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A series of innovative 5-(benzofuran-2-yl)-N?-(2-substituted-4-oxothiazolidin-3-yl)-1-phenyl-1H-pyrazole-3- carboxamide (4a-i) derivatives were synthesized by cyclocondensation reaction of various carbohydrazones (3a-i) with thioglycolic acid in DMF. The intermediate N?-(benzylidene)-5-(benzofuran-2-yl)-1- phenyl-1H-pyrazole-3-carbohydrazides (3a-i) was obtained by condensation of 5-(benzofuran-2-yl)-1-phenyl-1Hpyrazole- 3-carbohydrazide (1) with various substituted aromatic aldehydes (2a-i) in ethanol. The structures of newly synthesized compounds (4a-i) were corroborated through elemental analysis and spectral studies like IR, 1H NMR, 13C NMR and Mass spectra. The compounds were screened for their in-vitro antibacterial activity against a panel of pathogenic microorganism including gram-negative strains E. coli, P. vulgaris and S. typhi and grampositive bacterial strain, S. aureus at diverse concentrations and the result of bioassay was compared with Chloramphenicol.

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Substituted thiourea condensed with chioroacetic acid in the presence of sodium acetate to form thiazolinonem and then reacts with aromatic aldehyde to give 5-benzylidene-4-thiazolidinone derivatives. Further thiazolidinone derivativesm react with methyliphenyl hydrazine to give Thiazolopyrazolines. The synthesized compounds were screened their antifungal activity against P. graminis and P. recondita at various concentrations, viz., 10, 100 and 1000 ppm.

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A group of derivatives for compounds 2-Amino-3-carboxy-4,5,6,7-tetra hydrobenz -othiophene bearing different heterocyclic moieties such as Schiff bases. B-Lactum, 4-thiazolidinone.1,3-oxazepan. The newly synthesized derivatives have been supported by spectral data FT-IR, H1-NMR. All the synthesized compounds were screened for their antimicrobial activities against gram-positive and gram-negative bacteria as reference.

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[18F]THK-523 and [18F]807 are promising radioligands for imaging neurofibrillary tangles (NFTs) with positron emission tomography (PET) in neurodegenerative diseases, such as Alzheimer’s disease (AD) and traumatic brain injury. Although [18F]THK-523 and [18F]T807 are considered high-affinity selective radioligands for NFTs, uncertainty has existed as to whether PET radioligands for imaging NFTs bind to the same molecular site because in vitro assays for ligands binding to NFTs have been lacking. We labeled THK-523 and T807 with tritium to serve as reference radioligands for in vitro binding assays with AD brain homogenates for newly synthesized ligands. With these radioligands, we identified two distinct binding sites for small molecules, one site with high affinity for THK-523 and the other with high affinity for T807. Moreover, binding assays with [3H]PIB confirmed that the two newly identified binding sites are also distinct from the thioflavin-T binding site where all current clinically useful PET radioligands for imaging beta-amyloid plaque bind with high affinity. The two newly identified binding sites are considered to reside on NFTs rather than on beta-amyloid plaques. Furthermore, we applied all three binding assays to a set of newly prepared compounds, based on chain modifications to THK-523. Some compounds with high affinity and selectivity for the THK-523 binding site emerged from this set, including one with amenability to labeling with fluorine-18, namely, ligand 10b.

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2-(4-Bromophenyl)-3-(4-hydroxyphenyl)-1,3-thiazolidin-4-one and its selenium analogue were studied in the gas phase using HF and DFT methods. The functionals considered were B3LYP, BP86 and M06. The basis set for all the atoms was 6-311++ G(d,p). Molecular parameters such as bond lengths, bond angles, rotational constants, dipole moments, electronic energies, and vibrational parameters namely harmonic vibrational frequencies and relative intensities were computed for these compounds. Atomization energies, HOMO-LUMO gaps and natural charges on the atoms were also calculated. The molecular parameters and the vibrational spectra of sulfur compound are in good agreement with the experimental data. Therefore, the data for the selenium analogue should be helpful in its future characterization.

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Cancer is the second leading cause of death worldwide. There is always a huge demand for novel anticancer drugs and diverse new natural or synthetic compounds are developed continuously by scientists. Presently, a large number of drugs in clinical practice have showed pervasive side effect and multidrug resistance. Sulfonyl or sulfonamide hybrids became one of the most attractive subjects due to their broad spectrum of pharmacological activities. Sulfonyl hybrids were broadly explored for their anticancer activities and it was found that they possess minimum side effect along with multi-drug resistance activity. This review describes the most recent applications of sulfonyl hybrid analogues in anticancer drug discovery and further discusses the mechanistic insights, structure-activity relationships and molecular docking studies for the potent derivatives.

