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[资源] 国内外知名生物材料研究组介绍【重金收集中】

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Group Name: (?о?????????????????group leader????????)
Group Leader:
Affiliation:
Research Interest:
Research Highlight:
Representative Publication: (??????5??????????)
Webpage:

??????????????????????????
Aldo  Boccaccini??Imperial College????116?
Angela Belcher??Massachusetts Institute of Technology????100?
Arto Urtti??University of Helsinki????97?
Buddy Ratner??University of Washington????99?
Chad Mirkin??Northwestern University????25?
Charles M. Lieber??Harvard University????1?
Christine E. Schmidt??The University of Texas at Austin????1?
David Kaplan??Tufts University????103?
Enrique Fernandez??Technical University of Catalonia????37?
Frank Witte??Hannover Medical School????18?
Henry J. Rack??Clemson University????53?
Hongjie Dai (?????)??Stanford University????24?
Huajian Gao (?????)??Brown University????16?
Igor Zhitomirsky??McMaster University????101?
Joelle AMEDEE??Universit?? Victor Segalen Bordeaux 2????110?
John Jansen??Radboud University Nijmegen????43?
Josep A. Planell??Universitat Polit??cnica de Catalunya????38?
K de Groot??Free University????112?
Kokubo Tadashi??Chubu University????36?
Jan Feijen??University of Twente????49?
Larry L. Hench??Imperial College????111?
Laurent Sedel??Hôpital Lariboisi??re????39?
Lemaitre Jacques??Swiss Federal Institute of Technology Lausanne????35?
Ma Jan??Nanyang Technological University????27?
Min Wang(????)??The University of Hong Kong????113?
Mitsuo Niinomi??Tohoku University????55?
Molly Stevens??Imperial College????117?
Nadrian C. Seeman??New York University????50?
Paul K. Chu (????)??City University of Hong Kong????1?
Racquel Z . LeGeros??New York University????107?
Robert Langer??Massachusetts Institute of Technology????46?
Robin Wootton??University of Exeter????17?
Samuel I. Stupp??Northwestern University????98?
Shuming Nie (??????)??Emory University????22?
Song Li??University of California, Berkeley????126?
Subbu S. Venkatraman??Nanyang Technological University????26?
Xiaohu Gao (??????)??University of Washington????23?
Xuejun Wen (?????)??Clemson University????124?
Yang LENG??Hong Kong University of Science & Technology ????106?
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William Bonfield??University of Cambridge??
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????1??

Group Name:
Plasma Laboratory

Group Leader:
Paul K. Chu

Affiliation:
City University of Hong Kong

Research Interest:
Using Plasma Immersion Ion Implantation - Deposition (PIII-D) technique to synthesize thin films and modify the surface properties of materials for biomedical applications.

Research Highlight:
Significant progress has been made to develop more biocompatible artificial heart, cardiovascular, and blood vessel stent materials and catheters. Crystalline silicon wafers can be made bioactive and conducive to the growth of apatite (bone) using hydrogen plasma implantation. This is a significant development enabling better integration of biosensors and bioMEMS with human tissues. Using patent pending plasma surface modification and thermal treatment technologies, the leaching of toxic Ni from NiTi is significantly mitigated while the shape memory and super-elastic properties can be tailored and retained. These inventions have led to another pending patent on a ??gradual correction"surgical technique that obviates the need for multiple surgeries for patients with spinal deformities like scoliosis and major back injuries. Plasma-sprayed TiO2 coatings have been made bioactive for the first time using a special fabrication process involving plasma implantation, nanofabrication technology, and UV irradiation. This is a significant development as plasma-sprayed titanium dioxide coatings have always been regarded as bio-inert. The novel nano-structured TiO2 coatings support the growth of bones and the work has profound impact on artificial prostheses and orthopedic materials.

Representative Publication:
1) P. K. Chu and X. Y. Liu (Editors), Biomaterials Fabrication and Processing Handbook, CRC Press / Taylor and Francis, Boca Raton, USA (2008).
2) J. Jiang, K. F. Huo, Z. W. Wu, et al., Silicon Induced DNA Damage Pathway and Its Modulation by Titanium Plasma Immersion Ion Implantation, Biomaterials, Vol. 29, No. 5, Pages: 544-550 (2008).
3) Zhang W, Chu PK, Ji JH, et al., Plasma Surface Modification of Poly vinyl chloride for Improvement of Antibacterial Properties, Biomaterials, Vol. 27, No. 1 Pages: 44-51 (2006).
4) X. Y. Liu, P. K. Chu, and C. X. Ding, Surface Modification of Titanium, Titanium Alloys, and Related Materials for Biomedical Applications, Materials Science and Engineering: Reports, Vol. 47, No. 2-4, Pages: 49-121 (2004).
5) P. K. Chu, J. Y. Chen, L. P. Wang, et al., Plasma Surface Modification of Biomaterials, Materials Science & Engineering: Reports, Vol. 36, No. 5-6, Pages: 143-206 (2002).

