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1-BOC-3-IODO-PIPERIDINE is a chemical compound that serves as a versatile building block in organic synthesis. It is a derivative of piperidine, a heterocyclic compound, featuring a tert-butyloxycarbonyl (BOC) protecting group on the amine nitrogen and an iodine atom attached to the third carbon of the piperidine ring. 1-BOC-3-IODO-PIPERIDINE is known for its utility in the synthesis of various drug molecules, particularly in the pharmaceutical industry for developing potential therapeutic candidates.

850761-36-3

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850761-36-3 Usage

Uses

Used in Pharmaceutical Industry:
1-BOC-3-IODO-PIPERIDINE is used as a key intermediate for the synthesis of drug molecules, facilitating the creation of a broad spectrum of functionalized piperidine derivatives. These derivatives possess diverse biological activities, making them valuable in the development of new therapeutic agents.
1-BOC-3-IODO-PIPERIDINE is also used as a reagent in organic chemistry for the preparation of various chemical compounds. The presence of the BOC protecting group allows for mild deprotection conditions, revealing the free amine functionality, which is crucial for further chemical reactions and modifications. This feature enhances the compound's utility in organic synthesis, making it a preferred choice for chemists working on the development of new pharmaceuticals and other organic compounds.

Check Digit Verification of cas no

The CAS Registry Mumber 850761-36-3 includes 9 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 6 digits, 8,5,0,7,6 and 1 respectively; the second part has 2 digits, 3 and 6 respectively.
Calculate Digit Verification of CAS Registry Number 850761-36:
(8*8)+(7*5)+(6*0)+(5*7)+(4*6)+(3*1)+(2*3)+(1*6)=173
173 % 10 = 3
So 850761-36-3 is a valid CAS Registry Number.
InChI:InChI=1/C10H18INO2/c1-10(2,3)14-9(13)12-6-4-5-8(11)7-12/h8H,4-7H2,1-3H3

850761-36-3SDS

SAFETY DATA SHEETS

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

Version: 1.0

Creation Date: Aug 19, 2017

Revision Date: Aug 19, 2017

1.Identification

1.1 GHS Product identifier

Product name tert-butyl 3-iodopiperidine-1-carboxylate

1.2 Other means of identification

Product number -
Other names N-Boc-3-Iodopiperidine

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:850761-36-3 SDS

850761-36-3Relevant academic research and scientific papers

Nickel-Mediated Alkoxycarbonylation for Complete Carbon Isotope Replacement

Ton, Stephanie J.,Neumann, Karoline T.,N?rby, Peter,Skrydstrup, Troels

supporting information, p. 17816 - 17824 (2021/11/04)

Many commercial drugs, as well as upcoming pharmaceutically active compounds in the pipeline, display aliphatic carboxylic acids or derivatives thereof as key structural entities. Synthetic methods for rapidly accessing isotopologues of such compounds are highly relevant for undertaking critical pharmacological studies. In this paper, we disclose a direct synthetic route allowing for full carbon isotope replacement via a nickel-mediated alkoxycarbonylation. Employing a nickelII pincer complex ([(N2N)Ni-Cl]) in combination with carbon-13 labeled CO, alkyl iodide, sodium methoxide, photocatalyst, and blue LED light, it was possible to generate the corresponding isotopically labeled aliphatic carboxylates in good yields. Furthermore, the developed methodology was applied to the carbon isotope substitution of several pharmaceutically active compounds, whereby complete carbon-13 labeling was successfully accomplished. It was initially proposed that the carboxylation step would proceed via the in situ formation of a nickellacarboxylate, generated by CO insertion into the Ni-alkoxide bond. However, preliminary mechanistic investigations suggest an alternative pathway involving attack of an open shell species generated from the alkyl halide to a metal ligated CO to generate an acyl NiIII species. Subsequent reductive elimination involving the alkoxide eventually leads to carboxylate formation. An excess of the alkoxide was essential for obtaining a high yield of the product. In general, the presented methodology provides a simple and convenient setup for the synthesis and carbon isotope labeling of aliphatic carboxylates, while providing new insights about the reactivity of the N2N nickel pincer complex applied.

