Literature DB >> 16422010

Family clustering of avian influenza A (H5N1).

Sonja J Olsen, Kumnuan Ungchusak, Ly Sovann, Timothy M Uyeki, Scott F Dowell, Nancy J Cox, William Aldis, Supamit Chunsuttiwat.   

Abstract

Entities:  

Mesh:

Year:  2005        PMID: 16422010      PMCID: PMC3367331          DOI: 10.3201/eid1111.050646

Source DB:  PubMed          Journal:  Emerg Infect Dis        ISSN: 1080-6040            Impact factor:   6.883


× No keyword cloud information.
To the Editor: The unprecedented epizootic of avian influenza A (H5N1) in Asia poses a serious threat of causing the next global influenza pandemic. H5N1 viruses, to which humans have little or no immunity, have demonstrated the capacity to infect humans and cause severe illness and death (–). Fortunately, these viruses have not yet demonstrated the capacity for efficient and sustained person-to-person transmission, although limited person-to-person transmission was the cause of at least 1 family cluster of cases (). Since family clusters of H5N1 illness may be the first suggestion of a viral or epidemiologic change, we have been monitoring them with great interest. Through our regional contacts and public sources, we have monitored family clusters and other aspects of H5N1 in Southeast Asia. A cluster was defined as >2 family members with laboratory-confirmed H5N1 or >2 family members with severe pneumonia or respiratory death, at least one of which had confirmed H5N1. To determine if family cluster events had increased over time, we divided the number of cluster events by the total number of days in 2 discrete periods and calculated rate ratios (RR) and 95% confidence intervals (CI). To determine whether the increase in family clustering was attributable to an increase in the number of cases, we divided the number of family units with >2 laboratory-confirmed cases by the total number of family units in the period. Percentage of deaths was also compared. From January 2004 to July 2005, 109 cases of avian influenza A (H5N1) were officially reported to the World Health Organization (WHO) (). During this time, 15 family clusters were identified (Table). Of the 11 (73%) clusters that occurred in Vietnam, 7 were in northern Vietnam. Cluster size ranged from 2 to 5 persons, and 9 (60%) had >2 persons with laboratory-confirmed H5N1. Cluster 6 in Thailand was well documented and was likely the result of limited person-to-person transmission (). For the other clusters, epidemiologic information was insufficient to determine whether person-to-person transmission occurred. In at least 3 clusters in Vietnam (Table; clusters 5, 7, and 11), >7 days occurred between the onset of the first and the next case, suggesting that simultaneous acquisition from a common source was unlikely. In cluster 11, 2 nurses assisted in the care of the index case-patient and subsequently were hospitalized with severe pneumonia; 1 had laboratory-confirmed H5N1.
Table

Family clusters of influenza A (H5N1) in Southeast Asia, January 2004–July 2005*

ClusterOnset of index caseCountryAge (y)/SexRelation to index caseH5N1OnsetOutcome
1Dec 03Vietnam (N)12/FSelf+Dec 25D
30/FMother+Jan 1D
2Dec 03Vietnam (N)5/MSelf+Dec 29†D
7/FSisterNTNND
3Jan 04Vietnam (N)31/MSelfNTJan 7†D
30/FSister+Jan 10D
28/FWife+Jan 10R
23/FSister+Jan 11D
4Jan 04Thailand6/MSelf+Jan 8D
33/FMotherNTJan 8D
5Jul 04Vietnam (S)19/MSelfNTJul 23D
22/FCousinNTNND
25/FSister+Jul 31D
6Sep 04Thailand11/FSelfNTSep 2D
26/FMother+Sep 11D
32/FAunt+Sep 16R
7Dec 04Vietnam (N)46/MSelf+Dec 26D
42/MBrother+Jan 10†R
36/MBrother+Not illNot ill
8Jan 05Vietnam (S)17/MSelf+Jan 10†D
22/FSisterNNNNUnknown‡
9Jan 05Vietnam (S)35/FSelf+Jan 14D
13/FDaughter+Jan 20D
10Jan 05Cambodia14/MSelfNTNND
25/FSister+Jan 21D
11Feb 05Vietnam (N)21/MSelf+Feb 14Unknown‡
14/FSister+Feb 23Unknown‡
80/MGrandfather+Not illNot ill
12Feb 05Vietnam (N)69/MSelf+Feb 19D
61/FWife+Not illNot ill
13Mar 05Vietnam13/FSelfNTMar 9§D
5/MBrother+Mar 12†R
Adult/FAuntPNNUnknown‡
14Mar 05Vietnam (N)39/MSelf+Mar 22†Unknown‡
Adult/FWife+Mar 22†Unknown‡
4 mo/NNChild+Mar 22†Unknown‡
3/NNChild+Mar 22†Unknown‡
10/NNChild+Mar 22†Unknown‡
15Jul 05Indonesia8/FSelfJun 24D
1/FSisterNTJun 29D
38/MFather+Jul 2D

*D, respiratory death; N, north; NT, not tested; NN, not noted; P, pending; R, recovered; S, south.
†Date of hospitalization.
‡Had respiratory symptoms, was hospitalized (unknown for #13), and outcome was unknown.
§Date of death.
¶Serologically confirmed; classified as a probable case by the World Health Organization.

