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The Threat Of Avian Flu

pamwv41

Well-known member
http://www.forbes.com/business/healthcare/2006/06/06/montagnier-avian-flu-cx_lm_0607avian.html

Recent studies of the reconstructed Spanish flu virus have unraveled the molecular basis for its high virulence. Unlike other strains, this virus was able to induce a fulminant pneumonia, killing healthy young adults within three days. Its aggressiveness seems to be due in part to the neutralization, by a viral protein, of a very important natural defense mechanism against viruses: interferons.
One prime candidate for this task already exists. It's a substance called Alferon LDO (low-dose oral), the Hemispherx Biopharma (amex: HEB - news - people ) version of the body's systemic alpha interferons, prepared from blood cells obtained at transfusion centers. An injected form of Alferon, already approved by the U.S. Food and Drug Administration, is currently being used in the treatment of a certain viral infection and has the potential to act on native avian virus as well as on its humanized form.

What about the use of interferon in the treatment of Avian Flu? Could it, if given early enough(before the cytokine storm) lessen the morbidity of H2N1? I will search on PubMed for more info.
 
Re: The Threat Of Avian Flu

Sorry. I posted this on the wrong thread earlier.

Here are a few articles from the CDC site refering to using interferon to treat cytokine storm in other situations.
Here are a few research citations from the CDC site on the use of interferon in these infections.
  1. Alibek K, Lobanova C. Modulation of innate immunity to protect against biological weapon threats. In: Anderson B, Friedman H, Bendinelli M, editors. Infectious agents and pathogenesis: microorganisms and bioterrorism. New York: Springer; 2006. p. 39?61.
  2. Amlie-Lefond C, Paz DA, Connelly MP, Huffnagle GB, Dunn KS, Whelan NT, et al. Innate immunity for biodefense: a strategy whose time has come. J Allergy Clin Immunol. 2005;116:1334?42.
  3. Liu G, Zhai Q, Schaffner D, Wu A, Yohannes A, Robinson T, et al. Prevention of lethal respiratory vaccinia infections in mice with interferon (IFN)-α and IFN-γ. FEMS Immunol Med Microbiol. 2004;40:201?6.
  4. Sperber SJ, Levine PA, Innes DJ, Mills SE, Hayden FG. Tolerance and efficacy of intranasal administration of recombinant beta serine interferon in healthy adults. J Infect Dis. 1988;158:166?75.
  5. Condos R, Rom WN, Schluger NW. Treatment of multidrug-resistant pulmonary tuberculosis with interferon-gamma via aerosol. Lancet. 1997;349:1513?5.
  6. Seo SH, Hoffmann E, Webster RG. Lethal H5N1 influenza viruses escape host anti-viral cytokine responses. Nat Med. 2002;8:950?4.
  7. Wong JP, Saravolac EG, Sabuda D, Levy HB, Kende M. Prophylactic and therapeutic efficacies of poly(IC.LC) against respiratory influenza A virus infection in mice. Antimicrob Agents Chemother. 1995;39:2574?6.
  8. To KF, Chan PK, Chan KF, Lee WK, Lam WY, Wong KF. Pathology of fatal human infection associated with avian influenza A H5N1 virus. J Med Virol. 2001;63:242?6.
  9. Huang KJ, Su IJ, Theron M, Wu YC, Lai SK, Liu CC, et al. An interferon-gamma-related cytokine storm in SARS patients. J Med Virol. 2005;75:185?94.
  10. Cinatl J Jr, Michaelis M, Scholz M, Doerr HW. Role of interferons in the treatment of severe acute respiratory syndrome. Expert Opin Biol Ther. 2004;4:827?36.
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Re: The Threat Of Avian Flu

