kuai500免费永久加速-outline

Nearly every tissue in the body needs a blood supply, and that demand is met by a network of interconnected blood vessels called the microcirculation. The microcirculation is a highly adaptable system of small blood vessels that are a tenth of the diameter of a human hair–-you need a microscope to see them–-and there are over a million microvessels in a single gram of tissue. Microvascular growth and remodeling are important processes in nearly every major disease, including diabetes, heart disease, peripheral vascular disease, stroke, neurodegenerative diseases, and cancer. In our lab, we develop and use experimental and computational techniques to study and design new approaches for growing and regenerating injured and diseased tissues by manipulating the structure and composition of the microvasculature.

kuai500免费永久加速-outline

kuai500免费永久加速-outline

Amongst Medical and Biological Engineering Elite
02.23.2016
DETAILS
New $2.5M Collaborative NIH Grant Awarded
02.23.2017 
DETAILS
Pioneering Agent-Based Modeling
04.19.2016
DETAILS

kuai500免费永久加速-outline

With the recent acquisition of two state-of-the-art 3D-bioprinters, we have begun to explore how 3D-printing technology can be used to produce engineered tissues for use as model systems for studying disease and for generating implantable tissue constructs. Our current 3D-bioprinting projects involve collaborations with biomaterials experts at UVA in Chemical Engineering and make use of cutting-edge polymers for oxygen sensing developed by the Fraser Lab in the Dept. of Chemistry. Current work is focused on printing mini-pancreas tissue chips and skeletal muscle. These studies have been fueled by funds from the Jefferson Trust and have seeded a brand new "Center for Advanced Biomanufacturing" at UVA, with BME collaborator, Dr. George Christ. 

We use a parallel approach that combines experimental models with agent-based computational models to guide the development of new methods in tissue engineering and regenerative medicine. We are particularly interested in the microcirculatory system and how microvascular networks structurally adapt, through active growth and remodeling in health and disease. Our research is relevant to a variety of medical problems including heart disease, peripheral limb ischemia, wound healing, cancer and diabetes.

Learn More
Learn More

国内ipad怎么看youtube

Department of Biomedical Engineering

University of Virginia

kuai500免费永久加速-outline

  • mac怎么上youtube
  • 国内ios如何使用youtube
  • Grey Google+ Icon
  • 苹果怎么看youtube
  • 苹果用什么翻墙上youtube
fireorange快橙加速器官网下载  798加速器最新版下载  胡蜂加速器  蚂蚁梯子加速器app  速8加速器ios下载,速8加速器免费永久加速,速8加速器免费试用,速8加速器打不开了  黑豹加速器官网,优途加速器官网,小福加速服务器,西柚加速器官网  喵云官方网址,喵云vqn,喵云用不了了,喵云vp  海神加速器安卓下载,海神加速器电脑版下载,海神加速器打不开,海神加速器vn