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Increased microvascular permeability in lungs leads to development of alveolar edema and compromised gas exchange and is a major characteristic of acute lung injury (ALI)1-3. Thus, estimates of vascular permeability are important in defining the extent of lung injury and efficacy of proposed therapeutic interventions. Gravimetric analysis such as blood free lung wet-to-dry ratio and microvascular filtration coefficient are widely used methods to estimate permeability4,5. Other methods include quantifying the retention of radioactive or fluorescent probes in lung tissue6-8. However, the above methods require postexperiment processing of lung tissue samples toward elucidating the permeability data. Moreover, since one animal can be only used for a single treatment protocol, large animal numbers may be needed for a complete study. A common characteristic of the above methods is that they determine the mean vascular permeability for all blood vessels within the tissue sample. However, it is well established that pulmonary micro- and macro-vessels are phenotypically different9. Hence, permeability responses may be heterogeneous among the various vessel segments as well9,10. Thus, quantifying mean permeability of all pulmonary vessels in a tissue sample may not adequately reflect this heterogeneity.
In the isolated blood-perfused lung preparation, blood vessels on the lung surface can be visualized by an upright microscope4,11,12. This enables characterizing responses in single vessels and thus, addressing any heterogeneity in the responses13. In addition, by utilizing fluorescence imaging of microvessels, fluorescence based assays can be incorporated. Further, a left atrial microcatheter can be used to deliver agents and fluorescence probes into blood vessels11,14. The microcatheter limits the delivery to a small lung region, thus exposing only the blood vessels within the region to the infused agents and fluorophores. This allows multiple small regions within the same lung to be used for separate experiments, leading to an overall reduction in animals needed for a study.
Real time imaging enables capture of dynamic changes in vascular and extravascular fluorescence of single microvessels of the isolated lung preparation. Thus, for each microvessel within an image field, changes in fluorescence during infusion of fluorophores and washoff can be recorded, and quantified offline14. Using values of maximum and residual vascular fluorescence, a permeability index for each microvessel within the imaging field can be determined. To determine permeability changes in response to inflammatory or injurious agents, the desired agent can be administered first and then the permeability index determined. In addition, the image field can be set anywhere within the lung region infused by the microcatheter, thus enabling a high degree of flexibility in selecting the desired vascular network. Thus, the isolated blood-perfused lung preparation in tandem with real time imaging provides an attractive experimental model to quantify permeability in single lung microvessels.