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词条 Vaccinia
释义

  1. Classification of vaccinia infections

  2. Origin

  3. Virology

  4. Multiplicity reactivation

  5. Host resistance

  6. Use as a vaccine

  7. History

  8. Recent cases

  9. Common strains

  10. References

  11. Further reading

  12. External links

{{about|the virus related to smallpox vaccines|the plant genus|Vaccinium}}{{Virusbox
| image = Vaccinia virus PHIL 2143 lores.jpg
| image_alt = A TEM micrograp of "Vaccinia virus" virions
| image_caption = A TEM micrograph of Vaccinia virus virions
| taxon = Vaccinia virus
| authority =
| synonyms =
| synonyms_ref =
| subdivision_ranks = Viruses[1]
| subdivision =
  • Buffalopox virus
  • Cantagalo virus
  • Rabbitpox virus Utrecht
  • Vaccinia virus Ankara
  • Vaccinia virus Copenhagen
  • Vaccinia virus WR

}}{{Infobox medical condition (new)
| name = Vaccinia
| specialty =virology
| synonyms =
| symptoms =
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| duration =
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}}Vaccinia virus (VACV or VV) is a large, complex, enveloped virus belonging to the poxvirus family.[2] It has a linear, double-stranded DNA genome approximately 190 kbp in length, and which encodes approximately 250 genes. The dimensions of the virion are roughly 360 × 270 × 250 nm, with a mass of approximately 5–10 fg.[3]

Smallpox was the first disease to be widely prevented by vaccination due to pioneering work by the English physician and scientist Edward Jenner, in the eighteenth century, using cowpox virus. Vaccinia virus is the active constituent of the vaccine that eradicated smallpox, making it the first human disease to be eradicated. This endeavour was carried out by the World Health Organization under the Smallpox Eradication Program. Following the eradication of smallpox, scientists study vaccinia virus to use as a tool for delivering genes into biological tissues (gene therapy and genetic engineering) and because of concerns about smallpox being used as an agent for bioterrorism.

Classification of vaccinia infections

In addition to the morbidity of uncomplicated primary vaccination, transfer of infection to other sites by scratching, and post vaccinial encephalitis, other complications of vaccinia infections may be divided into the following types:[4]{{Rp|391}}

  • Generalized vaccinia
  • Eczema vaccinatum
  • Progressive vaccinia (vaccinia gangrenosum, vaccinia necrosum)
  • Roseola vaccinia

Origin

Vaccinia virus is closely related to the virus that causes cowpox; historically the two were often considered to be one and the same.[5] The precise origin of vaccinia virus is unknown due to the lack of record-keeping, as the virus was repeatedly cultivated and passaged in research laboratories for many decades.[6] The most common notion is that vaccinia virus, cowpox virus, and variola virus (the causative agent of smallpox) were all derived from a common ancestral virus. There is also speculation that vaccinia virus was originally isolated from horses,[5] and analysis of DNA from an early (1902) sample of smallpox vaccine showed that it was 99.7% similar to horsepox virus.[7]

Virology

Poxviruses are unique among DNA viruses because they replicate only in the cytoplasm of the host cell, outside of the nucleus.[8] Therefore, the large genome is required for encoding various enzymes and proteins involved in viral DNA replication and gene transcription. During its replication cycle, VV produces four infectious forms which differ in their outer membranes: intracellular mature virion (IMV), the intracellular enveloped virion (IEV), the cell-associated enveloped virion (CEV) and the extracellular enveloped virion (EEV).[9] Although the issue remains contentious, the prevailing view is that the IMV consists of a single lipoprotein membrane, while the CEV and EEV are both surrounded by two membrane layers and the IEV has three envelopes. The IMV is the most abundant infectious form and is thought to be responsible for spread between hosts. On the other hand, the CEV is believed to play a role in cell-to-cell spread and the EEV is thought to be important for long range dissemination within the host organism.

