Synthesis of α,β-unsaturated benzotriazolyl-1,3,4-oxadiazole derivatives: anticancer activity, cytotoxicity, and cell imaging

Author(s):  
Juany C. Nava-Ramirez ◽  
Silvia Elena Santana-Krimskaya ◽  
Moises Armides Franco-Molina ◽  
Ana Sofia Ortega-Villarreal ◽  
Israel Lopez ◽  
...  
INDIAN DRUGS ◽  
2019 ◽  
Vol 56 (03) ◽  
pp. 12-17
Author(s):  
Manpreet Kaur ◽  
S. Singh ◽  

A new series of 2,5-disubstituted-1,3,4-oxadiazole derivatives has been synthesized with the help of different aromatic benzaldehydes and final compounds were characterized by FTIR and 1H NMR. 2,5- disubstituted-1,3,4-oxadiazole derivatives were synthesized by the reaction of Schiff base derivatives with 2,5-disubstituted-1,3,4-oxadiazoles. All the synthesized compounds were screened for their anticancer activity. These compounds were evaluated for their anticancer activity against various cancer cell lines. Five of the compounds possessed good to moderate anti-cancer activity. Three of the synthesized compounds i.e. 6a, 6f and 6g were found to possess maximum growth inhibition. The order for the % control growth inhibition of MCF-7 was found to be 6a>6f>6g>5b>6h, as shown in Table II-VI.


2020 ◽  
Vol 21 (22) ◽  
pp. 8692
Author(s):  
Alessandra Benassi ◽  
Filippo Doria ◽  
Valentina Pirota

Nowadays, an increasing number of heterocyclic-based drugs found application in medicinal chemistry and, in particular, as anticancer agents. In this context, oxadiazoles—five-membered aromatic rings—emerged for their interesting biological properties. Modification of oxadiazole scaffolds represents a valid strategy to increase their anticancer activity, especially on 1,2,4 and 1,3,4 regioisomers. In the last years, an increasing number of oxadiazole derivatives, with remarkable cytotoxicity for several tumor lines, were identified. Structural modifications, that ensure higher cytotoxicity towards malignant cells, represent a solid starting point in the development of novel oxadiazole-based drugs. To increase the specificity of this strategy, outstanding oxadiazole scaffolds have been designed to selectively interact with biological targets, including enzymes, globular proteins, and nucleic acids, showing more promising antitumor effects. In the present work, we aim to provide a comprehensive overview of the anticancer activity of these heterocycles, describing their effect on different targets and highlighting how their structural versatility has been exploited to modulate their biological properties.


ACS Omega ◽  
2019 ◽  
Vol 4 (8) ◽  
pp. 13231-13240 ◽  
Author(s):  
Rahul Nag ◽  
Sirilata Polepalli ◽  
Mohammed Althaf Hussain ◽  
Chebrolu Pulla Rao

ChemInform ◽  
2012 ◽  
Vol 43 (28) ◽  
pp. no-no
Author(s):  
Mrityunjoy Kundu ◽  
Jagadish Singh ◽  
Brijesh Singh ◽  
Tirtha Ghosh ◽  
B. C. Maiti ◽  
...  

2019 ◽  
Vol 28 (12) ◽  
pp. 2252-2261 ◽  
Author(s):  
Ulviye Acar Çevik ◽  
Derya Osmaniye ◽  
Betül Kaya Çavuşoğlu ◽  
Begüm Nurpelin Sağlik ◽  
Serkan Levent ◽  
...  

2020 ◽  
Vol 56 (95) ◽  
pp. 15016-15019
Author(s):  
Bo-Xin Zheng ◽  
Meng-Ting She ◽  
Wei Long ◽  
Yong-Yu Xu ◽  
Yi-Han Zhang ◽  
...  

A small-sized and target-specific fluorescent probe reveals the presence of c-MYC DNA G4-structures in cells and shows anticancer activity.


Author(s):  
Alessandra Benassi ◽  
Filippo Doria ◽  
Valentina Pirota

Nowadays, an increasing number of heterocyclic-based drugs found application in medicinal chemistry and, in particular, as anticancer agents. In this context, oxadiazoles, five-membered aromatic rings, emerged for their interesting biological properties. Modification of oxadiazole scaffolds represents a valid strategy to increase their anticancer activity, especially on 1,2,4 and 1,3,4 regioisomers. In the last years, an increasing number of oxadiazole derivatives, with remarkable cytotoxicity for several tumor lines, were identified. Structural modifications, that ensure higher cytotoxicity towards malignant cells, represent a solid starting point in the development of novel oxadiazoles-based drugs. To increase the specificity of this strategy, outstanding oxadiazole scaffolds have been designed to selectively interact with biological targets, including enzymes, globular proteins and nucleic acids, showing more promising antitumor effects. In the present work, we aim to provide a comprehensive overview of the anticancer activity of these heterocycles, describing their effect on different targets and highlighting how their structural versatility has been exploited to modulate their biological properties.


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