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Search for "peroxidation" in Full Text gives 18 result(s) in Beilstein Journal of Organic Chemistry.

Multicomponent reactions driving the discovery and optimization of agents targeting central nervous system pathologies

  • Lucía Campos-Prieto,
  • Aitor García-Rey,
  • Eddy Sotelo and
  • Ana Mallo-Abreu

Beilstein J. Org. Chem. 2024, 20, 3151–3173, doi:10.3762/bjoc.20.261

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  • biomolecules like DNA and lipids. Lipid peroxidation and membrane disruption can cause random cross-linking, resulting in cell death and the fragmentation of proteins and enzymes. Elevated concentrations of reactive oxygen species (ROS) from various molecular processes contribute to the oxidation of proteins
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Published 03 Dec 2024

Advances in radical peroxidation with hydroperoxides

  • Oleg V. Bityukov,
  • Pavel Yu. Serdyuchenko,
  • Andrey S. Kirillov,
  • Gennady I. Nikishin,
  • Vera A. Vil’ and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2024, 20, 2959–3006, doi:10.3762/bjoc.20.249

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  • Kharasch–Sosnovsky peroxidation became the basic universal platform for the development of peroxidation methods, with its great potential for rapid generation of complexity due to the ability to couple the resulting free radicals with a wide range of partners. This review discusses the recent advances in
  • the radical Kharasch-type functionalization of organic molecules with OOR fragment including free-component radical couplings. The discussion has been structured by the type of the substrate of radical peroxidation: C(sp3)–H substrates; aromatic systems; compounds with unsaturated C–C or C–Het bonds
  • . Keywords: C–H functionalization; oxidation; peroxidation; radical reactions; TBHP; Introduction Organic peroxides are used in many different areas of human activities. The traditional and most developed field is the use of peroxides as initiators in the polymerization process for the production of a wide
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Published 18 Nov 2024

Synthesis, electrochemical properties, and antioxidant activity of sterically hindered catechols with 1,3,4-oxadiazole, 1,2,4-triazole, thiazole or pyridine fragments

  • Daria A. Burmistrova,
  • Andrey Galustyan,
  • Nadezhda P. Pomortseva,
  • Kristina D. Pashaeva,
  • Maxim V. Arsenyev,
  • Oleg P. Demidov,
  • Mikhail A. Kiskin,
  • Andrey I. Poddel’sky,
  • Nadezhda T. Berberova and
  • Ivan V. Smolyaninov

Beilstein J. Org. Chem. 2024, 20, 2378–2391, doi:10.3762/bjoc.20.202

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  • antioxidant properties were determined using the reaction with synthetic radicals, the cupric reducing antioxidant capacity assay, the inhibition process of superoxide radical anion formation by xanthine oxidase, and the process of lipid peroxidation of rat liver (Wistar) homogenates in vitro. Keywords
  • -thiazolyl (34.0 ± 0.10 μM). Compound 1 was the least effective in this test (81.10 ± 1.86 μM) as in the case of the methods described above. We have previously shown that catechol thioethers can act as anti- or prooxidants on lipid peroxidation processes in vitro depending on a functional group or a
  • heterocycle substitute at the sulfur atom [49][50][54]. Non-enzymatic process of the rat (Wistar) liver homogenate lipid peroxidation (LP) in the presence of additives of target compounds 1–9 was studied in vitro. The concentration of the carbonyl compounds forming in the reaction of the lipid peroxidation
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Published 19 Sep 2024

Allostreptopyrroles A–E, β-alkylpyrrole derivatives from an actinomycete Allostreptomyces sp. RD068384

  • Marwa Elsbaey,
  • Naoya Oku,
  • Mohamed S. A. Abdel-Mottaleb and
  • Yasuhiro Igarashi

