Massimo Mischi is a Full Professor at the Faculty of Electrical Engineering of the Eindhoven University of Technology (TU/e) and chairs the Signal Processing Systems (SPS) Division , the largest division at TU/e with over 250 researchers. He founded the Biomedical Diagnostics (BM/d) Lab in 2012, which now includes 180 researchers and clinical/industrial advisors, focusing on biomedical signal processing for diagnostics and monitoring.
Anna Salvati is an Associate Professor specializing in nanomedicine and drug delivery systems. Her research focuses on nanoparticle-cell interactions, biomolecular corona formation, and the physicochemical properties governing nanomaterial behavior in biological environments. Key research themes include cellular uptake mechanisms, toxicity of nanomaterials, and nanoparticle targeting strategies. Recent publications highlight her work on nanoparticle stability, membrane interactions, and environmental impacts of microplastics. Her studies integrate multiomics approaches, advanced imaging, and interlaboratory validation to address challenges in nanomedicine design and safety testing. Current projects explore the role of high-density lipoproteins in nanoparticle functionality and the modulation of drug release kinetics through material engineering.
Mathieu Odijk is a Full Professor at the University of Twente's Faculty of Science and Technology, leading the Integrated Devices and Systems department. His research focuses on microfluidic systems, catalysis, and organ-on-chip platforms, with contributions to UN Sustainable Development Goals through advanced material characterization and biomedical engineering. He has authored over 120 publications and holds an h-index of 27 with 1,820 citations. Expertise: Microfluidics, catalyst particle diagnostics, SERS substrates, organ-on-chip systems, and spectroscopic techniques. Collaborations include Weckhuysen (catalysis), van den Berg (microfluidics), and Meirer (materials science). Key projects: Modular organ-on-chip platforms (STARTER), droplet-based catalyst screening, and real-time reaction monitoring via ATR-IR systems. His research combines nanotechnology and chemical engineering to develop tools for sustainable energy, environmental remediation, and biomedical applications. Recent work includes microreactors for catalyst particle analysis, light-driven urea oxidation for wearable kidney devices, and standardized platforms for organ-on-chip research.
Hyosang Lee is an Assistant Professor in the Robotics Section of the Mechanical Engineering Department at Eindhoven University of Technology (TU/e). He holds a PhD from KAIST and has held research positions at the Max Planck Institute and University of Stuttgart. His work focuses on tactile sensing technologies, including artificial skin development, soft robotics, and integration of sensory systems with AI. Bachelor's: Mechanical Engineering, Korea University Master's: Robotics and Mechanical Engineering (double major) PhD: Mechanical Engineering, KAIST (2017) Research interests span tactile sensor design, electrical impedance tomography (EIT), and human-robot interaction. His group emphasizes creating scalable, flexible tactile systems for robots. Recent work includes air pressure sensing for force estimation and biomimetic skin materials. Publications highlight innovations in multi-directional force sensing, soft component technologies, and haptic interfaces for autism therapy. He teaches 'Dynamics and Control of Robotic Systems' and serves on the editorial board of npj Robotics . No formal student advisees are listed, though his lab, the Tactile Sensing and Robotic Skin Group , likely involves graduate researchers. His research contributes to UN Sustainable Development Goals related to health and technology.
Detmer Sipkema is an Associate Professor at Wageningen University & Research, affiliated with the VLAG WIMEK faculty and the Department of Molecular Ecology. His research focuses on microbial ecology, marine biology, and biotechnology, particularly in aquaculture systems and sponge symbionts. He leads projects on metabolic modeling of marine bacteria, ecological impacts of seaweed farming, and probiotics development for aquaculture. Key research interests include microbial diversity, anaerobic digestion in aquaculture waste, and applications of artificial intelligence in microbial studies. He has supervised multiple PhD candidates exploring topics like microbial symbiosis, gut microbiota dynamics, and sustainable aquaculture practices. His work integrates multi-omics approaches, environmental microbiology, and bioprospecting for novel bioactive compounds. Sipkema has published widely on sponge microbiomes, anaerobic processes, and aquaculture sustainability. His datasets include bacterial community analyses from sponges and microalgae, contributing to understanding symbiotic relationships and biotechnological applications.