Triphenylphosphine-Catalyzed Alkylative Iododecarboxylation with Lithium Iodide under Visible Light

Fu, Ming-Chen,Shang, Rui,Wang, Jia-Xin

supporting information, (2020/11/13)

Under irradiation of 456 nm blue light-emitting diodes, PPh3 catalyzes the iododecarboxylation of aliphatic carboxylic acid derived N-(acyloxy)phthalimide with lithium iodide as an iodine source. The reaction delivers primary, secondary, and bridgehead te

Electrochemical Scaled-up Synthesis of Cyclic Enecarbamates as Starting Materials for Medicinal Chemistry Relevant Building Bocks

Tereshchenko, Oleksandr D.,Perebiynis, Maryana Y.,Knysh, Irina V.,Vasylets, Olesia V.,Sorochenko, Anna A.,Slobodyanyuk, Eugeniy Y.,Rusanov, Eduard B.,Borysov, Oleksandr V.,Kolotilov, Sergey V.,Ryabukhin, Sergey V.,Volochnyuk, Dmitriy M.

supporting information, p. 3229 - 3242 (2020/07/06)

The electrochemical Shono oxidation of Boc-protected cyclic amines was revised. The conditions for scalable electrochemical synthesis of cyclic enecarbamates were found. The developed protocol included recycling of the full range of used reagents, favoring to E-factor reduction according to Green Chemistry requirements. The method opened the way for the convenient preparation of previously uncommon materials, which could become useful synthetic intermediates. Their synthetic potential was evaluated in [2+1] and [2+2] cycloadditions as well as electrophilic functionalization. Moreover, functionalized enecarbamates with carbonyl groups in β-position were used as latent 1,3-bielectrophiles in classical heterocyclizations. In a case of the hydrazine, the corresponding unusually decorated pyrazoles were prepared. The proposed methodology is a straightforward tool for the design and synthesis of Medicinal Chemistry relevant building blocks. As examples, 5-fluoro pipecolic and 3-fluoro isonipecotic acids were synthesized starting from Boc-protected esters of the pipecolic and the isonipecotic acids respectively; the 5-step approach to pyrazole containing α-aminoacids with different linkers between the aminoacidic and pyrazole moieties was elaborated based on the cheapest commercially available racemic and chiral cyclic α-aminoacids; the convenient approach to the functionalized tetrahydropyrido[3,4-d]pyridazines was proposed starting from Boc-protected ester of the isonipecotic acids. (Figure presented.).

Cobalt-Catalyzed C(sp2)-C(sp3) Cross-Coupling Reactions of Diarylmanganese Reagents with Secondary Alkyl Iodides

Hofmayer, Maximilian S.,Hammann, Jeffrey M.,Haas, Diana,Knochel, Paul

, p. 6456 - 6459 (2016/12/23)

A cobalt-catalyzed cross-coupling of diarylmanganese reagents with secondary alkyl iodides using the THF-soluble salt CoCl2·2LiCl, which leads to the cross-coupling products in up to 92% yield, is reported. High diastereoselectivities can be re

Cobalt-Catalyzed Cross-Coupling of 3- and 4-Iodopiperidines with Grignard Reagents

Gonnard, Laurine,Gurinot, Amandine,Cossy, Janine

supporting information, p. 12797 - 12803 (2015/09/01)

A cobalt-catalyzed cross-coupling between 3- and 4-iodopiperidines and Grignard reagents is disclosed. The reaction is an efficient, cheap, chemoselective, and flexible way to functionalize piperidines. This coupling was used as the key step to realize a short synthesis of (±)-preclamol. Some mechanistic investigations were conducted that highlight the formation of radical intermediates. Scaffold synthesis: A cobalt-catalyzed cross-coupling between iodopiperidines and Grignard reagents is reported (see scheme; PG=protecting group). A large variety of 3- and 4-substituted piperidines were synthesized and the method was applied to a short synthesis of (±)-preclamol. This work constitutes one of the rare examples of cross-couplings involving 3-halogeno piperidines.

Substituted Disulfonamide Compounds

-

Page/Page column 60, (2010/06/22)

Substituted disulfonamide compounds corresponding to formula I: In which R1, R2, R3, R4a, R4b, R5a, R5b, R8, R9a, R9b, R10, R11, a, b, s, t and A have defined meanings, pharmaceutical compositions containing one or more such compounds, processes for preparing such compounds, and a method of using such compounds for the treatment or inhibition of pain and/or other conditions mediated by the bradykinin receptor 1 (BR1).

Synthesis of functionalized nitrogen heterocycles by radical decarboxylation of β- and γ-amino acids

Boto, Alicia,Hernandez, Rosendo,De Leon, Yolanda,Murguia, Jose R.,Rodriguez-Afonso, Abigail

, p. 673 - 682 (2007/10/03)

Iodinated or oxygenated nitrogen heterocycles are obtained by radical decarboxylation of β- and γ-amino acids. This mild, versatile reaction is applied to the synthesis of bioactive products, such as 4-arylpiperidines, hydroxylated piperidines, and new antifungal agents.

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