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_|INDONESIA_RUSSIA: VACCINE DEAL?|_

Giuseppe

Emeritus
RI to receive Russian Avian flu vaccines
Antara , Tangerang, Banten | Sat, 05/24/2008 7:15 PM | National

Health Minister Siti Fadillah Supari said Russia has step forward to offer Indonesia anti-Avian influenza (AI) vaccine assistance.

"The AI vaccine is different from the previous one because this vaccine is in the form of nasal spray," Supari said upon her arrival at Soekarno-Hatta International Airport from an overseas trip Saturday.

AI vaccines are usually injected to infected patients.

The Russian government also offered to cooperate in other health-related matters such as medical professionals trainings and medicine provision, the minister added.

According to the World Health Organization (WHO), 382 people have been infected with a highly pathogenic avian flu strain since 2003; 241 of which have died.

Apart from Russia, Indonesia has also received support and cooperation offers from the United Kingdom, Iran and Australia, Supari said.

"However, only Russia has so far confirmed, while the rest are still being processed," she said. (*)
-
http://www.thejakartapost.com/news/2008/05/24/ri-receive-russian-avian-flu-vaccines.html
------
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

is the vaccine also different from "the previous one" in that it uses a
different target-strain ?

what's with the Baxter-deal ?
Is the Baxter vaccine being used since Nov.2007 as announced (2M doses) ?
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

There seems to be some confusion in this article as to whether they are talking about a nasally administered antiviral such as Relenza (zanamivir) which would be given to infected patients or a true nasally administered vaccine which would probably be a live attenuated vaccine....
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

I found this:

Russia proposes bird flu vaccine cooperation with Southeast Asia
RIA Novosti
27/03/2008 18:04 NUSA DUA (Indonesia), March 27 (RIA Novosti) - Russia is ready to cooperate with Southeast Asia in producing bird flu vaccines...
"We have developed two [bird flu] vaccines, one is being registered and the other is currently being tested," said Igor Krasilnikov, a senior R&D specialist at the Moscow-based Mikrogen company said.
Mikrogen has 14 subsidiaries producing bird flu vaccines across Russia and is the country's leader in the area. The company has already signed an agreement with the World Health Organization (WHO) to produce vaccines in Indonesia, Vietnam and Thailand, where bird flu is most prevalent.
Medics in Vietnam are also currently testing a bird flu vaccine. The first clinical trial was successfully carried out in early March, when a group of volunteers was injected with the vaccine.
Further clinical trials are scheduled for early April. The vaccine will be recognized as having passed human trials when it has been tested among at least 300 people.
The country has over 1.4 billion chickens with 30 million families keeping the birds
...
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

The use of any vaccine has its trade-offs... Use of live virus vaccines need to be evaluated carefully especially for certain patient groups... Here are a few articles I found on the use of live attenuated viruses for influenza...

http://www.continuitycentral.com/news02321.htm

Potential breakthrough in H5N1 vaccine development

University of Pittsburgh researchers have announced that they have genetically engineered an avian flu vaccine from the critical components of the deadly H5N1 virus that completely protected mice and chickens from infection.

Because this vaccine contains a live virus, it may be more immune-activating than avian flu vaccines prepared by traditional methods, say the researchers. Furthermore, because it is grown in cells, it can be produced much more quickly than traditional vaccines, making it an extremely attractive candidate for preventing the spread of the virus in domestic livestock populations and, potentially, in humans, according to the study, to be published in the February 15 issue of the Journal of Virology and made available early online.

"The results of this animal trial are very promising, not only because our vaccine completely protected animals that otherwise would have died, but also because we found that one form of the vaccine stimulates several lines of immunity against H5N1," said Andrea Gambotto, M.D., assistant professor in the departments of surgery and molecular genetics and biochemistry, University of Pittsburgh School of Medicine, and lead author of the study.

Dr. Gambotto and his colleagues constructed the vaccine by genetically engineering a common cold virus, called adenovirus, to express either all or parts of an avian influenza protein called hemagglutinin (HA) on its surface. Found on the surface of all influenza viruses, HA allows the virus to attach to the cell that is being infected and is, therefore, critical to the influenza virus' ability to cause illness and death.

