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Design, synthesis and biological evaluation of new substituted 5-benzylideno-2-adamantylthiazol[3,2-b][1,2,4]triazol-6(5H)ones. Pharmacophore models for antifungal activity

As a part of our ongoing studies in developing new derivatives as antimicrobial agents we describe the synthesis of novel substituted 5-benzylideno-2-adamantylthiazol[3,2-b][1,2,4]triazol-6(5H)ones.The twenty-five newly synthesized compounds were tested for their antimicrobial and antifungal activity. All compounds have shown antibacterial properties with compounds 1?9 showing the lowest activity, followed by compounds 10?14 while compounds 15?25 the highest antibacterial activity. Specific compounds appeared to be more active than ampicillin in most studied strains and in some cases more active than streptomycin. Antifungal activity in most cases also was better than that of reference drugs ketoconazole and bifonazole. Elucidating the relation of molecular properties to antimicrobial activity as well as generation of pharmacophore model for antifungal activity of two fungal species Aspergillus fumigatus and Candida albicans were performed.

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Multicomponent reactions: A mighty journey partner for infectious tropical disease drug discovery

Infectious tropical diseases such as malaria, tuberculosis, and the so-called neglected tropical diseases are causing tremendous suffering to millions of people and huge impact on national economies, seriously worsening life conditions in the poorest parts of the world, where these diseases are endemic. Despite the existence of drugs for most of these diseases, they are far from adequate. Lack of efficacy, toxicity, and emergence of pathogen resistance are among the most important flaws of currently available drugs. Thus, apart from improving prevention and vector control measures, there is an urgent need for developing new efficacious, safe, and inexpensive drugs that desirably feature novel chemotypes. Multicomponent reactions (MCRs), where three or more reactants are combined in a one-pot reaction, constitute a very powerful tool for such endeavors, inasmuch as they enable a very rapid access to structurally diverse, usually complex scaffolds, shortening the synthesis of the novel drugs and, hence, lowering production costs, and affording original chemotypes. In this chapter, we provide an overview of the application of different types of MCRs to drug discovery against infectious tropical diseases, with particular emphasis on how structural complexity and molecular diversity can be readily introduced through their use.

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Methods of Screening Agents for Activity Using Teleosts

The present invention provides methods of screening an agent for activity using teleosts. Methods of screening an agent for angiogenesis activity, toxic activity and an effect cell death activity in teleosts are provided. Methods of screening an agent for an activity in the brain or central nervous system in zebrafish are provided. The invention further provides high throughput methods of screening agents in multi-well plates.

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Structure-Based Discovery and Development of a Series of Potent and Selective Bromodomain and Extra-Terminal Protein Inhibitors

BRD4 has recently emerged as a promising drug target. Therefore, identifying novel inhibitors with distinct properties could enrich their use in anticancer treatment. Guided by the cocrystal structure of hit compound 4 harboring a five-membered-ring linker motif, we quickly identified lead compound 7, which exhibited good antitumor effects in an MM.1S xenograft model by oral administration. Encouraged by its high potency and interesting scaffold, we performed further lead optimization to generate a novel potent series of bromodomain and extra-terminal (BET) inhibitors with a (1,2,4-triazol-5-yl)-3,4-dihydroquinoxalin-2(1H)-one structure. Among them, compound 19 was found to have the best balance of activity, stability, and antitumor efficacy. After confirming its low brain penetration, we conducted comprehensive preclinical studies, including a multiple-species pharmacokinetics profile, extensive cellular mechanism studies, hERG assay, and in vivo antitumor growth effect testing, and we found that compound 19 is a potential BET protein drug candidate for the treatment of cancer.

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Synthesis, characterization and preliminary anti-inflammatory evaluation of 5-benzylidine thiazolidine-4-one derivatives

A series of four compounds which contain thiazolidine-4-one ring were synthesized and preliminarily assessed as anti-inflammatory agents with anticipated selectivity against COX-2 enzyme. The synthesized compounds structures have been recognised according to their spectral FT-IR and 1H NMR data. GOLD software was used to perform molecular docking study. The crystallographic structure of the molecular target cyclo-oxygenase enzyme-2 (COX-2) was taken from PDB database however, the celecoxib and naproxen were selected as a positive controls. The docking results of the newly synthesized compounds shown that they can enter the substrate-binding area of the active site .The compound (Ia) showed the highest PLP fitness,while compound (Ic) appeared to have the lowest binding ability compared to celecoxib which may be due to the presence of para nitro group that deactivates the ring system. Whereas In vivo acute anti-inflammatory effects of the synthesized compounds were evaluated in rats using egg-white induced edema model of inflammation. The tested compounds and the reference drug produced significant decrease in the paw edema with respect to the effect of propylene glycol 50%v/v (control group). Compounds Ia,b,d showed potent anti-inflammatory effect than naproxen (50mg/kg, i.p.) at 180 min., while compound Ic exhibited lower anti-inflammatory effect.

