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Targeted gene knockdown validates the essential role of lactate dehydrogenase in Cryptosporidium parvum
William H Witola1, Xuejin Zhang1, Chi Yong Kim1
1Department of Pathobiology, College of Veterinary Medicine, University of Illinois, Urbana-Champaign, USA.
Abstract:
Cryptosporidium parvum is a zoonotic protozoan that can cause a life-threatening gastrointestinal syndrome in children and in immunocompromised adults. Currently, the only approved drug for treatment of Cryptosporidium infections in humans is nitazoxanide, but it is not effective in immunocompromised individuals or in children with malnutrition. This is compounded by the lack of genetic methods for studying and validating potential drug targets in the parasite. Therefore, in this study, we endeavoured to adapt the use of a phosphorodiamidate morpholino oligomer (morpholino) antisense approach to develop a targeted gene knockdown assay for use in C. parvum. We show that morpholinos, at non-toxic concentrations, are rapidly internalised by both C. parvum and host cells (HCT-8), and distribute diffusely throughout the cytosol. Using morpholinos to separately target C. parvum lactate dehydrogenase and putative arginine n-methyltransferase genes, within 36h of in vitro culture, we achieved over 10-fold down-regulation of the respective encoded proteins in C. parvum. Pursuant to this, we observed that knockdown of C. parvum lactate dehydrogenase produced a dramatic reduction in intracellular growth and development of C. parvum by 56h of culture. On the other hand, C. parvum putative arginine n-methyltransferase knockdown did not appear to have any effect on parasite growth, but nevertheless provided the proof-of-principle that the morpholino knockdown assay in C. parvum was consistent. Together, our findings present a gene regulation approach for interrogating gene function in C. parvum in vitro, and further provide genetic evidence for the essential role of C. parvum lactate dehydrogenase in fueling the growth and development of intracellular C. parvum.
Insights
Researchers developed a new gene knockdown method for Cryptosporidium parvum using morpholinos. This technique confirmed lactate dehydrogenase is essential for parasite growth, offering a new tool for drug target validation.
Area of Science:
- Parasitology
- Molecular Biology
- Antiparasitic Drug Discovery
Background:
- Cryptosporidium parvum causes severe gastrointestinal illness, particularly in children and immunocompromised individuals.
- Current treatments like nitazoxanide are ineffective in certain populations.
- A lack of genetic tools hinders the study of C. parvum and the identification of new drug targets.
Purpose of the Study:
- To adapt phosphorodiamidate morpholino oligomer (morpholino) antisense technology for targeted gene knockdown in C. parvum.
- To establish a genetic method for validating potential drug targets in C. parvum.
- To investigate the function of C. parvum lactate dehydrogenase and arginine n-methyltransferase.
Main Methods:
- Morpholinos were designed to target C. parvum lactate dehydrogenase and arginine n-methyltransferase genes.
- Morpholinos were introduced into C. parvum and host HCT-8 cells in vitro.
- Gene and protein expression levels were analyzed to confirm knockdown efficacy.
- Parasite growth and development were monitored following gene knockdown.
Main Results:
- Morpholinos were rapidly internalized by C. parvum and host cells without toxicity.
- Over 10-fold downregulation of target proteins was achieved within 36 hours.
- Knockdown of C. parvum lactate dehydrogenase significantly inhibited parasite growth and development.
- Knockdown of arginine n-methyltransferase confirmed assay consistency but did not affect parasite growth.
Conclusions:
- Morpholino antisense technology provides a viable method for gene knockdown and functional studies in C. parvum.
- C. parvum lactate dehydrogenase is essential for intracellular parasite growth and development.
- This approach enables genetic validation of drug targets against C. parvum infections.

