Chen, Ziren’s team published research in Organic Letters in 2022-05-06 | 3893-18-3

Organic Letters published new progress about Benzimidazoles Role: RCT (Reactant), RACT (Reactant or Reagent). 3893-18-3 belongs to class bromides-buliding-blocks, and the molecular formula is C9H7BrO, Name: 3-(4-Bromophenyl)acrylaldehyde.

Chen, Ziren; Xue, Fei; Zhang, Yonghong; Jin, Weiwei; Wang, Bin; Xia, Yu; Xie, Mengwei; Abdukader, Ablimit; Liu, Chenjiang published the artcile< Visible-Light-Promoted [3 + 2] Cyclization of Chalcones with 2-Mercaptobenzimidazoles: A Protocol for the Synthesis of Imidazo[2,1-b]thiazoles>, Name: 3-(4-Bromophenyl)acrylaldehyde, the main research area is imidazothiazole preparation photochem; chalcone mercaptobenzimidazole heterocyclization.

A visible-light-promoted [3+2] cyclization between chalcones R 1CH=CHC(O)R2 (R1 = Ph, thiophen-2-yl, naphthalen-2-yl, etc.; R2 = H, Ph, thiophen-2-yl, naphthalen-1-yl, etc.) and 2-mercaptobenzoimidazoles I (R3 = R4 = H, Me, OMe, Cl) for the construction of diverse imidazo[2,1-b]thiazoles II and III, IV via an electron-donor-acceptor (EDA) complex has been developed. This novel aminothiolation can be realized under only visible light irradiation without the aid of external photocatalysts, transition metals, and oxidants. Mechanistic investigations have revealed that the thiol anions and chalcones form EDA complexes, providing a novel strategy for the synthesis of imidazo[2,1-b]thiazoles II, III, and IV.

Organic Letters published new progress about Benzimidazoles Role: RCT (Reactant), RACT (Reactant or Reagent). 3893-18-3 belongs to class bromides-buliding-blocks, and the molecular formula is C9H7BrO, Name: 3-(4-Bromophenyl)acrylaldehyde.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Dewar, Michael J S’s team published research in Journal of the American Chemical Society in 1963 | 82-73-5

Journal of the American Chemical Society published new progress about Entropy. 82-73-5 belongs to class bromides-buliding-blocks, and the molecular formula is C8H3BrO3, Name: 4-Bromoisobenzofuran-1,3-dione.

Dewar, Michael J. S.; Poesche, Werner H. published the artcile< New heteroaromatic compounds. XVIII. Boron-containing analogs of benz[a]anthracene>, Name: 4-Bromoisobenzofuran-1,3-dione, the main research area is .