Sorry this is business oriented but it discusses the research going on regarding the use of interferons in Avian flu.
[SIZE=+1]Alferon LDO Now in Human Clinical Trials As Experimental Antiviral/Immunodulatory Therapy[/SIZE] Business Wire - May 16, 2005
<hr noshade="noshade" size="1"> <!--xx-->PHILADELPHIA -- -- Accelerated Evaluation of a Synergistic Cocktail of Eight Different Alpha-Interferons to Potentially Trigger "Guardian Angel" Genes
Hemispherx Biopharma, Inc. (AMEX: HEB) has initiated clinical trials as part of an accelerated evaluation of the experimental bio-therapeutic Alferon LDO (Low Dose Oral Interferon Alfa-n3 (Human Leukocyte Derived)) as a potential new experimental therapy for Avian Flu and other lethal viral diseases, which have high acute death rates.
Clinical trials in human volunteers (being conducted in both the U.S. at Drexel University, Philadelphia, and shortly to commence in Hong Kong at the Princess Margaret Hospital) are designed to determine whether Alferon N, delivered in a new, experimental oral drug delivery format, can resuscitate the broad-spectrum antiviral and immunostimulatory genes. These human genes are shut down by acute lethal viral infections such as avian flu and smallpox.
The Center for Disease Control and Prevention (CDC) recently announced "risky" in vitro experiments, which simulate the mixing and matching of genes between the avian flu virus, and a common human flu virus. Such 'recombination' might grow into a pandemic highlighting the intense present scientific interest in this molecular biological topic.
Dr. Brian Williams a world renowned researcher at the Cleveland Clinic will be the research collaborator in the clinical trials. His research group already pioneered the identification of many of the interferon (IFN) related genes which are the subject of the present clinical investigations. In the prospective clinical tests systemic blood samples will be sampled for gene activation after brief exposure of Alferon N to the buccal (oral) mucosa of volunteers.
Immunity against viruses can typically take two forms: innate immunity and 'learned' (adaptive) immunity. The NIH is currently pursuing adaptive immunity by launching nationwide vaccine testing against the avian flu. Vaccines are promising, but may have the distinct disadvantage of minimal value in individual post-viral exposure; vaccines can also become useless in the event of viral mutation (classically seen with the flu viruses and HIV/AIDS viruses).
In contrast, the innate immune system, having evolved over millennia to function within moments of encountering viruses, can prevent or ameliorate infections in animal models. Also, because innate immunity operates via immune "cascades", i.e., multiple steps of viral blockade, mutation to resistance by the virus may be more difficult.
Hemispherx, and several other Biopharma companies, are evaluating genetic-based experimental approaches to potentially reverse the high death rate. "Guardian angel genes" is a term of art applied to critically important genes, including the IFN modulated genes, which in nature apparently can protect the human host from acute death due to overwhelming viral injection. Reconstruction experiments conducted by the CDC have pointed towards the disablement of these IFN genes as the proximate cause of death.
About Hemispherx
Hemispherx Biopharma, based in Philadelphia, is a biopharma company engaged in the manufacture and clinical development of new drug entities. Hemispherx's flagship products include Alferon N(R) and the experimental antiviral products, Ampligen(R) and Oragens(TM). These novel Alferon-N proteins, commercially available for a category of STD infection, and experimental nucleic acids are being developed for globally important chronic diseases and disorders of the immune system including HPV, HIV, CFS and Hepatitis and avian flu. Its four major technology platforms include large-and small-agent components for potential treatment of various chronic viral infections, and are being developed with various corporate, governmental and academic collaborators worldwide. Hemispherx has more than 200 patents comprising its core intellectual property estate, a fully commercialized product (Alferon N(R)) and GMP certified manufacturing facilities for its novel pharma products. For more information please visit www.hemispherx.net
Information contained in this news release other than historical information, should be considered forward-looking and is subject to various risk factors and uncertainties. For instance, the strategies and operations of Hemispherx involve risk of competition, changing market conditions, change in laws and regulations affecting these industries and numerous other factors discussed in this release and in the Company's filings with the Securities and Exchange Commission. Any specifically referenced investigational drugs and associated technologies of the company (including Ampligen and Oragens) are experimental in nature and as such are not designated safe and effective by a regulatory authority for general use and are legally available only through clinical trials with the referenced disorders. The forward-looking statements represent the Company's judgment as of the date of this release. The Company disclaims, however, any intent or obligation to update these forward-looking statements. Only Clinical Studies under well-controlled conditions can establish efficacy and safety of any product. Clinical trials for other potential indications of the approved biologic Alferon N do not imply that the product will ever be specifically approved commercially for these other treatment indications including avian flu.
 