Based on the published sequence of the Vietnam strain of the H5N1 avian influenza virus, members of the University of Pittsburgh Vector Core Facility, led by Wentao Gao, Ph.D., research instructor in the School of Medicine's department of surgery, constructed several adenovirus "vectors"- viruses that have been modified to serve as a vector, or delivery vehicle, for foreign genes or DNA - containing either the full genetic sequence of the HA protein or sequences for only parts, or subunits, of HA. They also constructed a vector containing sequences for a portion of the HA protein from the H5N1 Hong Kong strain.

Collaborating with investigators Xiuhua Lu, Ph.D., Doan C. Nguyen, M.D., Yumi Matsuoka, Ph.D., Ruben O. Donis, Ph.D., and Jaquelin M. Katz, Ph.D., of the Influenza Branch of the Centers for Disease Control and Prevention, Dr. Gambotto's team tested the ability of their slightly different vaccines to protect mice from infection by wild-type H5N1 by comparing its performance to an adenovirus vector containing no H5N1 genes, or an "empty vector." The investigators then observed the H5NI-exposed mice for any signs of illness, including weight loss and death, and also checked their blood for anti-viral antibodies and other markers of H5N1-specific immunity.

All of the mice immunized with the empty vector vaccine experienced substantial weight loss beginning about three days after exposure to wild-type H5N1, and all were dead within six to nine days of avian flu exposure. In sharp contrast, most of the mice immunized with the adenovirus containing either the whole or part of the HA protein showed only mild and short-lived weight loss and survived H5N1 infection.

When the investigators looked for evidence of a specific immune response to H5N1, they found similar results. Although they were able to isolate high levels of infectious H5N1 from multiple organs in the mice vaccinated with the empty vector, and to various degrees in animals vaccinated with the vectors containing the HA subunits, they isolated only very small amounts of H5N1 from the mice immunized with the full-length HA vaccine three days after infection. Six days after infection, they could not detect any infectious H5N1 in the organs of mice immunized with the full-length HA vaccine.

Moreover, when they looked at the cellular immune response to vaccination, they found that all of the animals immunized with full-length HA or the subunit vaccines developed strong cellular immune responses. However, only the full-length HA-immunized mice developed strong T-cell responses to both of the HA subunits. According to Simon Barratt-Boyes, B.V.Sc., Ph.D., associate professor, department of infectious diseases and microbiology, University of Pittsburgh Graduate School of Public Health, and one of the co-authors of the study, the ability of this particular recombinant vaccine - a vaccine carrying only the important immune-stimulating proteins - to induce both antibody- and T cell-directed immunity is extremely encouraging.

"This means that this recombinant vaccine can stimulate several lines of defense against the H5N1 virus, giving it greater therapeutic value. More importantly, it suggests that even if H5N1 mutates, the vaccine is still likely to be effective against it. How effective, we are not sure
," Dr. Barratt-Boyes cautioned. "We won't know until that occurs."

Based on the superior degree of protection that they found in mice vaccinated with full-length HA vaccine, Dr. Gambotto's group, working with David E. Swayne, D.V.M., Ph.D., at the U.S. Department of Agriculture, tested its effectiveness in chickens, which have almost a 100 percent mortality rate to H5N1 exposure. In all, the researchers inoculated four groups of chickens either through their noses (intranasally) or with subcutaneous injections of either the HA-containing vaccine or the empty vector vaccine. The chickens were then challenged with a dose of whole H5N1 virus 10,000 times greater than the dose given to the mice and significantly greater than the dose farm chickens are likely to be exposed to during a natural outbreak.

Interestingly, all of the chickens that were immunized subcutaneously survived exposure to H5N1, developed strong HA-specific antibody responses and showed no clinical signs of disease. In contrast, half of the chickens immunized intranasally died and half survived. All of the chickens immunized with the empty vector (intranasally and subcutaneously) died within two days of H5N1 exposure. The researchers are still not yet sure why the subcutaneous delivery is more effective than the intranasal delivery of the vaccine, but they suggested it may be because the adenovirus vector they used has limited infectivity via the nose and respiratory tract.

Dr. Gambotto and his colleagues suggest that rather than replacing traditional inactivated influenza vaccines, their adenovirus-based vaccine could be a critically important complement to them. Because it appears to be so successful in immunizing chickens against H5N1, widespread inoculation of susceptible poultry populations could provide a significant barrier to the spread of the virus via that route in this country and other countries that have so far been spared from avian flu. Also, if there were a disruption in the traditional vaccine production pipeline, a recombinant vaccine could be an attractive alternative for human immunization as well, they said.

