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Cowpea bruchid Callosobruchus maculatus uses a three‐component strategy to overcome a plant defensive cysteine protease inhibitor
Author(s) -
ZhuSalzman K.,
Koiwa H.,
Salzman R. A.,
Shade R. E.,
Ahn J.E.
Publication year - 2003
Publication title -
insect molecular biology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.955
H-Index - 93
eISSN - 1365-2583
pISSN - 0962-1075
DOI - 10.1046/j.1365-2583.2003.00395.x
Subject(s) - proteases , cysteine protease , biology , protease , callosobruchus maculatus , insect , cysteine , instar , enzyme , biochemistry , cathepsin , proteolytic enzymes , larva , proteolysis , botany , pest analysis
Abstract The soybean cysteine protease inhibitor, soyacystatin N (scN), negatively impacts growth and development of the cowpea bruchid, Callosobruchus maculatus [Koiwa et al . (1998) Plant J 14: 371–379]. However, the developmental delay and feeding inhibition caused by dietary scN occurred only during the early developmental stages (the 1st, 2nd and 3rd instars) of the cowpea bruchid. The 4th instar larvae reared on scN diet (adapted) exhibited rates of feeding and development which were comparable to those feeding on an scN‐free diet (unadapted) prior to pupation. Total gut proteolytic capacity at this larval stage significantly increased in the scN‐adapted insects. The elevated enzymatic activity was attributed to a differential expression of insect gut cysteine proteases (representing the major digestive enzymes), and of aspartic proteases. scN degradation by the gut extract was observed only in adapted bruchids, and this activity appeared to be a combined effect of scN‐induced cysteine and aspartic proteases. Thirty cDNAs encoding cathepsin L‐like cysteine proteases were isolated from insect guts, and they were differentially regulated by dietary scN. Our results suggest that the cowpea bruchid adapts to the challenge of scN by qualitative and quantitative remodelling of its digestive protease complement, and by activating scN‐degrading protease activity.