Catalyst-controlled Asymmetric Synthesis of Fostriecin and 8-epi-fostriecin
Overview
Authors
Affiliations
Catalytic asymmetric synthesis of the natural antibiotic fostriecin (CI-920) and its analogue 8-epi-fostriecin and evaluation of their biological activity are described. We used four catalytic asymmetric reactions to construct all of the chiral centers of fostriecin and 8-epi-fostriecin; cyanosilylation of a ketone, Yamamoto allylation, direct aldol reaction, and Noyori reduction, two of which were developed by our group. Catalytic enantioselective cyanosilylation of ketone 13 produced the chiral tetrasubstituted carbon at C-8. Both enantiomers of the product cyanohydrin were obtained with high enantioselectivity by switching the center metal of the catalyst from titanium to gadolinium. Yamamoto allylation constructed the C-5 chiral carbon in the alpha,beta-unsaturated lactone moiety. A direct catalytic asymmetric aldol reaction of an alkynyl ketone using LLB catalyst constructed the chirality at C-9 with the introduction of a synthetically versatile alkyne moiety, which was later converted to cis-vinyl iodide, the substrate for the subsequent Stille coupling for the triene synthesis. Noyori reduction produced the secondary alcohol at C-11 from the acetylene ketone 6 with excellent selectivity. Importantly, all the stereocenters were constructed under catalyst control in this synthesis. This strategy should be useful for rapid synthesis of stereoisomers of fostriecin.
Thorat R, Brooks B, Nichols B, Harned A Tetrahedron. 2019; 74(51):7277-7281.
PMID: 30636818 PMC: 6327972. DOI: 10.1016/j.tet.2018.10.066.
Synthetic Strategies Employed for the Construction of Fostriecin and Related Natural Products.
Trost B, Knopf J, Brindle C Chem Rev. 2016; 116(24):15035-15088.
PMID: 28027648 PMC: 5720176. DOI: 10.1021/acs.chemrev.6b00488.
Trost B, Hung C J Am Chem Soc. 2015; 137(50):15940-6.
PMID: 26630114 PMC: 4866649. DOI: 10.1021/jacs.5b11248.
Chiral poly-rare earth metal complexes in asymmetric catalysis.
Shibasaki M Proc Jpn Acad Ser B Phys Biol Sci. 2015; 82(2):72-85.
PMID: 25792774 PMC: 4323051. DOI: 10.2183/pjab.82.72.
Protein phosphatase 2A dephosphorylates CaBP4 and regulates CaBP4 function.
Haeseleer F, Sokal I, Gregory F, Lee A Invest Ophthalmol Vis Sci. 2013; 54(2):1214-26.
PMID: 23341017 PMC: 3575156. DOI: 10.1167/iovs.12-11319.