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Insect serine-endopeptidases and plant-insect interactions

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Author(s):
Adriana Rios Lopes
Total Authors: 1
Document type: Doctoral Thesis
Press: São Paulo.
Institution: Universidade de São Paulo (USP). Conjunto das Químicas (IQ e FCF) (CQ/DBDCQ)
Defense date:
Examining board members:
Walter Ribeiro Terra; Emer Suavinho Ferro; Maria Teresa Machini de Miranda; Pedro Lagerblad de Oliveira; Aparecida Sadae Tanaka
Advisor: Walter Ribeiro Terra
Abstract

Insect serine endopeptidases, mairily trypsin and chymotrypsin are involved in initial protein digestion. Genes that encode these proteins are members of complex multigene families and are differentially expressed according to insects diet , thus being involved with resistance to plant metabolites. Purification of trypsins from different insect orders and chymotrypsins, as well as, characterization of their specificity are essential to a better understanding of this interaction. Characterization relied on two approaches: (a) kinetic characterization of the binding subsities of trypsins and chymotrypsins using different substrates, chemical modification and inhibition assays and (b) study of protein structure by molecular modelling and cloning, expression and crystallization of these enzymes. Besides that, evolutionary studies performed through distance analysis, permitted the investigation of plantinsect interaction. These characterizations showed that insect trypsins, in terms of specificity, are quite different from vertebrate trypsins and among insect orders. Lepidopterans trypsins have a distinct primary specificity, since they hydrolyses preferentially P1 Lys substrates, and present a crescent subsite hydrophobicity, which is directly correlated with the evolutionary scale. Both, the specificity exchange and the crescent hydrophobicity can allow the hydrolysis of vegetal proteic inhibitors. The analysis of trypsin sequences in Neighbor-Joining (NJ) algorithm yield a distance tree that is coherent with morphological phylogenetic relationships. The superposition of predicted structures of trypsins-inhibitors complexes permits to observe amino acid residues of interaction between enzyme-inhibitor, which support the distinction of different groups between sensitive and insensitive trypsins to the presence of inhibitors on insect diet. Similarly, characterization of insect chymotrypsins according to their specificity allowed us to classify these enzymes into different groups. These groups are supported by residue 59 replacements in polyphagous insects, which feed on plants bearing natural reactive ketones. These studies show the irnportance of a detailed study of serine endopeptidases, which may help in the development of better insect control strategies. (AU)