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Design of copper-catalyzed multicomponent reactions and applications to natural product synthesis.

机译:铜催化多组分反应的设计及其在天然产物合成中的应用。

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Chapter 1. Ligand-Controlled Site-Selective NHC--Cu-Catalyzed Protoboration of Monosubstituted Allenes. Site-selective proto--boryl additions to monosubstituted allenes promoted by NHC--Cu complexes are disclosed. Synthetically useful 1,1-disubstituted and Z-trisubstituted alkenylboron compounds are afforded in high efficiency (71%--92% yield) and site selectivity (88% to >98%) through proper choice of NHC ligands. Mechanistic study with the assistance of DFT calculations indicates that protonation of 2-boron-substituted allylcopper complex occurs through six-membered cyclic transition state. The utility of this protocol is demonstrated through application to fragment synthesis of an antibiotic macrolide natural product elansolid A.;Chapter 2. Cu-Catalyzed Chemoselective Copper--Boron Additions to Monosubstituted Allenes Followed by Allyl Additions to Carbonyl Compounds. The first examples of catalytic generation of 2-boron-substituted allylcopper species and their in situ use for C--C bond formation are described. The reactions are performed in the presence of bisphosphine-- or NHC--Cu complexes at 22 °C. High-value alcohol-containing alkenylboron compounds are provided in high efficiency (68--92% yield after oxidation) and stereoselectivity (88:12 to >98:2 dr). The reactions proceed with exclusive gamma-addition mode through a cyclic six-membered transition state. Enantioselectivity can be achieved with chiral bisphosphine ligands in up to 97:3 enantiomeric ratio.;Chapter 3. Chemo-, Site- and Enantioselective Copper--Boron Additions to 1,3-Enynes Followed by Site- and Diastereoselective Additions of the Resulting Allenylcopper Complexes to Aldehydes. Catalytic enantioselective multicomponent reactions involving 1,3-enynes, aldehydes and B2(pin) 2 are described. The resulting products contain a primary C--B(pin) bond, as well as alkyne- and hydroxyl-substituted tertiary stereogenic centers. A critical feature is high enantioselectivity of the initial Cu--B addition to an alkyne-substituted terminal alkene. The key mechanistic issues are investigated by DFT calculations. Reactions are promoted in the presence of the Cu complex of an enantiomerically pure C1-symmetric bisphosphine and are complete in 8 h at ambient temperature. Products are generated in 66--94% yield (after oxidation or catalytic cross-coupling), 90:10 to >98:2 diastereomeric ratio, and 85:15--99:1 enantiomeric ratio. Aryl-, heteroaryl-, alkenyl-, and alkyl-substituted aldehydes and enynes are suitable substrates. Utility is demonstrated through catalytic alkylation and arylation of the organoboron compounds as well as applications to synthesis of fragments of tylonolide and mycinolide IV.;Chapter 4. Multifunctional Alkenylboron Compounds through Single-Catalyst-Controlled Multicomponent Reactions and Their Applications in Scalable Natural Product Synthesis. A