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. 2024 Jun 29.
doi: 10.1007/5584_2024_811. Online ahead of print.

Lipid Metabolism in Insect Vectors of Diseases

Affiliations

Lipid Metabolism in Insect Vectors of Diseases

Juan R Girotti et al. Adv Exp Med Biol. .

Abstract

According to the World Health Organization vector-borne diseases account for more than 17% of all infectious diseases, causing more than 700,000 deaths annually. Vectors are organisms that are able to transmit infectious pathogens between humans, or from animals to humans. Many of these vectors are hematophagous insects, which ingest the pathogen from an infected host during a blood meal, and later transmit it into a new host. Malaria, dengue, African trypanosomiasis, yellow fever, leishmaniasis, Chagas disease, and many others are examples of diseases transmitted by insects.Both the diet and the infection with pathogens trigger changes in many metabolic pathways, including lipid metabolism, compared to other insects. Blood contains mostly proteins and is very poor in lipids and carbohydrates. Thus, hematophagous insects attempt to efficiently digest and absorb diet lipids and also rely on a large de novo lipid biosynthesis based on utilization of proteins and carbohydrates as carbon source. Blood meal triggers essential physiological processes as molting, excretion, and oogenesis; therefore, lipid metabolism and utilization of lipid storage should be finely synchronized and regulated regarding that, in order to provide the necessary energy source for these events. Also, pathogens have evolved mechanisms to hijack essential lipids from the insect host by interfering in the biosynthesis, catabolism, and transport of lipids, which pose challenges to reproduction, survival, fitness, and other insect traits.In this chapter, we have tried to collect and highlight the current knowledge and recent discoveries on the metabolism of lipids in insect vectors of diseases related to the hematophagous diet and pathogen infection.

Keywords: Blood digestion; Blood-feeding insects; Insect lipids uptake; Insecticide resistance; Lipid synthesis and pathogen infection; Lipophorin; Parasitic diseases; Pathogen attachment and development; Pheromone production.

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References

    1. Abdul Rahim NA, Othman M, Sabri M, Stanley DW (2018) A midgut digestive phospholipase A2 in larval mosquitoes, Aedes albopictus and Culex quinquefasciatus. Enzyme Res 2018:9703413. https://doi.org/10.1155/2018/9703413 - DOI
    1. Alabaster A, Isoe J, Zhou G, Lee A, Murphy A, Day WA, Miesfeld RL (2011) Deficiencies in acetyl-CoA carboxylase and fatty acid synthase 1 differentially affect eggshell formation and blood meal digestion in Aedes aegypti. Insect Biochem Mol Biol 41:946–955. https://doi.org/10.1016/j.ibmb.2011.09.004 - DOI
    1. Almeida-Oliveira F, Santos-Araujo S, Carvalho-Kelly LF, Macedo-Silva A, Meyer-Fernandes JR, Gondim KC, Majerowicz D (2023) ATP synthase affects lipid metabolism in the kissing bug Rhodnius prolixus beyond its role in energy metabolism. Insect Biochem Mol Biol 158:103956. https://doi.org/10.1016/j.ibmb.2023.103956 - DOI
    1. Alves CR, Albuquerque-Cunha JM, Mello CB, Garcia ES, Nogueira NF, Bourguingnon SC, de Souza W, Azambuja P, Gonzalez MS (2007) Trypanosoma cruzi: attachment to perimicrovillar membrane glycoproteins of Rhodnius prolixus. Exp Parasitol 116:44–52. https://doi.org/10.1016/j.exppara.2006.11.012 - DOI
    1. Alves-Bezerra M, Gondim KC (2012) Triacylglycerol biosynthesis occurs via the glycerol-3-phosphate pathway in the insect Rhodnius prolixus. Biochim Biophys Acta 1821:1462–1471. https://doi.org/10.1016/j.bbalip.2012.08.002 - DOI