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The beginning of the end of influenza

AlaskaDenise

In Memoriam
Researchers at Canada's McGill University have discovered a way to make cells in mice virtually immune to some viruses, including the flu.

If this is ever turned into an effective antiviral therapy for humans, essentially making the flu obsolete in developed countries, hundreds of millions of people are going to need to find new excuses to call in sick.
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The researchers were able to "markedly suppress" the replication of encephalomyocarditis virus, vesicular stomatitis virus, influenza virus and Sindbis virus in the cells.

If the science can be translated to humans, we may have effective therapies against dreaded pandemics like bird flu and SARS, according to the BBC.

We may also be struggling to come up with credible, convenient 24-hour illnesses that allow us to swan off to the beach on nice days, or suffer, in calm solitude, the effects of a previous night's revelry.

The flu must be the second-most common sick-day fib, right after food poisoning. Without it, we'll have to go straight to migraines.

This "immunity" is accomplished by boosting the mouse's innate immune system:
The researchers knocked out two key genes in mice that repress production of interferon.

With these genes out of action, the mouse cells produced much higher levels of interferon, which effectively blocked viruses from reproducing.
There were no side-effects, according to researchers.

Posted in Health service news and views on 14 February 2008

http://www.imt.ie/blogs/irish-Medical-Times-Blog/2008/02/the-beginning-of-the-end-of-in.html
 
Re: The beginning of the end of influenza

that could also be the end of "not if but when" , and the "Osterholm-100%"

only a matter of time that "not if but when" comes to an end.
Eventually ;-)

They could speed up such research a bit now,
they probably will, when we get a pandemic
 
Re: The beginning of the end of influenza

If they are able to prevent replication of virus, it could also provide great hope for people with hepatitis and possibly hiv.

This is great news. I hope it's continued.
 
Re: The beginning of the end of influenza

some people may (not) have these genes anyway.
They should be immune.

Maybe they can engeneer the humans in future
such they are better protected against viruses.

I remember an Australian company who claimed last year to
be able to create H5N1-immune chickens.
 
Re: The beginning of the end of influenza

I'm not such optimistic.

I looked the article yesterday, and here I saw only a part of the article.

At first, it seems some efective way:
"It works by stimulating production of the protein interferon, the cell's first line of defence against viruses."

But, I stopped read it, when I saw the next sentence:
"The researchers knocked out two key genes in mice that repress production of interferon."
That means (like gsgs said), bio-eng. humans.

I presented it to me like some "Marvel" comics:
Take a cup of "gm liquid" in, and change your organism.
How many cancers, autoimmune, and other illnesses can we set up by changing our cells?

For: "There were no side-effects, according to researchers.", I suggest to wait after the first 100.000 tryings of the same type experiment, to arrive to the first relevant statistical step, to say such a thing.

Remains the possibility of anti-viral new treatments, which I don't comment.
___
Virus immunity 'created in lab'

Via BBC News Online: Virus immunity 'created in lab.' Excerpt:

Scientists have found a way to boost an organism's natural anti-virus defences - effectively making its cells immune to flu and other potential killers. The process cannot be carried out in human cells - but it could potentially aid the development of effective new anti-viral therapies.

It works by stimulating production of the protein interferon, the cell's first line of defence against viruses.

The study, led by Canada's McGill University, appears in Nature.​

The varying forms of the flu virus have killed millions of people down the years, and scientists are concerned that the H5N1 strain of the virus, which currently is overwhelmingly a disease of birds, could mutate to pose a grave threat to human populations across the globe.​

Other viruses, such as Sars, have also sparked global health alerts in recent years.​

The researchers knocked out two key genes in mice that repress production of interferon.