Indeed, according to Dr. Gambotto, there are several major advantages to this type of vaccine development approach over traditional approaches. Flu vaccines currently are prepared in fertilized chicken eggs, a process developed more than 50 years ago that requires millions of fertilized eggs that would be in short supply if a pandemic were to occur. The recombinant vaccine approach grows the vaccine in cell cultures, which are unlimited in supply. Another major advantage of this approach is its speed.

"It takes a little over a month for us to develop a recombinant vector vaccine compared to a minimum of several months via traditional methods," he explained. "This capacity will be particularly invaluable if the virus begins to mutate rapidly, a phenomenon that often limits the ability of traditional vaccines to contain outbreaks of mutant strains." Dr. Gambotto added that his group is planning a small clinical trial of the vaccine in humans in the very near future.

The research was supported by internal University of Pittsburgh funds. Others involved in this study include Paul D. Robins, Ph.D. and Angela Montecalvo, Ph.D., University of Pittsburgh School of Medicine; and Adam C. Soloff, B.S., University of Pittsburgh Graduate School of Public Health.


http://medicine.plosjournals.org/perlserv?request=get-document&doi=10.1371/journal.pmed.0030360

Live, Attenuated Influenza A H5N1 Candidate Vaccines Provide Broad Cross-Protection in Mice and Ferrets


Amorsolo L. Suguitan Jr.1, Josephine McAuliffe1, Kimberly L. Mills1, Hong Jin2, Greg Duke2, Bin Lu2, Catherine J. Luke1, Brian Murphy1, David E. Swayne3, George Kemble2, Kanta Subbarao1*

1 Laboratory of Infectious Diseases, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, Maryland, United States of America, 2 MedImmune Vaccines, Mountain View, California, United States of America, 3 Southeast Poultry Research Laboratory, Agricultural Research Service, United States Department of Agriculture, Athens, Georgia, United States of America

Background
Recent outbreaks of highly pathogenic influenza A H5N1 viruses in humans and avian species that began in Asia and have spread to other continents underscore an urgent need to develop vaccines that would protect the human population in the event of a pandemic.

Methods and Findings
Live, attenuated candidate vaccines possessing genes encoding a modified H5 hemagglutinin (HA) and a wild-type (wt) N1 neuraminidase from influenza A H5N1 viruses isolated in Hong Kong and Vietnam in 1997, 2003, and 2004, and remaining gene segments derived from the cold-adapted (ca) influenza A vaccine donor strain, influenza A/Ann Arbor/6/60 ca (H2N2), were generated by reverse genetics. The H5N1 ca vaccine viruses required trypsin for efficient growth in vitro, as predicted by the modification engineered in the gene encoding the HA, and possessed the temperature-sensitive and attenuation phenotypes specified by the internal protein genes of the ca vaccine donor strain. More importantly, the candidate vaccines were immunogenic in mice. Four weeks after receiving a single dose of 106 50% tissue culture infectious doses of intranasally administered vaccines, mice were fully protected from lethality following challenge with homologous and antigenically distinct heterologous wt H5N1 viruses from different genetic sublineages (clades 1, 2, and 3) that were isolated in Asia between 1997 and 2005. Four weeks after receiving two doses of the vaccines, mice and ferrets were fully protected against pulmonary replication of homologous and heterologous wt H5N1 viruses.

Conclusions
The promising findings in these preclinical studies of safety, immunogenicity, and efficacy of the H5N1 ca vaccines against antigenically diverse H5N1 vaccines provide support for their careful evaluation in Phase 1 clinical trials in humans.

Funding: This research was supported in part by the Intramural Research Program of the NIH, NIAID. The funders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.
Competing Interests: The authors have declared that no competing interests exist.

