Prevalence and Molecular Characteristics of FAdV-4 from Indigenous Chicken Breeds in Yunnan Province, Southwestern China
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Collection and Processing
2.2. Virus Isolation
2.3. DNA Extraction and PCR
2.4. Sequence Comparison and Phylogenetic Analysis
3. Results
3.1. Virus Identification and Isolation
3.2. Phylogenetic Analysis of FAdVs Isolated from Indigenous Chickens in Yunnan Province
3.3. Molecular Characteristics of FAdV-4 Isolated from Southwest China
4. Discussion
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
- Benko, M.; Aoki, K.; Arnberg, N.; Davison, A.J.; Echavarria, M.; Hess, M.; Jones, M.S.; Kajan, G.L.; Kajon, A.E.; Mittal, S.K.; et al. ICTV Virus Taxonomy Profile: Adenoviridae 2022. J. Gen. Virol. 2022, 103, 001721. [Google Scholar] [CrossRef]
- Asthana, M.; Chandra, R.; Kumar, R. Hydropericardium syndrome: Current state and future developments. Arch. Virol. 2013, 158, 921–931. [Google Scholar] [CrossRef]
- Lobova, D.; Celer, V. Expression and serological reactivity of hemorrhagic enteritis virus hexon protein. Folia Microbiol. (Praha) 2016, 61, 227–232. [Google Scholar] [CrossRef] [PubMed]
- Cha, S.Y.; Kang, M.; Park, C.K.; Choi, K.S.; Jang, H.K. Epidemiology of egg drop syndrome virus in ducks from South Korea. Poult. Sci. 2013, 92, 1783–1789. [Google Scholar] [CrossRef] [PubMed]
- Mockett, A.P.; Cook, J.K. The use of an enzyme-linked immunosorbent assay to detect IgG antibodies to serotype-specific and group-specific antigens of fowl adenovirus serotypes 2, 3 and 4. J. Virol. Methods 1983, 7, 327–335. [Google Scholar] [CrossRef]
- Hess, M. Detection and differentiation of avian adenoviruses: A review. Avian Pathol. 2000, 29, 195–206. [Google Scholar] [CrossRef] [PubMed]
- Schachner, A.; Matos, M.; Grafl, B.; Hess, M. Fowl adenovirus-induced diseases and strategies for their control—A review on the current global situation. Avian Pathol. 2018, 47, 111–126. [Google Scholar] [CrossRef]
- Abe, T.; Nakamura, K.; Tojo, H.; Mase, M.; Shibahara, T.; Yamaguchi, S.; Yuasa, N. Histology, immunohistochemistry, and ultrastructure of hydropericardium syndrome in adult broiler breeders and broiler chicks. Avian Dis. 1998, 42, 606–612. [Google Scholar] [CrossRef]
- Davison, A.J.; Benko, M.; Harrach, B. Genetic content and evolution of adenoviruses. J. Gen. Virol. 2003, 84, 2895–2908. [Google Scholar] [CrossRef]
- Park, H.S.; Lim, I.S.; Kim, S.K.; Kim, T.K.; Park, C.K.; Yeo, S.G. Molecular analysis of the hexon, penton base, and fiber-2 genes of Korean fowl adenovirus serotype 4 isolates from hydropericardium syndrome-affected chickens. Virus Genes 2017, 53, 111–116. [Google Scholar] [CrossRef]
- Rux, J.J.; Kuser, P.R.; Burnett, R.M. Structural and phylogenetic analysis of adenovirus hexons by use of high-resolution X-ray crystallographic, molecular modeling, and sequence-based methods. J. Virol. 2003, 77, 9553–9566. [Google Scholar] [CrossRef] [PubMed]
- Suresh, M.; St Cyr, S.; Sharma, J.M. Molecular cloning and sequence analysis of the penton base genes of type II avian adenoviruses. Virus Res. 1995, 39, 289–297. [Google Scholar] [CrossRef] [PubMed]
