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中文摘要
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尽管对疟疾进行了一个多世纪的广泛研究,但我们对病媒的了解仍然存在重大差距;这些差距也限制了我们在疟疾控制方面的成功。我们解决了一些最关键的差距,即非洲疟疾病媒在几个月没有地表水的漫长旱季中所使用的策略。结合现场和实验室研究,我们的研究结果提供了令人信服的证据,证明疟疾媒介通过一种休眠(冬眠)的形式在旱季持续存在,并且还参与了可能超过数百公里的风辅助长途迁徙。媒介生物学的这些基本方面一直存在争议,直到现在,由于证据不足而被忽视。传统的和新的疟疾和病媒控制战略不能忽视迁徙和长途迁徙,因为它们可能阻碍或有助于最终结果的实现。
英文摘要
Despite extensive research on malaria for over a century, critical gaps remain in our understanding of the vectors; gaps that also limit our success in malaria control. We address some of the most critical gaps, namely the strategies used by African malaria vectors to persist through the long dry season without surface waters for several months. Combining field and laboratory studies, our results provide compelling evidence that malaria vectors persist through the dry season by a form of dormancy (aestivation) and also engage in wind-assisted long-distance migration probably over hundreds of kilometers. These fundamental facets of vector biology have been controversial and, until now, were ignored due to insufficient evidence. Conventional and novel malaria and vector control strategies cannot afford to ignore aestivation and long-distance migration as processes that may hinder or aid the ultimate outcome. This year, Nature has published our investigation of this problem based on the vector population dynamics. Using time series analysis, we extracted and compared the seasonal components of these dynamics between the vector species. Strong species-specific pattern provided signatures for the vector strategy of persistence. For example, density peaks during the dry season, coupled with a rapid population growth closely following the first rain provided evidence for aestivation in A. coluzzii, whereas total absence throughout the dry season coupled with with 6-8 weeks delay in timing of normal population growth of A. gambiae s.s. (after than of A. coluzzii) was consistent with long-distance migration. These results extend other studies we have carried out based on mosquito mark-release-recapture experiments, variation in spatial distribution, aerial mosquito sampling (100-200 m above ground), seasonal changes in reproductive activity, flight activity, cuticular hydrocarbons, and responses to changes in photoperiod and temperature. Based on these findings, experiments designed to (i) find the hidden shelters used by aestivating A. coluzzii mosquitoes during the dry season, (ii) Sample mosquitoes flying in high altitutdes (>100 m above ground) using traps tethered to helium filled balloons, (iii) determine the weather conditions promoting long-distance mosquito flights 10--200 m above ground), among others. Over the past year, we have been able to collect dozens of mosquitoes flying in the lower jet stream among them at least 14 A. gambiae s.l. More than 20 tanks of (balloon grade) helium have been used as part of this work. These results and ongoing studies using novel approaches provide fresh insights in malariology and vector biology. The findings that Anopheline vector of malaria and other disease vectors engage in long-distance flights and some are capable of dry-season dormancy open new frontiers of basic and applied research.
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Malaria Pathogenesis and Clinical Immunity
Malaria Drug Resistance and Disease Virulence
Biochemical And Biophysical Parasitology
Dry Season Ecology of Malaria Vectors
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