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Recent advances in the transformation of maleimides annulation. | LitMetric

Recent advances in the transformation of maleimides annulation.

Org Biomol Chem

School of Chemical Engineering, Yeungnam University, Gyeongsan 38541, Republic of Korea.

Published: January 2025

AI Article Synopsis

  • Maleimide scaffolds have become popular in organic synthesis for their effectiveness in creating cyclized molecules via annulation and C-H activation over the past five years.
  • These compounds facilitate the synthesis of diverse products like spirocyclization and cycloaddition, with important roles in medicinal chemistry and materials science.
  • Despite their benefits, certain maleimide reactions remain less studied; however, recent techniques like photocatalysis are enhancing the potential for sustainable and selective synthesis of complex molecules.

Article Abstract

Over the past five years, maleimide scaffolds have gained considerable attention in organic synthesis for their role in forming cyclized molecules through annulation and C-H activation. As versatile and reactive coupling agents, maleimides have enabled the efficient synthesis of various cyclized products, including annulation, benzannulation, cycloaddition, and spirocyclization, with applications in medicinal chemistry, drug discovery, and materials science. Despite the extensive study of maleimide chemistry, certain reactions-such as cycloaddition-based annulation, photoannulation, and electrochemical transformations-remain underexplored despite their promising potential in the pharmaceutical and chemical industries. Recent advancements, such as photocatalysis and electrochemical methods, have expanded the utility of maleimides, providing more sustainable and selective approaches for synthesizing complex molecules. This review compiles research published between 2019 and 2024, highlighting the substrate scope, reaction diversity, and industrial relevance of maleimide-based annulation strategies. Additionally, we discuss emerging trends and future directions in maleimide chemistry, exploring opportunities for novel reaction pathways and broader applications in synthetic biology and materials science.

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Source
http://dx.doi.org/10.1039/d4ob01632gDOI Listing

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