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Hayes, D. T.

Publications and source records attributed to Hayes, D. T..

2 recordsLinked to original sources

The potential of Clonostachys rosea as a biolarvicide against Anopheles gambiae

Mosquitoes vector multiple disease-causing pathogens detrimental to humans, imposing a high public health and economic burden. Chemical and biological larvicides are used in some settings to reduce mosquito populations as a supplement to adult population control. In this study, we assessed the larvicidal potential of a newly isolated strain of the hypocrealean fungus, Clonostachys rosea, by modifying a previously established laboratory-based experimental design. This design allowed us to distinguish between the larvicidal impact of the fungal culture supernatant and conidia. Our data show that C. rosea efficiently kills larvae of the African malaria mosquito, Anopheles gambiae, at an LC50 of 7.78 x 106 for culture supernatant and 7.13 x 107 conidia/mL for washed conidia. Fungal culture supernatant retained over 95% of its activity upon autoclaving, suggesting a temperature stable non-proteinaceous mycotoxin is responsible for larvicidal activity in the supernatant. Conidia were readily ingested, remained in the gut lumen, and did not germinate or translocate to the ectoperitrophic space nor the hemocoel. UV and heat-killed conidia retained larvicidal activity, demonstrating that no active secretion of toxins, fungal growth, or infection is required for killing mosquito larvae. However, autoclaving conidia abolished larvicidal activity, suggesting that larvae may not be killed via a mechanical mechanism, such as occlusion. Instead, our data demonstrate that C. rosea conidia kill An. gambiae larvae via the passive release of intracellular mycotoxins and have potential as a fungal biolarvicide to control An. gambiae populations. HighlightsO_LIClonostachys rosea is a potent larvicide of Anopheles gambiae mosquitoes. C_LIO_LILarvicidal activity from C. rosea culture supernatant is heat stable. C_LIO_LIC. rosea conidia are ingested but remain in the gut lumen and do not germinate. C_LIO_LIC. rosea conidia passively release toxins ultimately leading to larval death. C_LI

microbiology↗

Larvicidal activity of Trichoderma atroviride (Hypocreales: Hypocreaceae) against Aedes albopictus (Diptera: Culicidae)

Larviciding is an important part of effective integrated mosquito management. However, growing resistance to chemical and bacterial-based insecticides requires biocontrol agents with novel modes of action. Entomopathogenic fungi are good candidates for larval control due to their capability to infect mosquito larvae and their production of larvicidal compounds. In this study, we isolated a strain of Trichoderma atroviride from Aedes albopictus larvae collected in Manhattan, KS, USA. We used a laboratory-based microcosm assay to expose L3 Ae. albopictus larvae to T. atroviride conidia and culture supernatant treatments. Larvae were monitored daily for survival and development to pupae and adults. In addition, adult survival was monitored for ten-days post pupation, and wing lengths were measured to assess mosquito size. Our results revealed that T. atroviride culture supernatant was a potent larvicide towards Ae. albopictus. However, conidia by themselves were not larvicidal, indicating the major mode of killing was through toxicity exerted by the culture supernatant. We further showed that larval exposure to T. atroviride supernatant delayed larval development to pupae. Sex-specific adult survival was not affected by larval exposure to T. atroviride. However, wing length of male and female mosquitoes were reduced, indicating a reduction in adult mosquito body size as compared to the control. Taken together, this study identifies the culture supernatant from a novel strain of T. atroviride as a potent larvicide of Ae. albopictus, potentially expanding our toolbox for biological control of mosquitoes.

microbiology↗