Raquel Goncalves

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Affiliated Professor

Instituto de Ciências Biomédicas Abel Salazar
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Portugal

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About

Raquel Goncalves is an Affiliated Professor at Instituto de Ciências Biomédicas Abel Salazar in Portugal. Her research focuses on the interplay between immunotherapy and cancer treatment, particularly in triple-negative breast cancer, as well as the dynamics of intervertebral disc degeneration and tissue engineering applications. Recent publications include investigations into biomarkers for back pain, cellular responses in aging, and the development of innovative hydrogel scaffolds for enhanced cell proliferation.

Recent Grants

Grant: Close

Bioengineering extracellular matrix-based 3D models with aligned fibers to understand intervertebral disc herniation

Open Date: 2022-03-01

Close Date: 2024-02-29

Grant: Close

Solução com inspiração fetal para a regeneração do Disco Intervertebral utilizando CRISPR para a edição de MSCs

Open Date: 2022-01-01

Close Date: 2023-06-30

Grant: Close

Biomateriais hierárquicos de inspiração fetal para regeneração num microambiente severo: o núcleo do disco intervertebral FETBIO

Open Date: 2021-03-01

Close Date: 2024-02-01

Grant: Close

Rewinding the clock: CRISPR-mediated NP cell editing for IVD rejuvenation

Open Date: 2021-01-01

Close Date: 2023-12-01

Grant: Close

RESTORE, User-centred smart nanobiomaterial-based 3D matrices for chondral repair

Open Date: 2019-02-01

Close Date:

Articles (18)

Engineering Anisotropic Cell Models: Development of Collagen Hydrogel Scaffolds with Magneto‐Responsive PEG Microgels for Tissue Engineering Applications

Mimicking tissue‐oriented organization in vitro has been extensively studied in recent years, using both natural and synthetic materials in combination with external magnetic fields to establish anisotropic conditions. Here, a new combination between magneto‐responsive anisometric PEG microgels and collagen hydrogels is explored to establish anisotropic in vitro models. Different sizes of PEG microgels are tested to assess the impact of both width and aspect ratio on the formation and alignment of collagen hydrogels. Results show that the key properties of collagen hydrogels, regarding fibrillogenesis, rheological properties, and fiber diameter are kept consistent upon the combination with PEG microgels. Furthermore, partial collagen fiber alignment is observed when larger (width 10 µm) PEG microgels are employed and magnetically aligned. In vitro studies show cell alignment within the anisotropic collagen hydrogels from the first day in culture. Interestingly, PEG microgels with higher width and length tend to induce less hydrogel contraction even after 7 days in culture. The results demonstrate the ability to establish a 3D unidirectional collagen hydrogel by magnetically aligning anisometric microgels during the gelation process, which can be promising for different tissue engineering applications.

Year:

2024

Collaborators (8)

Sarah Gullbrand

University of Pennsylvania

UNITED STATES

M. Cristina Martins

Invited Assistant Professor

Universidade do Porto Instituto de Ciências Biomédicas Abel Salazar

PORTUGAL

Graciosa Q. Teixeira

Ulm University

GERMANY

Catarina Almeida

Assistant Professor

Universidade de Aveiro

PORTUGAL

Judite Novais Barbosa

Assistant Professor

Instituto de Ciências Biomédicas Abel Salazar

PORTUGAL

Mario Barbosa

Prof. catedrático

University of Porto

PORTUGAL

Meriem Lamghari

Instituto Universitário de Ciências da Saúde

PORTUGAL

Laura De Laporte

-

GERMANY
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