The amines, 2,3-Ph(H2N)C10H6 (I) and 2-(2-H2NC6H4)C10H7 (II) on treatment with BCl3 and a catalytic amount of AlCl3 in boiling xylene gave the corresponding chloroborazarobenz[a]anthracenes (III, R = Cl) (IV) and (V, R = Cl) (VI). NaNO2 (55 ml., 2M) in concentrated H2SO4 stirred below 25° with addition of 18.8 g. 3,2-O2N(H2N)C10H6 in 670 ml. AcOH (boiled and cooled rapidly to 20°) and the mixture kept 15 min., added with stirring to 38 g. CuBr in 200 ml. 48% HBr and kept overnight, and diluted with H2O yielded 54% 3,2-Br(O2N)C10H6, m. 79-80°. The compound (20.8 g.) and 55 g. PhI stirred 36 hrs. at 110° with 31.8 g. Cu bronze yielded 74% 3,2-Ph(O2N)C10H6 (VII), m. 96.0-6.8° (MeOH). VII (6.0 g.) and 0.2 g. 10% Pd-C in 230 ml. boiling alc. treated gradually with 20 ml. N2H4.H2O and kept 1 hr. yielded quant. I, m. 82.7-3.5° (90% MeOH). I (10 g.) in 160 ml. dry xylene added (N atm.) slowly to 7.0 g. BCl3 in 45 ml. ice-cold xylene and the mixture treated with 0.2 g. AlCl3, the mixture heated to 140° in 4 hrs. and the temperature maintained 16 hrs., cooled and taken up in 750 ml. 2:1 Et2O-C6H6, the H2O-washed and dried (MgSO4) solution evaporated on a steam bath and the residue taken up in 500 ml. hot MeOH, the solution concentrated and kept at -15°, the product recovered from hot MeOH and the purified material (4.2 g.) recrystallized using an efficient dry box gave III (R = OMe) (VIII), m. 159° (evacuated capillary). The mother liquors gave 0.85 g. III (R = 1/2 O), C32H22B2N2O, m. 322°. VIII (1.3 g.) in 40 ml. dry Et2O stirred (H2O-free atm.) at 0° with addition of 12.5 ml. 0.6M MeMgBr and the mixture stirred 24 hrs. with rise of temperature to 20, the filtered solution evaporated and the residue sublimed at 150°/0.005 mm. gave III (R = Me) (VIIIa), m. 160.0-1.3° (petr. ether, b. 60-8°). LiAlH4 (1.35 millimoles) added to 3.86 millimoles VIII in 40 ml. dry Et2O and the mixture refluxed 2 hrs. with 0.45 millimole AlCl3 gave 5,6-borazarobenz[a]anthracene (III, R = H) (IX), m. 139° (decomposition). Cu bronze (46.5 g.), 65.0 g. 2-IC10H7, and 56.0 g. 1,2-Br(O2N)C6H4 stirred 40 hrs. at 110° gave 60% 2-(o-O2NC6H4)C10H7 (X), m. 101° (MeOH). X (9.0 g.) in 450 ml. alc. hydrogenated at 20° and 30 lb./in.2 with 0.3 g. 10% Pd-C and the filtered solution concentrated gave 6.0g. II, m. 95-7°. X (32 g.) and 1.0 g. 10% Pd-C refluxed 1 hr. in 1400 ml. alc. with gradual addition of 45 ml. N2H4.H2C and the filtered solution concentrated gave 22 g. II. II (22.0 g.) in 350 ml. dry xylene added slowly with stirring to 13.0 g. BCl3 in 100 ml. ice-cold xylene and the mixture heated 4 hrs. at 140° with 0.5 g. AlCl3 and stirred 16 hrs. at 140° gave 10.4 g. V (R = 1/2 O) (XI), m. 261-4°, recrystallized from PhMe(C) to give an analytical sample, m. 275.5°. Further concentration of the mother liquors gave a 2nd crop of XI (4.8 g., m. 264-5°), and evaporation of the filtrate yielded 8.6 g. residue (XII), m. 225-47°. The ether XI (12.7 g.) taken up in 500 ml. hot absolute MeOH and concentrated to 350 ml., cooled and the product (10.5 g., m. 174-6°) recrystallized from MeOH (C) gave V (R = OMe) (XIII), m. 183-4° (evacuated capillary). The filtrate evaporated and the residue combined with XII, the mixture recrystallized from absolute MeOH to give 4.80 g. XIII, and the filtrate evaporated in vacuo gave a dark brown oil with an ultraviolet spectrum identical with that of XIII and containing no other bands. XIII (2.6 g.) stirred at 20° in 100 ml. dry Et2O with dropwise addition of 15 ml. M MeMgBr in Et2O and the mixture stirred 2 hrs., the filtered solution diluted with moist Et2O and shaken with H2O, the organic layer dried over CaCl2 and evaporated yielded 87% product, m. 136-40°, sublimed at 120°/0.1 mm. to give V (R = Me) (XIV), m. 141-3°. XIII (1.00 g.) stirred at 0° in 30 ml. dry Et2O with gradual addition of 1.00 millimole LiAlH4 (standardized Et2O solution) and the mixture refluxed 2 hrs. with 0.04 g. AlCl3, the filtered solution evaporated and the residue sublimed at 120°/0.005 mm. gave 65% V (R = H) (XV), m. 136.5-7.0° (decomposition). XIII (2.0 g.) in 20 ml. hot AcOH treated with 10 ml. concentrated HCl and the mixture cooled quickly to 5°, diazotized with 0.60 g. NaNO2 in a min. of H2O and kept 2 hrs., added with stirring to 300 ml. boiling H2O and the mixture boiled 30 min., kept overnight and the precipitate recrystallized twice from PhMe(C) gave 64% 6-hydroxy-6,5-boroxarobenz[a]-anthracene (XVI), m. 279.5-81.0°. The cyclization of II to V rather than to a borazachrysene illustrated very clearly the large steric requirements of the Friedel-Crafts reaction. The charge transfer spectra of the complexes formed by III and V with tetracyanoethylene (XVII) were determined in CHCl3. No difficulty was encountered with the Me or MeO derivatives, VIII, VIIIa, XIII, or XIV, all of which gave stable colorations with XVII, but the parent compounds, IX and XV, reacted rapidly with the acceptor. XV in CHCl3 and XVII in CHCl3 initially gave a green mixture rapidly changing to violet before fading and forming a white precipitate The ultraviolet spectrum of the final colorless solution was identical with that of XIII, suggesting that EtOH in the CHCl3 was forming V (R = OEt) and precipitating (NC)2CHCH(CN)2. The wave lengths of the charge transfer spectra of XVII complexes are given (compound and wave lengths of charge transfer band in A given): IX, 614; VIII, 627; VIIIa, 620; XV, 690, 477; XIII, 701, 500; XIV, 704, 486. The π-electron distribution in these compounds is probably too uneven for first-order perturbation theory to be applicable. The ultra violet spectra of IX and XV in methylcyclohexane and alc.-free CHCl3, and of VIII, XIII, VIIIa, and XIV in CHCl3 were tabulated with the spectrum of benz[a]anthracene (XVIII) in methylcyclohexane listed for comparison. The estimated band maximum (mμ of π-π transitions in methyl cyclohexane for XVIII, IX, and XV were tabulated. The spectra of IX and XV are very similar to that of XVIII, the main difference being an increase in intensity of the α-bands in the hetero aromatics, in accordance with theory.

