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Zinc-binding proteins (ZnBPs) isolated from boar seminal plasma exert multiple effects on boar spermatozoa. The aim of this study was to determine whether the isolated zinc-binding proteins were capable of binding additional ligands. The affinity chromatography method was used for the first time to demonstrate that boar ZnBPs show affinity for both heparin (hep) and phosphorylcholine (pch). ZnBPs+hep accounted for approximately 20%, and ZnBPs+pch – for approximately 45% of total ZnBPs. Predominant polypeptides with molecular mass form 6.5 to 14 kDa were observed in both groups (ZnBPs+hep, ZnBPs+pch). The analyzed peptides’ low molecular mass and their ability to bind zinc ions as well as heparin and phosphorylcholine suggest that they belong to the family of multifunctional boar spermadhesins which perform their functions in the fertilization process by binding more than one ligand. The results indicate that the ZnBPs of boar seminal plasma may be involved in the processes associated with oocyte fertilization not only by zinc ions binding but also through heparin and phosphorylcholine.
Parasites are designed by evolution to invade the host and survive in its organism until they are ready to reproduce. Parasites release a variety of molecules that help them to penetrate the defensive barriers and avoid the immune attack of the host. In this respect, particularly interesting are enzymes and their inhibitors secreted by the parasites. Serine-, aspartic-, cysteine-, and metalloproteinases are involved in tissue invasion and extracellular protein digestion. Helminths secrete inhibitors of these enzymes (serpins, aspins, and cystatins) to inhibit proteinases, both of the host and their own. Proteinases and their inhibitors, as well as helminth homologues of cytokines and molecules containing phosphorylcholine, influence the immune response of the host biasing it towards the anti-inflammatory Th2 type. Nucleotide-metabolizing enzymes and cholinesterase are secreted by worms to reduce inflammation and expel the parasites from the gastrointestinal tract. An intracellular metazoan parasite, Trichinella spiralis, secretes, among others, protein kinases and phosphatases, endonucleases, and DNA-binding proteins, which are all thought to interfere with the host cellular signals for muscle cell differentiation. Secretion of antioxidant enzymes is believed to protect the parasite from reactive oxygen species which arise from the infection-stimulated host phagocytes. Aside from superoxide dismutase, catalase (rarely found in helminths), and glutathione peroxidase (selenium-independent, thus having a poor activity with H2O2), peroxiredoxins are probably the major H2O2-detoxifying enzymes in helminths. Secretion of antioxidant enzymes is stage-specific and there are examples of regulation of their expression by the concentration of reactive oxygen species surrounding the parasite. The majority of parasite-secreted molecules are commonly found in free-living organisms, thus parasites have only adapted them to use in their way of life.
Nematodes were found to synthesize phosphorylcholine-containing molecules not present in higher organisms, i.e. phosphorylcholine-substituted glycosphingolipids and (glyco)proteins. Investigations on the biosynthesis of these structures provided first biochemical evidence for the presence of the Kennedy and Bremer-Greenberg pathways in the model organism Caenorhabditis elegans.
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