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1.
Emerg Microbes Infect ; 13(1): 2380421, 2024 Dec.
Article in English | MEDLINE | ID: mdl-39008278

ABSTRACT

In March 2024, the emergence of highly pathogenic avian influenza (HPAI) A (H5N1) infections in dairy cattle was detected in the United Sates for the first time. We genetically characterize HPAI viruses from dairy cattle showing an abrupt drop in milk production, as well as from two cats, six wild birds, and one skunk. They share nearly identical genome sequences, forming a new genotype B3.13 within the 2.3.4.4b clade. B3.13 viruses underwent two reassortment events since 2023 and exhibit critical mutations in HA, M1, and NS genes but lack critical mutations in PB2 and PB1 genes, which enhance virulence or adaptation to mammals. The PB2 E627 K mutation in a human case associated with cattle underscores the potential for rapid evolution post infection, highlighting the need for continued surveillance to monitor public health threats.


Subject(s)
Genome, Viral , Influenza A Virus, H5N1 Subtype , Phylogeny , Animals , Cattle , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/isolation & purification , Influenza A Virus, H5N1 Subtype/classification , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/veterinary , Cattle Diseases/virology , Influenza in Birds/virology , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reassortant Viruses/isolation & purification , Reassortant Viruses/pathogenicity , Humans , Birds/virology , Genotype , Viral Proteins/genetics , Mutation
2.
Emerg Microbes Infect ; 13(1): 2368202, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38970562

ABSTRACT

Influenza A viruses (IAV) impose significant respiratory disease burdens in both swine and humans worldwide, with frequent human-to-swine transmission driving viral evolution in pigs and highlighting the risk at the animal-human interface. Therefore, a comprehensive One Health approach (interconnection among human, animal, and environmental health) is needed for IAV prevention, control, and response. Animal influenza genomic surveillance remains limited in many Latin American countries, including Colombia. To address this gap, we genetically characterized 170 swine specimens from Colombia (2011-2017). Whole genome sequencing revealed a predominance of pandemic-like H1N1 lineage, with a minority belonging to H3N2 and H1N2 human seasonal-like lineage and H1N1 early classical swine lineages. Significantly, we have identified reassortant and recombinant viruses (H3N2, H1N1) not previously reported in Colombia. This suggests a broad genotypic viral diversity, likely resulting from reassortment between classical endemic viruses and new introductions established in Colombia's swine population (e.g. the 2009 H1N1 pandemic). Our study highlights the importance of a One Health approach in disease control, particularly in an ecosystem where humans are a main source of IAV to swine populations, and emphasizes the need for continued surveillance and enhanced biosecurity measures. The co-circulation of multiple subtypes in regions with high swine density facilitates viral exchange, underscoring the importance of monitoring viral evolution to inform vaccine selection and public health policies locally and globally.


Subject(s)
Evolution, Molecular , Genetic Variation , Influenza A Virus, H1N1 Subtype , Influenza A Virus, H3N2 Subtype , Orthomyxoviridae Infections , Phylogeny , Swine Diseases , Animals , Swine , Colombia/epidemiology , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/veterinary , Orthomyxoviridae Infections/epidemiology , Swine Diseases/virology , Swine Diseases/epidemiology , Influenza A Virus, H3N2 Subtype/genetics , Influenza A Virus, H3N2 Subtype/classification , Influenza A Virus, H3N2 Subtype/isolation & purification , Influenza A Virus, H1N1 Subtype/genetics , Influenza A Virus, H1N1 Subtype/classification , Influenza A Virus, H1N1 Subtype/isolation & purification , One Health , Humans , Influenza A virus/genetics , Influenza A virus/classification , Influenza A virus/isolation & purification , Whole Genome Sequencing , Genome, Viral , Epidemiological Monitoring , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reassortant Viruses/isolation & purification , Influenza A Virus, H1N2 Subtype/genetics , Influenza A Virus, H1N2 Subtype/isolation & purification , Influenza A Virus, H1N2 Subtype/classification , Influenza, Human/virology , Influenza, Human/epidemiology
3.
J Gen Virol ; 105(7)2024 Jul.
Article in English | MEDLINE | ID: mdl-38975739

