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Article ; Online: Functional importance of the oligomer formation of the cyanobacterial H+ pump Gloeobacter rhodopsin

Azusa Iizuka / Kousuke Kajimoto / Tomotsumi Fujisawa / Takashi Tsukamoto / Tomoyasu Aizawa / Naoki Kamo / Kwang-Hwan Jung / Masashi Unno / Makoto Demura / Takashi Kikukawa

Scientific Reports, Vol 9, Iss 1, Pp 1-

2019  Volume 12

Abstract: Abstract Many microbial rhodopsins self-oligomerize, but the functional consequences of oligomerization have not been well clarified. We examined the effects of oligomerization of a H+ pump, Gloeobacter rhodopsin (GR), by using nanodisc containing ... ...

Abstract Abstract Many microbial rhodopsins self-oligomerize, but the functional consequences of oligomerization have not been well clarified. We examined the effects of oligomerization of a H+ pump, Gloeobacter rhodopsin (GR), by using nanodisc containing trimeric and monomeric GR. The monomerization did not appear to affect the unphotolyzed GR. However, we found a significant impact on the photoreaction: The monomeric GR showed faint M intermediate formation and negligible H+ transfer reactions. These changes reflected the elevated pKa of the Asp121 residue, whose deprotonation is a prerequisite for the functional photoreaction. Here, we focused on His87, which is a neighboring residue of Asp121 and conserved among eubacterial H+ pumps but replaced by Met in an archaeal H+ pump. We found that the H87M mutation removes the “monomerization effects”: Even in the monomeric state, H87M contained the deprotonated Asp121 and showed both M formation and distinct H+ transfer reactions. Thus, for wild-type GR, monomerization probably strengthens the Asp121-His87 interaction and thereby elevates the pKa of Asp121 residue. This strong interaction might occur due to the loosened protein structure and/or the disruption of the interprotomer interaction of His87. Thus, the trimeric assembly of GR enables light-induced H+ transfer reactions through adjusting the positions of key residues.
Keywords Medicine ; R ; Science ; Q
Language English
Publishing date 2019-07-01T00:00:00Z
Publisher Nature Publishing Group
Document type Article ; Online
Database BASE - Bielefeld Academic Search Engine (life sciences selection)

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