| Literature DB >> 35413940 |
Tongling Shan1, Shixing Yang2, Haoning Wang3,4, Hao Wang5, Ju Zhang2, Ga Gong6, Yuqing Xiao2, Jie Yang2, Xiaolong Wang7, Juan Lu2, Min Zhao2, Zijun Yang2, Xiang Lu2, Ziyuan Dai2, Yumin He2, Xu Chen2, Rui Zhou2, Yuxin Yao2, Ning Kong1, Jian Zeng2, Kalim Ullah2, Xiaochun Wang2, Quan Shen2, Xutao Deng8, Jianmin Zhang9, Eric Delwart8,10, Guangzhi Tong11,12, Wen Zhang13,14.
Abstract
BACKGROUND: Wild birds may harbor and transmit viruses that are potentially pathogenic to humans, domestic animals, and other wildlife.Entities:
Keywords: Complete genome; Cross-species infection; Phylogenetic analysis; Recombinant; Virome; Wild bird
Mesh:
Year: 2022 PMID: 35413940 PMCID: PMC9001828 DOI: 10.1186/s40168-022-01246-7
Source DB: PubMed Journal: Microbiome ISSN: 2049-2618 Impact factor: 14.650
Fig. 1Identification of viruses in different species of birds. A Information of bird species and library. The blue bar in the top graph shows the total number of sequence reads in each library corresponding to individual species of bird. The bird species name is shown on top of each bar, while the host Orders are shown above the bar graph. The bottom graph shows the number of libraries for each species of bird in viral metagenomic analysis. B The composition and diversity of viruses with complete CDS identified in birds. The left histogram shows the numbers of DNA viruses (blue bar) and RNA viruses (red bar). The right pie charts show the composition of virus types identified in this study. C The amino acid sequence identity and coverage of viruses identified here with the best-matched virus strains in BLASTx searching
Fig. 2Rarefaction curves of observed virus family and virus distribution pattern in the 215 birds’ cloacal swab pools based on birds’ habitat. A In the rarefaction curves the horizontal ordinate represents the number of viral sequence reads obtained from the NGS data (where the “break” axis is used because some libraries contain too large a number of viral reads), the longitudinal axis represents the number of virus families observed in the virome of birds’ cloaca swab samples. B The horizontal ordinate represents different virus genomes which are further divided into 24 different virus families or groups, while the longitudinal axis represents the 215 libraries that are arranged based on birds’ habitat (breeding or wild). Heatmap representing the read number (in exponential form) in the mapping analysis using the 707 genomes against NGS data of the 215 libraries (see color legend)
Fig. 3Phylogenies of astroviruses identified in the cloaca of birds. (A), (B) Bayesian inference trees were constructed using MrBayes v3.2 respectively based on amino acid sequences of Capsid protein (A) RdRp (B) of astroviruses, within trees the viruses found in this study are marked with a red line. Species names of birds are indicated. Each scale bar indicates the amino acid substitutions per site. Putative cross-species infections of astrovirus between different species of birds are shown. Putative new species name within the genus Avastrovirus is labeled beside the corresponding clade. (C) Putative recombination is presented by trees based RdRp (left tree) and capsid protein (right tree) of astroviruses obtained from birds in the present study
Fig. 4Sequence similarity scanning and recombination analysis of deltacoronaviruses from the cloaca of birds. A Sequence similarity scanning of the 6 coronavirus genomes against the related coronavirus genomes within Deltacoronavirus genus using Simplot software version 3.5.1. Different strains are presented by lines in different colors which are shown on the right side. B Bayesian inference trees based on putative exchanged genomic regions. The stain names of genomes acquired here are marked with red color. Each scale bar indicates the amino acid substitutions per site
Fig. 5Phylogenies of retroviruses and caliciviruses identified in the cloaca of birds. A Bayesian inference tree established based on amino acid sequences of env of retroviruses. B Bayesian inference tree established based on amino acid sequences of pol of retroviruses. C Bayesian inference tree established based on amino acid sequences of gag of retroviruses. DThe top graph shows the genome organization of the new retrovirus identified in black swan (Cygnus atratus), the middle graph shows the coverage of sequence reads in library mapping against the genome of this retrovirus, and the bottom graph shows the sequence reads in library mapping against a representative genomic fragment of black swan. E Bayesian inference tree established based on amino acid sequences of RdRp of caliciviruses. Putative cross-species infection of calicivirus between wild birds and domestic poultries are shown. Putative new genus name is labeled beside the corresponding clade. F Bayesian inference tree established based on amino acid sequences of the capsid of caliciviruses. Within trees, the viruses found in this study are marked with a red line. Species names of birds are indicated. Each scale bar indicates the amino acid substitutions per site
Fig. 6Phylogenies of viruses belonging to the family Picornaviridae and unclassified Riboviria identified in the cloaca of birds. A Bayesian inference tree based on amino acid sequences of RdRp of viruses belonging to the family Picornaviridae. Representative strains of all genera in the family Picornaviridae are included. Species names of birds are indicated. Comparisons of Megrivirus phylogeny based on RdRp and their corresponding host phylogeny are also shown beside the big tree. B Bayesian inference tree based on amino acid sequences of RdRp of viruses belonging to unclassified Picornavirales and Riboviria identified here. Within trees, the viruses found in this study are marked with red line. Each scale bar indicates the amino acid substitutions per site
Fig. 7Phylogenies of Parvoviruses and parvo-like viruses identified in the cloaca of birds. A Bayesian inference tree established based on amino acid sequences of NS protein of Chapparvovirus. B Bayesian inference tree established based on amino acid sequences of NS protein of Dependoparvovirus. C Bayesian inference tree established based on amino acid sequences of NS protein of Aveparvovirus. D Bayesian inference tree established based on amino acid sequences of NS protein of these divergent parvoviruses which showed no close relationship to known parvovirus. Genome organization of each virus is also shown beside the corresponding strain. E Bayesian inference tree established based on amino acid sequences of NS protein of Parvo-like hybrid virus. Within trees, the viruses found in this study are marked with a red line. Species names of birds are indicated. Each scale bar indicates the amino acid substitutions per site
Fig. 8Phylogenies of circoviruses, smacoviruses, and other CRESS-DNA viruses identified in the cloaca of birds. A Bayesian inference tree established based on amino acid sequences of Rep protein of circoviruses. B Bayesian inference tree established based on amino acid sequences of Rep protein of smacovirus. C Genome organization of circoviruses and smacoviruses identified in this study. D Bayesian inference tree established based on amino acid sequences of Rep protein of other CRESS-DNA viruses. Within trees, the viruses found in this study are marked with a red line. Species names of birds are indicated. Each scale bar indicates the amino acid substitutions per site
Fig. 9Phylogenies of adenoviruses identified in the cloaca of birds. A Bayesian inference tree established based on amino acid sequences of pol protein of adenovirus. B Bayesian inference tree established based on amino acid sequences of penton protein of adenoviruses. Within trees, the viruses found in this study are marked with a red line. Species names of birds are indicated. Each scale bar indicates the amino acid substitutions per site