Biomedical Engineering Technische Universiteit Eindhoven

Groene Loper, 5612AZ Eindhoven, Netherlands

At the Department of Biomedical Engineering, we’re driving the development of tomorrow’s biomedical technologies. By combining engineering with the natural sciences, we conduct cutting-edge research and create innovative solutions that enhance diagnostics, therapies, medical imaging, treatments, and — most importantly —patients’ quality of life.

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Biomedical Engineering Technische Universiteit Eindhoven — About · Eindhoven

At the Department of Biomedical Engineering, we’re driving the development of tomorrow’s biomedical technologies. By combining engineering with the natural sciences, we conduct cutting-edge research and create innovative solutions that enhance diagnostics, therapies, medical imaging, treatments, and, most importantly, patients’ quality of life.

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At the Department of Biomedical Engineering, we’re driving the development of tomorrow’s biomedical technologies. By combining engineering with the natural sciences, we conduct cutting-edge research and create innovative solutions that enhance diagnostics, therapies, medical imaging, treatments, and — most importantly —patients’ quality of life.

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At the Department of Biomedical Engineering, we’re driving the development of tomorrow’s biomedical technologies. By combining engineering with the natural sciences, we conduct cutting-edge research and create innovative solutions that enhance diagnostics, therapies, medical imaging, treatments, and — most importantly —patients’ quality of life.

Biomedical Engineering: pioneering the future of biomedical technologies

At the Department of Biomedical Engineering, we’re driving the development of tomorrow’s biomedical technologies. By combining engineering with the natural sciences, we conduct cutting-edge research and create innovative solutions that enhance diagnostics, therapies, medical imaging, treatments, and — most importantly —patients’ quality of life.

Regenerative Engineering and Materials

The research of the cluster is mostly basic and applied, focusing on adaptation, remodeling, growth, damage and repair in cells and tissues. We apply a combination of principles from fluid and solid mechanics, cell biology, immune-engineering and biophysics. Outcomes are translated into advanced medical interventions based on tissue engineering and materials for regenerative medicine, mainly in the areas of cardiovascular and musculoskeletal systems. Modeling in Mechanobiology Department of Biomedical Engineering Orthopaedic Biomechanics We explore and develop (regenerative) treatment strategies for orthopaedic injuries and disorders based on a thorough understanding of… Department of Biomedical Engineering Soft Tissue Engineering and Mechanobiology At STEM we aim to understand and predict how mechanical factors influence soft tissue growth, remodelling, damage, and repair. We use this…

Chemical Biology

Within this cluster issues in biomedical engineering are approached on a molecular basis using the interplay of organic chemistry, biochemistry, polymer chemistry physical chemistry and chemical physics. Using these disciplines biological processes as well as the interactions between synthetic and living matter are studied at the level of molecules and used as a source of inspiration for the design and synthesis of new drugs and biomaterials. Department of Chemical Engineering and Chemistry / Biomedical Engineering Bio-Organic Chemistry In our research we combine techniques from protein engineering, polymer chemistry and bioconjugation approaches to create particles with… Department of Biomedical Engineering Biomedical Materials and Chemistry To provide material solutions for regenerative medicine through development of functional biomaterials based on supramolecular chemistry. Department of Biomedical Engineering Chemical Biology The Chemical Biology group is a research group within the department of Biomedical Engineering. The group is supervized by Prof.dr.ir. Luc… Departments of Applied Physics / Biomedical Engineering Molecular Biosensing The MBx group develops technologies based on micro- and nanoparticles for monitoring patients and for treating diseases. Towards this goal,… Nanoscopy for Nanomedicine We use advanced microscopy techniques such as super-resolution imaging to understand the structure of synthetic nanomaterials in vitro and… Precision Medicine The Precision Medicine group focuses on designing and evaluating nanotherapeutics that regulate the immune response to treat a range of… Department of Biomedical Engineering Protein Engineering protein engineering, biosensors, point-of-care diagnostics, bioluminescence, synthetic biology, chemical biology

Biomedical Imaging & Modelling

Within this cluster methods and techniques from e.g. mathematics, computer science, physics, and medicine are used in medical imaging, image analysis, and modelling and interpretation of biomedical systems. In both research and clinical diagnostics these methods are applied to understand the workings of the human body, and to accurately predict the application of medical interventions. Department of Biomedical Engineering Cardiovascular Biomechanics cardiovascular, experimental & computational biomechanics, heart, blood vessels, (cardio)vascular disease, aneurysms, arteriosclerosis,… Department of Biomedical Engineering Computational Biology Constructing computational models to improve the knowledge of diseases, biomedical processes and structures. Department of Biomedical Engineering Medical Image Analysis Developing methods and applications for medical imaging, to improve clinical care. medical imaging, acquisition, image reconstruction,… Department of Biomedical Engineering Photoacoustics and Ultrasound Laboratory Eindhoven At PULS/e, our mission is to revolutionize medical imaging by pioneering advancements in ultrasound and photoacoustic technologies. We aim… Synthetic Biology We develop living technologies based on synthetic biology to tackle important societal problems including the development of DNA data…

Our laboratories

Our transdisciplinary laboratories offer state-of-the-art facilities that unite biology, engineering, physics, chemistry, and medicine. From culturing autologous tissues and developing biomaterials to advancing cardiovascular biomechanics, ultrasound and photoacoustic imaging, and molecular materials discovery, our labs drive pioneering research and accelerate clinical translation. The Laboratory for Cell & Tissue Engineering facilitates culturing of autologous tissues across the full spectrum of the research field. The Laboratory for Cardiovascular & Respiratory Biomechanics is located at Vector 0.440. PULS/e is a research facility of the Photoacoustics and Ultrasound Laboratory Eindhoven (PULS/e). This lab provides experimental and… ICMS/Lab facilitates the development and characterization of innovative materials from a molecular perspective. The MBx group develops technologies based on micro- and nanoparticles for monitoring patients and for treating diseases. Towards this goal,…

Collaboration and network

Our department fosters successful public-private partnerships and spinoffs through close collaboration with academic institutions, industry leaders, and government agencies. Explore some of our ongoing initiatives featured on the right. Beyond these projects, we sustain strong partnerships with leading organizations including Eurotech, the Wyss Institute at Harvard University, the Max Planck Institutes, and the Institute for Bioengineering of Catalonia (IBEC). The Center for Living Technologies functions as a platform that stimulates breakthrough research in the field of synthetic biology. The goal of the Eindhoven MedTech Innovation Center (e/MTIC) is to create and expand an ecosystem that strongly increases the speed of… CTI’s mission is bridging the gap between immunology and bioengineering. We are Regenerative Medicine Crossing Border: ensuring research breakthroughs have a meaningful impact on patients' lives.

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