Re: The Threat Of Avian Flu

The position 92 mutation on the NS1 protein of H5N1 renders interferon & TNFa useless.

Read http://www.nature.com/nm/journal/v8/n9/full/nm757.html;jsessionid=D9B99A53DB87813B4AC47E8A95C2F825

Lethal H5N1 influenza viruses escape host anti-viral cytokine responses


The H5N1 influenza viruses transmitted to humans in 1997 were highly virulent, but the mechanism of their virulence in humans is largely unknown. Here we show that lethal H5N1 influenza viruses, unlike other human, avian and swine influenza viruses, are resistant to the antiviral effects of interferons and tumor necrosis factor
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. The nonstructural (NS) gene of H5N1 viruses is associated with this resistance. Pigs infected with recombinant human H1N1 influenza virus that carried the H5N1 NS gene experienced significantly greater and more prolonged viremia, fever and weight loss than did pigs infected with wild-type human H1N1 influenza virus. These effects required the presence of glutamic acid at position 92 of the NS1 molecule. These findings may explain the mechanism of the high virulence of H5N1 influenza viruses in humans. .......

(remainder of article is worth the read)

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Re: The Threat Of Avian Flu

Mmmm That's interesting. I wonder why they are still doing clinical trials?
More snake oil from the pharmacutical companies I suppose.
 
Re: The Threat Of Avian Flu

<!-- #BeginEditable "content_area_2" --> Letter-This Letter was written in May 2006

[FONT=Arial, Helvetica, sans-serif]Biodefense Shield and Avian Influenza[/FONT]