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PRODRUGS ACTIVATED BY REACTIVE OXYGEN SPECIES FOR USE IN THE TREATMENT OF INFLAMMATORY DISEASES AND CANCER

Prodrugs activated predominantly or exclusively in inflammatory tissue, more particularly prodrugs of methotrexate and derivatives thereof, which are selectively activated by Reactive Oxygen Species (ROS) in inflammatory tissues associated with cancer and inflammatory diseases, as well as method for preparing said prodrugs.

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Crystal structure of methyl (Z)-2-[(Z)-3-methyl-2-({(E)-1-[(R ?)-4-methylcyclohex-3-en-1-yl]ethylidene}hydrazinylidene)-4-oxothiazolidin-5-ylidene]acetate

The new title 4-thiazolidinone derivative, C 16 H 21 N 3 O 3 S, was obtained from the cyclization reaction of 4-methyl-3-thiosemicarbazone and dimethyl acetylenedicarboxylate (DMAD). The cyclohexylidene ring has an envelope conformation with the stereogenic centre C atom as the flap. Its mean plane makes a dihedral angle of 56.23(9) with the thiazolidine ring mean plane. In the crystal, molecules are linked by C – H?O hydrogen bonds forming chains propagating in the [001] direction. Within the chains there are offset pi-pi interactions between the thiazolidine rings of inversion-related molecules [centroid-centroid distance = 3.703(1)A]. The chains are linked by further C – H?O hydrogen bonds, forming slabs parallel to the ac plane.

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Molecular docking, molecular dynamics, and in silico prediction of the toxic potential of primaquine thiazolidinone derivatives

Primaquine thiazolidinone derivatives are proposed as promising antimalarial candidates to be tested as primaquine substitutes. Molecular docking and dynamics simulations were applied in the analogues-NQO2 complexes to understand their interactions, and also studied the toxic potential of these derivatives in a set of 16 target proteins. The results of our study suggest that the interactions of five thiazolidinone primaquine derivatives with NQO2 are stronger than the interaction of primaquine and NQO2. The analogue 5n-protein complex seems to be the most stable compared with the primaquine-protein complex. The analogues 5n and 5o are predicted to be in the same class of toxic potential as primaquine. Their interactions with the cytochrome P450 enzymes are also predicted to be weaker, indicating that a better activity/toxicity balance compared with primaquine may be reached.

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Synthesis, Characterization and Microbial screening of dioxolane and thiazolidinones derivatives of 2,5-dichloro-3,4-diformyl (N-substituted phenyl) pyrroles

Formylation of N-substituted phenyl succinimides was carried out by using Vilsmeier-Haack reagent which formed 2,5-dichloro-3,4-diformyl (N-substituted Phenyl) pyrroles (III) compounds. Compounds (III) was treated with ethylene glycol in presence of PTSA to get dioxolane derivatives (IV) which on further treatment with hydrazine hydrate formed compound (V) described in (Scheme-I). The synthesis of Schiffbases (VI) by treating 2 moles of substituted aromatic primary amines with 1 mole of compound (III). This compound (VI) on treatment with 2 moles of thioglycolic acid formed corresponding 4-thiazolidinone derivatives (VII) of 2,5-dichloro-3,4-diformyl (Nsubstituted phenyl) pyrroles. (Scheme-II).

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Synthesis and biological evaluation of novel Indolyl 4-thiazolidinones bearing thiadiazine nucleus

A series of Ethyl 2-[2-(2,5-disubstituted-1H-indol-3-yl)-4-oxothiazolid-3-ylamino]-5,6-dihydro-5-oxo-4H-1,3,4-thiadiazine-6-carboxylates (4a?g) were synthesized from cyclocondensation of Ethyl 2-{(2E)-2-[(2,5-disubstituted-1H-indol-3-yl) methy leno] hydrazine}-5-oxo-5,6-dihydro-4H-1,3,4-thiadiazine-6-carboxylates (3a?g) with thioglycolic acid in the presence of the catalytic amount of zinc chloride. The compounds 3a?g were obtained from the reaction of Ethyl 2-hydrazinyl-5,6-dihydro-5-oxo-4H-1,3,4-thiadiazine-6-carboxylate (2) with various substituted indole-3-carboxaldehydes 1a?g. Newly synthesized compounds were characterized by using IR, 1H NMR, Mass spectral and analytical data. Title compounds were evaluated for their in vitro antimicrobial activities against various microbial strains and selected compounds were tested for their analgesic and anti-inflammatory activities. Some of the newly synthesized Indolyl 4-thiazolidinone analogues displayed significant activity towards antimicrobial, analgesic and anti-inflammatory activities.

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