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Kawazu, S.-i.

Publications and source records attributed to Kawazu, S.-i..

2 recordsLinked to original sources

ves1α genes expression is the major determinant of Babesia bovis-infected erythrocytes cytoadhesion to endothelial cells

Babesia bovis causes the most pathogenic form of babesiosis in cattle, resulting in high mortality in naive adults. This parasite invades red blood cells (RBCs) within the bovine hosts where they multiply and produce clinical disease. Babesia bovis exports numerous proteins into invaded RBCs changing its properties. Thus, the infected RBCs (iRBCs) are capable to cytoadhere in the microvasculature of internal organs and brain, leading to respiratory distress, neurologic signs, and mortality. Variant Erythrocyte Surface Antigen 1 (VESA1) is one of those exported proteins by B. bovis which represents a major virulence factor due to its central role in immune evasion by antigenic variation and intravascular parasite sequestration. VESA1 is a heterodimer protein encoded by ves1 and ves1{beta} multigene family and localized on the ridges, the focal point for cytoadhesion. To gain further insights into the molecular mechanisms of cytoadhesion of B. bovis, we panned the parasites with bovine brain microvasculature endothelial cells, which resulted in obtaining several clones with different cytoadherence abilities. The transcriptome analysis of 2 high and 2 low cytoadherent clones revealed that ves1 sequences were diversified, likely resulting from genomic recombination. On the other hand, ves1{beta} sequences were almost identical among these 4 clones. Insertion and expression of ves1 of a clone with high binding into ef-1 locus of a low binging clone increased cytoadherence confirming the role of ves1 suggested by our transcriptome data. Whole genome sequencing of cytoadherent clones revealed active locus of ves1 on chromosome 2. These results suggest that VESA1a proteins encoded by ves1 genes determine the cytoadherence specificity and/or cytoadherence strength of B. bovis and they are in the active site for recombination. Author summaryBabesia bovis is an apicomplexan intraerythrocytic protozoan parasite which causes the most pathogenic form of babesiosis in cattle. This pathogenicity is the result of parasite multiplication and cytoadherence of infected red blood cells (iRBCs) in the microvasculature of brain and internal organs and is mediated by B. bovis surface exposed ligand, Variant Erythrocyte Surface Antigen 1 (VESA1). Here using parasite panning assay, transcriptomics, and genetic tools, we showed that VESA1a is the main determinant of B. bovis cytoadhesion. VESA1 are large hypervariable proteins (>100kDa) consisting of VESA1a and VESA1b subunits encoded by ves1 and ves1{beta} multigene family. Panning B. bovis with bovine brain endothelial cells resulted in obtaining cytoadherent parasite clones with different binding abilities. Comparative transcriptome analysis revealed diversification of ves1 sequences. Insertion and expression of ves1 of a clone with high-binding ability in the genome of a low-binding clone increased cytoadherence confirming the role of ves1. Mapping RNA-seq on the genome of cytoadherent clones revealed the locus of active transcription and this locus was suggested to be the active site for recombination which promoted the production of variants of ves1 with different binding abilities. Altogether, our results provide new insights into B. bovis cytoadhesion and VESA1 biology.

microbiology↗

Critical role of Babesia bovis spherical body protein 3 in ridge formation on infected red blood cells

Babesia bovis, an apicomplexan intraerythrocytic protozoan parasite, causes serious economic loss to cattle industries around the world. Infection with this parasite leads to accumulation of infected red blood cells (iRBCs) in the brain microvasculature that results in severe clinical complications known as cerebral babesiosis. Throughout its growth within iRBCs, the parasite exports various proteins to the iRBCs that lead to the formation of protrusions known as "ridges" on the surface of iRBCs, which serve as sites for cytoadhesion to endothelial cells. Spherical body proteins (SBPs; proteins secreted from spherical bodies, which are organelles specific to Piroplasmida) are exported into iRBCs, and four proteins (SBP1-4) have been reported to date. In this study, we elucidated the function of SBP3 using an inducible gene knockdown (KD) system. Localization of SBP3 was assessed by immunofluorescence assay, and only partial colocalization was detected between SBP3 and SBP4 inside the iRBCs. In contrast, colocalization was observed with VESA-1, which is a major parasite ligand responsible for the cytoadhesion. Immunoelectron microscopy confirmed localization of SBP3 at the ridges. SBP3 KD was performed using the glmS system, and effective KD was confirmed by Western blotting, immunofluorescence assay, and RNA-seq analysis. The SBP3 KD parasites showed severe growth defect suggesting its importance for parasite survival in the iRBCs. VESA-1 on the surface of iRBCs was scarcely detected in SBP3 KD parasites, whereas SBP4 was still detected in the iRBCs. Moreover, abolition of ridges on the iRBCs and reduction of iRBCs cytoadhesion to the bovine brain endothelial cells were observed in SBP3 KD parasites. Immunoprecipitation followed by mass spectrometry analysis detected the host Band 3 multiprotein complex, suggesting an association of SBP3 with iRBC cytoskeleton proteins. Taken together, this study revealed the vital role of SBP3 in ridge formation and its significance in the pathogenesis of cerebral babesiosis. Author summaryBabesia bovis causes a high-mortality complication called cerebral babesiosis in cattle, similar to cerebral malaria in humans. Both complications are caused by the cytoadhesion of infected red blood cells (iRBCs) to the host brain endothelial cells. These parasites export numerous proteins to the host iRBCs and produce protrusions on the iRBCs that are called ridges for B. bovis and knobs for Plasmodium falciparum. Ridges and knobs play an important role in cytoadhesion as they are the sites of adherence; however, the molecules responsible for ridge formation remain unknown. In this study, we showed that SBP3 is a crucial protein for ridge formation. The SBP3 knockdown parasites showed severe growth defects and abolition of ridges on the iRBCs, and cytoadhesion of iRBCs to the bovine brain endothelial cells was significantly reduced. An immunoprecipitation experiment suggested an association of SBP3 with the host Band 3 multiprotein complex. Although there is no similarity in amino acid sequences, we suggest SBP3 to be a functional ortholog of KAHRP in P. falciparum. In summary, our results shed light on the molecular mechanism of ridge formation and the pathogenesis of B. bovis.

microbiology↗