Academic Editor: Joseph S. M. Peiris, The University of Hong Kong, China

Citation: Suguitan Jr. AL, McAuliffe J, Mills KL, Jin H, Duke G, et al. (2006) Live, Attenuated Influenza A H5N1 Candidate Vaccines Provide Broad Cross-Protection in Mice and Ferrets. PLoS Med 3(9): e360 doi:10.1371/journal.pmed.0030360
Received: April 25, 2006; Accepted: August 1, 2006; Published: September 12, 2006

http://content.nejm.org/cgi/content/full/356/7/685
New England Journal of Medicine Volume 356:685-696 February 15, 2007 Number 7

Live Attenuated versus Inactivated Influenza Vaccine in Infants and Young Children

Robert B. Belshe, M.D., Kathryn M. Edwards, M.D., Timo Vesikari, M.D., Steven V. Black, M.D., Robert E. Walker, M.D., Micki Hultquist, M.S., George Kemble, Ph.D., Edward M. Connor, M.D., for the CAIV-T Comparative Efficacy Study Group

ABSTRACT
Background Universal vaccination of children 6 to 59 months of age with trivalent inactivated influenza vaccine has recently been recommended by U.S. advisory bodies. To evaluate alternative vaccine approaches, we compared the safety and efficacy of intranasally administered live attenuated influenza vaccine with those of inactivated vaccine in infants and young children.

Methods Children 6 to 59 months of age, without a recent episode of wheezing illness or severe asthma, were randomly assigned in a 1:1 ratio to receive either cold-adapted trivalent live attenuated influenza vaccine (a refrigeration-stable formulation of live attenuated intranasally administered influenza vaccine) or trivalent inactivated vaccine in a double-blind manner. Influenza-like illness was monitored with cultures throughout the 2004?2005 influenza season.

Results Safety data were available for 8352 children, and 7852 children completed the study according to the protocol. There were 54.9% fewer cases of cultured-confirmed influenza in the group that received live attenuated vaccine than in the group that received inactivated vaccine (153 vs. 338 cases, P<0.001). The superior efficacy of live attenuated vaccine, as compared with inactivated vaccine, was observed for both antigenically well-matched and drifted viruses. Among previously unvaccinated children, wheezing within 42 days after the administration of dose 1 was more common with live attenuated vaccine than with inactivated vaccine, primarily among children 6 to 11 months of age; in this age group, 12 more episodes of wheezing were noted within 42 days after receipt of dose 1 among recipients of live attenuated vaccine (3.8%) than among recipients of inactivated vaccine (2.1%, P=0.076). Rates of hospitalization for any cause during the 180 days after vaccination were higher among the recipients of live attenuated vaccine who were 6 to 11 months of age (6.1%) than among the recipients of inactivated vaccine in this age group (2.6%, P=0.002).

Conclusions Among young children, live attenuated vaccine had significantly better efficacy than inactivated vaccine. An evaluation of the risks and benefits indicates that live attenuated vaccine should be a highly effective, safe vaccine for children 12 to 59 months of age who do not have a history of asthma or wheezing. (ClinicalTrials.gov number, NCT00128167 [ClinicalTrials.gov] .)

Discussion
Many believe that the successful control of annual influenza epidemics depends on vaccinating a high proportion of children.16,17,18 As U.S. public health authorities move toward this goal, highly effective vaccines are needed, including vaccines with efficacy against antigenically drifted influenza strains. The live attenuated influenza vaccine we used has many of the characteristics that are desirable for the control of epidemic influenza. In addition to its high acceptability because of the mode of administration, the significantly higher efficacy of this live attenuated vaccine than of the licensed inactivated vaccine suggests that it can play an important role in the control of influenza. This higher efficacy was seen not only for well-matched strains but also for viruses that were antigenically drifted from the antigen in the vaccine.

Some earlier studies have suggested the potential for wheezing in young children after receipt of live attenuated influenza vaccine,15 whereas others have not.10,16 Our comprehensive, prospective safety study showed an increased risk of medically significant wheezing (within 42 days after vaccination) among recipients of live attenuated vaccine who were younger than 12 months of age. The pathogenesis of wheezing in some children given live attenuated vaccine remains unknown, although in our study, the wheezing developed after the peak of viral replication and at the time when immune responses to the viruses are expected ? that is, during weeks 2, 3, and 4 after vaccination.

