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Propagation of the Microsporidian Parasite Edhazardia aedis in Aedes aegypti Mosquitoes
Published on: August 13, 2020
Aedes aegypti Hsp70 has enhanced ATPase and protein protection under oxidative stress
Bárbara C T A Aciole1, Natália G Quel1, Larissa M Antonio1
1Institute of Chemistry, University of Campinas (UNICAMP), Campinas, SP, 13083-970, Brazil.
Abstract:
Aedes aegypti mosquitoes are responsible for transmitting several viral diseases in humans, including Dengue, Zika, Yellow Fever, and Chikungunya. Despite significant efforts to control the mosquito vector and the viruses, the issue has intensified. This is mainly due to the mosquito's successful adaptation to urban environments and its expanding geographic range, driven by rising global temperatures. To effectively combat vector-borne diseases, we need a comprehensive understanding of mosquito physiology and cellular regulatory mechanisms, as these could reveal new molecular targets for intervention. A major cellular threat is environmental stress, which can cause protein misfolding and aggregation, ultimately leading to cell death. To counteract this, cells utilize their Protein Quality Control (PQC) system to maintain proteostasis. A central component of this system is the Hsp70 chaperone family, which is crucial for nascent protein folding, translocation across membranes, refolding of aggregated proteins, targeting proteins for degradation, and providing general stress protection. In this context, we identified, cloned, expressed, and characterized a cytosolic Hsp70 homolog from Aedes aegypti, which we named AaHsp70. The recombinant AaHsp70 protein was obtained in a pure and folded form, functioning as a monomer in solution and exhibiting hallmark features of the Hsp70 family, including ATPase activity and chaperone function. Notably, its ATPase activity was 2.5 to 3.3 times higher than that of human Hsp70s and increased by 90% under oxidative conditions. Furthermore, AaHsp70 successfully protected several proteins from aggregation under redox stress in Aedes larval cell extracts. Among the protected proteins was actin, a crucial cytoskeletal and contractile protein involved in both larval and adult muscle function in insects. Overall, our findings demonstrate that AaHsp70 plays a vital role in maintaining protein homeostasis under stress in mosquito cells. This chaperone may represent a promising molecular target for developing novel strategies to mitigate the spread of Aedes aegypti and the diseases it transmits.
Insights
Aedes aegypti mosquitoes, vectors of Dengue and Zika, are increasingly problematic. Researchers identified a key protein, AaHsp70, that helps mosquito cells manage stress, offering a potential new target for disease control.
Area of Science:
- Molecular Biology
- Entomology
- Cellular Stress Response
Background:
- Aedes aegypti mosquitoes transmit critical viral diseases like Dengue and Zika.
- Increasing global temperatures facilitate mosquito adaptation and range expansion.
- Understanding mosquito cellular mechanisms is vital for disease control.
Purpose of the Study:
- To identify and characterize a heat shock protein 70 (Hsp70) homolog in Aedes aegypti.
- To investigate the role of this Hsp70 in cellular proteostasis under stress.
- To evaluate AaHsp70 as a potential target for vector control.
Main Methods:
- Cloning, expression, and purification of recombinant AaHsp70.
- Biochemical assays to determine ATPase activity and chaperone function.
- Assessment of AaHsp70's protective effects against protein aggregation in mosquito cell extracts.
Main Results:
- Recombinant AaHsp70 was successfully produced and demonstrated ATPase and chaperone activities.
- AaHsp70 exhibited significantly higher ATPase activity than human Hsp70s, enhanced by oxidative stress.
- AaHsp70 protected proteins, including actin, from aggregation under redox stress.
Conclusions:
- AaHsp70 plays a critical role in maintaining protein homeostasis in Aedes aegypti cells under stress.
- The unique properties of AaHsp70 suggest it is a promising molecular target for novel intervention strategies.
- Targeting AaHsp70 could lead to new methods for controlling Aedes aegypti populations and disease transmission.
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