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烯反应

Ene反应,也被叫做Alder-ene反应烯反应,是一个带有烯丙基氢的烯烃和一个亲烯体之间发生的反应。[1] 这是一个官能团转化反应,包含有双键以及[1,5]氢迁移,产物是一个双键移动至原烯丙基位置的取代烯烃。反应通式如下:

ene反应

这类反应通常需要有高活性的反应物或高温,此外,热和路易斯酸可以促进此反应。Ene反应的产物通常能够在其他化学反应的副产物中找到。

将反应物称为烯和亲烯体常常为造成误解,因为亲烯体本身也经常是一个烯。对常见的ene反应来说,烯是富电子的而亲烯体是缺电子的。(这一点与狄尔斯-阿尔德反应不同,仅有很少一部分比较奇怪的ene反应会发生电子需求的反转,即缺电子的烯和富电子的亲烯体)

马来酸酐能够参与很多的ene反应,这是因为两个吸电子的羰基的综合作用使其严重缺电子。[2]

烯丙基苯与马来酸酐的ene反应

烯组分 编辑

亲烯体 编辑

反应机理 编辑

和狄尔斯-阿尔德反应很相似,路易斯酸(例如三氟化硼三氯化铝)能够参与金属催化的ene反应。这些反应仍然是周环反应,因为所产生的反应中间体仍然采取了协同电环化反应机理。

区域选择性(Regioselection) 编辑

路易斯酸 – 催化烯反应 编辑


变化 编辑

羰基ene反应 编辑

当亲烯体为羰基的时候,这类反应通常被叫做羰基ene反应[21]

例如,香茅醛在路易斯酸(五氯化铌)的催化下发生分子内关环反应。[22]

 
羰基ene反应


单线态氧ene反应 编辑

在单线态氧ene反应中,单线态氧与烯丙基过氧化物反应。[23][24] 此反应最早是由Schenck在1945年发现,所以有时也被叫做Schenck ene反应。[25]

