Laidback Al
Well-known member
Re: n=3
Re: n=3
I just emailed him and asked him to participate in the discussion here.
Re: n=3
I just emailed him and asked him to participate in the discussion here.
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Minor glitch in grand theory of HP vs LP:
<?xml:namespace prefix = o ns = "urn:schemas-microsoft-com1.The 1918 strains did not have the basic amino acid cleavage site.
2. H5N1 clades show variability in basic amino acid cleavage site (acquired, then lost in some strains).
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<oErgo, while it may effect upper respiratory tract receptor recognition, there are other factors at work that determine pathogenicity and transmissibility.
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<oDoshi does indeed note that the 1918 pandemic is an outlier in his plot. It is also an outlier when a plot of genetic sequence vs protein sequence polymorphisms are evaluated for a variety of mammalian HP strains (including the sequences of the last 3 human pandemics). This, Taubenberg did in a recent article; indeed, the 1918 strains are outliers in this plot, FAR removed from the comparatively wimpy <st1:stockticker>CFR</st1:stockticker> of the more recent pandemics.
What is missing in the defined features of pandemic versus seasonal, is the degree to which global populations are affected, in total population affected and symptom severity (a function of both host nativity and strain virulence), infectious duration and strain adaptation, reflected in a second or third wave of continued high virulence, despite the expected drop due to host adaptation.
Yes, I read the paper.
Perhaps we should be looking for comparison not to 1918, but to other pandemics without respiratory transmission - if such a thing existed.
J.
Three influenza pandemics occurred in the 20th century: in 1918?1919, 1957?1958, and 1968?1969. . . .
Despite the widespread concern over a future influenza pandemic, there has been little research on the more than 100 years of recorded influenza death data in the United States?a period that includes both pandemic and nonpandemic seasons. . .
I present an analysis of these data to describe trends in influenza mortality and, in particular, to compare pandemic and nonpandemic influenza seasons in ways that may inform present planning for the prevention and control of influenza. . .
With the notable exception of the 1918 pandemic, each influenza pandemic season [1957-1958 and 1968-1969] was less lethal than the prior one, reflecting the overall seasonal trend in influenza deaths. . . .
The heightened concern over the threat of a future influenza pandemic largely rests on the assumption that the hallmark of pandemic influenza is excess mortality. . . .
In the monthly data from over 70 influenza seasons . . . the peak monthly death rates in the 1957?1958 and 1968?1969 pandemic seasons were no higher than (and were sometimes exceeded by) those for severe nonpandemic seasons (Table 1). If these trends extend into the future, it follows that if the health care infrastructure has been capable of handling nonpandemic influenza, it will also be able to deal with pandemic influenza. . . .
Another possible explanation for the false assumption that pandemics are necessarily more deadly than nonpandemics may lie in an inaccurate understanding?and inconsistent use?the word ?pandemic.? Influenza virus circulates the globe on an annual basis, but is usually not labeled a pandemic until the strain of virus in wide circulation is substantially novel (i.e., it carries a different hemagglutinin or neuraminidase protein than the strains already circulation).
Whatever the reasons for the misconceptions, should the trends observed over the 20th century continue to hold in the 21st, the next influenza pandemic may be far from a catastrophic event.
But, after reading the full article, the concerns I previously posted still stand. Besides the declining trendline in the mortality rate for the past three pandemic, there is no other data presented in the article to justify a supposition that the next pandemic will also have a low mortality rate. Predicting a low mortality rate for the next pandemic from these data requires that one assume a dependency between the mortality rate for pandemics. That is, one has to assume that the mortality rate of each pandemic is dependent on the preceding pandemic and the mortality rate for the current pandemic will affect the mortality rate of the next pandemic in the future. I am not aware that anyone has proposed a dependent relationship between mortality rates for pandemics.
Am J Public Health. 2008 May; 98(5): 939–945.
doi: 10.2105/AJPH.2007.119933
PMCID: PMC2374803
Trends in Recorded Influenza Mortality: United States, 1900–2004
Peter Doshi, AM
Abstract
Objectives. I sought to describe trends in historical influenza mortality data in the United States since 1900 and compare pandemic with nonpandemic influenza seasons.
Methods. I compiled a database of monthly influenza-classed death rates from official US mortality tables for the years 1900 to 2004 (1905–1909 excluded), from which I calculated adjusted influenza season (July 1–June 30) mortality rates.
