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Updated: Aug 21, 2026

Tick Blood Feeding through an Artificial Membrane on a 3D-Printed Chamber in Ixodid Tick Research
Published on: March 20, 2026
A newly identified three-domain C-type lectin associated with blood feeding in the tick Ixodes ricinus
Kateryna Kotsarenko1, Ondřej Hajdušek2, Martina Rievajová3
1Central European Institute of Technology, Masaryk University, Kamenice 5, Brno, 62500, Czech Republic; National Centre for Biomolecular Research, Faculty of Science, Masaryk University, Kotlarska 2, Brno, 61137, Czech Republic; Faculty of Science, University of South Bohemia, Branisovska 1760, Ceske Budejovice, 37005, Czech Republic.
Ixodes ricinus ticks are widely distributed throughout Europe and represent major vectors of tick-borne encephalitis virus and the Lyme borreliosis agent Borrelia burgdorferi sensu lato. In invertebrates, C-type lectins are commonly associated with innate immune functions, and several such lectins have been predicted in I. ricinus. Given the limited knowledge of lectin function in ticks, we characterized three carbohydrate-recognition domains (CRDs) of a novel C-type lectin identified in the I. ricinus transcriptome (IrCLec). The tertiary structures of CRD1, CRD2, and CRD3, predicted using the AlphaFold 3 program, corresponded to the typical structure of C-type lectins. Conserved carbohydrate-binding motifs were identified in CRD3, whereas non-canonical motifs were present in CRD1 and CRD2. Recombinant His-tagged CRDs were produced and analyzed for carbohydrate-binding activity. Glycan array analysis revealed binding of all three domains to selected glycans, while haemagglutination assays demonstrated pronounced binding activity of CRD1 and CRD2 toward human erythrocyte antigens of blood groups A, B, and O. IrCLec expression was highest in the tick midgut and also detected in haemocytes, with expression levels increasing after blood feeding. RNAi-mediated silencing of IrCLec impaired blood feeding efficiency in tick nymphs. Together, these findings identify IrCLec as a novel multidomain lectin localized predominantly in the tick midgut, with individual CRDs displaying different carbohydrate-binding preferences and a potential role during feeding.
Ixodes ricinus ticks are widely distributed throughout Europe and represent major vectors of tick-borne encephalitis virus and the Lyme borreliosis agent Borrelia burgdorferi sensu lato. In invertebrates, C-type lectins are commonly associated with innate immune functions, and several such lectins have been predicted in I. ricinus. Given the limited knowledge of lectin function in ticks, we characterized three carbohydrate-recognition domains (CRDs) of a novel C-type lectin identified in the I. ricinus transcriptome (IrCLec). The tertiary structures of CRD1, CRD2, and CRD3, predicted using the AlphaFold 3 program, corresponded to the typical structure of C-type lectins. Conserved carbohydrate-binding motifs were identified in CRD3, whereas non-canonical motifs were present in CRD1 and CRD2. Recombinant His-tagged CRDs were produced and analyzed for carbohydrate-binding activity. Glycan array analysis revealed binding of all three domains to selected glycans, while haemagglutination assays demonstrated pronounced binding activity of CRD1 and CRD2 toward human erythrocyte antigens of blood groups A, B, and O. IrCLec expression was highest in the tick midgut and also detected in haemocytes, with expression levels increasing after blood feeding. RNAi-mediated silencing of IrCLec impaired blood feeding efficiency in tick nymphs. Together, these findings identify IrCLec as a novel multidomain lectin localized predominantly in the tick midgut, with individual CRDs displaying different carbohydrate-binding preferences and a potential role during feeding.
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