ABSTRACT

The 2020/2021 epidemic in Europe of highly pathogenic avian influenza virus (HPAIV) of subtype H5 surpassed all previously recorded European outbreaks in size, genotype constellations and reassortment frequency and continued into 2022 and 2023. The causative 2.3.4.4b viral lineage proved to be highly proficient with respect to reassortment with cocirculating low pathogenic avian influenza viruses and seems to establish an endemic status in northern Europe. A specific HPAIV reassortant of the subtype H5N3 was detected almost exclusively in red knots (Calidris canutus islandica) in December 2020. It caused systemic and rapidly fatal disease leading to a singular and self-limiting mass mortality affecting about 3500 birds in the German Wadden Sea, roughly 1 % of the entire flyway population of islandica red knots. Phylogenetic analyses revealed that the H5N3 reassortant very likely had formed in red knots and remained confined to this species. While mechanisms of virus circulation in potential reservoir species, dynamics of spill-over and reassortment events and the roles of environmental virus sources remain to be identified, the year-round infection pressure poses severe threats to endangered avian species and prompts adaptation of habitat and species conservation practices.


Subject(s)
Influenza A virus , Influenza in Birds , Phylogeny , Reassortant Viruses , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Europe/epidemiology , Influenza A virus/genetics , Influenza A virus/classification , Influenza A virus/pathogenicity , Reassortant Viruses/genetics , Disease Outbreaks/veterinary , Charadriiformes/virology , Birds/virology
4.
Genes (Basel) ; 15(7)2024 Jun 27.
Article in English | MEDLINE | ID: mdl-39062628

ABSTRACT

Swine influenza viruses (SIVs) have been circulating in swine globally and are potential threats to human health. During the surveillance of SIVs in Shandong Province, China, from 2019 to 2022, 21 reassortant G4 genotype Eurasian avian-like (EA) H1N1 subtypes containing genes from the EA H1N1 (HA and NA), 2009 pandemic (pdm/09) H1N1 virus (PB2, PB1, PA, NP, and M), and classical swine (CS) H1N1 (NS) lineages were isolated. The analysis of the key functional amino acid sites in the isolated viruses showed that two mutation sites (190D and 225E) that preferentially bind to the human α2-6 sialic acid receptor were found in HA. In PB2, three mutation sites (271A, 590S, and 591R) that may increase mammalian fitness and a mutation site (431M) that increases pathogenicity in mice were found. A typical human signature marker that may promote infection in humans, 357K, was found in NP. The viruses could replicate efficiently in mouse lungs and turbinates, and one of the H1N1 isolates could replicate in mouse kidneys and brains without prior adaption, which indicates that the viruses potentially pose a threat to human health. Histopathological results showed that the isolated viruses caused typical bronchopneumonia and encephalitis in mice. The results indicate that G4 genotype H1N1 has potential transmissibility to humans, and surveillance should be enhanced, which could provide important information for assessing the pandemic potential of the viruses.


Subject(s)
Genotype , Influenza A Virus, H1N1 Subtype , Orthomyxoviridae Infections , Animals , Swine , Influenza A Virus, H1N1 Subtype/genetics , Influenza A Virus, H1N1 Subtype/pathogenicity , Influenza A Virus, H1N1 Subtype/isolation & purification , China/epidemiology , Mice , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/pathology , Humans , Swine Diseases/virology , Swine Diseases/epidemiology , Swine Diseases/pathology , Phylogeny , Influenza, Human/virology , Influenza, Human/epidemiology , Reassortant Viruses/genetics , Reassortant Viruses/pathogenicity , Reassortant Viruses/isolation & purification , Madin Darby Canine Kidney Cells , Mutation , Virus Replication/genetics , Viral Proteins/genetics
5.
Emerg Infect Dis ; 30(8): 1672-1676, 2024 Aug.
Article in English | MEDLINE | ID: mdl-39043445

ABSTRACT

Influenza D virus was isolated from pigs on a mixed pig and beef farm in France. Investigation suggested bull-to-pig transmission and spread among pigs. The swine influenza D virus recovered was a reassortant of D/660 and D/OK lineages. Reported mutations in the receptor binding site might be related to swine host adaptation.


Subject(s)
Farms , Orthomyxoviridae Infections , Phylogeny , Reassortant Viruses , Swine Diseases , Thogotovirus , Animals , Swine , Reassortant Viruses/genetics , France/epidemiology , Orthomyxoviridae Infections/virology , Orthomyxoviridae Infections/veterinary , Swine Diseases/virology , Cattle , Thogotovirus/genetics , Thogotovirus/classification , Thogotovirus/isolation & purification , Deltainfluenzavirus
6.
Emerg Infect Dis ; 30(8): 1737-1739, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38986148

ABSTRACT

Several subtypes and many different genotypes of highly pathogenic avian influenza viruses of subtype H5 clade 2.3.4.4b have repeatedly caused outbreaks in Germany. Four new highly pathogenic avian influenza genotypes emerged in November 2023 after reassortment with low pathogenicity precursors, replacing genotype BB, which had dominated in Europe since 2022.