facile multicomponent catalytic process that begins with a chemo-, site- and diastereoselective copper--boron addition to a monosubstituted allene followed by addition of the resulting boron-substituted organocopper intermediate to an allylic phosphate, generating products that contain a stereogenic center, a monosubstituted alkene and an easily functionalizable Z-trisubstituted alkenylboron group in up to 89% yield with >98% branch selectivity and stereoselectivity and an enantiomeric ratio greater than 99:1. The copper-based catalyst is derived from a robust heterocyclic salt that can be prepared in multigram quantities from inexpensive starting materials and without costly column chromatography purification. The utility of the method is demonstrated through enantioselective synthesis of gram quantities of two natural products, rottnestol and herboxidiene/GEX1A.;Chapter 5. Cu-Catalyzed Enantioselective Allyl and Propargyl 1,6-Conjugate Additions through 3,3'-Reductive Elimination. Catalytic enantioselective 1,6-conjugate additions of allyl-type nucleophiles promoted by NHC--Cu complexes are reported. Propargyl and 2-boron allyl 1,6-conjugate products are formed in high efficiency, diastereo- and enantioselectivity. The unique mechanistic feature is that the transformations proceed through Cu-catalyzed 3,3'-reductive elimination, that is unprecedented for copper catalysis. Further mechanistic study and application to complex molecule synthesis will be conducted.
机译:第1章。配体控制的位点选择性NHC-Cu催化的单取代Allenes的原硼酸酯化。公开了由NHC-Cu络合物促进的单取代的烯基的位点选择性的原硼烷基加成。通过适当选择NHC配体,可高效(1 71%-92%收率)和位点选择性(88%至> 98%)提供合成上有用的1,1-二取代和Z-三取代的烯基硼化合物。借助DFT计算的机理研究表明,2-硼取代的烯丙基铜配合物的质子化通过六元环状过渡态发生。该协议的实用性通过将其应用于抗生素大环内酯类天然产物天蓝色固体的片段合成得到证明;第2章。Cu催化的对单取代烯的化学选择性铜硼加成反应,然后对羰基化合物进行烯丙基加成反应。描述了2-硼取代的烯丙基铜物种催化生成的第一个例子及其在C-C键形成中的原位使用。反应在22°C的双膦或NHC-Cu络合物存在下进行。高效率提供高价值的含醇烯基硼化合物(氧化后产率为68--92%)和立体选择性(88:12至> 98:2 dr)。反应通过循环的六元过渡态以排他的伽马加成模式进行。手性双膦配体的对映体比例高达97:3,即可实现对映选择性。第3章,对1,3-炔烃进行化学,位点和对映选择性铜-硼加成,然后对所得的烯基铜进行位点和非对映选择性加成。与醛的复合物。描述了涉及1,3-炔烃,醛和B2(pin)2的催化对映选择性多组分反应。生成的产物包含一个伯C-B(pin)键以及炔烃和羟基取代的叔立体中心。关键特征是初始Cu-B加成至炔烃取代的末端烯烃的高对映选择性。通过DFT计算研究了关键的机械问题。在对映体纯的C1对称双膦的Cu络合物的存在下,反应得以促进,并且在环境温度下于8小时内完成反应。生成产物的产率为66--94%(氧化或催化交叉偶联后),90:10至> 98:2非对映异构体比率和85:15--99:1对映异构体比率。芳基-,杂芳基-,烯基-和烷基取代的醛和烯炔是合适的底物。通过有机硼化合物的催化烷基化和芳基化以及将其用于合成泰隆内酯和Mycinolide IV的片段,证明了其实用性。第四章。通过单催化剂控制的多组分反应的多功能烯基硼化合物及其在可扩展的天然产物合成中的应用。一种简便的多组分催化过程,其始于将化学,位点和非对映选择性的铜-硼添加到单取代的丙二烯中,然后将所得的硼取代的有机铜中间体添加到烯丙基磷酸酯中,生成包含立体异构中心,单取代的烯烃和易于官能化的Z-三取代的烯基硼基团,收率高达89%,分支选择性和立体选择性> 98%,对映体比率大于99:1。铜基催化剂衍生自坚固的杂环盐,该杂环盐可以从便宜的原料中以数克的量制备,而无需进行昂贵的柱色谱纯化。该方法的实用性通过对克量的两种天然产物罗非甾烯醇和草氧化烯/ GEX1A的对映选择性合成来证明;第5章。铜催化的3,3'-还原消除了对映选择性烯丙基和炔丙基1,6-共轭加成反应。据报道由NHC-Cu络合物促进的烯丙基型亲核试剂的催化对映选择性1,6-共轭加成反应。以高效,非对映和对映选择性形成炔丙基和2-硼烯丙基1,6-共轭产物。独特的机理特征是,转化通过铜催化的3,3'-还原消除而进行,这对于铜催化是前所未有的。将进行进一步的机理研究并将其应用于复杂分子合成。

著录项

  • 作者

    Meng, Fanke.;

  • 作者单位

    Boston College.;

  • 授予单位 Boston College.;
  • 学科 Chemistry.;Organic chemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 903 p.
  • 总页数 903
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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