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164179-52-6

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164179-52-6 Usage

Molecular weight

234.05 g/mol (determined by adding the atomic weights of all the atoms in the molecule)

Structure

The compound has a central ethane molecule with an iodine atom attached to the first carbon and a 4-fluorophenyl group attached to the second carbon (this gives the compound its characteristic structure and chemical properties)

Reactivity

1-iodo-2-(4-fluorophenyl)ethane is versatile and can undergo a variety of chemical reactions (this makes it useful as an intermediate in the preparation of other organic compounds and pharmaceuticals)

Uses

It is commonly used in the synthesis of pharmaceuticals, agrochemicals, or other organic compounds (due to its versatile reactivity)

Hazards

Potential hazardous properties and toxicity (it should be handled with caution)

Check Digit Verification of cas no

The CAS Registry Mumber 164179-52-6 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 1,6,4,1,7 and 9 respectively; the second part has 2 digits, 5 and 2 respectively.
Calculate Digit Verification of CAS Registry Number 164179-52:
(8*1)+(7*6)+(6*4)+(5*1)+(4*7)+(3*9)+(2*5)+(1*2)=146
146 % 10 = 6
So 164179-52-6 is a valid CAS Registry Number.

164179-52-6Relevant articles and documents

Migratory Hydrogenation of Terminal Alkynes by Base/Cobalt Relay Catalysis

Liu, Bingxue,Liu, Qiang,Liu, Xufang

supporting information, p. 6750 - 6755 (2020/03/13)

Migratory functionalization of alkenes has emerged as a powerful strategy to achieve functionalization at a distal position to the original reactive site on a hydrocarbon chain. However, an analogous protocol for alkyne substrates is yet to be developed. Herein, a base and cobalt relay catalytic process for the selective synthesis of (Z)-2-alkenes and conjugated E alkenes by migratory hydrogenation of terminal alkynes is disclosed. Mechanistic studies support a relay catalytic process involving a sequential base-catalyzed isomerization of terminal alkynes and cobalt-catalyzed hydrogenation of either 2-alkynes or conjugated diene intermediates. Notably, this practical non-noble metal catalytic system enables efficient control of the chemo-, regio-, and stereoselectivity of this transformation.

Discovery, synthesis, and structure-activity relations of 3,4-dihydro-1H-spiro(naphthalene-2,2′-piperidin)-1-ones as potassium-competitive acid blockers

Imaeda, Toshihiro,Ono, Koji,Nakai, Kazuo,Hori, Yasunobu,Matsukawa, Jun,Takagi, Terufumi,Fujioka, Yasushi,Tarui, Naoki,Kondo, Mitsuyo,Imanishi, Akio,Inatomi, Nobuhiro,Kajino, Masahiro,Itoh, Fumio,Nishida, Haruyuki

, p. 3719 - 3735 (2017/06/13)

With the aim to discover a gastric antisecretory agent more potent than the existing proton pump inhibitors, novel 3,4-dihydro-1H-spiro(naphthalene-2,2′-piperidin)-1-one derivatives, which could occupy two important lipophilic pockets (described as LP-1 and LP-2) of H+,K+-ATPase and can strongly bind to the K+-binding site, were designed based on a docking model. Among the compounds synthesized, compound 4d showed a strong H+,K+-ATPase-inhibitory activity and a high stomach concentration in rats, resulting in potent inhibitory action on histamine-stimulated gastric acid secretion in rats. Furthermore, 4d exerted significant inhibitory action on histamine-stimulated gastric-acid secretion in rats with a rapid onset and moderate duration of action after the administration. These findings may lead to a new insight into the drug design of potassium-competitive acid blockers.

Discovery of tertiary amine and indole derivatives as potent RORγt inverse agonists

Yang, Ting,Liu, Qian,Cheng, Yaobang,Cai, Wei,Ma, Yingli,Yang, Liuqing,Wu, Qianqian,Orband-Miller, Lisa A.,Zhou, Ling,Xiang, Zhijun,Huxdorf, Melanie,Zhang, Wei,Zhang, Jing,Xiang, Jia-Ning,Leung, Stewart,Qiu, Yang,Zhong, Zhong,Elliott, John D.,Lin, Xichen,Wang, Yonghui

supporting information, p. 65 - 68 (2014/02/14)

A novel series of tertiary amines as retinoid-related orphan receptor gamma-t (RORγt) inverse agonists was discovered through agonist/inverse agonist conversion. The level of RORγt inhibition can be enhanced by modulating the conformational disruption of H12 in RORγt LBD. Linker exploration and rational design led to the discovery of more potent indole-based RORγt inverse agonists.

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