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1.
Insect Mol Biol ; 31(2): 225-240, 2022 04.
Article in English | MEDLINE | ID: mdl-34918424

ABSTRACT

The recruitment of the lysosomal cathepsins B (CAB), L (CAL) and D (CAD) as luminal digestive enzymes was investigated in 3 species of beetles. Gene expression was determined by RNA-seq in different regions of the midgut and in the carcasses from the transcriptomes of Dermestes maculatus, Tenebrio molitor and Zabrotes subfasciatus. These data together with phylogenetic analyses, allowed us to identify the sequences of the gene coding for digestive and lysosomal CABs, CADs and CALs in T. molitor and Z. subfasciatus and observe the absence of digestive cathepsins in D. maculatus. Comparisons of structures based on the overall similarity of modelled structures were performed and subsite residues in the lysosomal and digestive CALs were identified by molecular docking. The data showed that S2 subsites are very variable, probably as an adaption to a luminal digestive role. The survey of sequences of the gene coding for cathepsins in the genomes of 13 beetle species from different phylogenetic groups showed that expansion of CAL and CAB genes occurred only in the Cucujiformia clade. Several digestive CABs have a reduced occluding loop, probably to act as digestive enzymes. Pollen-feeding was proposed to be the selective pressure to recruit cathepsins as digestive enzymes in Cucujiformia beetles.


Subject(s)
Coleoptera , Animals , Cathepsin L/genetics , Cathepsin L/metabolism , Cathepsins/chemistry , Cathepsins/genetics , Cathepsins/metabolism , Coleoptera/metabolism , Lysosomes/metabolism , Molecular Docking Simulation , Phylogeny
2.
Insect Biochem Mol Biol ; 127: 103488, 2020 12.
Article in English | MEDLINE | ID: mdl-33080312

ABSTRACT

Cysteine peptidases (CP) play a role as digestive enzymes in hemipterans similar to serine peptidases in most other insects. There are two major CPs: cathepsin L (CAL), which is an endopeptidase and cathepsin B (CAB) that is both an exopeptidase and a minor endopeptidase. There are thirteen putative CALs in Dysdercus peruvianus, which in some cases were confirmed by cloning their encoding genes. RNA-seq data showed that DpCAL5 is mainly expressed in the anterior midgut (AM), DpCAL10 in carcass (whole body less midgut), suggesting it is a lysosomal enzyme, and the other DpCALs are expressed in middle (MM) and posterior (PM) midgut. The expression data were confirmed by qPCR and enzyme secretion to midgut lumen by a proteomic approach. Two CAL activities were isolated by chromatography from midgut samples with similar kinetic properties toward small substrates. Docking analysis of a long peptide with several DpCALs modeled with digestive Tenebrio molitor CAL (TmCAL3) as template showed that on adapting to luminal digestion DpCALs (chiefly DpCAL5) changed in relation to their ancestral lysosomal enzyme (DpCAL10) mainly at its S2 subsite. A similar conclusion arrived from structure alignment-based clustering of DpCALs based on structural similarity of the modeled structures. Changes mostly on S2 subsite could mean the enzymes turn out less peptide-bond selective, as described in TmCALs. R. prolixus CALs changed on adapting to luminal digestion, although less than DpCALs. Both D. peruvianus and R. prolixus have two digestive CABs which are expressed in the same extension as CALs, in the first digestive section of the midgut, but less than in the other midgut sections. Mahanarva fimbriolata does not seem to have digestive CALs and their digestive CABs are mainly expressed in the first digestive section of the midgut and do not diverge much from their lysosomal counterparts. The data suggest that CABs are necessary at the initial stage of digestion in CP-dependent Hemipterans, which action is completed by CALs with low peptide-bond selectivity in Heteroptera species. In M. fimbriolata protein digestion is supposed to be associated with the inactivation of sap noxious proteins, making CAB sufficient as digestive CP. Hemipteran genomes and transcriptome data showed that CALs have been recruited as digestive enzymes only in heteropterans, whereas digestive CABs occur in all hemipterans.


Subject(s)
Cathepsin B/genetics , Cathepsin L/genetics , Hemiptera/physiology , Insect Proteins/genetics , Amino Acid Sequence , Animal Nutritional Physiological Phenomena , Animals , Base Sequence , Cathepsin B/chemistry , Cathepsin B/metabolism , Cathepsin L/chemistry , Cathepsin L/metabolism , Digestion , Hemiptera/enzymology , Hemiptera/genetics , Heteroptera/enzymology , Heteroptera/genetics , Heteroptera/physiology , Insect Proteins/chemistry , Insect Proteins/metabolism , Rhodnius/enzymology , Rhodnius/genetics , Rhodnius/physiology
3.
Biochem Biophys Res Commun ; 466(4): 629-36, 2015 Oct 30.
Article in English | MEDLINE | ID: mdl-26367180

ABSTRACT

Thaumatin-like proteins (TLPs) are found in diverse eukaryotes. Plant TLPs, known as Pathogenicity Related Protein (PR-5), are considered fungal inhibitors. However, genes encoding TLPs are frequently found in fungal genomes. In this work, we have identified that Moniliophthora perniciosa, a basidiomycete pathogen that causes the Witches' Broom Disease (WBD) of cacao, presents thirteen putative TLPs from which four are expressed during WBD progression. One of them is similar to small TLPs, which are present in phytopathogenic basidiomycete, such as wheat stem rust fungus Puccinia graminis. Fungi genomes annotation and phylogenetic data revealed a larger number of TLPs in basidiomycetes when comparing with ascomycetes, suggesting that these proteins could be involved in specific traits of mushroom-forming species. Based on the present data, we discuss the contribution of TLPs in the combat against fungal competitors and hypothesize a role of these proteins in M. perniciosa pathogenicity.


Subject(s)
Agaricales/genetics , Agaricales/pathogenicity , Cacao/microbiology , Fungal Proteins/genetics , Genome, Fungal , Plant Diseases/microbiology , Amino Acid Sequence , Fungal Proteins/physiology , Gene Expression , Molecular Sequence Data , Multigene Family , Phylogeny , RNA, Fungal/genetics , Sequence Homology, Amino Acid , Virulence/genetics , Virulence/physiology
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