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Aim. Synthesis of a series of thiazolidinone-and pyrazoline-related compounds. In vitro screening of antiplasmodial activity of versatile heterocyclic derivatives. Methods: Organic wet synthesis, analytical and spectral methods, pharmacological screening, SAR analysis. Results. A series of different thiazolidinone-and pyrazoline-based derivatives was screened against Plasmodium falciparum in in vitro assays. 5-(Z)-Arylidene-2-arylidenehydrazono-3-(4-hydroxyphenyl)-4-thiazolidinones showed high growth inhibition rates with the IC50-2.32-2.39 muM. 5-Bromo-1-[2-[3-(4-chlorophenyl)-5-(4-methoxyphenyl)-3,4-dihydropyrazol-2-yl]-2-oxoethyl]indoline-2,3-dione 3 was the most active compound among tested with the IC50-1.81 muM. Based on the screening data some structure-activity relationships were derived. Conclusions. A set of different thiazolidinone-and pyrazoline-related derivatives with antitrypanosomal and anticancer properties was screened against Plasmodium falciparum. Hitcompounds inhibiting growth of the parasite at micromolar concentrations were identified. The obtained results provide further avenues to develop more potent antimalarial agents on the base of investigated classes of small drug-like molecules.

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Leishmaniasis is a neglected tropical disease caused by around 20 species of obligate intramacrophage protozoa of the genus Leishmania. This disease is an important cause of morbidity and mortality that primarily impacts the poorest populations living in tropical and sub-tropical regions of the world, but has become of concern in some developed countries. The resistance of leishmanial parasites to the drugs available and their undesirable side effects have prompted the discovery of new synthetic compounds with potent antileishmanial activity and fewer side effects that can serve as new therapeutic agents. In this article, we make a comprehensive review of the most recent advances of synthetic compounds with antileishmanial activity (from 2015 to the early 2017). Furthermore, we covered the structure- activity relationship studies that allow for optimization and selection of the most promising drugs, and the biochemical mechanisms that explain the antileishmanial activities observed.

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Neglected Tropical Diseases (NTDs) affect more than a billion people worldwide, mainly populations living in poverty conditions. More than 56% of annual NTD deaths are caused by Leishmaniasis, Sleeping sickness, and Chagas disease. For these three diseases, many problems have been observed with the chemotherapeutic drugs commonly used, these being mainly resistance, high toxicity, and low efficacy. In the search for alternative treatments, hybridization is an interesting approach, which generates new molecules by merging two pharmacophores and then looking for improvements in biological activity or reduced compound toxicity. Here, we review various studies that present such hybrid molecules with promising in vitro and in vivo activities against Leishmania and Trypanosoma parasites.

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Background: Diseases caused by microbial infections are very common worldwide. Although the search of innovative antimicrobial agents is the current focus for the researchers, the treatment of infectious diseases remains an important public health issue and a challenging problem in front of medicinal chemist. Methods: A series of 2-(4-hydroxyphenyl)-3-(4-(4-nitrophenyl) thiazol-2-yl)thiazolidin-4-one derivatives (T1-T10) was designed and synthesized. All the titled compounds were evaluated for their antimicrobial potential. Antimicrobial activity was performed by tube dilution methods against Gram negative Escherichia coli MTCC 443 (E. Coli), Gram positive bacteria: Staphylococcus aureus MTCC 3160 (S. aureus) and Bacillus subtilis MTCC 441 (B. Subtilis), and fungal strains: Aspergillus niger MTCC 281 (A. niger) and Candida albicans MTCC 227 (C. albicans). Results: Among the synthesized derivatives, compounds 2, 4 and 10 were found to be most active antimicrobial agents. Conclusion: In conclusion, a series of 2-(phenyl)-3-(4-(phenyl)thiazol-2-yl)thiazolidin-4-ones have been designed and synthesized. All the titled compounds were evaluated for their in vitro antimicrobial activity against five representative microorganisms. The results of antimicrobial study indicated that the presence of nitro and chloro groups in aromatic ring improved antibacterial activity, whereas the presence of hydroxy group improved antifungal activity of substituted 4-thiazolidinone derivatives.

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