Sara Xapelli

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Assistant Professor

Universidade do Porto Faculdade de Medicina
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Portugal

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About

Sara Xapelli is an Assistant Professor at Universidade de Lisboa Faculdade de Medicina in Portugal. Her research focuses on neurogenesis, neural stem cell differentiation, and the role of cannabinoids in the brain. She has published recent articles investigating the effects of exercise on hippocampal progenitor cell dynamics, mitochondrial properties in aging, and the impact of diet on memory and synaptic plasticity.

Recent Grants

Grant: Close

New targets for neural plasticity and brain repair: potential of adult neural stem cells

Open Date: 2022-01-01

Close Date: 2022-12-01

Grant: Close

Mitochondria function in Multiple Sclerosis: unravelling approaches for disease progression and remyelination

Open Date: 2021-03-01

Close Date: 2024-03-01

Grant: Close

International Society for Neurochemistry Career Development Grant

Open Date: 2021-01-01

Close Date: 2022-12-01

Grant: Close

Decoding adult gliogenesis in the context of depression: exercise and cannabinoid type 2 receptor actions

Open Date: 2020-01-01

Close Date: 2021-12-01

Grant: Close

In the search of the synaptic mechanism operated by a novel selective antiepileptic drug

Open Date: 2018-10-01

Close Date: 2021-09-01

Articles (15)

Lineage-specific changes in mitochondrial properties during neural stem cell differentiation

Neural stem cells (NSCs) reside in discrete regions of the adult mammalian brain where they can differentiate into neurons, astrocytes, and oligodendrocytes. Several studies suggest that mitochondria have a major role in regulating NSC fate. Here, we evaluated mitochondrial properties throughout NSC differentiation and in lineage-specific cells. For this, we used the neurosphere assay model to isolate, expand, and differentiate mouse subventricular zone postnatal NSCs. We found that the levels of proteins involved in mitochondrial fusion (Mitofusin [Mfn] 1 and Mfn 2) increased, whereas proteins involved in fission (dynamin-related protein 1 [DRP1]) decreased along differentiation. Importantly, changes in mitochondrial dynamics correlated with distinct patterns of mitochondrial morphology in each lineage. Particularly, we found that the number of branched and unbranched mitochondria increased during astroglial and neuronal differentiation, whereas the area occupied by mitochondrial structures significantly reduced with oligodendrocyte maturation. In addition, comparing the three lineages, neurons revealed to be the most energetically flexible, whereas astrocytes presented the highest ATP content. Our work identified putative mitochondrial targets to enhance lineage-directed differentiation of mouse subventricular zone–derived NSCs.

Year:

2024

Collaborators (10)

Susana Solá

Assistant Professor

Faculty of Pharmacy, University of Lisbon

PORTUGAL

Vera Geraldes

Assistant professor of Physiology at FMUL (30%)

Universidade do Porto Faculdade de Medicina

PORTUGAL

Adelaide Fernandes

Assistant Professor

Universidade de Lisboa Faculdade de Farmácia

PORTUGAL

Ana M Sebastião

Universidade de Aveiro

PORTUGAL

Vanessa A Morais

Universidade de Aveiro

PORTUGAL

Dora Brites

Senior Researcher and Invited Full Professor

Universidade de Lisboa Faculdade de Farmácia

PORTUGAL

Elisabete Ferreiro

University of Coimbra

PORTUGAL

Jorge Valero

Associate Professor

Universidad de Salamanca

SPAIN

Catarina Miranda-Lourenço

Professora Auxiliar Convidada

Universidade de Aveiro

PORTUGAL

Sandra Vaz

Assistant Professor

Universidade de Aveiro

PORTUGAL
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