With these genes out of action, the mouse cells produced much higher levels of interferon, which effectively blocked viruses from reproducing.​

Tests on four viruses, including that responsible for flu, produced highly promising results.​

Lead researcher Dr Nahum Sonenberg said: "People have been worried for years about potential new viral pandemics, such as avian influenzas.​

"If we might now have the means to develop a new therapy to fight flu, the potential is huge."​
 
Re: The beginning of the end of influenza

Interferon was discovered decades ago. It was called interferon because it interfered with viral replication. Decades ago the discovery of interferon had huge potential.
 
Re: The beginning of the end of influenza

Interferon was discovered decades ago. It was called interferon because it interfered with viral replication. Decades ago the discovery of interferon had huge potential.
And today we still wait for an antiviral panacea.
 
Re: The beginning of the end of influenza

As someone with HCV, I underwent treatment roughly a decade ago. At that time, it consisted of interferon alone. Injecting yourself 3x a week and knowing it will make you positively miserable.

I stopped treatment after four months when my hair was beginning to fall out and blood tests indicated I was not responding to treatment.

Interestingly, my bloodwork gave the impression of being responsive while I was taking a lot of supplements daily. Once I stopped the supplements, the tests indicated no changes from pre-treatment levels.

I'd hope that creating more interferon yourself would be easier to tolerate than injected interferon, but I wouldn't agree to removal of genes to achieve it either.

Personally, I've had HCV for roughly 40 years, possibly longer. I'm among the fortunate who can manage fine without treatment, at least so far.

Guess I didn't think it through well enough or read closely enough before my overly optimistic post.

Deb
 
Re: The beginning of the end of influenza

Sorry prepdeb.
There are so much pain on this world.

Maybe, when it will be imagin some totaly diferent way of healing, without the technic of animals/human probe/error/probe/... , the humanity can achieve an thrue antimicrobial systemic way.
 
Re: The beginning of the end of influenza

Researchers at Canada's McGill University have discovered a way to make cells in mice virtually immune to some viruses, including the flu.


I remember a monographic issue of Scientific American journal in 1999, where a 'miracle' drug called oseltamivir may saved the world by 1997 avian influenza virus-led pandemic.
 
Re: The beginning of the end of influenza

Interferon is a key player in cellular passive immunity and the NS1 gene - in flu - is involved in suppressing its activity. HP AI A/H5N1 and the 1918 pandemic form of A/H1N1 both seemed to be particularly effective at this which may, at least in part, account for their virulence.

Regretfully this is literally too good to be true. If this really had clinical potential there would need to be an analogous pair of genes in humans. If this were true then it is safe to assume these genes can be found in a wide range of mammals and possibly other animals. This implies they are ancient and, if they served no useful purpose, would not have survived. So, if my logic is sound, there must be some benefit to down regulating interferon production. If you could temporarily block expression of these genes in the early stage of infection then that may be useful but, like Tamiflu, to be effective this would need to be done early in infection to prevent NS1 and viral production overwhelming the cells capacity to produce Interferon.
 
Re: The beginning of the end of influenza

I would assume they're not talking about GM humans, but rather finding some substance that would act on those genes.

JJ, you have an important point....
This implies they are ancient and, if they served no useful purpose, would not have survived. So, if my logic is sound, there must be some benefit to down regulating interferon production.

The negative impacts of interferon treatment are many & serious, see
http://www.interferon.ws/

Interferon regulating genes are discussed at:
http://www.interferon.ws/NIAID.htm

These cited references are discussing a manufactured modified interferon, so the adverse effects may not occur with naturally produced interferon. However, I'll still agree with JJ - there must be a benefit to the down regulation of interferon production!

This site contains so many references to studies saying that science doesn't fully understand the functioning of the immune system, that my inclination is that it may not be wise to fool with a system that works quite well most of the time.

.
 
Re: The beginning of the end of influenza

AlaskaDenise,

I just checked the link of adverse reactions to interferon.
I can attest that it is horrible stuff, at least when introduced to the body from outside.

A dear friend of ours survived lengthy treatment on it.
Shortly after announcing that he had succeeded in suppressing the virus through treatment, he committed suicide.