The incidence of serious adverse events did not differ significantly between the two groups. However, in post hoc analyses, rates of hospitalization for any cause among infants 6 to 11 months of age were significantly higher in the live-attenuated-vaccine group than in the inactivated-vaccine group. In addition, higher, but not significantly higher, rates of hospitalization were observed among children in the age groups of 12 to 23 months, 24 to 35 months, and 36 to 47 months who had a history of wheezing illness before entering the study. These observations require further study. Children 12 months of age or older who had no history of wheezing illness before vaccination and who received live attenuated vaccine had lower rates of hospitalization for any cause during the study than those who received inactivated vaccine. On the basis of our results, the risk?benefit ratio for live attenuated vaccine appears favorable among children 12 to 47 months of age who have no history of wheezing.

Until additional data are available, the observations related to medically significant wheezing and rates of hospitalization will restrict the use of live attenuated vaccine in children younger than 1 year and in children 12 to 47 months of age who have a history of asthma or wheezing. Additional studies to determine the optimal use of both vaccines in infants and young children are warranted. The high influenza attack rate among children in the inactivated-vaccine group who were less than 12 months of age and had a history of wheezing (14%) suggests that inactivated vaccine has low efficacy in this group. Further studies might show whether an initial dose of inactivated vaccine followed by live attenuated vaccine would provide optimal protection for children younger than 1 year of age while also ensuring maximum vaccine safety.

http://www.journals.uchicago.edu/doi/abs/10.1086/315246

The Journal of Infectious Diseases 2000;181:725?728
? 2000 by the Infectious Diseases Society of America. All rights reserved.
0022-1899/2000/18102-0044$02.00
CONCISE COMMUNICATION

Comparison of the Safety, Vaccine Virus Shedding, and Immunogenicity of Influenza Virus Vaccine, Trivalent, Types A and B, Live Cold-Adapted, Administered to Human Immunodeficiency Virus (HIV)-Infected and Non-HIV-Infected Adults

James C. King, Jr.,1 John Treanor,4 Patricia E. Fast,5 Mark Wolff,2 Lihan Yan,2 Dominic Iacuzio,3,a Bernard Readmond,1 Diane O'Brien,4 Kenneth Mallon,5 William E. Highsmith,1 John S. Lambert,1 and Robert B. Belshe6
1University of Maryland Medical Center, Baltimore, 2EMMES Corp., Potomac, and 3National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, Maryland; 4University of Rochester Medical Center, Rochester, New York; 5Aviron, Mountain View, California; 6Saint Louis University School of Medicine, St. Louis, Missouri

Fifty-seven human immunodeficiency virus (HIV)-infected (CDC class A1-2) and 54 non-HIV-infected adults, not prescreened for influenza susceptibility, were randomized to receive trivalent live attenuated influenza vaccine (LAIV) or placebo intranasally. LAIV was safe and well tolerated with no serious adverse events attributable to vaccine. Reactogenicity rates were similar in LAIV and placebo recipients except that runny nose/nasal congestion was significantly more common in LAIV recipients regardless of HIV status. No prolonged shedding of LAIV was observed in HIV-infected participants. HIV RNA levels were not increased and CD4 counts were not decreased in HIV-infected LAIV recipients compared with placebo recipients after immunization. Shedding of LAIV and increases in antibody titers were infrequent, consistent with prior experience in unscreened adults. The data suggest that inadvertent vaccination with LAIV in relatively asymptomatic HIV-infected adults would not be associated with frequent significant adverse events.

Received 14 June 1999; revised 24 September 1999; electronically published 8 February 2000.

Written informed consent was obtained from all study subjects. Human experimentation guidelines of the US Department of Health and Human Services and of each institution (University of Maryland at Baltimore, University of Rochester) were followed during this research study.
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

The use of any vaccine has its trade-offs... Use of live virus vaccines need to be evaluated carefully especially for certain patient groups... Here are a few articles I found on the use of live attenuated viruses for influenza...

See also: (at FT)

Options for the use of human H5N1 influenza vaccines and the WHO H5N1 vaccine stockpile Geneva, Switzerland, 1?3 October 2007

