Activez les alertes d’offres d’emploi par e-mail !
Mulipliez les invitations à des entretiens
Créez un CV sur mesure et personnalisé en fonction du poste pour multiplier vos chances.
Un laboratoire recherche un doctorant en rhéologie pour explorer les dynamiques de transport et de motilité dans le tractus gastro-intestinal. Le candidat idéal aura un Master 2 en mécanique des fluides et démontrera des compétences en recherche expérimentale et numérique, ainsi qu'un intérêt pour la recherche interdisciplinaire. Cette opportunité offre un environnement stimulant pour développer des compétences en analyse scientifique et en communication.
Organisation/Company Laboratoire Rhéologie et Procédés Research Field Engineering Researcher Profile Recognised Researcher (R2) Leading Researcher (R4) First Stage Researcher (R1) Established Researcher (R3) Country France Application Deadline 15 Jul 2025 - 22:00 (UTC) Type of Contract Temporary Job Status Full-time Is the job funded through the EU Research Framework Programme? Not funded by a EU programme Is the Job related to staff position within a Research Infrastructure? No
The gastrointestinal (GI) tract is a highly complex biological system where chemical, physical, and microbiological processes interact to break down food and facilitate nutrient absorption. It is well established that transport and mixing within the digestive system are governed by the mechanical activity of smooth muscles surrounding the GI tract. Understanding the hydrodynamic transport induced by gut motility is therefore crucial for multiple research fields in biological sciences.
In pharmaceutical and nutritional sciences, a detailed understanding of how drugs and nutrients are transported, mixed, and absorbed is essential for predicting the efficacy of pharmacological and dietary interventions. While the (bio)chemical processes involved in digestion are relatively well understood, the physical aspects—such as mixing, propulsion, and the impact of gut motility—remain less explored. Further along the digestive tract, the digesta encounters a rich and diverse microbial community. Despite significant advances in characterizing microbial composition and function, the spatial organization of these microbial populations within the gut remains poorly understood. A more detailed description of transport phenomena in the GI tract could provide key insights into the physiological effects of dietary interventions (e.g., fiber consumption) and the spatial dynamics of microbial changes.
The physical environment of the GI tract is highly complex. First, the digesta is a heterogeneous suspension with non-Newtonian properties, and the mucus layer lining the intestinal walls is a heterogeneous gel. Additionally, the flow in the GI tract operates at multiple scales, influenced by sub-millimeter villi structures covering the mucosa, which further modulate mixing and absorption dynamics.
In this PhD project, we focus on how the rheology of digesta regulates GI tract motility and transport processes.GI tract motility is controlled by both the enteric nervous system and myogenic activity. Both smooth muscles and the enteric nervous system exhibit mechanosensitivity, meaning they respond dynamically to distension and pressure changes. Research conducted by the LRP and TIMC teams has demonstrated that duodenal motility varies depending on the degree of smooth muscle stretching, transitioning from asynchronous contractile activity at low stress to propagating contractions at high stress. Moreover, the GI tract is capable of generating pressure gradients, which play a key role in fluid transport thanks to mechanosensitive responses. In the stomach, biomechanical activity is modulated by the structure and rheology of gastric contents influencing mixing phenomena that homogenize spatial heterogeneities such as pH gradients.
The objective of the thesis is to understand how fluid rheology influences GI tract motility, transport, and mixing.
The approach will be either experimental or based on numerical modeling. On the experimental side, ex vivo models of the isolated stomach and duodenum of the rat will be used to investigate how motility adapts to different fluid properties, with advanced visualization techniques employed to quantify both motility and mixing dynamics within the GI tract. Alternatively, numerical simulations may be developed to provide predictive insights into the biomechanical behavior of the system and validate key mechanistic hypotheses.
The skills expected are : - experience and knowledge in fluid mechanics, biomechanics, rheology and/or soft matter physics; - ability to process data: use of Matlab / Python (or equivalent), notions of statistics and programming; - a strong taste for experimental or numerical research: ability to set up an experimental device, ability to use a scientific instrument after training, ability to develop advanced codes of simulations. - a well-developed ability to summarize results and observations in order to draw conclusions; - scientific curiosity: questioning observations and results obtained with a critical mind and in the light of scientific literature; - scientific communication skills (oral and written): ability to write a scientific article, give an international conference. - an interest in cross-disciplinary research involving the use of engineering knowledge to understand physiological mechanisms is essential. Diploma required: The candidate must hold a Master 2 with skills in fluid mechanics, soft matter and chemical engineering. Level of French required: Elementary. You can understand the language in basic everyday situations if the person you are speaking to speaks slowly and clearly. You can understand and use simple expressions. Level of English required: Upper intermediate. You can use the language effectively and express yourself precisely.