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Controllable Micro/nano Biofabrication of Fascinating Composites based Bacterial Cellulose

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报告题目   Controllable Micro/nano Biofabrication of Fascinating Composites based Bacterial Cellulose
报告人   杨光 教授
报告人单位   华中科技大学生命科学与技术学院
报告时间   2014-10-29
报告地点   合肥微尺度物质科学国家实验室九楼会议室
主办单位   合肥微尺度物质科学国家实验室
报告介绍
报告摘要:
Microorganisms in nature have rich variety, whose sizes are from nano to microscale. Therefore, microbes can be used as natural building blocks in nano/micro multilevel fabrication processes. Based on the urgent need of micro/nano biological manufacture of microorganism, four controlling methods: molecular template, magnetic control, microfluidics, and bio-printing for biological manufacture process suitable for microbe have been proposed to dip into the moving mode of microorganism and design new micro/nano functional materials by controlling directed movement and ordered arrangement of microorganism living cells. It could be really creative attempts in the microbial field.
Bacterial cellulose (BC) is secreted by microorganism. Its biocompatibility, mechanical strength, chemical and morphologic controllability make it a natural choice for adoption in biomedical fields, including use as biomaterial for wound dressing, artificial blood vessels, vascular grafts, scaffolds for tissue engineering and controlled-release drug carriers3. More than that, BC is a natural hydrogel, its high water content can carry other monomeric, reactive and potentially polymerizable species into BC’s inner network, essentially occupying the void volume and interacting with chain segments or pendant moieties of the BC. Therefore, Varity of composites based BC were synthesized and expand the application of BC. BC composites are primarily synthesized through in situ addition of reinforcement materials to BC synthetic media or the ex situ penetration of such materials into BC microfibrils. In our group’s research, BC combine with biomacromolecules such as chitosan, hyaluronic acid, collagen, silk fibroin and so on, can be used in wound dressing and cosmetic. BC combine with Poly(NIPAM-co-BMA), which has thermoresponsive property, suitable for vascular embolization interventional therapy. BC combine with carbon nanotubes or conductive polymers, which has electractive property, can be used as flexible supercapacitor, electrodes, and have potential to be used to build a biology–device interface to produce implantable biosensors, electrostimulated drug release devices, and implantable devices for personalized and regenerative medicine.

报告人简介:
  杨光教授主要从事生物材料的仿生生物制造,涉及天然高分子——纤维素为主的有序组装及其结构与性能的研究,细菌纤维素的生物炼制过程控制与优化,新型药物载体及医用细胞与组织工程支架材料的研制等多个交叉学科领域。主要包括仿生生物制造,生物医学材料,生物功能材料。发表论文共60多篇, 参与编写专著和教材5本。授权专利8项。并荣获多种奖项,其中包括:中国化学会青年化学奖、国家教育部自然科学二等奖、湖北省杰青、湖北省楚天学者特聘教授、教育部青年骨干教师和湖北省优秀博士论文等多项奖励。并分别荣获德国洪堡基金会及日本学术振兴会的资助。

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