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Search for "cation–π interactions" in Full Text gives 18 result(s) in Beilstein Journal of Organic Chemistry.

Synthesis and characterization of water-soluble C60–peptide conjugates

  • Yue Ma,
  • Lorenzo Persi and
  • Yoko Yamakoshi

Beilstein J. Org. Chem. 2024, 20, 777–786, doi:10.3762/bjoc.20.71

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  • ) showed much smaller aggregation (dotted green line, ≈12 nm), providing a transparent solution, while C60–oligo-Arg (5c) remained insoluble over the tested pH value range (4.0–9.2). This was presumably due to the strong cationπ interactions between the cationic Arg moieties and the aromatic C60, which is
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Published 12 Apr 2024

Anion–π catalysis on carbon allotropes

  • M. Ángeles Gutiérrez López,
  • Mei-Ling Tan,
  • Giacomo Renno,
  • Augustina Jozeliūnaitė,
  • J. Jonathan Nué-Martinez,
  • Javier Lopez-Andarias,
  • Naomi Sakai and
  • Stefan Matile

Beilstein J. Org. Chem. 2023, 19, 1881–1894, doi:10.3762/bjoc.19.140

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  • available so far on anion–π catalysis on carbon allotropes. Review Anion–π catalysis on fullerenes The use of fullerenes in catalysis is surprisingly underdeveloped [45][46][47][48][49][50][51]. Anion–π and cationπ interactions on fullerenes attract similarly little attention until today [52][53][54][55
  • intermediate XIV [24][25]. Thus, this reaction can be considered as the anion–π catalysis counterpart of the steroid cyclizations catalyzed in nature with the charge inverted, conventional cationπ interactions [15]. Anion–π catalysis on fullerene dimers The strength of anion–π interactions increases with face
  • strong anion–π and cationπ interactions [112][113][114][115] and accelerate and direct the electron displacement during the reaction. Possible limitations at high concentrations in suspension from catalyst depolarization by multiple binding (Figure 1) naturally do not apply to permanent polarization by
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Published 12 Dec 2023

Unraveling the role of prenyl side-chain interactions in stabilizing the secondary carbocation in the biosynthesis of variexenol B

  • Moe Nakano,
  • Rintaro Gemma and
  • Hajime Sato

Beilstein J. Org. Chem. 2023, 19, 1503–1510, doi:10.3762/bjoc.19.107

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  • of the neighboring prenyl side chain interacts and promptly induce C–C bond formation. There have been no reports published where, as in our case, the cation is stabilized without bond formation. We have also considered other transannular cationπ interactions in this system. In this case, the
  • gets close, it would easily form a C–C bond. Therefore, we believe that no other transannular cationπ interactions need to be considered in this system. In systems without cationπ interactions, such as in the biosynthesis of variediene [39] and spiroviolene [40], bonds around the secondary
  • carbocation are strongly influenced by hyperconjugation. In particular, C–C bonds containing a secondary cation are shortened to about 1.45 Å, showing a slight double bond character. On the other hand, in intermediates such as IM2a and IM2b, which have cationπ interactions, the surrounding bonds are hardly
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Published 28 Sep 2023

Phenanthridine–pyrene conjugates as fluorescent probes for DNA/RNA and an inactive mutant of dipeptidyl peptidase enzyme

  • Josipa Matić,
  • Tana Tandarić,
  • Marijana Radić Stojković,
  • Filip Šupljika,
  • Zrinka Karačić,
  • Ana Tomašić Paić,
  • Lucija Horvat,
  • Robert Vianello and
  • Lidija-Marija Tumir

Beilstein J. Org. Chem. 2023, 19, 550–565, doi:10.3762/bjoc.19.40

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  • further promoted by favorable cationπ interactions. In other words, in Phen-Py-1+ and Phen-Py-2+, stacked structures account for around 96% and 98% of population, respectively, while in unionized Phen-Py-1 and Phen-Py-2 these cluster around 84% in both cases (Figure 2). This is further supported by
  • that a higher degree of aromatic surfaces overlapping and cationπ interactions also yield excimer fluorescence quenching [30][32][33]. This conclusion is strongly in line with experimental insight reported here and helps in explaining the observed excimer fluorescence quenching with a decrease in the
  • + and Phen-Py-2+, where π–π stacking contacts are further promoted by the favorable cationπ interactions. Phenanthridine–pyrene conjugate Phen-Py-1 showed excimer fluorescence that was red shifted compared to the emission of a single phenanthridine or pyrene chromophore. This excimer fluorescence was
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Published 26 Apr 2023

A resorcin[4]arene hexameric capsule as a supramolecular catalyst in elimination and isomerization reactions