其它 编辑

  • 二氧化硅氧化反应也是一个伴随着retro-[3+2]反应的ene反应

参见 编辑

参考文献 编辑

  1. ^ Alder, K. et al. Ber. 1943, 76, 27.
  2. ^ Succinic acid, cinnamyl Christian S. Rondestvedt, Jr. Organic Syntheses, Coll. Vol. 4, p.766 (1963); Vol. 31, p.85 (1951). (Article (页面存档备份,存于互联网档案馆))
  3. ^ 3.0 3.1 3.2 3.3 3.4 Paderes, G. D.; Jorgensen, W. L. Computer-assisted mechanistic evaluation of organic reactions. 20. Ene and retro-ene chemistry. J. Org. Chem. 1992, 57 (6): 1904. doi:10.1021/jo00032a054.  and references therein
  4. ^ 4.0 4.1 Inagaki, S.; Fujimoto, H; Fukui, K. J. Orbital interaction in three systems. J. Am. Chem. Soc. 1976, 41 (16): 4693. doi:10.1021/ja00432a001. 
  5. ^ 5.0 5.1 Fernandez, I.; Bickelhaupt, F. M. Alder-ene reaction: Aromaticity and activation-strain analysis. Journal of Computational Chemistry. 2012, 33 (5): 509–16. PMID 22144106. doi:10.1002/jcc.22877. 
  6. ^ Stephenson, L. M.; Mattern, D. L. Stereochemistry of an ene reaction of dimethyl azodicarboxylate. J. Org. Chem. 1976, 41 (22): 3614. doi:10.1021/jo00884a030. 
  7. ^ Loncharich, R. J.; Houk, K. N. Transition structures of ene reactions of ethylene and formaldehyde with propene. J. Am. Chem. Soc. 1987, 109 (23): 6947. doi:10.1021/ja00257a008. 
  8. ^ Schnabel, Christoph; Sterz, Katja; MüLler, Henrik; Rehbein, Julia; Wiese, Michael; Hiersemann, Martin. Total Synthesis of Natural and Non-Natural Δ5,6Δ12,13-Jatrophane Diterpenes and Their Evaluation as MDR Modulators. The Journal of Organic Chemistry. 2011, 76 (2): 512. PMID 21192665. doi:10.1021/jo1019738. 
  9. ^ 9.0 9.1 9.2 9.3 9.4 9.5 引用错误:没有为名为MikamiRev的参考文献提供内容
  10. ^ Hoffmann, H. M. R. The Ene Reaction. Angew. Chem. Int. Ed. 1969, 8 (8): 556. doi:10.1002/anie.196905561. 
  11. ^ Thaler, W. A.; Franzus, B. J. The Reaction of Ethyl Azodicarboxylate with Monoolefins. J. Org. Chem. 1964, 29 (8): 2226. doi:10.1021/jo01031a029. 
  12. ^ Oppolzer, W.; Snieckus, V. Intramolecular Ene Reactions in Organic Synthesis. Angew. Chem. Int. Ed. Engl. 1978, 17 (7): 476. doi:10.1002/anie.197804761. 
  13. ^ 13.0 13.1 13.2 13.3 13.4 13.5 引用错误:没有为名为Snider的参考文献提供内容
  14. ^ 14.0 14.1 14.2 Mikami, K.; Terada, M.; Takeshi, N. Catalytic asymmetric glyoxylate-ene reaction: A practical access to .alpha.-hydroxy esters in high enantiomeric purities. J. Am. Chem. Soc. 1990, 112 (10): 3949. doi:10.1021/ja00166a035. 
  15. ^ Corey, E.J.; Barnes-Seeman, D.; Lee, T. W.; Goodman, S. N. A transition-state model for the mikami enantioselective ene reaction. Tetrahedron Letters. 1997, 37 (37): 6513. doi:10.1016/S0040-4039(97)01517-7. 
  16. ^ 16.0 16.1 Pitts, M. R.; Mulzer, J. A chirally catalysed ene reaction in a novel formal total synthesis of the antitumor agent laulimalide. Tetrahedron Letters. 2002, 43 (47): 8471. doi:10.1016/S0040-4039(02)02086-5. 
  17. ^ 17.0 17.1 Evans, D.A.; Tregay, S. W.; Burgey C. S.; Paras, N. A.; Vojkovsky, T. C2-Symmetric Copper(II) Complexes as Chiral Lewis Acids. Catalytic Enantioselective Carbonyl−Ene Reactions with Glyoxylate and Pyruvate Esters. J. Am. Chem. Soc. 2000, 122 (33): 7936. doi:10.1021/ja000913t. 
  18. ^ Johnson, J. S.; Evans, D. A. Chiral bis(oxazoline) copper(II) complexes: Versatile catalysts for enantioselective cycloaddition, Aldol, Michael, and carbonyl ene reactions. Acc. Chem. Res. 2000, 33 (6): 325–35. PMID 10891050. doi:10.1021/ar960062n. 
  19. ^ Johannsen, Mogens; Joergensen, Karl Anker. Asymmetric hetero Diels-Alder reactions and ene reactions catalyzed by chiral copper(II) complexes. The Journal of Organic Chemistry. 1995, 60 (18): 5757. doi:10.1021/jo00123a007. 
  20. ^ Evans, D. A.; Kaerno, L.; Dunn, T. B.; Beauchemin, A.; Raymer, B.; Mulder, J. A.; Olhava, E. J.; Juhl, M.; Kagechika, K.; Favor D. A. Total synthesis of (+)-azaspiracid-1. An exhibition of the intricacies of complex molecule synthesis. J. Am. Chem. Soc. 2008, 130 (48): 16295–309. PMC 3408805 . PMID 19006391. doi:10.1021/ja804659n. 
  21. ^ Snider, B. B. Comp. Org. Syn. 1991, 2, 527-561. (Review)
  22. ^ Intramolecular ene reactions catalyzed by NbCl5, TaCl5 and InCl3 Carlos Kleber Z. Andrade; Otilie E. Vercillo; Juliana P. Rodrigues; Denise P. Silveira J. Braz. Chem. Soc. vol.15 no.6 São Paulo Nov./Dec. 2004 (Article (页面存档备份,存于互联网档案馆))
  23. ^ Wasserman, H. H.; Ives, J. L. Tetrahedron 1981, 37, 1825-1852. (Review: doi:10.1016/S0040-4020(01)97932-3)
  24. ^ Clennan, E. L. Tetrahedron 2000, 56, 9151-9179. (Review: doi:10.1016/S0040-4020(00)00794-8)
  25. ^ Schenck, G. O. Naturwissenschaften 1948, 35, 28-29.

