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Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

Way to go, Thais!

Finally on First Base.

Unfortunately, the trip around the remaining bases results in an inevitable conclusion, just as you cross Home Plate.

It's going to scare the bejeesus out of you.
 
Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

Thanks Laidback Al and gsgs
 
Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

Way to go, Thais!

Finally on First Base.

Unfortunately, the trip around the remaining bases results in an inevitable conclusion, just as you cross Home Plate.

It's going to scare the bejeesus out of you.
Note the prevalence of S227N (as well as changes in M230).
Dice are clearly rolling.
 
Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

Way to go, Thais!

Finally on First Base.

Unfortunately, the trip around the remaining bases results in an inevitable conclusion, just as you cross Home Plate.

It's going to scare the bejeesus out of you.
Table 1.​
[FONT=Arial,Arial]Positive-selection sites on the HA gene from residue 128 to 270

[/FONT]<TABLE borderColor=#000000 cellSpacing=2 cellPadding=7 width=1026 border=1><TBODY><TR><TD vAlign=top width="24%" height=0>[FONT=Times New Roman,Times New Roman]
Sources of sequences, wild-type and mutant amino acids, positions (H3 numbering), frequencies of mutant amino acids and site-specific​
[/FONT][FONT=Times New Roman,Times New Roman]ω [/FONT][FONT=Times New Roman,Times New Roman]([/FONT][FONT=Times New Roman,Times New Roman]d[/FONT][FONT=Times New Roman,Times New Roman]N[/FONT][FONT=Times New Roman,Times New Roman]/[/FONT][FONT=Times New Roman,Times New Roman]d[/FONT][FONT=Times New Roman,Times New Roman]S[/FONT][FONT=Times New Roman,Times New Roman])?[/FONT][FONT=Times New Roman,Times New Roman]SEM [/FONT][FONT=Times New Roman,Times New Roman]are shown ([/FONT][FONT=Times New Roman,Times New Roman]ω[/FONT][FONT=Times New Roman,Times New Roman]>1 indicates positive selection). The wild-type amino acids are from the consensus sequence of all human H5N1 viruses available in the GenBank database. Bold-typed residues are related to the receptor-binding domain. The residues that have been shown to carry receptor preference determinant for H5N1 are underlined.

