Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Francisco-Jose Fernandez-Gomez is active.

Publication


Featured researches published by Francisco-Jose Fernandez-Gomez.


Anesthesiology | 2012

Tau phosphorylation and sevoflurane anesthesia: an association to postoperative cognitive impairment.

Le Freche H; Jonathan Brouillette; Francisco-Jose Fernandez-Gomez; Patin P; Raphaëlle Caillierez; Nadège Zommer; Nicolas Sergeant; Buée-Scherrer; G Lebuffe; David Blum; Luc Buée

Background: There is a growing interest in the involvement of anesthetic agents in the etiology of postoperative cognitive dysfunction. Recent animal studies suggest that acute anesthesia induces transient hyperphosphorylation of tau, an effect essentially ascribed to hypothermia. The main aim of the present study was to investigate effects, in normothermic conditions, of acute or repeated exposure to sevoflurane, a halogenated anesthetic agent, on hippocampal tau phosphorylation and spatial memory in adult mice. Methods: 5 to 6-month-old C57Bl6/J mice were submitted to acute (1 h) or repeated (five exposures of 1h every month) anesthesia using 1.5 or 2.5% sevoflurane, in normothermic conditions. In the acute protocol, animals were sacrificed 1 and 24 h after exposure. In the chronic protocol, spatial memory was evaluated using the Morris water maze following the fourth exposure, and tau phosphorylation evaluated 1 month following the last exposure using bi- and mono-dimensional electrophoresis. Results: Acute sevoflurane anesthesia in normothermic conditions led to a significant dose-dependent and reversible hippocampal tau phosphorylation, 1 h following the end of exposure (P < 0.001). Conversely, repeated anesthesia led to persistent tau hyperphosphorylation and significant memory impairments, as seen in the retention phase of the Morris water maze in sevoflurane-anesthesized animals. These pathologic features may be related to the activation of both Akt and Erk pathways. Conclusions: The present study demonstrates, in mice, that sevoflurane exposure is associated with increased tau phosphorylation through specific kinases activation and spatial memory deficits. These data support a correlation between exposures to this anesthetic agent and cognitive decline.


Neurobiology of Disease | 2011

Beneficial effects of exercise in a transgenic mouse model of Alzheimer's disease-like Tau pathology.

Karim Belarbi; Sylvie Burnouf; Francisco-Jose Fernandez-Gomez; Cyril Laurent; Sophie Lestavel; Martin Figeac; Audrey Sultan; Laetitia Troquier; Antoine Leboucher; Raphaëlle Caillierez; Marie-Eve Grosjean; Dominique Demeyer; Hélène Obriot; I. Brion; B. Barbot; Marie-Christine Galas; Bart Staels; Sandrine Humez; Nicolas Sergeant; Susanna Schraen-Maschke; Anne Muhr-Tailleux; Malika Hamdane; Luc Buée; David Blum

Tau pathology is encountered in many neurodegenerative disorders known as tauopathies, including Alzheimers disease. Physical activity is a lifestyle factor affecting processes crucial for memory and synaptic plasticity. Whether long-term voluntary exercise has an impact on Tau pathology and its pathophysiological consequences is currently unknown. To address this question, we investigated the effects of long-term voluntary exercise in the THY-Tau22 transgenic model of Alzheimers disease-like Tau pathology, characterized by the progressive development of Tau pathology, cholinergic alterations and subsequent memory impairments. Three-month-old THY-Tau22 mice and wild-type littermates were assigned to standard housing or housing supplemented with a running wheel. After 9 months of exercise, mice were evaluated for memory performance and examined for hippocampal Tau pathology, cholinergic defects, inflammation and genes related to cholesterol metabolism. Exercise prevented memory alterations in THY-Tau22 mice. This was accompanied by a decrease in hippocampal Tau pathology and a prevention of the loss of expression of choline acetyltransferase within the medial septum. Whereas the expression of most cholesterol-related genes remained unchanged in the hippocampus of running THY-Tau22 mice, we observed a significant upregulation in mRNA levels of NPC1 and NPC2, genes involved in cholesterol trafficking from the lysosomes. Our data support the view that long-term voluntary physical exercise is an effective strategy capable of mitigating Tau pathology and its pathophysiological consequences.