Prof. Carlijn V.C. Bouten is Full Professor of Cell-Matrix Interactions in Cardiovascular Regeneration at Eindhoven University of Technology (TU/e), where she heads the Soft Tissue Engineering & Mechanobiology research group in the Department of Biomedical Engineering. She leads a team of ~40 researchers focusing on cardiovascular tissue regeneration through interdisciplinary approaches. Her research investigates mechanobiological interactions between cells and extracellular environments during tissue growth/regeneration, using multi-scale living model systems. Key innovations include biodegradable heart valve prostheses, hybrid implantable organs, and remote cardiac tissue engineering concepts. She collaborates with material scientists, clinicians, and medtech companies. Education includes an MSc in Functional Anatomy and Biomechanics (Vrije Universiteit Amsterdam, 1991) and PhD (TU/e, 1995), with postdoctoral training at Université Laval and University of London. Her 300+ publications focus on: Cardiovascular tissue engineering Cell-matrix mechanobiology In vitro tissue models Biodegradable implants Hybrid organ development Major scientific honors: ERC Advanced Grant (2022) VICI Grant (2003) Aspasia Career Development Award Coordinator of €18.8M Gravitation Programme Elected member of KNAW and AcademiaNet She leads multiple consortia including RegMed-XB's Cardiac Moonshot and international programs like FET-OPEN 'Hybrid Heart'. Heads TU/e's Soft Tissue Engineering & Mechanobiology lab developing advanced biomaterials and tissue models.
Prof. Robbert Jan Kok is a Professor of Drug Delivery Technology at Utrecht University's Utrecht Institute for Pharmaceutical Sciences (UIPS) and Programme Director for the Bachelor of Pharmacy. He obtained his Pharmacy degree (1993) and PhD in renal drug targeting (1998) from the University of Groningen, followed by postdoctoral research on endothelial-targeted drug delivery. His work spans curriculum development for pharmacy programs and interdisciplinary research in drug innovation. Research Focus: Kok specializes in advanced drug delivery systems, including nanomedicines for kinase inhibitors, 3D-printed formulations, and stimuli-responsive carriers. Key areas include: Targeted delivery to tumors, kidneys, and inflamed tissues Polymeric micelles, liposomes, and microspheres for sustained release Biopharmaceutics and pharmacokinetic optimization Publication Trends: His recent work emphasizes nanotechnology-enabled therapies (e.g., curcumin nanodelivery, photodynamic micelles) and device-integrated drug release (3D-printed implants, macroencapsulation). Studies frequently combine material science with preclinical validation in cancer, renal diseases, and inflammatory disorders. Academic Leadership: Kok oversees student advising, laboratory operations, and international collaborations at UIPS. His team explores translational applications of drug delivery platforms, including partnerships for vascularized tissue engineering and combination therapies.
Carlijn Bouten is Full Professor of Cell-Matrix Interactions in Cardiovascular Regeneration at Eindhoven University of Technology. She leads the Soft Tissue Engineering & Mechanobiology group, investigating cellular interactions with extracellular environments in tissue growth, adaptation, and regeneration. Her research develops biodegradable heart valve prostheses that enable in vivo tissue regeneration, applying tissue engineering approaches to cardiovascular medicine. Professor Bouten holds an MSc from Vrije Universiteit Amsterdam and a PhD from TU/e. She completed postdoctoral research at Université Laval and University of London before joining TU/e's faculty. She directs the national Gravitation program 'Materials-Driven Regeneration' and received an ERC Advanced Grant for cardiac tissue organization research. Research Focus: Her interdisciplinary program spans: Mechanobiological cues in tissue regeneration Development of living heart valve replacements Advanced biomaterials for cardiovascular applications In vitro models for tissue development Soft robotic systems for cardiac assistance Recent publications demonstrate innovations in biohybrid devices, standardized biomaterial testing, and novel tissue patterning techniques. Her work integrates engineering, materials science, and clinical translation through collaborations with medtech spin-offs. Leadership and Recognition: Fellow of the European Alliance for Medical and Biological Engineering President-elect of the Heart Valve Society Member of AcademiaNet for Outstanding Female Scientists Recipient of NWO VICI grant and Aspasia award She leads multinational consortia in regenerative medicine and teaches courses on heart/blood physiology and regeneration. Her lab develops model systems spanning cellular to tissue levels to quantify mechanobiological processes.
Prof. Freek J. Beekman is a Full Professor and head of the Biomedical Imaging section within the Department of Radiation Science & Technology at Delft University of Technology (TU Delft), Faculty of Applied Sciences. He is a leading figure in biomedical imaging, with extensive contributions to nuclear imaging technologies, including SPECT, PET, and CT. His research spans detector development, image reconstruction algorithms, hybrid photonic imaging, and the application of artificial intelligence in medical imaging. Research Interests: His work focuses on advancing imaging modalities through innovations in hardware (e.g., multi-pinhole collimators) and software (e.g., deep learning for attenuation correction). He has pioneered ultra-high-resolution imaging systems, particularly for preclinical and clinical SPECT, and has developed integrated platforms like U-SPECT-BioFluo. His recent research explores glymphatic delivery of nanoparticles, infection imaging, and AI-driven reconstruction techniques, reflecting a strong translational focus. Publication Trends: His most recent publications (2021–2023) emphasize deep learning in SPECT, multi-isotope imaging, high-resolution ex vivo systems, and applications in neuroimaging and oncology. The articles demonstrate a consistent focus on improving image quality, resolution, and clinical utility through physics-informed and AI-enhanced methods. Scientific Awards: NWO Physics Valorization Prize Innovation of the Year Award by the World Molecular Imaging Society (2015, 2018) Edward Hoffman Memorial Award (2017) Bruce Hasegawa Memorial Award (2021) FOM Valorization Award (2013) TU Delft Entrepreneurial Award (2010) Advising and Grants: While specific student names are not listed, his leadership in large collaborative projects and supervision of numerous publications suggests active mentoring. He has secured significant funding through national and international grants, evidenced by his invention of over 20 patent families and successful technology transfer. His founding and leadership of MILabs BV (sold to Rigaku) highlights his impact on commercialization and industry-academia collaboration. Labs and Teams: He leads the Biomedical Imaging research group at TU Delft, which develops cutting-edge imaging systems such as VECTor (SPECT-PET) and EXIRAD-HE. His teams have produced technologies used globally in academic and pharmaceutical research, contributing to tracer development and therapeutic innovation.