[/FONT][FONT=Times New Roman,Times New Roman]
Sample​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
Patient characteristic​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
Wild-type​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
Site​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
Mutant​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
Frequency (%)​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
ω​
[/FONT][FONT=Times New Roman,Times New Roman](?[/FONT][FONT=Times New Roman,Times New Roman]SEM[/FONT][FONT=Times New Roman,Times New Roman])
[/FONT]​
</TD></TR><TR><TD vAlign=top width="24%" height=0>[FONT=Times New Roman,Times New Roman]
Patient A (nasopharyngeal secretion)​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
5-year-old boy, diagnosed in December 2005, specimen collected on day 12 after onset of illness​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
S/L​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
133​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
V​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
59​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
9.78?0.94​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
A​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
138​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
V​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
58​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
9.78?0.94​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
Y​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
161​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
H​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
7​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
8.85?2.89​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
186​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
D​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
3​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
6.86?4.29​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
224​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
3​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
9.76?1.03​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
S​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
227​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
2​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
9.54?1.72​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
250​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
2​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
6.90?4.28​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="24%" height=0>[FONT=Times New Roman,Times New Roman]
Patient B (lung and intestinal tissues)​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
48-year-old man, diagnosed in October 2005, died on day 6 after onset of illness​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
T​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
163​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
A/T​
[/FONT]​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
6​
[/FONT]​
</TD><TD vAlign=top width="13%" height=0>[FONT=Times New Roman,Times New Roman]
7.77?1.47​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
L​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
194​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
P​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
6​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
7.84?1.35​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
K​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
222​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
E​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
6​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
5.67?3.03​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
M​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
230​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
T​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
5​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
4.26?3.14​
[/FONT]​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
I​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
252​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
V​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
7​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=2 height=0>[FONT=Times New Roman,Times New Roman]
7.83?1.36​
[/FONT]​
</TD></TR></TBODY></TABLE>
<TABLE borderColor=#000000 cellSpacing=2 cellPadding=7 width=1026 border=1><TBODY><TR><TD vAlign=top width="24%" height=0>
Patient C (lung and intestinal tissues)​
</TD><TD vAlign=top width="13%" colSpan=3 height=0>
6-year-old boy, diagnosed in January 2004, died on day 17 after onset of illness​
</TD><TD vAlign=top width="13%" colSpan=3 height=0>
H​
</TD><TD vAlign=top width="13%" colSpan=2 height=0>
129​
</TD><TD vAlign=top width="13%" colSpan=3 height=0>
Q​
</TD><TD vAlign=top width="13%" colSpan=3 height=0>
3​
</TD><TD vAlign=top width="13%" height=0>
7.76?1.43​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S/L​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
133​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
V/F​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
13/1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.89?1.12​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
A​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
138​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
V​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
39​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.88?1.14​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
N​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
158​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
S/D​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1/1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
6.97?2.48​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
Y​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
161​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
C/H/R​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1/2/1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.89?1.12​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
Y​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
168​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
C​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
4.93?3.53​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
W​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
180​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
R​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.28?2.24​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
186​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
D​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
19​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.89?1.12​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
K​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
222​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
E​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
45​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.89?1.12​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
227​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
18​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
7.89?1.12​
</TD></TR><TR><TD vAlign=top width="26%" colSpan=2 height=0>
Lung (pooled sequences from patients B and C)​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
W​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
153​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
R​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>
1​
</TD><TD vAlign=top width="15%" colSpan=2 height=0>
8.62?2.03​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
Y​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
161​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
H/R​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
3/1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
8.78?1.69​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
T​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
163​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
A​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
6​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
5.57?3.81​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
L​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
194​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
P​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
6​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
8.89?1.43​
</TD></TR><TR><TD vAlign=top width="26%" colSpan=2 height=0>
Intestine (pooled sequences from patients B and C)​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S/L​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
133​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
V/F​
[/FONT]​
</TD><TD vAlign=top width="15%" colSpan=3 height=0>
11/1​
</TD><TD vAlign=top width="15%" colSpan=2 height=0>
6.53?1.17​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
Y​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
161​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
C/R​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
6.30?1.59​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>
W​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
180​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>
R​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
1​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
4.85?2.80​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
186​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
D​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
23​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
5.53?2.27​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
K​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
222​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
E​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
34​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
6.53?1.17​
</TD></TR><TR><TD vAlign=top width="29%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
S​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>[FONT=Times New Roman,Times New Roman]
227​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=4 height=0>[FONT=Times New Roman,Times New Roman]
N​
[/FONT]​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
23​
</TD><TD vAlign=top width="18%" colSpan=3 height=0>
5.36?2.37​
</TD></TR></TBODY></TABLE>
<TABLE borderColor=#000000 cellSpacing=2 cellPadding=7 width=492 border=1><TBODY><TR><TD vAlign=top width="42%" height=0>
252​
</TD><TD vAlign=top width="19%" height=0>
IV​
</TD><TD vAlign=top width="19%" height=0>
7​
</TD><TD vAlign=top width="19%" height=0>
6.52?1.19​
</TD></TR></TBODY></TABLE>
 
Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

quote
There are some differences
in the positive-selection sites from different tissues. In particular, the S227N mutation was
found in high frequency (36.7%) in the intestine of patient C and in low frequency (3%) in
the intestine of patient B, while it was absent in the lung tissue from both cases. This
suggested a strong selection for this mutation and a compartmentalization of the viral
population within the patients.
Most of the identified positive-selection sites concentrated in the N-terminal 2/3 part of the
sequences. Sixteen sites were identified in the region covering the receptor-binding
domain from residue 128 to 230, whereas only two sites were identified in the rest of the
sequences (residue 231–270).

and
The observed differences in the viral quasispecies in lung and intestine suggest that there
might be a compartmentalization of viral infection and that the selective pressure might be
different among different tissues.
Human lung has been shown to contain α-2,3-linked
sialic acid in alveolar epithelial cells, whereas human intestinal epithelium lacks this
receptor. In human intestine the α-2,3-linked sialic acid receptor was identified only on
neurons (Yao et al., 2008). It is not clear whether the difference in the sialic acid receptor
distribution between the two tissues contributed to the different selection of viral
sequences.

YAO et all : it was a chinese study

http://www.ncbi.nlm.nih.gov/sites/entrez?cmd=Retrieve&db=PubMed&list_uids=17925493&dopt=Abstract


[SIZE=+1]Avian influenza receptor expression in H5N1-infected and noninfected human tissues.[/SIZE]

Yao L, Korteweg C, Hsueh W, Gu J.

Department of Pathology, School of Basic Medical Sciences, Peking (Beijing) University, 38 Xueyuan Rd., 100083 Beijing, China.

