Portal de informação sobre vários temas de gestão dos recursos públicos do Estado Português

Projeto Portugal 2030

Hidrogéis Bioadesivos para Regeneração da Medula Espinhal

Nesta página

Ficha de projeto

Nome do projeto

Hidrogéis Bioadesivos para Regeneração da Medula Espinhal

Valor de financiamento

212,4 mil €

Valor executado

0 €

Objetivo estratégico

+ Inteligente

Data de início prevista

02.09.2025

Data de conclusão prevista

18.08.2028

Objetivo específico

Reforçar a investigação, inovação e adoção de tecnologias avançadas.

Modalidade

Subvenção

Código de operação

COMPETE2030-FEDER-00653700

Sumário

Despite medical progress and ongoing efforts to identify effective therapeutic strategies, SCI remains a persistent and debilitating disorder globally, lacking an established therapeutic solution thus far. Approximately 50% of individuals with SCI experience permanent or complete paraplegia or tetraplegia, resulting in an irreversible loss of neurological function below the injury site. The limited regenerative capacity of the human spinal cord makes SCI nearly irreversible. Given the absence of a developed method to address this irreversibility, the exploration of spinal cord regeneration becomes crucial. The SeaJellySpine project aims to develop injectable hydrogels with enhanced wet tissue-adhesive properties and improved cell response. These hydrogels will be based on marine collagen and fucoidan modified with catechol groups, for enhanced adhesive properties. In order to use sustainable resources and to untap the potential of the ocean, it is intended to obtain collagen and fucoidan from marine resources, such as fish waste from food industry and distinct algae. As fucoidan presents anti-inflammatory and antibacterial properties, the developed bioadhesive hydrogels will be multifunctional and they will combine antibacterial and anti-inflammatory properties with the adhesive behavior given by the catechol groups. Combinations of these two materials with hyaluronic acid and chitosan modified with catechol groups will also be explored to produce hydrogels with tunable properties and different compositions, taking advantage of the different properties of the mentioned polymers. This step will be necessary to find the most adequate combinations of these materials for SCI repair. All the selected natural materials exhibit traits such as biocompatibility, biodegradability, and chemical stability, imperative for the intended application. It is also intended to explore the production of these hydrogels by distinct methods, such as thermal gelation, DOPA quinone-mediated covalent cross-linking and chemical cross-linking through the formation of hydrazone bonds, which would allow to analyze and, ultimately, achieve the more suitable methods to obtain hydrogels that could enhance SCI regeneration. The main innovation will lie in the development of new in situ-gelling systems that could be used by clinicians in an easy way as injectable materials to fill irregular spinal cord cavities, which combine the enhanced tissue- and cell-adhesion in the wet environment of the body with antibacterial and anti-inflammatory properties. These hydrogels will be evaluated by in vitro assays and the most promising hydrogels will be validated by in vivo studies. In vitro models are indeed important tools to evaluate injectable hydrogel efficacy in preliminary stages, however, one cannot underrate the fact that animal models are widely recognized as essential to the study by allowing the evaluation of pharmacokinetics and pharmacodynamics. These multifunctional hydrogels based on natural biomaterials promises a bright future for spinal cord injury treatment in the next decade or so; they might become a major arsenal for safer and more efficient treatments by supportive scaffolds that mimic the spinal cord's natural environment, promoting cell growth and tissue repair. The functionalization with the catechol groups ensures proper localization and the antibacterial and anti-inflammatory properties enhance this environment.

Beneficiários

Beneficiários Principais

Candidaturas

Os Avisos de Candidatura proporcionam uma oportunidade para entidades públicas e privadas obterem financiamento para projetos que impulsionem a economia portuguesa. Cada aviso define um montante específico para investimento, disponibilizado aos beneficiários por meio de concurso ou convite.

Os projetos submetidos a concurso são avaliados por entidades específicas, com base em critérios de seleção estabelecidos nos avisos de candidatura. Quando aplicável, são atribuídas notas de avaliação aos projetos.

Nota final da candidatura

Nãoseaplica

Código do aviso

MPr-2023-12

Designação do aviso

SACCCT – Projetos de Investigação Científica e Desenvolvimento Tecnológico (IC&DT) - Operações Individuais e em Copromoção

Distribuição geográfica

Financiamento total do projeto

212,4 mil €

Percentagem de valor já executado para a realização de projetos

0 %,
Onde foi aplicado o dinheiro

Por concelho

1 concelho financiado .

  • Guimarães 212,43 mil € ,
Fonte AD&C
31.12.2025
Todos os temas
Transparência sem entrelinhas