Anti-Inflammatory Activity of Cyclic Imide Derivatives
Abstract
1. Introduction
2. Cyclic Imides with Anti-Inflammatory Activities
2.1. Monocyclic Imide Derivatives
2.1.1. Succinimide Derivatives
2.1.2. Glutarimide Derivatives
2.1.3. Hydantoin Derivatives
2.1.4. Maleimide Derivatives
2.2. Bicyclic Derivatives
2.2.1. Bicyclic Imides Fused to a Benzene Ring
2.2.2. Bicyclic Imides Fused to a Heterocyclic Ring
2.2.3. Bicyclic Imides Fused to an Unsaturated Ring
2.3. Polycyclic Imides
2.3.1. Naphthalimide Derivatives
2.3.2. Other Polycyclic Imides
3. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| AIA | Adjuvant-induced arthritis |
| ALI | Acute lung injury |
| AMES II | This assay is a 384-well microplate format modification of the classic bacterial reverse mutation test |
| AMPA | α-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic |
| AP-1 | Activator protein 1 |
| BHA | Butylhydroxyanisole |
| Caco-2 | Cell line of human colorectal adenocarcinoma cells |
| CAIs | Cholesterol absorption inhibitors |
| cAMP | Cyclic adenosine monophosphate |
| CCL2, CXCL1 | Chemokines |
| CIA | Collagen-induced arthritis |
| COX-1, COX-2 | Cyclooxygenases |
| CRP | C-reactive protein |
| CXCR3 | Chemokine receptor |
| fMLP | N-formylmethionyl-leucyl-phenylalanine |
| GPCRs | G protein-coupled receptors |
| GPs | Glutarimide-containing polyketides |
| GTI | Gastrointestinal tissue index |
| hERG | Human ether-à-go-go-Related Gene |
| IDO | Indoleamine-pyrrole 2,3-dioxygenase |
| IL-6 | Interleukin 6 |
| IMiDs | Immunomodulatory drugs |
| IFN-γ | Cytokine interferon gamma |
| iNOS | Inducible nitric oxide synthase |
| LDH | Lactate dehydrogenase |
| LOX | Lipoxygenase |
| LPS | Lipopolysaccharide |
| MAPK | Mitogen-activated protein kinase |
| MDA | Malondialdehyde |
| Me-NFM | 4-Methyl-N-phenylmaleimide |
| MM | Multiple myeloma |
| MMP | Matrix metalloproteinase |
| MNT | Mammalian cell micronucleus test |
| MPO | Myeloperoxidase |
| NF-κB | Nuclear factor kappa B |
| NS-398 | Non-steroidal anti-inflammatory agent with analgesic and antipyretic effects |
| PAF | Platelet-activating factor |
| PBMCs | Stimulated peripheral blood mononuclear cells |
| PDE4 | Inhibitor-phosphodiesterase 4 |
| PGE2 | Prostaglandin E2 |
| PLC | Phospholipase C |
| PLSN | Partial ligation of the sciatic nerve |
| PMNLs | Polymorphonuclear leukocytes |
| ROS | Reactive oxygen species |
| SOD | Superoxide dismutase |
| STAT1, STAT2 | Signal transducer and activator of transcription (1 or 2) |
| Syk | Spleen tyrosine kinase |
| TACE | TNFα-converting enzyme |
| TLR4 | Toll-like receptor 4 |
| TNF | Tumor necrosis factor |
| VEGF | Vascular endothelial growth factor |
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| Principal Molecular Target/Pathway | Representative Compounds | Biological Effect | Experimental Model |
|---|---|---|---|
| Kinase-mediated signaling (Syk, GSK-3, MAPK) | 1, 42, 101 | Inhibition of pro-inflammatory kinase signaling; IL-6, MMP-3, MAPK activation | In vitro; cellular models |
| Chemokine receptor modulation (CXCR3)/ (CXCL) | 2a–d, 18 | CXCR3/CXCL antagonism | Receptor assay |
| IDO pathway (hIDO-1) | 3 | Immunomodulatory activity via IDO inhibition | Enzymatic |
| Cyclooxygenase pathway (COX-1/COX-2) | 4a–b, 6a–c, 7, 16a–e, 27a–e, 53, 56a–c, 57, 59, 63a–c, 67, 72d, 75a–b, 76a–b, 77, 79a–c, 81a–b, 84a–b, 85, 88a–c, 89, 90a–d, 93 | Selective or dual COX inhibition; reduction of PGE2 level | Enzymatic; cellular; in vivo edema models |
| Lipoxygenase pathway (5-LOX/15-LOX) | 21a–b, 59, 79a–c, 80a–c, 81b | LOX inhibition; attenuation of eicosanoid signaling | Enzymatic; cellular |
| NF-κB signaling axis | 8a–b, 18, 35, 36a, 38b, 47a, 65, 70, 88a–c, 101 | Suppression of NF-κB activation; inflammatory gene transcription | LPS-stimulated cellular models |
| NO/iNOS pathway | 9a–b, 12, 18, 35, 36a, 37a–d, 38a–b, 44a–b, 49a–b, 61, 62, 68a–b, 70, 101 | Inhibition of NO production; reduction of iNOS expression | Macrophage models; in vivo |
| Cytokine modulation (TNF-α, IL-6, IL-1β) | 6a–d, 7, 8, 11a–b, 15b, 15d, 20, 33a–b, 34, 39, 41, 47a, 50a–j, 52, 60, 62, 64, 70, 74a-d, 92a, 92d, 101 | Suppression of pro-inflammatory cytokines | Cellular; in vivo inflammation models |
| Matrix metalloproteinases (MMPs) | 22, 47a, 82 | MMP inhibition; reduced tissue degradation | Enzymatic assays |
| TACE inhibition | 23a–b, 24a–e | Modulation of TNF-α maturation | Enzymatic assays |
| Autotaxin (ATX) | 96a–b | ATX inhibition | Enzymatic assay |
| Nuclear receptor modulation (LXRα/β, PPAR-γ) | 50a–j, 62 | Transcriptional anti-inflammatory regulation | Cellular; in vivo |
| Multikinase/STAT signaling | 46, 47a | Downregulation of cytokine signaling and oxidative stress | Cellular; in vivo |
| In vivo anti-inflammatory activity (target not specified) | 17, 51a–b, 55, 69a–d, 71a–f, 78, 100 | Reduction of edema and/or inflammatory activity | Carrageenan-induced paw edema; pain models |
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Redzicka, A.; Tylińska, B.; Wójcicka, A. Anti-Inflammatory Activity of Cyclic Imide Derivatives. Pharmaceuticals 2026, 19, 457. https://doi.org/10.3390/ph19030457
Redzicka A, Tylińska B, Wójcicka A. Anti-Inflammatory Activity of Cyclic Imide Derivatives. Pharmaceuticals. 2026; 19(3):457. https://doi.org/10.3390/ph19030457
Chicago/Turabian StyleRedzicka, Aleksandra, Beata Tylińska, and Anna Wójcicka. 2026. "Anti-Inflammatory Activity of Cyclic Imide Derivatives" Pharmaceuticals 19, no. 3: 457. https://doi.org/10.3390/ph19030457
APA StyleRedzicka, A., Tylińska, B., & Wójcicka, A. (2026). Anti-Inflammatory Activity of Cyclic Imide Derivatives. Pharmaceuticals, 19(3), 457. https://doi.org/10.3390/ph19030457