Avian and human influenza viruses preferentially bind to alpha-2,3-linked and alpha-2,6-linked sialic acids, respectively. Until today, the distributions of these two receptor types had never been investigated in H5N1-infected human tissue samples. Here, the expression of avian (AIV-Rs) and human influenza receptors (HuIV-Rs) is studied in various organs (upper and lower respiratory tracts, brain, placenta, liver, kidney, heart, intestines, and spleen) of two H5N1 cases and 14 control cases. Histochemical stains using biotinylated Maackia amurensis lectin II and Sambucus nigra agglutinin were performed to localize AIV-Rs and HuIV-Rs, respectively. Immunohistochemical stainings were performed to identify the receptor-bearing cells. AIV-Rs were detected on type II pneumocytes; a limited number of epithelial cells of the upper respiratory tract; and the bronchi, bronchioli, and trachea; as well as on Kupffer cells, glomerular cells, splenic T cells, and neurons in the brain and intestines. HuIV-Rs were abundantly present in the respiratory tract and lungs.
They were also detected on Hofbauer cells, glomerular cells, splenic B cells, and in the liver. Moreover, endothelial cells of all organs examined expressed both receptor types. In conclusion, the distribution pattern of AIV-Rs is partially inconsistent with the pattern of infected cells as detected in previous studies, which suggests there may be other receptors or mechanisms involved in H5N1 infection. In addition, the diffuse presence of receptors on endothelial cells may account for the multiple organ involvement in H5N1 influenza. Finally, the relative lack of AIV-Rs in the upper airway may be a one of the factors preventing efficient human-to-human transmission of H5N1 influenza.
 
Re: Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

[SIZE=-1]J Gen Virol 89 (2008), 1805-1810; DOI 10.1099/vir.0.2008/002469-0
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</td><td class="content_box_item"> Articles by Auewarakul, P. </td></tr> </tbody></table> </td></tr></tbody></table> Positive selection at the receptor-binding site of haemagglutinin H5 in viral sequences derived from human tissues

<nobr>Alita Kongchanagul<sup>1</sup><sup>,2</sup></nobr>, <nobr>Ornpreya Suptawiwat<sup>1</sup></nobr>, <nobr>Pumaree Kanrai<sup>1</sup></nobr>, <nobr>Mongkol Uiprasertkul<sup>3</sup></nobr>, <nobr>Pilaipan Puthavathana<sup>1</sup></nobr> and <nobr>Prasert Auewarakul<sup>1</sup></nobr>
[SIZE=-1] <sup>1</sup> Department of Microbiology, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok 10700, Thailand
<sup>2</sup> Department of Immunology, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok 10700, Thailand
<sup>3</sup> Department of Pathology, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok 10700, Thailand [/SIZE]

