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Adaptable interaction between aquaporin-1 and band 3 reveals a potential role of water channel in blood CO2 transport

机译:Aquaporin-1和3带之间的适应性相互作用揭示了水通道在血液CO2转运中的潜在作用

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摘要

Human CO2 respiration requires rapid conversion between CO2 and HCO3. Carbonic anhydrase II facilitates this reversible reaction inside red blood cells, and band 3 [anion exchanger 1 (AE1)] provides a passage for HCO3 flux across the cell membrane. These 2 proteins are core components of the CO2 transport metabolon. Intracellular H2O is necessary for CO2/HCO3 conversion. However, abundantly expressed aquaporin 1 (AQP1) in erythrocytes is thought not to be part of band 3 complexes or the CO2 transport metabolon. To solve this conundrum, we used Förster resonance energy transfer (FRET) measured by fluorescence lifetime imaging (FLIM-FRET) and identified interaction between aquaporin-1 and band 3 at a distance of 8 nm, within the range of dipole–dipole interaction. Notably, their interaction was adaptable to membrane tonicity changes. This suggests that the function of AQP1 in tonicity response could be coupled or correlated to its function in band 3-mediated CO2/HCO3 exchange. By demonstrating AQP1 as a mobile component of the CO2 transport metabolon, our results uncover a potential role of water channel in blood CO2 transport and respiration.—Hsu, K., Lee, T.-Y., Periasamy, A., Kao, F.-J., Li, L.-T., Lin, C.-Y., Lin, H.-J., Lin, M. Adaptable interaction between aquaporin-1 and band 3 reveals a potential role of water channel in blood CO2 transport.
机译:人类的CO2呼吸需要在CO2和HCO3 -之间快速转换。碳酸酐酶II促进红细胞内部的这种可逆反应,并且带3 [阴离子交换剂1(AE1)]为HCO3 -通量穿过细胞膜提供了通道。这2种蛋白质是CO2转运代谢产物的核心成分。细胞内H2O对于CO2 / HCO3 -转化是必需的。但是,在红细胞中大量表达的水通道蛋白1(AQP1)被认为不是带3复合物或CO2转运代谢子的一部分。为了解决这个难题,我们使用了通过荧光寿命成像(FLIM-FRET)测量的Förster共振能量转移(FRET),并确定了偶极子-偶极子相互作用范围内水通道蛋白1和3带在8 n​​m距离处的相互作用。值得注意的是,它们的相互作用适应膜张力的变化。这表明AQP1在强直反应中的功能可能与其在带3介导的CO2 / HCO3 -交换中的功能耦合或相关。通过证明AQP1作为CO2传输代谢产物的移动成分,我们的研究结果揭示了水通道在血液CO2传输和呼吸中的潜在作用。—— Hsu,K.,Lee,T.-Y.,Periasamy,A. F.-J.,Li,L.-T.,Lin,C.-Y.,Lin,H.-J.,Lin,M.aquaporin-1和band 3之间的适应性相互作用揭示了水通道的潜在作用在血液中的二氧化碳运输。

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