波音游戏-波音娱乐城赌球打不开

Painless drug delivery via melting ice microneedle patches

Donna Wong

 

Ice microneedle patches
Dr Xu Chenjie (second from right) and his research team.

 

A research team led by biomedical engineers at City University of Hong Kong (CityU) has developed a new generation of microneedle patches made of ice that melt after the pain-free delivery of drugs.

Experiments using this groundbreaking invention on mice with cancers have shown that the animals’ immune responses were much better than those seen in conventional vaccination methods. The technology paves the way for developing an easy-to-use cell therapy and other therapeutics against cancers and other diseases. 

ice microneedle patches
The icy microneedles are less than 1mm long and can deliver drugs and living mammalian cells into the skin.

 

Made from a cryogenic solution, these icy microneedles are less than 1mm long and can deliver living mammalian cells into the skin. The device is like a skin patch and the microneedles can detach from the patch base, melt and then penetrate the skin.

The research is led by Dr Xu Chenjie, Associate Professor in the Department of Biomedical Engineering (BME), and the findings were published in Nature Biomedical Engineering under the title “Cryomicroneedles for Transdermal Cell Delivery”.

“Traditional cell therapy for skin disorders is invasive, painful, complicated, low-efficient, risks infection, and requires experienced professionals,” Dr Xu explained. “Our ready-to-use device can circumvent complex and redundant procedures during each drug administration. In addition, it can be stored for months in a refrigerator and is easily transported and deployed."

Ice microneedle patches
Schematic illustration of the transdermal delivery of cells using cryomicroneedles.

 

The applications for this device are not limited to the delivery of cells. It can package, store, and deliver bioactive therapeutic agents such as proteins, peptides, mRNA, DNA, bacterial, and vaccines, and it can improve both the therapeutic efficacy and patient compliance during cell therapies.

As a proof-of-concept, the researchers explored cell-based cancer immunotherapy through the intradermal delivery of ovalbumin-pulsed dendritic cells. Experiments showed that vaccination using therapeutic cells through this technology elicited robust antigen-specific immune responses and provided strong protection against tumours in mice. These results were superior to the therapeutic outcomes of conventional vaccination methods. One of the start-up teams supported by the Seed Fund of HK Tech 300, CityU's flagship innovation and entrepreneurship programme, is working on transferring the technology into product and to promote its application.

Dr Chang Hao, a former postdoc in CityU’s BME, is the first author of this study, and Dr Xu is the corresponding author. Other researchers include Professor Wang Dongan and Professor Shi Peng from BME. The research team collaborated with scientists from Nanyang Technological University and National University of Singapore.

A cryomicroneedle patch placed on the hand to demonstrate the melting of the needles on the skin.
 

YOU MAY BE INTERESTED

Contact Information

Communications and Institutional Research Office

Back to top
足球博彩网站| 大发888娱乐游戏技巧| 百家乐投注网中国| 威尼斯人娱乐网送38元彩金| 百家乐官网十赌九诈| 跪求百家乐打法| 百家乐官网视频桌球| 金牌百家乐官网的玩法技巧和规则 | 同乐城百家乐娱乐城| 百家乐官网游戏发展| 大发888网站多少| 澳门百家乐庄闲的玩法| 百家乐官网网上赌有作假吗| 盛世国际| 鑫鼎百家乐的玩法技巧和规则| 黄金城百家乐官网苹果版| 百家乐官网赢赌场百家乐官网| 澳门太阳城娱乐城| 澳门百家乐网址多少| 百家乐官网制胜秘| 百家乐官网保单详图| 大发888 护栏| 赌博百家乐赢不了| 百家乐官网英皇娱乐网| 太阳城百家乐官网的破解| 大发888娱乐游戏充值| 东营区百家乐艺术团| 战胜百家乐的技巧| 百家乐官网辅助器| 银泰百家乐官网龙虎斗| 大发888娱乐真钱游戏 官方| 百家乐的玩法技巧和规则| 做生意门口怎么摆放| 玩百家乐官网技巧巧| 百家乐官网三宝| 百家乐官网游戏真钱游戏| 铜陵市| 星际娱乐城| 澳门顶级赌场官网| 大发888娱乐城网页版lm0| 威尼斯人娱乐场官网是骗人的吗|