Subject(s)
Genotype , Influenza A Virus, H5N1 Subtype , Influenza in Birds , Phylogeny , Germany/epidemiology , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/pathogenicity , Influenza A Virus, H5N1 Subtype/classification , Reassortant Viruses/genetics , Disease Outbreaks , History, 21st Century , Birds/virology , Humans
7.
Virology ; 597: 110129, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38908046

ABSTRACT

Group A rotaviruses (RVAs) are major causes of severe gastroenteritis in infants and young animals. To enhance our understanding of the relationship between human and animals RVAs, complete genome data are necessary. We screened 92 intestinal and stool samples from diarrheic piglets by RT‒PCR targeting the VP6 gene, revealing a prevalence of 10.9%. RVA was confirmed in two out of 5 calf samples. We successfully isolated two porcine samples using MA104 cell line. The full-length genetic constellation of the two isolates were determined to be G9-P[23]-I5-R1-C1-M1-A8-N1-T7-E1-H1, with close similarity to human Wa-like and porcine strains. Sequence analysis revealed the majority of genes were closely related to porcine and human RVAs. Phylogenetic analysis revealed that these isolates might have their ancestral origin from pigs, although some of their gene segments were related to human strains. This study reveals evidence of reassortment and possible interspecies transmission between pigs and humans in China.


Subject(s)
Genome, Viral , Phylogeny , Rotavirus Infections , Rotavirus , Swine Diseases , Animals , Rotavirus/genetics , Rotavirus/isolation & purification , Rotavirus/classification , Swine , Rotavirus Infections/virology , Rotavirus Infections/veterinary , Rotavirus Infections/transmission , Rotavirus Infections/epidemiology , Humans , China/epidemiology , Swine Diseases/virology , Swine Diseases/transmission , Swine Diseases/epidemiology , Cattle , Feces/virology , Whole Genome Sequencing , Genotype , Diarrhea/virology , Diarrhea/veterinary , Diarrhea/epidemiology , Cell Line , Reassortant Viruses/genetics , Reassortant Viruses/isolation & purification , Reassortant Viruses/classification
8.
Virology ; 597: 110121, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38917688

ABSTRACT

The H7 subtype avian influenza viruses are circulating widely worldwide, causing significant economic losses to the poultry industry and posing a serious threat to human health. In 2019, H7N2 and H7N9 co-circulated in Chinese poultry, yet the risk of H7N2 remained unclear. We isolated and sequenced four H7N2 viruses from chickens, revealing them as novel reassortants with H7N9-derived HA, M, NS genes and H9N2-derived PB2, PB1, PA,NP, NA genes. To further explore the key segment of pathogenicity, H7N2-H7N9NA and H7N2-H9N2HA single-substitution were constructed. Pathogenicity study showed H7N2 isolates to be highly pathogenic in chickens, with H7N2-H7N9NA slightly weaker than H7N2-Wild type. Transcriptomic analysis suggested that H7N9-derived HA genes primarily drove the high pathogenicity of H7N2 isolates, eliciting a strong inflammatory response. These findings underscored the increased threat posed by reassorted H7N2 viruses to chickens, emphasizing the necessity of long-term monitoring of H7 subtype avian influenza viruses.


Subject(s)
Chickens , Influenza A Virus, H7N2 Subtype , Influenza A Virus, H7N9 Subtype , Influenza in Birds , Reassortant Viruses , Animals , Chickens/virology , Influenza in Birds/virology , Influenza in Birds/transmission , Influenza A Virus, H7N9 Subtype/genetics , Influenza A Virus, H7N9 Subtype/pathogenicity , Influenza A Virus, H7N9 Subtype/isolation & purification , Reassortant Viruses/pathogenicity , Reassortant Viruses/genetics , Influenza A Virus, H7N2 Subtype/pathogenicity , Influenza A Virus, H7N2 Subtype/genetics , Poultry Diseases/virology , Poultry Diseases/transmission , Virulence , Phylogeny , Influenza A Virus, H9N2 Subtype/genetics , Influenza A Virus, H9N2 Subtype/pathogenicity , Influenza A Virus, H9N2 Subtype/physiology , China
9.
Viruses ; 16(6)2024 May 30.
Article in English | MEDLINE | ID: mdl-38932172