[SIZE=-1]Correspondence<sup> </sup>
Prasert Auewarakul<sup> </sup>
sipaw@mahidol.ac.th<script type="text/javascript"><!-- var u = "sipaw", d = "mahidol.ac.th"; document.getElementById("em0").innerHTML = '<a href="mailto:' + u + '@' + d + '">' + u + '@' + d + '<\/a>'//--></script>[/SIZE]
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] ABSTRACT [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
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ABSTRACT
INTRODUCTION
METHODS
RESULTS
DISCUSSION
REFERENCES
[/SIZE]</th></tr></tbody></table>
Highly pathogenic H5N1 avian influenza virus has spread through<sup> </sup>at least 45 countries in three continents. Despite the ability<sup> </sup>to infect and cause severe disease in humans, the virus cannot<sup> </sup>transmit efficiently from human to human. The lack of efficient<sup> </sup>transmission indicates the incompletion of the adaptation of<sup> </sup>the avian virus to the new host species. The required mutations<sup> </sup>for the complete adaptation and the emergence of a potential<sup> </sup>pandemic virus are likely to originate and be selected within<sup> </sup>infected human tissues. Differential receptor preference plays<sup> </sup>an important role in the species-tropism of avian influenza.<sup> </sup>We have analysed quasispecies of sequences covering the receptor-binding<sup> </sup>domain of the haemagglutinin gene of H5N1 viruses derived from<sup> </sup>fatal human cases. We employed a likelihood ratio test to identify<sup> </sup>positive-selection sites within the quasispecies. Nine of seventeen<sup> </sup>positive-selection sites identified in our analyses were found<sup> </sup>to be located within or flanking the receptor-binding domain.<sup> </sup>Some of these mutations are known to alter receptor-binding<sup> </sup>specificity. This suggests that our approach could be used to<sup> </sup>screen for mutations with significant functional impact. Our<sup> </sup>data provide new candidate mutations for the viral adaptation<sup> </sup>to a human host, and a new approach to search for new genetic<sup> </sup>markers of potential pandemic viruses.<sup> </sup>
<!-- null --> Published online ahead of print on 12 May 2008 as DOI 10.1099/vir.0.2008/002469-0.<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] INTRODUCTION [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
ABSTRACT
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INTRODUCTION
METHODS
RESULTS
DISCUSSION
REFERENCES
[/SIZE]</th></tr></tbody></table>
The high replication error of RNA viruses, such as influenza<sup> </sup>virus, results in a mixed viral population with many variants,<sup> </sup>referred to as quasispecies (Eigen, 1996). Although, most sequence<sup> </sup>variations are neutral and offer no competitive advantage, the<sup> </sup>quasispecies provides multiple variants, which can be readily<sup> </sup>selected if there is a change in selective pressure. Transmission<sup> </sup>of the virus to a new host species provides new selective pressures<sup> </sup>and can result in the expansion of the ?best fit?<sup> </sup>minor variants for adaptation to the new environment.<sup> </sup>
In general, human and avian influenza A viruses differ in their<sup> </sup>recognition of host cell receptors. Human influenza viruses<sup> </sup>preferentially recognize
agr.gif
-2,6-linked sialic acid, while avian<sup> </sup>influenza viruses recognize
agr.gif
-2,3-linked sialic acid (Rogers<sup> </sup>& Paulson, 1983). However, the highly pathogenic avian influenza<sup> </sup>viruses subtype H5N1 can transmit directly from avian species<sup> </sup>to humans (Subbarao et al., 1998; Tran et al., 2004). Even though<sup> </sup>the H5N1 viruses can infect and cause severe disease in humans,<sup> </sup>they do not bind the
agr.gif
-2,6-linked sialic acid receptor with high<sup> </sup>affinity (Ha et al., 2001; Stevens et al., 2006). This property<sup> </sup>is believed to be one of the major factors that prevent the<sup> </sup>H5N1 virus from transmitting efficiently amongst humans and<sup> </sup>causing a pandemic. Amino acid substitutions in the haemagglutinin<sup> </sup>(HA) gene can lead to the altered receptor-binding preference<sup> </sup>of the virus from
