百家乐怎么玩-澳门百家乐官网娱乐城网址_网上百家乐是不是真的_全讯网888 (中国)·官方网站

World’s first: microrobots delivering cells to precise locations in the body

Terry Lam

 

Professor Sun Dong (front row) and (back row from left) Mr Li Dong-fang Dr Li Jun-yang, Dr Li Xiao-jian, Dr Chen Shu-xun and Mr Luo Tao.
Professor Sun Dong (front row) and (back row from left) Mr Li Dongfang, Dr Li Junyang, Dr Li Xiaojian, Dr Chen Shuxun and Mr Luo Tao.


In a world’s first, a team of researchers at City University of Hong Kong (CityU) has developed a magnetic 3D-printed microscopic robot that can carry cells to precise locations in live animals. 

The invention could revolutionise cell-based therapy, regenerative medicine and more precise treatment for diseases such as cancer. It was published in the latest issue of journal Science Robotics. 

“This could be a huge leap for the emerging industry of cell surgery robotics,” said Professor Sun Dong, Head of the Department of Biomedical Engineering (BME) at CityU and the supervisor of the research team.

A revolutionary magnetic microscopic robot developed by CityU can carry cells to precise locations in live animals.
The porous burr-shaped structure of the microrobot is optimal for carrying cell loads through the bloodstream.


The microrobots could be used to carry stem cells that can repair damaged tissues or treat tumours, providing an alternative to invasive surgery, as well as a solution for the side effects caused by drugs and drug resistance issues. 

“This is the first known instance of a microrobot able to deliver cells in a live body,” said Dr Li Junyang, PhD graduate of BME and the first author of the paper.

The size of the new microrobot is less than 100 micrometres (μm) in diameter, similar to that of a single strand of human hair. Using computer simulations, the researchers assessed the efficiency of different robot designs and found that a porous burr-shaped structure is optimal for carrying cell loads and moving through the bloodstream and body fluid. 

The microrobots were then manufactured using 3D laser lithography, and coated with nickel for magnetism and titanium for biocompatibility. 

An external electromagnetic coil actuation system, which is designed and made in CityU, is used to manipulate the magnetic microrobots to reach a desired site after they have been injected into the bloodstream.  

Time lapsed images of the microrobot moving in the yolk of a zebrafish embryo.
Time lapsed images of the microrobot moving in the yolk of a zebrafish embryo.


Subsequent tests were carried out on two types of animals. The researchers loaded the microrobots with connective tissue cells and stem cells, injected them into transparent zebrafish embryos, and used a magnet to guide them to the desired location. 

In addition, microrobots carrying fluorescent cancer cells were injected into laboratory mice. The fluorescent cells were successfully transported to the targeted area, passed through the blood vessels and released to the surrounding tissue. Cancer cells were used in the experiment because they could be easily detected after forming a tumor.

The microrobot successfully transported fluorescent cancer cells to the targeted site in a mouse.
The microrobot successfully transported fluorescent cancer cells to the targeted site in a mouse.  

 

The team is also conducting a pre-clinical study on delivering stem cells into animals for the precise treatment of liver cancers. Clinical studies on humans are expected to take place in two to three years. 

“The research could not have been a success without the grit and determination of our scientists. This is also a perfect example of interdisciplinary collaborations at CityU,” said Professor Sun. 

It took the team 10 years to overcome the challenges in different disciplines such as biomedical sciences, nanotechnology and robotics. 

Led by BME, researchers in this project include Professor Sun; co-first authors Dr Li Junyang and Dr Li Xiaojian; PhD students Mr Luo Tao and Mr Li Dongfang; Dr Wang Ran, Dr Liu Chichi, Dr Chen Shuxun (all of them are CityU PhD graduates); together with Professor Cheng Shuk Han, Associate Dean (Learning & Teaching), College of Veterinary Medicine and Life Sciences; and Dr Yue Jianbo, Associate Professor of Department of Biomedical Sciences.
 

YOU MAY BE INTERESTED

Contact Information

Communications and Institutional Research Office

Back to top
诚信百家乐官网平台| 德州百家乐扑克桌| 网络百家乐官网会输钱的多吗| 防伪百家乐官网筹码币套装| 百家乐7scs娱乐场| 老k棋牌游戏大厅| 疏勒县| 百家乐官网筹码桌| 百家乐游戏机破解方法| 百家乐官网五局八星| 怎么玩百家乐官网的玩法技巧和规则| 百家乐赌马| A8百家乐官网现金网| 真人百家乐试玩账号| E乐博百家乐| 定制百家乐官网桌子| 百家乐官网的胜算法| 方形百家乐官网筹码| 隆子县| 太阳城百家乐作弊| 葡京百家乐官网注码| 赌场百家乐是如何| 百家乐官网为什么庄5| 大发888真钱游戏官方网站| LV百家乐客户端LV| 百家乐官网网站可信吗| 大发888体育在线| 代理百家乐官网试玩| 大发888虎牌官方下载| 百家乐下对子的概率| 百家乐官网不倒翁注码| 单机百家乐的玩法技巧和规则 | 大发888官方下载168| 真人百家乐官网网络游戏信誉怎么样| 大发888下载官网| 百佬汇百家乐的玩法技巧和规则 | 德州扑克学校| 线上百家乐赢钱| 百家乐官网光纤洗牌机如何做弊| 在线百家乐官网合作| 太阳城王子酒店|