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Updated: Jan 28, 2026

Tuning the Acidity of Pt/ CNTs Catalysts for Hydrodeoxygenation of Diphenyl Ether
Published on: August 17, 2019
Synthesis, Biological Evaluation and Molecular Dynamics Simulation Studies of Novel Diphenyl Ethers
Amol B Khade1, Sidhartha S Kar1, Cinu T Alummoottil1
1Department of Pharmaceutical Chemistry, Manipal College of Pharmaceutical Sciences, Manipal Academy of Higher Education, Manipal-576104, India.
Background:
The well-known antibacterial agent Triclosan (TCL) that targets bacterial enoylacyl protein reductase has been described to inhibit human fatty acid synthase (FASN) via the enoylacyl reductase domain. A Literature survey indicates that TCL is selectively toxic to cancer cells and furthermore might indeed reduce cancer incidence in vivo. A recent study found that TCL inhibits FASN by acting as an allosteric protein-protein interface (PPI) inhibitor. It induces dimer orientation changes that effect in a downstream reorientation of catalytic residues in the NADPH binding site proposing TCL as a viable scaffold to design a superior molecule that might have more inhibitory potential. This unveils tons of potential interaction space to take advantage of future inhibitor design.
Objectives:
Synthesis of TCL mimicking novel diphenyl ether derivatives, biological evaluation as potential antiproliferative agents and molecular docking and molecular dynamics simulation studies.
Methods:
A series of novel N-(1-(3-hydroxy-4-phenoxyphenyl)-3-oxo-3-phenylpropyl)acetamides (3a-n) and N-(3(3-hydroxy-4phenoxyphenyl)-3-oxo-1-phenylpropyl) acetamides (6a-n) were designed, synthesized, characterized and evaluated against HepG2, A-549, MCF-7 and Vero cell lines. The induction of antiproliferative activity of selected compounds (3d and 6c) was done by AO/EB (acridine orange/ethidium bromide) nuclear staining method, DNA fragmentation study, and cell cycle analysis was performed by flow cytometry. Molecular docking and dynamics simulation study was also performed.
Results:
Among the tested compounds, compound 3d was most active (IC50 13.76 ± 0.43 µM) against A-549 cell line. Compounds 3d and 3g were found to be moderately active with IC50 30.56 ± 1.1 µM and 25.05 ± 0.8 µM respectively against MCF-7 cell line. Morphological analysis of A-549 cells treated with 3d and 6c clearly demonstrated the reduction of cell viability and induction of apoptosis. DNA fragmentation was observed as a characteristic of apoptosis in treated cells. Further, cell cycle analysis by flow cytometry confirmed that compounds 3d and 6c significantly arrested the cell cycle at the G0/G1 phase. Molecular docking study demonstrated that these compounds exhibit high affinity for the human fatty acid synthase (hFASN) target. Molecular dynamics simulation study of the most active compound 3d was performed for calculating binding free energies using Molecular Mechanics-Generalized Born Surface Area (MM/GBSA).
Conclusion:
Compound 3d (IC50 13.76 ± 0.43 µM) has been identified as a potential lead molecule for anticancer activity against A-549 cells followed by 3l, 6c, and 3g. Thus, the design of diphenyl ether derivatives with enhanced affinity to the binding site of hER may lead to the discovery of potential anticancer agents.
Insights
Triclosan (TCL) derivatives show potential as anticancer agents by inhibiting human fatty acid synthase (hFASN). Compound 3d demonstrated significant antiproliferative activity against A-549 lung cancer cells, warranting further investigation.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Molecular Pharmacology
Background:
- Triclosan (TCL), an antibacterial agent, inhibits human fatty acid synthase (hFASN) and exhibits selective toxicity towards cancer cells.
- TCL acts as an allosteric protein-protein interface (PPI) inhibitor, inducing conformational changes in hFASN that suggest potential for novel inhibitor design.
Purpose of the Study:
- Synthesize novel diphenyl ether derivatives mimicking Triclosan (TCL).
- Evaluate these derivatives for antiproliferative activity against cancer cell lines.
- Conduct molecular docking and dynamics simulations to understand their interaction with hFASN.
Main Methods:
- Synthesis and characterization of N-(1-(3-hydroxy-4-phenoxyphenyl)-3-oxo-3-phenylpropyl)acetamides (3a-n) and N-(3(3-hydroxy-4phenoxyphenyl)-3-oxo-1-phenylpropyl) acetamides (6a-n).
- Antiproliferative assays against HepG2, A-549, MCF-7, and Vero cell lines.
- Apoptosis induction studies (AO/EB staining, DNA fragmentation), cell cycle analysis, molecular docking, and molecular dynamics simulations.
Main Results:
- Compound 3d exhibited the highest activity against A-549 cells (IC50 13.76 ± 0.43 µM).
- Compounds 3d and 3g showed moderate activity against MCF-7 cells.
- Morphological analysis, DNA fragmentation, and cell cycle arrest at G0/G1 phase confirmed apoptosis induction by compounds 3d and 6c.
- Molecular docking and dynamics simulations indicated high affinity of these compounds for hFASN.
Conclusions:
- Compound 3d is identified as a promising lead molecule for anticancer drug development against A-549 cells.
- The diphenyl ether scaffold demonstrates potential for designing novel hFASN inhibitors with anticancer properties.
Related Concept Videos
Ethers from Alcohols: Alcohol Dehydration and Williamson Ether Synthesis
Ethers can be prepared from organic compounds by various methods. Some of them are discussed below,
Preparation of Ethers by Alcohol Dehydration
In this method, in the presence of protic acids, alcohol dehydrates to produce alkenes and ethers under different conditions. For example, in the presence of sulphuric acid, dehydration of ethanol at 413 K yields ethoxyethane, whereas it yields ethene at 443 K.
Structure and Nomenclature of Ethers
Ethers are organic compounds with an ether functional group which is characterized by an oxygen atom connected to two — identical or different — alkyl, aryl, or vinyl groups. The C–O–C linkage in dimethyl ether — the simplest ether — has an approximately tetrahedral bond angle of 110.3 degrees. The oxygen atom is sp3- hybridized, with the C–O distance being about 140 pm.
Classification of Ethers
Based on their attached substituent...
Crown Ethers
Physical Properties of Ethers
An ether molecule has a net dipole moment due to the polarity of C–O bonds. Subsequently, boiling points of ethers are lower than those of alcohols of comparable molecular weight and slightly higher than those of hydrocarbons of comparable molecular weight (Table 1).
Ethers can act as hydrogen bond acceptors, making them more water-soluble than hydrocarbons, but since ethers cannot act as hydrogen bond donors, they are much less soluble in water than alcohols. Ethers are considered...
Molecular Models
Autoxidation of Ethers to Peroxides and Hydroperoxides