agr.gif
-2,3-linked to
agr.gif
-2,6-linked sialic acid (Auewarakul<sup> </sup>et al., 2007; Stevens et al., 2006; Yamada et al., 2006). This<sup> </sup>would enable avian H5N1 viruses to recognize human-type host<sup> </sup>cell receptors and could potentially enable the virus to transmit<sup> </sup>efficiently within the human population and cause a catastrophic<sup> </sup>pandemic. Therefore, it is extremely important to monitor the<sup> </sup>viral changes that may lead to the emergence of pandemic viruses.<sup> </sup>
The earliest possible detection of selected mutants is by looking<sup> </sup>at sequences within viral quasispecies before they expand and<sup> </sup>become dominant virus. In order to detect mutants that might<sup> </sup>have altered phenotypes we studied the viral sequences at the<sup> </sup>level of quasispecies. We conducted a study where the viral<sup> </sup>sequence was directly amplified, cloned and sequenced from a<sup> </sup>nasopharyngeal aspirate or tissue specimens. The specimens were<sup> </sup>obtained from fatal human cases in Thailand.<sup> </sup>
Selection at the protein level can be measured by
ohgr.gif
(d<sub>N</sub>/d<sub>S</sub>),<sup> </sup>in which d<sub>N</sub>=non-synonymous substitution rate (non-synonymous<sup> </sup>changes per non-synonymous site) and d<sub>S</sub>=synonymous substitution<sup> </sup>rate (synonymous changes per synonymous site). If amino acid<sup> </sup>changes provide better fitness, the mutations will be fixed<sup> </sup>at a higher rate than synonymous mutations. This results in<sup> </sup>d<sub>N</sub>>d<sub>S</sub> and
ohgr.gif
>1. Originally,
ohgr.gif
was calculated as an average<sup> </sup>for the whole gene, which does not allow sensitive detection<sup> </sup>of individual amino acid residue under positive selection. Subsequently<sup> </sup>codon-based models that allow the
ohgr.gif
ratio to vary amongst sites<sup> </sup>were developed (Nielsen & Yang, 1998; Yang & Nielsen,<sup> </sup>2000). These models describe
ohgr.gif
ratio distribution amongst sites:<sup> </sup>M0 assumes one constant
ohgr.gif
for all sites; M3 classifies sites<sup> </sup>into discrete classes with different
ohgr.gif
; M7 allows
ohgr.gif
to vary according<sup> </sup>to a distribution that represents negative or neutral selection;<sup> </sup>M8 adds on top of M7 a discrete
ohgr.gif
class for sites with positive<sup> </sup>selection (
ohgr.gif
>1). Likelihood ratio test is used as a statistical<sup> </sup>test of goodness-or-fit to compare the two models and test whether<sup> </sup>the more complex model, e.g. M8 or M3, fits the dataset significantly<sup> </sup>better than the simpler model, e.g. M7 or M0. An empirical Bayes<sup> </sup>approach is then used to calculate the posterior probability<sup> </sup>that each site is from a particular site class, and sites with<sup> </sup>high posterior probabilities coming from the class with
ohgr.gif
>1<sup> </sup>are inferred to be under positive selection (Yang et al., 2005).<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] METHODS [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
ABSTRACT
INTRODUCTION
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METHODS
RESULTS
DISCUSSION
REFERENCES
[/SIZE]</th></tr></tbody></table>
[SIZE=-1]Patient.[/SIZE]
The first patient (patient A) was a non-autopsy case, previously<sup> </sup>reported (Auewarakul et al., 2007). Patient A was a 5-year-old<sup> </sup>boy who had progressive viral pneumonia that led to respiratory<sup> </sup>failure and death by 12 days after the onset of illness.<sup> </sup>In December 2005, he developed a fever, stomach ache, nausea<sup> </sup>and vomiting and was admitted to the hospital 10 days later<sup> </sup>when he developed dyspnea and a chest radiography showed patchy<sup> </sup>infiltration at the right middle lobe. The symptom of dyspnea<sup> </sup>worsened to respiratory failure and the pulmonary infiltration<sup> </sup>spread to both lungs on the following day. The diagnosis of<sup> </sup>avian influenza was suspected on day 12. The use of the antiviral<sup> </sup>drug oseltamivir was started and the patient expired on the<sup> </sup>same day. The patient was not known to have had direct contact<sup> </sup>with any sick or dying birds, but he played in the yard where<sup> </sup>the birds were often present. Nasopharyngeal aspirate was collected<sup> </sup>on day 12 after the onset of illness.<sup> </sup>
Autopsy was conducted in the second (patient B) and third patients<sup> </sup>(patient C). Patient B, previously reported (Uiprasertkul et<sup> </sup>al., 2007), was a 48-year-old man who had progressive viral<sup> </sup>pneumonia in October 2005. He had a fever, cough, runny nose,<sup> </sup>myalgia and chest pain at the onset of illness. Dyspnea developed<sup> </sup>on day 2 of the illness and a chest radiograph showed interstitial<sup> </sup>infiltrations at the right upper and left middle lung fields<sup> </sup>and a mass-like infiltration at the right middle lung field.<sup> </sup>The diagnosis of avian influenza was suspected on day 4 of the<sup> </sup>illness after a history of direct contact with dying chickens<sup> </sup>was revealed. Respiratory secretions were then sent to national<sup> </sup>laboratories and they were confirmed positive for influenza<sup> </sup>(H5N1) virus. The patient died on day 6 of the illness.<sup> </sup>
Patient C, previously reported (Uiprasertkul et al., 2005),<sup> </sup>was a 6-year-old boy who had progressive viral pneumonia in<sup> </sup>January 2004. He was initially treated with multiple broad-spectrum<sup> </sup>anti-microbial agents. Virological diagnosis of H5N1 infection<sup> </sup>was made on day 7 of the illness. After oseltamivir became available<sup> </sup>in Thailand, he was treated on day 15 of his illness with this<sup> </sup>agent until he died. He was also treated with methylprednisolone<sup> </sup>on day 15 until death and with granulocyte colony-stimulating<sup> </sup>factor for leukopenia from day 5 to 10 of the illness. The patient<sup> </sup>died on day 17 of the illness.<sup> </sup>
The use of the patients' specimens was approved by the Ethics<sup> </sup>Committee of the Faculty of Medicine Siriraj Hospital.<sup> </sup>
[SIZE=-1]Viral RNA, cloning and quasispecies analysis.[/SIZE]
For patient A, total RNA from the nasopharyngeal specimen was<sup> </sup>extracted according to the manufacturer's protocol (QIAmp RNA<sup> </sup>mini kit; Qiagen). For patients B and C, total RNAs were extracted<sup> </sup>by using Trizol from paraffin-embedded blocks of lung and intestine<sup> </sup>tissue samples and then purified using Qiagen RNAeasy kit according<sup> </sup>to the manufacturer's instructions.<sup> </sup>
A fragment of the HA gene covering the receptor-binding site<sup> </sup>(nt 413?905) was amplified from RNA extracted from the<sup> </sup>specimen by using the high fidelity enzyme Pfu (Promega) and<sup> </sup>the primers HHAf2 (5'-GGTCCAGTCATGAAGCCTCA-3') and HA-H5r12<sup> </sup>(5'-TTTATCGCCCCCATTGGAGT-3'). The PCR product was cloned into<sup> </sup>pGEM T-Easy. One hundred clones of each sample were picked up<sup> </sup>and sequenced.<sup> </sup>
The selective pressures acting on the receptor region were estimated<sup> </sup>by using the [SIZE=-2]CODEML[/SIZE] program in the [SIZE=-2]PAML[/SIZE] package. We used models<sup> </sup>M7 and M8, where M7 contains 10
ohgr.gif
categories to describe
ohgr.gif
amongst<sup> </sup>sites, all constrained to be <1; M8 differs from M7 only<sup> </sup>in that it estimates
ohgr.gif
for an extra class of sites (p10) at which<sup> </sup>
ohgr.gif
can be >1 (Yang, 1997). Models were compared using a likelihood<sup> </sup>ratio test and the Bayes Empirical Bayes (BEB) method was used<sup> </sup>for a posteriori estimation of individual codons under positive<sup> </sup>selection (Yang et al., 2005).<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] RESULTS [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
ABSTRACT
INTRODUCTION
METHODS
dot.gif