Multiplicity reactivation

Vaccinia virus is able to undergo multiplicity reactivation (MR).[10] MR is the process by which two, or more, virus genomes containing otherwise lethal damage interact within an infected cell to form a viable virus genome. Abel[10] found that vaccinia viruses exposed to doses of UV light sufficient to prevent progeny formation when single virus particles infected host chick embryo cells, could still produce viable progeny viruses when host cells were infected by two or more of these inactivated viruses; that is, MR could occur. Kim and Sharp demonstrated MR of vaccinia virus after treatment with UV-light,[11] nitrogen mustard,[12] and X-rays or gamma rays.[13] Michod et al.[14] reviewed numerous examples of MR in different viruses, and suggested that MR is a common form of sexual interaction in viruses that provides the advantage of recombinational repair of genome damages.

Host resistance

Vaccinia contains within its genome genes for several proteins that give the virus resistance to interferons:

  • K3L is a protein with homology to the protein eukaryotic initiation factor 2 (eIF-2alpha). K3L protein inhibits the action of PKR, an activator of interferons.[17]
  • E3L is another protein encoded by Vaccinia. E3L also inhibits PKR activation; and is also able to bind to double stranded RNA.[15]

Use as a vaccine

A Vaccinia virus infection is very mild and is typically asymptomatic in healthy individuals, but it may cause a mild rash and fever. Immune responses generated from a Vaccinia virus infection protects the person against a lethal smallpox infection. For this reason, Vaccinia virus was, and is still being used as a live-virus vaccine against smallpox. Unlike vaccines that use weakened forms of the virus being vaccinated against, the Vaccinia virus vaccine cannot cause a smallpox infection because it does not contain the smallpox virus. However, certain complications and/or vaccine adverse effects occasionally arise. The chance of this happening is significantly increased in people who are immunocompromised. Approximately one in one million individuals will develop a fatal response to the vaccination.

Currently, the vaccine is only administered to health care workers or research personnel who have a high risk of contracting the variola virus, and to the military personnel of the United States. Due to the threat of smallpox bioterrorism, there is a possibility the vaccine may have to be widely administered again in the future. Therefore, scientists are currently developing novel vaccine strategies against smallpox which are safer and much faster to deploy during a bioterrorism event.

On September 1, 2007, the U.S. Food and Drug Administration (FDA) licensed a new vaccine ACAM2000 against smallpox which can be produced quickly upon need. Manufactured by Sanofi Pasteur, the U.S. Centers for Disease Control and Prevention stockpiled 192.5 million doses of the new vaccine (see list of common strains below).[16]

A new smallpox vaccine, Imvanex, which is based on a modified strain of vaccinia; Modified vaccinia Ankara was approved by the European Medicines Agency in 2013.[17]

Vaccinia is also used in recombinant vaccines, as a vector for expression of foreign genes within a host, in order to generate an immune response. Other poxviruses are also used as live recombinant vaccines.[18]

History

The original vaccine for smallpox, and the origin of the idea of vaccination, was Cowpox, described by Edward Jenner in 1798. The Latin term used for Cowpox was Variolae vaccinae, Jenner's own translation of "smallpox of the cow". That term lent its name to the whole idea of vaccination.[19] When it was realized that the virus used in smallpox vaccination was not, or was no longer, the same as cowpox virus, the name 'vaccinia' was used for the virus in smallpox vaccine. (See OED.) Vaccine potency and efficacy prior to the invention of refrigerated methods of transportation was unreliable. The vaccine would be rendered impotent by heat and sunlight, and the method of drying samples on quills and shipping them to countries in need often resulted in an inactive vaccine. Another method employed was the "arm to arm" method. This involved vaccinating an individual then transferring it to another as soon as the infectious pustule forms, then to another, etc. This method was used as a form of living transportation of the vaccine, and usually employed orphans as carriers. However, this method was problematic due to the possibility of spreading other blood diseases, such as hepatitis and syphilis. In 1861, 41 Italian children contracted syphilis after being vaccinated by the arm to arm method.[20]

In 1913, E. Steinhardt, C. Israeli, and R. A. Lambert grew vaccinia virus in fragments of pig corneal tissue culture.[21]

In 1939 Allan Watt Downie showed that the smallpox vaccines being used in the 20th century and cowpox virus were not the same, but were immunologically related.[22][23]