Journal of the American Chemical Society published new progress about Entropy. 82-73-5 belongs to class bromides-buliding-blocks, and the molecular formula is C8H3BrO3, Name: 4-Bromoisobenzofuran-1,3-dione.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Kurppa, Kari J’s team published research in Cancer Cell in 2020-01-13 | 401-78-5

Cancer Cell published new progress about Aging, animal. 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Recommanded Product: 3-Bromobenzotrifluoride.

Kurppa, Kari J.; Liu, Yao; To, Ciric; Zhang, Tinghu; Fan, Mengyang; Vajdi, Amir; Knelson, Erik H.; Xie, Yingtian; Lim, Klothilda; Cejas, Paloma; Portell, Andrew; Lizotte, Patrick H.; Ficarro, Scott B.; Li, Shuai; Chen, Ting; Haikala, Heidi M.; Wang, Haiyun; Bahcall, Magda; Gao, Yang; Shalhout, Sophia; Boettcher, Steffen; Shin, Bo Hee; Thai, Tran; Wilkens, Margaret K.; Tillgren, Michelle L.; Mushajiang, Mierzhati; Xu, Man; Choi, Jihyun; Bertram, Arrien A.; Ebert, Benjamin L.; Beroukhim, Rameen; Bandopadhayay, Pratiti; Awad, Mark M.; Gokhale, Prafulla C.; Kirschmeier, Paul T.; Marto, Jarrod A.; Camargo, Fernando D.; Haq, Rizwan; Paweletz, Cloud P.; Wong, Kwok-Kin; Barbie, David A.; Long, Henry W.; Gray, Nathanael S.; Janne, Pasi A. published the artcile< Treatment-Induced Tumor Dormancy through YAP-Mediated Transcriptional Reprogramming of the Apoptotic Pathway>, Recommanded Product: 3-Bromobenzotrifluoride, the main research area is tumor dormancy YAP transcriptional reprogramming apoptotic pathway; YAP; dormancy; drug resistance; drug tolerance; epidermal growth factor receptor; lung cancer; senescence.

Eradicating tumor dormancy that develops following epidermal growth factor receptor (EGFR) tyrosine kinase inhibitor (TKI) treatment of EGFR-mutant non-small cell lung cancer, is an attractive therapeutic strategy but the mechanisms governing this process are poorly understood. Blockade of ERK1/2 reactivation following EGFR TKI treatment by combined EGFR/MEK inhibition uncovers cells that survive by entering a senescence-like dormant state characterized by high YAP/TEAD activity. YAP/TEAD engage the epithelial-to-mesenchymal transition transcription factor SLUG to directly repress pro-apoptotic BMF, limiting drug-induced apoptosis. Pharmacol. co-inhibition of YAP and TEAD, or genetic deletion of YAP1, all deplete dormant cells by enhancing EGFR/MEK inhibition-induced apoptosis. Enhancing the initial efficacy of targeted therapies could ultimately lead to prolonged treatment responses in cancer patients.