Diabetes | 2013

Detrimental Effects of Diet-Induced Obesity on τ Pathology Are Independent of Insulin Resistance in τ Transgenic Mice

Antoine Leboucher; Cyril Laurent; Francisco-Jose Fernandez-Gomez; Sylvie Burnouf; Laetitia Troquier; Sabiha Eddarkaoui; Dominique Demeyer; Raphaëlle Caillierez; Nadège Zommer; Emmanuelle Vallez; Kadiombo Bantubungi; Christophe Breton; Pascal Pigny; Valérie Buée-Scherrer; Bart Staels; Malika Hamdane; Anne Tailleux; Luc Buée; David Blum

The τ pathology found in Alzheimer disease (AD) is crucial in cognitive decline. Midlife development of obesity, a major risk factor of insulin resistance and type 2 diabetes, increases the risk of dementia and AD later in life. The impact of obesity on AD risk has been suggested to be related to central insulin resistance, secondary to peripheral insulin resistance. The effects of diet-induced obesity (DIO) on τ pathology remain unknown. In this study, we evaluated effects of a high-fat diet, given at an early pathological stage, in the THY-Tau22 transgenic mouse model of progressive AD-like τ pathology. We found that early and progressive obesity potentiated spatial learning deficits as well as hippocampal τ pathology at a later stage. Surprisingly, THY-Tau22 mice did not exhibit peripheral insulin resistance. Further, pathological worsening occurred while hippocampal insulin signaling was upregulated. Together, our data demonstrate that DIO worsens τ phosphorylation and learning abilities in τ transgenic mice independently from peripheral/central insulin resistance.


Scientific Reports | 2015

Role of the Tau N-terminal region in microtubule stabilization revealed by new endogenous truncated forms

Maxime Derisbourg; Coline Leghay; Giovanni Chiappetta; Francisco-Jose Fernandez-Gomez; Cyril Laurent; Dominique Demeyer; Sébastien Carrier; Valérie Buée-Scherrer; David Blum; Joëlle Vinh; Nicolas Sergeant; Yann Verdier; Luc Buée; Malika Hamdane

Tau is a central player in Alzheimers disease (AD) and related Tauopathies, where it is found as aggregates in degenerating neurons. Abnormal post-translational modifications, such as truncation, are likely involved in the pathological process. A major step forward in understanding the role of Tau truncation would be to identify the precise cleavage sites of the several truncated Tau fragments that are observed until now in AD brains, especially those truncated at the N-terminus, which are less characterized than those truncated at the C-terminus. Here, we optimized a proteomics approach and succeeded in identifying a number of new N-terminally truncated Tau species from the human brain. We initiated cell-based functional studies by analyzing the biochemical characteristics of two N-terminally truncated Tau species starting at residues Met11 and Gln124 respectively. Our results show, interestingly, that the Gln124-Tau fragment displays a stronger ability to bind and stabilize microtubules, suggesting that the Tau N-terminal domain could play a direct role in the regulation of microtubule stabilization. Future studies based on our new N-terminally truncated-Tau species should improve our knowledge of the role of truncation in Tau biology as well as in the AD pathological process.


Human Molecular Genetics | 2015

miR-132/212 deficiency impairs tau metabolism and promotes pathological aggregation in vivo

Pascal Y. Smith; Julia Hernandez-Rapp; Francis Jolivette; Cynthia Lecours; Kanchan Bisht; Claudia Goupil; Véronique Dorval; Sepideh Parsi; Françoise Morin; Emmanuel Planel; David A. Bennett; Francisco-Jose Fernandez-Gomez; Nicolas Sergeant; Luc Buée; Marie-Ève Tremblay; Frédéric Calon; Sébastien S. Hébert

