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Published on: May 12, 2020
Multi-Target Cinnamic Acids for Oxidative Stress and Inflammation: Design, Synthesis, Biological Evaluation and
Eleni Pontiki1, Dimitra Hadjipavlou-Litina2
1Department of Pharmaceutical Chemistry, School of Pharmacy, Faculty of Health Sciences, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece. epontiki@pharm.auth.gr.
Abstract:
Inflammation is a complex phenomenon that results as a healing response of organisms to different factors, exerting immune signaling, excessive free radical activity and tissue destruction. Lipoxygenases and their metabolites e.g., LTB₄, are associated with allergy, cell differentiation and carcinogenesis. Lipoxygenase 12/15 has been characterized as a mucosal-specific inhibitor of IgA and a contributor to the development of allergic sensitization and airway inflammation. Development of drugs that interfere with the formation or effects of these metabolites would be important for the treatment of various diseases like asthma, psoriasis, ulcerative colitis, rheumatoid arthritis, atherosclerosis, cancer and blood vessel disorders. In this study we extended our previous research synthesizing a series of multi-target cinnamic acids from the corresponding aldehydes with suitable 4-OH/Br substituted phenyl acetic acid by Knoevenagel condensation. The final products 1i, 3i, 3ii, 4i, 6i, 6ii, and 7i were obtained in high yields (52⁻98%) Their structures were verified spectrometrically, while their experimentally lipophilicity was determined as RM values. The novel derivatives were evaluated for their antioxidant activity using DPPH, hydroxyl radical, superoxide anion and ABTS+•, anti-lipid peroxidation and soybean lipoxygenase inhibition assays. The compounds presented medium interaction with DPPH (30⁻48% at 100 µM). In contrast all the synthesized derivatives strongly scavenge OH radicals (72⁻100% at 100 µM), ABTS+• (24⁻83% at 100 µM) and presented remarkable inhibition (87⁻100% at 100 µM) in linoleic acid peroxidation (AAPH). The topological polar surface of the compounds seems to govern the superoxide anion scavenging activity. Molecular docking studies were carried out on cinnamic acid derivative 3i and found to be in accordance with experimental biological results. All acids presented interesting lipoxygenase inhibition (IC50 = 7.4⁻100 µM) with compound 3i being the most potent LOX inhibitor with IC50 = 7.4 µM combining antioxidant activities. The antioxidant results support the LOX inhibitory activities. The recorded in vitro results highlight compound 3i as a lead compound for the design of new potent lipoxygenase inhibitors for the treatment of asthma, psoriasis, ulcerative colitis, rheumatoid arthritis, atherosclerosis, cancer and blood vessel disorders.
Insights
Researchers synthesized novel cinnamic acid derivatives as potential treatments for inflammatory diseases. Compound 3i demonstrated potent lipoxygenase inhibition and antioxidant activity, making it a promising lead for drug development.
Area of Science:
- Medicinal Chemistry
- Pharmacology
- Biochemistry
Background:
- Inflammation involves immune signaling, free radicals, and tissue damage, with lipoxygenases (LOX) and their metabolites linked to allergies and cancer.
- Lipoxygenase 12/15 specifically contributes to allergic sensitization and airway inflammation, highlighting the need for targeted drug development.
Purpose of the Study:
- To synthesize novel multi-target cinnamic acid derivatives.
- To evaluate their antioxidant, anti-lipid peroxidation, and soybean lipoxygenase inhibitory activities.
- To identify lead compounds for treating inflammatory and related diseases.
Main Methods:
- Knoevenagel condensation was used to synthesize cinnamic acid derivatives.
- In vitro assays included DPPH, hydroxyl radical, superoxide anion, ABTS+, anti-lipid peroxidation, and soybean lipoxygenase inhibition.
- Molecular docking studies were performed on compound 3i.
Main Results:
- Synthesized compounds exhibited high yields and were structurally verified.
- Derivatives showed strong scavenging of hydroxyl radicals and inhibition of lipid peroxidation.
- Compound 3i displayed potent lipoxygenase inhibition (IC50 = 7.4 µM) with combined antioxidant activities.
Conclusions:
- Compound 3i is a highly promising lead for developing new lipoxygenase inhibitors.
- The synthesized compounds show potential for treating asthma, cancer, and other inflammatory conditions.
- Further drug design efforts targeting lipoxygenase pathways are warranted.
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