Webpage
http://www.cityu.edu.hk/ap/plasma/default.htm

????2??

Group Name:
The Schmidt Lab

Group Leader:
Christine E. Schmidt

Affiliation:
The University of Texas at Austin

Research Interest:
Semiconductor-Cell Interfaces; Biomimetic Synthetic Polymers; Natural-Based Biomaterials; Mechanisms of Cell Migration; Genetic Strategies for Tissue Repair

Research Highlight:
The group are working in collaboration with scientists with different backgrouds to better understand and repair tissues in the nervous and cardiovascular systems. Most of their current research is applied to the nervous system. They analysed various biomaterials (e.g., an electrically conducting polymer) that can be used to specifically stimulate, and guide, nerves to regrow their severed axons. They also studied the mechanisms of axon extension and nerve repair so that we can better design devices to help promote regeneration. Ultimately, nerve guidance channels (conduits) could be used to aid the repair of damaged peripheral nerves, such as would be required for facial and hand reconstruction, and ultimately, could be used to aid the regeneration of damaged spinal cord. In the cardiovascular system, they have used advanced cell culture approaches and a novel biomaterial scaffold (acellular vascular tissue) in an attempt to grow a living blood vessel. This vascular graft could ultimately be used for blood vessel reconstruction procedures (e.g., coronary artery bypass surgeries).

Representative Publication:
1) Guimard, N., N. Gomez, C.E. Schmidt (2007). Conducting Polymers in Biomedical Applications. Progress in Polymer Science. 32: 876-921.
2) Gomez, N., J.Y. Lee, J.D. Nickels, C.E. Schmidt (2007). Micropatterned Polypyrrole: Combination of Electrical and Topographical Characteristics for Stimulation of Cells. Advanced Functional Materials. 17: 1645-1653.
3) Sanghvi, A.B., K.P-H. Miller, A.M. Belcher, C.E. Schmidt (2005). Biomaterials functionalization using a novel peptide that selectively binds to an electrically conducting polymer. Nature Materials. 4: 496-502.
4) Winter, J.O., T.Y. Liu, B.A. Korgel, C.E. Schmidt (2001). Biomolecule-directed interfacing between semiconductor quantum dots and nerve cells. Advanced Materials.13: 1673-1677.
5) Schmidt, C.E., V.R. Shastri, J.P. Vacanti, and R. Langer (1997). Stimulation of neurite outgrowth using an electrically conducting polymer. Proceedings of the National Academy of Sciences. USA 94: 8948-8953.

Webpage:
http://www.bme.utexas.edu/faculty/schmidt/index.html

???? 3??

Group Name:
Lieber Research Group

Group Leader:
Charles M. Lieber

Affiliation:
Harvard University

Research Interest (Specified):
Bio-Nano Interface: Biological/Chemical Sensing includes Single particle detection, Large-scale addressable arrays, Detection of disease biomarkers and Small molecule detection. Nanodevice-Cell Hybrid Structures. Assembly & Interconnection.

Research Highlight:
They have pioneered the underlying science and application of nanoscale field-effect transistors for real-time label-free electrical detection of biological and chemical species in fluid solution. Nanowire devices represent nearly ideal sensor elements since their sizes are matched to that of biological macromolecules. Current interests are focused primarily on detection within the context of biological systems, although our projects range from ones pushing fundamental limits of detection to application of these devices to important biological problems such as detection of diseases and biowarfare agents. They have an active and growing program investigating this interface in several types of cells with a goal of creating systems that can process information using the unique attributes of both the biological and nanoelectronic components. They are also pursuing efforts that merge other complementary attributes of biology and nanotechnology. They are exploring the use of specific biomolecular interactions available in protein and protein/small molecule systems, to direct in a highly specific manner reversible and irreversible organization of nanostructures. Moreover, they are exploring biological systems as a means for 'building' new types of two-dimensional and three-dimensional interconnections between functional nanostructures and nanostructure arrays.

Representative Publication:
1) F. Patolsky, B.P. Timko, G. Zheng and C.M. Lieber, "Nanowire-Based Nanoelectronic Devices in the Life Sciences," MRS Bull. 32, 142-149 (2007).
2) F. Patolsky, B.P. Timko, G. Yu, Y. Fang, A.B. Greytak, G. Zheng and C.M. Lieber, "Detection, Stimulation, and Inhibition of Neuronal Signals with High-Density Nanowire Transistor Arrays," Science 313, 1100-1104 (2006).
3) G. Zheng, F. Patolsky, Y. Cui, W.U. Wang and C.M. Lieber, "Multiplexed electrical detection of cancer markers with nanowire sensor arrays," Nat. Biotechnol. 23, 1294-1301 (2005).
4) W.U. Wang, C. Chen, K. Lin, Y. Fang and C.M. Lieber, "Label-free detection of small-molecule-protein interactions by using nanowire nanosensors," Proc. Natl. Acad. Sci. USA 102, 3208-3212 (2005).
5) F. Patolsky, G. Zheng, O. Hayden, M. Lakadamyali, X. Zhuang and C.M. Lieber, "Electrical detection of single viruses," Proc. Natl. Acad. Sci. USA 101, 14017-14022 (2004).