Alzheimers disease (AD) and related tauopathies comprise a large group of neurodegenerative diseases associated with the pathological aggregation of tau protein. While much effort has focused on understanding the function of tau, little is known about the endogenous mechanisms regulating tau metabolism in vivo and how these contribute to disease. Previously, we have shown that the microRNA (miRNA) cluster miR-132/212 is downregulated in tauopathies such as AD. Here, we report that miR-132/212 deficiency in mice leads to increased tau expression, phosphorylation and aggregation. Using reporter assays and cell-based studies, we demonstrate that miR-132 directly targets tau mRNA to regulate its expression. We identified GSK-3β and PP2B as effectors of abnormal tau phosphorylation in vivo. Deletion of miR-132/212 induced tau aggregation in mice expressing endogenous or human mutant tau, an effect associated with autophagy dysfunction. Conversely, treatment of AD mice with miR-132 mimics restored in part memory function and tau metabolism. Finally, miR-132 and miR-212 levels correlated with insoluble tau and cognitive impairment in humans. These findings support a role for miR-132/212 in the regulation of tau pathology in mice and humans and provide new alternatives for therapeutic development.


Frontiers in Molecular Neuroscience | 2014

Brain pathology in myotonic dystrophy: when tauopathy meets spliceopathy and RNAopathy

Marie-Laure Caillet-Boudin; Francisco-Jose Fernandez-Gomez; Hélène Tran; Claire-Marie Dhaenens; Luc Buée; Nicolas Sergeant

Myotonic dystrophy (DM) of type 1 and 2 (DM1 and DM2) are inherited autosomal dominant diseases caused by dynamic and unstable expanded microsatellite sequences (CTG and CCTG, respectively) in the non-coding regions of the genes DMPK and ZNF9, respectively. These mutations result in the intranuclear accumulation of mutated transcripts and the mis-splicing of numerous transcripts. This so-called RNA gain of toxic function is the main feature of an emerging group of pathologies known as RNAopathies. Interestingly, in addition to these RNA inclusions, called foci, the presence of neurofibrillary tangles (NFT) in patient brains also distinguishes DM as a tauopathy. Tauopathies are a group of nearly 30 neurodegenerative diseases that are characterized by intraneuronal protein aggregates of the microtubule-associated protein Tau (MAPT) in patient brains. Furthermore, a number of neurodegenerative diseases involve the dysregulation of splicing regulating factors and have been characterized as spliceopathies. Thus, myotonic dystrophies are pathologies resulting from the interplay among RNAopathy, spliceopathy, and tauopathy. This review will describe how these processes contribute to neurodegeneration. We will first focus on the tauopathy associated with DM1, including clinical symptoms, brain histology, and molecular mechanisms. We will also discuss the features of DM1 that are shared by other tauopathies and, consequently, might participate in the development of a tauopathy. Moreover, we will discuss the determinants common to both RNAopathies and spliceopathies that could interfere with tau-related neurodegeneration.


Biochimica et Biophysica Acta | 2011

Mis-splicing of Tau exon 10 in myotonic dystrophy type 1 is reproduced by overexpression of CELF2 but not by MBNL1 silencing

Claire-Marie Dhaenens; H. Tran; M.-L. Frandemiche; C. Carpentier; S. Schraen-Maschke; Andone Sistiaga; M. Goicoechea; Sabiha Eddarkaoui; E. Van Brussels; Hélène Obriot; A. Labudeck; M.H. Gevaert; Francisco-Jose Fernandez-Gomez; Nicolas Charlet-Berguerand; Vincent Deramecourt; Claude-Alain Maurage; Luc Buée; A. López de Munain; Bernard Sablonnière; M.L. Caillet-Boudin; Nicolas Sergeant

