皇冠网址大全-皇冠网开户地址是_百家乐计划工具_赌博全讯网网站 (中国)·官方网站

學(xué)術(shù)活動   NAVIGATION

Mechanical Engineering of Protein-based Biomaterials

時間:2023-11-03 來源: 作者: 攝影: 編輯:趙宇軒 上傳:

報告題目Mechanical Engineering of Protein-based Biomaterials

報告人:李宏斌教授

報告人單位加拿大不列顛哥倫比亞大學(xué)

報告時間:2023年11月8日(周三)15:00

會議地點(diǎn):科技D樓1903會議室

舉辦單位:柔性電子(未來技術(shù))學(xué)院、先進(jìn)材料研究院

報告人簡介Dr. Hongbin Li is currently a Professor at the Department of Chemistry, the University of British Columbia, Canada, and Director of the NSERC CREATE Program on 3D Printing Technology and Materials (3DPTM). He held the position of Canada Research Chair in Molecular Nanoscience and Protein Engineering from 2004-2014. Prior to joining UBC, he worked as an Associate Research Scientist in Columbia University (2002-2004) and a postdoctoral research fellow in Mayo Medical Center (1999-2002). He obtained his Ph.D. in Jilin University in 1998 and B.S. at Tianjin University in 1993. His research interest is in the area of single molecule biophysics, single molecule force spectroscopy and protein-based biomaterials. He is an elected Fellow of American Associate for the Advancement of Science (AAAS Fellow). His contributions have been recognized by Charles McDowell Award in Research, NSERC Accelerator Award, Career Investigator Award from Michael Smith Foundation, JILA Distinguished Fellowship and Changjiang Scholar.

報告摘要:Elastomeric proteins function as molecular springs in their biological settings to establish elastic connections, and provide mechanical strength, elasticity and extensibility. To fulfill their biological functions, elastomeric proteins have evolved to assume different structures, from simple random coil-like structure to more sophisticated beads-on-a-string conformation, and exhibit distinct mechanical properties. The development of single molecule force spectroscopy techniques has made it possible to directly probe the mechanical properties of such elastomeric proteins at the single molecule level and allowed to understand molecular design principles of these complex protein polymers. This knowledge has enabled us to engineer novel elastomeric proteins to achieve tailored and well-defined nanomechanical properties. Going a step further, we have started to employ these novel elastomeric proteins as building blocks to construct protein-based biomaterials, which in turn provide an ideal system to understand how single molecule nanomechanical features are translated into biomechanical properties of macroscopic materials. Specific examples will be given on engineering protein hydrogels to mimic the passive elastic properties of muscle, as well as highly stiff and highly tough protein biomaterials to the mechanical properties of cartilage. These studies will pave the way to utilizing proteins as building blocks to engineer new generations of protein-based biomaterials for diverse applications in biomedical engineering as well as material sciences.

審核:安眾福


學(xué)術(shù)活動
疯狂水果机怎么玩| 百家乐官网电投软件| A8娱乐城| E乐博百家乐现金网| 网页百家乐官网游戏| 百家乐单机版游戏下载| 百家乐官网在发牌技巧| 百家乐棋牌正式版| 澳门百家乐官网海星王娱乐城 | 百家乐破解视频| 网上百家乐官网分析软件| 大发888赌博网站| 百家乐怎么刷反水| 百家乐官网出老千视频| 保德县| 威尼斯人娱乐城信誉最好| 金域百家乐官网的玩法技巧和规则 | 博彩评级| 新濠峰百家乐的玩法技巧和规则| 百家乐官网麻将牌| 百家乐官网输一押二| 百家乐官网网站开户| 顶级赌场官网下载| 百家乐平注秘籍| 蓝盾百家乐官网娱乐场开户注册| 澳门博彩 | 德州扑克大师| 威尼斯人娱乐城 色情| 最好的百家乐博彩网站| V博百家乐官网的玩法技巧和规则 中骏百家乐官网的玩法技巧和规则 | 百家乐官网mediacorp| 玩百家乐官网如何看路| 新锦江娱乐城备用网址| 大发888bet娱乐场下载| 天博百家乐娱乐城| 太阳城百家乐娱乐官方网| 百家乐破解之法| 免费百家乐官网追号| 红9百家乐官网的玩法技巧和规则| 百家乐官网只打闲打法| 百家乐官网输了好多钱|