RESULTS
DISCUSSION
REFERENCES
[/SIZE]</th></tr></tbody></table>
We have analysed the HA sequences from either each individual<sup> </sup>patient or each organ (lung or intestine) of the patient. During<sup> </sup>a phylogenetic analysis (data not shown), the consensus wild-type<sup> </sup>sequence of each patient was found to be similar to one another<sup> </sup>and closely related to other clade 1 sequences from Thailand.<sup> </sup>All together 17 positive-selection sites were identified (Table 1)<sup> </sup>within this sequenced region spanning 143 aa residues (128?270).<sup> </sup>At these positions, the sequence majority in all the samples<sup> </sup>contains similar amino acids as in the consensus sequence of<sup> </sup>all human H5N1 viruses available in the GenBank database, except<sup> </sup>for positions 133 and 138 where mutant amino acids were found<sup> </sup>in higher frequencies. Total numbers of synonymous and non-synonymous<sup> </sup>substitutions, as well as lists of non-synonymous substitutions<sup> </sup>in all the RNA samples are shown in Table 2. Some of these<sup> </sup>mutations with low frequencies were not picked up as positive-selection<sup> </sup>site by the BEB analysis. Amongst the positive-selection sites,<sup> </sup>six sites were repeatedly found when each patient was analysed<sup> </sup>individually. These sites were 133, 138, 161, 186, 222 and 227<sup> </sup>(H3 numbering system). Of these all but the 133 and 161 positions<sup> </sup>are in the known receptor-binding domain. The receptor-binding<sup> </sup>site of HA at the tip of HA1 globular domain is composed of<sup> </sup>three secondary structure elements: the 190 helix (residues<sup> </sup>190?198), the 130 loop (residues 135?138) and the<sup> </sup>220 loop (residues 221?228), forming the sides of each<sup> </sup>site; and the base made up of the conserved residues Tyr<sup>98</sup>,<sup> </sup>Trp<sup>153</sup>, His<sup>183</sup> and Tyr<sup>195</sup> (Skehel & Wiley, 2000). Although,<sup> </sup>the positions 133 and 230 are not in the receptor-binding domain,<sup> </sup>they flank the 130 and 220 loops and they showed positive selection<sup> </sup>in our analyses, suggesting that mutations at these sites might<sup> </sup>also contribute to the receptor-binding adaptation. A138V, N186K<sup> </sup>and S227N mutations were previously reported to confer
agr.gif
-2,6-linked<sup> </sup>sialic acid binding to H5N1 virus (Auewarakul et al., 2007;<sup> </sup>Gambaryan et al., 2006; Shinya et al., 2005; Yamada et al.,<sup> </sup>2006). The mutant sequences in our analyses are similar to these<sup> </sup>mutations at positions 138 and 227, whereas our mutation at<sup> </sup>position 186 is N186D. Amongst the 17 positive-selection sites<sup> </sup>that were identified in our study, eight sites are not known<sup> </sup>to be related to the receptor-binding domain. But, these sites<sup> </sup>all showed only low mutation frequencies. In other words, all<sup> </sup>strong positive-selection sites with high mutation frequencies<sup> </sup>are related to the receptor-binding domain.<sup> </sup>
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<center><table cellpadding="0" cellspacing="0" width="95%"><tbody><tr bgcolor="#e1e1e1"><td> <table cellpadding="2" cellspacing="2"><tbody><tr bgcolor="#e1e1e1"><td align="center" bgcolor="#ffffff" valign="top"> View this table:
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</nobr> </td><td align="left" valign="top"> Table 1. Positive-selection sites on the HA gene from residue 128 to 270 Sources of sequences, wild-type and mutant amino acids, positions (H3 numbering), frequencies of mutant amino acids and site-specific
ohgr.gif
(d<sub>N</sub>/d<sub>S</sub>)?[SIZE=-2]SEM[/SIZE] are shown (
ohgr.gif
>1 indicates positive selection). The wild-type amino acids are from the consensus sequence of all human H5N1 viruses available in the GenBank database. Bold-typed residues are related to the receptor-binding domain. The residues that have been shown to carry receptor preference determinant for H5N1 are underlined.