Tau is the proteinaceous component of intraneuronal aggregates common to neurodegenerative diseases called Tauopathies, including myotonic dystrophy type 1. In myotonic dystrophy type 1, the presence of microtubule-associated protein Tau aggregates is associated with a mis-splicing of Tau. A toxic gain-of-function at the ribonucleic acid level is a major etiological factor responsible for the mis-splicing of several transcripts in myotonic dystrophy type 1. These are probably the consequence of a loss of muscleblind-like 1 (MBNL1) function or gain of CUGBP1 and ETR3-like factor 1 (CELF1) splicing function. Whether these two dysfunctions occur together or separately and whether all mis-splicing events in myotonic dystrophy type 1 brain result from one or both of these dysfunctions remains unknown. Here, we analyzed the splicing of Tau exons 2 and 10 in the brain of myotonic dystrophy type 1 patients. Two myotonic dystrophy type 1 patients showed a mis-splicing of exon 10 whereas exon 2-inclusion was reduced in all myotonic dystrophy type 1 patients. In order to determine the potential factors responsible for exon 10 mis-splicing, we studied the effect of the splicing factors muscleblind-like 1 (MBNL1), CUGBP1 and ETR3-like factor 1 (CELF1), CUGBP1 and ETR3-like factor 2 (CELF2), and CUGBP1 and ETR3-like factor 4 (CELF4) or a dominant-negative CUGBP1 and ETR-3 like factor (CELF) factor on Tau exon 10 splicing by ectopic expression or siRNA. Interestingly, the inclusion of Tau exon 10 is reduced by CUGBP1 and ETR3-like factor 2 (CELF2) whereas it is insensitive to the loss-of-function of muscleblind-like 1 (MBNL1), CUGBP1 and ETR3-like factor 1 (CELF1) gain-of-function, or a dominant-negative of CUGBP1 and ETR-3 like factor (CELF) factor. Moreover, we observed an increased expression of CUGBP1 and ETR3-like factor 2 (CELF2) only in the brain of myotonic dystrophy type 1 patients with a mis-splicing of exon 10. Taken together, our results indicate the occurrence of a mis-splicing event in myotonic dystrophy type 1 that is induced neither by a loss of muscleblind-like 1 (MBNL1) function nor by a gain of CUGBP1 and ETR3-like factor 1 (CELF1) function but is rather associated to CUGBP1 and ETR3-like factor 2 (CELF2) gain-of-function.


Human Molecular Genetics | 2015

Cholesterol 24-hydroxylase defect is implicated in memory impairments associated with Alzheimer-like Tau pathology

Marie-Anne Burlot; Jérôme Braudeau; Kristin Michaelsen-Preusse; Brigitte Potier; Sophie Ayciriex; Jennifer Varin; Benoit Gautier; Fathia Djelti; Mickael Audrain; Luce Dauphinot; Francisco-Jose Fernandez-Gomez; Raphaëlle Caillierez; Olivier Laprévote; Ivan Bièche; Nicolas Auzeil; Marie-Claude Potier; Patrick Dutar; Martin Korte; Luc Buée; David Blum; Nathalie Cartier

Alzheimers disease (AD) is characterized by both amyloid and Tau pathologies. The amyloid component and altered cholesterol metabolism are closely linked, but the relationship between Tau pathology and cholesterol is currently unclear. Brain cholesterol is synthesized in situ and cannot cross the blood-brain barrier: to be exported from the central nervous system into the blood circuit, excess cholesterol must be converted to 24S-hydroxycholesterol by the cholesterol 24-hydroxylase encoded by the CYP46A1 gene. In AD patients, the concentration of 24S-hydroxycholesterol in the plasma and the cerebrospinal fluid are lower than in healthy controls. The THY-Tau22 mouse is a model of AD-like Tau pathology without amyloid pathology. We used this model to investigate the potential association between Tau pathology and CYP46A1 modulation. The amounts of CYP46A1 and 24S-hydroxycholesterol in the hippocampus were lower in THY-Tau22 than control mice. We used an adeno-associated virus (AAV) gene transfer strategy to increase CYP46A1 expression in order to investigate the consequences on THY-Tau22 mouse phenotype. Injection of the AAV-CYP46A1 vector into the hippocampus of THY-Tau22 mice led to CYP46A1 and 24S-hydroxycholesterol content normalization. The cognitive deficits, impaired long-term depression and spine defects that characterize the THY-Tau22 model were completely rescued, whereas Tau hyperphosphorylation and associated gliosis were unaffected. These results argue for a causal link between CYP46A1 protein content and memory impairments that result from Tau pathology. Therefore, CYP46A1 may be a relevant therapeutic target for Tauopathies and especially for AD.


