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The Bishler-Napieralski cyclodehydration of N-acyl-2-arylethylamines into the corresponding 3,4-dihydroisoquinolines with POCl3 as a dehydration reagent proceeds in ionic liquids under milder conditions and in higher yields.

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Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem

 

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Convergent total synthesis of (±)-apomorphine hydrochloride was accomplished by an approach that employs in the key step a sequence of transformations involving a [4+2]-cycloaddition reaction followed by a hydrogen migration. Through this sequence of transformations, the desired aporphine core was obtained regioselectively in 75% isolated yield. Since only one regioisomer was produced in the key step of the synthesis, a polar [4+2]-cycloaddition mechanism was proposed. Furthermore, NMR experiments and theoretical calculations were carried out to elucidate the hydrogen migration mechanism. (±)-Apomorphine hydrochloride was achieved after 9 steps in an overall yield of 8% involving benzyne chemistry.

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Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H816N – PubChem

 

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A new [Ru(II)(eta6-p-cymene)(1R,2R)-N-((1S,2S)-borneol-10- sulfonyl)-1,2-diphenylethylenediamine] catalyst for the asymmetric transfer hydrogenation of both 1-alkyl and 1-aryl dihydroisoquinolines has been isolated. For the first time in this type of reaction, the catalyst employs an N-alkylsulfonyl group instead of N-arylsulfonyl.

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Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem

 

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As a green yet challenging field, photoenzymatic catalysis has sprung up in the past few years but mainly in the context of photocatalytic in situ regeneration of cofactors to facilitate enzymes? native functions. In addition to this, some unprecedented chemical transformations have recently been achieved via novel pathways wherein many important products are obtained in satisfactory yields, sometimes even with excellent enantioselectivity. In this review, we highlight the latest advances of photoenzymatic approaches in organic synthesis, however, photocatalytic in situ regeneration of cofactors for enzymes is not included.

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Isoquinoline – Wikipedia,
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The review compiles artificial cascades involving enzymes with a focus on the last 10 years. A cascade is defined as the combination of at least two reaction steps in a single reaction vessel without isolation of the intermediates, whereby at least one step is catalyzed by an enzyme. Additionally, cascades performed in vivo and in vitro are discussed separately, whereby in vivo cascades are defined here as cascades relying on cofactor recycling by the metabolism or on a metabolite from the living organism. The review introduces a systematic classification of the cascades according to the number of enzymes in the linear sequence and differentiates between cascades involving exclusively enzymes and combinations of enzymes with non-natural catalysts or chemical steps. Since the number of examples involving two enzymes is predominant, the two enzyme cascades are further subdivided according to the number, order, and type of redox steps. Furthermore, this classification differentiates between cascades where all reaction steps are performed simultaneously, sequentially, or in flow.

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Isoquinoline – Wikipedia,
Isoquinoline | C9H843N – PubChem

 

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The reaction of 2,3,4,5-tetrahydropyridines and 1-pyrrolines with thiiranes, which leads to perhydrothiazolo<2,3-a>pyridines and perhydropyrrolo<2,1-b>thiazoles, is described.The regiospecificity and stereoselectivity of the reaction are examined.

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Reference:
Isoquinoline – Wikipedia,
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Discovery of 1-Methyl-3,4-dihydroisoquinoline

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In heterogeneous catalysis, the catalyst is in a different phase from the reactants. HPLC of Formula: C10H11N, At least one of the reactants interacts with the solid surface in a physical process called adsorption in such a way. 2412-58-0, name is 1-Methyl-3,4-dihydroisoquinoline. In an article,Which mentioned a new discovery about 2412-58-0

Imine reductases (IRED) are promising catalysts for the synthesis of optically pure secondary cyclic amines. Three novel IREDs from Paenibacillus elgii B69, Streptomyces ipomoeae 91-03 and Pseudomonas putida KT2440 were identified by amino acid or structural similarity search, cloned and recombinantly expressed in E. coli and their substrate scope was investigated. Besides the acceptance of cyclic amines, also acyclic amines could be identified as substrates for all IREDs. For the IRED from P. putida, a crystal structure (PDB-code 3L6D) is available in the database, but the function of the protein was not investigated so far. This enzyme showed the highest apparent E-value of approximately Eapp = 52 for (R)-methylpyrrolidine of the IREDs investigated in this study. Thus, an excellent enantiomeric purity of >99% and 97% conversion was reached in a biocatalytic reaction using resting cells after 24 h. Interestingly, a histidine residue could be confirmed as a catalytic residue by mutagenesis, but the residue is placed one turn aside compared to the formally known position of the catalytic Asp187 of Streptomyces kanamyceticus IRED.

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Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem

 

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Reaction of acyclic and cyclic N-alkylimines with dichlorocarbene yields azomethine ylides which undergo cycloaddition to dimethyl maleate or fumarate to give five-membered heterocycles.

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Isoquinoline – Wikipedia,
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Polycyclic structures fused at a central carbon are of great interest due to their appealing conformational features and their structural implications in biological systems. Although progress in the development of synthetic methodologies towards such structures has been impressive, the stereoselective construction of such quaternary stereocentres remains a significant challenge in the total synthesis of natural products. This review summarises a series of studies on the reactions of 1H-pyrrole-2,3- diones with nucleophiles and highlights the progress in the formation of new polyheterocyclic compounds with concomitant formation of the quaternary spiro centre.

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Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem

 

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A quinazoline derivative represented by formula(I) or a pharmaceutically acceptable salt thereof is useful for the treatment of peptic ulcer, wherein: STR1 R1 and R2 are each hydrogen or a C1 -C4 alkyl group; R3 is hydrogen or a halogen; R4, R5, R6, R7, R8 and R9, which may be the same or different, are each hydrogen, a C1 -C4 alkyl group, a cyclopropyl group, or a C1 -C4 alkyl group substituted with a halogen; and R10 is a methoxy group.

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Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H729N – PubChem