烯反应, ene反应, 也被叫做alder, ene反应或, 是一个带有烯丙基氢的烯烃和一个亲烯体之间发生的反应, 这是一个官能团转化反应, 包含有双键以及, 氢迁移, 产物是一个双键移动至原烯丙基位置的取代烯烃, 反应通式如下, ene反应这类反应通常需要有高活性的反应物或高温, 此外, 热和路易斯酸可以促进此反应, ene反应的产物通常能够在其他化学反应的副产物中找到, 将反应物称为烯和亲烯体常常为造成误解, 因为亲烯体本身也经常是一个烯, 对常见的ene反应来说, 烯是富电子的而亲烯体是缺电子的, 这一点与狄. Ene反应 也被叫做Alder ene反应或烯反应 是一个带有烯丙基氢的烯烃和一个亲烯体之间发生的反应 1 这是一个官能团转化反应 包含有双键以及 1 5 氢迁移 产物是一个双键移动至原烯丙基位置的取代烯烃 反应通式如下 ene反应这类反应通常需要有高活性的反应物或高温 此外 热和路易斯酸可以促进此反应 Ene反应的产物通常能够在其他化学反应的副产物中找到 将反应物称为烯和亲烯体常常为造成误解 因为亲烯体本身也经常是一个烯 对常见的ene反应来说 烯是富电子的而亲烯体是缺电子的 这一点与狄尔斯 阿尔德反应不同 仅有很少一部分比较奇怪的ene反应会发生电子需求的反转 即缺电子的烯和富电子的亲烯体 马来酸酐能够参与很多的ene反应 这是因为两个吸电子的羰基的综合作用使其严重缺电子 2 烯丙基苯与马来酸酐的ene反应目录 1 烯组分 2 亲烯体 3 反应机理 3 1 Concerted pathway and transition states 3 2 Radical mechanism 4 区域选择性 Regioselection 5 Internal asymmetric induction 6 Intramolecular ene reactions 7 路易斯酸 催化烯反应 7 1 Advantages and rationale 7 2 Reaction conditions 7 3 Reactivity of enes 7 4 机理 8 Chiral Lewis acids for the asymmetric catalysis of carbonyl ene reactions 8 1 Chiral dialkoxytitanium complexes and the synthesis of laulimalide 8 2 Chiral C2 symmetric Cu II complexes and the synthesis of azaspiracid 1 9 变化 9 1 羰基ene反应 9 2 单线态氧ene反应 9 3 其它 10 参见 11 参考文献烯组分 编辑已隱藏部分未翻譯内容 歡迎參與翻譯 Enes are p bonded molecules that contain at least one active hydrogen atom at the allylic propargylic or a position Possible ene components include olefinic acetylenic allenic aromatic cyclopropyl and carbon hetero bonds 3 Usually the allylic hydrogen of allenic components participates in ene reactions but in the case of allenyl silanes the allenic hydrogen atom a to the silicon substituent is the one transferred affording a silylalkyne Phenol can act as an ene component for example in the reaction with dihydropyran but high temperatures are required 150 170 C Nonetheless strained enes and fused small ring systems undergo ene reactions at much lower temperatures In addition ene components containing C O C N and C S bonds have been reported but such cases are rare 3 亲烯体 编辑已隱藏部分未翻譯内容 歡迎參與翻譯 Enophiles are p bonded molecules which have electron withdrawing substituents that lower significantly the LUMO of the p bond Possible enophiles contain carbon carbon multiple bonds olefins acetylenes benzynes carbon hetero multiple bonds C O in the case of carbonyl ene reactions C N C S C P hetero hetero multiple bonds N N O O Si Si N O S O cumulene systems N S O N S N C C O C C S SO2 and charged p systems C N C S C O C N 3 反应机理 编辑和狄尔斯 阿尔德反应很相似 路易斯酸 例如三氟化硼或三氯化铝 能够参与金属催化的ene反应 这些反应仍然是周环反应 因为所产生的反应中间体仍然采取了协同电环化反应机理 已隱藏部分未翻譯内容 歡迎參與翻譯 Concerted pathway and transition states 编辑 The main frontier orbital interaction occurring in an ene reaction is between the HOMO of the ene and the LUMO of the enophile Figure 2 4 The HOMO of the ene results from the combination of the pi bonding orbital in the vinyl moiety and the C H bonding orbital for the allylic H Concerted all carbon ene reactions have in general a high activation barrier which was approximated at 33 kcal mol in the case of propene and ethene as computed at the M06 2X def2 TZVPP level of theory 5 However if the enophile becomes more polar going from ethane to formaldehyde its LUMO has a larger amplitude on C yielding a better C C overlap and a worse H O one determining the reaction to proceed in an asynchronous fashion This translates into a lowering of the activation barrier until 14 7 kcal mol M06 2X def2 TZVPP if S replaces O on the enophile By computationally examining both the activation barriers and the activation strains of several different ene reactions involving propene as the ene component Fernandez and co workers 5 have found that the barrier decreases along the enophiles in the order H2C CH2 gt H2C NH gt H2C CH COOCH3 gt H2C O gt H2C PH gt H2C S as the