- Chen, L.; Yin, L.; Zhou, Q.; Peng, P.; Du, Y.; Liu, L.; Zhang, Y.; Xue, C.; Cao, Y. Epidemiological investigation of fowl adenovirus infections in poultry in China during 2015-2018. BMC Vet. Res. 2019, 15, 271. [Google Scholar] [CrossRef] [PubMed]
- Li, H.; Wang, J.; Qiu, L.; Han, Z.; Liu, S. Fowl adenovirus species C serotype 4 is attributed to the emergence of hepatitis-hydropericardium syndrome in chickens in China. Infect. Genet. Evol. 2016, 45, 230–241. [Google Scholar] [CrossRef] [PubMed]
- Wang, T.; Meng, F.; Chen, C.; Shen, Y.; Li, P.; Xu, J.; Feng, Z.; Qu, X.; Wang, F.; Li, B.; et al. Pathogenicity and epidemiological survey of fowl adenovirus in Shandong Province from 2021 to 2022. Front. Microbiol. 2023, 14, 1166078. [Google Scholar] [CrossRef]
- Walugembe, M.; Mushi, J.R.; Amuzu-Aweh, E.N.; Chiwanga, G.H.; Msoffe, P.L.; Wang, Y.; Saelao, P.; Kelly, T.; Gallardo, R.A.; Zhou, H.; et al. Genetic Analyses of Tanzanian Local Chicken Ecotypes Challenged with Newcastle Disease Virus. Genes 2019, 10, 546. [Google Scholar] [CrossRef]
- Walugembe, M.; Naazie, A.; Mushi, J.R.; Akwoviah, G.A.; Mollel, E.; Mang’enya, J.A.; Wang, Y.; Chouicha, N.; Kelly, T.; Msoffe, P.L.M.; et al. Genetic Analyses of Response of Local Ghanaian Tanzanian Chicken Ecotypes to a Natural Challenge with Velogenic Newcastle Disease Virus. Animals 2022, 12, 2755. [Google Scholar] [CrossRef]
- Manjula, P.; Kim, M.; Cho, S.; Seo, D.; Lee, J.H. High Levels of Genetic Variation in MHC-Linked Microsatellite Markers from Native Chicken Breeds. Genes 2021, 12, 240. [Google Scholar] [CrossRef]
- Xiang, B.; Liang, J.; You, R.; Han, L.; Mei, K.; Chen, L.; Chen, R.; Zhang, Y.; Dai, X.; Gao, P.; et al. Pathogenicity and transmissibility of a highly pathogenic avian influenza virus H5N6 isolated from a domestic goose in Southern China. Vet. Microbiol. 2017, 212, 16–21. [Google Scholar] [CrossRef]
- Shen, Z.; Xiang, B.; Li, S.; Ren, X.; Hong, Y.; Liao, J.; Yu, D.; Ren, T.; Liao, M.; Xu, C. Genetic characterization of fowl adenovirus serotype 4 isolates in Southern China reveals potential cross-species transmission. Infect. Genet. Evol. 2019, 75, 103928. [Google Scholar] [CrossRef]
- Li, P.H.; Zheng, P.P.; Zhang, T.F.; Wen, G.Y.; Shao, H.B.; Luo, Q.P. Fowl adenovirus serotype 4: Epidemiology, pathogenesis, diagnostic detection, and vaccine strategies. Poult. Sci. 2017, 96, 2630–2640. [Google Scholar] [CrossRef] [PubMed]
- Li, S.; Zhao, R.; Yang, Q.; Wu, M.; Ma, J.; Wei, Y.; Pang, Z.; Wu, C.; Liu, Y.; Gu, Y.; et al. Phylogenetic and pathogenic characterization of current fowl adenoviruses in China. Infect. Genet. Evol. 2022, 105, 105366. [Google Scholar] [CrossRef] [PubMed]
- Li, W.; You, G.; Haiyilati, A.; Wang, H.; Jiao, H.; Wang, Y.; Gao, L.; Cao, H.; Li, X.; Zheng, S.J. Critical Role of Viral Protein Hexon in Hypervirulent Fowl Adenovirus Serotype-4-Induced Autophagy by Interaction with BAG3 and Promotion of Viral Replication in LMH Cells. J. Virol. 2023, 97, e0028423. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Y.; Liu, A.; Wang, Y.; Cui, H.; Gao, Y.; Qi, X.; Liu, C.; Zhang, Y.; Li, K.; Gao, L.; et al. A Single Amino Acid at Residue 188 of the Hexon Protein Is Responsible for the Pathogenicity of the Emerging Novel Virus Fowl Adenovirus 4. J. Virol. 2021, 95, e0060321. [Google Scholar] [CrossRef]
