Prof. Marcy Zenobi-Wong is a Full Professor at ETH Zurich's Department of Health Sciences and Technology, specializing in biofabrication and tissue engineering. Her research focuses on cartilage regeneration using advanced biomaterials, including nanofilm coatings and 3D printing techniques. She holds patents in tissue engineering and has pioneered methods like filamented light (FLight) biofabrication for creating anisotropic tissues. Her academic journey includes a B.Sc. from MIT (1985), M.Sc. and Ph.D. from Stanford (1987, 1990), followed by postdoctoral work at the University of Michigan. She leads the Biofabrication Group at ETH, developing therapies for joint repair and regenerative medicine. Courses taught include Biomedical Engineering and Materials and Mechanics in Medicine . Research highlights include engineered hydrogels for cartilage protection, CRISPR-driven gene editing in chondrocytes, and biohybrid neural interfaces. Her work bridges material science, cell biology, and clinical applications, with a focus on translational medicine. Collaborative projects involve creating elastic cartilage grafts for microtia reconstruction and volumetric printing of complex tissue constructs.
Dr. Rebecca Pratt is a tenured Professor in the Department of Foundational Medical Studies at Oakland University William Beaumont School of Medicine (OUWB), where she has been a faculty member since January 2018. She previously held professorial roles at Michigan State University College of Osteopathic Medicine (MSUCOM), where she taught anatomy, embryology, neuroanatomy, physiology, and histology, and served as Associate Professor and Director of Histology at the West Virginia School of Osteopathic Medicine. She also held appointments at Grand Valley State University and completed postdoctoral training at Purdue University. Ph.D., Cell Biology and Oncology, Purdue University B.S., Zoology and Botany/Plant Pathology, Michigan State University Dr. Pratt's research focuses on the fascial system and its role in whole-body health, including fascial continuity, muscle attachment, somatic pain transmission, and biochemical communication. She integrates radiology into anatomy education and advocates for evidence-based medical curricula. Her work bridges clinical anatomy, histology, embryology, and physiology with modern educational practices. Her recent publications reflect a strong emphasis on fascial anatomy, medical education innovation, and the integration of imaging in teaching. Themes include plastination, generational learning trends, and fascia’s role in women's health and athletic performance, published in journals like Clinical Anatomy and Anatomical Sciences Education , as well as in Women and Men’s Health and NIKE magazines. Scientific awards and honors include: Basmajian Award (American Association of Anatomy) Keith and Marion Moore Award (AAA) Five consecutive Golden Apple Teaching Awards at MSUCOM Golden Apple Award at OUWB Dr. Pratt has served in major leadership roles, including President of the International Fascia Research Society, Board Member of the American Association of Anatomy (AAA) and the American Association of Clinical Anatomy (AACA), and Chair of multiple AAA committees. She is a Visiting Anatomy Professor at Weill Cornell and St. George’s University School of Medicine, and faculty advisor for the Docapellas at OUWB. She has been an invited speaker internationally and contributed to high-impact projects like the BodyWorlds Fascial Net Plastination Project. She actively serves on OUWB’s Admissions and Student Promotion and Retention Committees. Dr. Pratt leads and organizes major international initiatives, including the Women's Clinical Health Summit in Rio de Janeiro (2024) and the Fascia Research Congress in New Orleans (2025), fostering global collaboration in fascial science. Her lab and research team focus on fascial anatomy and medical education, working closely with institutions in Italy (University of Padova) and Germany (BodyWorlds project).