ABSTRACT

Rift Valley fever (RVF) in ungulates and humans is caused by a mosquito-borne RVF phlebovirus (RVFV). Live attenuated vaccines are used in livestock (sheep and cattle) to control RVF in endemic regions during outbreaks. The ability of two or more different RVFV strains to reassort when co-infecting a host cell is a significant veterinary and public health concern due to the potential emergence of newly reassorted viruses, since reassortment of RVFVs has been documented in nature and in experimental infection studies. Due to the very limited information regarding the frequency and dynamics of RVFV reassortment, we evaluated the efficiency of RVFV reassortment in sheep, a natural host for this zoonotic pathogen. Co-infection experiments were performed, first in vitro in sheep-derived cells, and subsequently in vivo in sheep. Two RVFV co-infection groups were evaluated: group I consisted of co-infection with two wild-type (WT) RVFV strains, Kenya 128B-15 (Ken06) and Saudi Arabia SA01-1322 (SA01), while group II consisted of co-infection with the live attenuated virus (LAV) vaccine strain MP-12 and a WT strain, Ken06. In the in vitro experiments, the virus supernatants were collected 24 h post-infection. In the in vivo experiments, clinical signs were monitored, and blood and tissues were collected at various time points up to nine days post-challenge for analyses. Cell culture supernatants and samples from sheep were processed, and plaque-isolated viruses were genotyped to determine reassortment frequency. Our results show that RVFV reassortment is more efficient in co-infected sheep-derived cells compared to co-infected sheep. In vitro, the reassortment frequencies reached 37.9% for the group I co-infected cells and 25.4% for the group II co-infected cells. In contrast, we detected just 1.7% reassortant viruses from group I sheep co-infected with the two WT strains, while no reassortants were detected from group II sheep co-infected with the WT and LAV strains. The results indicate that RVFV reassortment occurs at a lower frequency in vivo in sheep when compared to in vitro conditions in sheep-derived cells. Further studies are needed to better understand the implications of RVFV reassortment in relation to virulence and transmission dynamics in the host and the vector. The knowledge learned from these studies on reassortment is important for understanding the dynamics of RVFV evolution.


Subject(s)
Reassortant Viruses , Rift Valley Fever , Rift Valley fever virus , Sheep Diseases , Animals , Sheep , Rift Valley fever virus/genetics , Rift Valley Fever/virology , Reassortant Viruses/genetics , Sheep Diseases/virology , Coinfection/virology , Coinfection/veterinary , Vaccines, Attenuated/genetics , Viral Vaccines/immunology , Viral Vaccines/genetics , Antibodies, Viral/blood
10.
Viruses ; 16(6)2024 Jun 08.
Article in English | MEDLINE | ID: mdl-38932226

ABSTRACT

Rotaviruses (RVs) are known to infect various avian and mammalian hosts, including swine. The most common RVs associated with infection in pigs are A, B, C and H (RVA-C; RVH). In this study we analysed rotavirus strains circulating on a porcine farm in the Western Cape province of South Africa over a two-year period. Whole genomes were determined by sequencing using Illumina MiSeq without prior genome amplification. Fifteen RVA genomes, one RVB genome and a partial RVC genome were identified. Phylogenetic analyses of the RVA data suggested circulation of one dominant strain (G5-P[6]/P[13]/P[23]-I5-R1-C1-M1-A8-N1-T7-E1-H1), typical of South African porcine strains, although not closely related to previously detected South African porcine strains. Reassortment with three VP4-encoding P genotypes was detected. The study also reports the first complete RVB genome (G14-P[5]-I13-R4-C4-M4-A10-T4-E4-H7) from Africa. The partial RVC (G6-P[5]-IX-R1-C1-MX-A9-N6-T6-EX-H7) strain also grouped with porcine strains. The study shows the continued circulation of an RVA strain, with a high reassortment rate of the VP4-encoding segment, on the porcine farm. Furthermore, incidents of RVB and RVC on this farm emphasize the complex epidemiology of rotavirus in pigs.