Ken Alibek*†<sup></sup> and Ge Liu†
*George Mason University, Manassas, Virginia, USA; and †AFG Biosolutions, Inc., Germantown, Maryland, USA
[FONT=Arial, Helvetica, sans-serif]Suggested citation for this article[/FONT]
<hr> To the Editor: In defending against avian influenza virus H5N1, the possibility of adopting treatments being developed for biodefense should not be overlooked. Biodefense medicine primarily concerns respiratory infections because bioweapons in their deadliest form disperse Bacillus anthracis and Yersinia pestis, the causes of anthrax and plague, and highly contagious viruses like smallpox, Ebola, and Marburg as aerosols. The National Institutes of Health and Department of Defense have funded developing novel biodefense medications designed to stimulate innate mucosal immunity by using interferons (IFNs) and interferon inducers. We suggest that studies begin immediately to explore the potential of IFNs to prevent infections and reduce deaths caused by avian influenza viruses in animal models and humans.
Modulating innate mucosal immunity is promising as a rapid-acting, broad-spectrum approach to combat bioterrorism (1). Innate immunity, the initial response to a pathogen, is potentially capable of eradicating infection. Even when the innate immune response cannot eliminate a virus, it may substantially reduce viral load, reduce pathology, facilitate clearing of the virus by the adaptive immune response, and slow the spread of infection (1). As biodefense medications, IFNs and IFN-inducers are under development for aerosolized delivery to the lungs (2,3). Conventional IFN administration by injection often results in low concentrations at target sites and high concentrations in circulation, which may cause serious side effects. Aerosolized delivery minimizes side effects and produces more rapid clinical responses. Inhaled IFNs have proven to be well tolerated and beneficial for rhinovirus infection (4) and pulmonary tuberculosis (5).
Medications being developed to prevent infections caused by viral bioweapons and other diseases include 1) Oral IFN-α or Alferon low dose oral (LDO) (Hemispherx Biopharma, Inc., Philadelphia, PA, USA); 2) inhalable IFN-γ (InterMune, Brisbane, CA, USA); 3) dsRNA [Poly (ICLC)] or Ampligen (Hemispherx Biopharma, Inc.); 4) ssRNA (Aldara and Resiquimod from 3M Pharmaceuticals, St. Paul, MN, USA); and 5) CpG7909 and CpG10101 oligonucleotides (Coley Pharmaceutical Group, Wellesley, MA, USA) (2). These drugs have either been approved by the Food and Drug Administration (FDA) (Aldara), are in clinical trials (Alferon LDO, inhalable IFN-γ, Resiquimod, CPG7909, and CpG10101), or at a preclinical stage of development (Ampligen). Aldara is approved for genital warts, actinic keratoses, and basal cell carcinoma. Others drugs are being tested for aerosolized delivery to modulate mucosal immunity of the respiratory tract. All could be expeditiously tested with inhalational or intranasal administration in H5N1 models with mice, ferrets, pigs, and monkeys.
IFN-α and IFN-γ work by binding their receptors and activating downstream antiviral pathways involving the dsRNA-dependent protein kinase (PKR), the 2´, 5´ oligoadenylate synthetase/RNase L, or the MxA protein. dsRNA, ssRNA, and CpG oligonucleotides are ligands for toll-like receptors (TLRs) and modulate antiviral immunity through TLR signaling pathways and IFN induction (2). At the cellular level inside the lungs, these drugs will enhance phagocytotic and cytolytic activity in alveolar macrophages.
Once infection is established, H5N1 resists the antiviral effects of IFNs and tumor necrosis factor-α (6). Resistance is associated with the nonstructural gene of H5N1 and may be 1 mechanism for H5N1's extraordinary virulence. Therefore, prophylactic use of IFNs and IFN-inducers is critical to combat H5N1. They may also be effective if administered immediately after infection.
IFN resistance also exists for other viral infections. For instance, poxviruses including vaccinia virus encode 2 proteins that interfere with RNaseL and PKR pathways and 2 soluble IFN receptors that interfere with IFN-induced antiviral pathways. Nevertheless, at least in animal models, pre-infection administration of exogenous IFN can reduce deaths and poxvirus viral load. In mice, intranasal administration of IFN-α and IFN-γ prevents lethal vaccinia infection (3). IFN-α, IFN-γ, and an IFN inducer, Poly (ICLC), protect mice infected with H1N1 influenza virus (7). Hence, we suggest that anti-H5N1 prophylaxis by IFN-stimulated innate mucosal immunity is a promising therapy worth immediate investigation in animal models.
A second mechanism proposed to explain H5N1 virulence is also IFN related. This is the "cytokine storm," as shown by elevated levels of proinflammatory cytokines including IFNs found in 2 patients who died of H5N1 infections (8). Cytokine storms can result in autoimmune reactions, tissue damage, or septic shock. High IFN doses for long periods may exacerbate autoimmunity. However, despite similar cytokine storms (9), some severe acute respiratory syndrome patients respond well to IFN therapy (10). Optimal formulation and regimen of IFN administration could be crucial to effective anti-H5N1 prophylaxis. In the interests of safety, we propose that initial prophylaxis studies use relatively low IFN doses for short periods (≈1–2 weeks).
It is unlikely that all of these drugs will effectively protect against H5N1. And a drug that is effective might not work for everyone; genetic polymorphism influences IFN response. However, FDA approval of even one of them might save many lives.
[FONT=Arial, Helvetica, sans-serif]Acknowledgments[/FONT]

[FONT=Arial, Helvetica, sans-serif]We thank Tom Hollon for his editing and helpful suggestions.[/FONT]
[FONT=Arial, Helvetica, sans-serif]This work is funded by the Defense Advanced Research Project Agency.[/FONT]
[FONT=Arial, Helvetica, sans-serif]Our company, AFG Biosolutions, Inc., has no grants, contracts, or other financial support to develop a commercial antiinfluenza product from among the immunomodulators mentioned here.[/FONT]
[FONT=Arial, Helvetica, sans-serif]References[/FONT]