Beilstein J. Org. Chem. 2024, 20, 1981–1987, doi:10.3762/bjoc.20.174

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  • substitution patterns are different (Figure 1). Natural alkylpyrroles were shown to have cytotoxicity [27], antidiabetic activity [28], anti-lipid peroxidation [12], in vivo antihypoxic activity [12], and antibacterial activity [15]. Though not impressive in cytotoxicity and tyrosinase-inhibitory evaluations
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Published 13 Aug 2024

Oxime radicals: generation, properties and application in organic synthesis

  • Igor B. Krylov,
  • Stanislav A. Paveliev,
  • Alexander S. Budnikov and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2020, 16, 1234–1276, doi:10.3762/bjoc.16.107

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  • Kharash peroxidation of 1,3-dicarbonyl compounds [88][89][90][91][92][93] did not occur, and a selective formation of the C–O product with oximes was observed. Benzylmalononitrile (47) was introduced into the oxidative C–O coupling with diacetyl oxime (19) analogously to 1,3-dicarbonyl compounds [46], but
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Published 05 Jun 2020

Synthesis of naturally-derived macromolecules through simplified electrochemically mediated ATRP

  • Paweł Chmielarz,
  • Tomasz Pacześniak,
  • Katarzyna Rydel-Ciszek,
  • Izabela Zaborniak,
  • Paulina Biedka and
  • Andrzej Sobkowiak

Beilstein J. Org. Chem. 2017, 13, 2466–2472, doi:10.3762/bjoc.13.243

Graphical Abstract
  • ions [27]. Quercetin inhibits xanthine oxidase [27][28][29], inhibits lipid peroxidation in vitro [27][28][30], and scavenges oxygen radicals [27][28][31][32][33]. There is a tremendous importance of this antioxidant in the prevention of a range of cardiovascular diseases [27][34][35], cancer [26][27
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Published 20 Nov 2017

Difunctionalization of alkenes with iodine and tert-butyl hydroperoxide (TBHP) at room temperature for the synthesis of 1-(tert-butylperoxy)-2-iodoethanes

  • Hao Wang,
  • Cui Chen,
  • Weibing Liu and
  • Zhibo Zhu

Beilstein J. Org. Chem. 2017, 13, 2023–2027, doi:10.3762/bjoc.13.200

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  • , Maoming 525000, P. R. China. Fax: +86-668-2923575; Tel: +86-668-2923956 10.3762/bjoc.13.200 Abstract We developed a direct vicinal difunctionalization of alkenes with iodine and TBHP at room temperature. This iodination and peroxidation in a one-pot synthesis produces 1-(tert-butylperoxy)-2-iodoethanes
  • applications and allow further chemical modifications, enabling the preparation of synthetically valuable molecules. Keywords: difunctionalization of alkenesiodine; iodination–peroxidation reaction; TBHP; Introduction Alkenes have attracted considerable interest in recent years as abundant, simple chemical
  • dioxygenation [10][11], dihydroxylation [10][12], bisperoxidation [13], oxyamidation [14], aminohydroxylation [15], oxyphosphorylation [16], deamination [17] and carbonylation–peroxidation [18]. Several very recent reports have pertained to metal-free catalysts for difunctionalization of alkenes such as UV
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Published 28 Sep 2017

Use of costic acid, a natural extract from Dittrichia viscosa, for the control of Varroa destructor, a parasite of the European honey bee

  • Kalliopi Sofou,
  • Demosthenis Isaakidis,
  • Apostolos Spyros,
  • Anita Büttner,
  • Athanassios Giannis and
  • Haralambos E. Katerinopoulos

Beilstein J. Org. Chem. 2017, 13, 952–959, doi:10.3762/bjoc.13.96

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  • essential oil were found active against Staphylococcus epidermidis, Streptococcus foecalis and Proteus vulgaris [36]. The methanol extract of the aerial parts of the plant showed antioxidant activity in a study on lipid peroxidation of rat liver microsomes [30]. n-Hexane extracts from air dried D. viscosa
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Published 18 May 2017

