Biocompatibility issues of implanted polymeric materials

被引:0
|
作者
Satish, C. S. [1 ]
Kumar, Chetan [1 ]
Narasimhamurthy, S. [2 ]
Shivakumar, H. G. [2 ]
机构
[1] JSS Coll Pharm, Mysore 570015, Karnataka, India
[2] Univ Mississippi, Sch Pharm, University, MS 38677 USA
关键词
biocompatibility; polymers; biodegradable; blood compatibility; implant;
D O I
暂无
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
Polymers remain the most versatile class of biomaterials, being extensively applied in medicine and biotechnology, as well as in the food and cosmetics industries. Applications include surgical devices, implants and supporting materials. The biocompatibility and immunocompatibility of polymeric materials is of fundamental importance for their possible therapeutic uses. Implanted systems are in direct and sustained contact with the tissues, and some of them degrade in situ. Thus, both the material itself and its degradation products must be devoid of toxicity. The knowledge and understanding of the criteria and mechanisms determining the biocompatibility of biomaterials are therefore of great importance. The biocompatibility of a polymer depends on the specific adsorption of proteins to the polymer surface and the subsequent cellular interactions. The first contact is between the surface of the polymer and the organism (blood and other tissues) and results in a 'foreign-body' reaction. Owing to the nature of these interactions, surface modification strategies have been used to optimize specific surface properties (e.g. charge, adhesion, hydrophilicity) of the implanted polymeric materials.
引用
收藏
页码:195 / 204
页数:10
相关论文
共 50 条
  • [41] Biocompatibility of restorative materials
    Hensten-Pettersen, A
    Jacobsen, N
    OPERATIVE DENTISTRY, 2001, : 229 - 235
  • [42] Trends for the Thermal Degradation of Polymeric Materials: Analysis of Available Techniques, Issues, and Opportunities
    Galko, Grzegorz
    Sajdak, Marcin
    APPLIED SCIENCES-BASEL, 2022, 12 (18):
  • [43] Biocompatibility of Plasma-Treated Polymeric Implants
    Recek, Nina
    MATERIALS, 2019, 12 (02)
  • [44] Biocompatibility of electrochemical glucose sensors implanted in the subcutis of pigs
    Kvist, Peter Helding
    Iburg, Tine
    Bielecki, Mia
    Gerstenberg, Michael
    Buch-Rasmussen, Thomas
    Hasselager, Erik
    Jensen, Henrik Elvang
    DIABETES TECHNOLOGY & THERAPEUTICS, 2006, 8 (04) : 463 - 475
  • [45] In vivo stability and biocompatibility of implanted calcium alginate disks
    Nunamaker, Elizabeth A.
    Purcell, Erin K.
    Kipke, Daryl R.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2007, 83A (04) : 1128 - 1137
  • [46] Bases of technological maintenance of polymeric implants' biocompatibility
    Bazanova, N. I.
    Shibryaeva, L. S.
    Zaikov, G. E.
    JOURNAL OF THE BALKAN TRIBOLOGICAL ASSOCIATION, 2008, 14 (01): : 64 - 67
  • [47] FATE AND BIOCOMPATIBILITY OF 3 TYPES OF MICROSPHERES IMPLANTED INTO THE BRAIN
    MENEI, P
    CROUE, A
    DANIEL, V
    POUPLARDBARTHELAIX, A
    BENOIT, JP
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH, 1994, 28 (09): : 1079 - 1085
  • [48] Biocompatibility of consolidated silver implanted subcutaneously in guinea pigs
    Schumacher, FM
    Garner, FM
    Eichmiller, FE
    Giuseppetti, AA
    JOURNAL OF DENTAL RESEARCH, 2000, 79 : 618 - 618
  • [49] SCLERAL REINFORCEMENT SURGERY FOR HIGH MYOPIA - CLINICAL-RESULTS AND BIOCOMPATIBILITY OF 16 POLYMERIC MATERIALS TESTED IN RABBITS
    BYRD, T
    JACOBLABARRE, J
    ASSOULINE, M
    MCDONALD, M
    LEHMAN, E
    INVESTIGATIVE OPHTHALMOLOGY & VISUAL SCIENCE, 1991, 32 (04) : 921 - 921
  • [50] BIOCOMPATIBILITY IN HEMAPHERESIS - NEW MATERIALS
    RUSSO, GE
    FAGIOLO, M
    VITALIANO, E
    CARAMIELLO, MS
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 1993, 16 : 214 - 216