Investigation of Polyacrylic Acid Toxicity in Human Breast Cancer (MCF-7) and Mouse Fibroblast (L-929) Cell Lines

被引:2
作者
Ersoz, Melike [1 ]
Allahverdiyev, Adil [2 ]
机构
[1] Univ Demiroglu Bilim, Dept Mol Biol & Genet, Istanbul, Turkey
[2] Natl Medival Res Inst Prevent V Akhundov, Baku, Azerbaijan
关键词
Apoptosis; biocompatibility; cytotoxicity; polyacrylic acid; CYTOTOXICITY; NANOPARTICLES; RADIATION; HYDROGELS; COATINGS; DELIVERY;
D O I
10.2478/ebtj-2021-0021
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
In recent years, biopolymers have been widely used in various fields of medicine. Before using any polymer, its biocompatibility should be examined. Polyacrylic acid (PAA), a polyelectrolyte, is known to be used as an adjuvant effect in immunology, anti-thrombogenic effect in medical experiments, and as a carrier in drug delivery systems. Although there are studies on various conjugates and nanoparticles of PAA, studies on its toxicity alone are limited. Determination of toxicity in biopolymer studies is extremely important. Cultures of various cells are used for toxicity analyses. This study aimed to investigate the toxicity of PAA in human breast cancer (MCF-7) and mouse fibroblast (L-929) cell lines by various methods. Cell culture, 3-(4,5-dimethyltriazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT), trypan blue and 4,6-diamidino 2 phenylindole (DAPI) methods were used in the study. The half-maximal effective concentration (EC50) value of PAA was 6.6 mg/ml in MCF 7 cells and 1.8 mg/ml in L-929 cells. Apoptosis was observed in cells on the increasing PAA concentration with DAPI. With these results, the cytotoxic properties of PAA were determined in vitro. Accordingly, the biocompatibility of polymers to be used in modeling should be supported by in vitro and in vivo studies.
引用
收藏
页码:123 / 129
页数:7
相关论文
共 33 条
[11]   Preparation of Poly Acrylic Acid-Poly Acrylamide Composite Nanogels by Radiation Technique [J].
Ghorbaniazar, Parisa ;
Sepehrianazar, Amir ;
Eskandani, Morteza ;
Nabi-Meibodi, Mohsen ;
Kouhsoltani, Maryam ;
Hamishehkar, Hamed .
ADVANCED PHARMACEUTICAL BULLETIN, 2015, 5 (02) :269-275
[12]  
Gu Y, 2016, FUNCTIONALIZED UPCON, P51
[13]  
Gupta Swati, 2010, Sci Pharm, V78, P959, DOI 10.3797/scipharm.1001-06
[14]   Water Soluble Polymers for Pharmaceutical Applications [J].
Kadajji, Veeran Gowda ;
Betageri, Guru V. .
POLYMERS, 2011, 3 (04) :1972-2009
[15]  
Kumar P., 2018, COLD SPRING HARBOR P, V2018, DOI [10.1101/pdb.prot095505, 10.1101/PDB.PROT095505, DOI 10.1101/PDB.PROT095505]
[16]   Podophyllotoxin-polyacrylic acid conjugate micelles: improved anticancer efficacy against multidrug-resistant breast cancer [J].
Kumbhar, Popat S. ;
Sakate, Asmita M. ;
Patil, Onkar B. ;
Manjappa, Arehalli S. ;
Disouza, John I. .
JOURNAL OF THE EGYPTIAN NATIONAL CANCER INSTITUTE, 2020, 32 (01)
[17]  
Leporatti S., 2018, J NANOMEDICINE RES, V7
[18]   Osteotropic Therapy via Targeted Layer-by-Layer Nanoparticles [J].
Morton, Stephen W. ;
Shah, Nisarg J. ;
Quadir, Mohiuddin A. ;
Deng, Zhou J. ;
Poon, Zhiyong ;
Hammond, Paula T. .
ADVANCED HEALTHCARE MATERIALS, 2014, 3 (06) :867-875
[19]   Bimodal Nd-Doped LuVO4 Nanoprobes Functionalized with Polyacrilic Acid for X-Ray Computed Tomography and NIR Luminescent Imaging [J].
Nunez, Nuria O. ;
Cusso, Fernando ;
Cantelar, Eugenio ;
Martin-Gracia, Beatriz ;
de la Fuente, Jesus M. ;
Corral, Ariadna ;
Balcerzyk, Marcin ;
Ocana, Manuel .
NANOMATERIALS, 2020, 10 (01)
[20]  
PETROV R V, 1986, Molekulyarnaya Genetika Mikrobiologiya i Virusologiya, P30