| Literature DB >> 32962203 |
Ahmed Mostafa1,2, Sara H Mahmoud1, Mahmoud Shehata1, Christin Müller2, Ahmed Kandeil1, Rabeh El-Shesheny1,3, Hanaa Z Nooh4, Ghazi Kayali5,6, Mohamed A Ali1, Stephan Pleschka2.
Abstract
Egypt is a hotspot for H5- and H9-subtype avian <span class="Species">influenza A virus (AIV) <span class="Disease">infections and co-infections in poultry by both subtypes have been frequently reported. However, natural genetic reassortment of these subtypes has not been reported yet. Here, we evaluated the genetic compatibility and replication efficiency of reassortants between recent isolates of an Egyptian H5N1 and a H9N2 AIV (H5N1EGY and H9N2EGY). All internal viral proteins-encoding segments of the contemporaneous G1-like H9N2EGY, expressed individually and in combination in the genetic background of H5N1EGY, were genetically compatible with the other H5N1EGY segments. At 37 °C the replication efficiencies of H5N1EGY reassortants expressing the H9N2EGY polymerase subunits PB2 and PA (H5N1PB2-H9N2EGY, H5N1PA-H9N2EGY) were higher than the wild-type H5N1EGY in Madin-Darby canine kidney (MDCK-II) cells. This could not be correlated to viral polymerase activity as this was found to be improved for H5N1PB2-H9N2EGY, but reduced for H5N1PA-H9N2EGY. At 33 °C and 39 °C, H5N1PB2-H9N2EGY and H5N1PA-H9N2EGY replicated to higher levels than the wild-type H5N1EGY in human Calu-3 and A549 cell lines. Nevertheless, in BALB/c mice both reassortants caused reduced mortality compared to the wild-type H5N1EGY. Genetic analysis of the polymerase-encoding segments revealed that the PAH9N2EGY and PB2H9N2EGY encode for a distinct uncharacterized mammalian-like variation (367K) and a well-known mammalian signature (591K), respectively. Introducing the single substitution 367K into the PA of H5N1EGY enabled the mutant virus H5N1PA-R367K to replicate more efficiently at 37 °C in primary human bronchial epithelial (NHBE) cells and also in A549 and Calu-3 cells at 33 °C and 39 °C. Furthermore, H5N1PA-R367K caused higher mortality in BALB/c mice. These findings demonstrate that H5N1 (Clade 2.2.1.2) reassortants carrying internal proteins-encoding segments of G1-like H9N2 viruses can emerge and may gain improved replication fitness. Thereby such H5N1/H9N2 reassortants could augment the zoonotic potential of H5N1 viruses, especially by acquiring unique mammalian-like aa signatures.Entities:
Keywords: H5N1; H9N2; R367K; avian influenza; pathogenicity; reassortment
Mesh:
Substances:
Year: 2020 PMID: 32962203 PMCID: PMC7551781 DOI: 10.3390/v12091046
Source DB: PubMed Journal: Viruses ISSN: 1999-4915 Impact factor: 5.048
Figure 1Genetic compatibility between Egyptian H5N1- and H9N2-viruses. The six internal-proteins encoding segments of LPAIV H9N2EGY, were placed individually and in combination, into the genetic background of HPAIV H5N1EGY. The gene segments from H5N1EGY and H9N2EGY are colored in grey and red, respectively. The six internal-proteins encoding segments from H7N9Anhui (control) are colored in green. All genetic constellations used in this study were transfected to co-culture of 293T/MDCK-II cells and the rescued wild-type, reassortant and mutant viruses were propagated on embryonated SPF eggs. All genetic combinations were compatible showing variable hemagglutination unit (HAU) and focus forming unit (FFU) titers.
Site directed mutagenesis primers.
