New Chitosan Polymer Scaffold Schiff Bases as Potential Cytotoxic Activity: Synthesis, Molecular Docking, and Physiochemical Characterization

被引:21
作者
Packialakshmi, Ponnusamy [1 ]
Gobinath, Perumal [1 ]
Ali, Daoud [2 ]
Alarifi, Saud [2 ]
Gurusamy, Raman [3 ]
Idhayadhulla, Akbar [1 ]
Surendrakumar, Radhakrishnan [1 ]
机构
[1] Affiliated Bharathidasan Univ, Nehru Mem Coll, Dept Chem, Res, Puthanampatti, India
[2] King Saud Univ KSU, Coll Sci, Dept Zool, Riyadh, Saudi Arabia
[3] Yeungnam Univ, Dept Life Sci, Gyongsan, South Korea
关键词
schiff base; SEM; anticancer activity; MCF-7; in-silico molecular docking; structure activity relationship; CANCER; DERIVATIVES; APOPTOSIS; DELIVERY; UPDATE;
D O I
10.3389/fchem.2021.796599
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this work, we synthesize the sulfonated Schiff bases of the chitosan derivatives 2a-2j without the use of a catalyst in two moderately straightforward steps with good yield within a short reaction time. The morphology and chemical structure of chitosan derivatives were investigated using FT-IR, NMR (H-1-C-13), XRD, and SEM. Furthermore, our chitosan derivatives were tested for their anticancer activity against the MCF-7 cancer cell line, and doxorubicin was used as a standard. In addition, the normal cell lines of the breast cancer cell MCF-10A, and of the lung cell MRC-5 were tested. Compound 2 h, with a GI(50) value of 0.02 mu M for MCF-7, is highly active compared with the standard doxorubicin and other compounds. The synthesized compounds 2a-2j exhibit low cytotoxicity, with IC50 > 100 mu g/ml, against normal cell lines MCF-10A, MRC-5. We also provide the results of an in-silico study involving the Methoxsalen protein (1Z11). Compound 2h exhibits a higher binding affinity for 1Z11 protein (-5.9 kcal/mol) and a lower binding affinity for Doxorubicin (-5.3 kcal/mol) than certain other compounds. As a result of the aforementioned findings, the use of compound 2h has an anticancer drug will be researched in the future.
引用
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页数:12
相关论文
共 39 条
[1]   Anticancer Activity of Chitosan, Chitosan Derivatives, and Their Mechanism of Action [J].
Adhikari, Hari Sharan ;
Yadav, Paras Nath .
INTERNATIONAL JOURNAL OF BIOMATERIALS, 2018, 2018
[2]  
Ahmed S., 2016, ACHIEV LIFE SCI, V10, P27, DOI [10.1016/j.als.2016.04.001, DOI 10.1016/J.ALS.2016.04.001, 10.1016/J.ALS.2016.04.001]
[3]  
Ali I., 2011, CANC THER, V8, P56
[4]   Heterocyclic Scaffolds: Centrality in Anticancer Drug Development [J].
Ali, Imran ;
Lone, Mohammad Nadeem ;
Al-Othman, Zeid A. ;
Al-Warthan, Abdulrahman ;
Sanagi, Mohd Marsin .
CURRENT DRUG TARGETS, 2015, 16 (07) :711-734
[5]   Evaluating antibacterial and surface mechanical properties of chitosan modified dental resin composites [J].
Ali, Shahid ;
Sangi, Laila ;
Kumar, Naresh ;
Kumar, Bharat ;
Khurshid, Zohaib ;
Zafar, Muhammad S. .
TECHNOLOGY AND HEALTH CARE, 2020, 28 (02) :165-173
[6]   5-Fluorouracil and cisplatin in the treatment of advanced oral cancer [J].
Andreadis, C ;
Vahtsevanos, K ;
Sidiras, T ;
Thomaidis, I ;
Antoniadis, K ;
Mouratidou, D .
ORAL ONCOLOGY, 2003, 39 (04) :380-385
[7]   Chitosan Amphiphilic Derivatives. Chemistry and Applications [J].
Aranaz, Inmaculada ;
Harris, Ruth ;
Heras, Angeles .
CURRENT ORGANIC CHEMISTRY, 2010, 14 (03) :308-330
[8]   PLGA-Chitosan nanoparticle-mediated gene delivery for oral cancer treatment: A brief review [J].
Bakar, L. M. ;
Abdullah, M. Z. ;
Doolaanea, A. A. ;
Ichwan, S. J. A. .
1ST PHYSICS AND TECHNOLOGIES IN MEDICINE AND DENTISTRY SYMPOSIUM, 2017, 884
[9]   Predicting the future burden of cancer [J].
Bray, F ;
Moller, B .
NATURE REVIEWS CANCER, 2006, 6 (01) :63-74
[10]  
Bray F, 2018, CA-CANCER J CLIN, V68, P394, DOI [10.3322/caac.21492, 10.3322/caac.21609]