- Madisch, I.; Hofmayer, S.; Moritz, C.; Grintzalis, A.; Hainmueller, J.; Pring-Akerblom, P.; Heim, A. Phylogenetic analysis and structural predictions of human adenovirus penton proteins as a basis for tissue-specific adenovirus vector design. J. Virol. 2007, 81, 8270–8281. [Google Scholar] [CrossRef]
- Tan, P.K.; Michou, A.I.; Bergelson, J.M.; Cotten, M. Defining CAR as a cellular receptor for the avian adenovirus CELO using a genetic analysis of the two viral fibre proteins. J. Gen. Virol. 2001, 82, 1465–1472. [Google Scholar] [CrossRef]
- Wang, Z.; Zhao, J. Pathogenesis of Hypervirulent Fowl Adenovirus Serotype 4: The Contributions of Viral and Host Factors. Viruses 2019, 11, 741. [Google Scholar] [CrossRef]
- Changjing, L.; Haiying, L.; Dongdong, W.; Jingjing, W.; Youming, W.; Shouchun, W.; Jida, L.; Ping, L.; Jianlin, W.; Shouzhen, X.; et al. Characterization of fowl adenoviruses isolated between 2007 and 2014 in China. Vet. Microbiol. 2016, 197, 62–67. [Google Scholar] [CrossRef]
- Liu, Y.; Wan, W.; Gao, D.; Li, Y.; Yang, X.; Liu, H.; Yao, H.; Chen, L.; Wang, C.; Zhao, J. Genetic characterization of novel fowl aviadenovirus 4 isolates from outbreaks of hepatitis-hydropericardium syndrome in broiler chickens in China. Emerg. Microbes Infect. 2016, 5, e117. [Google Scholar] [CrossRef]
- Schachner, A.; Gonzalez, G.; Endler, L.; Ito, K.; Hess, M. Fowl Adenovirus (FAdV) Recombination with Intertypic Crossovers in Genomes of FAdV-D and FAdV-E, Displaying Hybrid Serological Phenotypes. Viruses 2019, 11, 1094. [Google Scholar] [CrossRef]
- Zhang, T.; Jin, Q.; Ding, P.; Wang, Y.; Chai, Y.; Li, Y.; Liu, X.; Luo, J.; Zhang, G. Molecular epidemiology of hydropericardium syndrome outbreak-associated serotype 4 fowl adenovirus isolates in central China. Virol. J. 2016, 13, 188. [Google Scholar] [CrossRef] [PubMed]
- Jiang, Z.; Liu, M.; Wang, C.; Zhou, X.; Li, F.; Song, J.; Pu, J.; Sun, Y.; Wang, M.; Shahid, M.; et al. Characterization of fowl adenovirus serotype 4 circulating in chickens in China. Vet. Microbiol. 2019, 238, 108427. [Google Scholar] [CrossRef]
- Li, Y.; Fu, J.; Chang, S.; Fang, L.; Cui, S.; Wang, Y.; Cui, Z.; Zhao, P. Isolation, identification, and hexon gene characterization of fowl adenoviruses from a contaminated live Newcastle disease virus vaccine. Poult. Sci. 2017, 96, 1094–1099. [Google Scholar] [CrossRef] [PubMed]
- Wang, L.; Zheng, L.; Jiang, S.; Li, X.; Lu, C.; Zhang, L.; Ren, W.; Li, C.; Tian, X.; Li, F.; et al. Isolation, identification and genetic characterization analysis of a fowl aviadenovirus serotype 4 strain from Tianjin, China. Infect. Genet. Evol. 2021, 96, 105078. [Google Scholar] [CrossRef]
- Li, G.; Yu, G.; Niu, Y.; Cai, Y.; Liu, S. Airborne Transmission of a Serotype 4 Fowl Adenovirus in Chickens. Viruses 2019, 11, 262. [Google Scholar] [CrossRef]