Michael McAlpine is a Professor in the Mechanical Engineering department at the University of Minnesota . He also holds affiliations with the Biomedical Engineering and Electrical and Computer Engineering departments. His research focuses on 3D printing functional materials & devices , Nanoscale inks , Biomedical devices , Bioelectronics , and Flexible Microsystems . Research Interests : 3D Printing, Biomedical Engineering, Nanotechnology, Flexible Electronics, Microfluidics Labs : ME 361/363 Contact : mcalpine@umn.edu , (612) 626-3303, ME 117 Recent Research Trends include 3D Printed Biomedical Devices , Flexible Electronics , and Bioprinting Applications . His work spans from Spinal Organoid Formation to Programmable Drug Release Capsules . Scientific Award : Circulation Research 2020 Best Manuscript Award
Zoran Cenev holds a Tenure Track Assistant Professor position within the Mechatronics and Dynamics section of the Department of Mechanical and Production Engineering at the School of Engineering, Aarhus University. His primary institutional affiliation is with AU Engineering, and contact details include email zoran.cenev@mpe.au.dk and telephone +45 20 64 75 44, with office location Aarhus N, 5128-140. Research interests focus on interdisciplinary applications of magnetic and robotic systems: Robotic micromanipulation via electromagnetic needles Ferrofluid-based biofabrication for skeletal muscle engineering Laser-induced photothermal droplet control Theoretical modeling of particle dynamics at fluid interfaces Surface engineering for underwater metallic stability Nanostructure formation through ion bombardment His recent publications (2023-2025) reveal a dominant trend in adapting ferrofluids for biomedical automation, particularly 3D bioprinting of magnetically responsive tissues and droplet manipulation on engineered surfaces. This work bridges mechanical engineering with regenerative medicine, emphasizing practical implementations of theoretical models for microscale precision. Scientific awards are not documented in the provided information. As a faculty member, Dr. Cenev likely mentors graduate students and pursues research grants, though specific advisees or funding details are absent. Departmental laboratories and workshops support his experimental work in mechatronics, with emphasis on magnetic manipulation systems and surface characterization.
Leibniz Institute for Zoo and Wildlife ResearchGermany
Omer Bayraktar is a Group Leader at the Wellcome Sanger Institute , leading research in the Cellular Genomics Programme. His work focuses on decoding human brain cellular diversity using spatial transcriptomics , imaging , and functional screening to study neural complexity in health and disease. Bayraktar's educational background includes a PhD from HHMI under Chris Doe, investigating neural diversity development in Drosophila , followed by postdoctoral work at University of California, San Francisco and University of Cambridge as a Life Sciences Research Foundation Fellow. He developed a spatial transcriptomic pipeline during his postdoc to analyze astrocyte heterogeneity in the cerebral cortex. His research explores neural cell type mapping , glial-neuronal interactions , and cellular pathways in neurodevelopmental disorders . Recent publications emphasize 3D tissue mapping , multi-omic integration , and computational tools like Cell2fate and WebAtlas. His work bridges neurogenetics and computational biology to advance understanding of human tissue ecosystems. Bayraktar's lab collaborates with the Human Cell Atlas initiative and develops technologies such as automated histology pipelines and highly-multiplexed smFISH for molecular cell typing. His team also investigates glia-based therapies and astrocyte functional heterogeneity in neurodevelopmental contexts. Key scientific contributions include: Discovering astrocyte layer patterns independent of neuronal laminae Developing cell2location for spatial cell mapping Characterizing Drosophila neural stem cell models with human relevance Notable awards include the Life Sciences Research Foundation Fellowship during his postdoctoral training. His current group includes a PhD student , Senior Data Scientists , and Bioinformaticians .
Christopher E. Nelson is an Assistant Professor in the Department of Biomedical Engineering at the University of Arkansas, College of Engineering. His lab focuses on developing biologically inspired strategies for controlled drug and gene delivery, particularly in the context of gene therapy and regenerative medicine. He is actively supported by the NIH, DoD, and Arkansas Bioscience Institute. Education: Postdoctoral Fellow – Duke University Ph.D. – Vanderbilt University B.S. – University of Arkansas Research Focus: Dr. Nelson’s lab integrates genome editing technologies with targeted delivery systems to address challenges in treating genetic diseases and promoting tissue regeneration. Major themes include CRISPR/Cas9 delivery , gene regulation in wound healing , and safe-harbor genome integration in skeletal muscle. His work spans viral and non-viral delivery vehicles , including lipid nanoparticles and AAV vectors, with a strong emphasis on preclinical validation in models of Duchenne muscular dystrophy and inflammatory disease. Scientific Awards: Controlled Release Society Postdoctoral Fellowship The Hartwell Foundation Postdoctoral Fellowship NIH Pathway to Independence Award (K99/R00) Funding & Support: The Nelson Lab is currently funded by: NIH NIGMS R35 DoD CDMRP DMD IDEA Award Arkansas Bioscience Institute University of Arkansas Engineering & Honors Colleges Lab & Team: The Nelson Lab is a dynamic, interdisciplinary team working at the intersection of gene editing, biomaterials, and regenerative medicine. They regularly present at national conferences such as ASGCT and NCUR, and mentor undergraduate researchers through SURF and Honors College grants.