Michael Levin is a Distinguished Professor at Tufts University in the Department of Biology within the School of Arts and Sciences. He serves as Director of both the Allen Discovery Center at Tufts University and the Tufts Center for Regenerative and Developmental Biology. His laboratory investigates the intersection of developmental biology, artificial life, bioengineering, synthetic morphology, and cognitive science. Allen Discovery Center at Tufts Tufts Center for Regenerative and Developmental Biology Tufts/UVM: ICDO Harvard Wyss Institute Stibel Dennett Consortium for Brain and Cognitive Science The Proteus Institute MIT Science and Technology Center EBICS Levin's research focuses on understanding diverse intelligence in evolved, designed, and hybrid complex systems. His lab combines developmental biophysics, computer science, and behavioral science to study how cognition scales up from cellular competencies to organism-level behaviors. A key specialty is developmental bioelectricity—the study of how somatic electrical networks store, process, and act on information to control large-scale body structure. His team creates tools to read and edit the bioelectric code guiding proto-cognitive computations in the body. Levin's publications reveal a strong focus on bioelectricity, morphogenesis, and non-neural cognition across multiple model systems including Xenopus, planarians, and synthetic living constructs. His recent work explores collective intelligence as a unifying concept across biological scales, the development of microfluidic devices for measuring electrical connectivity, and optical estimation of bioelectric patterns in living embryos. His research spans fundamental developmental mechanisms to potential biomedical applications in regeneration and disease treatment. As an editor, Levin serves as Co-Editor-in-Chief of Bioelectricity and Founding Associate Editor of Collective Intelligence. He has mentored numerous post-doctoral fellows and graduate students who have gone on to establish their own research programs. His lab has received significant attention for creating novel biological machines (xenobots) and demonstrating that cells can store and transmit behavioral memory outside the brain. The Levin Lab maintains several significant research initiatives including the Allen Discovery Center at Tufts, the Tufts Center for Regenerative and Developmental Biology, and collaborations with the Wyss Institute at Harvard. The lab employs a multidisciplinary approach combining wet lab experiments with computational modeling to investigate how living systems achieve goal-directed behavior and pattern formation.
Dr. Dierck Hillmann is an Associate Professor at the Faculty of Science, Department of Biophotonics and Medical Imaging, Vrije Universiteit Amsterdam. He holds a PhD in Holoscopy from Luebeck University (2013). His research focuses on advanced optical imaging techniques, particularly Optical Coherence Tomography (OCT), with applications in retinal imaging, functional signal analysis, and computational imaging. He is affiliated with the LaserLaB - Biophotonics and Microscopy research group. Key research areas include improving OCT resolution through holographic methods, functional imaging of retinal neurons and photoreceptors, and developing computational adaptive optics to enhance imaging quality. His work addresses challenges like speckle reduction, aberration correction, and real-time data processing in biomedical imaging. Dr. Hillmann’s contributions span over 37 publications, including innovations in full-field OCT, optoretinography, and phase-sensitive measurements. He teaches courses such as Computational Optical Imaging and Light-Tissue Interaction. His current project explores imaging individual retinal cells and their functions using advanced techniques. No scientific awards are explicitly listed, but his extensive publication record reflects significant academic impact. Students advised are not specified in the provided materials.
