Sally Furniss
Well-known member
[SIZE=+2] Quantitative biochemical rationale for differences in transmissibility of 1918 pandemic influenza A viruses[/SIZE] <nobr>Aravind Srinivasan<sup>
</sup></nobr>, <nobr>Karthik Viswanathan<sup>
</sup></nobr>, <nobr>Rahul Raman<sup>
</sup></nobr>, <nobr>Aarthi Chandrasekaran<sup>
</sup></nobr>, <nobr>S. Raguram<sup>
</sup></nobr>, <nobr>Terrence M. Tumpey<sup>
</sup></nobr>, <nobr>V. Sasisekharan<sup>
</sup></nobr>, and <nobr>Ram Sasisekharan<sup>
</sup><sup>,
</sup><sup>,?</sup><sup>,||</sup></nobr>
<sup>
</sup>Department of Biological Engineering, <sup>
</sup>Harvard-Massachusetts Institute of Technology Division of Health Sciences and Technology, and <sup>?</sup>Center for Cancer Research, Massachusetts Institute of Technology, Cambridge, MA 02139; and <sup>
</sup>Influenza Division, National Center for Immunization and Respiratory Diseases, Coordinating Center for Infectious Diseases, Centers for Disease Control and Prevention, Mailstop G-16, 1600 Clifton Road NE, Atlanta, GA 30333
Communicated by Robert Langer, Massachusetts Institute of Technology, Cambridge, MA, December 19, 2007 (received for review December 2, 2007)
[SIZE=+1]Abstract[/SIZE]
The human adaptation of influenza A viruses is critically governed<sup> </sup>by the binding specificity of the viral surface hemagglutinin<sup> </sup>(HA) to long (chain length)
2-6 sialylated glycan (
2-6) receptors<sup> </sup>on the human upper respiratory tissues. A recent study demonstrated<sup> </sup>that whereas the 1918 H1N1 pandemic virus, A/South Carolina/1/1918<sup> </sup>(SC18), with
2-6 binding preference transmitted efficiently,<sup> </sup>a single amino acid mutation on HA resulted in a mixed
2-3 sialylated<sup> </sup>glycan (
2-3)/
2-6 binding virus (NY18) that transmitted inefficiently.<sup> </sup>To define the biochemical basis for the observed differences<sup> </sup>in virus transmission, in this study, we have developed an approach<sup> </sup>to quantify the multivalent HA?glycan interactions. Analysis<sup> </sup>of the molecular HA?glycan contacts showed subtle changes<sup> </sup>resulting from the single amino acid variations between SC18<sup> </sup>and NY18. The effect of these changes on glycan binding is amplified<sup> </sup>by multivalency, resulting in quantitative differences in their<sup> </sup>long
2-6 glycan binding affinities. Furthermore, these differences<sup> </sup>are also reflected in the markedly distinct binding pattern<sup> </sup>of SC18 and NY18 HA to the physiological glycans present in<sup> </sup>human upper respiratory tissues. Thus, the dramatic lower binding<sup> </sup>affinity of NY18 to long
2-6 glycans, as against a mixed
2-3/6<sup> </sup>binding, correlates with its inefficient transmission. In summary,<sup> </sup>this study establishes a quantitative biochemical correlate<sup> </sup>for influenza A virus transmission.
http://www.pnas.org/cgi/content/abstract/0711963105v1?ct=ct
<sup>
Communicated by Robert Langer, Massachusetts Institute of Technology, Cambridge, MA, December 19, 2007 (received for review December 2, 2007)
[SIZE=+1]Abstract[/SIZE]
The human adaptation of influenza A viruses is critically governed<sup> </sup>by the binding specificity of the viral surface hemagglutinin<sup> </sup>(HA) to long (chain length)
http://www.pnas.org/cgi/content/abstract/0711963105v1?ct=ct