Molecular Psychiatry | 2017

Functional screening of Alzheimer risk loci identifies PTK2B as an in vivo modulator and early marker of Tau pathology

Pierre Dourlen; Francisco-Jose Fernandez-Gomez; Cloé Dupont; Benjamin Grenier-Boley; Céline Bellenguez; Hélène Obriot; Raphaëlle Caillierez; Yoann Sottejeau; Julien Chapuis; Alexis Bretteville; Farida Abdelfettah; Charlotte Delay; Nicolas Malmanche; Hilkka Soininen; Mikko Hiltunen; M-C Galas; Philippe Amouyel; Nicolas Sergeant; Luc Buée; J-C Lambert; Bart Dermaut

A recent genome-wide association meta-analysis for Alzheimer’s disease (AD) identified 19 risk loci (in addition to APOE) in which the functional genes are unknown. Using Drosophila, we screened 296 constructs targeting orthologs of 54 candidate risk genes within these loci for their ability to modify Tau neurotoxicity by quantifying the size of >6000 eyes. Besides Drosophila Amph (ortholog of BIN1), which we previously implicated in Tau pathology, we identified p130CAS (CASS4), Eph (EPHA1), Fak (PTK2B) and Rab3-GEF (MADD) as Tau toxicity modulators. Of these, the focal adhesion kinase Fak behaved as a strong Tau toxicity suppressor in both the eye and an independent focal adhesion-related wing blister assay. Accordingly, the human Tau and PTK2B proteins biochemically interacted in vitro and PTK2B co-localized with hyperphosphorylated and oligomeric Tau in progressive pathological stages in the brains of AD patients and transgenic Tau mice. These data indicate that PTK2B acts as an early marker and in vivo modulator of Tau toxicity.


Journal of Alzheimer's Disease | 2012

Clinical, Neuropathological, and Biochemical Characterization of the Novel Tau Mutation P332S

Vincent Deramecourt; Florence Lebert; Claude-Alain Maurage; Francisco-Jose Fernandez-Gomez; Simon Dujardin; Morvane Colin; Nicolas Sergeant; Valérie Buée-Scherrer; Fabienne Clot; Isabelle Le Ber; Alexis Brice; Florence Pasquier; Luc Buée

MAPT mutations cause autosomal dominant frontotemporal lobar degeneration. These diseases are characterized by considerable heterogeneity in their clinical, neuropathological, and biochemical presentations. We describe the full characterization of a family with autosomal dominant frontotemporal lobar degeneration caused by a novel MAPT mutation. Clinical, imaging, neuropathological, and biochemical data are presented. The proband was a woman who died at 85 years old, 25 years after the onset of a slowly progressive and isolated anarthria and opercular syndrome. The pathological examination of her brain showed marked atrophy of primary motor and premotor cortices, associated with predominant neuronal tau-positive lesions mimicking Pick bodies. At the biochemical level, the six tau isoforms aggregate to display a pathological triplet at 60, 64, and 69 kDa. Two of her sons presented at 48 and 50 years old with a right temporal variant of frontotemporal degeneration characterized by severe prosopagnosia, semantic impairment, and behavioral modifications. In these three patients, the molecular analysis of MAPT showed the c.1945C>T mutation on exon 11 resulting in the P332S substitution in tau sequence. This mutation changes the PGGG motif of the third repeat domain of the protein and therefore reduces the ability of tau to bind microtubule. From a clinical point of view, this mutation is associated with considerable intrafamilial phenotypic variation.

Collaboration


Dive into the Francisco-Jose Fernandez-Gomez's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge