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CAS

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4-Methoxypyridine is an organic compound with the chemical formula C6H7NO and is derived from pyridine by the addition of a methoxy group at the 4th position. It is a clear colorless to slightly yellow liquid and has been prepared from 4-methoxypyridine-N-oxide through catalytic hydrogenation. Ortho lithiation of 4-methoxypyridine using mesityllithium as the metalating base has been studied.

620-08-6

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620-08-6 Usage

Uses

Used in Pharmaceutical Industry:
4-Methoxypyridine is used as a building block for the synthesis of some biologically active compounds, making it a valuable component in the development of new medications. Its role in the creation of various pharmaceuticals highlights its importance in this industry.
Used in Protein Farnesyltransferase Inhibitors:
4-Methoxypyridine is utilized for the preparation of a new series of benzoylated N-ylides, which act as protein farnesyltransferase inhibitors. These inhibitors play a crucial role in the regulation of cellular processes, such as signal transduction and protein prenylation, and have potential applications in the treatment of various diseases, including cancer.
Used in Stereocontrolled Synthesis:
4-Methoxypyridine serves as a starting reagent for the stereocontrolled synthesis of (±)-pumiliotoxin C and (±)-lasubine II. These complex organic compounds have potential applications in the development of new drugs and therapeutic agents.
Used in Neuronal Nicotinic Acetylcholine Receptor Ligands:
4-Methoxypyridine is also used in the efficient construction of dihyropyridin-4-ones, which serve as potential ligands for neuronal nicotinic acetylcholine receptors. These ligands are essential for understanding the function of these receptors and may contribute to the development of treatments for neurological disorders.

Check Digit Verification of cas no

The CAS Registry Mumber 620-08-6 includes 6 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 3 digits, 6,2 and 0 respectively; the second part has 2 digits, 0 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 620-08:
(5*6)+(4*2)+(3*0)+(2*0)+(1*8)=46
46 % 10 = 6
So 620-08-6 is a valid CAS Registry Number.
InChI:InChI=1/C6H7NO/c1-8-6-2-4-7-5-3-6/h2-5H,1H3

620-08-6 Well-known Company Product Price

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  • Alfa Aesar

  • (L19625)  4-Methoxypyridine, 98+%   

  • 620-08-6

  • 5g

  • 537.0CNY

  • Detail
  • Alfa Aesar

  • (L19625)  4-Methoxypyridine, 98+%   

  • 620-08-6

  • 25g

  • 1800.0CNY

  • Detail
  • Aldrich

  • (460621)  4-Methoxypyridine  97%

  • 620-08-6

  • 460621-5ML

  • 905.58CNY

  • Detail
  • Aldrich

  • (460621)  4-Methoxypyridine  97%

  • 620-08-6

  • 460621-25ML

  • 3,118.05CNY

  • Detail

620-08-6SDS

SAFETY DATA SHEETS

According to Globally Harmonized System of Classification and Labelling of Chemicals (GHS) - Sixth revised edition

Version: 1.0

Creation Date: Aug 12, 2017

Revision Date: Aug 12, 2017

1.Identification

1.1 GHS Product identifier

Product name 4-Methoxypyridine

1.2 Other means of identification

Product number -
Other names METHYL PYRIDIN-4-YL ETHER

1.3 Recommended use of the chemical and restrictions on use

Identified uses For industry use only.
Uses advised against no data available

1.4 Supplier's details

1.5 Emergency phone number

Emergency phone number -
Service hours Monday to Friday, 9am-5pm (Standard time zone: UTC/GMT +8 hours).

More Details:620-08-6 SDS

620-08-6Relevant articles and documents

Photocatalytic deoxygenation of N-O bonds with rhenium complexes: From the reduction of nitrous oxide to pyridineN-oxides

Anthore-Dalion, Lucile,Cantat, Thibault,Kjellberg, Marianne,Nicolas, Emmanuel,Ohleier, Alexia,Thuéry, Pierre

, p. 10266 - 10272 (2021/08/12)

The accumulation of nitrogen oxides in the environment calls for new pathways to interconvert the various oxidation states of nitrogen, and especially their reduction. However, the large spectrum of reduction potentials covered by nitrogen oxides makes it difficult to find general systems capable of efficiently reducing variousN-oxides. Here, photocatalysis unlocks high energy species able both to circumvent the inherent low reactivity of the greenhouse gas and oxidant N2O (E0(N2O/N2) = +1.77 Vvs.SHE), and to reduce pyridineN-oxides (E1/2(pyridineN-oxide/pyridine) = ?1.04 Vvs.SHE). The rhenium complex [Re(4,4′-tBu-bpy)(CO)3Cl] proved to be efficient in performing both reactions under ambient conditions, enabling the deoxygenation of N2O as well as synthetically relevant and functionalized pyridineN-oxides.

