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6-bromo-1-methyl-1H-indole-3-carbaldehyde is a chemical with a specific purpose. Lookchem provides you with multiple data and supplier information of this chemical.

25055-65-6

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25055-65-6 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 25055-65-6 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 2,5,0,5 and 5 respectively; the second part has 2 digits, 6 and 5 respectively.
Calculate Digit Verification of CAS Registry Number 25055-65:
(7*2)+(6*5)+(5*0)+(4*5)+(3*5)+(2*6)+(1*5)=96
96 % 10 = 6
So 25055-65-6 is a valid CAS Registry Number.

25055-65-6Downstream Products

25055-65-6Relevant academic research and scientific papers

SUBSTITUTED 1,1'-BIPHENYL COMPOUNDS AND METHODS USING SAME

-

Page/Page column 876-877, (2021/08/13)

The present invention includes substituted 1,1'-biphenyl compounds, analogues thereof, and compositions comprising the same. In one aspect, the compounds contemplated in the invention can be used to treat, ameliorate, or prevent hepatitis B virus (HBV) and/or hepatitis D virus (HDV) infections in a patient. In another aspect, the compounds contemplated in the invention can be used to treat, ameliorate, and/or prevent cancer in a patient.

Access to Polycyclic Sulfonyl Indolines via Fe(II)-Catalyzed or UV-Driven Formal [2 + 2 + 1] Cyclization Reactions of N-((1H-indol-3-yl)methyl)propiolamides with NaHSO3

Lu, Lin,Luo, Chenguang,Peng, Hui,Jiang, Huanfeng,Lei, Ming,Yin, Biaolin

supporting information, p. 2602 - 2605 (2019/04/30)

A variety of structurally novel polycyclic sulfonyl indolines have been synthesized via FeCl2-catalyzed or UV-driven intramolecular formal [2 + 2 + 1] dearomatizing cyclization reactions of N-(1H-indol-3-yl)methyl)propiolamides with NaHSO3 in an aqueous medium. The reactions involve the formation of one C-C bond and two C-S bonds in a single step.

Visible Light-Driven C-3 Functionalization of Indoles over Conjugated Microporous Polymers

Zhang, Weijie,Tang, Juntao,Yu, Wenguang,Huang, Qiao,Fu, Yu,Kuang, Guichao,Pan, Chunyue,Yu, Guipeng

, p. 8084 - 8091 (2018/07/30)

Metal-free and heterogeneous organic photocatalysts provide an environmentally friendly alternative to traditional metal-based catalysts. This paper reports a series of carbazole-based conjugated microporous polymers (CMPs) with tunable redox potentials and explores their photocatalytic performance with regard to C-3 formylation and thiocyanation of indoles. Conjugated polymers were synthesized through FeCl3 mediated Friedel-Crafts reactions, and their redox potentials were well regulated by simply altering the nature of the core (i.e., 1,4-dibenzyl, 1,3,5-tribenzyl, or 1,3,5-triazin-2,4,6-triyl). The resulting CMPs exhibited high surface areas, visible light absorptions, and tunable semiconductor-range band gaps. With the highest oxidative capability, CMP-CSU6 derived from 1,3,5-tri(9H-carbazol-9-yl)benzene showed the highest efficiency for C-3 formylation and thiocyanation of indoles at room temperature. Notably, the as-made catalysts can be easily recovered with good retention of photocatalytic activity and reused at least five times, suggesting good recyclability. These results are significant for constructing high-performance porous polymer catalysts with tunable photoredox potentials targeting an efficient material design for catalysis.

Indole-substituted hydrazide derivatives and uses thereof

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Paragraph 0309; 0387-0390, (2018/11/03)

The invention discloses indole-substituted hydrazide derivatives and a use thereof, concretely relates to novel indole-substituted hydrazide derivatives and a medicinal composition including the abovecompounds, a use of the derivatives and the medicinal composition in the protection of nerve cells, and also relates to a method for preparing the compounds and the medicinal composition, and a use of the compounds and the medicinal composition in the preparation of drugs for treating diseases associated with glutamate excitotoxicity and oxidative stress damage or free radicals, or neurodegenerative diseases, especially the Alzheimer disease.