  1. Alibek K, Lobanova C. Modulation of innate immunity to protect against biological weapon threats. In: Anderson B, Friedman H, Bendinelli M, editors. Infectious agents and pathogenesis: microorganisms and bioterrorism. New York: Springer; 2006. p. 39–61.
  2. Amlie-Lefond C, Paz DA, Connelly MP, Huffnagle GB, Dunn KS, Whelan NT, et al. Innate immunity for biodefense: a strategy whose time has come. J Allergy Clin Immunol. 2005;116:1334–42.
  3. Liu G, Zhai Q, Schaffner D, Wu A, Yohannes A, Robinson T, et al. Prevention of lethal respiratory vaccinia infections in mice with interferon (IFN)-α and IFN-γ. FEMS Immunol Med Microbiol. 2004;40:201–6.
  4. Sperber SJ, Levine PA, Innes DJ, Mills SE, Hayden FG. Tolerance and efficacy of intranasal administration of recombinant beta serine interferon in healthy adults. J Infect Dis. 1988;158:166–75.
  5. Condos R, Rom WN, Schluger NW. Treatment of multidrug-resistant pulmonary tuberculosis with interferon-gamma via aerosol. Lancet. 1997;349:1513–5.
  6. Seo SH, Hoffmann E, Webster RG. Lethal H5N1 influenza viruses escape host anti-viral cytokine responses. Nat Med. 2002;8:950–4.
  7. Wong JP, Saravolac EG, Sabuda D, Levy HB, Kende M. Prophylactic and therapeutic efficacies of poly(IC.LC) against respiratory influenza A virus infection in mice. Antimicrob Agents Chemother. 1995;39:2574–6.
  8. To KF, Chan PK, Chan KF, Lee WK, Lam WY, Wong KF. Pathology of fatal human infection associated with avian influenza A H5N1 virus. J Med Virol. 2001;63:242–6.
  9. Huang KJ, Su IJ, Theron M, Wu YC, Lai SK, Liu CC, et al. An interferon-gamma-related cytokine storm in SARS patients. J Med Virol. 2005;75:185–94.
  10. Cinatl J Jr, Michaelis M, Scholz M, Doerr HW. Role of interferons in the treatment of severe acute respiratory syndrome. Expert Opin Biol Ther. 2004;4:827–36.
 
Re: The Threat Of Avian Flu

Also, this came out today:
Nventa granted European patent covering heat shock protein fusion to treat influenza

<!-- RELHEAD END --> <!-- RELBODY START -->
SAN DIEGO, CA, June 7 /CNW/ - Nventa Biopharmaceuticals Corporation (TSX:
NVN) announced that the European Patent Office has granted Patent Number EP
941,315 to Nventa. The patent covers compositions of fusion proteins comprised
of an influenza antigen fused to a heat shock protein (Hsp), as well as DNA
encoding such fusion proteins.
"Our proprietary CoVal(TM) fusion proteins represent an exciting approach
to developing a therapeutic treatment for a broad class of current and
emerging strains of the influenza virus," said Gregory M. McKee, President and
Chief Executive Officer at Nventa. "We have generated promising preclinical
data with our Hsp-influenza fusion protein candidate, which utilizes the
highly conserved internal protein, NP, or nucleoprotein, to elicit a targeted
cytotoxic T lymphocyte response against several flu strains."
While several companies are working on prophylactic vaccines, Nventa is
one of the few companies working on a treatment, or therapeutic vaccine, for
influenza. There is worldwide concern today regarding a pandemic outbreak of
influenza that could affect large populations around the world.
Nventa has already generated prototypes of Hsp fusion proteins with
influenza antigens. These prototypes have shown activity in preclinical models
that suggest their potential utility as a treatment for common and avian flu.
In mice, these fusions have been shown to elicit T cell-mediated immune
responses that recognize appropriate influenza antigens. This type of immune
response has also been shown to produce the cytokine interferon gamma, which
is known to have anti-viral activity.
Again, I suppose this would be given early on before any "cytokine storm" had begun
occur.
</pre>
 
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