Michael Kjær is a Clinical Professor at the Department of Clinical Medicine, University of Copenhagen, Faculty of Health and Medical Sciences. He specializes in Internal Medicine: Rheumatology and leads research groups focused on exercise physiology, sports injuries, and aging. His work addresses the impact of physical activity on the human organism, with particular emphasis on tissue damage and repair mechanisms. Dr. Kjær's primary research interests center around sports medicine, physiology, and exercise science. His work investigates tendon pathology, muscle physiology, sports injuries, and the effects of exercise on aging populations. He has made significant contributions to understanding sports-related injuries, particularly tendon overuse conditions, and the physiological responses to physical activity across different age groups. His recent publications (2025) demonstrate a strong focus on tendon research, sports injury treatment dilemmas, effects of anabolic steroid abuse, muscle physiology, and bone health in athletes and older adults. The research spans from basic science investigations of cellular mechanisms to clinical studies addressing practical sports medicine challenges. His work shows particular strength in connecting molecular and tissue-level changes with clinical outcomes in sports medicine. With 415 research outputs including 369 journal articles, 15 book chapters, and 15 reviews, Dr. Kjær maintains an active research program with substantial impact. His work has been referenced in Wikipedia pages, cited by Bluesky users, and picked up by news outlets, demonstrating its relevance to both academic and public discourse. Dr. Kjær leads multiple research groups within the Center for Healthy Aging Damage and Repair at the Department of Clinical Medicine. His laboratory work focuses on tissue response to injury and exercise, particularly examining tendon and muscle physiology using both in vivo and in vitro approaches. His research bridges basic science with clinical applications in sports medicine and rehabilitation.
Suradip Das is a Research Assistant Professor in the Department of Neurosurgery at the Perelman School of Medicine, University of Pennsylvania, where he serves as a Senior Research Investigator. His work bridges neural engineering and regenerative medicine to address critical challenges in nerve and muscle repair. His academic training includes: B.Tech in Biotechnology from Heritage Institute of Technology (2010) PhD in Biosciences and Bioengineering from Indian Institute of Technology Guwahati (2016) Dr. Das specializes in biomaterials development , peripheral nerve injury models , neuromuscular interface engineering , and stem cell-based regeneration . His research pioneers innervated tissue-engineered muscle constructs, demonstrating how motor neurons and endothelial cells synergistically enhance skeletal myocyte maturation. He innovates custom mechanobioreactors that apply tensile forces to guide nanofiber alignment for optimal myofiber formation, significantly advancing volumetric muscle loss treatments. Analysis of his 15 most recent publications reveals a dominant focus on neuromuscular regeneration (75% of articles), with emerging exploration of psychedelic compounds in neural repair. His work consistently integrates human iPSC-derived models , multi-cellular co-cultures , and large-animal validation to address translational gaps. Key trends include optogenetic control of motor units (2023), porcine nerve injury models (2020), and the critical role of pre-innervation in creating pro-regenerative microenvironments (2020-2022). As a core member of the Cullen Lab, Dr. Das collaborates on developing biofabricated neural microtissues for delayed nerve fusion and rapid functional recovery. His research directly informs clinical strategies for peripheral nerve repair and muscle regeneration through rigorous mechanistic studies and innovative engineering solutions.