Cancer Cell published new progress about Aging, animal. 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Recommanded Product: 3-Bromobenzotrifluoride.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Sun, Wenhao’s team published research in Science Bulletin in 2022-01-31 | 3959-07-7

Science Bulletin published new progress about Aromatic amines Role: RCT (Reactant), RACT (Reactant or Reagent). 3959-07-7 belongs to class bromides-buliding-blocks, and the molecular formula is C7H8BrN, Product Details of C7H8BrN.

Sun, Wenhao; Xiang, Yonggang; Jiang, Zhihui; Wang, Shengyao; Yang, Nan; Jin, Shangbin; Sun, Linhao; Teng, Huailong; Chen, Hao published the artcile< Designed polymeric conjugation motivates tunable activation of molecular oxygen in heterogeneous organic photosynthesis>, Product Details of C7H8BrN, the main research area is thioether photocatalyst oxidation; sulfoxide preparation; aryl methanamine photocatalyst oxidative coupling reaction; diaryl azapropene preparation.

Herein, the first identification of tunable mol. oxygen activation induced by polymeric conjugation in nonmetallic conjugated microporous polymers (CMP) was reported. The conjugation between these can be achieved by the introduction of alkynyl groups. CMP-A with an alkynyl bridge facilitates the intramol. charge mobility while CMP-D, lacking an alkynyl group enhances the photoexcited carrier build-up on the surface from diffusion. These different processes dominate the directed ROS generation of the superoxide radical (·O-2) and singlet oxygen (1O2), resp. This theory is substantiated by the different performances of these CMPs in the aerobic oxidation of sulfides and the dehydrogenative coupling of amines, and could provide insight into the rational design of CMPs for various heterogeneous organic photosynthesis.

Science Bulletin published new progress about Aromatic amines Role: RCT (Reactant), RACT (Reactant or Reagent). 3959-07-7 belongs to class bromides-buliding-blocks, and the molecular formula is C7H8BrN, Product Details of C7H8BrN.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Parhi, Biswajit’s team published research in Journal of Organic Chemistry in 2016-06-03 | 89003-95-2

Journal of Organic Chemistry published new progress about Benzopyrans Role: RCT (Reactant), SPN (Synthetic Preparation), RACT (Reactant or Reagent), PREP (Preparation). 89003-95-2 belongs to class bromides-buliding-blocks, and the molecular formula is C8H4BrNO, Computed Properties of 89003-95-2.

Parhi, Biswajit; Gurjar, Jitendra; Pramanik, Suman; Midya, Abhisek; Ghorai, Prasanta published the artcile< Organocatalytic Enantioselective Intramolecular Oxa-Michael Reaction of Enols: Synthesis of Chiral Isochromenes>, Computed Properties of 89003-95-2, the main research area is isochromene enantioselective synthesis; oxa Michael reaction enol squaramide catalyst.

An unprecedented enantioselective intramol. oxa-Michael reaction of enols has been described. A squaramide-containing tertiary amine based bifunctional organocatalyst efficiently activates the o-homoformyl chalcones to provide the chiral isochromenes in moderate yields and good to excellent enantioselectivities. Further, late-stage functionalizations of the vinyl ether moiety of the chiral isochromene products have also been exemplified.

Journal of Organic Chemistry published new progress about Benzopyrans Role: RCT (Reactant), SPN (Synthetic Preparation), RACT (Reactant or Reagent), PREP (Preparation). 89003-95-2 belongs to class bromides-buliding-blocks, and the molecular formula is C8H4BrNO, Computed Properties of 89003-95-2.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Heinrich, Timo’s team published research in Journal of Medicinal Chemistry in 2022-07-14 | 401-78-5

Journal of Medicinal Chemistry published new progress about Fused heterocyclic compounds Role: PAC (Pharmacological Activity), PKT (Pharmacokinetics), PRP (Properties), SPN (Synthetic Preparation), THU (Therapeutic Use), BIOL (Biological Study), PREP (Preparation), USES (Uses). 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Recommanded Product: 3-Bromobenzotrifluoride.

Heinrich, Timo; Peterson, Carl; Schneider, Richard; Garg, Sakshi; Schwarz, Daniel; Gunera, Jakub; Seshire, Anita; Koetzner, Lisa; Schlesiger, Sarah; Musil, Djordje; Schilke, Heike; Doerfel, Benjamin; Diehl, Patrizia; Boepple, Pia; Lemos, Ana R.; Sousa, Pedro M. F.; Freire, Filipe; Bandeiras, Tiago M.; Carswell, Emma; Pearson, Nicholas; Sirohi, Sameer; Hooker, Mollie; Trivier, Elisabeth; Broome, Rebecca; Balsiger, Alexander; Crowden, Abigail; Dillon, Christian; Wienke, Dirk published the artcile< Optimization of TEAD P-Site Binding Fragment Hit into In Vivo Active Lead MSC-4106>, Recommanded Product: 3-Bromobenzotrifluoride, the main research area is pyrazoloindole carboxylic TEAD binding fragment hit lead.

