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The mosquito larval midgut epithelial cell membrane is a specialized cellular structure that serves as the primary site for nutrient absorption and ion regulation in mosquito larvae (Billingsley and Lehane, 1996). It is characterized by an extensive network of microvilli, known as the brush border, which significantly increases the surface area for metabolic processes (Soberón et al., 2007). This membrane is the critical target for biological larvicides, most notably the Cry and Cyt toxins produced by Bacillus thuringiensis israelensis (Bti) (Bravo et al., 2005). These toxins bind to specific receptors on the membrane—such as cadherin-like proteins, aminopeptidase N (APN), and alkaline phosphatase (ALP)—leading to pore formation, osmotic imbalance, and eventual lysis of the epithelial cells (Pérez et al., 2005). By destroying the midgut integrity, these agents effectively kill the larvae and prevent the emergence of adult mosquitoes, thereby reducing the transmission of devastating vector-borne diseases like malaria, dengue, and Zika virus (WHO, 2024). Understanding the molecular composition of this membrane is essential for overcoming insecticide resistance and developing more specific, environmentally friendly control measures (Bravo et al., 2007). The membrane also acts as a physical and immunological barrier against various pathogens ingested by the larvae (Billingsley and Lehane, 1996).
Toxin binding to specific receptors (Cadherin, APN, ALP) followed by oligomerization, membrane insertion, and pore formation, leading to osmotic lysis and cell death.
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