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Biology Studies

Biology is the science of life.  From the cell to the ecosystem, it studies all forms of life. It is essential for understanding complex societal issues related to the environment, health, and sustainable development. 
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Studying physics

Physics: An Adventure of the Mind. From the infinitely small to the infinitely large, from elementary particles to galaxies, are you eager to understand the why and how of the natural phenomena you observe?  Why is the sky blue? How does an airplane take off? How does radiation therapy work? What are the effects of global warming? How can nanotechnology revolutionize telecommunications? How can we produce energy without depleting the planet?Physics answers all your questions. 
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Article

Educational Games: The Faculty of Medicine's Innovative Approach

By offering several modules to students in healthcare training programs that focus on learning through play, the University of Namur’s Faculty of Medicine is setting itself apart in the Wallonia-Brussels Federation. These methods, which educational coordinator Hélène Givron explored in her dissertation, place communication at the heart of the learning process.
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Event

Public Defense of a Doctoral Dissertation in Biomedical and Pharmaceutical Sciences - Nicolas HALLOIN

AbstractPopulation aging is accompanied by an increase in the prevalence of neurodegenerative diseases, including tauopathies. This family of diseases, which includes Alzheimer’s disease, is characterized by the mislocalization, hyperphosphorylation, and accumulation of the tau protein in a pathological form, leading to neuronal dysfunction and ultimately neuronal death within the central nervous system. Numerous studies conducted in humans and in various animal models have demonstrated an association between repeated head trauma and the development of a specific tauopathy, chronic traumatic encephalopathy. This progressive neurodegenerative disease is attributed to repeated exposure to impacts to the head that generate acceleration-deceleration forces in the brain.Although the brain and spinal cord share many cellular and tissue characteristics, the consequences of spinal cord trauma on the development of tauopathies remain largely unexplored. To investigate this question, a new mouse model of repeated mild spinal cord trauma was developed in the PS19 mouse, a transgenic model of tauopathy that replicates several characteristics of frontotemporal dementia. Two low-intensity spinal cord contusions (30 kDynes), administered three weeks apart, were performed at two months of age to assess their impact on the long-term progression of the disease.Although these injuries induce neither immediate clinical deficits, nor detectable tissue lesions, nor neuronal loss, they elicit a marked glial response as well as neuronal and axonal damage, as evidenced by increased circulating concentrations of neurofilament light chains. Longitudinal follow-up of the animals revealed an earlier onset of motor and sensory deficits, associated with an accelerated decline in their overall health.In the short term (3.5 months), no worsening of tauopathy was observed. However, at 6.5 months of age, a significant increase in the density of hyperphosphorylated forms of tau, detected by the pTau(Ser202/Thr205) and pTau(Ser422) antibodies, was observed near the epicenter of the lesion in the contusion-injured animals. By 9 months, this exacerbation of the pathology had spread along the rostral-caudal axis, between spinal cord segments C2 and C7, as well as to the thalamus. Although spinal cord injuries did not alter Tau protein aggregation, in vitro analyses showed that the insoluble protein fraction extracted from the spinal cord of contusion-injured animals possessed greater recruitment capacity.Although no direct causal link could be established, histological, biochemical, and transcriptomic analyses suggest the involvement of microglia, type I interferon signaling, and the p38 MAP kinase pathway in stimulating Tau hyperphosphorylation.Taken together, these results highlight a previously largely underestimated role of mild spinal cord injuries as a factor promoting the development and progression of tauopathies. They also reinforce existing literature suggesting that neuroinflammation—and more specifically, microglial activation and type I interferon signaling—contributes to the progression of these diseases. Finally, this study underscores the importance of long-term follow-up for individuals exposed to spinal cord injuries—even mild ones—due to the potential increased risk of developing neurodegenerative diseases involving the Tau protein.JuryProf. Pascal KIENLEN-CAMPARD (UCLouvain)Prof. Karelle LEROY (ULB)Prof. Aurélie LADANG (ULiège)Prof. Charles NICAISE (UNamur)Prof. Patsy RENARD (UNamur), ChairProf. Laurence RIS (UMons)
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Public Defense of a Doctoral Dissertation in Chemical Sciences - Lou D'haese

