Joana Rodrigues

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Assistant Professor

University of Minho
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Portugal

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About

Joana Rodrigues is an Assistant Professor at Universidade do Minho, Portugal. Her research focuses on metabolic engineering, specifically in the production of bioactive compounds such as xanthohumol, prenylnaringenin, and curcumin using Escherichia coli and Saccharomyces cerevisiae. Additionally, she is exploring innovative approaches to enhance prebiotic production and developing sustainable surfaces to prevent bacterial adhesion.

Recent Grants

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B3iS - Biodiversity and Bioprospecting of Biosurfactants in Saline Environments

Open Date: 2021-03-01

Close Date: 2024-02-01

Grant: Close

FoSynBio - Synthetic biology approaches to design and construct microbial cell factories for the production of fructooligosaccharides

Open Date: 2018-01-01

Close Date:

Grant: Close

VIBRANT - Viral and Bacterial Adhesin Network Training

Open Date: 2018-01-01

Close Date:

Grant: Close

LIGNOZYMES - Metagenomics approach to unravel the potential of lignocellulosic residues towards the discovery of novel enzymes

Open Date: 2018-01-01

Close Date:

Grant: Close

Synthetic Biotechnology

Open Date: 2015-07-01

Close Date: 2018-12-01

Articles (12)

Saccharomyces cerevisiae as a Host for Chondroitin Production

Chondroitin is a glycosaminoglycan that has gained widespread use in nutraceuticals and pharmaceuticals, mainly for treating osteoarthritis. Traditionally, it has been extracted from animal cartilage but recently, biotechnological processes have emerged as a commercial alternative to avoid the risk of viral or prion contamination and offer a vegan-friendly source. Typically, these methods involve producing the chondroitin backbone using pathogenic bacteria and then modifying it enzymatically through the action of sulfotransferases. Despite the challenges of expressing active sulfotransferases in bacteria, the use of eukaryotic microorganisms is still limited to a few works using Pichia pastoris. To create a safer and efficient biotechnological platform, we constructed a biosynthetic pathway for chondroitin production in S. cerevisiae as a proof-of-concept. Up to 125 mg/L and 200 mg/L of intracellular and extracellular chondroitin were produced, respectively. Furthermore, as genome-scale models are valuable tools for identifying novel targets for metabolic engineering, a stoichiometric model of chondroitin-producing S. cerevisiae was developed and used in optimization algorithms. Our research yielded several novel targets, such as uridine diphosphate (UDP)-N-acetylglucosamine pyrophosphorylase (QRI1), glucosamine-6-phosphate acetyltransferase (GNA1), or N-acetylglucosamine-phosphate mutase (PCM1) overexpression, that might enhance chondroitin production and guide future experimental research to develop more efficient host organisms for the biotechnological production process.

Year:

2024

Collaborators (5)

Adelaide Braga

Invited Assistant Professor

University of Minho

PORTUGAL

Luís D. R. Melo

University of Minho

PORTUGAL

Maria Goreti Ferreira Sales

Full Professor

University of Coimbra

PORTUGAL

Lígia R. Rodrigues

University of Minho

PORTUGAL

Felismina T. C. Moreira

-

PORTUGAL
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