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Biology subjects

Taborda, C. P.

Publications and source records attributed to Taborda, C. P..

2 recordsLinked to original sources

Minilungs from hESCs to study the interaction of Streptococcus pneumoniae with the respiratory tract

The new generation of organoids derived from human pluripotent stem cells holds a promising strategy for modeling host-bacteria interaction studies. Organoids recapitulate the composition, diversity of cell types and, to some extent, the functional features of the native organ. We have generated lung bud organoids derived from human embryonic stem cells to study the interaction of Streptococcus pneumoniae (pneumococcus) with the alveolar epithelium. Invasive pneumococcal disease is an important health problem that may occur as a result of the spread of pneumococcus from the lower respiratory tract to sterile sites. We show here an efficient experimental approach to model the main events of the pneumococcal infection that occur in the human lung exploring bacterial adherence to the epithelium, internalization, and triggering of an innate response that includes the interaction with the surfactant and the expression of representative cytokines and chemokines. Thus, this model, based on human minilungs, can be used to study pneumococcal virulence factors, the pathogenesis of different serotypes and it will allow therapeutic interventions in a reliable human context. IMPORTANCEStreptococcus pneumoniae is responsible for high morbidity and mortalities rates worldwide affecting mainly children and adults older than 65 years. Pneumococcus is also the most common etiologic agent of bacterial pneumonia, non-epidemic meningitis, and a frequent cause of bacterial sepsis. Although the advent of pneumococcal vaccines has decreased the burden of the diseases caused by pneumococcus, the emerging of antibiotic-resistant strains and non-vaccine types by serotype replacement, is worrisome. To study the biology of pneumococcus and to establish a reliable human model for pneumococcal pathogenesis, we have generated human minilungs from embryonic stem cells. The results show that these organoids can be used to model some events occurring during the interaction of pneumococcus with the lung such as adherence, internalization, and the initial alveolar innate response. This model also represents a great alternative to study virulence factors involved in pneumonia, drug screening, and other therapeutic interventions.

microbiology↗

Differential recognition and cytokine induction by the peptidorhamnomannan from Sporothrix brasiliensis and S. schenckii

Sporotrichosis is a deep mycosis caused by dimorphic species of the genus Sporothrix, with differences in pathogenicity between S. schenckii and S. brasiliensis species. Recently, it was discovered that the cell wall peptidorhamnomannan (PRM) of Sporothrix spp. is a pathogen associated molecular pattern (PAMP). Interestingly, S. brasiliensis PRM has additional unknown rhamnose residues. We hypothesize that the structural differences of Sporothrix spp PRMs impact the hosts immune response and may explain the severity of sporotrichosis caused by S. brasiliensis. Here we demonstrate that S. brasiliensis yeasts and its PRM (S.b PRM) induced a strong inflammatory response in human PBMCs, with high production of TNF-, IL-6 and IL-1{beta} and induction of T-helper cytokines IFN-{gamma}, IL-17 and IL-22. In contrast, S. schenckii yeasts and its PRM induced higher concentrations of interleukin-1 receptor antagonist (IL-1Ra), which resulted in low production of T-helper cytokines such as IL-17 and IL-22. CR3 and dectin-1 were required for cytokine induction by both PRMs, while TLR2 and TLR4 were required for the response of S.s PRM and S.b PRM, respectively. IL-1{beta} and IL-1 production induced by S. brasiliensis yeasts and S.b PRM were dependent on inflammasome and caspase-1 activation. S. schenckii and S.s PRM were able to induce IL-1{beta} independent of ROS. In conclusion, these findings improve our understanding of the pathogenesis of Sporothrix spp. by reporting differences of immunological responses induced by S. schenckii and S. brasiliensis. The study also opens the gateway for novel treatment strategies targeting local inflammation and tissue destruction induced by S. brasiliensis infection through IL-1 inhibition.

immunology↗