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Egg-Hatching Mechanism of Human Liver Fluke, Opisthorchis viverrini: A Role for Leucine Aminopeptidases from the Snail Host, Bithynia siamensis goniomphalos

dc.contributor.authorKhampoosa P.
dc.contributor.authorJones M.K.
dc.contributor.authorLovas E.M.
dc.contributor.authorPiratae S.
dc.contributor.authorKulsuntiwong J.
dc.contributor.authorPrasopdee S.
dc.contributor.authorSrisawangwong T.
dc.contributor.authorLaha T.
dc.contributor.authorSripanidkulchai B.
dc.contributor.authorThitapakorn V.
dc.contributor.authorTesana S.
dc.date.accessioned2021-04-05T03:21:37Z
dc.date.available2021-04-05T03:21:37Z
dc.date.issued2018
dc.date.issuedBE2561
dc.description.abstractThe human liver fluke Opisthorchis viverrini (Platyhelminthes, Trematoda, Digenea) uses snails of the genus Bithynia as first intermediate host. Peculiarly among trematodes, the eggs of O. viverrini hatch within the digestive tract of its snail host. It remains uncertain whether hatching in this species is mediated through mechanical fracture of the eggshell or by digestion with specific digestive enzymes. This study aimed to characterize enzymes with specific inhibitors and factors involved in the hatching activity of O. viverrini eggs. For measuring egg hatching in vivo, 50 O. viverrini mature eggs were fed to individual Bithynia siamensis goniomphalos snails at various temperature conditions for 24 hr. Ex vivo, mature eggs were incubated with crude snail extract and commercial leucine aminopeptidase (LAP). Egg-hatching of O. viverrini was temperature dependent, with optimal hatching occurring at 24-28 C, with a peak of hatching of 93.54% in vivo and 30.55% ex vivo occurring at these temperatures. Ex vivo hatching rates increased to 45.87% under anaerobic conditions at 28 C. Some 22.70% and 16.21% of heat-killed eggs also hatched within the snail digestive tract and snail extract, respectively, indicating that host molecules are involved in the hatching response. Most eggs hatch in the anterior regions of the digestive tract. Hatching was completely inhibited in the presence of bestatin, an inhibitor of LAP, but not in the presence of phosphatase inhibitors. Bestatin inhibition of hatching was reversible. Finally, egg hatching could be induced by addition of a porcine LAP. The results indicate that this digenean utilizes both LAP of the snail host and movement of miracidia for hatching. © American Society of Parasitologists 2018.
dc.format.mimetypeapplication/pdf
dc.identifier.citationJournal of Parasitology. Vol 104, No.4 (2018), p.388-397
dc.identifier.doi10.1645/16-125
dc.identifier.issn223395
dc.identifier.other2-s2.0-85048268748
dc.identifier.urihttps://hdl.handle.net/20.500.14740/3681
dc.rights.holderScopus
dc.subject.otherBestatin
dc.subject.otherCytosol aminopeptidase
dc.subject.otherCytosol aminopeptidase
dc.subject.otherEnzyme inhibitor
dc.subject.otherLeucine
dc.subject.otherProtein phosphatase inhibitor-1
dc.subject.otherProteinase inhibitor
dc.subject.otherSignal peptide
dc.subject.otherAnoxic conditions
dc.subject.otherEggshell
dc.subject.otherEnzyme
dc.subject.otherEnzyme activity
dc.subject.otherHost-parasite interaction
dc.subject.otherInhibition
dc.subject.otherInhibitor
dc.subject.otherIntermediate disturbance hypothesis
dc.subject.otherInvertebrate
dc.subject.otherParasite
dc.subject.otherSnail
dc.subject.otherTemperature effect
dc.subject.otherArticle
dc.subject.otherBithynia
dc.subject.otherBithynia siamensis goniomphalos
dc.subject.otherCercaria
dc.subject.otherControlled study
dc.subject.otherDigestive system
dc.subject.otherEgg shell
dc.subject.otherElectron microscopy
dc.subject.otherEnzymatic degradation
dc.subject.otherEx vivo study
dc.subject.otherExocrine gland
dc.subject.otherFood contamination
dc.subject.otherHatching
dc.subject.otherMiracidium
dc.subject.otherNonhuman
dc.subject.otherOpisthorchis viverrini
dc.subject.otherPH
dc.subject.otherSurface property
dc.subject.otherAnalysis of variance
dc.subject.otherAnimal
dc.subject.otherDrug effect
dc.subject.otherEnzymology
dc.subject.otherFemale
dc.subject.otherHuman
dc.subject.otherMale
dc.subject.otherMetabolism
dc.subject.otherOpisthorchis
dc.subject.otherOvum
dc.subject.otherParasitology
dc.subject.otherPhysiology
dc.subject.otherScanning electron microscopy
dc.subject.otherSnail
dc.subject.otherTransmission electron microscopy
dc.subject.otherUltrastructure
dc.subject.otherBithynia
dc.subject.otherDigenea (flukes)
dc.subject.otherFasciola hepatica
dc.subject.otherGastropoda
dc.subject.otherOpisthorchis viverrini
dc.subject.otherPlatyhelminthes
dc.subject.otherSus
dc.subject.otherTrematoda
dc.subject.otherAnalysis of Variance
dc.subject.otherAnimals
dc.subject.otherCercaria
dc.subject.otherEnzyme Inhibitors
dc.subject.otherFemale
dc.subject.otherHumans
dc.subject.otherIntracellular Signaling Peptides and Proteins
dc.subject.otherLeucine
dc.subject.otherLeucyl Aminopeptidase
dc.subject.otherMale
dc.subject.otherMicroscopy, Electron, Scanning
dc.subject.otherMicroscopy, Electron, Transmission
dc.subject.otherOpisthorchis
dc.subject.otherOvum
dc.subject.otherProtease Inhibitors
dc.subject.otherSnails
dc.titleEgg-Hatching Mechanism of Human Liver Fluke, Opisthorchis viverrini: A Role for Leucine Aminopeptidases from the Snail Host, Bithynia siamensis goniomphalos
dc.typeArticle
dspace.entity.typePublication
swu.datasource.scopushttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85048268748&doi=10.1645%2f16-125&partnerID=40&md5=1e4e3699d8ab990ba8232dd4845949cd

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