*D, respiratory death; N, north; NT, not tested; NN, not noted; P, pending; R, recovered; S, south.
†Date of hospitalization.
‡Had respiratory symptoms, was hospitalized (unknown for #13), and outcome was unknown.
§Date of death.
¶Serologically confirmed; classified as a probable case by the World Health Organization. Family clusters were slightly more likely to have occurred between December 2004 and July 2005 than in the first year of the outbreak (9 clusters in 243 days or 3.7 per 100 days vs. 6 clusters in 365 days or 1.6 per 100 days, respectively; RR 2.3, 95% CI 0.8–6.3). The difference was similar when the periods were limited to the same 8 months, 1 year apart (RR 1.8, 95% CI 0.6–5.4). Twenty-five (61%) of the 41 patients in the 15 family clusters died; the 7 persons who recovered or were not ill experienced secondary cases. Family clusters are still occurring; however, they do not appear to be increasing as a proportion of total cases. The proportion of families that were part of a cluster was similar from December 2004 to July 2005 to the proportion in the first year (6/55, 11% vs. 3/41, 7%, respectively, p = 0.7). However, the proportion of deaths dropped significantly, from 32 of 44 (73%) during December 2003 to November 2004, to 23 of 65 (35%) during December 2004 to July 2005 (p<0.0001). Although reports of H5N1 family clusters slightly increased, the increase was not statistically significant. Nevertheless, we believe any cluster of cases is of great concern and should be promptly and thoroughly investigated because it might be the first indication of viral mutations resulting in more efficient person-to-person spread. Family clustering does not necessarily indicate person-to-person transmission, as it may also result from common household exposures to the same H5N1-infected poultry or from other exposures, such as to uncooked poultry products. The decrease in proportion of deaths during 2005 is another epidemiologic change that should be monitored closely because it may reflect viral adaptation to the human host. Surveillance for human cases of avian influenza has been intensified in recent months, perhaps resulting in the identification of less severe cases. Alternatively, more widespread laboratory testing may be associated with false-positive results. No evidence to date shows genetic reassortment between H5N1 and human influenza A viruses (). Viruses isolated from case-patients need to be immediately sequenced and characterized in relation to previously circulating viruses to see whether they are evolving. Recent modeling studies suggest that containing a pandemic at its source may be possible because emergent pandemic viruses may be less transmissible than commonly assumed (), and antiviral treatment and chemoprophylaxis may slow the spread (). Although the logistics of an attempt to contain the beginning of a potential influenza pandemic are formidable, we believe it is not beyond the capability of the modern global public health system. As WHO () has called for, countries should intensify their pandemic preparedness plans and strengthen international collaborations.
  8 in total

1.  Avian influenza--a challenge to global health care structures.

Authors:  Tran Tinh Hien; Menno de Jong; Jeremy Farrar
Journal:  N Engl J Med       Date:  2004-12-02       Impact factor: 91.245

2.  Containing pandemic influenza at the source.

Authors:  Ira M Longini; Azhar Nizam; Shufu Xu; Kumnuan Ungchusak; Wanna Hanshaoworakul; Derek A T Cummings; M Elizabeth Halloran
Journal:  Science       Date:  2005-08-03       Impact factor: 47.728

3.  Probable person-to-person transmission of avian influenza A (H5N1).

Authors:  Kumnuan Ungchusak; Prasert Auewarakul; Scott F Dowell; Rungrueng Kitphati; Wattana Auwanit; Pilaipan Puthavathana; Mongkol Uiprasertkul; Kobporn Boonnak; Chakrarat Pittayawonganon; Nancy J Cox; Sherif R Zaki; Pranee Thawatsupha; Malinee Chittaganpitch; Rotjana Khontong; James M Simmerman; Supamit Chunsutthiwat
Journal:  N Engl J Med       Date:  2005-01-24       Impact factor: 91.245

4.  A child with avian influenza A (H5N1) infection.

Authors:  Kulkanya Chokephaibulkit; Mongkol Uiprasertkul; Pilaipan Puthavathana; Pimpanada Chearskul; Prasert Auewarakul; Scott F Dowell; Nirun Vanprapar
Journal:  Pediatr Infect Dis J       Date:  2005-02       Impact factor: 2.129

5.  Cases of influenza A (H5N1)--Thailand, 2004.

Authors: 
Journal:  MMWR Morb Mortal Wkly Rep       Date:  2004-02-13       Impact factor: 17.586

