M2 Proton Channel: Difference between revisions

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== Background ==
== Background ==
The M2 proton channel is a key protein that leads to viral infection.<ref name="Takeuchi" /> The M2 proton channel acidifies the viron which allows the viral matrix protein (M1) to disassociate from the ribonucleoprotein (RNP).<ref name="Wu">PMID:12972147 </ref> This allows the RNP to be transported to the nucleus of the cell.<ref name="Wu" /> Several recent studies have looked at the effects of <scene name='User:Sarah_Henke/Sandbox_1/Amantadine/1'>amantadine</scene><ref name="Stouffer">PMID:18235504 </ref> and <scene name='User:Sarah_Henke/Sandbox_1/Rimantadine/1'>rimantadine</scene><ref name="Schnell">PMID:18235503 </ref> on inhibiting the transfer of protons through the M2 channel.<ref name="Stouffer" /> Amantadine is a proton surrogate that competes with protons for binding to His37.<ref name="Lear" /> It has been found that M2 is resistant to these two drugs in 90% of humans, birds and pigs.<ref name="Stouffer" /> Understanding the structure and function of this proton channel is necessary in solving the resistance problem.<ref name="Stouffer" />  
The M2 proton channel is a key protein that leads to viral infection.<ref name="Takeuchi" /> The M2 proton channel acidifies the virion which allows the viral matrix protein (M1) to disassociate from the ribonucleoprotein (RNP).<ref name="Wu">PMID:12972147 </ref> This allows the RNP to be transported to the nucleus of the cell.<ref name="Wu" /> Several recent studies have looked at the effects of <scene name='User:Sarah_Henke/Sandbox_1/Amantadine/1'>amantadine</scene><ref name="Stouffer">PMID:18235504 </ref> and <scene name='User:Sarah_Henke/Sandbox_1/Rimantadine/1'>rimantadine</scene><ref name="Schnell">PMID:18235503 </ref> on inhibiting the transfer of protons through the M2 channel.<ref name="Stouffer" /> Amantadine is a proton surrogate that competes with protons for binding to His37.<ref name="Lear" /> It has been found that M2 is resistant to these two drugs in 90% of humans, birds and pigs.<ref name="Stouffer" /> Understanding the structure and function of this proton channel is necessary in solving the resistance problem.<ref name="Stouffer" />  


== Structure ==
== Structure ==
The M2 proton channel from influenza A is 97 amino acid residues and forms a 24-residue N-terminal extracellular domain, a 19-residue trans-membrane domain, and a 54-residue C-terminal cytoplasmic domain.<ref name="Wu" /> The 19-residue TM domain forms the highly selective proton channel.<ref name="Takeuchi">PMID:12972149 </ref> Circular dichroism spectra has shown the TM domain to form an <scene name='User:Sarah_Henke/Sandbox_1/Momomer/2'>α-helix</scene> that spans the membrane.<ref name="Wu" /> By analytical ultracentrifugation, the TM domain is found to form <scene name='User:Sarah_Henke/Sandbox_1/Alpha_hlix/1'>homotetramers</scene> which contains four identical α-helices.<ref name="Takeuchi" /> Secondary structure is color coded by {{Template:ColorKey_Helix}}. When viewed in the <scene name='User:Sarah_Henke/Sandbox_1/N_to_c/1'>N->C color coding</scene> the <FONT COLOR="blue">'''N-terminus'''</FONT> is located near the extracellular side of the membrane while the <FONT COLOR="red">'''C-terminus'''</FONT> is located near the cytosolic side of the membrane. This tetrameric bundle of the TM domain is found by NMR to be tilted by 25-38° from the channel axis.<ref name="Takeuchi" /> The trameric helices form a left-handed bundle that resembles a truncated cone.<ref name="Stouffer" /> The TM helicies are arranged around the channel pore with an approximate four-fold rotational symmetry.<ref name="Takeuchi" />
The M2 proton channel from influenza A is 97 amino acid residues and forms a 24-residue N-terminal extracellular domain, a 19-residue trans-membrane domain, and a 54-residue C-terminal cytoplasmic domain.<ref name="Wu" /> The 19-residue TM domain forms the highly selective proton channel.<ref name="Takeuchi">PMID:12972149 </ref> Circular dichroism spectra has shown the TM domain to form an <scene name='User:Sarah_Henke/Sandbox_1/Momomer/2'>α-helix</scene> that spans the membrane.<ref name="Wu" /> By analytical ultracentrifugation, the TM domain is found to form <scene name='User:Sarah_Henke/Sandbox_1/Alpha_hlix/1'>homotetramers</scene> which contains four identical α-helices.<ref name="Takeuchi" /> Secondary structure is color coded by {{Template:ColorKey_Helix}}. When viewed in the <scene name='User:Sarah_Henke/Sandbox_1/N_to_c/1'>N->C color coding</scene> the <FONT COLOR="blue">'''N-terminus'''</FONT> is located near the external side of the membrane while the <FONT COLOR="red">'''C-terminus'''</FONT> is located near the internal side of the membrane, closest to the virion. This tetrameric bundle of the TM domain is found by NMR to be tilted by 25-38° from the channel axis.<ref name="Takeuchi" /> The tetrameric helices form a left-handed bundle that resembles a truncated cone.<ref name="Stouffer" /> The TM helicies are arranged around the channel pore with an approximate four-fold rotational symmetry.<ref name="Takeuchi" />


== Central Cavity ==
== Central Cavity ==
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== Selectivity ==
== Selectivity ==
The selectivity of this channel is based on the binding of a proton to the His37 residues in each of the α-helices in the tetramer.<ref name="Takeuchi" /><ref name="Lear" /><ref name="Wu" /> Without protons binding to the His residues, the channel would not open. Also, because there is an excess amount of protons when the pH is in acidic conditions on the extracellular side of the membrane, a proton gradient is formed. Once the channel is open, the protons move with their gradient to the cytosolic side of the membrane. These protons are then used to acidify the viron.<ref name="Wu" />
 




== References ==
== References ==
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