Gilmore Kerry J, Kita Magdalena, Han Yao, Gelmi Amy, Higgins Michael J, Moulton Simon E, Clark Graeme M, Kapsa Robert, Wallace Gordon G
ARC Centre of Excellence for Electromaterials Science, Intelligent Polymer Research Institute, University of Wollongong, Wollongong, NSW 2522, Australia.
Biomaterials. 2009 Oct;30(29):5292-304. doi: 10.1016/j.biomaterials.2009.06.059. Epub 2009 Jul 29.
Conducting polymers have been developed as substrates for in vitro studies with a range of cell types including electrically-excitable cells such as nerve and smooth muscle. The goal of this study was to optimise and characterise a range of polypyrrole materials to act as substrates for electrical stimulation of differentiating skeletal myoblasts. Although all of the polymer materials provided suitable substrates for myoblast adhesion and proliferation, significant differences became apparent under the low-serum conditions used for differentiation of primary myoblasts. The significance of the work lies in the design and control of polymer materials to facilitate different stages of skeletal muscle cell proliferation and/or differentiation, opening up opportunities for engineering of this tissue. This paper therefore constitutes not just a biocompatibility assessment but a comprehensive study of how synthesis conditions affect the final outcome in terms of cell response.
导电聚合物已被开发用作体外研究的基质,用于一系列细胞类型,包括神经和平滑肌等电兴奋性细胞。本研究的目的是优化和表征一系列聚吡咯材料,以作为分化的骨骼肌成肌细胞电刺激的基质。尽管所有聚合物材料都为成肌细胞的黏附和增殖提供了合适的基质,但在用于原代成肌细胞分化的低血清条件下,显著差异变得明显。这项工作的意义在于聚合物材料的设计和控制,以促进骨骼肌细胞增殖和/或分化的不同阶段,为该组织的工程化开辟了机会。因此,本文不仅构成了一项生物相容性评估,而且是一项关于合成条件如何在细胞反应方面影响最终结果的全面研究。