Recent cases

In March 2007, a 2-year-old Indiana boy and his mother contracted a life-threatening vaccinia infection from the boy's father.[24] The boy developed the telltale rash over 80 percent of his body after coming into close contact with his father, who was vaccinated for smallpox before being deployed overseas by the United States Army. The United States military resumed smallpox vaccinations in 2002. The child acquired the infection due to eczema, which is a known risk factor for vaccinia infection. The boy was treated with intravenous immunoglobulin, cidofovir, and Tecovirimat (ST-246), a (then) experimental drug developed by SIGA Technologies.[25] On April 19, 2007, he was sent home with no after effects except for possible scarring of the skin.[24]

In 2010, the Centers for Disease Control and Prevention (CDC) reported that a woman in Washington had contracted vaccinia virus infection after digital vaginal contact with her boyfriend, a military member who had recently been vaccinated for smallpox. The woman had a history of childhood eczema, but she had not been symptomatic as an adult. The CDC indicated that it was aware of four similar cases in the preceding 12 months of vaccinia infection after sexual contact with a recent military vaccinee.[26] Further cases—also in patients with a history of eczema—occurred in 2012.[27]

Common strains

This is a list of some of the well-characterized vaccinia strains used for research and vaccination.{{citation needed|date=October 2016}}

  • Lister (also known as Elstree): the English vaccine strain used by Leslie Collier to develop heat stable vaccine in powdered form. Used as the basis for vaccine production during the World Health Organization Smallpox Eradication Campaign (SEC)
  • Dryvax (also known as "Wyeth"): the vaccine strain previously used in the United States, produced by Wyeth. Used in the SEC, it was replaced in 2008 [28] by ACAM2000 (see below), produced by Acambis. It was produced as preparations of calf lymph which was freeze-dried and treated with antibiotics.
  • EM63; Russian strain used in the SEC
  • ACAM2000: The current strain in use in the USA, produced by Acambis. ACAM2000 was derived from a clone of a Dryvax virus by plaque purification. It is produced in cultures of Vero cells.
  • Modified vaccinia Ankara (also known as MVA): a highly attenuated (not virulent) strain created by passaging vaccinia virus several hundred times in chicken embryo fibroblasts. Unlike some other vaccinia strains it does not make immunodeficient mice sick and therefore may be safer to use in humans who have weaker immune systems due to being very young, very old, having HIV/AIDS, etc.
  • LC16m8: an attenuated strain developed and currently used in Japan
  • CV-1: an attenuated strain developed in the United States and used there in the late 1960s- 1970s
  • Western Reserve
  • Copenhagen
  • Connaught Laboratories (Canada)