- Wei, Z.; Liu, H.; Diao, Y.; Li, X.; Zhang, S.; Gao, B.; Tang, Y.; Hu, J.; Diao, Y. Pathogenicity of fowl adenovirus (FAdV) serotype 4 strain SDJN in Taizhou geese. Avian Pathol. 2019, 48, 477–485. [Google Scholar] [CrossRef] [PubMed]
- Wu, B.; Yang, B.; He, D.; Tang, Y.; Diao, Y. Genetic evolution of fowl adenovirus serotype 4 and its pathogenicity to Cherry Valley ducks in China. Vet. Microbiol. 2022, 274, 109578. [Google Scholar] [CrossRef]
- Yu, X.; Wang, Z.; Chen, H.; Niu, X.; Dou, Y.; Yang, J.; Tang, Y.; Diao, Y. Serological and Pathogenic Analyses of Fowl Adenovirus Serotype 4 (FAdV-4) Strain in Muscovy Ducks. Front. Microbiol. 2018, 9, 1163. [Google Scholar] [CrossRef]
- Xu, L.; Benson, S.D.; Burnett, R.M. Nanoporous crystals of chicken embryo lethal orphan (CELO) adenovirus major coat protein, hexon. J. Struct. Biol. 2007, 157, 424–431. [Google Scholar] [CrossRef]
- Gelderblom, H.; Maichle-Lauppe, I. The fibers of fowl adenoviruses. Arch. Virol. 1982, 72, 289–298. [Google Scholar] [CrossRef]
- Zhang, Y.; Liu, R.; Tian, K.; Wang, Z.; Yang, X.; Gao, D.; Zhang, Y.; Fu, J.; Wang, H.; Zhao, J. Fiber2 and hexon genes are closely associated with the virulence of the emerging and highly pathogenic fowl adenovirus 4. Emerg. Microbes Infect. 2018, 7, 199. [Google Scholar] [CrossRef] [PubMed]
- Xie, Q.; Wang, W.; Li, L.; Kan, Q.; Fu, H.; Geng, T.; Li, T.; Wan, Z.; Gao, W.; Shao, H.; et al. Domain in Fiber-2 interacted with KPNA3/4 significantly affects the replication and pathogenicity of the highly pathogenic FAdV-4. Virulence 2021, 12, 754–765. [Google Scholar] [CrossRef] [PubMed]
- Niu, D.; Feng, J.; Duan, B.; Shi, Q.; Li, Y.; Chen, Z.; Ma, L.; Liu, H.; Wang, Y. Epidemiological survey of avian adenovirus in China from 2015 to 2021 and the genetic variability of highly pathogenic Fadv-4 isolates. Infect. Genet. Evol. 2022, 101, 105277. [Google Scholar] [CrossRef]
- Wang, B.; Song, C.; Yang, P.; Song, M.; Zhao, S.; Qiao, Q.; Wang, Z.; Zhao, J. The Role of Hexon Amino Acid 188 Varies in Fowl Adenovirus Serotype 4 Strains with Different Virulence. Microbiol. Spectr. 2022, 10, e0149322. [Google Scholar] [CrossRef] [PubMed]
- Rashid, F.; Xie, Z.; Zhang, L.; Luan, Y.; Luo, S.; Deng, X.; Xie, L.; Xie, Z.; Fan, Q. Genetic characterization of fowl aviadenovirus 4 isolates from Guangxi, China, during 2017–2019. Poult. Sci. 2020, 99, 4166–4173. [Google Scholar] [CrossRef] [PubMed]
- Yuan, Y.; Zhang, H.; Yi, G.; You, Z.; Zhao, C.; Yuan, H.; Wang, K.; Li, J.; Yang, N.; Lian, L. Genetic Diversity of MHC B-F/B-L Region in 21 Chicken Populations. Front. Genet. 2021, 12, 710770. [Google Scholar] [CrossRef] [PubMed]
- Li, M.; Raheem, M.A.; Han, C.; Yu, F.; Dai, Y.; Imran, M.; Hong, Q.; Zhang, J.; Tan, Y.; Zha, L.; et al. The fowl adenovirus serotype 4 (FAdV-4) induce cellular pathway in chickens to produce interferon and antigen-presented molecules (MHCI/II). Poult. Sci. 2021, 100, 101406. [Google Scholar] [CrossRef]
- Marek, A.; Nolte, V.; Schachner, A.; Berger, E.; Schlötterer, C.; Hess, M. Two fiber genes of nearly equal lengths are a common and distinctive feature of Fowl adenovirus C members. Vet. Microbiol. 2012, 156, 411–417. [Google Scholar] [CrossRef]
