Surface modification of poly-ε-caprolactone electrospun fibrous scaffolds using plasma discharge with sputter deposition of a titanium target

被引:23
作者
Barbarash, L. S. [1 ]
Bolbasov, E. N. [2 ]
Antonova, L. V. [1 ]
Matveeva, V. G. [1 ]
Velikanova, E. A. [1 ]
Shesterikov, E. V. [2 ]
Anissimov, Y. G. [3 ]
Tverdokhlebov, S. I. [2 ]
机构
[1] Res Inst Complex Issues Cardiovasc Dis, Fed State Budgetary Inst, 6 Sosnovy Blvd, Kemerovo 650002, Russia
[2] Tomsk Polytech Univ, 30 Lenin Ave, Tomsk 634050, Russia
[3] Griffith Univ, Sch Nat Sci, Engn Dr, Southport, Qld 4222, Australia
基金
俄罗斯科学基金会;
关键词
Biomaterials; Poly-epsilon-caprolactone; Fibrous scaffold; Magnetron discharge; Plasma treatment; HYDROXYAPATITE TARGET; FILM;
D O I
10.1016/j.matlet.2016.02.062
中图分类号
T [工业技术];
学科分类号
120111 [工业工程];
摘要
Poly-epsilon-caprolactone (PCL) biodegradable fibrous scaffolds were modified by plasma of magnetron discharge with titanium target sputtering. The influence of the plasma treatment time on the structure and properties of the electrospun scaffolds was investigated. It was shown that increasing the plasma treatment time increases hydrophilicity of scaffolds by increasing the content of titanium and oxygen, as well as increasing the size and number of pores on the fibers surface without changing the mean diameter and volume fraction of the scaffolds. In vitro studies demonstrated that the plasma treatment within the chosen time intervals increases the adhesion of cells to the scaffolds, but at the same time it causes the decline in cell viability when increased to 9 min. (C) 2016 Elsevier B.V. All rights reserved.
引用
收藏
页码:87 / 90
页数:4
相关论文
共 17 条
[1]
Surface modification of poly(L-lactide) and polycaprolactone bioresorbable polymers using RF plasma discharge with sputter deposition of a hydroxyapatite target [J].
Bolbasov, E. N. ;
Rybachuk, M. ;
Golovkin, A. S. ;
Antonova, L. V. ;
Shesterikov, E. V. ;
Malchikhina, A. I. ;
Novikov, V. A. ;
Anissimov, Y. G. ;
Tverdokhlebov, S. I. .
MATERIALS LETTERS, 2014, 132 :281-284
[2]
Poly-ε-caprolactone based formulations for drug delivery and tissue engineering: A review [J].
Dash, Tapan K. ;
Konkimalla, V. Badireenath .
JOURNAL OF CONTROLLED RELEASE, 2012, 158 (01) :15-33
[3]
Nonthermal Plasma Technology as a Versatile Strategy for Polymeric Biomaterials Surface Modification: A Review [J].
Desmet, Tim ;
Morent, Rino ;
De Geyter, Nathalie ;
Leys, Christophe ;
Schacht, Etienne ;
Dubruel, Peter .
BIOMACROMOLECULES, 2009, 10 (09) :2351-2378
[4]
EMEIS JJ, 1988, BLOOD, V71, P1669
[5]
Improved cell adhesion to flat and porous plasma-treated poly-ε-caprolactone samples [J].
Jacobs, Tinneke ;
Declercq, Heidi ;
De Geyter, Nathalie ;
Cornelissen, Ria ;
Dubruel, Peter ;
Leys, Christophe ;
Morent, Rino .
SURFACE & COATINGS TECHNOLOGY, 2013, 232 :447-455
[6]
Plasma treatment of polycaprolactone at medium pressure [J].
Jacobs, Tinneke ;
De Geyter, Nathalie ;
Morent, Rino ;
Desmet, Tim ;
Dubruel, Peter ;
Leys, Christophe .
SURFACE & COATINGS TECHNOLOGY, 2011, 205 :S543-S547
[7]
Electrospinning of polymer nanofibers for tissue regeneration [J].
Jiang, Tao ;
Carbone, Erica J. ;
Lo, Kevin W. -H. ;
Laurencin, Cato T. .
PROGRESS IN POLYMER SCIENCE, 2015, 46 :1-24
[8]
Magnetron sputtering: a review of recent developments and applications [J].
Kelly, PJ ;
Arnell, RD .
VACUUM, 2000, 56 (03) :159-172
[9]
Kinetic model of co-deposition of thin multicomponent films [J].
Klinger, L. ;
Shtansky, D. V. ;
Levashov, E. A. ;
Rabkin, E. .
MATERIALS LETTERS, 2015, 156 :118-120
[10]
Role of reactive gas in atmospheric plasma for cell attachment and proliferation on biocompatible poly ε-caprolactone film [J].
Lee, Hyun-Uk ;
Jeong, Ye-Sul ;
Jeong, Se-Young ;
Park, So-Young ;
Bae, Jong-Seong ;
Kim, Hyun-Gyu ;
Cho, Chae-Ryong .
APPLIED SURFACE SCIENCE, 2008, 254 (18) :5700-5705