journal article Sep 26, 2023

Evaluation of the Anti-inflammatory, Antimicrobial, Antioxidant, and Cytotoxic Effects of Chitosan Thiocolchicoside-Lauric Acid Nanogel

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References
27
[1]
Hamidi M, Azadi A, Rafiei P. Hydrogel nanoparticles in drug delivery. Adv Drug Deliv Rev. 2008, 60:1638-49. 10.1016/j.addr.2008.08.002 10.1016/j.addr.2008.08.002
[2]
Ahmed EM. Hydrogel: preparation, characterization, and applications: a review. J Adv Res. 2015, 6:105-21. 10.1016/j.jare.2013.07.006 10.1016/j.jare.2013.07.006
[3]
Stimuli-responsive nanogel composites and their application in nanomedicine

María Molina, Mazdak Asadian-Birjand, Juan Balach et al.

Chemical Society Reviews 2015 10.1039/c5cs00199d
[4]
Ivanova DG, Yaneva ZL. Antioxidant properties and redox-modulating activity of chitosan and its derivatives: biomaterials with application in cancer therapy. Biores Open Access. 2020, 9:64-72. 10.1089/biores.2019.0028 10.1089/biores.2019.0028
[5]
Mahendran D, Kavi Kishor PB, Sreeramanan S, Venkatachalam P.. Enhanced biosynthesis of colchicine and thiocolchicoside contents in cell suspension cultures of Gloriosa superba L. exposed to ethylene inhibitor and elicitors. Ind Crops Prod. 2018, 120:123-30. 10.1016/j.indcrop.2018.04.040 10.1016/j.indcrop.2018.04.040
[6]
Cimino M, Marini P, Cattabeni F. Interaction of thiocolchicoside with [3H]strychnine binding sites in rat spinal cord and brainstem. Eur J Pharmacol. 1996, 318:201-4. 10.1016/s0014-2999(96)00884-9 10.1016/s0014-2999(96)00884-9
[7]
Shrivastav J, Shah K, Mahadik M, et al.. Application of HPTLC in the simultaneous estimation of thiocolchicoside and diclofenac in bulk drug and pharmaceutical dosage form. Bull Pharm Res. 2011, 1:34-7.
[8]
Jiang L, Liang X, Liu G, et al.. The mechanism of lauric acid-modified protein nanocapsules escape from intercellular trafficking vesicles and its implication for drug delivery. Drug Deliv. 2018, 25:985-94. 10.1080/10717544.2018.1461954 10.1080/10717544.2018.1461954
[9]
Rozanna D, Chuah TG, Salmiah A, et al.. Fatty acids as phase change materials (PCMs) for thermal energy storage: a review. Int J Green Energy. 2005, 1:495-513. 10.1081/GE-200038722 10.1081/ge-200038722
[10]
Ogbolu DO, Oni AA, Daini OA, et al.. In vitro antimicrobial properties of coconut oil on Candida species in Ibadan, Nigeria. J Med Food. 2007, 10:384-7. 10.1089/jmf.2006.1209 10.1089/jmf.2006.1209
[11]
Matsue M, Mori Y, Nagase S, et al.. Measuring the Antimicrobial Activity of Lauric Acid against Various Bacteria in Human Gut Microbiota Using a New Method. Cell Transplant. 2019, 28:1528-41. 10.1177/0963689719881366 10.1177/0963689719881366
[12]
Abbas A, Assikong EB, Akeh M, Upla P. Antimicrobial activity of coconut oil and its derivative (lauric acid) on some selected clinical isolates. Int J Med Sci Clin Invent. 2017, 30:4.
[13]
Shayganni E, Bahmani M, Asgary S, Rafieian-Kopaei M. Inflammaging and cardiovascular disease: management by medicinal plants. Phytomedicine. 2016, 23:1119-26. 10.1016/j.phymed.2015.11.004 10.1016/j.phymed.2015.11.004
[14]
Qamar M, Akhtar S, Ismail T, et al.. Syzygium cumini (L.), skeels fruit extracts: in vitro and in vivo anti-inflammatory properties. J Ethnopharmacol. 2021, 271:113805. 10.1016/j.jep.2021.113805 10.1016/j.jep.2021.113805
[15]
