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result(s) for
"Vila, Taissa"
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Oral Candidiasis: A Disease of Opportunity
by
Montelongo-Jauregui, Daniel
,
Jabra-Rizk, Mary Ann
,
Vila, Taissa
in
candida albicans
,
fungal–bacterial interactions
,
immune response
2020
Oral candidiasis, commonly referred to as “thrush,” is an opportunistic fungal infection that commonly affects the oral mucosa. The main causative agent, Candida albicans, is a highly versatile commensal organism that is well adapted to its human host; however, changes in the host microenvironment can promote the transition from one of commensalism to pathogen. This transition is heavily reliant on an impressive repertoire of virulence factors, most notably cell surface adhesins, proteolytic enzymes, morphologic switching, and the development of drug resistance. In the oral cavity, the co-adhesion of C. albicans with bacteria is crucial for its persistence, and a wide range of synergistic interactions with various oral species were described to enhance colonization in the host. As a frequent colonizer of the oral mucosa, the host immune response in the oral cavity is oriented toward a more tolerogenic state and, therefore, local innate immune defenses play a central role in maintaining Candida in its commensal state. Specifically, in addition to preventing Candida adherence to epithelial cells, saliva is enriched with anti-candidal peptides, considered to be part of the host innate immunity. The T helper 17 (Th17)-type adaptive immune response is mainly involved in mucosal host defenses, controlling initial growth of Candida and inhibiting subsequent tissue invasion. Animal models, most notably the mouse model of oropharyngeal candidiasis and the rat model of denture stomatitis, are instrumental in our understanding of Candida virulence factors and the factors leading to host susceptibility to infections. Given the continuing rise in development of resistance to the limited number of traditional antifungal agents, novel therapeutic strategies are directed toward identifying bioactive compounds that target pathogenic mechanisms to prevent C. albicans transition from harmless commensal to pathogen.
Journal Article
Identification of two potential inhibitors of Sporothrix brasiliensis and Sporothrix schenckii in the Pathogen Box collection
by
Rozental, Sonia
,
Borba-Santos, Luana Pereira
,
Vila, Taissa
in
Agrochemicals
,
Animals
,
Antifungal activity
2020
Sporotrichosis is a neglected endemic mycosis with a high incidence in Latin America, mainly in Brazil. Sporothrix schenckii is the most frequent species in Latin America, whereas Sporothrix brasiliensis is the predominant species observed in Brazil and is associated with both human and animal sporotrichosis. Sporotrichosis treatment remains restricted to a few options, itraconazole being the first choice for human and animal therapy. In this work, we screened the molecular library Pathogen Box (Medicines for Malaria Venture [MMV], Switzerland) in search of compounds with anti-Sporothrix activity. Our initial screen of the 400 compounds identified five compounds that inhibited more than 80% of S. brasiliensis and S. schenkii growth. Among those, three compounds (MMV675968, MMV102872, and MMV002817 (known as iodoquinol)) not previously described as antifungals or agrochemicals, were selected for further evaluation. MMV102872 and iodoquinol showed the most promising combination of antifungal activity (lower inhibitory concentration) and fungal selectivity (lower cytotoxicity in LLC-MK2 cells). Scanning electron microscopy and flow cytometry analyses revealed that MMV102872 and iodoquinol induced changes in cell morphology, membrane integrity, and the presence of neutral lipids, impairing fungal survival. Our results indicate that MMV102872 and iodoquinol are promising molecules for use as scaffolds for the development of new antifungal agents.
Journal Article
The power of saliva: Antimicrobial and beyond
by
Jabra-Rizk, Mary Ann
,
Vila, Taissa
,
Sultan, Ahmed S.
in
Anti-Bacterial Agents - pharmacology
,
Antiinfectives and antibacterials
,
Antimicrobial activity
2019
[...]in addition to affecting taste, chewing, and swallowing—disruptions in saliva secretion increase the frequency of oral conditions such as oral candidiasis, gum disease, and tooth decay (caries), as well as respiratory tract infections [4, 6].
Importantly, individuals with all these conditions tend to be highly predisposed to oral candidiasis, likely due to compromised salivary antimicrobial effectors [6].
