Interaction of magnesium-based materials with human blood cells and culture of human diploid cells in vitro

作者: N. V. Borovkova , S. V. Dobatkin , M. S. Makarov , I. N. Ponomarev , A. A. Ofitserov

DOI: 10.1007/S10517-019-04668-W

关键词: Molecular biologyWI-38Spontaneous platelet aggregationStromal cellPlatelet degranulationDegranulationPlateletIn vitroMesenchymal stem cellChemistry

摘要: We studied morphofunctional properties of human blood cells and diploid culture exposed to different types magnesium materials: pure (Mg), magnesium—yttrium—neodymium—zirconium alloy (Mg-Y-Nd-Zr) magnesium—zinc—calcium (Mg-Zn-Ca). The materials were incubated with donor mesenchymal multipotent stromal over 3 days. did not induce massive lysis erythrocytes leukocytes in vitro, but gradually impaired their structural integrity. In all cases, spontaneous platelet aggregation was observed 6 h. the presence Mg Mg-Zn-Ca alloy, this accompanied by a decrease number platelets granules. 24 h, substantial degranulation occurred cases 72 contain parallel, formation large aggregates (60 μ) observed. cells, Mg-based reduced integrity significantly inhibit cell proliferation. Structural partially recovered day culture. (Mg, Mg-Y-Nd-Zr, Mg-Zn-Ca) seemed be low-toxic for during short-term contact, could stimulate viability vitro.

参考文章(12)
Yang Zhang, Xinxin Zhang, Chi Zhang, Wei Xu, Biao Zhong, Feng Lin, Jian Zhang, Quanxiang Wang, Jialin Ji, Jie Wei, Biodegradable mesoporous calcium–magnesium silicate-polybutylene succinate scaffolds for osseous tissue engineering International Journal of Nanomedicine. ,vol. 10, pp. 6699- 6708 ,(2015) , 10.2147/IJN.S92598
M. S. Makarov, E. N. Kobzeva, I. V. Vysochin, N. V. Borovkova, V. T. Khvatov, Morphofunctional Analysis of Human Platelets by Vital Staining Bulletin of Experimental Biology and Medicine. ,vol. 156, pp. 409- 412 ,(2014) , 10.1007/S10517-014-2360-0
Andrea Mayer, Maria Vadon, Beate Rinner, Alexandra Novak, Reinhold Wintersteiger, Eleonore Fröhlich, The role of nanoparticle size in hemocompatibility. Toxicology. ,vol. 258, pp. 139- 147 ,(2009) , 10.1016/J.TOX.2009.01.015
Haosen Wang, Zhixiu Hao, Shizhu Wen, Do biodegradable magnesium alloy intramedullary interlocking nails prematurely lose fixation stability in the treatment of tibial fracture? A numerical simulation. Journal of The Mechanical Behavior of Biomedical Materials. ,vol. 65, pp. 117- 126 ,(2017) , 10.1016/J.JMBBM.2016.08.014
S V Dobatkin, E A Lukyanova, N S Martynenko, N Yu Anisimova, M V Kiselevskiy, M V Gorshenkov, N Yu Yurchenko, G I Raab, V S Yusupov, N Birbilis, G A Salishchev, Y Z Estrin, Strength, corrosion resistance, and biocompatibility of ultrafine-grained Mg alloys after different modes of severe plastic deformation IOP Conference Series: Materials Science and Engineering. ,vol. 194, pp. 012004- ,(2017) , 10.1088/1757-899X/194/1/012004
N.S. Martynenko, E.A. Lukyanova, V.N. Serebryany, M.V. Gorshenkov, I.V. Shchetinin, G.I. Raab, S.V. Dobatkin, Y. Estrin, Increasing strength and ductility of magnesium alloy WE43 by equal-channel angular pressing Materials Science and Engineering A-structural Materials Properties Microstructure and Processing. ,vol. 712, pp. 625- 629 ,(2018) , 10.1016/J.MSEA.2017.12.026
Elena Lukyanova, Natalia Anisimova, Natalia Martynenko, Mikhail Kiselevsky, Sergey Dobatkin, Yuri Estrin, Features of in vitro and in vivo behaviour of magnesium alloy WE43 Materials Letters. ,vol. 215, pp. 308- 311 ,(2018) , 10.1016/J.MATLET.2017.12.125
Chen Liu, Zheng Ren, Yongdong Xu, Song Pang, Xinbing Zhao, Ying Zhao, Biodegradable Magnesium Alloys Developed as Bone Repair Materials: A Review Scanning. ,vol. 2018, pp. 9216314- ,(2018) , 10.1155/2018/9216314
Yu-Kyoung Kim, Kwang-Bok Lee, Seo-Young Kim, Ken Bode, Yong-Seok Jang, Tae-Young Kwon, Moo Heon Jeon, Min-Ho Lee, Gas formation and biological effects of biodegradable magnesium in a preclinical and clinical observation Science and Technology of Advanced Materials. ,vol. 19, pp. 324- 335 ,(2018) , 10.1080/14686996.2018.1451717