Ameena M, Meignana Arumugham I, Ramalingam K, Rajeshkumar S, Perumal E. Cytocompatibility and Wound Healing Activity of Chitosan Thiocolchicoside Lauric Acid Nanogel in Human Gingival Fibroblast Cells. Cureus. 2023, 15:e43727. 10.7759/cureus.43727 10.7759/cureus.43727
[16]
Das P, Ghosal K, Jana NK, Mukherjee A, Basak P. Green synthesis and characterization of silver nanoparticles using belladonna mother tincture and its efficacy as a potential antibacterial and anti-inflammatory agent. Mater Chem Phys. 2019, 228:310-7. 10.1016/j.matchemphys.2019.02.064 10.1016/j.matchemphys.2019.02.064
[17]
Pranati T, Rajasekar A, Rajeshkumar S. Anti-inflammatory and cytotoxic effect of clove and cinnamon herbal formulation. Plant Cell Biotechnol Mol Biol. 2020, 21:69-77.
[18]
Kyene MO, Droepenu EK, Ayertey F, et al.. Synthesis and characterization of ZnO nanomaterial from Cassia sieberiana and determination of its anti-inflammatory, antioxidant and antimicrobial activities. Sci African. 2023, 19:01452. 10.1016/j.sciaf.2022.e01452 10.1016/j.sciaf.2022.e01452
[19]
Shanmugam R, Subramaniam R, Kathirason SG, et al.. Curcumin-chitosan nanocomposite formulation containing Pongamia pinnata-mediated silver nanoparticles, wound pathogen control, and anti-inflammatory potential. Biomed Res Int. 2021, 2021:3091587. 10.1155/2021/3091587 10.1155/2021/3091587
[20]
Nagase S, Matsue M, Sugitani K, et al.. Comparison of the antimicrobial spectrum and mechanisms of organic virgin coconut oil and lauric acid against bacteria (Article in Japanese). J Wellness Heal Care. 2017, 41:87-95. 10.24517/00048862 10.24517/00048862
[21]
Bhardwaj V. Antimicrobial potential of Cocos nucifera (coconut) oil on bacterial isolates. Adv Exp Med Biol. 2023, 10.1007/5584_2023_786 10.1007/5584_2023_786
[22]
Ahmad Z, Hasham R, Nor NF, Sarmidi MR. Physico-chemical and antioxidant analysis of virgin coconut oil using West African tall variety. J Adv Res in Materials Science. 2015, 13:1-10. 10.4028/b-qycqb3
[23]
Piran F, Khoshkhoo Z, Hosseini SE, Azizi MH. Controlling the antioxidant activity of green tea extract through encapsulation in chitosan-citrate nanogel. J Food Qual. 2020, 1-9. 10.1155/2020/7935420 10.1155/2020/7935420
[24]
Wen ZS, Liu LJ, Qu YL, Ouyang XK, Yang LY, Xu ZR. Chitosan nanoparticles attenuate hydrogen peroxide-induced stress injury in mouse macrophage RAW264.7 cells. Mar Drugs. 2013, 11:3582-600. 10.3390/md11103582 10.3390/md11103582
[25]
Marina AM, Man YB, Nazimah SA, Amin I. Antioxidant capacity and phenolic acids of virgin coconut oil. Int J Food Sci Nutr. 2009, 60 Suppl 2:114-23. 10.1080/09637480802549127 10.1080/09637480802549127
[26]
Ghaderi GM, Barzegar M, Sahari MA, Azizi MH.. Enhancement of thermal stability and antioxidant activity of thyme essential oil by encapsulation in chitosan nanoparticles. J Agric Sci Technol. 2016, 8:1781-1792.
[27]
Genesis and development of DPPH method of antioxidant assay

Sagar B. Kedare, R. P. Singh

Journal of Food Science and Technology 2011 10.1007/s13197-011-0251-1
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Published
Sep 26, 2023
Cite This Article
Ameena M, Meignana Arumugham I, Karthikeyan Ramalingam, et al. (2023). Evaluation of the Anti-inflammatory, Antimicrobial, Antioxidant, and Cytotoxic Effects of Chitosan Thiocolchicoside-Lauric Acid Nanogel. Cureus. https://doi.org/10.7759/cureus.46003
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