reaction becomes more and more asynchronous and or the activation strain decreases nbsp Figure 2 Concerted mechanism for the ene reactionThe concerted nature of the ene process has been supported experimentally 6 and the reaction can be designated as s2s p2s p2s in the Woodward Hoffmann notation 4 The early transition state proposed for the thermal ene reaction of propene with formaldehyde has an envelope conformation with a C O H angle of 155 as calculated at the 3 21G level of theory 7 Schnabel and co workers 8 have studied an uncatalyzed intramolecular carbonyl ene reaction which was used to prepare the cyclopentane fragment of natural and non natural jatropha 5 12 dienes members of a family of P glycoprotein modulators Their DFT calculations at the B1B95 6 31G level of theory for the reaction presented in Figure 3 propose that the reaction can proceed through one of two competing concerted and envelope like transition states The development of 1 3 transannular interactions in the disfavored transition state provides a good explanation for the selectivity of this process nbsp Figure 3 DFT study B1B95 6 31G of a thermal intramolecular carbonyl ene reaction and its use in the synthesis of jatropha 5 12 dienesThe study of Lewis acid promoted carbonyl ene reactions such as aluminum catalyzed glyoxylate ene processes Figure 4 prompted researchers to consider a chair like conformation for the transition state of ene reactions which proceed with relatively late transition states 9 The advantage of such a model is the fact that steric parameters such as 1 3 diaxial and 1 2 diequatorial repulsions are easy to visualize which allows for accurate predictions regarding the diastereoselectivity of many reactions 9 nbsp Figure 4 Chair like transition state proposed for Lewis acid catalyzed carbonyl ene additionsRadical mechanism 编辑 When a concerted mechanism is geometrically unfavorable a thermal ene reaction can occur through a stepwise biradical pathway 10 Another possibility is a free radical process if radical initiators are present in the reaction mixture For example the ene reaction of cyclopentene and cyclohexene with diethyl azodicarboxylate can be catalyzed by free radical initiators As seen in Figure 5 the stepwise nature of the process is favored by the stability of the cyclopentenyl or cyclohexenyl radicals as well as the difficulty of cyclopentene and cyclohexene in achieving the optimum geometry for a concerted process 11 需要解释 nbsp Figure 5 Stepwise free radical pathway for the ene reaction区域选择性 Regioselection 编辑已隱藏部分未翻譯内容 歡迎參與翻譯 Just as in the case of any cycloaddition the success of an ene reaction is largely determined by the steric accessibility of the ene allylic hydrogen In general methyl and methylene H atoms are abstracted much more easily than methine hydrogens In thermal ene reactions the order of reactivity for the abstracted H atom is primary gt secondary gt tertiary irrespective of the thermodynamic stability of the internal olefin product In Lewis acid promoted reactions the pair enophile Lewis acid employed determines largely the relative ease of abstraction of methyl vs methylene hydrogens 9 The orientation of ene addition can be predicted from the relative stabilization of the developing partial charges in an unsymmetrical transition state with early formation of the s bond The major regioisomer will come from the transition state in which transient charges are best stabilized by the orientation of the ene and enophile 3 Internal asymmetric induction 编辑 In terms of the diastereoselection with respect to the newly created chiral centers an endo preference has been qualitatively observed but steric effects can easily modify this preference Figure 6 9 