Atmospheric non-thermal plasma inactivation of Ascosphaera apis, the causative agent of chalkbrood disease in honeybee

被引:0
|
作者
Thummanoon Boonmee
Chainarong Sinpoo
Kunlada Thayatham
Pradoong Suanpoot
Terd Disayathanoowat
Jeffery S. Pettis
Veeranan Chaimanee
机构
[1] Maejo University Phrae Campus,Department of Agro
[2] Chiang Mai University,Industrial Biotechnology
[3] Chiang Mai University,Bee Protection Laboratory, Department of Biology, Faculty of Science
[4] Chiang Mai University,Office of Research Administration
[5] Maejo University Phrae Campus,Research Center of Deep Technology in Beekeeping and Bee Products for Sustainable Development Goals (SMART BEE SDGs)
[6] Pettis and Associates LLC,Department of Forest Industry Technology
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Ascosphaera apis is a worldwide pathogenic fungi of honeybees that can cause a decline in bee populations. In this study, we investigated the antifungal activity of non-thermal plasma on fungal growth. Spore inactivation after exposure to gas plasma by liquid phase and plasma activated water (PAW) and pathogenicity of A. apis in vivo were also examined. The results demonstrated that the mycelial growth of fungi was completely inhibited after argon plasma treatment. Both gas plasma and PAW exposures resulted in a significant decrease of A. apis spore numbers, maximum reduction of 1.71 and 3.18-fold, respectively. Germinated fungal spores on potato dextrose agar were also reduced after plasma treatment. SEM analysis revealed a disruption in the morphological structure of the fungal spores. The pathogenicity of A. apis on honeybee larvae was decreased after spores treated by gas plasma and PAW with a disease inhibition of 63.61 ± 7.28% and 58.27 ± 5.87%, respectively after 7 days of cultivation. Chalkbrood in honey bees have limited control options and our findings are encouraging. Here, we demonstrate a possible alternative control method using non-thermal plasma for chalkbrood disease in honeybees.
引用
收藏
相关论文
共 50 条
  • [31] Surface decontamination of eggshells by using non-thermal atmospheric plasma
    Dasan, Beyhan Gunaydin
    Yildirim, Tugba
    Boyaci, Ismail Hakki
    INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2018, 266 : 267 - 273
  • [32] Sterilization of Staphylococcus Aureus by an Atmospheric Non-Thermal Plasma Jet
    Liu Xiaohu
    Hong Feng
    Guo Ying
    Zhang Jing
    Shi Jianjun
    PLASMA SCIENCE & TECHNOLOGY, 2013, 15 (05) : 439 - 442
  • [33] Modeling of a Non-Thermal RF Plasma Jet at Atmospheric Pressure
    Sigeneger, Florian
    Schaefer, Jan
    Weltmann, Klaus-Dieter
    Foest, Ruediger
    Loffhagen, Detlef
    PLASMA PROCESSES AND POLYMERS, 2017, 14 (4-5)
  • [34] Industrial applications of atmospheric non-thermal plasma in environmental remediation
    Mizuno, Akira
    PLASMA PHYSICS AND CONTROLLED FUSION, 2007, 49 (5A) : A1 - A15
  • [35] Sterilization of Staphylococcus Aureus by an Atmospheric Non-Thermal Plasma Jet
    刘小虎
    洪枫
    郭颖
    张菁
    石建军
    Plasma Science and Technology, 2013, 15 (05) : 439 - 442
  • [36] Modification of Enamel and Dentin Surfaces by Non-Thermal Atmospheric Plasma
    Lehmann, Antje
    Rueppell, Andre
    Schindler, Axel
    Zylla, Isabella-Maria
    Seifert, Hans Juergen
    Nothdurft, Frank
    Hannig, Matthias
    Rupf, Stefan
    PLASMA PROCESSES AND POLYMERS, 2013, 10 (03) : 262 - 270
  • [37] Etching of uranium oxide with a non-thermal, atmospheric pressure plasma
    Yang, X
    Moravej, M
    Babayan, SE
    Nowling, GR
    Hicks, RF
    JOURNAL OF NUCLEAR MATERIALS, 2004, 324 (2-3) : 134 - 139
  • [38] Investigation of non-thermal atmospheric plasma for the degradation of avermectin solution
    LV, Yue
    ZOU, Liang
    LI, Huidong
    CEHN, Zilei
    WANG, Xiaolong
    SUN, Ying
    FANG, Liping
    ZHAO, Tong
    ZHANG, Yuantao
    PLASMA SCIENCE & TECHNOLOGY, 2021, 23 (05)
  • [39] NON-THERMAL PLASMA AT ATMOSPHERIC PRESSURE AND ITS OPPORTUNITIES FOR APPLICATIONS
    Akishev, Yu. S.
    IZVESTIYA VYSSHIKH UCHEBNYKH ZAVEDENII KHIMIYA I KHIMICHESKAYA TEKHNOLOGIYA, 2019, 62 (08): : 26 - 60
  • [40] Thomson scattering on non-thermal atmospheric pressure plasma jets
    Huebner, Simon
    Sousa, Joao Santos
    van der Mullen, Joost
    Graham, William G.
    PLASMA SOURCES SCIENCE & TECHNOLOGY, 2015, 24 (05):