Foteini Mourkioti is an Associate Professor at the University of Pennsylvania's Perelman School of Medicine , with a joint appointment in the Graduate Groups of Cell and Molecular Biology and Bioengineering . She co-directs the Musculoskeletal Regeneration Program at the Penn Institute of Regenerative Medicine and leads the McKay Orthopaedic Research Laboratory . Research Interests : Muscle Stem Cell Biology Mechanobiology Muscle Regeneration Telomere Biology in Muscular Diseases Fibrodysplasia Ossificans Progressiva (FOP) Cardiomyopathy and Aging Key Research Contributions : Developed the Pax7EGFP mouse model for real-time muscle stem cell tracking Discovered telomere shortening as a critical factor in Duchenne Muscular Dystrophy Elucidated the role of NF-κB in muscle stem cell dysfunction Identified Piezo1's role in stem cell morphological states Characterized fibro-adipogenic progenitor dynamics in FOP Scientific Awards : NIH/NHLBI R01 grant recipient (2019) NASA grant awardee (2020, 2017) American Heart Association grant (2017) Muscular Dystrophy Association grant (2019) University Research Foundation grant (2018) Publications & Collaborations : Over 25 publications in high-impact journals like Science Advances , Nature Protocols , and Cell Reports . Collaborates with Penn Cardiovascular Institute and Pennsylvania Muscle Institute.
Jennifer Curtis is a Full Professor in the School of Physics at Georgia Institute of Technology and serves as an ADVANCE Professor for the College of Sciences. Her research focuses on the physics of cell-cell and cell-extracellular matrix interactions, particularly within glycobiology and immunobiology contexts. Dr. Curtis earned her Ph.D. in Physics from the University of Chicago (2002) and her B.A. in Physics from Columbia University (1997). Her research interests span biophysics at interfaces, quantitative modeling of collective cellular interactions, cell mechanics, motility, adhesion, and the role of bulky sugars in tissue organization. Her laboratory investigates collective and single cell migration, immunophage therapy (combining immune cells with phages to combat bacterial infections), and molecular biophysics of hyaluronan synthase. Recent work demonstrates applications in soft materials, biomaterials, tissue engineering, and advanced characterization techniques. Analysis of her publication record reveals consistent focus on glyco-biophysics and cellular mechanics, with increasing emphasis on microbial communities and therapeutic applications. Her work bridges physics, biology, and engineering through interdisciplinary approaches. Honors include the NSF CAREER Award (2010), Georgia Tech College of Sciences Faculty Mentor Award (2015), and Cullen Peck Award (2020). She serves on the Biophysical Journal editorial board. Dr. Curtis actively mentors students through the Georgia Tech Physics REU program (which she directs) and collaborates with biologists, chemists, and materials scientists. Her laboratory maintains strong partnerships with institutions including Emory University and international collaborators. The Curtis Lab operates the Cell Physics Laboratory in the Molecular Science & Engineering Building, utilizing advanced techniques including holographic optical tweezers, thermochemical nanolithography, and single-molecule imaging to study cellular mechanics and polymer physics at biological interfaces.