nbsp Figure 6 Endo preference for the ene reactionIntramolecular ene reactions 编辑 Intramolecular ene reactions benefit from less negative entropies of activation than their intermolecular counterparts so are usually more facile occurring even in the case of simple enophiles such as unactivated alkenes and alkynes 12 The high regio and stereoselectivities that can be obtained in these reactions can offer considerable control in the synthesis of intricate ring systems Considering the position of attachment of the tether connecting the ene and enophile Oppolzer 9 has classified both thermal and Lewis acid catalyzed intramolecular ene reactions as types I II and III and Snider 13 has added a type IV reaction Figure 7 In these reactions the orbital overlap between the ene and enophile is largely controlled by the geometry of the approach of components 3 nbsp Figure 7 Types of intramolecular ene reactions 路易斯酸 催化烯反应 编辑已隱藏部分未翻譯内容 歡迎參與翻譯 Advantages and rationale 编辑 Thermal ene reactions have several drawbacks such as the need for very high temperatures and the possibility of side reactions like proton catalyzed olefin polymerization or isomerization reactions Since enophiles are electron deficient it was reasoned that their complexation with Lewis acids should accelerate the ene reaction as it occurred for the reaction shown in Figure 8 nbsp Figure 8 Improvements brought to the ene reaction by Lewis acid catalysis Alkylaluminum halides are well known as proton scavengers and their use as Lewis acid catalysts in ene reactions has greatly expanded the scope of these reactions and has allowed their study and development under significantly milder conditions 13 Since a Lewis acid can directly complex to a carbonyl oxygen numerous trialkylaluminum catalysts have been developed for enophiles that contain a C O bond In particular it was found that Me2AlCl is a very useful catalyst for the ene reactions of a b unsaturated aldehydes and ketones as well as of other aliphatic and aromatic aldehydes The reason behind the success of this catalyst is the fact that the ene adduct Me2AlCl complex can further react to afford methane and aluminum alkoxide which can prevent proton catalyzed rearrangements and solvolysis Figure 9 13 nbsp Figure 9 Me2AlCl catalyzed carbonyl ene reactionsIn the case of directed carbonyl ene reactions high levels of regio and stereo selectivity have been observed upon addition of a Lewis Acid which can be explained through chair like transition states Notably some of these reactions Figure 10 can run at very low temperatures and still afford very good yields of a single regioisomer 9 nbsp Figure 10 Lewis acid catalyzed directed carbonyl ene reaction Reaction conditions 编辑 As long as the nucleophilicity of the alkyl group does not lead to side reactions catalytic amounts of Lewis acid are sufficient for many ene reactions with reactive enophiles Nonetheless the amount of Lewis acid can widely vary as it largely depends on the relative basicity of the enophile and the ene adduct In terms of solvent choice for the reactions the highest rates are usually achieved using halocarbons as solvents polar solvents such as ethers are not suitable as they would complex to the Lewis acid rendering the catalyst inactive 13 Reactivity of enes 编辑 While steric effects are still important in determining the outcome of a Lewis acid catalyzed ene reaction electronic effects are also significant since in such a reaction there will be a considerable positive charge developed at the central carbon of the ene As a result alkenes with at least one disubstituted vinylic carbon are much more reactive than mono or 1 2 disubstituted ones 13 机理 编辑 As seen in Figure 11 Lewis acid catalyzed ene