Subject(s)
Farms , Genome, Viral , Genotype , Phylogeny , Rotavirus Infections , Rotavirus , Swine Diseases , Animals , Rotavirus/genetics , Rotavirus/classification , Rotavirus/isolation & purification , Swine , South Africa/epidemiology , Rotavirus Infections/virology , Rotavirus Infections/veterinary , Rotavirus Infections/epidemiology , Swine Diseases/virology , Swine Diseases/epidemiology , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reassortant Viruses/isolation & purification , Whole Genome Sequencing , Feces/virology
11.
Viruses ; 16(6)2024 Jun 19.
Article in English | MEDLINE | ID: mdl-38932274

ABSTRACT

We identified a child coinfected with influenza B viruses of B/Yamagata and B/Victoria lineages, in whom we analyzed the occurrence of genetic reassortment. Plaque purification was performed using a throat swab specimen from a 9-year-old child, resulting in 34 well-isolated plaques. The genomic composition of eight gene segments (HA, NA, PB1, PB2, PA, NP, M, and NS genes) for each plaque was determined at the lineage level. Of the 34 plaques, 21 (61.8%) had B/Phuket/3073/2013 (B/Yamagata)-like sequences in all gene segments, while the other 13 (38.2%) were reassortants with B/Texas/02/2013 (B/Victoria)-like sequences in 1-5 of the 8 segments. The PB1 segment had the most B/Victoria lineage genes (23.5%; 8 of 34 plaques), while PB2 and PA had the least (2.9%; 1 of 34 plaques). Reassortants with B/Victoria lineage genes in 2-5 segments showed the same level of growth as viruses with B/Yamagata lineage genes in all segments. However, reassortants with B/Victoria lineage genes only in the NA, PB1, NP, or NS segments exhibited reduced or undetectable growth. We demonstrated that various gene reassortments occurred in a child. These results suggest that simultaneous outbreaks of two influenza B virus lineages increase genetic diversity and could promote the emergence of new epidemic strains.


Subject(s)
Coinfection , Influenza B virus , Influenza, Human , Phylogeny , Reassortant Viruses , Reassortant Viruses/genetics , Reassortant Viruses/isolation & purification , Reassortant Viruses/classification , Influenza B virus/genetics , Influenza B virus/isolation & purification , Influenza B virus/classification , Humans , Child , Influenza, Human/virology , Coinfection/virology , Genome, Viral , Male , Viral Proteins/genetics
12.
Emerg Infect Dis ; 30(6): 1285-1288, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38703022

ABSTRACT

We isolated novel reassortant avian influenza A(H5N6) viruses containing genes from clade 2.3.4.4b H5N1 virus and low pathogenicity avian influenza viruses in carcasses of whooper swans and bean geese in South Korea during December 2023. Neuraminidase gene was from a clade 2.3.4.4b H5N6 virus infecting poultry and humans in China.


Subject(s)
Animals, Wild , Birds , Influenza A virus , Influenza in Birds , Phylogeny , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Republic of Korea/epidemiology , Animals, Wild/virology , Influenza A virus/genetics , Influenza A virus/classification , Birds/virology , Reassortant Viruses/genetics , History, 21st Century , Humans , Neuraminidase/genetics
13.
Virus Genes ; 60(3): 320-324, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38722491

ABSTRACT

H6 avian influenza virus is widely prevalent in wild birds and poultry and has caused human infection in 2013 in Taiwan, China. During our active influenza surveillance program in wild waterfowl at Poyang Lake, Jiangxi Province, an H6N2 AIV was isolated and named A/bean goose/JiangXi/452-4/2013(H6N2). The isolate was characterized as a typical low pathogenic avian influenza virus (LPAIV) due to the presence of the amino acid sequence PQIETR↓GLFGAI at the cleavage site of the hemagglutinin (HA) protein. The genetic evolution analysis revealed that the NA gene of the isolate originated from North America and exhibited the highest nucleotide identity (99.29%) with a virus recovered from wild bird samples in North America, specifically A/bufflehead/California/4935/2012(H11N2). Additionally, while the HA and PB1 genes belonged to the Eurasian lineage, they displayed frequent genetic interactions with the North American lineage. The remaining genes showed close genetic relationships with Eurasian viruses. The H6N2 isolate possessed a complex genome, indicating it is a multi-gene recombinant virus with genetic material from both Eurasian and North American lineages.