AbstractIn this work, I aimed to accurately simulate the Raman optical activity (ROA) signatures of flexible solute molecules in their environment. Indeed, these systems are quite challenging due to the potentially huge number of conformers—that is, local minima on the potential energy surface (PES). Furthermore, the environment can drastically alter the PES, as evidenced by experimental ROA spectra that vary significantly depending on the molecule’s conformation and its surroundings. To address this issue, we have developed a hierarchy of methodologies designated M1, M2, and M3. In M1 and M2, the so-called static approach is used: one or more conformers are identified, their geometries are reoptimized at the Density Functional Theory (DFT) level, and their vibrational signatures are simulated, typically using the harmonic approximation. The initial list of conformers was obtained using the CREST algorithm. In M1, the solvent is treated implicitly, whereas in M2, explicit solvent molecules are added around the solute molecule. In M3, we perform ab initio molecular dynamics simulations of the solute molecule surrounded by explicit solvent molecules. The spectrum is obtained by evaluating time-correlation functions along the trajectory. Our first systems of interest were cryptophane derivatives. These are flexible cage-like systems consisting of two hemispheres connected by three -O-(CH₂)n-O- (denoted Cr–nnn) linkers that exhibit chiroptical properties. For Cr–111, the smallest possible cryptophane, the M1 methodology showed good agreement with experimental data, especially in the fingerprint region. However, we demonstrated that the relative ratio between the different conformers was strongly influenced by the choice of the exchange-correlation (XC) functional in our DFT calculations, highlighting the sensitivity of the potential energy surface (PES) description. Cr–222 molecules have been shown to be more flexible, as evidenced by a greater number of significant conformers. The overall agreement with experimental data was also satisfactory. Finally, to test our different approaches (M1–M3), I performed new ROA measurements of amino acids in water at the University of Bordeaux in Dr. Daugey’s laboratory. When compared to our simulations, we clearly observed an improvement in the ROA signatures when explicit water molecules were added to our simulations (M2 vs. M1). Unfortunately, the M3 method did not perform as expected, and further investigation is needed. Overall, I have shown that the PES, as described by our various methodologies, is highly sensitive to various simulation parameters—such as the XC functional, the number and position of explicit solvent molecules, and so on—and that all of these factors strongly influence the simulated ROA signatures.JuryProf. Francesca CECCHET (UNamur), ChairProf. Vincent LIÉGEOIS (UNamur), SecretaryProf. Benoît CHAMPAGNE (UNamur)Prof. Carine CLAVAGUÉRA (University of Paris-Saclay)Dr. Nicolas DAUGEY (University of Bordeaux)
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Public Defense of a Doctoral Dissertation in Biological Sciences—Arunima Sikder

AbstractEnvironmental change rarely occurs as a single, isolated event; organisms and communities typically experience one stressor against the backdrop of another that has already passed. Arunima Sikder’s doctoral thesis examines whether an organism’s past environment shapes its response to the environment that follows, and whether that influence propagates upward to affect the stability of the communities to which these organisms belong.The thesis addresses this question in Synechococcus sp., a globally significant marine primary producer, using thermal and chemical stressors as its two environmental drivers. Working across three levels of biological organization, the study examines how past environments shape responses to subsequent ones—whether they occur in sequence, fluctuate, or occur in combination—using functional traits as the common metric for measuring these responses.The results reveal three key findings. First, sensitivity to a stressor depends on the sequence of exposure, not on the stressor alone. Second, response diversity predicts community stability only when measured under the community’s actual acclimation history, rather than under sustained conditions as conventional wisdom assumes. Third, an apparent contradiction in biodiversity–ecosystem function theory—a negative relationship between functional diversity and performance.Together, these findings suggest that sensitivity, response diversity, and functional diversity should be treated as state-dependent quantities rather than fixed properties, with implications for how the performance of biological systems is measured and modeled under increasingly variable environmental conditions.JuryProf. Alice DENNIS (UNamur), ChairProf. Frederik DE LAENDER (UNamur), SecretaryProf. Maren STRIEBEL (Carl von Ossietzky University Oldenburg)Prof. Giulia GHEDINI (Monash University)Prof. Eli THORÉ (UNamur)
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Faculty

Faculty of Medicine

Organized since 1929, medical education, initially limited to the first year, was completed in 1962 with the opening of the 2nd and 3rd years. Since 1962, the Faculty of Medicine at the University of Namur has trained thousands of doctors who can be found in every region of the country and internationally. Research is also an essential pillar of the Faculty and its departments. Finally, service to society touches on several important aspects.
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Event

Back to School welcome day

What's on the agenda for everyone 9:00 a.m. | Welcome reception at the Pedro Arrupe, Rue de Bruxelles 67, 5000 Namur9:30 a.m. | Ceremony at the Espace Pedro Arrupe 11:00 a.m. | Back-to-School Celebration at Saint-Loup Church—to be confirmed, Rue du Collège, 5000 Namur—followed by a welcome for students by the student clubs.Other specific activities for this day are available on each faculty’s webpage. More information on the Back-to-School page
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Faculty

Faculty of Sciences

Welcome to the Faculty of Sciences! Here, you'll discover a world dedicated to exploration, discovery and innovation in exciting scientific fields. Our faculty is a place where intellectual curiosity is encouraged, bold ideas take shape and solutions to the challenges of the modern world are born from the fusion of cutting-edge research and quality teaching.
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Event

Open morning

Take part in our open morning Given the works in the rue de Bruxelles and the renovation of part of the University parking lots, we invite you to use public transport whenever possible (train or bus) to reach Namur. UNamur boasts an ideal location, in the heart of the city just a five-minute walk from the TEC and SNCB train stations.If you're coming by car, take a look at the parking map provided. Look forward to seeing you on Saturday, June 29!
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Article

Our researchers in the World's Top 2% Scientists list

Stanford University has published a prestigious ranking that highlights the most influential researchers in a wide range of scientific fields. The list, based on bibliographic criteria, aims to provide a standardized means of identifying the world's scientific leaders. It is one criterion among others for assessing the quality of scientific research. Twelve researchers from the University of Namur are among them!
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