TY - JOUR
T1 - Self-Driven, Stretchable Drug Delivery Electronics for Acne Treatment
AU - Liu, Yiming
AU - Huang, Xingcan
AU - Zhang, Qiang
AU - Park, Wooyoung
AU - Wang, Jinpei
AU - Su, Jingyou
AU - Zhao, Zhao
AU - Wang, Xue
AU - Kong, Miao
AU - Lv, Mingxiu
AU - He, Xinxin
AU - Wang, Jiachen
AU - Jia, Shengxin
AU - Yiu, Chun Ki
AU - Li, Jianwei
AU - Liu, Shiyuan
AU - Fukuda, Kenjiro
AU - Yokota, Tomoyuki
AU - Tang, Jianxin
AU - Ren, Kangning
AU - Someya, Takao
AU - Zhang, Chao
AU - Yu, Xinge
N1 - This work was supported by City University of Hong Kong (Grants No. 9220172, 9220173, and 9220174), Research Grants Council of the Hong Kong Special Administrative Region (Grant No. RFS2324-1S03, R1017-24F, T42-513/24-R, C7005-23Y, 11211425, 11215722, and 11211523), as part of the InnoHK Project 2.2–AI-based 3D ultrasound imaging algorithm at Hong Kong Centre for Cerebro-Cardiovascular Health Engineering (COCHE), JSPS KAKENHI grant numbers 22K21343, the National Natural Science Foundation of China (No.22161016), and Hong Kong RGC (T12-201/20-R, 12301720, 12202422, and RMGS 2020_4_01).
Publisher Copyright:
© 2025 American Chemical Society
PY - 2025/9/9
Y1 - 2025/9/9
N2 - Acne is a common skin condition caused by the blockage of hair follicles, which is often associated with adolescents. Beyond physical discomfort and potential scarring, acne can also result in mental health issues including low self-esteem and anxiety. Among all available medical treatments, topical antibiotics are effective for acne treatment due to their rapid action, anti-inflammatory properties, minimal side effects, and accessibility. However, long-term and continuous use of topical antibiotics will result in serious bacterial resistance. Focusing on this issue, we developed a stretchable, self-driven drug delivery system with clindamycin serving as the antibacterial agent, which is powered by a biocompatible, high-performance magnesium-O2battery. Based on the working principle of ion electrophoresis, the direct current power by the integrated battery is applied onto the self-developed drug layer with clindamycin embedded, realizing controllable delivery of clindamycin along with the ions in the electrolyte to target acne lesions, where the drug delivery rate could be well-adjusted by regulating the power output of the battery. Benefiting from advanced mechanical design and material selection, the entire system is fully stretchable and biocompatible, achieving a stretching rate of up to 100% within the yielding limit. This capability allows it to effectively conform to most human body areas for acne treatment. We further validated the self-driven drug delivery system through in vitro and in vivo experiments, showcasing a feasible acne treatment method that not only extends antibiotic efficacy but also ensures long-term wearability.
AB - Acne is a common skin condition caused by the blockage of hair follicles, which is often associated with adolescents. Beyond physical discomfort and potential scarring, acne can also result in mental health issues including low self-esteem and anxiety. Among all available medical treatments, topical antibiotics are effective for acne treatment due to their rapid action, anti-inflammatory properties, minimal side effects, and accessibility. However, long-term and continuous use of topical antibiotics will result in serious bacterial resistance. Focusing on this issue, we developed a stretchable, self-driven drug delivery system with clindamycin serving as the antibacterial agent, which is powered by a biocompatible, high-performance magnesium-O2battery. Based on the working principle of ion electrophoresis, the direct current power by the integrated battery is applied onto the self-developed drug layer with clindamycin embedded, realizing controllable delivery of clindamycin along with the ions in the electrolyte to target acne lesions, where the drug delivery rate could be well-adjusted by regulating the power output of the battery. Benefiting from advanced mechanical design and material selection, the entire system is fully stretchable and biocompatible, achieving a stretching rate of up to 100% within the yielding limit. This capability allows it to effectively conform to most human body areas for acne treatment. We further validated the self-driven drug delivery system through in vitro and in vivo experiments, showcasing a feasible acne treatment method that not only extends antibiotic efficacy but also ensures long-term wearability.
KW - acne treatment
KW - biocompatible battery
KW - drug delivery
KW - stretchable battery
KW - wearable electronics
UR - https://www.scopus.com/pages/publications/105015500571
U2 - 10.1021/acsnano.5c09857
DO - 10.1021/acsnano.5c09857
M3 - Journal article
C2 - 40873398
AN - SCOPUS:105015500571
SN - 1936-0851
VL - 19
SP - 31740
EP - 31752
JO - ACS Nano
JF - ACS Nano
IS - 35
ER -