Subject(s)
Animals, Wild , Influenza A virus , Influenza in Birds , Phylogeny , Reassortant Viruses , Animals , China , Reassortant Viruses/genetics , Reassortant Viruses/isolation & purification , Reassortant Viruses/classification , Influenza in Birds/virology , Animals, Wild/virology , Influenza A virus/genetics , Influenza A virus/isolation & purification , Influenza A virus/classification , Hemagglutinin Glycoproteins, Influenza Virus/genetics , Birds/virology , Evolution, Molecular , Genome, Viral/genetics , Neuraminidase/genetics , Viral Proteins/genetics
14.
PLoS One ; 19(5): e0300862, 2024.
Article in English | MEDLINE | ID: mdl-38739614

ABSTRACT

Influenza A viruses of the H2 subtype represent a zoonotic and pandemic threat to humans due to a lack of widespread specific immunity. Although A(H2) viruses that circulate in wild bird reservoirs are distinct from the 1957 pandemic A(H2N2) viruses, there is concern that they could impact animal and public health. There is limited information on AIVs in Latin America, and next to nothing about H2 subtypes in Brazil. In the present study, we report the occurrence and genomic sequences of two influenza A viruses isolated from wild-caught white-rumped sandpipers (Calidris fuscicollis). One virus, identified as A(H2N1), was isolated from a bird captured in Restinga de Jurubatiba National Park (PNRJ, Rio de Janeiro), while the other, identified as A(H2N2), was isolated from a bird captured in Lagoa do Peixe National Park (PNLP, Rio Grande do Sul). DNA sequencing and phylogenetic analysis of the obtained sequences revealed that each virus belonged to distinct subtypes. Furthermore, the phylogenetic analysis indicated that the genomic sequence of the A(H2N1) virus isolated from PNRJ was most closely related to other A(H2N1) viruses isolated from North American birds. On the other hand, the A(H2N2) virus genome recovered from the PNLP-captured bird exhibited a more diverse origin, with some sequences closely related to viruses from Iceland and North America, and others showing similarity to virus sequences recovered from birds in South America. Viral genes of diverse origins were identified in one of the viruses, indicating local reassortment. This suggests that the extreme South of Brazil may serve as an environment conducive to reassortment between avian influenza virus lineages from North and South America, potentially contributing to an increase in overall viral diversity.


Subject(s)
Charadriiformes , Influenza A virus , Influenza in Birds , Phylogeny , Reassortant Viruses , Animals , Brazil , Influenza in Birds/virology , Influenza in Birds/epidemiology , Influenza A virus/genetics , Influenza A virus/isolation & purification , Reassortant Viruses/genetics , Reassortant Viruses/isolation & purification , Charadriiformes/virology , Genome, Viral , Birds/virology
15.
Mol Biol Evol ; 41(6)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38648521

ABSTRACT

Reassortment is an evolutionary process common in viruses with segmented genomes. These viruses can swap whole genomic segments during cellular co-infection, giving rise to novel progeny formed from the mixture of parental segments. Since large-scale genome rearrangements have the potential to generate new phenotypes, reassortment is important to both evolutionary biology and public health research. However, statistical inference of the pattern of reassortment events from phylogenetic data is exceptionally difficult, potentially involving inference of general graphs in which individual segment trees are embedded. In this paper, we argue that, in general, the number and pattern of reassortment events are not identifiable from segment trees alone, even with theoretically ideal data. We call this fact the fundamental problem of reassortment, which we illustrate using the concept of the "first-infection tree," a potentially counterfactual genealogy that would have been observed in the segment trees had no reassortment occurred. Further, we illustrate four additional problems that can arise logically in the inference of reassortment events and show, using simulated data, that these problems are not rare and can potentially distort our observation of reassortment even in small data sets. Finally, we discuss how existing methods can be augmented or adapted to account for not only the fundamental problem of reassortment, but also the four additional situations that can complicate the inference of reassortment.


Subject(s)
Genome, Viral , Phylogeny , Reassortant Viruses , Reassortant Viruses/genetics , Evolution, Molecular , Models, Genetic
16.
Viruses ; 16(4)2024 04 02.
Article in English | MEDLINE | ID: mdl-38675898

