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1.
Nature ; 629(8010): 98-104, 2024 May.
Article in English | MEDLINE | ID: mdl-38693411

ABSTRACT

Photobiocatalysis-where light is used to expand the reactivity of an enzyme-has recently emerged as a powerful strategy to develop chemistries that are new to nature. These systems have shown potential in asymmetric radical reactions that have long eluded small-molecule catalysts1. So far, unnatural photobiocatalytic reactions are limited to overall reductive and redox-neutral processes2-9. Here we report photobiocatalytic asymmetric sp3-sp3 oxidative cross-coupling between organoboron reagents and amino acids. This reaction requires the cooperative use of engineered pyridoxal biocatalysts, photoredox catalysts and an oxidizing agent. We repurpose a family of pyridoxal-5'-phosphate-dependent enzymes, threonine aldolases10-12, for the α-C-H functionalization of glycine and α-branched amino acid substrates by a radical mechanism, giving rise to a range of α-tri- and tetrasubstituted non-canonical amino acids 13-15 possessing up to two contiguous stereocentres. Directed evolution of pyridoxal radical enzymes allowed primary and secondary radical precursors, including benzyl, allyl and alkylboron reagents, to be coupled in an enantio- and diastereocontrolled fashion. Cooperative photoredox-pyridoxal biocatalysis provides a platform for sp3-sp3 oxidative coupling16, permitting the stereoselective, intermolecular free-radical transformations that are unknown to chemistry or biology.


Subject(s)
Amino Acids , Biocatalysis , Oxidative Coupling , Photochemical Processes , Amino Acids/biosynthesis , Amino Acids/chemistry , Amino Acids/metabolism , Biocatalysis/radiation effects , Directed Molecular Evolution , Free Radicals/chemistry , Free Radicals/metabolism , Glycine/chemistry , Glycine/metabolism , Glycine Hydroxymethyltransferase/metabolism , Glycine Hydroxymethyltransferase/chemistry , Indicators and Reagents , Light , Oxidative Coupling/radiation effects , Pyridoxal Phosphate/metabolism , Stereoisomerism , Amino Acids, Branched-Chain/chemistry , Amino Acids, Branched-Chain/metabolism
2.
Chem Catal ; 3(4)2023 Apr 20.
Article in English | MEDLINE | ID: mdl-37577259

ABSTRACT

Aromatic nitriles are important building blocks with wide applications in pharmaceutical and agrochemical industries as well as materials science. In a recent Chem Catalysis paper, Gröger and coworkers engineered aliphatic aldoxime dehydratases (Oxds) for the scalable synthesis of aromatic nitriles, delivering a sustainable and energy-efficient technology for the manufacturing of aromatic nitriles.

3.
Science ; 381(6656): 444-451, 2023 07 28.
Article in English | MEDLINE | ID: mdl-37499030

ABSTRACT

Developing synthetically useful enzymatic reactions that are not known in biochemistry and organic chemistry is an important challenge in biocatalysis. Through the synergistic merger of photoredox catalysis and pyridoxal 5'-phosphate (PLP) biocatalysis, we developed a pyridoxal radical biocatalysis approach to prepare valuable noncanonical amino acids, including those bearing a stereochemical dyad or triad, without the need for protecting groups. Using engineered PLP enzymes, either enantiomeric product could be produced in a biocatalyst-controlled fashion. Synergistic photoredox-pyridoxal radical biocatalysis represents a powerful platform with which to discover previously unknown catalytic reactions and to tame radical intermediates for asymmetric catalysis.


Subject(s)
Amino Acids , Pyridoxal Phosphate , Amino Acids/biosynthesis , Amino Acids/chemistry , Biocatalysis , Pyridoxal Phosphate/chemistry , Stereoisomerism
4.
Nat Synth ; 2(8): 699-700, 2023 Aug.
Article in English | MEDLINE | ID: mdl-38404934

ABSTRACT

Efficient assembly and functionalization of biologically active steroids continue to pose a significant synthetic hurdle. The mining and engineering of selective P450 C-H hydroxylases combined with chemoenzymatic synthesis furnished a new solution to this challenging problem.

5.
J Am Chem Soc ; 141(47): 18825-18835, 2019 11 27.
Article in English | MEDLINE | ID: mdl-31703165

ABSTRACT

The catalytic asymmetric functionalization of readily available 1,3-dienes is highly important, but current examples are mostly limited to the construction of tertiary chiral centers. The asymmetric generation of acyclic products containing all-carbon quaternary stereocenters from substituted 1,3-dienes represents a more challenging, but highly desirable, synthetic process for which there are very few examples. Herein, we report the highly selective copper-catalyzed generation of chiral all-carbon acyclic quaternary stereocenters via functionalization of 1,3-dienes with CO2. A variety of readily available 1,1-disubstituted 1,3-dienes, as well as a 1,3,5-triene, undergo reductive hydroxymethylation with high chemo-, regio-, E/Z-, and enantioselectivities. The reported method features good functional group tolerance, is readily scaled up to at least 5 mmol of starting diene, and generates chiral products that are useful building blocks for further derivatization. Systemic mechanistic investigations using density functional theory calculations were performed and provided the first theoretical investigation for an asymmetric transformation involving CO2. These computational results indicate that the 1,2-hydrocupration of 1,3-diene proceeds with high π-facial selectivity to generate an (S)-allylcopper intermediate, which further induces the chirality of the quaternary carbon center in the final product. The 1,4-addition of an internal allylcopper complex, which differs from previous reports involving terminal allylmetallic intermediates, to CO2 kinetically determines the E/Z- and regioselectivity. The rapid reduction of a copper carboxylate intermediate to the corresponding silyl-ether in the presence of Me(MeO)2SiH provides the exergonic impetus and leads to chemoselective hydroxymethylation rather than carboxylation. These results provide new insights for guiding further development of asymmetric C-C bond formations with CO2.

6.
Nat Commun ; 10(1): 3592, 2019 08 09.
Article in English | MEDLINE | ID: mdl-31399588

ABSTRACT

Catalytic difunctionalization of alkenes has been an ideal strategy to generate structurally complex molecules with diverse substitution patterns. Although both phosphonyl and carboxyl groups are valuable functional groups, the simultaneous incorporation of them via catalytic difunctionalization of alkenes, ideally from abundant, inexpensive and easy-to-handle raw materials, has not been realized. Herein, we report the phosphonocarboxylation of alkenes with CO2 via visible-light photoredox catalysis. This strategy is sustainable, general and practical, providing facile access to important ß-phosphono carboxylic acids, including structurally complex unnatural α-amino acids. Diverse alkenes, including enamides, styrenes, enolsilanes and acrylates, undergo such reactions efficiently under mild reaction conditions. Moreover, this method represents a rare example of redox-neutral difunctionalization of alkenes with H-P(O) compounds, including diaryl- and dialkyl- phosphine oxides and phosphites. Importantly, these transition-metal-free reactions also feature low catalyst loading, high regio- and chemo-selectivities, good functional group tolerance, easy scalability and potential for product derivatization.

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