Location | Host | Type of Samples | Symptoms | Positive Rate | Isolates | Viral Species |
---|---|---|---|---|---|---|
Wenshan | Xichou black-bone chicken | Liver, pericardium, kidneys | Loss of appetite, depression, loose stools | 22.22% (4/18) | Xichou black-bone chicken/Yunnan/YNBL-8/2023, Xichou black-bone chicken/Yunnan/YNBJ-5/2023 Xichou black-bone chicken/Yunnan/YNBL-7/2023, Xichou black-bone chicken/Yunnan/YNXJ/2022 | FAdV-4 |
Dali | Wuliangshan black-bone chicken | Mixture of oropharyngeal and cloacal swabs | clinically healthy | 0.94% (2/212) | Wuliangshan black-bone chicken/Yunnan/YN-NC1/2022, Wuliangshan black-bone chicken/Yunnan/YNYL/2022 | FAdV-4 |
Qinhua chicken | Mixture of oropharyngeal and cloacal swabs | clinically healthy | 0.78% (1/115) | Qinhua chicken/Yunnan/YNJC/2022 | FAdV-4 | |
Nujiang | Lanping rongmao chicken | Mixture of oropharyngeal and cloacal swabs | clinically healthy | 3.57% (1/28) | Lanping Rongmao chicken/Yunnan/YNLP/2022 | FAdV-4 |
Lijiang | La-Bai high leg chicken | Mixture of oropharyngeal and cloacal swabs | clinically healthy | 0.00% (0/123) | / | |
Zhaotong | Yanjing black-bone chicken | Liver, pericardium Liver, pericardium | Loss of appetite, depression and diarrhea | 20% (2/10) | Yanjing black-bone chicken/Yunnan/YNNJ/2022, Yanjing black-bone chicken/Yunnan/YNFD/2022 | FAdV-4 |
Isolates | Abbreviations | Gene | |||
---|---|---|---|---|---|
Hexon | Penton | Fiber1 | Fiber2 | ||
Xichou black-bone chicken/Yunnan/YNBL-8/2023 | YNBL-8/2023 | OR480649 | OR480676 | OR480658 | OR480667 |
Xichou black-bone chicken/Yunnan/YNBJ-5/2023 | YNBJ-5/2023 | OR480685 | OR480686 | OR480687 | OR480688 |
Xichou black-bone chicken/Yunnan/YNBL-7/2023 | YNBL-7/2023 | OR480650 | OR480677 | OR480659 | OR480668 |
Yanjing black-bone chicken/Yunnan/YNFD/2022 | YNFD/2022 | OR480653 | OR480680 | OR480662 | OR480671 |
Qinhua chicken/Yunnan/YNJC/2022 | YNJC/2022 | OR480656 | OR480683 | OR480665 | OR480674 |
Lanping Rongmao chicken/Yunnan/YNLP/2022 | YNLP/2022 | OR480657 | OR480684 | OR480666 | OR480675 |
Wuliangshan black-bone chicken/Yunnan/YN-NC1/2022 | YNNC-1/2022 | OR480654 | OR480681 | OR480663 | OR480672 |
Yanjing black-bone chicken/Yunnan/YNNJ/2022 | YNNJ/2022 | OR480652 | OR480679 | OR480661 | OR480670 |
Xichou black-bone chicken/Yunnan/YNXJ/2022 | YNXJ/2022 | OR480651 | OR480678 | OR480660 | OR480669 |
Wuliangshan black-bone chicken/Yunnan/YNYL/2022 | YNYL/2022 | OR480655 | OR480682 | OR480664 | OR480673 |
Isolate | Amino Acids at Position | |||||||||||||||||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
17 | 97 | 147 | 164 | 188 | 193 | 195 | 199 | 238 | 240 | 243 | 254 | 263 | 264 | 290 | 389 | 402 | 410 | 414 | 429 | 465 | 574 | 588 | 601 | 637 | 707 | 735 | 747 | 797 | 816 | 846 | 914 | |
YNBJ-5/2023 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | A | I | D | N | W | T | I | G | P | V | A | V |
YNBL-8/2023 | Y | R | N | S | R | R | Q | T | D | T | N | S | I | V | R | D | A | A | T | S | T | I | D | N | R | M | T | G | P | V | A | A |
YNBL-7/2023 | H a | W | N | S | R | R | Q | I | D | T | N | T | I | V | R | N | A | A | I | N | T | I | D | D | W | M | T | G | P | V | A | V |
