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1.
Health Place ; 80: 102989, 2023 03.
Article in English | MEDLINE | ID: mdl-36804681

ABSTRACT

Mosquito-borne disease presents a significant threat to urban populations, but risk can be uneven across a city due to underlying environmental patterns. Urban residents rely on social and economic processes to control the environment and mediate disease risk, a phenomenon known as everyday governance. We studied how households employed everyday governance of urban infrastructure relevant to mosquito-borne disease in Bengaluru, India to examine if and how inequalities in everyday governance manifest in differences in mosquito control. We found that governance mechanisms differed for water access and mosquitoes. Economic and social capital served different roles for each, influenced by global narratives of water and vector control.


Subject(s)
Ecology , Mosquito Control , Animals , Humans , Cities , Family Characteristics , Water Supply
2.
Proc Biol Sci ; 287(1931): 20201093, 2020 07 29.
Article in English | MEDLINE | ID: mdl-32693720

ABSTRACT

Models predicting disease transmission are vital tools for long-term planning of malaria reduction efforts, particularly for mitigating impacts of climate change. We compared temperature-dependent malaria transmission models when mosquito life-history traits were estimated from a truncated portion of the lifespan (a common practice) versus traits measured across the full lifespan. We conducted an experiment on adult female Anopheles stephensi, the Asian urban malaria mosquito, to generate daily per capita values for mortality, egg production and biting rate at six constant temperatures. Both temperature and age significantly affected trait values. Further, we found quantitative and qualitative differences between temperature-trait relationships estimated from truncated data versus observed lifetime values. Incorporating these temperature-trait relationships into an expression governing the thermal suitability of transmission, relative R0(T), resulted in minor differences in the breadth of suitable temperatures for Plasmodium falciparum transmission between the two models constructed from only An. stephensi trait data. However, we found a substantial increase in thermal niche breadth compared with a previously published model consisting of trait data from multiple Anopheles mosquito species. Overall, this work highlights the importance of considering how mosquito trait values vary with mosquito age and mosquito species when generating temperature-based suitability predictions of transmission.


Subject(s)
Anopheles/parasitology , Malaria, Falciparum/transmission , Plasmodium falciparum , Age Factors , Animals , Female , Malaria/transmission , Mosquito Vectors , Temperature
3.
Sci Rep ; 6: 27771, 2016 Jun 21.
Article in English | MEDLINE | ID: mdl-27324146

ABSTRACT

Several studies suggest the potential for climate change to increase malaria incidence in cooler, marginal transmission environments. However, the effect of increasing temperature in warmer regions where conditions currently support endemic transmission has received less attention. We investigate how increases in temperature from optimal conditions (27 °C to 30 °C and 33 °C) interact with realistic diurnal temperature ranges (DTR: ± 0 °C, 3 °C, and 4.5 °C) to affect the ability of key vector species from Africa and Asia (Anopheles gambiae and An. stephensi) to transmit the human malaria parasite, Plasmodium falciparum. The effects of increasing temperature and DTR on parasite prevalence, parasite intensity, and mosquito mortality decreased overall vectorial capacity for both mosquito species. Increases of 3 °C from 27 °C reduced vectorial capacity by 51-89% depending on species and DTR, with increases in DTR alone potentially halving transmission. At 33 °C, transmission potential was further reduced for An. stephensi and blocked completely in An. gambiae. These results suggest that small shifts in temperature could play a substantial role in malaria transmission dynamics, yet few empirical or modeling studies consider such effects. They further suggest that rather than increase risk, current and future warming could reduce transmission potential in existing high transmission settings.


Subject(s)
Anopheles/pathogenicity , Climate Change , Malaria, Falciparum/epidemiology , Plasmodium falciparum/pathogenicity , Africa , Animals , Anopheles/growth & development , Asia , Humans , Insect Vectors/growth & development , Insect Vectors/pathogenicity , Malaria, Falciparum/parasitology , Malaria, Falciparum/transmission , Plasmodium falciparum/growth & development , Temperature
4.
Proc Biol Sci ; 279(1741): 3357-66, 2012 Aug 22.
Article in English | MEDLINE | ID: mdl-22593107

ABSTRACT

Over the last 20 years, ecological immunology has provided much insight into how environmental factors shape host immunity and host-parasite interactions. Currently, the application of this thinking to the study of mosquito immunology has been limited. Mechanistic investigations are nearly always conducted under one set of conditions, yet vectors and parasites associate in a variable world. We highlight how environmental temperature shapes cellular and humoral immune responses (melanization, phagocytosis and transcription of immune genes) in the malaria vector, Anopheles stephensi. Nitric oxide synthase expression peaked at 30°C, cecropin expression showed no main effect of temperature and humoral melanization, and phagocytosis and defensin expression peaked around 18°C. Further, immune responses did not simply scale with temperature, but showed complex interactions between temperature, time and nature of immune challenge. Thus, immune patterns observed under one set of conditions provide little basis for predicting patterns under even marginally different conditions. These quantitative and qualitative effects of temperature have largely been overlooked in vector biology but have significant implications for extrapolating natural/transgenic resistance mechanisms from laboratory to field and for the efficacy of various vector control tools.


Subject(s)
Anopheles/immunology , Immunity, Innate , Insect Vectors/immunology , Temperature , Animals , Cecropins/genetics , Cecropins/metabolism , Host-Parasite Interactions , Malaria/transmission , Nitric Oxide Synthase/genetics , Nitric Oxide Synthase/metabolism
5.
J Med Entomol ; 47(2): 226-9, 2010 Mar.
Article in English | MEDLINE | ID: mdl-20380304

ABSTRACT

We collected blood-fed, snow-melt mosquitoes (Culicidae: Culiseta and Aedes) to describe the feeding patterns of potential mosquito vectors of Jamestown Canyon virus (JCV, Bunyaviridae: Orthobunyavirus). JCV is an arthropod-borne, zoonotic virus with deer as the primary amplifying host in western alpine ecosystems. We collected mosquitoes from natural resting areas, fiber pots, and carbon-dioxide baited miniature light traps in the Colorado Rocky Mountains in 2007. We conducted two polymerase chain reactions to amplify and sequence vertebrate DNA extracted from blood-fed mosquitoes, which yielded comparable, but not identical, results. Mammal-specific primers found mule deer (Odocoileus hemionus) and elk (Cervus elaphus canadensis) as the source of all bloodmeals. To determine if unamplified bloodmeals were from nonmammalian sources, we screened all samples with conserved vertebrate primers, which confirmed the initial polymerase chain reaction results, but also found porcupine (Erethizon dorsatum) and human (Homo sapiens) as additional bloodmeal sources. We consistently found that mule deer were the primary hosts for mosquitoes in this system. These results suggest that snow-melt mosquitoes, in particular A. cataphylla, may be important vectors in western JCV alpine systems and may also act as a bridge vector for JCV from cervid virus reservoirs to humans.


Subject(s)
Culicidae/physiology , Encephalitis Virus, California , Encephalitis, California/transmission , Encephalitis, California/virology , Feeding Behavior/physiology , Animals , Deer/blood , Ecosystem , Humans , Porcupines/blood
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