reactions can proceed either through a concerted mechanism that has a polar transition state or through a stepwise mechanism with a zwitterionic intermediate The ene enophile and choice of catalyst can all influence which pathway is the lower energy process In general the more reactive the ene or enophile Lewis acid complex is the more likely the reaction is to be stepwise 13 nbsp Figure 11 Mechanisms of Lewis acid catalyzed ene reactionsChiral Lewis acids for the asymmetric catalysis of carbonyl ene reactions 编辑 Chiral dialkoxytitanium complexes and the synthesis of laulimalide 编辑 A current direction in the study of Lewis acid catalyzed ene reactions is the development of asymmetric catalysts for C C bond formation Mikami 14 has reported the use of a chiral titanium complex Figure 12 in asymmetric ene reactions involving prochiral glyoxylat esters The catalyst is prepared in situ from i PrO 2TiX2 and optically pure binaphthol the alkoxy ligand exchange being facilitated by the use of molecular sieves The method affords a hydroxy esters of high enantiomeric purities compounds that represent a class of biological and synthetic importance Figure 12 14 nbsp Figure 12 Asymmetric glyoxylate ene reaction catalyzed by a chiral titanium complex Since both R and S BINOL are commercially available in optically pure form this asymmetric process allows the synthesis of both enantiomers of a hydroxy esters and their derivatives However this method is only applicable to 1 1 disubstituted olefins due to the modest Lewis acidity of the titanium BINOL complex 14 As shown in Figure 13 Corey and co workers 15 propose an early transition state for this reaction with the goal of explaining the high enantioselectivity observed assuming that the reaction is exothermic as calculated from standard bond energies Even if the structure of the active catalyst is not known Corey s model proposes the following the aldehyde is activated by complexation with the chiral catalyst R BINOL TiX2 via the formyl lone electron pair syn to the formyl hydrogen to form a pentacoordinate Ti structure CH O hydrogen bonding occurs to the stereoelectronically most favorable oxygen lone pair of the BINOL ligand In such a structure the top re face of the formyl group is much more accessible to a nucleophile attack as the bottom si face is shielded by the neighboring naphtol moiety thus affording the observed configuration of the product nbsp Figure 13 Transition state proposed for the reaction in Figure 12 The formal total synthesis of laulimalide 16 Figure 14 illustrates the robustness of the reaction developed by Mikami Laulimalide is a marine natural product a metabolite of various sponges that could find a potential use as an anti tumor agent due to its ability to stabilize microtubuli One of the key steps in the strategy used for the synthesis of the C3 C16 fragment was a chirally catalyzed ene reaction that installed the C15 stereocenter Treatment of the terminal allyl group of compound 1 with ethyl glyoxylate in the presence of catalytic S BINOL TiBr2 provided the required alcohol in 74 yield and gt 95 ds This method eliminated the need for a protecting group or any other functionality at the end of the molecule In addition by carrying out this reaction Pitts et al managed to avoid the harsh conditions and low yields associated with installing exo methylene units late in the synthesis 16 nbsp Figure 14 Retrosynthetic analysis of the C3 C16 fragment of laulimalide and use of the ene reaction in its synthesis Chiral C2 symmetric Cu II complexes and the synthesis of azaspiracid 1 编辑 Evans and co workers 17 have devised a new type of enantioselective C2 symmetric Cu II catalysts to which substrates can chelate