YNFD/2022 | Y | W | N | S | R | Q | E | T | D | T | N | T | I | V | G | N | A | A | T | S | T | I | G | N | W | M | T | G | P | V | A | V |
YNLP/2022 | Y | W | N | S | R | Q | E | T | D | T | N | T | I | V | G | N | A | A | T | S | T | I | G | N | W | M | T | G | P | V | A | V |
YNNC-1/2022 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | V | A | V |
YNYL/2022 | Y | W | D | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | A | A | V |
YNNJ/2022 | Y | W | N | F | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | V | A | V |
YNJC/2022 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | V | A | V |
YNXJ/2022 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | D | P | V | A | V |
PB0505 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | V | A | V |
HLJFAd15 | Y | W | N | S | R | R | Q | T | D | T | N | T | I | V | R | N | A | A | T | S | T | I | D | N | W | M | T | G | P | V | A | V |
ON1 | Y | W | N | T | I | Q | E | T | N | A | E | T | M | I | R | N | A | T | T | S | T | V | D | N | W | M | T | G | A | V | G | V |
MX-SHP95 | Y | W | N | T | R | Q | E | T | N | A | E | T | M | I | R | N | Q | T | T | S | T | V | D | N | W | M | T | G | A | V | G | V |
Isolate | Amino Acids at Position | |||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
42 | 45 | 175 | 193 | 246 | 271 | 356 | 370 | 402 | 426 | 447 | 486 | 497 | 509 | |
YNBJ-5/2023 | P | D | V | I | T | I | V | P | G | I | A | S | T | K |
YNBL-8/2023 | P | D | E a | I | T | I | V | P | G | V | T | T | T | K |
YNBL-7/2023 | P | D | V | I | T | I | V | P | R | V | A | T | A | E |
YNFD/2022 | P | D | V | I | T | V | V | P | G | I | A | S | T | K |
YNLP/2022 | P | D | V | V | T | I | V | P | G | I | A | S | T | K |
YNNC-1/2022 | P | D | V | I | T | I | V | P | G | V | A | T | T | K |
YNYL/2022 | P | D | V | I | A | I | V | P | G | V | A | T | T | K |
YNNJ/2022 | P | D | V | I | T | I | V | P | G | I | A | S | T | K |
YNJC/2022 | P | D | V | I | T | I | V | P | G | I | A | S | T | K |
YNXJ/2022 | P | D | V | I | T | I | V | P | G | V | A | T | T | K |
PB0505 | P | D | V | I | T | I | V | P | G | V | A | T | T | K |
HLJFAd15 | P | D | V | I | T | I | V | P | G | V | A | T | T | K |
ON1 | S | G | V | V | T | I | A | Q | G | I | A | S | T | K |
MX-SHP95 | P | G | V | V | T | I | A | Q | G | I | A | S | T | K |
Isolate | Amino Acids at Position | |||||||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
14 | 25 | 28 | 44 | 46 | 63 | 69 | 70 | 119 | 126 | 153 | 165 | 186 | 196 | 204 | 217 | 251 | 255 | 262 | 263 | 428 | 430 | |
YNBJ-5/2023 | A | S | S | R | T | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
YNBL-8/2023 | A | S | S | R | A | S | G | S | N | A | R | R | D | V | G | T | L | F | H | D | - | G |
YNBL-7/2023 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
YNFD/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | F | H | D | - | G |
YNLP/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | F | H | D | - | G |
YNNC-1/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | F | H | D | - | G |
YNYL/2022 | A | P a | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | F | H | D | - | G |
