Fluorinated 4-Methylideneisoxazolidin-5-ones: Synthesis and Apoptosis-Inducing Antiproliferative Activity

Abstract Sesquiterpene lactones, featuring an α-methylene-γ-lactone moiety, serve as lead compounds for anticancer drug development. Their nitrogen-containing analogues, namely, 4-methylideneisoxazolidin-5-ones, have attracted special attention for their promising anticancer properties. Installing a fluorine atom at the exocyclic double bond of these analogues is highly desirable for improving metabolic stability, bioavailability, and lipophilicity, yet this has not been achieved to date due to the lack of an efficient synthetic method, representing a major obstacle in drug development. Herein, we report a Ni(II)-catalyzed [3 + 2] cycloaddition/rearrangement cascade reaction of gem-difluorocyclopropenyl imides and N-Bn nitrones, providing direct access to (Z)-4-(monofluoroalkylidene)isoxazolidin-5-ones in good to high yields. The compounds 3aw and 3as show promising in vitro antiproliferative activity against mouse mammary carcinoma 4T1 cells (IC50 = 6.85 ± 0.43 μM) and human lung carcinoma A549 cells (IC50 = 10.34 ± 0.07 μM), respectively. Mechanistic studies reveal that the activity occurs via a mitochondria-mediated intrinsic apoptotic pathway.

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Journal
ACS Medicinal Chemistry Letters
Published
2026-09-25
DOI
https://doi.org/10.1021/acsmedchemlett.6c00344
Primary Topic
Cyclopropane Reaction Mechanisms
Type
article
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article

Fluorinated 4-Methylideneisoxazolidin-5-ones: Synthesis and Apoptosis-Inducing Antiproliferative Activity

Yiyong Huang, Zi‐Han Li, Subarna Jyoti Kalita, Yi‐Chao Li et al.
ACS Medicinal Chemistry Letters
Cyclopropane Reaction Mechanisms
article

Fluorinated 4-Methylideneisoxazolidin-5-ones: Synthesis and Apoptosis-Inducing Antiproliferative Activity

Yiyong Huang, Zi‐Han Li, Subarna Jyoti Kalita, Yi‐Chao Li, Han Ya, Xue-Qiong Zhang
article en

Abstract

Abstract Sesquiterpene lactones, featuring an α-methylene-γ-lactone moiety, serve as lead compounds for anticancer drug development. Their nitrogen-containing analogues, namely, 4-methylideneisoxazolidin-5-ones, have attracted special attention for their promising anticancer properties. Installing a fluorine atom at the exocyclic double bond of these analogues is highly desirable for improving metabolic stability, bioavailability, and lipophilicity, yet this has not been achieved to date due to the lack of an efficient synthetic method, representing a major obstacle in drug development. Herein, we report a Ni(II)-catalyzed [3 + 2] cycloaddition/rearrangement cascade reaction of gem-difluorocyclopropenyl imides and N-Bn nitrones, providing direct access to (Z)-4-(monofluoroalkylidene)isoxazolidin-5-ones in good to high yields. The compounds 3aw and 3as show promising in vitro antiproliferative activity against mouse mammary carcinoma 4T1 cells (IC50 = 6.85 ± 0.43 μM) and human lung carcinoma A549 cells (IC50 = 10.34 ± 0.07 μM), respectively. Mechanistic studies reveal that the activity occurs via a mitochondria-mediated intrinsic apoptotic pathway.

ACS Medicinal Chemistry Letters
Wuhan University of Technology (CN), Hunan Institute of Engineering (CN), Hunan Institute of Microbiology (CN)
Good health and well-being
Openalex Percentile: Top 22%
Cyclopropane Reaction Mechanisms
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Fluorinated 4-Methylideneisoxazolidin-5-ones: Synthesis and Apoptosis-Inducing Antiproliferative Activity — Yiyong Huang, Zi‐Han Li, et al. · ACS Medicinal Chemistry Letters (2026) | TGRS Research Map | TGRS