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Coding constraints imposed by the very small genome sizes of negative-strand RNA viruses (NSVs) have led to the development of numerous strategies that increase viral protein diversity, enabling the virus to both establish a productive viral replication cycle and effectively control the host antiviral response. Arenaviruses are no exception to this, and previous findings have demonstrated that the nucleoprotein (NP) of the highly pathogenic Junín virus (JUNV) exists as three additional N-terminally truncated isoforms of 53 kD (NP53kD), 47 kD (NP47kD), and 40 kD (NP40kD). The two smaller isoforms (i.e. NP47kD and NP40kD) have been characterized as products of caspase cleavage, which appears to serve a decoy function to inhibit apoptosis induction. However, whether they have additional functions in the viral replication cycle remains unknown. Further, the origin and function of NP53kD has not yet been described.
In order to first identify the mechanism responsible for production of the NP53kD variant, a possible role of additional caspase cleavage sites was first excluded using a site mutagenesis approach. Subsequently, alanine mutagenesis was then used to identify a region responsible for NP53kD production. As a result, three methionine residues were identified within the characterized sequence segment of NP, linking the production of NP53kD to an alternative in-frame translation initiation. Further site-directed mutagenesis of the previously identified putative in-frame methionine codons (i.e. M78, M80 and M100) finally led to the identification of translation initiation at M80 as being predominantly responsible for the production of NP53kD. Once the identity of all three NP isoforms was known, it was then of further interest to more deeply characterize their functional roles. Consistent with the N-terminal domain containing RNA binding and homotrimerization motifs that are relevant for the viral RNA synthesis process, it could be demonstrated that all three truncated NP isoforms lost the ability to support viral RNA synthesis in a minigenome assay. However, they also did not interfere with viral RNA synthesis by full-length NP, nor did they affect the ability of the matrix protein Z to inhibit viral RNA synthesis. Moreover, it was observed that loss of the oligomerization motifs in the N-terminus also affected the subcellular localization of all three NP isoforms, which were no longer localized in discrete perinuclear inclusion bodies, but rather showed a diffuse distribution throughout the cytoplasm, with the smallest isoform NP40kD also being able to enter the nucleus. Surprisingly, the 3'-5' exonuclease function of NP, which is associated with the C-terminal domain and plays a role in inhibiting interferon induction by digestion of double-stranded RNAs, was found to be retained only by the NP40kD isoform, despite that all three isoforms retained the associated domain. Finally, previous studies using transfected NP and chemical induction of apoptosis have suggested that cleavage of NP at the caspase motifs responsible for generating NP47kD and NP40kD plays a role in controlling activation of the apoptosis pathway. Therefore, to further characterize the connection between the generation of NP isoforms and the regulation of apoptosis in a viral context, recombinant JUNVs deficient in the respective isoforms were generated. Unlike infections with wild-type JUNV, mutations of the caspase cleavage sites resulted in the induction of caspases activation. Surprisingly, however, this was also the case for mutation of the alternate start codon responsible for NP53kD generation.
Taken together, the data from this study suggest a model whereby JUNV generates a pool of smaller NP isoforms with a predominantly cytoplasmic distribution. As a result of this altered localization, NP53kD appears to be able to serve as the substrate for further generation of NP47kD and NP40kD by caspase cleavage. Not only does this cleavage inhibit apoptosis induction during JUNV infection, it also results in a cytoplasmic isoform of NP that retains strong 3'-5' exonuclease activity (i.e. NP40kD) and thus may play an important role in preventing viral double-stranded RNA accumulation in the cytoplasm, where it can lead to activation of IFN signaling. Overall, such results emphasize the relevance of alternative protein isoforms in virus biology, and particularly in regulation of the host response to infection.
LPAIV H9N2 and HPAIV H5N8 clade 2.3.4.4 viruses have been frequently isolated from domestic and wild birds in Germany and they are endemic in poultry worldwide. H9N2 is known to donate gene segments to other AIV with high case fatality rate in humans (e.g. H5N1, H7N9). Similarly, H5N8 devastated poultry worldwide since 2014 and has been recently isolated from humans. Therefore, it is important to understand the genetic predisposition for adaptation of H9N2 and H5N8 AIV in poultry and mammals. In the first publication, we focused on the variable hemagglutinin cleavage site (HACS) of European and Non-European H9N2 viruses, since the HACS is a main virulence determinant of AIV in birds. We found a preferential substitution of non-basic amino acids (G, A, N, S, D, K) in the HACS at position 319 of European H9N2 viruses compared to non-European H9N2 viruses. Recombinant viruses carrying different non-basic amino acids in the HACS modulated replication in vitro. While these non-basic amino acids did not affect virulence or transmission in chickens, they modulated virulence and replication in turkeys. Moreover, H9N2 viruses with non-basic amino acids in the HACS were able to replicate in mammalian brain cells for multiple cycles even without trypsin. In the second publication, we addressed the question whether reassortment between two recent German H9N2 and H5N8 clade 2.3.4.4. B viruses is possible and analysed the impact on virus fitness in mammals and birds. We found that H9N2 PB1 and NP segments were not compatible to generate infectious H5N8 viruses and this incompatibility was due to mutations outside the packaging region. However, H9N2 NS alone or in combination with PB2 and PA significantly increased replication of H5N8 in human cells. Moreover, H9N2 PB2, PA and/or NS segments increased virulence of H5N8 in mice. Interestingly, in chickens, reassortment with H9N2 gene segments, particularly NS, partially or fully impaired chicken-to-chicken transmission. These results indicate that the evolution of H9N2/H5N8 reassortants showing high virulence for mammals is unlikely to occur in chickens. In the third publication, we focused on the NS1 protein of different HPAIV H5N8 clade 2.3.4.4 viruses from 2013 to 2019 and studied the impact of its C-terminus (CTE) variation on virus fitness in chickens and ducks. Our findings revealed a preferential selection for a certain NS1 CTE length in 2.3.4.4. H5N8 clade A (237 aa) and B (217 aa) viruses over the common length of 230 aa. Indeed, the NS1 CTE can affect virus virulence and pathogenesis in a species and virus clade dependent manner. In chickens, although there was no impact on virulence, NS1 CTE of H5N8-A and H5N8-B, regardless of the length, have evolved towards higher efficiency to block the IFN response. In ducks, NS1 CTE contributed to efficient transmission, replication and high virulence of H5N8-B. In the fourth publication, we assessed the impact of variable length of NS1 on H5N8 virus replication in human cells and virulence in mice. We showed that NS1 of H5N8-B virus unlike the vast majority of NS1 of AIV, shared preferences for short NS1 similar to human and zoonotic influenza viruses. This virus (i) was able to efficiently block IFN and apoptosis induction which might be the first steps for efficient adaptation to human cells and (ii) without prior adaptation replicated at higher levels and was more virulent in mice than H5N8-A. The virulence of the latter virus increased after shortening the NS1 similar to H5N8-B virus. Therefore, it is conceivable that truncation in NS1 is a determinant for adaptation of H5N8 in mammals irrespective of its impact on virus fitness in poultry. Findings in this dissertation indicated that HA mutations in the European H9N2 and NS1 variations in H5N8 viruses play a role in virus fitness in poultry and/or mammals. These results improve our current understanding for AIV adaptation and are useful to assess the potential of these viruses to infect mammals.