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Assays for the Specific Growth Rate and Cell-binding Ability of Rotavirus
Published on: January 28, 2019
Culture of Human Rotaviruses in Relevant Models Shows Differences in Culture-Adapted and Nonculture-Adapted Strains
Nazaret Peña-Gil1,2, Walter Randazzo3, Noelia Carmona-Vicente1
1Department of Microbiology, School of Medicine, University of Valencia, Av. Blasco Ibáñez 15, 46010 Valencia, Spain.
Insights
Clinical rotavirus (RV) isolates replicate better in cell models expressing histo-blood group antigens (HBGAs), unlike lab-adapted strains. This highlights the importance of using non-adapted RV for accurate infection modeling.
Area of Science:
- Virology
- Cell Biology
- Gastroenterology
Background:
- Rotavirus (RV) is a major cause of acute gastroenteritis (AGE) in young children globally.
- Histo-blood group antigens (HBGAs) are implicated in the rotavirus infection process.
Purpose of the Study:
- To investigate the replication efficiency of clinical rotavirus isolates in cell cultures with varying HBGA expression.
- To compare the replication of clinical RV isolates with a lab-adapted strain (Wa) in different cell models.
Main Methods:
- Infection of differentiated Caco-2 cells (dCaco-2) with human stool filtrates from RV-infected patients.
- Time-course analysis of RV replication in dCaco-2, MA104, undifferentiated Caco-2 (uCaco-2), HT29, HT29-M6 cells, and human intestinal enteroids (HIEs).
- Surface plasmon resonance analysis to determine the binding affinity between RV VP8* protein and H antigen.
Main Results:
- The lab-adapted Wa strain replicated efficiently in MA104 cells (lacking HBGAs).
- Clinical RV isolates showed higher replication in dCaco-2 cells and HIEs (expressing HBGAs).
- A clinical isolate (V7) exhibited a 45-fold higher affinity for the H antigen compared to the Wa strain.
Conclusions:
- Differences in HBGA expression on cell surfaces influence rotavirus tropism between clinical isolates and lab-adapted strains.
- Using non-cell culture-adapted human RV is crucial for relevant rotavirus infection modeling.
Abstract:
Rotavirus (RV) is the leading cause of acute gastroenteritis (AGE) in children under 5 years old worldwide, and several studies have demonstrated that histo-blood group antigens (HBGAs) play a role in its infection process. In the present study, human stool filtrates from patients diagnosed with RV diarrhea (genotyped as P[8]) were used to infect differentiated Caco-2 cells (dCaco-2) to determine whether such viral strains of clinical origin had the ability to replicate in cell cultures displaying HBGAs. The cell culture-adapted human RV Wa model strain (P[8] genotype) was used as a control. A time-course analysis of infection was conducted in dCaco-2 at 1, 24, 48, 72, and 96 h. The replication of two selected clinical isolates and Wa was further assayed in MA104, undifferentiated Caco-2 (uCaco-2), HT29, and HT29-M6 cells, as well as in monolayers of differentiated human intestinal enteroids (HIEs). The results showed that the culture-adapted Wa strain replicated more efficiently in MA104 cells than other utilized cell types. In contrast, clinical virus isolates replicated more efficiently in dCaco-2 cells and HIEs. Furthermore, through surface plasmon resonance analysis of the interaction between the RV spike protein (VP8*) and its glycan receptor (the H antigen), the V7 RV clinical isolate showed 45 times better affinity compared to VP8* from the Wa strain. These findings support the hypothesis that the differences in virus tropism between clinical virus isolates and RV Wa could be a consequence of the different HBGA contents on the surface of the cell lines employed. dCaco-2, HT29, and HT29M6 cells and HIEs display HBGAs on their surfaces, whereas MA104 and uCaco-2 cells do not. These results indicate the relevance of using non-cell culture-adapted human RV to investigate the replication of rotavirus in relevant infection models.
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