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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  • [324] to synthesize hydroperoxides through the peroxidation of tertiary alcohols in the presence of a catalytic amount of acid. The treatment of 185 with H2O2 in the presence of a catalytic amount of H2SO4 for 72 hours did not lead to the formation of products via the Hock rearrangement of
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Published 03 Aug 2016

Biradical vs singlet oxygen photogeneration in suprofen–cholesterol systems

  • Fabrizio Palumbo,
  • Francisco Bosca,
  • Isabel M. Morera,
  • Inmaculada Andreu and
  • Miguel A. Miranda

Beilstein J. Org. Chem. 2016, 12, 1196–1202, doi:10.3762/bjoc.12.115

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  • singlet oxygen, thus being able to initiate Ch oxidation from their triplet excited states following either of the two competing mechanistic pathways. Keywords: aryl ketones; hydrogen abstraction; lipid peroxidation; photoproducts; triplet excited state; Introduction Among the constituents of cell
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Published 14 Jun 2016

A concise and efficient synthesis of benzimidazo[1,2-c]quinazolines through CuI-catalyzed intramolecular N-arylations

  • Xinlong Pang,
  • Chao Chen,
  • Ming Li and
  • Chanjuan Xi

Beilstein J. Org. Chem. 2015, 11, 2365–2369, doi:10.3762/bjoc.11.258

Graphical Abstract
  • ]quinazolines were intensively investigated and promising biological activities were observed, such as anticancer, antiviral, antimicrobial, anti-inflammatory and anticonvulsant [3][4][5]. Indeed, some of them are already used as antimicrobial agents and lipid peroxidation inhibitors [6]. Consequently, the
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Published 30 Nov 2015

Natural phenolic metabolites with anti-angiogenic properties – a review from the chemical point of view

  • Qiu Sun,
  • Jörg Heilmann and
  • Burkhard König

Beilstein J. Org. Chem. 2015, 11, 249–264, doi:10.3762/bjoc.11.28

Graphical Abstract
  • . L., Rosaceae) and pomegranates (Punica granatum L., Lythraceae). It shows potent antioxidant effects by radical scavenging and the inhibition of lipid peroxidation [28][29]. Ellagic acid is also capable of interfering with some angiogenesis-dependent pathways. It exhibits anticarcinogenic activity
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Published 16 Feb 2015

Cross-dehydrogenative coupling for the intermolecular C–O bond formation

  • Igor B. Krylov,
  • Vera A. Vil’ and
  • Alexander O. Terent’ev

Beilstein J. Org. Chem. 2015, 11, 92–146, doi:10.3762/bjoc.11.13

Graphical Abstract
  • or their hetero analogues, as well as for the generation of tert-butyl peroxide radicals, which react with this complex to give coupling products 214 (Scheme 44). The related peroxidation reactions with hydroperoxides (t-BuOOH, PhMe2COOH) in the presence of transition metal salts (cobalt, manganese
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Published 20 Jan 2015

Recent applications of the divinylcyclopropane–cycloheptadiene rearrangement in organic synthesis

  • Sebastian Krüger and
  • Tanja Gaich

Beilstein J. Org. Chem. 2014, 10, 163–193, doi:10.3762/bjoc.10.14

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  • 16. Biosynthetic applications The DVCPR has been shown to be part of the biosynthesis of ectocarpene (21, see Scheme 4) [29], an inactivated algae pheromone [30][31]. Starting from all-cis-pentaenic acid (18) peroxidation is supposed to take place to give 19, followed by formation of the active algae
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Published 16 Jan 2014

Synthesis and biological activity of N-substituted-tetrahydro-γ-carbolines containing peptide residues

  • Nadezhda V. Sokolova,
  • Valentine G. Nenajdenko,
  • Vladimir B. Sokolov,
  • Daria V. Vinogradova,
  • Elena F. Shevtsova,
  • Ludmila G. Dubova and
  • Sergey O. Bachurin