References

1. ^{{cite web |title=ICTV 9th Report (2011) Poxviridae |url=https://talk.ictvonline.org/ictv-reports/ictv_9th_report/dsdna-viruses-2011/w/dsdna_viruses/74/poxviridae |website=International Committee on Taxonomy of Viruses (ICTV) |accessdate=17 December 2018 |language=en |format=html}}
2. ^{{cite book | veditors = Ryan KJ, Ray CG | title = Sherris Medical Microbiology | edition = 4th | publisher = McGraw Hill | year = 2004 | isbn = 978-0-8385-8529-0 }}
3. ^{{Cite journal| first1 = L.| first2 = A. K.| first3 = A.| first4 = D.| first5 = R.| title = Characterization of vaccinia virus particles using microscale silicon cantilever resonators and atomic force microscopy| journal = Sensors and Actuators B Chemical| volume = 115| issue = 1| pages = 189–197| last1 = Johnson| year = 2006| doi = 10.1016/j.snb.2005.08.047| last2 = Gupta| last3 = Ghafoor| last4 = Akin| last5 = Bashir}}
4. ^{{cite book |author1=James, William D. |author2=Berger, Timothy G. |title=Andrews' Diseases of the Skin: clinical Dermatology |publisher=Saunders Elsevier |location= |year=2006 |pages= |isbn=978-0-7216-2921-6 |oclc= |doi=|display-authors=etal}}
5. ^{{cite journal |author=Huygelen C |title=Jenner's cowpox vaccine in light of current vaccinology |language=Dutch |journal=Verh. K. Acad. Geneeskd. Belg. |volume=58 |issue=5 |pages=479–536; discussion 537–538 |year=1996 |pmid=9027132 }}
6. ^{{cite book |vauthors=Henderson DA, Moss B |veditors=Plotkin SA, Orenstein WA | title = Vaccines | origyear = 1988 | edition = 3rd | year = 1999 | publisher = WB Saunders | location = Philadelphia, Pennsylvania | isbn = 978-0-7216-7443-8 | chapter = Smallpox and Vaccinia | chapterurl = https://www.ncbi.nlm.nih.gov/books/bv.fcgi?rid=vacc.chapter.3}}
7. ^{{cite journal|doi= 10.1056/NEJMc1707600|pmid= 29020595|title= An Early American Smallpox Vaccine Based on Horsepox|journal= New England Journal of Medicine|volume= 377|issue= 15|pages= 1491–1492|year= 2017|last1= Schrick|first1= Livia|last2= Tausch|first2= Simon H|last3= Dabrowski|first3= P. Wojciech|last4= Damaso|first4= Clarissa R|last5= Esparza|first5= José|last6= Nitsche|first6= Andreas}}
8. ^{{cite journal |vauthors=Tolonen N, Doglio L, Schleich S, Krijnse Locker J |title=Vaccinia Virus DNA Replication Occurs in Endoplasmic Reticulum-enclosed Cytoplasmic Mini-Nuclei |journal=Mol. Biol. Cell |volume=12 |issue=7 |pages=2031–46 |date=1 July 2001|pmid=11452001 |url=http://www.molbiolcell.org/cgi/content/full/12/7/2031 |pmc=55651 |doi=10.1091/mbc.12.7.2031 }}
9. ^{{cite journal |vauthors=Smith GL, Vanderplasschen A, Law M |title=The formation and function of extracellular enveloped Vaccinia virus |journal=J. Gen. Virol. |volume=83 |issue=Pt 12 |pages=2915–31 |date=1 December 2002|pmid=12466468 |url=http://vir.sgmjournals.org/cgi/content/full/83/12/2915 |doi=10.1099/0022-1317-83-12-2915 }}
10. ^{{cite journal |author=ABEL P |title=Multiplicity reactivation and marker rescue with vaccinia virus |journal=Virology |volume=17 |issue= 4|pages=511–9 |date=August 1962 |pmid=13858909 |doi= 10.1016/0042-6822(62)90150-2|url=}}
11. ^{{cite journal |vauthors=Sharp DG, Kim KS |title=Multiplicity reactivation and radiation survival of aggregated vaccinia virus. Calculation of plaque titer based on MR and particle aggregation seen in the electron microscope |journal=Virology |volume=29 |issue=3 |pages=359–66 |date=July 1966 |pmid=5922451 |doi= 10.1016/0042-6822(66)90211-X|url=}}
12. ^{{cite journal |vauthors=Kim KS, Sharp DG |title=Multiplicity reactivation of vaccinia virus particles treated with nitrogen mustard |journal=J. Virol. |volume=1 |issue=1 |pages=45–9 |date=February 1967 |pmid=5623957 |pmc=375503 |doi= }}
13. ^{{cite journal |vauthors=Kim KS, Sharp DG |title=Multiplicity reactivation of gamma- and x-irradiated Vaccinia virus in L cells |journal=Radiat. Res. |volume=33 |issue=1 |pages=30–6 |date=January 1968 |pmid=5634978 |doi= 10.2307/3572239|url=|jstor=3572239 |bibcode=1968RadR...33...30K }}