Christian P Petersen, PhD is a Professor in the Department of Cell and Developmental Biology at the Weinberg College of Arts and Sciences , Northwestern University Feinberg School of Medicine. His research focuses on molecular mechanisms underlying regeneration in planarians and other organisms. PhD: MIT (2006) Research Interests: Planarian regeneration and tissue patterning Wnt signaling pathway regulation Stem cell biology in regenerative contexts Neurogenesis and injury response Molecular mechanisms of tissue repair Affiliations: Center for Reproductive Science Robert H. Lurie Comprehensive Cancer Center
Ben Cosgrove is an Associate Professor in the Meinig School of Biomedical Engineering at Cornell University, serving as Director of Graduate Studies. His research focuses on systems bioengineering approaches to understand muscle stem cell dysfunction in aging and disease. He leads the Cosgrove Lab, a multidisciplinary group integrating biomedical engineering, stem cell biology, and systems biology to study microenvironmental signaling in muscle regeneration. His work includes developing biomimetic microenvironments for stem cell manufacturing and improving regenerative medicine therapies. Dr. Cosgrove holds a B.Eng. from the University of Minnesota (2003) and a Ph.D. in Bioengineering from MIT (2009). Postdoctoral training at Stanford University (with Dr. Helen Blau) followed. His research is supported by NIH grants (including R01, R21), the Glenn Medical Research Foundation, and others. He has been recognized with awards such as the BMES Graduate Research Award (2008), Rising Star Award (2015), and Swanson Teaching Excellence Award (2019). Research interests span bioengineering, biomechanics, computational science, and systems biology. His lab's innovations include spatial transcriptomic mapping and high-yield stem cell expansion platforms. Current projects aim to decode stem cell-niche interactions to treat muscle degeneration and aging. Grants: NIH K99/R00, R01, R21; Glenn Medical Research Foundation Labs/Teams: Cosgrove Lab (Cornell University) Future Work: Expanding applications of spatial transcriptomics and engineering regenerative therapies for muscle diseases
Theresa Raimondo is the Manning Assistant Professor of Engineering at Brown University, with a secondary appointment in the Division of Biology and Medicine. She joined the Brown Engineering faculty in January 2024 after completing her postdoctoral training at MIT's Koch Institute. Dr. Raimondo leads the Raimondo Research Lab, which focuses on chemically modifying RNA and designing nanoparticles for therapeutic delivery to the body, an immunotherapy concept that holds immense promise in the field of immunoengineering. Her educational background includes: PhD in Engineering Sciences – Bioengineering from Harvard University (2019) MEng from Harvard University (2019) Sc.B. in Chemical and Biochemical Engineering from Brown University (2011) Dr. Raimondo's research is broadly focused on the design of targeted drug-delivery vectors and novel RNA-based therapeutics for applications in cancer, immunotherapy, and tissue regeneration. Her work primarily centers on developing novel lipid nanoparticles (LNPs) for RNA-based therapies, contributing to adjuvanted mRNA-based vaccines and siRNA-based cancer immunotherapies. By optimizing LNP formulation and modulating RNA constructs, she seeks to understand how RNA-LNPs modulate immunity and develop new therapeutic approaches. Her expertise spans biomaterials, drug delivery, biomolecular engineering, nanomedicine, tissue engineering, and regenerative medicine. Analysis of Dr. Raimondo's recent publications reveals a strong focus on RNA delivery systems and lipid nanoparticle technology. Her work spans from fundamental studies on nanoparticle design to applications in cancer immunotherapy, vaccine development, and tissue regeneration. A significant portion of her research involves optimizing lipid formulations for improved mRNA delivery and exploring how these systems interact with the immune system. Her publications demonstrate a trajectory from basic biomaterials research to increasingly translational work with therapeutic applications. Dr. Raimondo has received numerous prestigious awards: 2025 NAE Symposium selection (Grainger Foundation Frontiers of Engineering) 2025 appointment to the inaugural Early Career Board of ACS Applied Bio Materials 2024 selection as MIT Faculty Founder Initiative finalist 2022 Convergence Scholar fellowship from MIT's Marble Center for Cancer Nanomedicine National Science Foundation graduate research fellowship Harvard's Smith family graduate fellowship Dr. Raimondo is actively involved in mentoring students through courses including ENGN 0931L - Biomedical Engineering Design and Innovation II, ENGN 1490 - Biomaterials, and ENGN 1931L - Biomedical Engineering Design and Innovation II. Her research program is supported by various grants, though specific funding sources aren't detailed in the provided text. The Raimondo Research Lab represents a dynamic environment where engineering principles are applied to solve complex biological challenges in drug delivery and regenerative medicine. The Raimondo Research Lab at Brown University serves as a hub for innovation in RNA delivery and biomaterials design. The lab brings together expertise in chemical engineering, molecular biology, and immunology to develop next-generation therapeutic platforms. Current research directions include optimizing lipid nanoparticle formulations, exploring novel RNA modifications, and investigating immune responses to RNA therapeutics across various disease contexts.
