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Syntheses and Transformations of α-Amino Acids via Palladium-Catalyzed Auxiliary-Directed sp3 C–H Functionalization

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TLDR
P palladium-catalyzed bidentate auxiliary-directed C-H functionalization reactions for αAA substrates enable new retrosynthetic logic for the synthesis of many basic αAAs from a common alanine precursor and may facilitate the efficient total synthesis of complex peptide natural products.
Abstract
α-Amino acids (αAA) are one of the most useful chiral building blocks for synthesis. There are numerous general strategies that have commonly been used for αAA synthesis, many of which employ de novo synthesis focused on enantioselective bond construction around the Cα center and others that consider conversion of existing αAA precursors carrying suitable functional groups on side chains (e.g., serine and aspartic acid). Despite significant advances in synthetic methodology, the efficient synthesis of enantiopure αAAs carrying complex side chains, as seen in numerous peptide natural products, remains challenging. Complementary to these "conventional" strategies, a strategy based on the selective functionalization of side chain C-H bonds, particularly sp(3) hybridized C-H bonds, of various readily available αAA precursors may provide a more straightforward and broadly applicable means for the synthesis and transformation of αAAs. However, many hurdles related to the low reactivity of C(sp(3))-H bonds and the difficulty of controlling selectivity must be overcome to realize the potential of C-H functionalization chemistry in this synthetic application. Over the past few years, we have carried out a systematic investigation of palladium-catalyzed bidentate auxiliary-directed C-H functionalization reactions for αAA substrates. Our strategies utilize two different types of amide-linked auxiliary groups, attached at the N or C terminus of αAA substrates, to exert complementary regio- and stereocontrol on C-H functionalization reactions through palladacycle intermediates. A variety of αAA precursors can undergo multiple modes of C(sp(3))-H functionalization, including arylation, alkenylation, alkynylation, alkylation, alkoxylation, and intramolecular aminations, at the β, γ, and even δ positions to form new αAA products with diverse structures. In addition to transforming αAAs at previously unreachable positions, these palladium-catalyzed C-H functionalization strategies enable new retrosynthetic logic for the synthesis of many basic αAAs from a common alanine precursor. This approach reduces the synthetic difficulty for many αAAs by bypassing the requirement for stereocontrol at Cα and relies on straightforward and convergent single-bond coupling transformations at the β-methyl position of alanine to access a wide range of β-monosubstituted αAAs. Moreover, these β-monosubstituted αAAs can undergo further C-H functionalization at the β-methylene position to generate various β-branched αAAs in a stereoselective and programmable fashion. These new strategies offer readily applicable methods for synthesis of challenging αAAs and may facilitate the efficient total synthesis of complex peptide natural products.

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Journal ArticleDOI

Transition Metal-Catalyzed C–H Amination: Scope, Mechanism, and Applications

TL;DR: This Review comprehensively highlights recent advances in intra- and intermolecular C-H amination reactions utilizing late transition metal-based catalysts using mechanistic scaffolds and types of reactions.
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Palladium-Catalyzed Transformations of Alkyl C-H Bonds.

TL;DR: A number of mono- and bidentate ligands have also proven to be effective for accelerating C(sp3)-H activation directed by weakly coordinating auxiliaries, which provides great opportunities to control reactivity and selectivity in Pd-catalyzed C-H functionalization reactions.
Journal ArticleDOI

Bidentate Directing Groups: An Efficient Tool in C-H Bond Functionalization Chemistry for the Expedient Construction of C-C Bonds.

TL;DR: This review broadly discusses various C-H bond functionalization reactions for the formation of C-C bonds with the aid of bidentate directing groups.
Journal ArticleDOI

Direct Photocatalyzed Hydrogen Atom Transfer (HAT) for Aliphatic C-H Bonds Elaboration

TL;DR: A comprehensive review of the synthetic applications of photocatalyzed d-HAT can be found in this article, where the authors provide a comprehensive overview of the main applications of PCHAT.
Journal ArticleDOI

Construction of Quaternary Stereocenters by Palladium‐Catalyzed Carbopalladation‐Initiated Cascade Reactions

TL;DR: In this Minireview, recent achievements in palladium-catalyzed domino Heck/C-H functionalizations and developments in enantioselective carbopalladation-initiated domino processes are summarized.
References
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Journal ArticleDOI

Palladium-Catalyzed Ligand-Directed C−H Functionalization Reactions

TL;DR: This is the first comprehensive review encompassing the large body of work in this field over the past 5 years, and will focus specifically on ligand-directed C–H functionalization reactions catalyzed by palladium.
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Palladium(II)-catalyzed C-H activation/C-C cross-coupling reactions: versatility and practicality.

TL;DR: A review of palladium-catalyzed coupling of CH bonds with organometallic reagents through a PdII/Pd0 catalytic cycle can be found in this paper.
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C-H bond functionalization: emerging synthetic tools for natural products and pharmaceuticals

TL;DR: This Review provides an overview of C-H bond functionalization strategies for the rapid synthesis of biologically active compounds such as natural products and pharmaceutical targets.
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Catalytic C–H functionalization by metal carbenoid and nitrenoid insertion

TL;DR: Several facets of these kinds of C–H functionalization reactions are discussed and a perspective on how this methodology has affected the synthesis of complex natural products and potential pharmaceutical agents are provided.
Journal ArticleDOI

C-H Bond Functionalization in Complex Organic Synthesis

TL;DR: In this paper, the functionalization of C-H bonds in complex organic substrates catalyzed by transition metal catalysts is studied and the key concepts and approaches aimed at achieving selectivity in complex settings are discussed.
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