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Transient Transduction of the Strobilated Forms of Echinococcus granulosus
Published on: September 16, 2022
Biochemical and molecular characterization of the calcineurin in Echinococcus granulosus larval stages
María Celeste Nicolao1, Andrea C Cumino2
1Laboratorio de Zoonosis Parasitarias, Departamento de Biología, Facultad de Ciencias Exactas y Naturales, Universidad Nacional de Mar del Plata (UNMdP), Funes 3350, Nivel Cero, 7600 Mar del Plata, Argentina; Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Argentina.
Abstract:
Calcineurin (CaN) is a Ca(2+)-calmodulin activated serine-threonine protein phosphatase that couples the local or global calcium signals, thus controlling important cellular functions in physiological and developmental processes. The aim of this study was to characterize CaN in Echinococcus granulosus (Eg-CaN), a human cestode parasite of clinical importance, both functionally and molecularly. We found that the catalytic subunit isoforms have predicted sequences of 613 and 557 amino acids and are substantially similar to those of the human counterpart, except for the C-terminal end. We also found that the regulatory subunit consists of 169 amino acids which are 87% identical to the human ortholog. We cloned a cDNA encoding for one of the two catalytic subunit isoforms of CaN (Eg-can-A1) as well as the only copy of the Eg-can-B gene, both constitutively transcribed in all Echinococcus larval stages and responsible for generating a functionally active heterodimer. Eg-CaN native enzyme has phosphatase activity, which is enhanced by Ca(2+)/Ni(2+) and reduced by cyclosporine A and Ca(2+) chelators. Participation of Eg-CaN in exocytosis was demonstrated using the FM4-64 probe and Eg-CaN-A was immunolocalized in the cytoplasm of tegumental cells, suckers and excretory bladder of protoscoleces. We also showed that the Eg-can-B transcripts were down-regulated in response to low Ca(2+) intracellular level, in agreement with decreased enzyme activity. Confocal microscopy revealed a striking pattern of Eg-CaN-A in discrete fluorescent spots in the protoscolex posterior bladder and vesicularized protoscoleces beginning the vesicular differentiation. In contrast, Eg-CaN-A was undetectable during the pre-microcyst closing stage while a high DDX-like RNA helicase expression was evidenced. Finally, we identified and analyzed the expression of CaN-related endogenous regulators.
Insights
This study characterizes Echinococcus granulosus calcineurin (Eg-CaN), a key enzyme in parasite development. Eg-CaN is functionally active and involved in exocytosis, with its expression varying across parasite stages.
Area of Science:
- Molecular Parasitology
- Enzymology
- Cell Biology
Background:
- Calcineurin (CaN) is a crucial Ca(2+)-calmodulin activated serine-threonine protein phosphatase regulating cellular functions.
- Echinococcus granulosus (Eg) is a clinically significant human cestode parasite.
Purpose of the Study:
- To functionally and molecularly characterize calcineurin (Eg-CaN) in Echinococcus granulosus.
- Investigate the role of Eg-CaN in parasite development and cellular processes.
Main Methods:
- Molecular cloning of Eg-CaN catalytic (Eg-can-A1) and regulatory (Eg-can-B) subunits.
- Assay of Eg-CaN phosphatase activity and its modulation by ions and inhibitors.
- Immunolocalization of Eg-CaN-A using FM4-64 probe and confocal microscopy.
- Analysis of Eg-can-B transcript levels under varying calcium conditions.
Main Results:
- Eg-CaN catalytic subunits show similarity to human counterparts, with a distinct C-terminus.
- The regulatory subunit (Eg-can-B) is highly identical to its human ortholog.
- Eg-CaN exhibits constitutive transcription, forms an active heterodimer, and possesses Ca(2+)/Ni(2+)-enhanced phosphatase activity.
- Eg-CaN participates in exocytosis and is localized in tegumental cells, suckers, and excretory bladder of protoscoleces.
- Eg-can-B transcripts are downregulated by low intracellular Ca(2+), correlating with decreased enzyme activity.
- Eg-CaN-A shows distinct localization patterns during protoscolex differentiation, with reduced expression before microcyst closing.
Conclusions:
- Eg-CaN is a functionally active enzyme critical for Echinococcus granulosus development.
- Eg-CaN plays a role in exocytosis and its expression is regulated by intracellular calcium levels.
- The differential expression of Eg-CaN suggests stage-specific functions during parasite development.