Aerobic transition-metal-free visible-light photoredox indole C-3 formylation reaction

Li, Xiang,Gu, Xiangyong,Li, Yongjuan,Li, Pixu

, p. 1897 - 1900 (2014/06/24)

An aerobic visible-light-promoted indole C-3 formylation reaction catalyzed by Rose Bengal has been developed. This transition-metal-free process employs molecular oxygen as the terminal oxidant and uses TMEDA as the one-carbon source through C-N bond cleavage. The reaction is compatible with a variety of functional groups.

The ammonium-promoted formylation of indoles by DMSO and H2O

Fei, Haiyang,Yu, Jintao,Jiang, Yan,Guo, Huan,Cheng, Jiang

supporting information, p. 7092 - 7095 (2013/10/22)

DMSO and H2O is an efficient combination in the NH 4OAc-promoted formylation of indole, where DMSO serves as a C1 carbon source. The mechanism study reveals that the procedure involves a usual and unusual Pummerer reaction.

Synthesis of Novel Indolyl-1,2,4-triazoles as Potent and Selective Anticancer Agents

Kumar, Dalip,Narayanam, Maruthi Kumar,Chang, Kuei-Hua,Shah, Kavita

scheme or table, p. 182 - 188 (2012/01/03)

A diverse series of 22 indolyl-1,2,4-triazole congeners (6 and 7) have been synthesized from the reaction of indole-3-carbonitrile (4) or (5) with appropriate acid hydrazides in the presence of potassium carbonate. Synthesized compounds were evaluated for their cytotoxicity against six human cancer cell lines, and some of the compounds displayed promising activity. In particular, 3-(3',4',5'-trimethoxyphenyl)-5-(N-methyl-3'-indolyl)-1,2,4-triazole (7i) and 3-(4'-piperidinyl)-5-(N-methyl-3'-indolyl)-1,2,4-triazole (7n) were the most promising and broadly active compounds against the tested cell lines. It was interesting to note that the trimethoxyphenyl analog 7i showed twofold selective cytotoxicity against PaCa2 cell line (IC50 0.8μm), whereas piperidinyl analog 7n was found to be selectively cytotoxic against MCF7 cell line (IC50 1.6μm). Notably, the 4-fluorophenyl derivative 7c exhibited selective cytotoxicity against PC3 cell line (IC50 4μm). The structure-activity relationship study revealed that substituents including 3,4,5-trimethoxyphenyl, 3,4-dimethoxyphenyl, 4-benzyloxy-3-methoxyphenyl, 4-piperidinyl, 4-fluorophenyl and N-methylindole are beneficial for the activity of indolyl-1,2,4-triazoles (6 and 7).

Structure-activity relationship for bromoindole carbaldehydes: Effects on the sea urchin embryo cell cycle

Moubax, Isabelle,Bontemps-Subielos, Nathalie,Banaigs, Bernard,Combaut, Georges,Huitorel, Philippe,Girard, Jean-Pierre,Pesando, Danielle

, p. 589 - 596 (2007/10/03)

Natural derivatives of indole-3-carbaldehyde were isolated from the tropical marine ascidian Stomoza murrayi. A series of 13 derivatives, three natural and 10 synthetic (brominated and N-methylated), were examined for their effects on cell division of sea urchin eggs. These derivatives were shown to inhibit the first mitotic cycle in a concentration-dependent manner. By comparing the IC50 values with the structure of the various molecules, we were able to determine that bromination increased the cytotoxicity of the compound with a maximum occurring when bromine was added to carbon number 2, while addition of N-methylation was shown to markedly reduce the cytotoxicity of these same compounds brominated at carbon 2 only. Biological activity of this family of compounds has been characterized, via detailed study of addition of the most active derivative, 2,5,6-tribromoindole-3-carbaldehyde, on macromolecule synthesis and cytoskeleton reorganization during the first mitotic cycle of fertilized sea urchin eggs. Fluorescence localization of chromatin and microtubules revealed that 2,5,6-tribromoindole-3-carbaldehyde allowed pronuclei migration and fusion but prevented the condensation of chromatin, nuclear envelope breakdown, and bipolar mitotic spindle assembly, inducing an arrest of sea urchin embryogenesis at the beginning of mitosis. It is postulated here that this phenotype is likely to be due to a strong inhibition of DNA replication and protein synthesis.

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