through two carbonyl groups The catalysts were found to afford high levels of asymmetric induction in several processes including the ene reaction of ethyl glyoxylate with different unactivated olefins Figure 15 reveals the three catalysts they found to be the most effective in affording gamma delta unsaturated alpha hydroxy esters in high yields and excellent enantio selectivities What is special about compound 2 is that it is bench stable and can be stored indefinitely making it convenient to use The reaction has a wide scope as shown in Figure 16 owing to the high Lewis acidity of the catalysts which can activate even weakly nucleophilic olefins such as 1 hexene and cyclohexene nbsp Figure 15 C2 symmetric Cu II catalysts developed for the enantioselective carbonyl ene reactions of olefins and ethyl glyoxylate nbsp Figure 16 Scope of the reaction catalyzed by C2 symmetric Cu II chiral Lewis acidsIn the case of catalysts 1 and 2 it has been proposed that asymmetric induction by the catalysts results from the formation of a square planar catalyst glyoxylate complex Figure 17 in which the Re face of the aldehyde is blocked by the tert butyl substituents thus allowing incoming olefins to attack only the Si face 18 This model does not account however for the induction observed when catalyst 3 was employed The current view 19 is that the geometry of the metal center becomes tetrahedral such that the sterically shielded face of the aldehyde moiety is the Re face nbsp Figure 17 Square planar and tetrahedral Cu II stereochemical models Initially the value of the method developed by Evans and coworkers was proved by successfully converting the resulting alpha hydroxy ester into the corresponding methyl ester free acid Weinreb amide and alpha azido ester without any racemization as shown in Figure 18 17 It is worth noting that the azide displacement of the alcohol that results from the carbonyl ene reaction provides a facile route towards the synthesis of orthogonally protected amino acids nbsp Figure 18 Derivatization of the alcohols afforded by C2 symmetric Cu II chiral Lewis acids The synthetic utility of the chiral C2 Symmetric Cu II catalysts was truly revealed in the formation of the C17 stereocenter of the CD ring fragment of azaspiracid 1 a very potent toxin cytotoxic to mammalian cells produced in minute quantities by multiple shellfish species including mussels oysters scallops clams and cockles 20 As shown in Figure 19 the reaction that establishes the C17 stereocenter is catalyzed by 1 mol Cu II complex 2 Figure 15 and the authors note that it can be conducted on a 20 g scale and still give very good yields and excellent enantioselectivities Furthermore the product can be easily converted into the corresponding Weinreb amide without any loss of selectivity allowing for the facile introduction of the C14 methyl group Thus this novel catalytic enantioselective process developed by Evans and coworkers can be easily integrated into complex synthesis projects particularly early on in the synthesis when high yields and enantioselectivites are of utmost importance nbsp Figure 19 Structure of azaspiracid 1 and the ene reaction used to introduce the C17 stereocenter 变化 编辑羰基ene反应 编辑 当亲烯体为羰基的时候 这类反应通常被叫做羰基ene反应 21 例如 香茅醛在路易斯酸 五氯化铌 的催化下发生分子内关环反应 22 nbsp 羰基ene反应 单线态氧ene反应 编辑 在单线态氧ene反应中 单线态氧与烯丙基过氧化物反应 23 24 此反应最早是由Schenck在1945年发现 所以有时也被叫做Schenck ene反应 25 其它 编辑 二氧化硅氧化反应也是一个伴随着retro 3 2 反应的ene反应参见 编辑狄尔斯 阿尔德反应 Certain isotoluenes isomerize by an ene mechanism参考文献 编辑 Alder K et al Ber 1943 76 27 Succinic acid cinnamyl Christian S Rondestvedt Jr Organic Syntheses Coll Vol 4 p 766 1963 Vol 31 p 85 1951 Article 页面存档备份 存于互联网档案馆 3 0 3 1 3 2 3 3 3 4 Paderes G D Jorgensen W L Computer assisted