskii

Beilstein J. Org. Chem. 2015, 11, 1732–1740, doi:10.3762/bjoc.11.189

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  • complexes of pyrrole-2-carboxylic acid [23][24][25]. In some cases these complexes were prepared via dehydration of the corresponding proline complexes [25]. Substituted pyrrole-2-carboxylic acids as ligands of complexes are seldom used and are only exemplified by complexes of indole-2-carboxylic acid [26
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Published 24 Sep 2015
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