Co-Circulation and Excretion Dynamics of Diverse Rubula- and Related Viruses in Egyptian Rousette Bats from South Africa
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Site, Permits, and Ethical Statements
2.2. Sample Collection
2.3. Viral PCR Screening
2.4. Bioinformatic Analysis
2.5. Temporal Analysis
3. Results
3.1. Positivity and Co-Infections
3.2. Phylogenetic Analysis and Identity Comparisons
3.3. Tissue Distribution
3.4. Temporal Analysis
4. Discussion
4.1. Detection of Nucleic Acids
4.2. Tissue Distribution
4.3. Excretion Dynamics
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
References
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Representative Virus Sequence † (Number of Detections) | Samples Positive (Sample Type) *,^ | GenBank Accession Numbers | Highest Similarity (%) to Classified Rubulavirus Species # | |||
---|---|---|---|---|---|---|
Virus | nt | Virus | aa | |||
BatPV_R_aeg_RSA-1497_2012 (11) | UP 1497 (S), UP 3584 (S), UP 4251 (S), UP 4260 (S), UP 4488 (U), UP 5261 (U),UPE 091 (U), UPE 326 (U), UPE 337 (U), UPE 479 (U), UPE 489 (U) | MH259215; MH259227; MH259233; MH259235; MH259263; MH259264; MH259270; MH259289; MH259292; MH259296; MH259298 | AchPV-1 | 76.3% | AchPV-1, AchPV-2, ThkPV-1, ThkPV-2, Sosuga | 82.2% |
BatPV_R_aeg_RSA-1501_2012 (4) | UP 1501 (S) UP 2729 (S), UP 5862 (S),UPE 094 (U) | MH259216; MH259221; MH259240; MH259272 | ThkPV-1 | 78.4% | ThkPV-1 | 83.8% |
BatPV_R_aeg_RSA-1511_2012 (2) | UP 1511 (S), UPE 816 (U) | MH259217; MH937577 | AchPV-2 | 76.3% | AchPV-2 | 83.8% |
BatPV_R_aeg_RSA-1519_2012 (3) | UP 1519 (S), UP 3011 (S), UP 4729 (S) | MH259218; MH259225; MH259238 | ThkPV-1 | 72% | AchPV-2, TioPV | 80.6% |
BatPV_R_aeg_RSA-2049_2012 (24) | UP 2049 (S), UP 2240 (U), UP 3093 (S), UP 3760 (S), UP 5119 (S), UP 5908 (S), UP 6101 (S), UP 6892 (S), UP 6910 (S), UPE 088 (U), UPE 113 (U), UPE 117 (U), UPE 195 (U), UPE 337 (U), UPE 527 (U), UPE 529 (U), UPE 761 (U), UPE 762 (U), UPE 764 (U), UPE 766 (U), UPE 769 (U), UPE 789 (U), UPE 808 (U), UPE 813 (U) | MH259219; MH259262; MH259226; MH259229; MH259239; MH259241; MH259242; MH259245; MH259265; MH259269; MH259274; MH259278; MH259284; MH259293; MH259300; MH259301; MH937567; MH937568; MH937569; MH937570; MH937571; MH937572; MH937573; MH937575 | MenPV | 74.1% | AchPV-2 | 82.2% |
BatPV_R_aeg_RSA-2240a_2013 (1) | UP 2240 (U) | MH259260 | ThkPV-2 | 75.8% | Sosuga | 79% |
BatPV_R_aeg_RSA-2240b_2013 (1) | UP 2240 (U) | MH259261 | AchPV-2 | 74.7% | AchPV-1, AchPV-2, ThkPV-1, ThkPV-2, Sosuga | 79% |
BatPV_R_aeg_RSA-2659_2013 (10) | UP 2659 (S), UP 2736 (S), UP 2763 (S), UP 3777 (S), UP 4169 (S), UP 6464 (S), UP 6469 (S), UPE 525 (U), UPE 809 (U), UPE 815 (U) | MH259220; MH259222; MH259224; MH259230; MH259232; MH259243; MH259244; MH259299; MH937574; MH937576 | MuV | 76.8% | MuV | 96.9% |
BatPV_R_aeg_RSA-2752_2013 (1) | UP 2752 (S) | MH259223 | ThkPV-1 | 70.9% | ThkPV-2 | 79% |
BatPV_R_aeg_RSA-3760a_2014 (1) | UP 3760 (S) | MH259228 | ThkPV-1, AchPV-1 | 70.4% | AchPV-2, Sosuga | 75.8% |
BatPV_R_aeg_RSA-3777b_2014 (3) | UP 3777 (S), UP 4252 (S), UPE 087 (U) | MH259231; MH259234; MH259268 | ThkPV-1 | 73.6% | AchPV-2 | 83.8% |
BatPV_R_aeg_RSA-4341_2014 (7) | UP 4341 (S), UP 4347 (S), UPE 118 (U), UPE 119 (U), UPE 318 (U), UPE 331 (U), UPE 343 (U) | MH259236; MH259237; MH259279; MH259280; MH259286; MH259291; MH259295 | AchPV-1 | 70.9% | ThkPV-2 | 80.6% |
BatPV_R_aeg_RSA-MAUP4_2015 (1) | MaUP4 (U) | MH259213 | ThkPV-2 | 70.9% | AchPV-2, ThkPV-2, Sosuga | 75.8% |
BatPV_R_aeg_RSA-UPE080_2017 (1) | UPE 080 (U) | MH259266 | ThkPV-2 | 76.3% | AchPV-1 | 83.8% |
