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4-(Butylaminocarbonyl)Phenylboronic Acid, also known as 4-Carbobutylaminophenylboronic Acid, is an aromatic monoboronic acid with the molecular formula C11H16BNO3 and a molecular weight of 221.060. It is commonly used in organic synthesis and catalysis, and its boronic acid group is particularly significant in pharmaceutical and medicinal chemistry applications due to its ability to form stable covalent bonds with enzymes or receptors in the body.

252663-48-2

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252663-48-2 Usage

Uses

Used in Pharmaceutical Industry:
4-(Butylaminocarbonyl)Phenylboronic Acid is used as a key intermediate in the synthesis of drugs for medicinal purposes. Its boronic acid group allows it to form stable covalent bonds with enzymes or receptors, making it a valuable component in the development of new therapeutic agents.
Used in Organic Synthesis:
4-(Butylaminocarbonyl)Phenylboronic Acid is used as a reagent in various organic synthesis processes, contributing to the creation of complex molecules and compounds.
Used in Catalysis:
4-(Butylaminocarbonyl)Phenylboronic Acid is employed as a catalyst in certain chemical reactions, enhancing the efficiency and selectivity of the processes.

Check Digit Verification of cas no

The CAS Registry Mumber 252663-48-2 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 2,5,2,6,6 and 3 respectively; the second part has 2 digits, 4 and 8 respectively.
Calculate Digit Verification of CAS Registry Number 252663-48:
(8*2)+(7*5)+(6*2)+(5*6)+(4*6)+(3*3)+(2*4)+(1*8)=142
142 % 10 = 2
So 252663-48-2 is a valid CAS Registry Number.
InChI:InChI=1/C11H16BNO3/c1-2-3-8-13-11(14)9-4-6-10(7-5-9)12(15)16/h4-7,15-16H,2-3,8H2,1H3,(H,13,14)

252663-48-2SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 13, 2017

Revision Date: Aug 13, 2017

1.Identification

1.1 GHS Product identifier

Product name [4-(butylcarbamoyl)phenyl]boronic acid

1.2 Other means of identification

Product number -
Other names 4-(Butylaminocarbonyl)phenylboronic acid

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:252663-48-2 SDS

252663-48-2Downstream Products

252663-48-2Relevant academic research and scientific papers

N,N-diethanolaminomethyl polystyrene: An efficient solid support to immobilize boronic acids

Hall, Dennis G.,Tailor, Jyoti,Gravel, Michel

, p. 3064 - 3067 (1999)

The key to the efficiency of N,N-diethanolaminomethyl polystyrene (DEAM- PS), the first solid support capable of coupling to boronic acids, is the formation of a stable, resin-bound boronic ester ate adduct (see scheme). With this resin it is now possible to efficiently immobilize a wide variety of boronic acids including functionalized ones that can be derivatized by solid-phase combinatorial synthesis.

Preparation and uses of conjugated solid supports for boronic acids

-

, (2008/06/13)

The invention provides novel solid supports comprising dihydroxyalkyl aminoalkyl and dihydroxyalkylaminobenzyl groups, and methods for making and using them. The supports are particularly useful for immobilizing and derivatizing functionalized boronic acids for use in solid phase synthesis, such as those used in combinatorial chemistries. The compositions and methods of the invention are also useful as scavenger solid supports, e.g., in solution-phase parallel synthesis of small molecule libraries, and for use in resin-to-resin transfer reactions via phase transfer of solid supported boronic acids under both aqueous and anhydrous conditions. The methods of the invention provide convergent solid-phase synthesis of symmetrically or unsymmetrically functionalized compounds, such as biphenyl compounds. Also provided are synthesizer devices, e.g., semiautomated parallel synthesizers.

Universal solid-phase approach for the immobilization, derivatization, and resin-to-resin transfer reactions of boronic acids

Gravel, Michael,Thompson, Kim A.,Zak, Mark,Berube, Christian,Hall, Dennis G.

, p. 3 - 15 (2007/10/03)

Boronic acid-containing molecules are employed in a broad range of biological, medicinal, and synthetic applications. These compounds, however, tend to be difficult to handle by solution-phase methods. Herein, this problem is addressed with the development of the first general solid-phase approach for the derivatization of functionalized boronic acids. This approach is based on the use of a diethanolamine resin anchor that facilitates boronic acid immobilization by avoiding the need for exhaustive removal of water in the esterification process. The immobilization of a wide variety of boronic acids onto N,N-diethanolaminomethyl polystyrene (DEAM-PS, 1) can be performed within minutes by simple stirring in anhydrous solvents at room temperature. Evidence for the formation of a bicyclic diethanolamine boronate with putative N-B coordination was shown by 1H NMR analysis of DEAM-PS-supported p-tolylboronic acid. The hydrolytic cleavage of the same model boronic acid from the DEAM-PS resin was studied by UV spectroscopy. Hydrolysis and attachment were shown to occur under a rapidly attained equilibrium, and a large excess of water (> 32 equiv) is required to effect a practically quantitative release of boronic acids from DEAM-PS. Despite their relative sensitivity to water and alcohols, DEAM-PS-bound arylboronic acids functionalized with a formyl, a bromomethyl, a carboxyl, or an amino group can be transformed in good to excellent yields into a wide variety of amines, amides, anilides, and ureas, respectively. Ugi multicomponent reactions on DEAM-PS-supported aminobenzeneboronic acids, derivatization of multifunctional arylboronic acids, and sequential reactions can also be carried out efficiently. These new DEAM-PS-supported arylboronic acids can be employed directly into resin-to-resin transfer reactions (RRTR). This type of multiresin process helps eliminate time-consuming cleavage and transfer operations, thereby considerably simplifying the outlook of combinatorial library synthesis by manual or automated means. This concept was illustrated by a set of optimized procedures for the Suzuki cross-coupling and the borono-Mannich reactions.

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