Search bioRxiv⌕ Search

Biology subjects

Hawaria, D.

Publications and source records attributed to Hawaria, D..

2 recordsLinked to original sources

Local trait responses and aquatic microclimates increase projected habitat suitability for field-collected Anopheles stephensi in southern Ethiopia

BackgroundTrait-based models of mosquito environmental suitability commonly use global thermal performance curves compiled from laboratory studies. These curves may misrepresent suitability when local populations or larval habitats differ from globally synthesised expectations. This issue is particularly relevant for Anopheles stephensi, an urban malaria vector expanding in the Horn of Africa, where artificial aquatic habitats may generate microclimates poorly represented by global trait datasets or gridded air-temperature products. Methodology/Principal FindingsWe compared juvenile survival, development, and projected maximal population growth rate, rm, using locally measured data from field-collected Ethiopian An. stephensi and a global comparator combining pub-lished juvenile trait data. We fitted thermal performance curves for juvenile survival and development, used these curves to estimate temperature-dependent rm as a metric of habitat suitability, and projected rm across two matched temperature inputs: logger-measured larval habitat water temperature and ERA5-Land 2 m air temperature. Local juvenile trait responses produced higher projected rm than the global comparator across monitored habitats. Measured aquatic temperatures were warmer than ERA5-Land air temperatures, with a mean daily water-air offset of 3.26{whitebullet}C, and were more spatially heterogeneous among habitats. ERA5-Land resolved only two unique temperature series across the six monitored habitats. Sensitivity analyses showed that the Local-Global difference was robust for logger-measured water temperatures, whereas the ERA5-based difference was partly amplified by cooler temperatures below the local experimental range. Conclusions/SignificanceThis study provides the first locally derived juvenile thermal performance curves and temperature-dependent population growth estimates for field-collected An. stephensi in Africa, demonstrating that locally measured juvenile traits consistently predict higher habitat suitability than globally synthesised trait data. These find-ings highlight the importance of incorporating local mosquito trait data and aquatic microclimate measure-ments into predictive models to improve assessments of An. stephensi establishment, spread, and malaria risk in newly invaded urban environments. Author SummaryAnopheles stephensi is an invasive malaria mosquito that is rapidly spreading in urban areas of Africa. Pre-dicting where this species can establish is difficult because many models use mosquito temperature-response data from long-maintained laboratory colonies rather than from recently collected African populations. We measured juvenile survival and development in An. stephensi collected from Ethiopia, and compared pro-jections based on these local data with projections based on published laboratory-colony data. We also compared field-measured larval habitat water temperature with ERA5-Land air temperature. We found that local juvenile trait responses produced higher projected population growth than the global comparator across monitored habitats. Field-measured water temperatures were warmer and more variable among habitats than gridded air temperatures, which reduced habitat-level differences. These findings show that local mosquito biology and larval habitat microclimate measurements can change fine-scale estimates of suitability. This matters for surveillance and control because urban water containers may create suitable conditions that are poorly represented by broad climate datasets.

ecology↗

Early-evening biting by Anopheles stephensi in Southern Ethiopia: A Challenge for Bed Net Use as Vector Control in Africa

Anopheles stephensi is rapidly expanding across Africa, posing new challenges for malaria control. Its biting time patterns, however, remain poorly characterized, raising uncertainty about the effectiveness of bed nets against this invasive vector. To address this gap, we investigated diel biting activity, feeding propensity, and flight behavior using complementary behavioral assays on females reared from wild-caught larvae in Hawassa City, southern Ethiopia. Flight monitoring assays revealed that An. stephensi exhibited pronounced activity at dusk, beginning between 18:00 and 19:00 with the onset of scotophase, and little to no activity during the photophase. Blood-feeding propensity, defined as the proportion of mosquitoes taking a blood meal when offered, peaked during the early scotophase (18:00-22:00) at 33.3-51.7%, but was markedly reduced during daylight hours (0-16.7%). Human landing catches in large-cage enclosures confirmed this early evening activity: 83.5% of total landings occurred between 18:00 and 22:00 with a sharp peak at 18:00-19:00, corresponding to a mean biting rate of 17.8 bites per person per hour. These findings demonstrate that invasive An. stephensi primarily seek hosts and bite during the early evening, a time when people are often unprotected by bed nets. This behavior reduces the protective impact of conventional net-based interventions and underscores the need for African National Malaria Control Programs to deploy complementary measures such as spatial repellents and larval source management to mitigate early-evening transmission. Moreover, this study highlights the utility of integrated behavioral assays for estimating biting time, offering approaches that can be extended to other vector species across Africa.

zoology↗