Agostinho Carvalho

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University of Minho
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Portugal

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Recent Grants

Grant: Close

Immunometabolic regulation of granulomatous inflammation in sarcoidosis

Open Date: 2022-01-01

Close Date: 2024-12-01

Grant: Close

JUSThera - Janus approach to cancer theranostics

Open Date: 2021-04-01

Close Date: 2023-03-01

Grant: Close

Host-microbiome interactions in the quest for Fibrosing ILD Biomarkers that Rule Acceleration (FIBRA-Lung)

Open Date: 2021-01-01

Close Date: 2023-12-01

Grant: Close

HEALTH-UNORTE: Setting-up biobanks and regenerative medicine strategies to boost research in cardiovascular, musculoskeletal, neurological, oncological, immunological and infectious diseases

Open Date: 2020-10-01

Close Date: 2023-09-01

Grant: Close

HDM-FUN: Host-directed medicine in invasive fungal infection

Open Date: 2020-01-01

Close Date: 2024-12-01

Articles (20)

Novel antifungals and treatment approaches to tackle resistance and improve outcomes of invasive fungal disease

SUMMARY Fungal infections are on the rise, driven by a growing population at risk and climate change. Currently available antifungals include only five classes, and their utility and efficacy in antifungal treatment are limited by one or more of innate or acquired resistance in some fungi, poor penetration into “sequestered” sites, and agent-specific side effect which require frequent patient reassessment and monitoring. Agents with novel mechanisms, favorable pharmacokinetic (PK) profiles including good oral bioavailability, and fungicidal mechanism(s) are urgently needed. Here, we provide a comprehensive review of novel antifungal agents, with both improved known mechanisms of actions and new antifungal classes, currently in clinical development for treating invasive yeast, mold (filamentous fungi), Pneumocystis jirovecii infections, and dimorphic fungi (endemic mycoses). We further focus on inhaled antifungals and the role of immunotherapy in tackling fungal infections, and the specific PK/pharmacodynamic profiles, tissue distributions as well as drug-drug interactions of novel antifungals. Finally, we review antifungal resistance mechanisms, the role of use of antifungal pesticides in agriculture as drivers of drug resistance, and detail detection methods for antifungal resistance.

Year:

2024

<i>Akkermansia muciniphila</i> and <i>Parabacteroides distasonis</i> synergistically protect from colitis by promoting ILC3 in the gut

Inflammatory bowel disease (IBD) is a group of inflammatory conditions of the gastrointestinal tract. The etiology of IBD remains elusive, but the disease is suggested to arise from the interaction of environmental and genetic factors that trigger inadequate immune responses and inflammation in the intestine. The gut microbiome majorly contributes to disease as an environmental variable, and although some causative bacteria are identified, little is known about which specific members of the microbiome aid in the intestinal epithelial barrier function to protect from disease. While chemically inducing colitis in mice from two distinct animal facilities, we serendipitously found that mice in one facility showed remarkable resistance to disease development, which was associated with increased markers of epithelial barrier integrity. Importantly, we show that Akkermansia muciniphila and Parabacteroides distasonis were significantly increased in the microbiota of resistant mice. To causally connect these microbes to protection against disease, we colonized susceptible mice with the two bacterial species. Our results demonstrate that A. muciniphila and P . distasonis synergistically drive a protective effect in both acute and chronic models of colitis by boosting the frequency of type 3 innate lymphoid cells in the colon and by improving gut epithelial integrity. Altogether, our work reveals a combined effort of commensal microbes in offering protection against severe intestinal inflammation by shaping gut immunity and by enhancing intestinal epithelial barrier stability. Our study highlights the beneficial role of gut bacteria in dictating intestinal homeostasis, which is an important step toward employing microbiome-driven therapeutic approaches for IBD clinical management. IMPORTANCE The contribution of the gut microbiome to the balance between homeostasis and inflammation is widely known. Nevertheless, the etiology of inflammatory bowel disease, which is known to be influenced by genetics, immune response, and environmental cues, remains unclear. Unlocking novel players involved in the dictation of a protective gut, namely, in the microbiota component, is therefore crucial to develop novel strategies to tackle IBD. Herein, we revealed a synergistic interaction between two commensal bacterial strains, Akkermansia muciniphila and Parabacteroides distasonis , which induce protection against both acute and chronic models of colitis induction, by enhancing epithelial barrier integrity and promoting group 3 innate lymphoid cells in the colonic mucosa. This study provides a novel insight on how commensal bacteria can beneficially act to promote intestinal homeostasis, which may open new avenues toward the use of microbiome-derived strategies to tackle IBD.

Year:

2024

Metabolic regulation of the host–fungus interaction: from biological principles to therapeutic opportunities

Fungal infections present a significant global public health concern, impacting over 1 billion individuals worldwide and resulting in more than 3 million deaths annually. Despite considerable progress in recent years, the management of fungal infections remains challenging. The limited development of novel diagnostic and therapeutic approaches is largely attributed to our incomplete understanding of the pathogenetic mechanisms involved in these diseases. Recent research has highlighted the pivotal role of cellular metabolism in regulating the interaction between fungi and their hosts. In response to fungal infection, immune cells undergo complex metabolic adjustments to meet the energy demands necessary for an effective immune response. A comprehensive understanding of the metabolic circuits governing antifungal immunity, combined with the integration of individual host traits, holds the potential to inform novel medical interventions for fungal infections. This review explores recent insights into the immunometabolic regulation of host–fungal interactions and the infection outcome and discusses how the metabolic repurposing of immune cell function could be exploited in innovative and personalized therapeutic approaches.

Year:

2024

Collaborators (20)

Nuno Neves

Associate Professor

University of Minho

PORTUGAL

Vinod Kumar

Assistant Professor

Radboud University Medical Center

NETHERLANDS

Ricardo Silvestre

University of Minho

PORTUGAL

Maiken Cavling Arendrup

Prof

University of Copenhagen

DENMARK

Martin Hoenigl

Associate Professor for Translational Mycology

Medical University of Graz

AUSTRIA

Sarah Sedik

Medical University of Graz

AUSTRIA

Mahesh S Desai

Adjunct Associate Professor in ‘Gut Microbiome in Health and Disease’

University of Southern Denmark

DENMARK

Rosanne Sprute

University Hospital Bonn

GERMANY

João Lacerda

Full Professor of Medicine

Universidade do Porto Faculdade de Medicina

PORTUGAL

Raquel Real

University College London

UNITED KINGDOM

Matthias Egger

Medical University of Graz

AUSTRIA

Fernando Rodrigues

University of Minho

PORTUGAL

Andrew Robinson

The University of Manchester

UNITED KINGDOM

Georgios Chamilos

Institute of Molecular Biotechnology

GREECE

George R. Thompson

-

UNITED STATES

Thomas Krüger

Leibniz-Institut für Naturstoff-Forschung und Infektionsbiologie eV Hans-Knöll-Institut

GERMANY

Jeffrey Jenks

Adjunct Associate Professor of Medicine

Duke University

UNITED STATES

Nuno S. Osório

-

PORTUGAL

Maria Elizabeth Tiritan

Professor Auxiliar

Universidade do Porto Faculdade de Medicina

PORTUGAL

Christopher Kobylecki

-

UNITED KINGDOM
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