Webpage:
http://cmliris.harvard.edu/

???? 4??

Group Name:
?????????????????????о?????

Group Leader:
???????????Σ??????
???????Σ??????

Affiliation:
????????????

Research Interest:
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Research Highlight:
http://www.biomater.com/yanjiukaifachengguo.asp

Representative Publication:
http://www.biomater.com/shangyehuachanpin/chanpinshow.asp?c_id=25
http://www.biomater.com/shangyehuachanpin/chanpinshow.asp?c_id=26

Webpage:
http://www.biomater.com/


[ Last edited by zhangwj on 2009-7-21 at 23:33 ]
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zhangwj(金币+6,VIP+0):谢谢分享! 2-9 18:36
浙江大学生物医用材料研究所 计剑 教授

计剑  教授,博导  男  1969.11.08出生   

1992年           开始从事高分子生物医用功能材料的研究
1997.8            浙江大学高分子系获高分子化学和物理博士学位
2000.12-2004.12  浙江大学高分子复合材料研究所副教授
2004.12-          浙江大学浙江大学高分子复合材料研究所教授
2005.9~2005.12  德国海德堡大学高级访问学者
获奖及荣誉:
2000年    第六届世界生物材料大会杰出博士后旅行奖。
2002年    第十七届欧洲生物材料大会优秀青年科学家奖
2004年       国家教育部霍英东基金优选资助项目
2005年     国家教育部“新世纪优秀人才支持计划


主要从事生物医用材料的应用基础研究,在生命体系与材料界面的生物相容性和生物功能性方面开展了系统深入的研究,形成了采用过程仿生的自组装行为制备具有结构和功能仿生的新型生物材料的研究特色,并将该原理应用到现代介入医用材料和组织工程材料的设计和研发中,是我国具有自主知识产权的心动系列细胞膜仿生药物涂层支架的主要发明人。
近年来在包括Advanced Materials, Biomaterials, Biomacromolecules等核心期刊发表SCI, EI收录论文66篇,作为第一、二作者共发表SCI, EI收录论文49篇,影响因子大于3.0的26篇,获国家发明专利6项。先后承担国家自然科学基金3项,国家高技术研究发展计划(863计划) 2项,国家重大基础研究计划(973)2项,教育部霍英东基金1项,浙江省自然科学基金重点项目和面上项目各1项。并通过中国科技部中法和中葡国际合作项目建立了多个实质性国际协作关系。
在目前的研究中,采用现代微纳仿生技术和超分子组装技术结合,重点致力于自组装仿生界面和纳米生物医用材料的研究。主体研究内容包括:
1)心血管医用材料和微创介入医用材料
2)医用材料的组织工程化设计
3)生物治疗用智能纳米微载体
4)新型固相基因传递体系的研究
5)仿生双亲聚合物的溶液和界面组装
6)层层组装构建生物相容性和生物功能性纳米层状超薄膜的研究

1.        Li XL, Ji J, Wang XL, et al.,Stability and drug loading of spontaneous vesicles of comb-like PEG derivates,  Macro. Rapid. Comm. 28 (5): 660-665 MAR 1 2007
2.        孙巍,唐越超,计剑, 以Pluronicsâ为第二组分制备聚乳酸蜂窝状多孔薄膜的研究, 高等学校化学学报, 2007,28(7),1388-1392
3.        柯诗剑,计剑*, 万古霉素修饰磁性纳米粒子的制备及其细菌分离功能, 高等学校化学学报, 2007,28(1),26-28
4.        徐建平, 陈伟东,计剑*,沈家骢, 新型仿生聚合物胶束用于纳米药物载体的研究, 高等学校化学学报, 2007,28(2),394-396
5.        Qingshan Wei, Jian Ji*, Jinhong Fu, Jiacong Shen. Norvancomycin-capped silver nanoparticles: Synthesis and antibacterial activities against E-coli, Sci. China Ser. B-Chem., 2007, 50: 418-424
6.        吴楠, 金桥, 计剑, Fe3O4纳米粒子的磷酸胆碱仿细胞膜修饰, 材料研究学报, 2007, 21(6), 589-592
7.        Ji, J*; Fu, JH; Shen JC*;  Fabrication of a Superhydrophobic Surface from the Amplified Exponential Growth of a Multilayer, Advanced Materials, 18:1441-1444, 2006
8.        Fu JH, Ji J*, Fan DZ, Shen JC, Construction of antibacterial multilayer films containing nanosilver via layer-by-layer assembly of heparin and chitosan-silver ions complex, JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A 79A (3): 665-674 DEC 1 2006

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