Luan Kun, McCord Marian G, West Andre J, Cave Grayson, Travanty Nicholas V, Apperson Charles S, Roe R Michael
Department of Textile Engineering, Chemistry and Science, Wilson College of Textiles, NC State University, Raleigh, NC 27695, USA.
Department of Forest Biomaterials, College of Natural Resources, NC State University, Raleigh, NC 27695, USA.
Insects. 2023 Apr 23;14(5):405. doi: 10.3390/insects14050405.
Mosquito vector-borne diseases such as malaria and dengue pose a major threat to human health. Personal protection from mosquito blood feeding is mostly by treating clothing with insecticides and the use of repellents on clothing and skin. Here, we developed a low-voltage, mosquito-resistant cloth (MRC) that blocked all blood feeding across the textile and was flexible and breathable. The design was based on mosquito head and proboscis morphometrics, the development of a novel 3-D textile with the outer conductive layers insulated from each other with an inner, non-conductive woven mesh, and the use of a DC (direct current; extra-low-voltage) resistor-capacitor. Blockage of blood feeding was measured using host-seeking adult female mosquitoes and whether they could blood feed across the MRC and an artificial membrane. Mosquito blood feeding decreased as voltage increased from 0 to 15 volts. Blood feeding inhibition was 97.8% at 10 volts and 100% inhibition at 15 volts, demonstrating proof of concept. Current flow is minimal since conductance only occurs when the mosquito proboscis simultaneously touches the outside layers of the MRC and is then quickly repelled. Our results demonstrated for the first time the use of a biomimetic, mosquito-repelling technology to prevent blood feeding using extra-low energy consumption.
疟疾和登革热等蚊媒传播疾病对人类健康构成重大威胁。个人预防蚊虫叮咬主要是通过用杀虫剂处理衣物以及在衣物和皮肤上使用驱虫剂。在此,我们开发了一种低压抗蚊布(MRC),它能阻止蚊虫穿过织物进行吸血,且具有柔韧性和透气性。该设计基于蚊虫头部和口器的形态测量学,开发了一种新型三维织物,其外部导电层通过内部非导电编织网相互绝缘,并使用了直流(直流电;超低电压)电阻电容。使用寻找宿主的成年雌性蚊子来测量吸血的阻断情况,以及它们是否能够穿过MRC和人工膜进行吸血。随着电压从0伏增加到15伏,蚊虫吸血量减少。在10伏时吸血抑制率为97.8%,在15伏时抑制率为100%,证明了概念验证。由于只有当蚊虫口器同时接触MRC的外层然后迅速被排斥时才会发生电导,所以电流流动极小。我们的结果首次证明了使用仿生驱蚊技术以超低能耗防止蚊虫吸血。