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.
Renate Sachse is a Researcher at the Chair of Structural Analysis, Technical University of Munich (TUM), where she has worked since May 2024. Previously, she held postdoctoral positions at Harvard University's Bertoldi Lab (2024) and TUM's Chair of Computational Mechanics (2021-2024), following academic staff roles at the University of Stuttgart (2015-2020). Her interdisciplinary work bridges civil engineering, biomechanics, and computational modeling. Her educational foundation includes a Master's in Civil Engineering from the University of Stuttgart (2014; thesis: 'Isogeometric contact analysis of thin-walled structures') and a Bachelor's from the same institution (2011; thesis: 'A Primary School Pavilion for Magagula in South Africa - Structural Analysis'). She also completed ERASMUS studies at ESTP Paris and internships at Foster + Partners and Werner Sobek AG. Dr. Sachse's research centers on biomechanics and biomimetics, with pioneering work on plant-inspired structures. She investigates snapping mechanisms in carnivorous plants (Venus flytrap, waterwheel plant) to develop bio-inspired adaptive systems, soft robotics, and metamaterials. Her expertise spans motion design for large-deformation structures, isogeometric analysis, and hygroscopic actuation in 4D-printed materials, emphasizing computational modeling of contact mechanics and structural stability. Analysis of her 15 most recent publications reveals a dominant focus on biomechanics (60% of articles), particularly plant movement mechanics translated into engineering solutions. Her work consistently integrates computational structural analysis with biological principles, showing increasing emphasis on motion design (25% of recent output) and additive manufacturing applications (15%). Key trends include translating snap-buckling phenomena into robotics and developing material design spaces for responsive structures. Her distinguished awards include the Bertha Benz Prize (2022), Klaus Tschira Boost Fund Fellowship (2022-2024), and University of Stuttgart Publication Award (2022). Additional recognition comprises GAMM Juniors Fellowship (2020-2022), AVK Innovation Award (2017), and Emil Mörsch Study Prize (2014). She has secured independent funding through the Klaus Tschira Boost Fund for high-risk interdisciplinary projects and participates in collaborative initiatives including CoDA, MistralWind, WINSENT, and FlexWing. While teaching advanced courses at TUM (Advanced Finite Element Methods, Theory of Plates), her mentorship focuses on computational mechanics and biomimetic design principles. Currently based at TUM's Chair of Structural Analysis under Prof. Bletzinger, she maintains active collaboration with Harvard University's Bertoldi Lab in developing next-generation adaptive structures.
Lara Ferry is the Vice President of Research at Arizona State University (ASU), holding the title of President’s Professor. She is affiliated with the New College of Interdisciplinary Arts and Sciences, specifically the School of Mathematical and Natural Sciences, and serves as graduate faculty in the School of Life Sciences. Her roles include advancing research strategies, fostering interdisciplinary collaborations, and enhancing partnerships with institutions, communities, donors, and industry. Ferry is also a PLuS Alliance Fellow, a Senior Global Futures Scientist at the Global Institute of Sustainability and Innovation, and affiliated with the Biodesign Institute and Global Security Initiative. She holds honors faculty status in ASU’s Barrett Honors College. Her academic background includes a B.S. in Biology from Cal Poly State University, M.S. in Marine Science from San Francisco State University, Ph.D. in Ecology and Evolutionary Biology from UC Irvine, and postdoctoral work at UC Davis. Her research focuses on functional morphology, particularly the evolution of jaws and skeletal materials in aquatic organisms. She has contributed to understanding prey capture mechanisms in fish and the biomechanics of cartilage in elasmobranchs. Ferry’s awards include the 2016 Outstanding Faculty Mentor Award, 2014 Outstanding Research/Creative Activity Award, and the 2018 President’s Professor title. She has led initiatives in equity, diversity, and inclusion (JEDI) and served on boards of professional societies like the American Elasmobranch Society and Society for Integrative and Comparative Biology. Her editorial roles include Senior Executive Editor of Functional Ecology and editorial board memberships in journals like Integrative & Comparative Biology . Her research activity spans functional morphology, biomechanics, and marine physiology, with grants focused on interdisciplinary education and diversity in STEM. Notable projects include studies on cartilage strength in sharks and collaborations on cultural change in professional societies.
