Evidence of Molecular Evolution Driven by Recombination Events Influencing Tropism in a Novel Human Adenovirus that Causes Epidemic Keratoconjunctivitis

被引:188
作者
Walsh, Michael P.
Chintakuntlawar, Ashish
Robinson, Christopher M.
Madisch, Ijad
Harrach, Balazs
Hudson, Nolan R.
Schnurr, David
Heim, Albert
Chodosh, James
Seto, Donald
Jones, Morris S.
机构
[1] Department of Bioinformatics and Computational Biology, George Mason University, Manassas, VA
[2] Howe Laboratory, Massachusetts Eye and Ear Infirmary, Harvard Medical School, Boston, MA
[3] Insitut für Virologie, Medizinische Hochschule, Hannover
[4] Veterinary Medical Research Institute, Hungarian Academy of Sciences, Budapest
[5] Clinical Investigation Facility, David Grant USAF Medical Center, Travis AFB, CA
[6] Viral and Rickettsial Disease Laboratory, California Department of Public Health, Richmond, CA
来源
PLOS ONE | 2009年 / 4卷 / 06期
关键词
ACUTE RESPIRATORY-DISEASE; WORLD MONKEY ADENOVIRUS; BIOINFORMATICS ANALYSIS; GENOME SEQUENCE; DNA-REPLICATION; VIRUS TYPE-1; EXPRESSION; DEFICIENCY; POLYMERASE; REDUNDANT;
D O I
10.1371/journal.pone.0005635
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
In 2005, a human adenovirus strain (formerly known as HAdV-D22/H8 but renamed here HAdV-D53) was isolated from an outbreak of epidemic keratoconjunctititis (EKC), a disease that is usually caused by HAdV-D8, -D19, or -D37, not HAdV-D22. To date, a complete change of tropism compared to the prototype has never been observed, although apparent recombinant strains of other viruses from species Human adenovirus D (HAdV-D) have been described. The complete genome of HAdV-D53 was sequenced to elucidate recombination events that lead to the emergence of a viable and highly virulent virus with a modified tropism. Bioinformatic and phylogenetic analyses of this genome demonstrate that this adenovirus is a recombinant of HAdV-D8 (including the fiber gene encoding the primary cellular receptor binding site), HAdV-D22, (the e determinant of the hexon gene), HAdV-D37 (including the penton base gene encoding the secondary cellular receptor binding site), and at least one unknown or unsequenced HAdV-D strain. Bootscanning analysis of the complete genomic sequence of this novel adenovirus, which we have re-named HAdV-D53, indicated at least five recombination events between the aforementioned adenoviruses. Intrahexon recombination sites perfectly framed the epsilon neutralization determinant that was almost identical to the HAdV-D22 prototype. Additional bootscan analysis of all HAdV-D hexon genes revealed recombinations in identical locations in several other adenoviruses. In addition, HAdV-D53 but not HAdV-D22 induced corneal inflammation in a mouse model. Serological analysis confirmed previous results and demonstrated that HAdV-D53 has a neutralization profile representative of the e determinant of its hexon (HAdV-D22) and the fiber (HAdV-D8) proteins. Our recombinant hexon sequence is almost identical to the hexon sequences of the HAdV-D strain causing EKC outbreaks in Japan, suggesting that HAdV-D53 is pandemic as an emerging EKC agent. This documents the first genomic, bioinformatic, and biological descriptions of the molecular evolution events engendering an emerging pathogenic adenovirus.
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