| Mutant Virus | Mutation | Primer Name | Mutagenesis Primer Sequence |
|---|---|---|---|
| H5N1PA_R367K | R367K | PA-367F | 5’-GAAAAAAACGAGCCAGTTAAAGTGGGCACTCGGTGAGAACATG-3’ |
| PA-367R | 5’-CATGTTCTCACCGAGTGCCCACTTTAACTGGCTCGTTTTTTTC-3’ | ||
| H5N1PA-H9N2EGY_K367R | K367R | PA-K367R-H9EGY-F | 5’-GAAGAAAACAAGCCAATTAAGATGGGCACTCGGTGAGAATATG-3’ |
| PA-K367R-H9EGY-R | 5’-CATATTCTCACCGAGTGCCCATCTTAATTGGCTTGTTTTCTTC-3’ |
Figure 2Replication efficiency of the H5N1EGY reassortants. Mammalian Madin-Darby canine kidney (MDCK-II) cells were infected (in triplicate) with H5N1EGY reassortants expressing internal proteins-encoding H9N2EGY genes or with the wild-type H5N1EGY or the control H5N16H7N9Anhui virus at MOI of 0.01, cultured at 37 °C for single replication cycle (8 h) and multiple replication cycles (24 h) p.i. Subsequently the virus titers were determined. Error bars reflect standard deviation (SD) of three independent experiments. Statistical analysis was performed using repeated measures ANOVA, followed by Bonferroni post hoc test. The significant differences are indicated (** = p < 0.01, *** = p < 0.001 and non-significant = ns).
Figure 3In vitro polymerase activity in human 293T cells. 293T cells were transfected with plasmids expressing the three subunits (PB2, PB1, and PA) of the viral RNA-dependent RNA polymerase (RdRp) and the viral nucleoprotein (NP) of H5N1EGY, H9N2EGY, H7N9Anhui or combinations of H5N1EGY RdRp subunits with single RdRp subunits of H9N2EGY. Along with the three RdRp subunits and NP expressing plasmids, a vector expressing a vRNA-like Pol-1 transcript encoding the reporter GFP gene was co-transfected. At 48 h p.t., the control and the transfected cells were analyzed for percentage of GFP positive cells. The significance was tested using one-way ANOVA, followed by Dunnett’s multiple comparison post hoc test and the significant differences are indicated (* = p < 0.05, *** = p < 0.001 and non-significant = ns).
Figure 4Replication kinetics of H5N1EGY reassortants in mammalian cell culture models. Calu-3 and A549 cells were infected (in triplicates) with the H5N1EGY reassortants or wild-type H5N1EGY and control H5N16H7N9Anhui at multiplicities of infection (MOIs) of 0.001 and incubated at 33 °C or 39 °C. At 6, 12, 24, 36 h p.i., the cell culture supernatants were collected and the virus titre was determined. Statistical analysis was performed using two-way ANOVA, followed by Bonferroni post hoc test. The significant differences are indicated (* = p < 0.05, ** = p < 0.01, *** = p < 0.001 and non-significant = ns).
Figure 5Pathogenicity of H5N1EGY and reassortants H5N1PB2-H9N2EGY and H5N1PA-H9N2EGY in female BALB/c mice. Mice were infected with 105 PFU of each virus in 100 μL phosphate-buffered saline (PBS). The morbidity rate and the mortality rate as demonstrated by weight loss of body (a) and the survival rate (b), respectively, were monitored for 14 dpi. Mice judged moribund (body weight loss >25%) were euthanized.
Amino acid differences between PB2 and PA proteins from H5N1EGY and H9N2EGY.
| Amino Acid (aa) Residue | PB2 | Amino Acid (aa) Residue | PA | ||
|---|---|---|---|---|---|
| H5N1EGY | H9N2EGY | H5N1EGY | H9N2EGY | ||
| 6 | E | G | 38 | I | V |
| 64 | I | M | 58 | S | G |
| 66 | I | M | 94 | V | I |
| 80 | R | K | 101 | E | D |
| 106 | A | T | 129 | T | I |
| 129 | N | T | 184 | A | V |
| 147 | T | I | 204 | K | R |
| 197 | R | K | 212 | L | R |
| 249 | K | E | 269 | K | R |
| 292 | M | I | 287 | S | A |
| 315 | I | M | 321 | G | N |
| 339 | T | K | 323 | V | A |
| 368 | Q | R | 337 | T | A |
| 369 | K | R | 342 | M | L |
| 377 | S | A | 351 | D | E |
| 390 | N | D | 367 | R | K |
| 393 | T | S | 382 | E | D |
| 451 | T | V | 388 | R | S |
| 498 | H | Q | 391 | K | R |
| 521 | T | A | 396 | D | G |
| 529 | V | I | 400 | T | S |
| 570 | I | M | 437 | H | Y |
| 591 | Q | K | 448 | E | A |
| 627 | K | E | 450 | A | V |
| 649 | I | V | 539 | K | R |
| 661 | T | A | 554 | V | I |
| 615 | R | K | |||
| 626 | R | K | |||
| 653 | S | P | |||
| 669 | V | I | |||
| 706 | L | F | |||
| 712 | A | I | |||
| 716 | N | K | |||
Figure 6Prevalence of lysine and argenine at amino acid (aa) residue 367 among Egyptian human and avian H5N1 isolates (2006 to 2017). The graphic was created via Web-based WebLogo application (http://weblogo.threeplusone.com/create.cgi) [29]. The aa color is given according to their chemical properties. Polar aa “T and S”: green; neutral aa “Q”: purple; basic aa “K and R”: blue; hydrophobic aa “M, L, W, A and L”: black.
