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Mucosal surfaces serve as physical and immunological barriers providing protection against external threats pervasive in the environment1,2. This protective epithelial barrier can be compromised when pathogenic organisms invade2. In the case of a bacterial pathogen, this encounter often instigates an inflammatory process by activating the innate immune system and triggering a rapid mobilization of first responder granulocytes known as neutrophils2-4. Chemotactic agents facilitating neutrophil recruitment are produced in part by the mucosal epithelial cells seeking to rid the host of the offending pathogen2-4. Excessive or unresolved neutrophil infiltration of the mucosal epithelial surface can cause significant pathology1,5. This is a consequence of nonspecific tissue damage caused by the anti-bacterial neutrophil arsenal5-7. In such cases, bacterial clearance capacity of neutrophils is overshadowed by destruction of host tissue during an infectious insult. Disruption of the protective epithelial barrier function can lead to enhanced exposure of underlying tissue to microorganisms and/or toxins, further exacerbating disease pathology8,9. These consequences can be observed in multiple organ systems including the lung and digestive tract1,5. Furthermore, noninfectious inflammatory conditions such as severe bouts of asthma, chronic obstructive pulmonary disease (COPD), acute respiratory distress syndrome (ARDS), and inflammatory bowel disease (IBD) are marked by the pathological breach of the mucosal epithelial barrier by an excessive neutrophilic response4,5,10-12.
The complex process of neutrophil recruitment following mucosal infection involves several compartmentalized steps1,5,13,14. First, neutrophils must depart from circulation via a series of cell-to-cell interactions that facilitate trans-endothelial migration1,13. Neutrophils next navigate existing interstitial space containing extracellular matrix1,14. To reach the lumen of the infected mucosa, neutrophils must then migrate across the epithelial barrier1,4,5. This intricate multistep phenomenon is often investigated in aggregate using in vivo animal models of infection15. Such models are useful for establishing the necessity of specific factors, such as chemokines, adhesion molecules, or signaling pathways that participate in the overall process but are largely inadequate for resolving molecular contributions critical for each distinct compartmentalized step16. Cocultured in vitro systems modeling trans-endothelial, trans-matrix, or trans-epithelial migration of neutrophils have been particularly useful in this regard1,14,16,17.
A robust coculture assay system has been developed for the purpose of deciphering mechanisms responsible for neutrophil trans-epithelial migration in response to pathogenic infection18-22. This model involves infecting the apical surface of polarized human epithelial cell layers with a bacterial pathogen followed by application of freshly isolated human neutrophils to the basolateral surface18-22. Neutrophils migrate across the epithelial barrier in response to epithelial-derived chemotactic products secreted following pathogenic infection18,21-23. This model system has been employed using intestinal and lung epithelial cultures exposed to appropriate tissue specific bacterial pathogens and has unveiled novel molecular mechanisms likely important to the neutrophil recruitment process during mucosal infection3,8,19,24-28. The strength of this in vitro coculture model is that a reductionist approach enables the investigator to experimentally manipulate the pathogen, epithelial barrier, and/or neutrophil in a well-controlled, highly reproducible, fairly inexpensive system. Insight gathered from this approach can be effectively leveraged to conduct focused analysis of compartmentalized events during neutrophil recruitment using in vivo infection models22,29,30.
This article demonstrates the multiple steps necessary for the successful establishment of this reproducible model to explore pathogen induced neutrophil trans-epithelial migration. Lung epithelial barriers infected with the pathogen Pseudomonas aeruginosa are featured in this article; however, other tissue epithelia and pathogens can be substituted with minor modifications. Seeding and culturing of polarized lung epithelial cell layers on inverted collagen coated permeable transwell filters is detailed herein, as is the growth of pathogenic P. aeruginosa and the isolation of neutrophils from whole blood. How these components are combined to observe pathogen induced neutrophil trans-epithelial migration is presented along with appropriate positive and negative controls to establish a reproducible assay. The versatility of this approach to examine various aspects of pathogen induced neutrophil trans-epithelial migration is discussed with reference to specific studies in the literature.