1. Characteristics of candidate human H5N1 influenza vaccines

1.1. Safety
Q1.1 Are there important safety concerns about current H5N1 vaccines ?
(...)
One concern that was discussed was the possibility that use of a live-attenuated vaccine based upon an H5N1 virus in a non-pandemic situation could result in genetic reassortment between the vaccine virus and a seasonal human virus.
This potentially could lead to the creation of a hybrid virus.
The overall probability of such an event was considered to be low but not zero.
It was therefore considered prudent to avoid using live attenuated H5N1 vaccines during a nonpandemic period.
There are only very limited reports of transmission of a live-attenuated seasonal influenza vaccine virus from a vaccinated child to another person.
(...)
Current considerations: (...)
If an H5 pandemic develops, use of live attenuated influenza vaccines, based upon a pandemic H5 virus, may be beneficial.
Live attenuated vaccines have certain advantages in a pandemic scenario.
They might, for example, be produced more efficiently, and might also be more immunogenic following a single application, than some other types of vaccine.
However, in light of current knowledge, the use of a live attenuated vaccine, based on the H5N1 virus, in a non-pandemic period when H5N1 viruses are not in wide circulation, may not be prudent.
More studies are needed to guide usage of this type of H5N1 vaccine.
(....)
-
http://www.flutrackers.com/forum/showpost.php?p=157823&postcount=2
-----
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

Definitely a difficult decision how soon to implement these vaccines...
One point that I find troubling is this ""Four weeks after receiving two doses of the vaccines, mice and ferrets were fully protected against pulmonary replication of homologous and heterologous wt H5N1 viruses.""

It's unsure how much advance notice we will have that a pandemic is underway. If it is very short as some think may happen in light of many transparency issues it would be extemely difficult if not impossible to properly immunize large portions of the world's population.

On the other hand we don't know what the pandemic virus will be so we could be involved in a huge waste of money and resources with little or no protection...

But I think it's hard to argue especially with populations that are on the front line with this dangerous virus that want to try and get some level of immunity into their populations...
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

I think we may need to "settle" for some cross-immunity: http://www.flutrackers.com/forum/showthread.php?p=119294

hat - tip Niko:


Cross-Protection against H5N1 Influenza Virus Infection Is Afforded by Intranasal Inoculation with Seasonal Trivalent Inactivated Influenza Vaccine

<table border="0" cellpadding="0" cellspacing="0" width="450"> <tbody> <tr><td class="contentAuthor"><author><fname>Takeshi </fname><surname>Ichinohe</surname></author>, <author><fname>Shin-ichi </fname><surname>Tamura</surname></author>, <author><fname>Akira </fname><surname>Kawaguchi</surname></author>, <author><fname>Ai </fname><surname>Ninomiya</surname></author>, <author><fname>Masaki </fname><surname>Imai</surname></author>, <author><fname>Shigeyuki </fname><surname>Itamura</surname></author>, <author><fname>Takato </fname><surname>Odagiri</surname></author>, <author><fname>Masato </fname><surname>Tashiro</surname></author>, <author><fname>Hidehiro </fname><surname>Takahashi</surname></author>, <author><fname>Hirofumi </fname><surname>Sawa</surname></author>, <author><fname>William M. </fname><surname>Mitchell</surname></author>, <author><fname>David R. </fname><surname>Strayer</surname></author>, <author><fname>William A. </fname><surname>Carter</surname></author>, <author><fname>Joe </fname><surname>Chiba</surname></author>, <author><fname>Takeshi </fname><surname>Kurata</surname></author>, <author><fname>Tetsutaro </fname><surname>Sata</surname></author>, and <author><fname>Hideki </fname><surname>Hasegawa</surname></author></td></tr> <tr><td>
</td></tr> <tr><td>Volume 196(2007), pages 1313 - 1320
DOI: 10.1086/521304

</td></tr> </tbody> </table> <table border="0" cellpadding="0" cellspacing="0"><tbody><tr><td>Abstract

</td></tr> <tr><td>Background. Avian H5N1 influenza A virus is an emerging pathogen with the potential to cause substantial human morbidity and mortality. We evaluated the ability of currently licensed seasonal influenza vaccine to confer cross-protection against highly pathogenic H5N1 influenza virus in mice.

Methods. BALB/c mice were inoculated 3 times, either intranasally or subcutaneously, with the trivalent inactivated influenza vaccine licensed in Japan for the 2005
ndash.gif
2006 season. The vaccine included A/NewCaledonia/20/99 (H1N1), A/NewYork/55/2004 (H3N2), and B/Shanghai/361/2002 viral strains and was administered together with poly(I):poly(C<tinf>12</tinf>U) (Ampligen) as an adjuvant. At 14 days after the final inoculation, the inoculated mice were challenged with either the A/HongKong/483/97, the A/Vietnam/1194/04, or the A/Indonesia/6/05 strain of H5N1 influenza virus.