I'll always be glad I stopped taking it, even though the doctor was angry with me. At four months, I was beginning to have pain in my eyes and had heard there were cases of retinal detachment associated with interferon use. Even though I'm not prone to depression, I felt horribly depressed after taking it for awhile and for quite awhile after stopping treatment.

Sometimes the alleged cure is worse than the disease.
 
Re: The beginning of the end of influenza

naturallly interferon has some unfavourable effects, like depress.
when someone have influenza ( or viral illness ), this personn feels “depressed”, without energy, tired, anergic. It's effects of interferon

Tiredness is less deep ( and not the same ) with a bacterial disease .
Prebdeb, thank you for your testimony.
 
Re: The beginning of the end of influenza

even if successful,
there are still the wild birds, where the virus
resides, mutates and reassorts.
 
Re: The beginning of the end of influenza



Fighting bird flu with RNAi

Australian scientists are hoping to use RNAi to fight bird flu.
Graeme O'Neill 08/06/2007 15:37:04


Scientists at CSIRO's Australian Animal Health Laboratory (AAHL) in Geelong have launched a potentially revolutionary research project aimed at reducing the threat of the lethal H5N1 avian influenza virus.

Dr John Lowenthal's AAHL research team will explore two different ways of protecting the US$300 billion global poultry industry against influenza - one therapeutic, the other prophylactic. Both will exploit the natural cellular anti-viral mechanism, RNA interference (RNAi).

The therapeutic option would involve delivering small RNA molecules to chickens in their drinking water or via an aerosol spray, priming the birds' own natural RNAi defences to recognise and destroy the virus.

The prophylactic option is to insert custom-designed RNAi transgenes into poultry, to protect birds against influenza. If successful this would confer protection against all current and future strains of influenza, including the deadly H5N1 strain that health authorities fear could spawn the first, disastrous human pandemic of the 21st century.

Lowenthal says if either approach works, it would still need to be examined by the federal Office of the Gene Technology Regulator, and subjected to public scrutiny, before it could be released.

The project will take at least three years to establish whether the technology can be used to protect chickens from avian influenza under laboratory conditions (proof-of-concept), and then up to two years more to determine whether the approach is practicable.

Advanced Technology Services Australia (ATSA), an Australian subsidiary of one of the world's leading poultry breeding companies, is backing the five-year pilot project. Lowenthal's team hopes to achieve proof-of-concept within three years.

The H5N1 'bird flu' has killed 172 people over the past four years and forced the slaughter of hundreds of millions of chickens across Asia and Europe. Virologists fear it could spawn a human pandemic strain. American virologist and Nobel laureate Professor Joshua Lederberg has described the influenza virus as the planet's most dangerous human pathogen.

The World Health Organisation has stated that the best way of reducing the risk of the next human flu pandemic is to get better control of the disease in poultry. "And that's exactly what we aim to do," Lowenthal says.

ddRNAi


At CSIRO's Horizons in Livestock Science conference in Surfer's Paradise in 2005, Cambridge University virologist Dr Laurence Tiley described how RNAi technology could protect the global poultry industry against influenza.

Tiley said the unique structure of the $300 billion poultry industry could facilitate replacement of the entire global poultry flock with influenza-resistant birds in as little as four years. Only half a dozen companies supply the elite breeding stock on which the world's commercial flocks are based, and two account for more than 50 per cent of production.

Lowenthal's team actually conceived the idea of using RNAi technology to develop influenza-resistant poultry in 2001, after CSIRO colleagues Dr Peter Waterhouse and Dr Ming-Bo Wang's invention of DNA-delivered (dd)RNAi technology raised the extraordinary possibility of protecting all the world's livestock species and crop plants against their major virus diseases.

With CSIRO's patented ddRNAi technology, researchers can custom-design genes that arm plant and animal cells to recognise and destroy specific viruses, with absolute precision.