Linda Kock is an Assistant Professor (Part-time) in the Department of Biomedical Engineering at Eindhoven University of Technology, specializing in the Orthopaedic Biomechanics research group. Her work focuses on developing ex vivo models for studying bone dynamics, liver function, and tissue engineering applications. Dr. Kock's research primarily centers on biomechanics and tissue engineering, with particular emphasis on: Ex vivo culture systems for bone and cartilage tissue Liver perfusion and transplantation models Organoid development and application in regenerative medicine Longitudinal monitoring of tissue dynamics using advanced imaging techniques Development of alternatives to animal experimentation in medical research Her recent publications demonstrate a strong focus on creating clinically relevant ex vivo models that bridge the gap between laboratory research and clinical applications, particularly in orthopaedics and liver transplantation. She has developed innovative approaches for monitoring bone remodeling through micro-CT scanning and has investigated the use of slaughterhouse-obtained livers as alternatives to laboratory pigs for perfusion research. Dr. Kock has received research funding from several prestigious sources including the European Union's Horizon 2020 research program under Marie Sklodowska-Curie grant agreements and the Netherlands Organization for Scientific Research through the ERC Proof of Concept program and Gravitation Program. She is actively contributing to the advancement of regenerative medicine techniques that align with the 3Rs principle (Replacement, Reduction, Refinement) in medical research, providing valuable platforms for testing drug treatments and evaluating implant performance under controlled conditions that better reflect human physiology.
Prof. Mike Boxem is a Professor in the Department of Biology at Utrecht University's Faculty of Science, specializing in Developmental Biology. His research focuses on epithelial polarity, cell polarity complexes, and C. elegans genetics. He holds a PhD from Utrecht University (2002) and completed postdoctoral work at the Dana-Farber Cancer Institute. Notable honors include the NWO Vici (2016), NWO Vidi (2010), and ECHO grants. He leads the PolarNet Marie Curie ITN network and has supervised 8 research projects. His work contributes to understanding cell polarity mechanisms and developmental processes in C. elegans. Educations: BSc Medical Biology, VU University Amsterdam PhD in Biology, Utrecht University (2002) Research Interests: Boxem’s lab investigates how cell polarity complexes regulate epithelial tissue organization in C. elegans. Key topics include Crumbs polarity proteins, intermediate filaments, and signaling pathways controlling lumen formation and germline development. His work integrates genetic, biochemical, and imaging approaches to dissect molecular mechanisms underlying polarity establishment and maintenance. Grants & Awards: NWO Vici Grant (2016) - Supports long-term research NWO Vidi Grant (2010) - Established his independent lab ECHO Grant (2014) - European funding for collaborative projects Labs/Teams: His group is part of the Biodynamics and Biocomplexity research division. Collaborations span global networks, including the PolarNet consortium focusing on epithelial polarity.
Dr. Ye Wang is an Assistant Professor at the Department of Microsystems , Mechanical Engineering School , Eindhoven University of Technology . Active in UN Sustainable Development Goals related to biomedical technology, their work focuses on magnetic artificial cilia for microfluidic applications. Academic Rank: Assistant Professor University: Eindhoven University of Technology School: Mechanical Engineering Department: Microsystems Research Interests : Fluid dynamics in microsystems, magnetic actuation, biomechanical stimuli response, and biomedical device development. Key areas include programmable artificial cilia, shear-thinning fluid transport, and biofouling prevention through microscale engineering. Scientific Trends : Recent works emphasize cilia-based microfluidic mixing, non-Newtonian fluid dynamics, and organ-on-chip platforms. Collaborative projects with Prof. J.M.J. den Toonder and P.R. Onck dominate current publications. Advising : Supervised multiple student theses on topics ranging from microrheology to microheater reliability. Graduate students include F.W. Boots , M.H.J. Dekkers , and Y.-T. Lan . Projects : Currently involved in Accelerating Innovation in Microfabricated Medical Devices (2020-2023) with focus on continuous monitoring and advanced diagnostics. Scientific Impact : 1231 citations (Scopus) with collaborative networks spanning fluid dynamics, magnetic actuation, and biomedical applications. Featured in PNAS and Lab on a Chip publications.
Elisabeth Bloemena is a Visiting Professor at the Academic Centre for Dentistry Amsterdam (ACTA), specializing in Oral and Maxillofacial Pathology. She chairs the Oral Pathology department at ACTA, focusing on tissue analysis to guide patient treatment plans and advancing oncology and immunology research. Her work integrates clinical practice with translational research in head and neck cancers and oral diseases. Research Interests: Oral and Maxillofacial Pathology Head and Neck Cancer Biology Oncology and Immunology Malignant Transformation in Leukoplakia Genomic Analysis of Cancer Subclasses Recent Articles: Her 2024 studies explore immune cell dynamics in head and neck cancers, molecular imaging in PD-1 blockade therapy, and genomic engineering for oral disease models. Her 2025 work revises findings on genomic distinctions in head and neck cancer subclasses. Awards: No scientific awards explicitly listed. Advising & Grants: Supervised 7 PhD theses (names not listed). Active in editorial roles for journals like Journal of Oral and Maxillofacial Surgery and Scandinavian Journal of Gastroenterology . Collaborates internationally on oncology and immunology projects. Labs/Teams: Leads research teams at ACTA focused on oral pathology and translational cancer research.