14. ^{{cite journal |vauthors=Michod RE, Bernstein H, Nedelcu AM | year = 2008 | title = Adaptive value of sex in microbial pathogens | url = | journal = Infect Genet Evol | volume = 8 | issue = 3| pages = 267–285 | doi = 10.1016/j.meegid.2008.01.002 | pmid=18295550}}
15. ^{{cite journal |vauthors=Davies MV, Chang HW, Jacobs BL, Kaufman RJ |title=The E3L and K3L vaccinia virus gene products stimulate translation through inhibition of the double-stranded RNA-dependent protein kinase by different mechanisms |journal=J. Virol. |volume=67 |issue=3 |pages=1688–1692 |date=1 March 1993|pmid=8094759 |pmc=237544 |url=http://jvi.asm.org/cgi/pmidlookup?view=long&pmid=8094759 }}
16. ^{{cite news |url=https://www.chron.com/news/nation-world/article/FDA-approves-new-smallpox-vaccine-1833591.php |title=FDA approves new smallpox vaccine |last=Heilprin |first=John |agency=AP |website=Houston Chronicle |date=1 September 2007 |access-date=25 May 2018}}
17. ^{{cite web |url=http://www.ema.europa.eu/ema/index.jsp?curl=pages/medicines/human/medicines/002596/human_med_001666.jsp&mid=WC0b01ac058001d124 |title=European public assessment report summary: Imvanex}}
18. ^{{cite journal |last1=Vanderplasschen |first1=A. |last2=Pastoret |first2=P.-P. |title=The Uses of Poxviruses as Vectors |journal=Current Gene Therapy |volume=3 |number=6 |date=December 2003 |pages=583–595 |doi=10.2174/1566523034578168}}
19. ^{{cite journal|pmid=9987167|year=1999|last1=Baxby|first1=D|title=Edward Jenner's Inquiry; a bicentenary analysis|volume=17|issue=4|pages=301–307|journal=Vaccine|doi=10.1016/S0264-410X(98)00207-2}}
20. ^Tucker, Jonathan B. Scourge: The Once and Future Threat of Smallpox. New York: Grove/Atlantic Inc., 2001.
21. ^{{cite journal |vauthors=Steinhardt E, Israeli C, Lambert RA | title = Studies on the cultivation of the virus of vaccinia | journal = J. Inf Dis | volume = 13 | issue = 2| pages = 294–300 |date=September 1913 | pmid = | doi = 10.1093/infdis/13.2.294| jstor = 30073371 }}
22. ^{{cite journal|pmc=2065307|year=1939|last1=Downie|first1=AW|title=The Immunological Relationship of the Virus of Spontaneous Cowpox to Vaccinia Virus|volume=20|issue=2|pages=158–176|journal=British Journal of Experimental Pathology}}
23. ^{{Cite journal | last1 = Tyrrell | first1 = D. A. J. | last2 = McCarthy | first2 = K. | doi = 10.1098/rsbm.1990.0004 | title = Allan Watt Downie. September 1901 – 26 January 1988 | journal = Biographical Memoirs of Fellows of the Royal Society | volume = 35 | pages = 98–112 | year = 1990 | pmid = | pmc = | title-link = Allan Watt Downie }}
24. ^{{cite journal |author= Centers for Disease Control and Prevention (CDC) |title=Household transmission of vaccinia virus from contact with a military smallpox vaccinee—Illinois and Indiana, 2007 |journal=Morbidity and Mortality Weekly Report |volume=56 |issue=19 |pages=478–81 |year=2007 |pmid=17510612 |url=https://www.cdc.gov/mmwr/preview/mmwrhtml/mm5619a4.htm?s_cid=mm5619a4_e}}
25. ^{{cite press release | title = SIGA's Smallpox Drug Candidate Administered to Critically Ill Human Patient | publisher = SIGA Technologies | date = 2007-03-17 | url =https://investor.siga.com/node/7346 | accessdate = 2018-07-20 }}
26. ^{{cite journal |author= Centers for Disease Control and Prevention (CDC) |title=Vaccinia Virus Infection After Sexual Contact with a Military Smallpox Vaccinee—Washington, 2010 |journal=Morbidity and Mortality Weekly Report |volume=59 |issue=25 |pages=773–75 |year=2010 |url=https://www.cdc.gov/mmwr/preview/mmwrhtml/mm5925a2.htm?s_cid=mm5925a2_w}}
27. ^{{cite journal |author= Centers for Disease Control and Prevention (CDC) |title=Secondary and tertiary transmission of vaccinia virus after sexual contact with a smallpox vaccinee—San Diego, California, 2012 |journal=Morbidity and Mortality Weekly Report |volume=62 |issue=8 |pages=145–7 |date=March 2013 |pmid=23446513 |pmc=4604863 |doi= |url=https://www.cdc.gov/mmwr/preview/mmwrhtml/mm6208a2.htm}}
28. ^{{cite journal |title=Notice to Readers: Newly Licensed Smallpox Vaccine to Replace Old Smallpox Vaccine |journal=MMWR Morb. Mortal. Wkly. Rep.|volume=57 |issue=8 |pages=207–8 |date=February 29, 2008 |url=https://www.cdc.gov/mmwr/preview/mmwrhtml/mm5708a6.htm}}