[...]it has become evident that saliva amasses an infinite wealth of beneficial protective and healing properties, particularly in its defense against microbial inhabitants of the oral cavity, commensals and pathogens alike.
[...]saliva is rich with effectors that exert direct antimicrobial activity, such as enzymatic breakdown of bacterial cell walls by lysozyme and sequestering iron by lactoferrin [4, 5].
Saliva secretion is important for maintenance of the commensal state of C. albicans in the mouth as it is highly enriched in antifungal proteins such as histatin-5, which helps in limiting C. albicans attachment to the oral epithelia [20].
[...]it is not surprising that salivary hypofunction, characterized as reduced or absent saliva flow, predisposes to candidiasis.
Journal Article
Convalescent serum therapy for COVID-19: A 19th century remedy for a 21st century disease
by
Montelongo-Jauregui, Daniel
,
Jabra-Rizk, Mary Ann
,
Vila, Taissa
in
Antibodies
,
Antibodies, Anti-Idiotypic - therapeutic use
,
Antigens
2020
[...]because of the high number of patients with severe COVID-19 and the mainstay of current clinical treatment consisting of symptomatic management and mechanical ventilation, administering convalescent plasma for treatment purposes is currently being deployed [7–12].
[...]there are numerous examples throughout history in which convalescent serum was used with some degree of success to treat an array of diseases, including rheumatic fever [16], scarlet fever [17], mumps [18], measles [18, 19], chickenpox [18], and pneumococcal and meningococcal infections [20] (Fig 1).
COVID-19, coronavirus disease 2019; MERS, Middle East respiratory syndrome; SARS, severe acute respiratory syndrome. https://doi.org/10.1371/journal.ppat.1008735.g001 Buying time with the help of the convalescent The convalescent plasma therapeutic approach is based on the principle of passive antibody therapy, a short-term strategy whereby antibodies from the blood of someone who recovered from an infection can be administered to protect or treat another person [6, 21].
[...]a vaccine relies on the host immune cells (B lymphocytes specifically) to produce antibodies after antigen recognition and signal amplification by the immune system, a process that may take weeks [24]; on the other hand, in the case of passive antibody therapy, the process is expedited by providing a patient with immediate immunity when the premade antibodies are given.
[...]for COVID-19 patients, the expedited approach could prove lifesaving.
Journal Article
Lessons from protozoans: Phosphate sensing and polyphosphate storage in fungi
by
Gomes, Fabio M.
,
Frases, Susana
,
Vila, Taissa
in
Biology and Life Sciences
,
Cell cycle
,
Cell membranes
2022
[...]as phospholipids, it is incorporated into the cell membranes, defining the boundaries between the intracellular and extracellular space; as nucleoside phosphates, it provides free energy potential for chemical reactions to develop; as nucleotides, it allows the flow of genetic information.
[...]Pi levels must be tightly regulated inside the cells.
[...]VTC is under the regulation of Pho4 [14], providing a link between Pi uptake and vacuolar PolyP synthesis.
According to their role as a Pi reservoir, S. cerevisiae mutants lacking PolyP were shown to accumulate less dNTPs and had their cell cycle impaired in phosphate-limiting conditions [21].
[...]Pi homeostasis was shown to be essential for virulence in a selection of 43 isolates representing the major C. albicans clades [24].
Journal Article
The Candida albicans Biofilm Matrix: Composition, Structure and Function
by
Montelongo-Jauregui, Daniel
,
Ramasubramanian, Anand
,
Lopez-Ribot, Jose
in
antifungal resistance
,
Biofilms
,
Biopolymers
2017
A majority of infections caused by Candida albicans—the most frequent fungal pathogen—are associated with biofilm formation. A salient feature of C. albicans biofilms is the presence of the biofilm matrix. This matrix is composed of exopolymeric materials secreted by sessile cells within the biofilm, in which all classes of macromolecules are represented, and provides protection against environmental challenges. In this review, we summarize the knowledge accumulated during the last two decades on the composition, structure, and function of the C. albicans biofilm matrix. Knowledge of the matrix components, its structure, and function will help pave the way to novel strategies to combat C. albicans biofilm infections.