Results. Compared with noninoculated mice, those inoculated intranasally manifested cross-reactivity of mucosal IgA and serum IgG with H5N1 virus, as well as both a reduced H5N1 virus titer in nasal-wash samples and increased survival, after challenge with H5N1 virus. Subcutaneous inoculation did not induce a cross-reactive IgA response and did not afford protection against H5N1 viral infection.

Conclusions. Intranasal inoculation with annual influenza vaccine plus the Toll-like receptor
ndash.gif
3 agonist, poly(I):poly(C<tinf>12</tinf>U), may overcome the problem of a limited supply of H5N1 virus vaccine by providing cross-protective mucosal immunity against H5N1 viruses with pandemic potential.

</td></tr> <tr><td>
spacer.gif

http://www.journals.uchicago.edu/ucp...t_page=content</td></tr></tbody></table>


and hat - tip Anne -


http://www.cdc.gov/eid/content/14/1/121.htm



Research

Cross-subtype Immunity against Avian Influenza in Persons Recently Vaccinated for Influenza

Cristiana Gioia,* Concetta Castilletti,* Massimo Tempestilli,* Paola Piacentini,* Licia Bordi,* Roberta Chiappini,* Chiara Agrati,* Salvatore Squarcione,* Giuseppe Ippolito,* Vincenzo Puro,* Maria R. Capobianchi,* and Fabrizio Poccia*
*National Institute for Infectious Diseases "Lazzaro Spallanzani," Rome, Italy
Suggested citation for this article
Abstract
Avian influenza virus (H5N1) can be transmitted to humans, resulting in a severe or fatal disease. The aim of this study was to evaluate the immune cross-reactivity between human and avian influenza (H5N1) strains in healthy donors vaccinated for seasonal influenza A (H1N1)/(H3N2). A small frequency of CD4 T cells specific for subtype H5N1 was detected in several persons at baseline, and seasonal vaccine administration enhanced the frequency of such reactive CD4 T cells. We also observed that seasonal vaccination is able to raise neutralizing immunity against influenza (H5N1) in a large number of donors. No correlation between influenza-specific CD4 T cells and humoral responses was observed. N1 may possibly be a target for both cellular and humoral cross-type immunity, but additional experiments are needed to clarify this point. These findings highlight the possibility of boosting cross-type cellular and humoral immunity against highly pathogenic avian influenza A virus subtype H5N1 by seasonal influenza vaccination.


<!-- / message --><!-- controls -->
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

as I remember, we had discussed this earlier that mice do poorly
compare with humans on these immunization issues.

Seasonal vaccine increases cross-protection against H5N1,
but how much ? It could be tiny...
 
Re: _|INDONESIA_RUSSIA: VACCINE DEAL?|_

http://www.greenhillsbiotech.com/news.html
-----




AVIR Green Hills Biotechnology?s viral engineering technology allowed to construct FluVacc - a live attenuated replication-defective influenza virus vaccine. FluVacc is highly immunogenic while being safely attenuated.

FluVacc (brand name: deltaFLU) is a live attenuated influenza virus with an optimal balance between attenuation and immunogenicity. It is generated by reverse genetics and is produced in mammalian cells. This allows fast and efficient generation and production of vaccine strains against influenza. FluVacc is applied intranasally with a spray device.

Background:

Compared to traditional, inactivated virus preparations currently dominating the influenza vaccine market, live attenuated viruses induce longer-lasting and more cross-protective immunity with significantly higher protection rates. We believe that, due to significantly higher efficacy rates and the ease and painlessness of intranasal administration, the live attenuated approach is superior to the inactivated injectable flu vaccines currently on the market. However, although the live attenuated viruses on the market have a good safety record, shedding of the vaccine virus occurs and unexpected complications in young children, the elderly and immuncompromised people might arise from wide-spread use.


A strategy that eliminates limitations and complications is the construction of a vaccine virus which undergoes only abortive replication and at the same time is capable of inducing a strong immune response. This concept is the basis of our FluVacc technology.


On that basis we have generated live attenuated replication defective viral vaccines and presented evidence that influenza A and B viruses based on the FluVacc technology are highly attenuated in animals such as mice and ferrets, yet provide protection from challenge with wild-type viruses. The particular properties? apathogenicity due to abortive replication while being highly immunogenic? make FluVacc attractive as a safe and effective vaccine against endemic and pandemic influenza.


