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冷大气等离子体改性聚己内酯纳米纤维的细胞附着与活力研究

Cell Attachment and Viability Study of PCL Nano-fiber Modified by Cold Atmospheric Plasma.

作者信息

Atyabi Seyed Mohammad, Sharifi Fereshteh, Irani Shiva, Zandi Mojgan, Mivehchi Houri, Nagheh Zahra

机构信息

Department of Pilot Biotechnology, Pasteur Institute of Iran, Tehran, Iran.

Department of Biology, Science and Research Branch, Islamic Azad University, Tehran, Iran.

出版信息

Cell Biochem Biophys. 2016 Jun;74(2):181-90. doi: 10.1007/s12013-015-0718-1.

Abstract

The field of tissue engineering is an emerging discipline which applies the basic principles of life sciences and engineering to repair and restore living tissues and organs. The purpose of this study was to investigate the effect of cold and non-thermal plasma surface modification of poly (ϵ-caprolactone) (PCL) scaffolds on fibroblast cell behavior. Nano-fiber PCL was fabricated through electrospinning technique, and some fibers were then treated by cold and non-thermal plasma. The cell-biomaterial interactions were studied by culturing the fibroblast cells on nano-fiber PCL. Scaffold biocompatibility test was assessed using an inverted microscope. The growth and proliferation of fibroblast cells on nano-fiber PCL were analyzed by MTT viability assay. Cellular attachment on the nano-fiber and their morphology were evaluated using scanning electron microscope. The result of cell culture showed that nano-fiber could support the cellular growth and proliferation by developing three-dimensional topography. The present study demonstrated that the nano-fiber surface modification with cold plasma sharply enhanced the fibroblast cell attachment. Thus, cold plasma surface modification greatly raised the bioactivity of scaffolds.

摘要

组织工程领域是一门新兴学科,它应用生命科学和工程学的基本原理来修复和恢复活组织及器官。本研究的目的是探讨聚己内酯(PCL)支架的冷等离子体和非热等离子体表面改性对成纤维细胞行为的影响。通过静电纺丝技术制备了纳米纤维PCL,然后对部分纤维进行了冷等离子体和非热等离子体处理。通过将成纤维细胞培养在纳米纤维PCL上来研究细胞与生物材料的相互作用。使用倒置显微镜评估支架的生物相容性测试。通过MTT活力测定法分析成纤维细胞在纳米纤维PCL上的生长和增殖情况。使用扫描电子显微镜评估细胞在纳米纤维上的附着情况及其形态。细胞培养结果表明,纳米纤维可以通过形成三维形貌来支持细胞的生长和增殖。本研究表明,冷等离子体对纳米纤维表面的改性显著增强了成纤维细胞的附着。因此,冷等离子体表面改性大大提高了支架的生物活性。

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