The dysregulated Hippo pathway and, consequently, hyperactivity of the transcriptional YAP/TAZ-TEAD complexes is associated with diseases such as cancer. Prevention of YAP/TAZ-TEAD triggered gene transcription is an attractive strategy for therapeutic intervention. The deeply buried and conserved lipidation pocket (P-site) of the TEAD transcription factors is druggable. The discovery and optimization of a P-site binding fragment are described. Utilizing structure-based design, enhancement in target potency was engineered into the hit, capitalizing on the established X-ray structure of TEAD1. The efforts culminated in the optimized in vivo tool MSC-4106 (I), which exhibited desirable potency, mouse pharmacokinetic properties, and in vivo efficacy. In close correlation to compound exposure, the time- and dose-dependent downregulation of a proximal biomarker could be shown.

Journal of Medicinal Chemistry published new progress about Fused heterocyclic compounds Role: PAC (Pharmacological Activity), PKT (Pharmacokinetics), PRP (Properties), SPN (Synthetic Preparation), THU (Therapeutic Use), BIOL (Biological Study), PREP (Preparation), USES (Uses). 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Recommanded Product: 3-Bromobenzotrifluoride.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Huang, Jin’s team published research in Youji Huaxue in 2019 | 81107-97-3

Youji Huaxue published new progress about Heck reaction. 81107-97-3 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3O, Recommanded Product: 2-Bromo-4-(trifluoromethyl)phenol.

Huang, Jin; Fu, Ronghui; Jing, Linhai; Qin, Dabin; Huang, Kun; Wang, Wei published the artcile< A convenient access to 3-substituted benzofuran derivatives via palladium nanoparticles-catalyzed intramolecular Heck reaction>, Recommanded Product: 2-Bromo-4-(trifluoromethyl)phenol, the main research area is benzofuran palladium nanoparticle catalyst intramol Heck reaction.

A concise and efficiently route for the synthesis of 3-substituted benzofurans via the intramol. Heck reaction of bromoaryl 3-phenylallyl ethers has been developed. This simple and highly efficient palladium nanoparticles-catalyzed system showed good catalytic activity. The desired products were afforded in good to high yields (45%∼96%).

Youji Huaxue published new progress about Heck reaction. 81107-97-3 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3O, Recommanded Product: 2-Bromo-4-(trifluoromethyl)phenol.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Zheng, Yuanqin’s team published research in Chemistry – An Asian Journal in 2022-01-17 | 401-78-5

Chemistry – An Asian Journal published new progress about Decarboxylation. 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Computed Properties of 401-78-5.

Zheng, Yuanqin; Zhou, Yuqiao; Zhang, Yan; Deng, Pengchi; Zhao, Xiaohu; Jiang, Shichao; Du, Guangxi; Shen, Xin; Xie, Xinyu; Su, Zhishan; Yu, Zhipeng published the artcile< Water-Involved Ring-Opening of 4-Phenyl-1,2,4-triazoline-3,5-dione for ""Photo-Clicked"" Access to Carbamoyl Formazan Photoswitches In Situ>, Computed Properties of 401-78-5, the main research area is functionalized carbamoyl formazan photochem preparation DFT NBO; diarylsydnone phenyl triazolidine dione photoswitchable ring opening water promoted; Azo compounds; Diarylsydnones; Photo-ligation; Photoswitches; Umpolung.

A “”photo-click”” method that involved nitrile imine from diarylsydnone to capture diazenecarbonyl-phenyl-carbamic acid (DACPA) generated by water-promoted ring-opening of PTAD was described. DFT calculation revealed that H-bonding interactions between PTAD and water were vital to form DACPA which exhibited an umpolung effect during ligation by nature bond orbit anal. (NBO). The ultra-fast ligation resulted in carbamoyl formazans, as a unique Z <-> E photo-switchable linker on target mols., including peptide and drugs, with excellent anti-fatigue performance. This strategy was showcased to construct highly functionalized carbamoyl formazans such as I [R = H, 4-F, 4-Ph, etc.; R1 = 4-CF3, 3-CN, etc.; R2 = H, 4-F, 4-MeO, etc.] in situ for photo-pharmacol. and material studies, which also expanded chem. of PTAD in aqueous media.