Lowenthal says experiments in Australia and overseas have already established that ddRNAi completely blocks viral infections in laboratory plants and animals.

The technology allows researchers to design transgenes with small, embedded sequences that recognise and target the influenza virus's genetic code. These 'designer' transgenes would be inserted into the chromosomes of chickens, or other livestock species.

The RNAi transgenes would be designed to be "always switched on" in all the bird's tissues so that invading viruses can be instantly destroyed.

In contrast, the therapeutic approach of delivering small RNAi molecules to chickens via aerosols or their drinking water would confer transient protection during an influenza outbreak.

Like the deadly H1N1 strain that killed at least 40 million people in the 1918-19 Spanish Flu pandemic, the H5N1 bird flu is so virulent that it overwhelms the birds' normal RNAi and immune defences before they can mount a protective response.

Therapeutic RNAi could give birds 'breathing room' to develop their own natural RNAi response, and retain a molecular memory of the infection that would protect them in the event of any encounter with a new influenza strain.

The transgenic option programs the birds' cells to produce hairpin-shaped RNA molecules that are cleaved by cellular enzymes into small RNA fragments less than 23 nucleotides in length.

These 'targeting sequences' are taken up by tiny cellular structures called RISCs (RNA-Induced Silencing Complexes). They serve as templates that allow the RISC to attach to and destroy the corresponding sequence in the virus' genetic blueprint, preventing the virus replicating.

Target sequences


Lowenthal says AAHL researchers have already identified target sequences shared by all strains of the influenza virus. The virus has only eight genes, three of which are virtually identical across all strains because they are essential for its replication.

The other genes, including those encoding the haemagglutinin and neuraminidase proteins of the virus's coat, vary considerably from strain to strain. The influenza virus differs from most other viruses in that it constantly mutates and spawns new strains - an evolutionary strategy that prevents its animal hosts developing a protective immune response after infection.

Lowenthal says target sequences copied from the three highly conserved genes should confer broad-spectrum protection against influenza, making it much more difficult for the virus to mutate and evade the bird's RNAi defences.

Hairpin RNAi transgenes could be designed to confer simultaneous protection against several major poultry viruses, such as avian influenza, Marek's disease, and Newcastle disease. An outbreak of the latter disease, probably caused by migratory birds, forced NSW poultry farmers to slaughter seven million chickens in 1998.

US molecular geneticists Professor Craig Mello and Professor Andrew Fire were awarded last year's Nobel Prize for Medicine for discovering RNA interference in the nematode worm, Caenorhabditis elegans, in 1997.

In that same year, CSIRO's Waterhouse and Wang independently discovered RNAi in plants, and subsequently published the first detailed account of how RNAi works in plant cells.

CSIRO Plant Industry scientists have already used ddRNAi to develop prototype cereal varieties with resistance to Barley Yellow Dwarf Virus (BYDV) and a complex of closely related viruses.

BYDV defied decades of effort to breed resistant lines by conventional breeding and hybridisation. CSIRO has recently used chromosome manipulation to move a natural source of resistance from a near relative to wheat.

However the additional protection conferred by ddRNAi would make the protection stronger and more durable. Lowenthal says that there is very limited potential to breed influenza-resistant poultry with conventional methods.

By 2005, the AAHL team's research was sufficiently advanced for CSIRO to approach major poultry breeding companies to determine their interest in possible applications of the technology.

Although ATSA's German parent company was impressed with the potential of the technology, it delayed involvement because it was keen to ensure this research project was completely independent of any of the company's other operations and also because of uncertainty about consumer reactions.

But the SARS epidemic, and a spate of human deaths from the H5N1 bird flu - including a European veterinarian who had treated an infected duck - caused a change of heart this year.

"They accepted that the technology shows potential, and asked the CSIRO team to develop a research plan to demonstrate proof-of-concept," Lowenthal says. "The risk of a pandemic is sufficiently high to at least make the attempt - it's no longer just a commercial issue, it has spilled over into human health."