  • Tommaso Lorenzetto,
  • Fabrizio Fabris and
  • Alessandro Scarso

Beilstein J. Org. Chem. 2022, 18, 337–349, doi:10.3762/bjoc.18.38

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  • 1375 Å3 that is accessible [23] for cationic guests [24] thanks to extended cationπ interactions [25] as well as other electron poor molecules [26][27]. After our seminal work on the use of 16 as a nanoreactor to bind an Au(I) catalyst and to impart unique product [28] as well as substrate [29
  • all these reactions is the combination of its weak Brønsted acidity [42] that, by protonation of the substrate, leads to the formation of cationic species [43] and the stabilization of the latter through cationπ interactions [44] within the electron-rich aromatic cavity of the capsule, thus providing
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Published 28 Mar 2022

Site-selective reactions mediated by molecular containers

  • Rui Wang and
  • Yang Yu

Beilstein J. Org. Chem. 2022, 18, 309–324, doi:10.3762/bjoc.18.35

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  • demonstrated a relatively high affinity towards cationic guests through cationπ interactions, which was crucial for the catalysis of many of the organic reactions. And similarly, the ionic form of the host made it water-soluble and reactions could be conducted in water. In this particular example, the
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Published 14 Mar 2022

Halides as versatile anions in asymmetric anion-binding organocatalysis

  • Lukas Schifferer,
  • Martin Stinglhamer,
  • Kirandeep Kaur and
  • Olga García Macheño

Beilstein J. Org. Chem. 2021, 17, 2270–2286, doi:10.3762/bjoc.17.145

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  • the seleniranium ring. Through favorable cationπ interactions with the catalyst, the (S,S)-intermediate reacts faster than its opposing enantiomer, allowing for excellent yields up to 95% and high enantioselectivities up to 91% ee. In contrast to the previous example, in which the chloride anion was
  • with aromatic residues of the enzymes. In fact, these additional stabilizing effects can be exploited in the design of more effective noncovalent catalytic structures for anion-binding catalysis. In this regard, cationπ interactions have been used to develop several types of anion binding-catalyzed
  • varying aromatic residues were synthesized to elucidate if interactions with the anionic and cationic species could simultaneously be achieved. Hence, in 2010, they successfully showed that such rather small catalysts can mimic nature’s principle of cationπ interactions, allowing for a highly
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Published 01 Sep 2021

Insight into functionalized-macrocycles-guided supramolecular photocatalysis

  • Minzan Zuo,
  • Krishnasamy Velmurugan,
  • Kaiya Wang,
  • Xueqi Tian and
  • Xiao-Yu Hu

Beilstein J. Org. Chem. 2021, 17, 139–155, doi:10.3762/bjoc.17.15

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  • supramolecular hosts to recognize guests through hydrophobicity, π–π stacking, cationπ interactions, ion–dipole interactions, etc. [31][32]. Due to the cavity-shape limitation of calixarenes, most calixarene-based photocatalytic systems are mainly based on the fabrication of hybrid materials for energy transfer
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Published 18 Jan 2021

Halide metathesis in overdrive: mechanochemical synthesis of a heterometallic group 1 allyl complex

  • Ross F. Koby,
  • Nicholas R. Rightmire,
  • Nathan D. Schley,
  • Timothy P. Hanusa and
  • William W. Brennessel

Beilstein J. Org. Chem. 2019, 15, 1856–1863, doi:10.3762/bjoc.15.181

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  • the only recoverable material; extracted with toluene, it crystallized from solution as the solvate. A single crystal X-ray study analysis reveals bent polymeric chains of alternating K+ cations and [A']− anions. Each potassium is capped with a toluene molecule, bonded through cationπ interactions
  • centroid distance is 2.99 Å, which is typical for K+…(arene) cationπ interactions [22][23]. The enthalpy of binding (∆H°) of an isolated K…(benzene or toluene) unit is almost 80 kJ mol−1 (see calculated value in Table 1, entry 5); the energy is reduced by about 40% when the ring is bound to the neutral
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Published 02 Aug 2019

Host–guest interactions between p-sulfonatocalix[4]arene and p-sulfonatothiacalix[4]arene and group IA, IIA and f-block metal cations: a DFT/SMD study

  • Valya K. Nikolova,
  • Cristina V. Kirkova,
  • Silvia E. Angelova and
  • Todor M. Dudev

Beilstein J. Org. Chem. 2019, 15, 1321–1330, doi:10.3762/bjoc.15.131

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  • anchoring points for the positively charged guests. Cationπ interactions between the monoatomic cations and p-sulfonatocalix[4]arene in water are supposed (but not proven) to take part in the inclusion complex formation [31]. Mendes et al. have carried out molecular dynamics (MD) simulations of association
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Published 17 Jun 2019

Recent advances in hypervalent iodine(III)-catalyzed functionalization of alkenes

  • Xiang Li,
  • Pinhong Chen and
  • Guosheng Liu

Beilstein J. Org. Chem. 2018, 14, 1813–1825, doi:10.3762/bjoc.14.154

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  • enantioselectivity (52 vs 53). Moreover, the more electron-deficient 3,4,5-trifluorophenyl analog 54 was found to be less enantioselective. The authors proposed that the benzylic groups can stabilize the cationic intermediates and/or transition states through cationπ interactions, which play an important role in
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Published 18 Jul 2018

A conformationally adaptive macrocycle: conformational complexity and host–guest chemistry of zorb[4]arene

