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Venturini, J.

Publications and source records attributed to Venturini, J..

2 recordsLinked to original sources

A novel Mannan-specific chimeric antigen receptor M-CAR redirects T cells to interact with Candida spp. hyphae and Rhizopus oryzae spores

Invasive fungal infections (IFIs) are responsible for elevated rates of morbidity and mortality, causing around of 1.5 million deaths annually worldwide. One of the main causative agents of IFIs is Candida albicans, and non-albicans Candida species have emerged as a spreading global public health concernment. Furthermore, COVID-19 has contributed to a boost in the incidence of IFIs, such as mucormycosis, in which Rhizopus oryzae is the most prevalent causative agent. The effector host immune response against IFIs depends on the activity of T cells, which are susceptible to the regulatory effects triggered by fungal virulence factors. The fungal cell wall plays a crucial role as a virulence factor, and its remodeling compromises the development of a specific T-cell response. The redirection of Jurkat T cells to target Candida spp. by recognizing targets expressed on the fungal cell wall can be facilitated using chimeric antigen receptor (CAR) technology. This study generated an M-CAR that contains an scFv with specificity to -1,6 mannose backbone of fungal mannan, and the expression of M-CAR on the surface of modified Jurkat cells triggered a strong activation against Candida albicans (hyphae form), Candida tropicalis (hyphae form), Candida parapsilosis (pseudohyphal form), and Candida glabrata (yeast form). Moreover, M-CAR Jurkat cells recognized Rhizopus oryzae spores, which induced high expression of cell activation markers. Thus, a novel Mannan-specific CAR enabled strong signal transduction in modified Jurkat cells in the presence of Candida spp. or R. oryzae.

bioengineering↗

Is the production of reactive oxygen and nitrogen species by macrophages associated with better infectious control in the experimental disseminated and pulmonary mucormycosis?

Different levels of resistance against Rhizopus oryzae infection have been observed between inbred (BALB/c) and outbred (Swiss) mice, with is associated with the genetic background of each mouse strain. Considering that macrophages play an important role in host resistance to Rhizopus species, we use the different infectious outcomes observed in experimental mucormycosis to identify the most efficient macrophages responses pattern against R. oryzae in vitro and in vivo. For this, we compared BALB/c and Swiss macrophage activity pre-and-post intravenous or intratracheal R. oryzae infections. Production of hydrogen peroxide (H2O2) and nitric oxide (NO) was determined in cultures of peritoneal (PM{Phi}) or alveolar macrophages (AM{Phi}) challenged, or not, with heat-killed spores of R. oryzae. Levels of TNF- and IL-10 were also measured to enhance our findings. Naive PM{Phi} from BALB/c increased the production of H2O2, TNF-, and IL-10 in the presence of heat-killed spores of R. oryzae, while naive PM{Phi} from Swiss mice was less responsive. Naive AM{Phi} from two strains of mice were less reactive to heat-killed spores of R. oryzae than PM{Phi}. On 30 days of R. oryzae intravenous infection, lower fungal load in BALB/c strain of mice was accompanied by higher production of H2O2 by PM{Phi} when compared with Swiss mice. Differently, AM{Phi} from BALB/c mice showed higher production of NO, TNF-, and IL-10 after 7 days of intratracheal infection and after 30 days, lower fungal load, when compared with Swiss mice. According to the set of experiments performed, our findings reveal that independently of mice strain, PM{Phi} is more reactive against R. oryzae in the first contact than AM{Phi}. In addition, increased PM{Phi} production of H2O2 at the end of disseminated infection is related to efficient fungal clearance observed in resistant (BALB/c). Our findings provide new evidence to understand the parasite-hosts relationship in mucormycosis.

immunology↗