STAT1-IFITM3 promotes autophagy in epithelial cells to control <i>Cryptosporidium parvum</i> infection. [PDF]
Cui L, Li T, Zhang J, Shen Y, Cao J.
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Targeting translation initiation yields fast-killing therapeutics against the zoonotic parasite Cryptosporidium parvum. [PDF]
Li M, Yin J, Wang D, Zou B, Zhu G.
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Investigating genetic diversity within <i>Cryptosporidium parvum</i> outbreaks using multi-locus variable number tandem repeat analysis. [PDF]
Bacchetti R +5 more
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A review of recent <i>Cryptosporidium hominis</i> and <i>Cryptosporidium parvum gp60</i> subtypes. [PDF]
Oladele DB +4 more
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New T2T assembly of Cryptosporidium parvum IOWA II annotated with Legacy-Compatible Gene identifiers. [PDF]
Baptista RP +4 more
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MiR-125b-5p targets Bak1 to regulate HCT-8 cell apoptosis in response to Cryptosporidium parvum infection via mitochondrial pathway. [PDF]
Wu S +12 more
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Design, development, and testing of a new multi-locus sequence typing scheme for the zoonotic pathogen <i>Cryptosporidium parvum</i>. [PDF]
Troell K +21 more
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Genetic crosses reveal genomic loci responsible for virulence in Cryptosporidium parvum infection
Shaw S +9 more
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Emergence of zoonotic Cryptosporidium parvum in China
Trends in Parasitology, 2022Zoonotic cryptosporidiosis is a major public health problem in industrialized nations; in those countries it is caused mainly by Cryptosporidium parvum IIa subtypes that are prevalent in dairy calves. Because of the short history of intensive animal farming in China, strains of C.
Lihua Xiao, Yao-Yu Feng, Yaqiong Guo
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Targeting Cryptosporidium parvum capture
Water Research, 2012Polymer microarrays offer a high-throughput approach to the screening and assessment of a large number of polymeric materials. Here, we report the first study of protozoan-polymer interactions using a microarray approach. Specifically, from screening hundreds of synthetic polymers, we identified materials that either trap the waterborne protozoan ...
Mei, Wu, Helen, Bridle, Mark, Bradley
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