Multiple strains


The fast-mutating virus spawns multiple new strains every year, and Lowenthal says it is not yet feasible to produce a vaccine to protect against all animal and human strains. There are currently no effective vaccines for H5N1.

In the 1918-19 Spanish Flu pandemic, healthy young adults died within six hours of exhibiting the first signs of infection, literally drowning as their lungs filled with fluid.

The highly pathogenic H5N1 virus causes the immune system to release huge amounts of inflammatory molecules - a phenomenon called a cytokine storm - that cause lung cells to leak copious amounts of fluid. Healthy young adults are at particular risk because of their strong immune response.

"Even if we had a highly effective vaccine and could produce enough vaccine doses to vaccinate in the midst of an epidemic, this virus acts so rapidly and aggressively that the immune response can't cope and there would still be a huge death toll," Lowenthal says.

If this new RNAi approach is successful in poultry, it could help in reducing the risk of the next flu pandemic in humans.

.
 
Re: The beginning of the end of influenza



find by LILI 61

http://www.nature.com/nature/journal/vaop/ncurrent/full/nature06730.html



Translational control of the innate immune response through IRF-7

Rodney Colina<sup>1,</sup><sup>4</sup>, Mauro Costa-Mattioli<sup>1,</sup><sup>4</sup>, Ryan J. O. Dowling<sup>1</sup>, Maritza Jaramillo<sup>1</sup>, Lee-Hwa Tai<sup>2</sup>, Caroline J. Breitbach<sup>3</sup>, Yvan Martineau<sup>1</sup>, Ola Larsson<sup>1</sup>, Liwei Rong<sup>1</sup>, Yuri V. Svitkin<sup>1</sup>, Andrew P. Makrigiannis<sup>2</sup>, John C. Bell<sup>3</sup> & Nahum Sonenberg<sup>1</sup>
  1. Department of Biochemistry and McGill Cancer Center, McGill University, Montreal, Quebec H3G 1Y6, Canada
  2. Institut de Recherches Cliniques de Montréal, Laboratory of Molecular Immunology, Université de Montréal, Montréal, Quebec H2W 1R7, Canada
  3. Ottawa Health Research Institute, Ottawa, Ontario K1H 8L6, Canada
  4. These authors contributed equally to this work.
Correspondence to: Mauro Costa-Mattioli<sup>1,</sup><sup>4</sup>Nahum Sonenberg<sup>1</sup> Correspondence and requests for materials should be addressed to N.S. (Email: nahum.sonenberg@mcgill.ca) or M.C.-M. (Email: mauro.costa-mattioli@mail.mcgill.ca).

Top of pageAbstract

Transcriptional activation of cytokines, such as type-I interferons (interferon (IFN)-
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and IFN-
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), constitutes the first line of antiviral defence. Here we show that translational control is critical for induction of type-I IFN production. In mouse embryonic fibroblasts lacking the translational repressors 4E-BP1 and 4E-BP2, the threshold for eliciting type-I IFN production is lowered. Consequently, replication of encephalomyocarditis virus, vesicular stomatitis virus, influenza virus and Sindbis virus is markedly suppressed. Furthermore, mice with both 4E- and 4E-BP2 genes (also known as Eif4ebp1 and Eif4ebp2, respectively) knocked out are resistant to vesicular stomatitis virus infection, and this correlates with an enhanced type-I IFN production in plasmacytoid dendritic cells and the expression of IFN-regulated genes in the lungs. The enhanced type-I IFN response in 4E-BP1<sup>-/-</sup> 4E-BP2<sup>-/-</sup> double knockout mouse embryonic fibroblasts is caused by upregulation of interferon regulatory factor 7 (Irf7) messenger RNA translation. These findings highlight the role of 4E-BPs as negative regulators of type-I IF
 
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