Copper-Catalyzed Methoxylation of Aryl Bromides with 9-BBN-OMe

Li, Chen,Song, Zhi-Qiang,Wang, Dong-Hui,Wang, Jing-Ru

supporting information, p. 8450 - 8454 (2021/11/17)

A Cu-catalyzed cross-coupling reaction between aryl bromides and 9-BBN-OMe to provide aryl methyl ethers under mild conditions is reported. The oxalamide ligand BHMPO plays a key role in the transformation. Various functional groups on bromobenzenes are well tolerated, providing the desired anisole products in moderate to high yields.

A Lewis Base Nucleofugality Parameter, NFB, and Its Application in an Analysis of MIDA-Boronate Hydrolysis Kinetics

García-Domínguez, Andrés,Gonzalez, Jorge A.,Leach, Andrew G.,Lloyd-Jones, Guy C.,Nichol, Gary S.,Taylor, Nicholas P.

supporting information, (2022/01/04)

The kinetics of quinuclidine displacement of BH3 from a wide range of Lewis base borane adducts have been measured. Parameterization of these rates has enabled the development of a nucleofugality scale (NFB), shown to quantify and predict the leaving group ability of a range of other Lewis bases. Additivity observed across a number of series R′3-nRnX (X = P, N; R′ = aryl, alkyl) has allowed the formulation of related substituent parameters (nfPB, nfAB), providing a means of calculating NFB values for a range of Lewis bases that extends far beyond those experimentally derived. The utility of the nucleofugality parameter is explored by the correlation of the substituent parameter nfPB with the hydrolyses rates of a series of alkyl and aryl MIDA boronates under neutral conditions. This has allowed the identification of MIDA boronates with heteroatoms proximal to the reacting center, showing unusual kinetic lability or stability to hydrolysis.

Selective and Efficient Photoinactivation of Intracellular Staphylococcus aureus and MRSA with Little Accumulation of Drug Resistance: Application of a Ru(II) Complex with Photolabile Ligands

Sun, Weize,Jian, Yao,Zhou, Mengxue,Yao, Yishan,Tian, Na,Li, Chao,Chen, Jun,Wang, Xuesong,Zhou, Qianxiong

supporting information, p. 7359 - 7370 (2021/06/21)

Novel antibacterial agents capable of efficiently sterilizing intracellular Staphylococcus aureus and methicillin-resistant S. aureus (MRSA) but with low cytotoxicity and low resistance development are quite appealing. In this work, three Ru(II) complexes with photolabile ligands were explored to realize such a goal. Complex 3 (5 μM) can inhibit more than 90% growth of S. aureus/MRSA that has invaded in J774A.1 cells upon visible light irradiation, being much more efficient than vancomycin. In similar conditions, negligible dark- and phototoxicity were found toward the host cells. The bactericidal activity is highly correlated with DNA covalent binding by the Ru(II) fractions generated after ligand photodissociation. Moreover, S. aureus quickly developed resistance toward vancomycin, while negligible resistance toward complex 3 even after 700 generations was obtained. These appealing results may pave a new way for fighting against intracellular antibiotic-resistant pathogens.

Lewis Acidic Boranes, Lewis Bases, and Equilibrium Constants: A Reliable Scaffold for a Quantitative Lewis Acidity/Basicity Scale

Mayer, Robert J.,Hampel, Nathalie,Ofial, Armin R.

supporting information, p. 4070 - 4080 (2021/01/29)

A quantitative Lewis acidity/basicity scale toward boron-centered Lewis acids has been developed based on a set of 90 experimental equilibrium constants for the reactions of triarylboranes with various O-, N-, S-, and P-centered Lewis bases in dichloromethane at 20 °C. Analysis with the linear free energy relationship log KB=LAB+LBB allows equilibrium constants, KB, to be calculated for any type of borane/Lewis base combination through the sum of two descriptors, one for Lewis acidity (LAB) and one for Lewis basicity (LBB). The resulting Lewis acidity/basicity scale is independent of fixed reference acids/bases and valid for various types of trivalent boron-centered Lewis acids. It is demonstrated that the newly developed Lewis acidity/basicity scale is easily extendable through linear relationships with quantum-chemically calculated or common physical–organic descriptors and known thermodynamic data (ΔH (Formula presented.)). Furthermore, this experimental platform can be utilized for the rational development of borane-catalyzed reactions.