6.  Evolution of H5N1 avian influenza viruses in Asia.

Authors: 
Journal:  Emerg Infect Dis       Date:  2005-10       Impact factor: 6.883

7.  Transmissibility of 1918 pandemic influenza.

Authors:  Christina E Mills; James M Robins; Marc Lipsitch
Journal:  Nature       Date:  2004-12-16       Impact factor: 49.962

8.  Human disease from influenza A (H5N1), Thailand, 2004.

Authors:  Tawee Chotpitayasunondh; Kumnuan Ungchusak; Wanna Hanshaoworakul; Supamit Chunsuthiwat; Pathom Sawanpanyalert; Rungruen Kijphati; Sorasak Lochindarat; Panida Srisan; Pongsan Suwan; Yutthasak Osotthanakorn; Tanakorn Anantasetagoon; Supornchai Kanjanawasri; Sureeporn Tanupattarachai; Jiranun Weerakul; Ruangsri Chaiwirattana; Monthira Maneerattanaporn; Rapol Poolsavathitikool; Kulkunya Chokephaibulkit; Anucha Apisarnthanarak; Scott F Dowell
Journal:  Emerg Infect Dis       Date:  2005-02       Impact factor: 6.883

  8 in total
  42 in total

Review 1.  H5N1 influenza viruses: outbreaks and biological properties.

Authors:  Gabriele Neumann; Hualan Chen; George F Gao; Yuelong Shu; Yoshihiro Kawaoka
Journal:  Cell Res       Date:  2009-11-03       Impact factor: 25.617

Review 2.  The role of receptor binding specificity in interspecies transmission of influenza viruses.

Authors:  Masaki Imai; Yoshihiro Kawaoka
Journal:  Curr Opin Virol       Date:  2012-03-24       Impact factor: 7.090

3.  In vitro evolution of H5N1 avian influenza virus toward human-type receptor specificity.

Authors:  Li-Mei Chen; Ola Blixt; James Stevens; Aleksandr S Lipatov; Charles T Davis; Brian E Collins; Nancy J Cox; James C Paulson; Ruben O Donis
Journal:  Virology       Date:  2011-11-05       Impact factor: 3.616

4.  Lack of transmission of H5N1 avian-human reassortant influenza viruses in a ferret model.

Authors:  Taronna R Maines; Li-Mei Chen; Yumiko Matsuoka; Hualan Chen; Thomas Rowe; Juan Ortin; Ana Falcón; Tran Hien Nguyen; Le Quynh Mai; Endang R Sedyaningsih; Syahrial Harun; Terrence M Tumpey; Ruben O Donis; Nancy J Cox; Kanta Subbarao; Jacqueline M Katz
Journal:  Proc Natl Acad Sci U S A       Date:  2006-07-31       Impact factor: 11.205

5.  Pathogenesis of 1918 pandemic and H5N1 influenza virus infections in a guinea pig model: antiviral potential of exogenous alpha interferon to reduce virus shedding.

Authors:  Neal Van Hoeven; Jessica A Belser; Kristy J Szretter; Hui Zeng; Peter Staeheli; David E Swayne; Jacqueline M Katz; Terrence M Tumpey
Journal:  J Virol       Date:  2009-01-14       Impact factor: 5.103

Review 6.  H5N1 pathogenesis studies in mammalian models.

Authors:  Jessica A Belser; Terrence M Tumpey
Journal:  Virus Res       Date:  2013-02-28       Impact factor: 3.303

Review 7.  Oseltamivir in human avian influenza infection.

Authors:  James R Smith
Journal:  J Antimicrob Chemother       Date:  2010-04       Impact factor: 5.790

8.  Enhanced susceptibility of nasal polyp tissues to avian and human influenza viruses.

Authors:  Ornpreya Suptawiwat; Pongsakorn Tantilipikorn; Chompunuch Boonarkart; Jate Lumyongsatien; Mongkol Uiprasertkul; Pilaipan Puthavathana; Prasert Auewarakul
Journal:  PLoS One       Date:  2010-09-24       Impact factor: 3.240

9.  Host genetic variation affects resistance to infection with a highly pathogenic H5N1 influenza A virus in mice.

Authors:  Adrianus C M Boon; Jennifer deBeauchamp; Anna Hollmann; Jennifer Luke; Malak Kotb; Sarah Rowe; David Finkelstein; Geoffrey Neale; Lu Lu; Robert W Williams; Richard J Webby
Journal:  J Virol       Date:  2009-08-12       Impact factor: 5.103

10.  Little evidence for genetic susceptibility to influenza A (H5N1) from family clustering data.

Authors:  Virginia E Pitzer; Sonja J Olsen; Carl T Bergstrom; Scott F Dowell; Marc Lipsitch
Journal:  Emerg Infect Dis       Date:  2007-07       Impact factor: 6.883

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.