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Gonzales-Huerta, L. E.

Publications and source records attributed to Gonzales-Huerta, L. E..

3 recordsLinked to original sources

Selective targeting of IL-1RAP-dependent eosinophilic inflammation in allergic fungal airway disease

It is estimated that in excess of 10 million people around the globe are affected by severe asthma and fungal sensitisation (SAFS) or allergic bronchopulmonary aspergillosis (ABPA), severe asthma endotypes driven by hypersensitivity to environmentally ubiquitous fungal pathogens, primarily Aspergillus fumigatus. Here, we sought to define the immunological pathways underlying these allergic fungal airway diseases. To do so, we exploit the chronic exposure repeat challenge model using live A. fumigatus conidia to systematically define the key immunological pathways driving airway inflammation in allergic fungal airway disease. In response to daily intranasal challenge, we observed increased absolute numbers of neutrophils and eosinophils in bronchoalveolar lavage fluid (BALF), characteristic of human allergic fungal airway disease, with significant depletion of the alveolar macrophage population. Transcriptomic analysis of BALF cells identified increased expression of IL-1 family cytokines and receptors including IL-1{beta}, IL-1RL1, IL-1R2 and the IL-18 binding protein. Complementary proteomic analysis of BALF revealed increased levels of cell death related proteins calprotectin and IL-1 Receptor Accessory Protein (IL-1RAP). Targeting IL-1RAP, using knockout mice, led to selective reduction in eosinophilia, IL-5 and IL-13 in the airways without impairment of fungal killing. This study identifies a role for IL-1RAP in the generation of eosinophilia independent of neutrophil influx and highlights its potential as a novel immunotherapeutic target for the treatment of allergic fungal airway disease. Author SummaryAllergic bronchopulmonary aspergillosis (ABPA) is a form of lung disease primarily affecting those with asthma or cystic fibrosis induced by the ubiquitous pathogen Aspergillus fumigatus. Understanding the immunological mechanisms contributing to this airway disease is important for the development of novel treatments to improve quality of life and preserve lung function. In this study, we show that an Aspergillus fumigatus repeat challenge model phenocopies immunological features of allergic fungal airway disease and is hallmarked by increased IL-1 family signalling. We identify the IL-1RAP as a contributor to eosinophilia and the release of Type 2 cytokines during allergic fungal airway disease. This work represents major step in describing the molecular mechanisms of airway eosinophilia in response to fungal exposure and lays the groundwork for further dissection of inflammatory pathways to target with immunotherapeutic approaches.

immunology↗

Mycobacterial lipoarabinomannan negatively interferes with macrophage responses to Aspergillus fumigatus in-vitro

IntroductionOver 1 million people have chronic pulmonary aspergillosis (CPA) secondary to pulmonary tuberculosis. Additionally, Aspergillus fumigatus (Af) has been reported as one of the most common pathogens associated with mycobacteria in patients with cystic fibrosis. Mycobacterial virulence factors, like lipoarabinomannan, have been shown to interfere with hosts intracellular pathways required for an effective immune response, however, the immunological basis for mycobacterial-fungal coinfection is still unknown. We therefore investigated the effect of lipoarabinomannan on macrophage responses against Af. MethodsBone marrow-derived macrophages (BMDMs) were stimulated with non-mannose-capped lipoarabinomannan (LAM) from Mycobacterium smegmatis or mannose-capped lipoarabinomannan (ManLAM) from Mycobacterium tuberculosis for 2 hours and then infected with swollen Af conidia. Cell death was assessed by lactate dehydrogenase release. Cytokine release was measured in supernatant using Enzyme Linked Immuno-Sorbent Assay (ELISA). Colony forming units counting and time-lapse fluorescence microscopy was performed for studying conidia killing by macrophages. ResultsBMDMs stimulated with LAM showed increased cell death and inflammatory cytokine release in a dose-dependent manner, characterised by a significant increase of IL-1{beta} release. Time-lapse fluorescence microscopy and CFUs revealed that both LAM and ManLAM significantly decrease the capacity of macrophages to kill Af conidia within the first 6 hours of infection. ConclusionsThe mycobacterial virulence factor, lipoarabinomannan, disrupts macrophage capacity to efficiently clear Af at early stages of infection in-vitro.

immunology↗

Precision-cut lung slices in air-liquid interface (PCLS-ALI): A novel ex-vivo model for the study of Pulmonary Aspergillosis

Pulmonary Aspergillosis is a respiratory infection with a high mortality rate, which affects patients with immunosuppression or structural lung defects. Antifungal treatment options are few and many have narrow therapeutic margins and potentially serious side effects. In recent years, there are growing numbers of reports of antifungal resistance. Thus, there is an urgent need for effective models to study fungal pathogenesis and test antifungal therapies in the respiratory system. Here, we present a novel ex-vivo model using precision-cut lung slices in an air-liquid interface platform to evaluate lung tissue responses to fungal infection and antifungal treatment. Readouts assessed were lactate dehydrogenase for tissue damage, release of inflammatory cytokines (TNF-, IL-1{beta}, CXCL1), and histology for confirmation of hyphal invasion. Overall, the PCLS-ALI model is a promising approach for understanding lung tissue responses to fungal infections, which fulfils the reduction and refinement components of the 3Rs guiding principles for ethical use of experimental animals.

immunology↗