A Mild Method for Electrochemical Reduction of Heterocyclic N-Oxides

Fukazawa, Yasuaki,Rubtsov, Aleksandr E.,Malkov, Andrei V.

supporting information, p. 3317 - 3319 (2020/05/25)

Deoxygenation of heteroaromatic N-oxides is commonly accomplished using chemical or enzymatic methods. In this work, we report on an expedient protocol for electrochemical reduction of pyridine N-oxide derivatives under mild conditions. A diverse range of mono- and bis N-oxides were converted into the corresponding nitrogen bases in good yields. Importantly, the method is highly selective towards N-oxides and tolerates challenging halo and nitro substituents in the heteroaromatic ring.

Photorelease of Pyridines Using a Metal-Free Photoremovable Protecting Group

Dong, Zaizai,Fang, Xiaohong,Kou, Xiaolong,Tan, Weihong,Tang, Xiao-Jun,Wu, Yayun,Zhang, Zhen,Zhao, Rong,Zhou, Wei

supporting information, p. 18386 - 18389 (2020/08/24)

The photorelease of bioactive molecules has emerged as a valuable tool in biochemistry. Nevertheless, many important bioactive molecules, such as pyridine derivatives, cannot benefit from currently available organic photoremovable protecting groups (PPGs). We found that the inefficient photorelease of pyridines is attributed to intramolecular photoinduced electron transfer (PET) from PPGs to pyridinium ions. To alleviate PET, we rationally designed a strategy to drive the excited state of PPG from S1 to T1 with a heavy atom, and synthesized a new PPG by substitution of the H atom at the 3-position of 7-dietheylamino-coumarin-4-methyl (DEACM) with Br or I. This resulted in an improved photolytic efficiency of the pyridinium ion by hundreds-fold in aqueous solution. The PPG can be applied to various pyridine derivatives. The successful photorelease of a microtubule inhibitor, indibulin, in living cells was demonstrated for the potential application of this strategy in biochemical research.

Efficient Chemoselective Reduction of N-Oxides and Sulfoxides Using a Carbon-Supported Molybdenum-Dioxo Catalyst and Alcohol

Li, Jiaqi,Liu, Shengsi,Lohr, Tracy L.,Marks, Tobin J.

, p. 4139 - 4146 (2019/05/27)

The chemoselective reduction of a wide range of N-oxides and sulfoxides with alcohols is achieved using a carbon-supported dioxo-molybdenum (Mo@C) catalyst. Of the 10 alcohols screened, benzyl alcohol exhibits the highest reduction efficiency. A variety of N-oxide and both aromatic and aliphatic sulfoxide substrates bearing halogens as well as additional reducible functionalities are efficiently and chemoselectively reduced with benzyl alcohol. Chemoselective N-oxide reduction is effected even in the presence of potentially competing sulfoxide moieties. In addition, the Mo@C catalyst is air- and moisture-stable, and is easily separated from the reaction mixture and then re-subjected to reaction conditions over multiple cycles without significant reactivity or selectivity degradation. The high stability and recyclability of the catalyst, paired with its low toxicity and use of earth-abundant elements makes it an environmentally friendly catalytic system.

Electrochemical Deoxygenation of N-Heteroaromatic N -Oxides

Xu, H.-C.,Xu, P.

supporting information, p. 1219 - 1221 (2019/06/08)

An electrochemical method for the deoxygenation of N-heteroaromatic N -oxide to give the corresponding N-heteroaromatics has been developed. Several classes of N-heterocycles such as pyridine, quinoline, isoquinoline, and phenanthridine are tolerated. The electrochemical reactions proceed efficiently in aqueous solution without the need for transition-metal catalysts and waste-generating reducing reagents.

An Improved Rapid and Mild Deoxygenation of Amine N-oxides

Rajesh

, p. 486 - 491 (2017/12/29)

An improved mild and selective method for the deoxygenation of a variety of amine N-oxides has been carried out in the presence of silica gel under mild conditions at room temperature to afford corresponding amines in relatively good yields without purification. The reaction is tolerant of a variety of functional groups such as hydroxyl, ester, acid, carbonyl, and cyano groups, as well as halogens. This method would be of great utility to synthesize various pyridines and amines easily.

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