Stefanie Mueller is the TIBCO Career Development Associate Professor at MIT's Electrical Engineering and Computer Science Department, with joint affiliation in Mechanical Engineering. She leads the HCI Engineering Group at the Computer Science and Artificial Intelligence Laboratory (CSAIL), focusing on advancing fabrication techniques through hardware/software innovations that enable novel object interactions. Develops computational fabrication methods combining photochromic dyes, lenticular lenses, birefringent materials, and optical illusions Co-chaired ACM CHI 2023 and ACM UIST 2020 program committees Recipients of 9 MIT EECS Best Undergraduate Researcher Awards among mentees Her research spans four key directions: Appearance-changing Objects: Photo-Chromeleon (ACM UIST 2019), Lenticular Objects (ACM UIST 2021), and Polagons (ACM CHI 2023) demonstrate reprogrammable surfaces through advanced materials and optical engineering. Tracking Systems: InfraredTags (ACM CHI 2022) and G-ID (ACM CHI 2020) enable passive object tracking via infrared markers and slicing artifacts. Embedded Sensing: MechSense (ACM CHI 2023) and Sprayable User Interfaces (ACM CHI 2020) integrate sensing capabilities into complex geometries. Curved Surface Prototyping: FlexBoard (ACM CHI 2023) and CurveBoard (ACM CHI 2020) develop specialized tools for non-planar electronics. Her recent publications focus on functionality segmentation (UIST 2023), fluorescent markers (UIST 2023), and machine-knitted haptics (UIST 2023). These works combine machine learning, material science, and interactive design principles to push fabrication boundaries. Scientific recognition includes: 2022 MIT Technology Review Innovators Under 35 2020 Microsoft Research Faculty Fellowship 2020 Alfred P. Sloan Research Fellowship 2019 ACM UIST Best Paper Award 2019 NSF CAREER Award 2018 MIT EECS Outstanding Educator Award 2017 Forbes 30 Under 30 in Science Mentoring 9 PhD students and over 20 master's students, her lab has produced 20+ publications at top HCI conferences. She redesigned MIT's 6.810 Engineering Interactive Technologies course during the pandemic, maintaining hands-on learning through home electronics kits and Slack-based collaboration.
Dr. Seyyed Hamed Hosseini Nasab is a Lecturer at the Department of Health Sciences and Technology at ETH Zürich, affiliated with the Institute for Biomechanics and the Laboratory for Movement Biomechanics. His research focuses on biomechanical analysis of musculoskeletal systems, particularly knee mechanics, implant design, and ligament behavior in total knee arthroplasty. He integrates experimental, computational, and clinical approaches to improve surgical techniques and prosthetic design. Key research interests include knee joint loading, ligament elongation patterns, and the influence of implant conformity on post-surgical outcomes. He has contributed to standardized methods for measuring tibiofemoral implant loads and kinematics, earning the European Society of Biomechanics SM Perren Award in 2022. His publications emphasize computational modeling, in vivo testing, and finite element analysis to address challenges in orthopedic engineering. Recent work explores artificial neural networks for real-time knee contact force estimation and the biomechanical implications of surgical procedures like posterior cruciate ligament substitution.
Dr. Liam Mannion is a Senior Lecturer in Therapeutic Radiography and Oncology at City St George’s, University of London, where he leads key modules in radiotherapy techniques, oncology, and radiobiology. He is an HCPC-registered Therapeutic Radiographer with clinical experience in both NHS and private sectors. He also serves as the Practice Education Lead for Therapeutic Radiography and is a Senior Fellow of the Higher Education Academy. PhD, King's College London MSc, London South Bank University PGCert, City, University of London BSc (Hons), University College Dublin His research focuses on optimizing treatments for muscle-invasive bladder cancer, patient-centered care, and radiobiology. He employs methodologies such as discrete choice experiments to understand patient preferences in treatment decisions. His educational interests include gamification, debriefing, and student well-being in radiography training. His recent publications reveal a strong trend in patient-centered oncology research, particularly in bladder cancer decision-making, alongside innovations in radiotherapy education. He frequently collaborates with institutions like King's College London and Guy's and St Thomas' NHS Foundation Trust. Dr. Mannion is actively involved in peer review for the Journal of Radiotherapy in Practice and served as an External Examiner at Cardiff University. He has also held leadership roles such as Joint Programme Director at City, University of London. He has contributed to research on compassion fatigue among students, leadership in radiography during the pandemic, and functional imaging in glioblastoma. His work bridges clinical practice, education, and patient-centered outcomes. Dr. Mannion is affiliated with professional organizations including the Health and Care Professions Council (HCPC) and the Society of Radiographers. He teaches across undergraduate modules in radiotherapy and oncology, with a focus on practical and theoretical integration.