Chemistry – An Asian Journal published new progress about Decarboxylation. 401-78-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrF3, Computed Properties of 401-78-5.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Pump, Eva’s team published research in Organometallics in 2014-06-09 | 16426-64-5

Organometallics published new progress about Alkenes Role: RCT (Reactant), SPN (Synthetic Preparation), RACT (Reactant or Reagent), PREP (Preparation). 16426-64-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrNO4, SDS of cas: 16426-64-5.

Pump, Eva; Poater, Albert; Zirngast, Michaela; Torvisco, Ana; Fischer, Roland; Cavallo, Luigi; Slugovc, Christian published the artcile< Impact of Electronic Modification of the Chelating Benzylidene Ligand in cis-Dichloro-Configured Second-Generation Olefin Metathesis Catalysts on Their Activity>, SDS of cas: 16426-64-5, the main research area is benzylidene ruthenium imidazolidene carbene chelating complex preparation catalyst polymerization; impact electronic modification chelating benzylidene ruthenium dichloro metathesis catalyst; configured olefin metathesis catalyst benzylidene ruthenium imidazolidene carbene complex; cis trans isomerization benzylidene ruthenium imidazolidene carbene dichloro complex; crystal mol structure benzylidene ruthenium imidazolidene carbene chelating complex.

A series of electronically modified second-generation cis-dichloro ruthenium ester chelating benzylidene complexes was prepared, characterized, and benchmarked in a typical ring-opening metathesis polymerization (ROMP) experiment The electronic tuning of the parent chelating benzylidene ligand (2-Et ester benzylidene) was achieved by substitution at the 4- and 5-positions with electron-withdrawing nitro or electron-donating methoxy groups. The effect of the electronic tuning on the cis-trans isomerization process was studied exptl. and theor. D. functional theory calculations clearly revealed the influence of electronic modification on the relative stability between the cis and trans isomers, which is decisive for the activity of the studied compounds as initiators in ROMP.

Organometallics published new progress about Alkenes Role: RCT (Reactant), SPN (Synthetic Preparation), RACT (Reactant or Reagent), PREP (Preparation). 16426-64-5 belongs to class bromides-buliding-blocks, and the molecular formula is C7H4BrNO4, SDS of cas: 16426-64-5.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary

Wang, Shengzheng’s team published research in Organic & Biomolecular Chemistry in 2018 | 3893-18-3

Organic & Biomolecular Chemistry published new progress about Aldol condensation catalysts, stereoselective. 3893-18-3 belongs to class bromides-buliding-blocks, and the molecular formula is C9H7BrO, Related Products of 3893-18-3.

Wang, Shengzheng; Chen, Shuqiang; Guo, Zhongjie; He, Shipeng; Zhang, Fan; Liu, Xueying; Chen, Weiping; Zhang, Shengyong; Sheng, Chunquan published the artcile< Synthesis of spiro-tetrahydrothiopyran-oxindoles by Michael-aldol cascade reactions: discovery of potential P53-MDM2 inhibitors with good antitumor activity>, Related Products of 3893-18-3, the main research area is spiro tetrahydrothiopyran oxindole diastereoselective preparation SAR antitumor; indolinone unsaturated aldehyde Michael aldol cascade proline catalyst.

Using proline as a catalyst, an organocatalytic Michael-aldol cascade reaction was developed for the synthesis of spiro-tetrahydrothiopyran oxindoles I [R1 = H, F, Me, Cl, Br; R2 = 2-furyl, Ph, 4-BrC6H4, etc.; R3 = Et, n-Pr, Ph, etc.] from indolinones and α,β-unsaturated aldehydes. The highly functionalized scaffold was assembled in moderate to good yields (51-78%) and excellent diastereoselectivities (>20 : 1 dr). Interestingly, the oxindoles I displayed moderate to good in vitro antitumor activities and were validated as p53-MDM2 inhibitors, which represented promising lead compounds for antitumor drug discovery.

Organic & Biomolecular Chemistry published new progress about Aldol condensation catalysts, stereoselective. 3893-18-3 belongs to class bromides-buliding-blocks, and the molecular formula is C9H7BrO, Related Products of 3893-18-3.

Referemce:
Bromide – Wikipedia,
bromide – Wiktionary