Dr. Darryl Dickerson is an Assistant Professor in the Department of Mechanical and Materials Engineering at Florida International University (FIU), part of the College of Engineering. His research focuses on mechanical characterization of biological interfaces, design of bioinspired materials, and advancing inclusive engineering education practices. He holds a Ph.D. (details not explicitly provided in text). Research Interests: Dr. Dickerson’s work bridges biomechanics and biomaterials engineering with social equity in education. Key areas include: Mechanical properties of biological interfaces (e.g., bone-cartilage junctions) Development of biomaterials for tissue repair using 3D printing and electrospinning Anti-marginalization strategies in engineering education, particularly for Black and Brown students Publications Trends: Recent work emphasizes dual themes: (1) Biomedical innovation through advanced material fabrication and (2) Inclusive pedagogy addressing systemic inequities in STEM education. Notable contributions include scaffold designs for osteochondral repair and frameworks for reducing microaggressions in team-based learning. Grants and Advising: No specific grants or advisees listed in the provided text. His work appears to be grant-funded through NIH/National Science Foundation pathways common in biomaterials and education research. Labs and Teams: While not explicitly stated, his research likely involves collaborations with FIU’s Center for Engineering and Computing’s diversity initiatives and biomaterials labs focusing on tissue engineering applications.
Prof. Casper Hoogenraad is a full professor in Molecular Neuroscience at the Department of Cell Biology, Faculty of Science, Utrecht University. His research focuses on understanding how intracellular protein trafficking underlies neuronal development and function, with particular emphasis on the microtubule cytoskeleton, synaptic cargo trafficking, and synaptic plasticity. He leads an active research group within Utrecht University's Cell Biology department and collaborates extensively with other neuroscience research groups. Education: PhD, Erasmus University Rotterdam (1996-2001) Postdoc, Massachusetts Institute of Technology (2002-2005) Hoogenraad's research spans three main themes: cytoskeleton dynamics during neurodevelopment and synaptic plasticity, motor proteins and adaptors as regulators of synaptic transport, and psychiatric and neurologic disease disorders linked to intracellular transport. His work combines genetics, biochemistry, molecular, and cellular biology methods in in vitro (neuron cultures), ex vivo (brain slices), and in vivo (mice) systems, along with advanced microscopy techniques including immunofluorescent confocal microscopy, high-resolution live cell imaging, and photo-activated localization microscopy (PALM). Analysis of Hoogenraad's recent publications reveals a strong focus on microtubule organization, neuronal polarity, and the molecular mechanisms underlying synaptic function and dysfunction. His work frequently explores how disruptions in intracellular transport contribute to neurological disorders including Alzheimer's disease, schizophrenia, and autism spectrum disorders, with particular attention to the relationship between cytoskeletal organization and cargo transport in neuronal compartments. Scientific Awards and Memberships: ZonMW-VIDI (2004) European Young Investigators (EURYI) award (2005) NWO-ALW VICI (2011) ERC Consolidator grants (2013) FENS-Kavli Network of Excellence (2014) European Molecular Biology Organization (EMBO) (2015) Young Academy of Europe (YAE) (2015) IBRO Kemali Prize (2016) Hoogenraad leads a research group studying neuronal development and function, with a particular focus on how intracellular transport mechanisms contribute to both normal brain function and neurological disorders. His laboratory employs a multidisciplinary approach combining molecular, cellular, and systems neuroscience techniques to investigate the molecular basis of neuronal polarity, synaptic plasticity, and the pathogenesis of neurological disorders. He has secured significant research funding through prestigious grants including ERC Consolidator grants. The Hoogenraad lab operates within the Cell Biology department at Utrecht University, collaborating with other research groups focusing on cellular dynamics, biophysics, and neurobiology. The lab utilizes advanced microscopy techniques including immunofluorescent confocal microscopy, high-resolution live cell imaging (spinning disc microscopy and total internal reflection fluorescence microscopy), and quantitative analysis using advanced high-resolution microscopy (photo-activated localization microscopy). Current lab technicians include Phebe Wulf and Bart de Haan.