Further reading

{{refbegin}}
  • {{cite journal | vauthors = Gubser C, Hué S, Kellam P, Smith GL | title = Poxvirus genomes: a phylogenetic analysis | journal = J Gen Virol |date=January 2004 | volume = 85 | issue = 1 | pages = 105–17 | pmid = 14718625 | url = http://vir.sgmjournals.org/cgi/content/full/85/1/105 | doi = 10.1099/vir.0.19565-0}}
  • {{cite journal |author= Centers for Disease Control and Prevention (CDC)|title=Vulvar vaccinia infection after sexual contact with a military smallpox vaccinee—Alaska, 2006 |journal=MMWR Morb. Mortal. Wkly. Rep. |volume=56 |issue=17 |pages=417–9 |year=2007 |pmid=17476203 |url=https://www.cdc.gov/mmwr/preview/mmwrhtml/mm5617a1.htm}}
  • {{cite journal|pmc=4885089|year=2016|author1=Al Ali|first1=S|title=Use of Reporter Genes in the Generation of Vaccinia Virus-Derived Vectors|journal=Viruses|volume=8|issue=5|pages=134|last2=Baldanta|first2=S|last3=Fernández-Escobar|first3=M|last4=Guerra|first4=S|doi=10.3390/v8050134|pmid=27213433}}
  • {{cite journal|pmc=2440811|pmid=18612436|year=2008|author1=Rubins|first1=K. H.|title=Comparative analysis of viral gene expression programs during poxvirus infection: A transcriptional map of the vaccinia and monkeypox genomes|journal=PLoS ONE|volume=3|issue=7|pages=e2628|last2=Hensley|first2=L. E.|last3=Bell|first3=G. W.|last4=Wang|first4=C|last5=Lefkowitz|first5=E. J.|last6=Brown|first6=P. O.|last7=Relman|first7=D. A.|doi=10.1371/journal.pone.0002628|bibcode=2008PLoSO...3.2628R}}
{{refend}}
  • {{cite web | url = https://www.ncbi.nlm.nih.gov/sites/entrez?Db=genome&Cmd=ShowDetailView&TermToSearch=18372 | publisher = National Center for Biotechnology Information | title = Vaccinia virus, complete genome | accessdate = 2007-07-25}}
  • {{ cite web

|vauthors=Condit RC, Moussatche N, Traktman P | title = The Vaccinia Virion: 3D Tour
| url = http://www.vacciniamodel.com
| accessdate = 2007-07-26
}}
  • {{cite web | title = Smallpox | publisher = Centers for Disease Control and Prevention | url = http://www.bt.cdc.gov/agent/smallpox | work = Emergency Preparedness & Response | accessdate = 2007-07-26 | archive-url = https://web.archive.org/web/20070813192027/http://www.bt.cdc.gov/agent/smallpox/ | archive-date = 2007-08-13 | dead-url = yes | df = }}

External links

{{Medical resources
| ICD10 = B08.0
| ICD9 = {{ICD9|051.0}}
| eMedicineSubj = med
| eMedicineTopic = 2356
| MeshID = D014615
}}
  • Virus Pathogen Database and Analysis Resource (ViPR): Poxviridae
{{Viral cutaneous conditions}}{{Taxonbar|from=Q1986297}}

5 : Vaccinia|Chordopoxvirinae|Virus-related cutaneous conditions|Vaccines|Genetic engineering

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