ABSTRACT

Piscine orthoreovirus (PRV) is a pathogen that causes heart and skeletal muscle inflammation in Salmo salar and has also been linked to circulatory disorders in other farmed salmonids, such as Oncorhynchus kisutch and Oncorhynchus mykiss. The virus has a segmented, double-stranded RNA genome, which makes it possible to undergo genetic reassortment and increase its genomic diversity through point mutations. In this study, genetic reassortment in PRV was assessed using the full genome sequences available in public databases. This study used full genome sequences that were concatenated and genome-wide reassortment events, and phylogenetic analyses were performed using the recombination/reassortment detection program version 5 (RDP5 V 5.5) software. Additionally, each segment was aligned codon by codon, and overall mean distance and selection was tested using the Molecular Evolutionary Genetics Analysis X software, version 10.2 (MEGA X version 10.2). The results showed that there were 17 significant reassortment events in 12 reassortant sequences, involving genome exchange between low and highly virulent genotypes. PRV sequences from different salmonid host species did not appear to limit the reassortment. This study found that PRV frequently undergoes reassortment events to increase the diversity of its segmented genome, leading to antigenic variation and increased virulence. This study also noted that to date, no reassortment events have been described between PRV-1 and PRV-3 genotypes. However, the number of complete genomic sequences within each genotype is uneven. This is important because PRV-3 induces cross-protection against PRV-1, making it a potential vaccine candidate.


Subject(s)
Evolution, Molecular , Fish Diseases , Genome, Viral , Orthoreovirus , Phylogeny , Reassortant Viruses , Reoviridae Infections , Selection, Genetic , Orthoreovirus/genetics , Orthoreovirus/classification , Animals , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reoviridae Infections/virology , Reoviridae Infections/veterinary , Fish Diseases/virology , Genotype , Genetic Variation , Oncorhynchus mykiss/virology
17.
Viruses ; 16(4)2024 04 05.
Article in English | MEDLINE | ID: mdl-38675907

ABSTRACT

Rotavirus A (RVA) is the leading cause of diarrhea requiring hospitalization in children and causes over 100,000 annual deaths in Sub-Saharan Africa. In order to generate next-generation vaccines against African RVA genotypes, a reverse genetics system based on a simian rotavirus strain was utilized here to exchange the antigenic capsid proteins VP4, VP7 and VP6 with those of African human rotavirus field strains. One VP4/VP7/VP6 (genotypes G9-P[6]-I2) triple-reassortant was successfully rescued, but it replicated poorly in the first cell culture passages. However, the viral titer was enhanced upon further passaging. Whole genome sequencing of the passaged virus revealed a single point mutation (A797G), resulting in an amino acid exchange (E263G) in VP4. After introducing this mutation into the VP4-encoding plasmid, a VP4 mono-reassortant as well as the VP4/VP7/VP6 triple-reassortant replicated to high titers already in the first cell culture passage. However, the introduction of the same mutation into the VP4 of other human RVA strains did not improve the rescue of those reassortants, indicating strain specificity. The results show that specific point mutations in VP4 can substantially improve the rescue and replication of recombinant RVA reassortants in cell culture, which may be useful for the development of novel vaccine strains.


Subject(s)
Capsid Proteins , Reassortant Viruses , Rotavirus , Virus Replication , Rotavirus/genetics , Capsid Proteins/genetics , Humans , Reassortant Viruses/genetics , Animals , Mutation , Cell Line , Reverse Genetics/methods , Genotype , Point Mutation , Rotavirus Infections/virology , Genome, Viral , Antigens, Viral/genetics , Antigens, Viral/immunology
18.
Viruses ; 16(4)2024 04 07.
Article in English | MEDLINE | ID: mdl-38675910

ABSTRACT

Influenza A viruses (IAVs) pose a serious threat to global health. On the one hand, these viruses cause seasonal flu outbreaks in humans. On the other hand, they are a zoonotic infection that has the potential to cause a pandemic. The most important natural reservoir of IAVs are waterfowl. In this study, we investigated the occurrence of IAV in birds in the Republic of Buryatia (region in Russia). In 2020, a total of 3018 fecal samples were collected from wild migratory birds near Lake Baikal. Of these samples, 11 were found to be positive for the H13N8 subtype and whole-genome sequencing was performed on them. All samples contained the same virus with the designation A/Unknown/Buryatia/Arangatui-1/2020. To our knowledge, virus A/Unknown/Buryatia/Arangatui-1/2020 is the first representative of the H13N8 subtype collected on the territory of Russia, the sequence of which is available in the GenBank database. An analysis of reassortments based on the genome sequences of other known viruses has shown that A/Unknown/Buryatia/Arangatui-1/2020 arose as a result of reassortment. In addition, a reassortment most likely occurred several decades ago between the ancestors of the viruses recently collected in China, the Netherlands, the United States and Chile. The presence of such reassortment emphasizes the ongoing evolution of the H13N8 viruses distributed in Europe, North and East Asia, North and South America and Australia. This study underscores the importance of the continued surveillance and research of less-studied influenza subtypes.