Advantages


The vaccine is applied by the intranasal route. We believe that, due to significantly higher efficacy rates and the ease and painlessness of intranasal administration, the live attenuated approach is superior to the inactivated injectable flu vaccines currently on the market. Such live attenuated viruses also induce a longer-lasting and more cross-protective immunity.


The vaccine is replication-defective. Although FluVacc is a live attenuated vaccine, no viral shedding upon immunization occurs. All experiments performed so far suggest that this vaccine is safe. This suggests that even in the case of wide-spread use unexpected complications in young children, the elderly and immuncompromised people are unlikely.


The vaccine is made by reverse genetics. This method is essential for attenuation of highly virulent avian influenza viruses and the timely distribution of candidate viruses in the case of a pandemic emergency.


The vaccine is produced in tissue culture. This is efficient, fast and does not rely on the supply of eggs as used in traditional methods. Thus, the process can be scaled up to fulfil logistic needs during a pandemic infection. Moreover, since highly virulent avian strains kill fertilised chicken eggs, the use of cultured cells for attenuation and production is essential.

Influenza Research
AVIR Green Hills Biotechnology Research Development and Trading GmbH (Avir Green Hills Biotechnology) is a biopharmaceutical company based in Vienna. Avir Green Hills Biotechnology's core competence is its extensive know-how in virology, in particular in the field of influenza viruses. The following four EU projects are led by Avir Green Hills Biotechnology:

FLUVACC:

PRIORITY LSH 2004-1.2.2-1
Post-genomic approaches to a human pandemic influenza vaccine
Project acronym: FLUVACC
Project full title: Live attenuated replication-defective influenza vaccine
Proposal/Contract no.: 518281

Partners involved: 10
Project start date: 1 September 2005
Project duration: 60 months

Research partners for FLUVACC:
AVIR Green Hills Biotechnology (A), BIA Separations (Slo), Biotest (CZ), GPC Biotech AG (D), Weikom & Network (A), Medical University Vienna (A), Robert Koch Institute (D), Institute of Influenza (Rus), Shemyakin Institute of Bioorganic Chemistry (Rus), Vichem Chemie Research LTD (HU).


SARS/FLU VACCINE

PRIORITY LSH 2003-1.2.5-6
Topic: The development of new biosafe virus vectors for vaccine production to combat emerging or major viral enteric and respiratory infectious diseases.
Project acronym: SARS/FLU VACCINE
Project full title: Development of a combined influenza/SARS vaccine
Proposal/Contract no.: 512054
Partners involved: 6
Project start date: 1 December 2005
Project duration: 36 months

Research partners for SARS/FLU VACCINE:
AVIR Green Hills Biotechnology (A), Emergentec (A), BIA Separations (Slo), Biotest (CZ), Medical University Vienna (A), Goethe University Frankfurt (D).


H5 VACCINE

PRIORITY FP6-2005-SSP-5B-Influenza
Topic: Clinical research on the immunogenicity of pandemic influenza vaccines
Project acronym: IntranasalH5Vaccine
Project full title: Immunogenicity and protective efficacy of intranasal delNS1 (H5N1)
Proposal/Contract no.: 044512
Partners involved: 6
Project start date: 1 January 2007
Project duration: 36 months

Research partners for H5 VACCINE:
AVIR Green Hills Biotechnology (A), Biotest (CZ), Medical University Vienna (A), Goethe University Frankfurt (D), Shemyakin Institute of Bioorganic Chemistry (Rus), Retroscreen Virology Ltd (UK).



CHIMERIC VACCINES

PRIORITY COOP-CT-2004
Horizontal Research Activities involving SMEs Co-operative Research
Project acronym: CHIMERIC VACCINES
Project full title: Development of influenza delNS1 virus as a vector for foreign antigens
Proposal/Contract no.: 512864
Partners involved: 7
Project start date: 1 November 2004
Project duration: 30months

Research partners for CHIMERIC VACCINES:
AVIR Green Hills Biotechnology (A), Emergentec (A), BIA Separations (Slo), Biotest (CZ), Medical University Vienna (A), Goethe University Frankfurt (D), Institute of Influenza (Rus).
 
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