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低电压增强型机械杀菌生物贴片

Low Voltage-Enhanced Mechano-Bactericidal Biopatch.

作者信息

Yi Yaozhen, Dou Haixu, Zhao Jie, Liu Ziting, Wu Shuilin, Chen Yuxiang, Xu Lizhi, Zhang Changchao, Liu Chaozong, Niu Shichao, Han Zhiwu, Ren Luquan

机构信息

The National Key Laboratory of Automotive Chassis Integration and Bionics (ACIB), College of Biological and Agricultural Engineering, Jilin University, Changchun 130022, China.

School of Materials Science and Engineering, Peking University, Beijing 100871, China.

出版信息

Nano Lett. 2024 Dec 11;24(49):15806-15816. doi: 10.1021/acs.nanolett.4c04777. Epub 2024 Nov 26.

Abstract

Mechano-bactericidal strategies represent a safe and sustainable method for preventing microbial contamination in the postantibiotic era. However, their effectiveness against Gram-positive bacteria (≤55%) is still limited due to the thick peptidoglycan layer in their cell walls. Herein, an intelligent biomimetic nanopillared biopatch is developed. It is assisted by low-voltage (8 V) electrical stimulation from TENG and significantly enhances antibacterial efficacy (>99%) against three types of stubborn Gram-positive bacteria. These collaborative antibacterial behaviors are solely based on purely physical actions, thus avoiding the risk of triggering bacterial resistance. Moreover, the slight mechanical energy generated by human physiological activities is converted into a power source, exhibiting energy-efficient, eco-friendly, and sustainable features. The conductive hydrogel in the biopatch can also act as an intelligent temperature sensor, monitoring, and real-time assessment of wound conditions. This intelligent biopatch holds immense potential for efficient healing and safe management of both acute and chronic wound infections.

摘要

机械杀菌策略是抗生素后时代预防微生物污染的一种安全且可持续的方法。然而,由于革兰氏阳性菌细胞壁中厚厚的肽聚糖层,它们对革兰氏阳性菌的有效性(≤55%)仍然有限。在此,开发了一种智能仿生纳米柱状生物贴片。它由摩擦纳米发电机产生的低电压(8V)电刺激辅助,显著提高了对三种顽固革兰氏阳性菌的抗菌效果(>99%)。这些协同抗菌行为完全基于纯粹的物理作用,从而避免了引发细菌耐药性的风险。此外,人体生理活动产生的微小机械能被转化为电源,展现出节能、环保和可持续的特性。生物贴片中的导电水凝胶还可以作为智能温度传感器,监测和实时评估伤口状况。这种智能生物贴片在急性和慢性伤口感染的高效愈合和安全管理方面具有巨大潜力。

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