Journal Article
A new model of in vitro fungal biofilms formed on human nail fragments allows reliable testing of laser and light therapies against onychomycosis
by
Rozental, Sonia
,
de Sá Guimarães, Claudia Maria Duarte
,
Vila, Taissa Vieira Machado
in
Adult
,
Biofilms
,
Biofilms - radiation effects
2015
Onychomycoses represent approximately 50 % of all nail diseases worldwide. In warmer and more humid countries like Brazil, the incidence of onychomycoses caused by non-dermatophyte molds (NDM, including
Fusarium
spp.) or yeasts (including
Candida albicans
) has been increasing. Traditional antifungal treatments used for the dermatophyte-borne disease are less effective against onychomycoses caused by NDM. Although some laser and light treatments have demonstrated clinical efficacy against onychomycosis, their US Food and Drug Administration (FDA) approval as “first-line” therapy is pending, partly due to the lack of well-demonstrated fungicidal activity in a reliable in vitro model. Here, we describe a reliable new in vitro model to determine the fungicidal activity of laser and light therapies against onychomycosis caused by
Fusarium oxysporum
and
C. albicans
. Biofilms formed in vitro on sterile human nail fragments were treated with 1064 nm neodymium-doped yttrium aluminum garnet laser (Nd:YAG), 420 nm intense pulsed light (IPL) IPL 420, followed by Nd:YAG, or near-infrared light ((NIR) 700–1400 nm). Light and laser antibiofilm effects were evaluated using cell viability assay and scanning electron microscopy (SEM). All treatments were highly effective against
C. albicans
and
F. oxysporum
biofilms, resulting in decreases in cell viability of 45–60 % for
C. albicans
and 92–100 % for
F. oxysporum
. The model described here yielded fungicidal activities that matched more closely to those observed in the clinic, when compared to published in vitro models for laser and light therapies. Thus, our model might represent an important tool for the initial testing, validation, and “fine-tuning” of laser and light therapies against onychomycosis.
Journal Article
Comparative Evaluations of the Pathogenesis of Candida auris Phenotypes and Candida albicans Using Clinically Relevant Murine Models of Infections
by
Montelongo-Jauregui, Daniel
,
Ahmed, Hussian
,
Jabra-Rizk, Mary Ann
in
animal models
,
biofilm formation
,
biofilms
2020
The newly emerged Candida species C. auris has been associated with an exponential rise in invasive disease in health care facilities worldwide with a mortality rate approaching 60%. C. auris exhibits a high level of transmissibility, multidrug resistance, and persistence in hospital environments, yet little is known about its pathogenesis largely due to limited data from animal studies. We used clinically relevant murine models of infection to comparatively evaluate the host niche-specific pathogenic potential of C. auris and C. albicans . Findings demonstrated that C. auris adheres more avidly, forming robust biofilms on catheters implanted in mice. However, although C. auris adhered to oral tissue ex vivo , it failed to colonize the oral cavity in vivo . In contrast, in the intraperitoneal infection model, C. auris persisted longer in the peritoneal cavity and kidneys. Understanding the host-pathogen factors contributing to the rise of C. auris as a nosocomial pathogen is critical for controlling the spread of this species. The newly emerged Candida species Candida auris is associated with an exponential rise in life-threatening invasive disease in health care facilities worldwide. Unlike other species, C. auris exhibits a high level of transmissibility, multidrug resistance, and persistence in the environment, yet little is known about its pathogenesis largely due to limited data from animal models. Based on in vitro biofilm evaluations and confocal laser scanning microscopy, C. auris phenotypes with different biofilm-forming abilities were identified, indicating potential clinical implications. Using clinically relevant murine models of implanted catheter, oral, and intraperitoneal infections, we comparatively evaluated the host site-specific pathogenic potential of C. auris phenotypes and Candida albicans . Based on the results of microbial recovery and scanning electron microscopy analysis of explanted catheters, compared to C. albicans , C. auris more avidly adhered and formed biofilms on catheters. However, although C. auris adhered to oral tissue ex vivo , unlike C. albicans , it failed to colonize the oral cavity in vivo , as demonstrated by microbial recovery and tissue histopathology analysis. In contrast, recovery from peritoneal lavage fluid and kidneys during time course experiments demonstrated that C. auris persisted longer in the peritoneal cavity and kidneys. Although there were clear niche-specific differences in pathogenic features between C. auris and C. albicans , no significant differences were noted between the C. auris phenotypes in vivo . The combined findings highlight unique niche-specific pathogenic traits for C. auris warranting further investigations. Understanding the factors contributing to the rise of C. auris as a nosocomial pathogen is critical for controlling the spread of this species. IMPORTANCE The newly emerged Candida species C. auris has been associated with an exponential rise in invasive disease in health care facilities worldwide with a mortality rate approaching 60%. C. auris exhibits a high level of transmissibility, multidrug resistance, and persistence in hospital environments, yet little is known about its pathogenesis largely due to limited data from animal studies. We used clinically relevant murine models of infection to comparatively evaluate the host niche-specific pathogenic potential of C. auris and C. albicans . Findings demonstrated that C. auris adheres more avidly, forming robust biofilms on catheters implanted in mice. However, although C. auris adhered to oral tissue ex vivo , it failed to colonize the oral cavity in vivo . In contrast, in the intraperitoneal infection model, C. auris persisted longer in the peritoneal cavity and kidneys. Understanding the host-pathogen factors contributing to the rise of C. auris as a nosocomial pathogen is critical for controlling the spread of this species.