BatPV_R_aeg_RSA-UPE087a_2017 (2) | UPE 087 (U), UPE 195 (U) | MH259267; MH259282 | ThkPV-2 | 78.4% | Sosuga | 80.6% |
BatPV_R_aeg_RSA-UPE092_2017 (1) | UPE 092 (U) | MH259271 | HPIV-4a | 72.5% | Sosuga | 82.2% |
BatPV_R_aeg_RSA-UPE112b_2017 (1) | UPE 112 (U) | MH259273 | MenPV, ThkPV-1 | 72.5% | AchPV-2, Sosuga | 80.6% |
BatPV_R_aeg_RSA-UPE122b_2017 (1) | UPE 122 (U) | MH259281 | ThkPV-1 | 73.6% | AchPV-2 | 85.4% |
BatPV_R_aeg_RSA-UPE195b_2017 (1) | UPE 195 (U) | MH259283 | AchPV-2 | 75.2% | Sosuga | 82.2% |
BatPV_R_aeg_RSA-UPE316_2017 (1) | UPE 316 (U) | MH259285 | AchPV-2 | 75.8% | Sosuga | 80.6% |
BatPV_R_aeg_RSA-UPE319_2017 (2) | UPE 319 (U), UPE 481 (U) | MH259287; MH259297 | AchPV-1 | 76.3% | AchPV-1s | 85.4% |
BatPV_R_aeg_RSA-UPE325_2017 (2) | UPE 325 (U), UPE 327 (U) | MH259288; MH259290 | ThkPV-2 | 76.3% | ThkPV-1, ThkPV-2 | 85.4% |
BatPV_R_aeg_RSA-UPE341_2017 (1) | UPE 341 (U) | MH259294 | AchPV-2 | 76.8% | AchPV-1, AchPV-2, ThkPV-1, ThkPV-2, Sosuga | 80.6% |
Sample | Collection Date | Li | Ki | Lu | Int | GenBank Accession Numbers |
---|---|---|---|---|---|---|
UP 2736 | July 2013 | − | + | − | − | MH259246 |
UP 2763 | July 2013 | − | − | + | − | MH259247 |
UP 3093 | September 2013 | − | − | − | + | MH259248 |
UP 3584 | November 2013 | − | + | − | − | MH259249 |
UP 3777 * | June 2014 | + | + | + | − | MH259275; MH259250; MH259276; MH259277 |
UP 4169 | May 2014 | − | − | − | + | MH259214 |
UP 4251 | June 2014 | + | + | + | + | MH259251; MH259254; MH259253; MH259252 |
UP 4260 | June 2014 | − | + | − | − | MH259255 |
UP 4341 | July 2014 | − | − | − | + | MH259256; |
UP 4347 | July 2014 | − | − | − | + | MH259257 |
UP 6464 | April 2014 | − | − | − | + | MH259258 |
UP 6892 | June 2016 | − | + | − | − | MH259259 |
Reference | Tested (Positive) | Positivity | Sample Type | Countries #,^ |
---|---|---|---|---|
Sosuga virus prevalence studies (qRT-PCR targeting the nucleoprotein of Sosuga virus) | ||||
Amman et al., 2015 [18] | 122 (3) | 2.46% | Liver/Spleen | Uganda (various caves within the country with varying positivity) |
401 (3) | 0.75% | |||
408 (15) | 3.68% | |||
400 (41) | 10.25% | |||
Rubula- and related virus detection studies (Avula–Rubulavirus specific RT-PCR assay targeting the polymerase gene) | ||||
Drexler et al., 2012 [7] | 213 (15) | 7.04% | Spleen | Ghana, Gabon, DRC, Congo |
Current study | 304 (29) | 9.54% | Spleen | South Africa |
58 (4) | 6.89% | Urine * |
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Mortlock, M.; Dietrich, M.; Weyer, J.; Paweska, J.T.; Markotter, W. Co-Circulation and Excretion Dynamics of Diverse Rubula- and Related Viruses in Egyptian Rousette Bats from South Africa. Viruses 2019, 11, 37. https://doi.org/10.3390/v11010037
Mortlock M, Dietrich M, Weyer J, Paweska JT, Markotter W. Co-Circulation and Excretion Dynamics of Diverse Rubula- and Related Viruses in Egyptian Rousette Bats from South Africa. Viruses. 2019; 11(1):37. https://doi.org/10.3390/v11010037
Chicago/Turabian StyleMortlock, Marinda, Muriel Dietrich, Jacqueline Weyer, Janusz T. Paweska, and Wanda Markotter. 2019. "Co-Circulation and Excretion Dynamics of Diverse Rubula- and Related Viruses in Egyptian Rousette Bats from South Africa" Viruses 11, no. 1: 37. https://doi.org/10.3390/v11010037
APA StyleMortlock, M., Dietrich, M., Weyer, J., Paweska, J. T., & Markotter, W. (2019). Co-Circulation and Excretion Dynamics of Diverse Rubula- and Related Viruses in Egyptian Rousette Bats from South Africa. Viruses, 11(1), 37. https://doi.org/10.3390/v11010037