Subject(s)
Birds , Genome, Viral , Influenza A virus , Influenza in Birds , Phylogeny , Reassortant Viruses , Whole Genome Sequencing , Animals , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reassortant Viruses/isolation & purification , Influenza in Birds/virology , Influenza in Birds/epidemiology , Russia/epidemiology , Birds/virology , Influenza A virus/genetics , Influenza A virus/classification , Influenza A virus/isolation & purification , Feces/virology , Animals, Wild/virology
19.
Emerg Microbes Infect ; 13(1): 2337673, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38572517

ABSTRACT

Influenza A viruses (IAVs) pose a persistent potential threat to human health because of the spillover from avian and swine infections. Extensive surveillance was performed in 12 cities of Guangxi, China, during 2018 and 2023. A total of 2540 samples (including 2353 nasal swabs and 187 lung tissues) were collected from 18 pig farms with outbreaks of respiratory disease. From these, 192 IAV-positive samples and 19 genomic sequences were obtained. We found that the H1 and H3 swine influenza A viruses (swIAVs) of multiple lineages and genotypes have continued to co-circulate during that time in this region. Genomic analysis revealed the Eurasian avian-like H1N1 swIAVs (G4) still remained predominant in pig populations. Strikingly, the novel multiple H3N2 genotypes were found to have been generated through the repeated introduction of the early H3N2 North American triple reassortant viruses (TR H3N2 lineage) that emerged in USA and Canada in 1998 and 2005, respectively. Notably, when the matrix gene segment derived from the H9N2 avian influenza virus was introduced into endemic swIAVs, this produced a novel quadruple reassortant H1N2 swIAV that could pose a potential risk for zoonotic infection.


Subject(s)
Influenza A Virus, H1N1 Subtype , Influenza A Virus, H9N2 Subtype , Influenza, Human , Orthomyxoviridae Infections , Swine Diseases , Swine , Animals , Humans , Influenza A Virus, H1N1 Subtype/genetics , Influenza A Virus, H3N2 Subtype/genetics , China/epidemiology , Swine Diseases/epidemiology , Orthomyxoviridae Infections/epidemiology , Orthomyxoviridae Infections/veterinary , Influenza, Human/epidemiology , Reassortant Viruses/genetics , Phylogeny
20.
Arch Virol ; 169(5): 111, 2024 Apr 25.
Article in English | MEDLINE | ID: mdl-38664271

ABSTRACT

India has reported highly pathogenic avian influenza (HPAI) H5N1 virus outbreaks since 2006, with the first human case reported in 2021. These included viruses belonging to the clades 2.2, 2.2.2, 2.2.2.1, 2.3.2.1a, and 2.3.2.1c. There are currently no data on the gene pool of HPAI H5N1 viruses in India. Molecular clock and phylogeography analysis of the HA and NA genes; and phylogenetic analysis of the internal genes of H5N1 viruses from India were carried out. Sequences reported from 2006 to 2015; and sequences from 2021 that were available in online databases were used in the analysis. Five separate introductions of H5N1 viruses into India were observed, via Indonesia or Korea (2002), Bangladesh (2009), Bhutan (2010), and China (2013, 2018) (clades 2.2, 2.2.2, 2.2.2.1, 2.3.2.1a, 2.3.2.1c, and 2.3.4.4b). Phylogenetic analysis revealed eight reassortant genotypes. The H5N1 virus isolated from the human case showed a unique reassortant genotype. Amino acid markers associated with adaptation to mammals were also present. This is the first report of the spatio-temporal origins and gene pool analysis of H5N1 viruses from India, highlighting the need for increased molecular surveillance.


Subject(s)
Influenza A Virus, H5N1 Subtype , Influenza in Birds , Influenza, Human , Phylogeny , Phylogeography , India/epidemiology , Influenza A Virus, H5N1 Subtype/genetics , Influenza A Virus, H5N1 Subtype/classification , Influenza A Virus, H5N1 Subtype/isolation & purification , Animals , Influenza in Birds/virology , Influenza in Birds/epidemiology , Humans , Influenza, Human/virology , Influenza, Human/epidemiology , Genotype , Reassortant Viruses/genetics , Reassortant Viruses/classification , Reassortant Viruses/isolation & purification , Neuraminidase/genetics , Hemagglutinin Glycoproteins, Influenza Virus/genetics , Birds/virology , Disease Outbreaks
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