  • Liu-Pan Yang,
  • Song-Bo Lu,
  • Arto Valkonen,
  • Fangfang Pan,
  • Kari Rissanen and
  • Wei Jiang

Beilstein J. Org. Chem. 2018, 14, 1570–1577, doi:10.3762/bjoc.14.134

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  • large amplitude conformational responses to the electronic substituents on the guests. Instead of a linear free-energy relationship, ZB4 follows a parabolic free-energy relationship. This is explained by invoking the influence of secondary C–H···O hydrogen bonds on the primary cation···π interactions
  • structures may provide an explanation for their surprising binding behaviors. Multiple non-covalent interactions, including C–H···O hydrogen bonds, cation···π, C–H···π and π···π interactions, are involved in all the cases. Undoubtedly, cation···π interactions between the core quaternary ammonium ions of the
  • the substituents to leverage the primary cation···π interactions and thus the final binding affinities. This may explain the parabolic distribution of binding affinities over the Hammett parameters (σp) of the substituents as shown in Figure 2. The conformational adaptivity or flexibility allows ZB4
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Published 27 Jun 2018

A detailed view on 1,8-cineol biosynthesis by Streptomyces clavuligerus

  • Jan Rinkel,
  • Patrick Rabe,
  • Laura zur Horst and
  • Jeroen S. Dickschat

Beilstein J. Org. Chem. 2016, 12, 2317–2324, doi:10.3762/bjoc.12.225

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  • involved in the stabilisation of cationic intermediates, e.g., by cationπ interactions [8][9][10]. The overall process usually generates an enantiomerically pure (poly)cyclic terpene with several stereogenic centres. A large variety of carbon skeletons is accessible, e g., more than 120 skeletons each
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Published 04 Nov 2016

From supramolecular chemistry to the nucleosome: studies in biomolecular recognition

  • Marcey L. Waters

Beilstein J. Org. Chem. 2016, 12, 1863–1869, doi:10.3762/bjoc.12.175

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  • -helices; aromatic interactions; β-hairpin peptides; cationπ interactions; dynamic combinatorial chemistry; histone; molecular recognition in water; nucleosome; π–π-stacking; post-translational modification; supramolecular chemistry; Review Childhood influences When thinking about how to start writing
  • Dennis Dougherty’s work on cationπ interactions (Figure 3a) [2]. Thus, while at the time I was intent on studying organometallic chemistry, my interest in supramolecular chemistry increased the more I read through graduate school, and particularly molecular recognition in aqueous solution, which I
  • postdoc. Seminal work probing the electrostatic component of π–π stacking and edge-face aromatic interactions as well as cationπ interactions was being published at the time, as well as tantalizing suggestions about their relevance in biological structure and function. In particular, I was inspired by
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Published 17 Aug 2016

My maize and blue brick road to physical organic chemistry in materials

  • Anne J. McNeil

Beilstein J. Org. Chem. 2016, 12, 229–238, doi:10.3762/bjoc.12.24

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  • , might be gelators. We searched the CSD for molecules containing a mercury atom (Hg2+) that was involved in an intermolecular cation–π interaction [28]. We identified molecule 2a, which exhibited 1D π–cationπ interactions in the solid state (Figure 3). Graduate student Kelsey (King) Carter synthesized
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Published 08 Feb 2016

An overview of the synthetic routes to the best selling drugs containing 6-membered heterocycles

  • Marcus Baumann and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2013, 9, 2265–2319, doi:10.3762/bjoc.9.265

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  • aromatic amino acid residues, Tyr652 and Phe656, that are located in an exposed area within the S6 domain pointing towards the possibility of cation π-interactions explaining the affinity of drugs containing tertiary amines towards hERG channels. Consequently, careful and early-stage examination of hERG
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Published 30 Oct 2013

Anion–π interactions influence pKa values

  • Christopher J. Cadman and
  • Anna K. Croft

Beilstein J. Org. Chem. 2011, 7, 320–328, doi:10.3762/bjoc.7.42

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  • suggest that these interactions can be further enhanced through co-operative interactions [19][20]. In addition to guiding binding interactions, aromatic groups are also able to direct reaction outcomes. This has been well established in the field of cationπ interactions, where early experiments by Cram
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Published 17 Mar 2011

Molecular recognition of organic ammonium ions in solution using synthetic receptors

  • Andreas Späth and
  • Burkhard König

Beilstein J. Org. Chem. 2010, 6, No. 32, doi:10.3762/bjoc.6.32

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  • develop synthetic receptors for their selective molecular recognition. The type of host compounds for organic ammonium ion binding span a wide range from crown ethers to calixarenes to metal complexes. Typical intermolecular interactions are hydrogen bonds, electrostatic and cationπ interactions
  • are used to enhance further the binding and selectivity with a binding mechanism that can be understood on the combined efforts of several non-covalent interactions such as hydrogen bonding, electrostatic interactions, hydrophobic interactions [20][21][22], cationπ interactions, π–π staking
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Published 06 Apr 2010
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