mechanistic evaluation of organic reactions 20 Ene and retro ene chemistry J Org Chem 1992 57 6 1904 doi 10 1021 jo00032a054 and references therein 4 0 4 1 Inagaki S Fujimoto H Fukui K J Orbital interaction in three systems J Am Chem Soc 1976 41 16 4693 doi 10 1021 ja00432a001 5 0 5 1 Fernandez I Bickelhaupt F M Alder ene reaction Aromaticity and activation strain analysis Journal of Computational Chemistry 2012 33 5 509 16 PMID 22144106 doi 10 1002 jcc 22877 Stephenson L M Mattern D L Stereochemistry of an ene reaction of dimethyl azodicarboxylate J Org Chem 1976 41 22 3614 doi 10 1021 jo00884a030 Loncharich R J Houk K N Transition structures of ene reactions of ethylene and formaldehyde with propene J Am Chem Soc 1987 109 23 6947 doi 10 1021 ja00257a008 Schnabel Christoph Sterz Katja MuLler Henrik Rehbein Julia Wiese Michael Hiersemann Martin Total Synthesis of Natural and Non Natural D5 6D12 13 Jatrophane Diterpenes and Their Evaluation as MDR Modulators The Journal of Organic Chemistry 2011 76 2 512 PMID 21192665 doi 10 1021 jo1019738 9 0 9 1 9 2 9 3 9 4 9 5 引用错误 没有为名为MikamiRev的参考文献提供内容 Hoffmann H M R The Ene Reaction Angew Chem Int Ed 1969 8 8 556 doi 10 1002 anie 196905561 Thaler W A Franzus B J The Reaction of Ethyl Azodicarboxylate with Monoolefins J Org Chem 1964 29 8 2226 doi 10 1021 jo01031a029 Oppolzer W Snieckus V Intramolecular Ene Reactions in Organic Synthesis Angew Chem Int Ed Engl 1978 17 7 476 doi 10 1002 anie 197804761 13 0 13 1 13 2 13 3 13 4 13 5 引用错误 没有为名为Snider的参考文献提供内容 14 0 14 1 14 2 Mikami K Terada M Takeshi N Catalytic asymmetric glyoxylate ene reaction A practical access to alpha hydroxy esters in high enantiomeric purities J Am Chem Soc 1990 112 10 3949 doi 10 1021 ja00166a035 Corey E J Barnes Seeman D Lee T W Goodman S N A transition state model for the mikami enantioselective ene reaction Tetrahedron Letters 1997 37 37 6513 doi 10 1016 S0040 4039 97 01517 7 16 0 16 1 Pitts M R Mulzer J A chirally catalysed ene reaction in a novel formal total synthesis of the antitumor agent laulimalide Tetrahedron Letters 2002 43 47 8471 doi 10 1016 S0040 4039 02 02086 5 17 0 17 1 Evans D A Tregay S W Burgey C S Paras N A Vojkovsky T C2 Symmetric Copper II Complexes as Chiral Lewis Acids Catalytic Enantioselective Carbonyl Ene Reactions with Glyoxylate and Pyruvate Esters J Am Chem Soc 2000 122 33 7936 doi 10 1021 ja000913t Johnson J S Evans D A Chiral bis oxazoline copper II complexes Versatile catalysts for enantioselective cycloaddition Aldol Michael and carbonyl ene reactions Acc Chem Res 2000 33 6 325 35 PMID 10891050 doi 10 1021 ar960062n Johannsen Mogens Joergensen Karl Anker Asymmetric hetero Diels Alder reactions and ene reactions catalyzed by chiral copper II complexes The Journal of Organic Chemistry 1995 60 18 5757 doi 10 1021 jo00123a007 Evans D A Kaerno L Dunn T B Beauchemin A Raymer B Mulder J A Olhava E J Juhl M Kagechika K Favor D A Total synthesis of azaspiracid 1 An exhibition of the intricacies of complex molecule synthesis J Am Chem Soc 2008 130 48 16295 309 PMC 3408805 nbsp PMID 19006391 doi 10 1021 ja804659n Snider B B Comp Org Syn 1991 2 527 561 Review Intramolecular ene reactions catalyzed by NbCl5 TaCl5 and InCl3 Carlos Kleber Z Andrade Otilie E Vercillo Juliana P Rodrigues Denise P Silveira J Braz Chem Soc vol 15 no 6 Sao Paulo Nov Dec 2004 Article 页面存档备份 存于互联网档案馆 Wasserman H H Ives J L Tetrahedron 1981 37 1825 1852 Review doi 10 1016 S0040 4020 01 97932 3 Clennan E L Tetrahedron 2000 56 9151 9179 Review doi 10 1016 S0040 4020 00 00794 8 Schenck G O Naturwissenschaften 1948 35 28 29 取自 https zh wikipedia org w index php title 烯反应 amp oldid 77134839, 维基百科,wiki,书籍,书籍,图书馆,

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