</td></tr></tbody></table> </td></tr></tbody></table></center>
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<center><table cellpadding="0" cellspacing="0" width="95%"><tbody><tr bgcolor="#e1e1e1"><td> <table cellpadding="2" cellspacing="2"><tbody><tr bgcolor="#e1e1e1"><td align="center" bgcolor="#ffffff" valign="top"> View this table:
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</nobr> </td><td align="left" valign="top"> Table 2. Numbers of all synonymous and non-synonymous substitutions and a list of non-synonymous substitutions in each dataset
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In patients A, B and C, we found seven, five and ten positive-selection<sup> </sup>sites, respectively. Of these five, three and five sites, respectively,<sup> </sup>are in or they flank the receptor-binding domain (Table 1).<sup> </sup>The higher frequency of positive-selection sites in patient<sup> </sup>C may be related to the fact that this patient died on day 17<sup> </sup>of the illness, while the samples from the other two patients<sup> </sup>were collected earlier in the course of the illness. The longer<sup> </sup>duration of infection provided a longer period under the selective<sup> </sup>pressure and might cause the virus to gain more adaptation.<sup> </sup>In patient C, there were markedly more positive-selection sites<sup> </sup>that are not related to the receptor-binding domain, including<sup> </sup>the N-linked glycosylation site at position 158. This suggests<sup> </sup>that other selective pressures, such as the immune response,<sup> </sup>might be involved in late phases of the disease.<sup> </sup> When each type of tissue from patients B and C was analysed,<sup> </sup>four and seven positive-selection sites were identified in the<sup> </sup>lung and intestine, of which two and four sites are related<sup> </sup>to the receptor-binding domain, respectively. (Table 1).<sup> </sup>There are some differences in the positive-selection sites from<sup> </sup>different tissues. In particular, the S227N mutation was found<sup> </sup>in high frequency (36.7 %) in the intestine of patient C and<sup> </sup>in low frequency (3 %) in the intestine of patient B, while<sup> </sup>it was absent in the lung tissue from both cases. This suggested<sup> </sup>a strong selection for this mutation and a compartmentalization<sup> </sup>of the viral population within the patients.<sup> </sup>
Most of the identified positive-selection sites concentrated<sup> </sup>in the N-terminal 2/3 part of the sequences. Sixteen sites were<sup> </sup>identified in the region covering the receptor-binding domain<sup> </sup>from residue 128 to 230, whereas only two sites were identified<sup> </sup>in the rest of the sequences (residue 231?270).<sup> </sup>
Mutations that have been reported to alter receptor-binding<sup> </sup>specificity of H5 are A138V, N186K, Q196R, S227N, Q226L and<sup> </sup>G228S (Auewarakul et al., 2007; Gambaryan et al., 2006; Shinya<sup> </sup>et al., 2005; Stevens et al., 2006; Yamada et al., 2006). Our<sup> </sup>analyses provide new candidate mutations that may affect the<sup> </sup>receptor-binding specificity. Whether these mutations have functional<sup> </sup>consequences is under investigation.<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] DISCUSSION [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
ABSTRACT
INTRODUCTION
METHODS
RESULTS
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DISCUSSION
REFERENCES
[/SIZE]</th></tr></tbody></table>
Minimal positive selection in the C-terminal region outside<sup> </sup>the receptor-binding domain suggests that the observed positive-selection<sup> </sup>sites were not fortuitous. Although, most of the positive-selection<sup> </sup>sites were within or very close to the receptor-binding domain,<sup> </sup>there were also other sites not related to the receptor-binding<sup> </sup>pocket. It is not clear what drove positive selection at these<sup> </sup>sites. It is possible that a mutation outside the receptor-binding<sup> </sup>pocket may induce conformational changes that indirectly affect<sup> </sup>the pocket. On the other hand, among the eight positive-selection<sup> </sup>sites outside the receptor-binding pocket, five sites are on<sup> </sup>the surface of HA (129, 158, 161, 163 and 168) and only three<sup> </sup>sites are hidden inside the molecule (180, 150 and 152). Although,<sup> </sup>these five exposed sites are not within known antigenic epitopes<sup> </sup>(Kaverin et al., 2002, 2007), it is possible that they constitute<sup> </sup>an unknown epitope.<sup> </sup>
The observed differences in the viral quasispecies in lung and<sup> </sup>intestine suggest that there might be a compartmentalization<sup> </sup>of viral infection and that the selective pressure might be<sup> </sup>different among different tissues. Human lung has been shown<sup> </sup>to contain
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-2,3-linked sialic acid in alveolar epithelial cells,<sup> </sup>whereas human intestinal epithelium lacks this receptor. In<sup> </sup>human intestine the
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-2,3-linked sialic acid receptor was identified<sup> </sup>only on neurons (Yao et al., 2008). It is not clear whether<sup> </sup>the difference in the sialic acid receptor distribution between<sup> </sup>the two tissues contributed to the different selection of viral<sup> </sup>sequences.<sup> </sup>
Our data demonstrate adaptation of the receptor-binding domain<sup> </sup>of H5N1 virus in infected human tissues. If allowed to be transmitted<sup> </sup>further to other human hosts, the mutants would be likely to<sup> </sup>be selected further and expand, and eventually cause emergence<sup> </sup>of a potential pandemic virus. Understanding the adaptation<sup> </sup>is therefore of upmost importance. Adaptation of avian influenza<sup> </sup>virus to human host involves multiple mechanisms. However, the<sup> </sup>receptor usage preference is likely to be a major step in the<sup> </sup>adaptation process. Although, there have been reports on mutations<sup> </sup>that altered receptor-binding specificity of H5, those reported<sup> </sup>mutations only conferred partial switching from
agr.gif
-2,3-linkage<sup> </sup>tropism to dual tropism (Auewarakul et al., 2007; Gambaryan<sup> </sup>et al., 2006; Stevens et al., 2006; Yamada et al., 2006). It<sup> </sup>is likely that these mutations are not sufficient and full switching<sup> </sup>to
agr.gif
-2,6-linkage tropism is probably needed for an efficient<sup> </sup>transmission in the human population. Such mutation that can<sup> </sup>cause a complete switching of H5 is not known. The fact that<sup> </sup>our analyses could pick up mutations that are known to change<sup> </sup>the receptor-binding property of H5N1 viruses indicates that<sup> </sup>they can be used to screen and search for mutations with significant<sup> </sup>functional effects. Our analyses offer an approach to find candidate<sup> </sup>mutations, which should be studied further for determining functionality.<sup> </sup>Finding mutations with pandemic potential before the actual<sup> </sup>emergence of such viruses will provide genetic markers for vigilant<sup> </sup>monitoring, which will hopefully help us to avoid the pandemic.<sup> </sup>
<sup> </sup>
<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] ACKNOWLEDGEMENTS [/SIZE]</th></tr></tbody></table>
This work was supported by a research grant from the National<sup> </sup>Center for Genetic Engineering and Biotechnology of Thailand.<sup> </sup>A. K. is a PhD candidate of the Department of Immunology.<sup> </sup>
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</td> <th align="left" valign="middle" width="95%">[SIZE=+2] REFERENCES [/SIZE]</th></tr></tbody></table> <table align="right" border="1" cellpadding="5"><tbody><tr><th align="left">[SIZE=-1] TOP
ABSTRACT
INTRODUCTION
METHODS
RESULTS
DISCUSSION
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REFERENCES
[/SIZE]</th></tr></tbody></table>
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[SIZE=-1]Received 28 March 2008; accepted 2 May 2008.[/SIZE]



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