High microvascular endothelial water permeability in mouse lung measured by a pleural surface fluorescence method

被引:37
作者
Carter, EP
Ölveczky, BP
Matthay, MA
Verkman, AS
机构
[1] Univ Calif San Francisco, Cardiovasc Res Inst, Dept Med, San Francisco, CA 94143 USA
[2] Univ Calif San Francisco, Cardiovasc Res Inst, Dept Physiol, San Francisco, CA 94143 USA
关键词
D O I
10.1016/S0006-3495(98)77919-6
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Transport of water between the capillary and airspace compartments in lung encounters serial barriers: the alveolar epithelium, interstitium, and capillary endothelium. We previously reported a pleural surface fluorescence method to measure net capillary-to-airspace water transport. To measure the osmotic water permeability across the microvascular endothelial barrier in intact lung, the airspace was filled with a water-immiscible fluorocarbon. The capillaries were perfused via the pulmonary artery with solutions of specified osmolaiites containing a high-molecular-weight fluorescent dextran, An increase in perfusate osmolality produced a prompt decrease in surface fluorescence due to dye dilution in the capillaries, followed by a slower return to initial fluorescence as capillary and lung interstitial osmolality equilibrate. A mathematical model was developed to determine the osmotic water permeability coefficient (P-f) of lung microvessels from the time course of pleural surface fluorescence. As predicted, the magnitude of the prompt change in surface fluorescence increased with decreased pulmonary artery perfusion rate and increased osmotic gradient size. With raffinose used to induce the osmotic gradient, P-f was 0.03 cm/s at 23 degrees C and was reduced 54% by 0.5 mM HgCl2. Temperature dependence measurements gave an Arrhenius activation energy (E-a) of 5.4 kcal/mol (12-37 degrees C). The apparent P-f induced by the smaller osmolytes mannitol and glycine was 0.021 and 0.011 cm/s (23 degrees C). Immunoblot analysis showed similar to 1.4 x 10(12) aquaporin-1 water channels/cm(2) of capillary surface, which accounted quantitatively for the high P-f. These results establish a novel method for measuring osmotically driven water permeability across microvessels in intact lung. The high P-f, low E-a, and mercurial inhibition indicate the involvement of molecular water channels in water transport across the lung endothelium.
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收藏
页码:2121 / 2128
页数:8
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