Figure 7Impact of PA-367K on the replication efficiency of H5N1EGY in mammalian cell culture models. (a) mammalian differentiated primary bronchial epithelial cells (NHBE) cells were infected (in triplicates) with wild-type H5N1EGY, reassortant H5N1PA-H9N2EGY, as well as mutant H5N1PA_R367K and H5N1PA-H9N2EGY_K367R at MOI of 1, cultured at 37 °C for 6–36 h p.i. (b) A549 and (c) Calu-3 were infected with wild-type H5N1EGY and mutant H5N1PA_R367K (MOI = 0.01) and cultured at 33 °C and 39 °C for 6–36 h p.i. Subsequently the virus titers were determined. Error bars reflect standard deviation (SD) of three independent experiments. Statistical analysis was performed using repeated measures ANOVA, followed by Bonferroni post hoc test. The significant differences are indicated (* = p < 0.05, ** = p < 0.01, *** = p < 0.001 and non-significant = ns).
Figure 8PA-367K does not significantly alter the in vitro polymerase activity of H5N1EGY in human 293T cells. The 293T cells were transfected with plasmids expressing the three subunits (PB2, PB1, PA) of the viral RNA-dependent RNA polymerase (RdRp) and the viral nucleoprotein (NP) of H5N1EGY or H9N2EGY (controls) or combinations of H5N1EGY PB2, PB1 and NP with mutated PA of H5N1EGY (PA_R367K) or of H9N2EGY (PA-H9N2EGY_K367R), as well as wild-type PA of H9N2EGY (PA-H9N2EGY). Along with the three RdRp subunits and NP expressing plasmids, a Renilla luciferase expression plasmid (transfection control) and a vector expressing a vRNA-like Pol-1 transcript encoding the firefly luciferase was co-transfected. At 48 h p.t., the control and transfected cells were analyzed for Renilla/luciferase expression levels. The significance was tested using one-way analysis of variance ANOVA, followed by Dunnett’s multiple comparison post hoc test and the significant differences are indicated (** = p < 0.01 and non-significant = ns).
Figure 9Pathogenicity of wild-type H5N1EGY, H9N2EGY, reassortants H5N1PB2-H9N2EGY and H5N1PA-H9N2EGY, mutants H5N1PA_R367K and H5N1PA-H9N2EGY_K367R in female BALB/c mice. Mice were infected with 103 PFU of each virus in 30 μL PBS. (a) The body-weight reduction rate and the mortality rate as demonstrated by weight loss (a) and the survival rate (b), respectively, were monitored for 14 dpi. Mice judged moribund (body weight loss > 25%) were euthanized.
Predominance of the distinct aa residues [28,37,38] in the studied polymerase acidic (PA) and polymerase basic 2 (PB2) proteins in Egyptian avian versus Egyptian human H5N1 isolates.
| Distinct Amino Acid (aa) Residues | ||||||
|---|---|---|---|---|---|---|
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| PAH9N2EGY | N | L | E | K | S | F |
| PAH5N1EGY | G | M | D | R | S | L |
| PAH7N9Anhui (Human isolate) | N | L | E | K | S | F |
| PAH5N1EGY (Human isolates 2006–2013) | S | L | E | R | S | F |
| PAH5N1EGY (Avian isolates 2006–2013) | N | L | E | R | S | F |
| PAH5N1EGY (Human isolates 2014–2017) | G | M | D | K | S | L |
| PAH5N1EGY (Avian isolates 2014–2017) | N | L | E | R | Y | F |
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| PB2H9N2EGY | K | E | D | |||
| PB2H5N1EGY | Q | K | D | |||
| PB2H7N9Anhui (Human isolate) | S | K | R | |||
| PB2H5N1EGY (Human isolates 2006–2013) | Q | K | D | |||
| PB2H5N1EGY (Avian isolates 2006–2013) | Q | K | D | |||
| PB2H5N1EGY (Human isolates 2014–2017) | Q | K | D | |||
| PB2H5N1EGY (Avian isolates 2014–2017) | Q | K | D | |||