4.8 Article

Controlled release and biocompatibility of polymer/titania nanotube array system on titanium implants

期刊

BIOACTIVE MATERIALS
卷 2, 期 1, 页码 44-50

出版社

KEAI PUBLISHING LTD
DOI: 10.1016/j.bioactmat.2017.02.001

关键词

Antibacterial; Biocompatibility; Coating; Drug delivery; Implants

资金

  1. Special Prophase Program for Key Basic Research of the Ministry of Science and Technology of China (973 Program) [2014CB660809]
  2. National Key Research and Development Plan of China [2016YFC1100604]
  3. National Natural Science Foundation of China [51422102, 81271715, 51671081]
  4. Shenzhen Knowledge Innovation Program of Basic Research Items of Guangdong Province, China [JCYJ20140414090541811]

向作者/读者索取更多资源

Bacterial infection and tissue inflammation are the major causes of early failure of titanium-based orthopedic implants; thus, surgical implants with tunable drug releasing properties represent an appealing way to address some of these problems of bacterial infection and tissue inflammation in early age of orthopedic implants. In this work, a hybrid surface system composed of biodegradable poly(lactic-coglycolic acid) (PLGA) and titania nanotubes (TNTs) has been successfully constructed on Ti implants with the aim of preventing bacterial infection via long-term drug release. By varying the size of the TNTs and the thickness of the polymer film, the drug release profile can be tuned to achieve the optimal therapeutic action throughout the treatment time. The size of TNTs plays a dominant role in the drug loading dose of TNTs/PLGA hybrid coatings. In this work, TNTs with an average size of 80 nm can achieve the largest loading dose. Depending on the polymer thickness, significant improvement in the drug release characteristics is attained, for instance, reduced burst release (from 84% to 27%) and overall release time extended from 5 to over 40 days. In addition, the PLGA layers may favor the proliferation and osteogenesis of MC3T3-E1 mouse cells at an earlier stage. Therefore, this TNT/PLGA hybrid surface system can be employed as an effective bioplatform for improving both self-antibacterial performance and biocompatibility of Ti-based biomaterials. (C) 2017 The Authors. Production and hosting by Elsevier B.V. on behalf of KeAi Communications Co., Ltd.

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