Results. An overall and substantial decline in influenza-classed mortality was observed during the 20th century, from an average seasonal rate of 10.2 deaths per 100 000 population in the 1940s to 0.56 per 100 000 by the 1990s. The 1918–1919 pandemic stands out as an exceptional outlier. The 1957–1958 and 1968–1969 influenza pandemic seasons, by contrast, displayed substantial overlap in both degree of mortality and timing compared with nonpandemic seasons.
***.56 was later corrected to .44
Conclusions. The considerable similarity in mortality seen in pandemic and non-pandemic influenza seasons challenges common beliefs about the severity of pandemic influenza. The historical decline in influenza-classed mortality rates suggests that public health and ecological factors may play a role in influenza mortality risk. Nevertheless, the actual number of influenza-attributable deaths remains in doubt.
Three influenza pandemics occurred in the 20th century: in 1918–1919, 1957–1958, and 1968–1969. Today, there is widespread concern, in the medical community as well as the public, regarding the deadly potential of a future influenza pandemic. Many national governments have begun to prepare for such a future threat. In the United States, this preparation has taken the form of the multi-billion-dollar National Strategy for Pandemic Influenza.
According to the US Centers for Disease Control and Prevention (CDC), “Pandemics are different from seasonal outbreaks or ‘epidemics’ of influenza.”1(p1) “The hallmark of pandemic influenza is excess mortality.”2 One recent official US death toll projection3(p1) suggested that the next pandemic will kill 6 to 56 times more Americans than the CDC currently estimates die in an average nonpandemic influenza season.4 The World Health Organization (WHO), in a “relatively conservative estimate,”5 predicted that the next influenza pandemic could claim 4 to 30 times more lives worldwide than a typical nonpandemic season.6
Despite the widespread concern over a future influenza pandemic, there has been little research on the more than 100 years of recorded influenza death data in the United States–a period that includes both pandemic and nonpandemic seasons. I present an analysis of these data to describe trends in influenza mortality and, in particular, to compare pandemic and nonpandemic influenza seasons in ways that may inform present planning for the prevention and control of influenza.
[snip]
DISCUSSION
The heightened concern over the threat of a future influenza pandemic largely rests on the assumption that the hallmark of pandemic influenza is excess mortality. However, this study indicates that the mortality impact of pandemic and nonpandemic seasons has been similar, with considerable overlap in both seasonal and peak monthly mortality rates.
In the 1918–1919 pandemic, which stands out for its high mortality rate, although perhaps 10% to 15% of deaths were attributed to acute respiratory distress syndrome,17 many if not most of fatal cases are believed to have occurred because of secondary bacterial complications.18 Had no other aspect of modern medicine but antibiotics been available in 1918, there seems good reason to believe that the severity of this pandemic would have been far reduced.
Epidemiology of 2009 Pandemic Influenza A (H1N1) Deaths in the United States, April–July 2009 Clin Infect Dis. (2011) 52(suppl 1): S60-S68 doi:10.1093/cid/ciq022
Abstract
During the spring of 2009, pandemic influenza A (H1N1) virus (pH1N1) was recognized and rapidly spread worldwide. To describe the geographic distribution and patient characteristics of pH1N1-associated deaths in the United States, the Centers for Disease Control and Prevention requested information from health departments on all laboratory-confirmed pH1N1 deaths reported from 17 April through 23 July 2009. Data were collected using medical charts, medical examiner reports, and death certificates. A total of 377 pH1N1-associated deaths were identified, for a mortality rate of .12 deaths per 100 000 population. Activity was geographically localized, with the highest mortality rates in Hawaii, New York, and Utah. Seventy-six percent of deaths occurred in persons aged 18–65 years, and 9% occurred in persons aged ≥65 years. Underlying medical conditions were reported for 78% of deaths: chronic lung disease among adults (39%) and neurologic disease among children (54%). Overall mortality associated with pH1N1 was low; however, the majority of deaths occurred in persons aged <65 years with underlying medical conditions.
Malaysia Health Minister states that H7N9 Mortality rate 60% higher than H1N1, which he quotes as 0.4%. http://www.nst.com.my/latest/liow-no-h7n9-flu-reported-in-malaysia-1.247390
Border controls have been set in place in Malaysia.
Emily have you seen this thread? It had a lengthy discussion on this paper at the time.