Beilstein J. Org. Chem. 2014, 10, 155–162, doi:10.3762/bjoc.10.13

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  • autooxidation and the t-BHP-induced lipid peroxidation. Keywords: mitochondrial membrane potential; mitochondrial permeability transition; multicomponent; peptides; tetrahydro-γ-carbolines; Ugi multicomponent reaction; Introduction The design and synthesis of new efficient pharmaceutical drugs for the
  • ] (Figure 1). These peptides were found to scavenge hydrogen peroxide and peroxynitrite and inhibit lipid peroxidation in vitro. By reducing mitochondrial reactive oxygen species, they inhibit MPT and cytochrome c release, thus protecting cells from oxidative cell death [11]. We expected that the
  • membrane potential, mitochondrial permeability transition and lipid peroxidation. Results and Discussion The starting N-substituted tetrahydro-γ-carbolines 3a–d containing a terminal alkyne group were prepared in good yields by heating compounds 1a–d [12][13] with propargyl acrylate (2) in the presence of
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Published 15 Jan 2014

Synthesis of five- and six-membered cyclic organic peroxides: Key transformations into peroxide ring-retaining products

  • Alexander O. Terent'ev,
  • Dmitry A. Borisov,
  • Vera A. Vil’ and
  • Valery M. Dembitsky

Beilstein J. Org. Chem. 2014, 10, 34–114, doi:10.3762/bjoc.10.6

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  • performed at 23 °С in glacial acetic acid in air; the 37/acetylacetone/Mn(OAc)3 molar ratio was 1/10/10. The reaction gave oxiranes 39 as by-products, which can also be synthesized in quantitative yields by the treatment of dioxolanes 38 with silica gel in methanol [245]. 1.2. Peroxidation of alkenes with
  • reaction products were separated by column chromatography. 1-Hydroxy-1-phenylpentan-3-one (42) was isolated as a by-product in 16% yield [248]. The peroxidation of 1,4-dienes 43a,b with the Co(modp)2/Et3SiH/O2 system according to a similar reaction scheme gave dioxolanes 44a,b. Acetophenone (45) was
  • -allyl-3-methyl-5-pentyl-1,2-dioxolane (136) in 47% yield (Scheme 31) [261]. The asymmetric peroxidation of methyl vinyl ketones 137a–e with 9-amino-9-deoxyepiquinine 138 and CCl3COOH afforded hydroxydioxolanes 139a–e with high enantiomeric excess (ee 94–95%) (Scheme 32) [262]. The Kobayashi synthesis of
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Published 08 Jan 2014

3-Pyridinols and 5-pyrimidinols: Tailor-made for use in synergistic radical-trapping co-antioxidant systems

  • Luca Valgimigli,
  • Daniele Bartolomei,
  • Riccardo Amorati,
  • Evan Haidasz,
  • Jason J. Hanthorn,
  • Susheel J. Nara,
  • Johan Brinkhorst and
  • Derek A. Pratt

Beilstein J. Org. Chem. 2013, 9, 2781–2792, doi:10.3762/bjoc.9.313

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  • mediated peroxidation’ (TMP), which occurs when α-tocopherol (the most biologically active form of vitamin E) is left alone to protect the lipid core of low-density lipoproteins (LDL). LDL is the particle responsible for the distribution of cholesterol in blood plasma and whose oxidation has been linked to
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Published 04 Dec 2013

Metal-free aerobic oxidations mediated by N-hydroxyphthalimide. A concise review

  • Lucio Melone and
  • Carlo Punta

Beilstein J. Org. Chem. 2013, 9, 1296–1310, doi:10.3762/bjoc.9.146

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  • selectivity (72%). An analogous catalytic system was employed by Punta et al. [19] for the selective peroxidation of polyunsaturated fatty acids (PUFA), a transformation of high biological interest [20]. The combination of N-methylbenzohydroxamic acid (NMBHA) with 2,2’-azobis(4-methoxy-2,4
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Published 02 Jul 2013
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