| Literature DB >> 24755598 |
Paul A Wender1, Dennis N Fournogerakis2, Matthew S Jeffreys2, Ryan V Quiroz2, Fuyuhiko Inagaki1, Magnus Pfaffenbach1.
Abstract
Multicomponent reactions allow for more bond-forming events per synthetic operation, enabling more step- and time-economical conversion of simple starting materials to complex and thus value-added targets. These processes invariably require that reactivity be relayed from intermediate to intermediate over several mechanistic steps until a termination event produces the final product. Here, we report a multicomponent process in which a novel 1,2,3-butatriene equivalent (TMSBO: TMSCH2C≡CCH2OH) engages chemospecifically as a two-carbon alkyne component in a metal-catalysed [5 + 2] cycloaddition with a vinylcyclopropane to produce an intermediate cycloadduct. Under the reaction conditions, this intermediate undergoes a remarkably rapid 1,4-Peterson elimination, producing a reactive four-carbon diene intermediate that is readily intercepted in either a metal-catalysed or thermal [4 + 2] cycloaddition. TMSBO thus serves as an yne-to-diene transmissive reagent coupling two powerful and convergent cycloadditions--the homologous Diels-Alder and Diels-Alder cycloadditions--through a vinylogous Peterson elimination, and enabling flexible access to diverse polycycles.Entities:
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Year: 2014 PMID: 24755598 PMCID: PMC4059072 DOI: 10.1038/nchem.1917
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427
Figure 1Retrosynthetic analysis of staurosporine analogues based on butatriene-enabled cycloadditions. With the goal of step-economically generating a library of simplified staurosporine analogues with selective kinase inhibitory function (FOS: function-oriented synthesis), we envisaged a 1,2,3-butatriene (V) reacting first in a [5+2] cycloaddition to provide a 1,3-diene ready for a subsequent [4+2] cycloaddition.
Figure 2General depiction of the [5+2] cycloaddition/vinylogous Peterson elimination/[4+2] cycloaddition cascade and mechanistic possibilities. The 1,2,3-butatriene equivalent, TMSBO, reacts under rhodium catalysis to give an intermediate cycloadduct. Under the reaction conditions, we observed the spontaneous deprotection of the enol ether and an unexpectedly facile vinylogous Peterson elimination, giving directly the 1,3-diene we had envisaged in our retrosynthetic analysis. The Peterson elimination presumably occurs by either a Lewis acid promoted elimination or a zwitterionic cycloreversion. In the presence of a suitable dienophile, a one-flask conversion to polycyclic products can be achieved.
[5+2]/vinylogous Peterson/[4+2] adducts using VCP 1 and TMSBO 2
Reactions were conducted at room temperature unless otherwise noted.
Unless otherwise noted, this time is the time required for only the [4+2] portion of the reaction cascade
2 mol% [(naph)Rh(COD)]SbF6
The [4+2] cycloaddition was effected at 70 °C
5 mol% [(naph)Rh(COD)]SbF6
This time reflects the total time for both the [5+2] and [4+2] processes
Reaction run at 0.330 M
The [4+2] cycloaddition was effected at 100 °C
Product is a 1.8:1 mixture of cis:trans esters starting from pure dimethyl maleate
Oxidative aromatization of reaction products
The initial cycloadduct oxidizes readily and was thus converted directly to compound 8
Additionally functionalized [5+2]/vinylogous Peterson/[4+2] products
Reactions run at room temperature with 5 mol% [(naph)Rh(COD)]SbF6
1:1 mixture of diastereomers
4.2:1 mixture of regioisomers (major isomer shown)