YNNJ/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
YNJC/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
YNXJ/2022 | A | S | S | R | A | N | G | S | N | A | R | K | D | V | G | A | L | F | H | D | - | G |
PB0505 | A | S | S | R | T | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
HLJFAd15 | A | S | S | R | T | N | G | S | N | A | R | K | D | V | G | T | L | L | H | D | - | G |
ON1 | V | S | I | P | A | N | S | G | D | V | H | K | N | T | G | T | I | L | Q | E | H | S |
MX-SHP95 | V | S | I | P | A | N | S | G | D | V | H | K | N | V | A | T | I | L | Q | E | N | G |
Isolate | Amino Acids at Position | |||||||||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
11–15 | 22 | 29 | 114 | 136 | 142 | 144 | 219 | 232 | 261 | 300 | 305–307 | 319 | 380 | 384 | 413 | 475 | 478 | |
YNBJ-5/2023 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNBL-8/2023 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNBL-7/2023 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNFD/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNLP/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNNC-1/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | R | T | L |
YNYL/2022 | ENGKP | S | A | D | G a | G | S | D | Q | T | T | ANA | I | T | S | S | A | L |
YNNJ/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNJC/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
YNXJ/2022 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
PB0505 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
HLJFAd15 | ENGKP | S | A | D | E | D | S | D | Q | T | T | ANA | I | T | P | S | A | L |
ON1 | - | S | P | D | E | D | S | G | E | S | I | SHP | V | A | P | T | A | V |
MX-SHP95 | - | Y | P | A | E | D | A | D | Q | N | T | AHA | I | T | P | T | A | V |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2023 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Lai, J.; Yang, L.; Chen, F.; He, X.; Zhang, R.; Zhao, Y.; Gao, G.; Mu, W.; Chen, X.; Luo, S.; et al. Prevalence and Molecular Characteristics of FAdV-4 from Indigenous Chicken Breeds in Yunnan Province, Southwestern China. Microorganisms 2023, 11, 2631. https://doi.org/10.3390/microorganisms11112631
Lai J, Yang L, Chen F, He X, Zhang R, Zhao Y, Gao G, Mu W, Chen X, Luo S, et al. Prevalence and Molecular Characteristics of FAdV-4 from Indigenous Chicken Breeds in Yunnan Province, Southwestern China. Microorganisms. 2023; 11(11):2631. https://doi.org/10.3390/microorganisms11112631
Chicago/Turabian StyleLai, Jinyu, Liangyu Yang, Fashun Chen, Xingchen He, Rongjie Zhang, Yong Zhao, Gan Gao, Weiwu Mu, Xi Chen, Shiyu Luo, and et al. 2023. "Prevalence and Molecular Characteristics of FAdV-4 from Indigenous Chicken Breeds in Yunnan Province, Southwestern China" Microorganisms 11, no. 11: 2631. https://doi.org/10.3390/microorganisms11112631
APA StyleLai, J., Yang, L., Chen, F., He, X., Zhang, R., Zhao, Y., Gao, G., Mu, W., Chen, X., Luo, S., Ren, T., & Xiang, B. (2023). Prevalence and Molecular Characteristics of FAdV-4 from Indigenous Chicken Breeds in Yunnan Province, Southwestern China. Microorganisms, 11(11), 2631. https://doi.org/10.3390/microorganisms11112631