Journal Article
A novel naphthoquinone derivative shows selective antifungal activity against Sporothrix yeasts and biofilms
by
Ferreira, Patricia Garcia
,
Araújo-Lima, Carlos Fernando
,
Ferreira, Vitor Francisco
in
Animals
,
Antifungal activity
,
Antifungal agents
2022
Sporotrichosis is a subcutaneous mycosis that affects humans and animals, with few therapeutic options available in the pharmaceutical market. We screened the in vitro antifungal activity of fourteen 1,4-naphthoquinones derivative compounds against
Sporothrix brasiliensis
and
Sporothrix schenckii
, the main etiological agents of sporotrichosis in Latin America. The most active compound was selected for further studies exploring its antibiofilm activity, effects on yeast morphophysiology, interaction with itraconazole, and selectivity to fungal cells. Among the fourteen 1,4-naphthoquinones tested, naphthoquinone
5
, a silver salt of lawsone, was the most active compound. Naphthoquinone
5
was able to inhibit
Sporothrix
biofilms and induced ROS accumulation, mitochondrial disturbances, and severe plasmatic membrane damage in fungal cells. Furthermore, naphthoquinone
5
was ten times more selective towards fungal cells than fibroblast, and the combination of itraconazole with naphthoquinone
5
improved the inhibitory activity of the azole. Combined, the data presented here indicate that the silver salt naphthoquinone
5
exerts promising in vitro activity against the two main agents of sporotrichosis with important antibiofilm activity and a good toxicity profile, suggesting it is a promising molecule for the development of a new family of antifungals.
Journal Article
Sporothrix spp. Biofilms Impact in the Zoonotic Transmission Route: Feline Claws Associated Biofilms, Itraconazole Tolerance, and Potential Repurposing for Miltefosine
by
De Souza, Wanderley
,
Borba-Santos, Luana Pereira
,
Ferreira Gremião, Isabella Dib
in
antimicrobial properties
,
biofilm
,
Biofilms
2022
Sporotrichosis is the most prevalent subcutaneous mycosis globally, and it is typically caused by direct inoculation of the soil saprophytic fungus Sporothrix spp. into the patients’ skin. However, sporotrichosis has an important zoonotic transmission route between cats and humans in hot-spot endemic areas such as Brazil. Antifungal itraconazole is the first-line treatment; however, it is frequently associated with recurrence after withdrawal, mainly on cats. Biofilms are important resistance structures related to the environmental persistence of most microorganisms. In the present work, we evaluated Sporothrix yeasts’ ability to form biofilms in an ex vivo model of infected claws of cats. Using scanning electron microscopy, we demonstrated the presence of fungal biofilms in the claws of cats diagnosed with sporotrichosis confirmed by isolation of Sporothrix spp. in culture. We present here evidence of antibiofilm activity of miltefosine and suggest its use off-label as an antifungal as a putative alternative to itraconazole against Sporothrix biofilms. Claw contamination could sustain infections through a continuous inoculation cycle between open lesions and cat claws. Our results further support the off-label use of miltefosine as a promising alternative, especially for mycosis refractory to conventional treatment.
Journal Article