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Updated: May 25, 2025

A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
Published on: November 12, 2016
Regiodivergent Alkylation of Pyridines: Alkyllithium Clusters Direct Chemical Reactivity
Woohyun Jo1, Chattawat Thangsrikeattigun2,3, Changsu Ryu1
1Department of Chemistry, Pohang University of Science and Technology (POSTECH), Pohang 37673, Republic of Korea.
Abstract:
Regiodivergent C-C bond-forming reactions are a powerful tool for constructing diverse molecular architectures from common precursors. While transition metal catalysis has dominated regioselective transformations, achieving similar precision with transition-metal-free methods remains an unmet challenge, particularly when using identical starting materials. In this work, we report a transition-metal-free, regiodivergent direct alkylation of electronically unbiased pyridines using 1,1-diborylalkanes as the sole alkylating agent. The key to controlling regioselectivity lies in the choice of alkyllithium activator of 1,1-diborylalkanes: methyllithium directs alkylation predominantly to the C4 position, while sec-butyllithium promotes C2-alkylation. Mechanistic studies reveal that the structural dynamics of alkyllithium clusters dictate the regioselectivity, with tetrameric clusters favoring C4-alkylation and dimeric clusters preferring C2-alkylation. This method demonstrates broad substrate scope, enables late-stage functionalization of complex molecules, and allows for the sequential installation of two distinct alkyl groups onto a pyridine scaffold. Our approach provides a versatile tool for site-selective pyridine functionalization, offering new possibilities for synthesizing diverse alkylated pyridines in pharmaceutical and materials research.
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Preparation of Alkynes: Alkylation Reaction
Alkylation of terminal alkynes with primary alkyl halides in the presence of a strong base like sodium amide is one of the common methods for the synthesis of longer carbon-chain alkynes. For example, treatment of 1-propyne with sodium amide followed by reaction with ethyl bromide yields 2-pentyne.
Electrophilic Addition to Alkynes: Halogenation
Halogenation is another class of electrophilic addition reactions where a halogen molecule gets added across a π bond. In alkynes, the presence of two π bonds allows for the addition of two equivalents of halogens (bromine or chlorine). The addition of the first halogen molecule forms a trans-dihaloalkene as the major product and the cis isomer as the minor product. Subsequent addition of the second equivalent yields the tetrahalide.
α-Alkylation of Ketones via Enolate Ions
Reduction of Alkynes to cis-Alkenes: Catalytic Hydrogenation
Like alkenes, alkynes can be reduced to alkanes in the presence of transition metal catalysts such as Pt, Pd, or Ni. The reaction involves two sequential syn additions of hydrogen via a cis-alkene intermediate.
Preparation of Alkynes: Dehydrohalogenation
Alkynes can be prepared by dehydrohalogenation of vicinal or geminal dihalides in the presence of a strong base like sodium amide in liquid ammonia. The reaction proceeds with the loss of two equivalents of hydrogen halide (HX) via two successive E2 elimination reactions.
Alkynes to Aldehydes and Ketones: Hydroboration-Oxidation
One of the convenient methods for the preparation of aldehydes and ketones is via hydration of alkynes. Hydroboration-oxidation of alkynes is an indirect hydration reaction in which an alkyne is treated with borane followed by oxidation with alkaline peroxide to form an enol that rapidly converts into an aldehyde or a ketone. Terminal alkynes form aldehydes, whereas internal alkynes give ketones as the final product.