Weiqiang Chen is a Professor of Mechanical and Biomedical Engineering at New York University's Tandon School of Engineering and Director of Research and PhD Programs. He holds a joint appointment at NYU Langone's Perlmutter Cancer Center as a Faculty Member of the Tumor Immunology Research Program. B.S. in Physics (Nanjing University, 2005) M.S. in Electrical Engineering (Shanghai Jiao Tong University, 2008) M.S. in Electrical and Computer Engineering (Purdue University, 2009) Ph.D. in Mechanical Engineering (University of Michigan, 2014) His research focuses on Lab-on-a-Chip , Organ-on-Chip systems, Biomaterials , and Mechanobiology , with applications in cancer biology, stem cell engineering, and immune monitoring. He pioneers microfabrication technologies for real-time observation of cellular interactions, including CAR T-cell immunotherapy efficacy and tumor microenvironment dynamics. Recent grants include NSF funding for leukemia bone marrow niche modeling, NIH Trailblazer Awards for glioblastoma immunotherapy research, and collaborations with the Arthritis Foundation for synovium-on-chip rheumatoid arthritis studies. His work has been supported by over $2M in federal and institutional research funding. National Science Foundation (NSF) grants for leukemia-on-chip and glioblastoma modeling National Institutes of Health (NIH) awards for immunotherapy research American Heart Association fellowships and institutional training programs Chen's scientific awards include the American Heart Association Fellow distinction, multiple Young Investigator Awards from Lab on a Chip and Biomedical Engineering Society, and recognition for his dissertation on nanotopography in stem cell differentiation. He leads the Applied Micro-Bioengineering Laboratory (AMBL) , which develops microphysiological systems for drug testing and personalized medicine. His team has created the first immunocompetent leukemia-on-a-chip for CAR T-cell therapy screening and glioblastoma models that enable patient-specific immunotherapy validation.
Qingguo Li is a Professor and Associate Head at the Department of Mechanical and Materials Engineering , Queen's University , and a member of the Ingenuity Labs Research Institute . He specializes in biomechanical system design, energy harvesting, wearable sensors, gait analysis, and load carriage systems. His research integrates robotics, biomedical engineering, and sensor technology to develop human-centric devices and mobility aids. Current Roles : Professor, Associate Head, Queen's University Research Institute : Ingenuity Labs Research Institute Lab : Bio-Mechatronics and Robotics Laboratory His work focuses on biomechanical energy harvesting , IMU-based motion analysis , and assistive device development . Key applications include stroke rehabilitation, gait monitoring, and wearable power generation systems. Articles span cable-driven robots , smart walkers , and 3D printing mechanisms , emphasizing human-robot interaction and dynamic modeling . The lab explores sensor calibration , adaptive control algorithms , and human movement optimization . Areas of impact include rehabilitation engineering , load carriage stability , wearable sensor accuracy , and assistive robotics . His team develops solutions for gait asymmetry detection , post-stroke mobility , and low-cost energy systems , leveraging machine learning and kinetic modeling .
Anastassios Karistinos, M.D., is an Assistant Professor in the Department of Orthopedic Surgery at Baylor College of Medicine. He holds clinical roles at Ben Taub Hospital, Baylor Clinic, and the Michael E. DeBakey VA Medical Center in Houston, Texas. Dr. Karistinos completed his medical degree (MD) at Aristotle University of Thessaloniki (1993), followed by residency at Louisiana State University Health Sciences Center (2005) and a fellowship in Advanced Orthopaedics and Sports Medicine (2005). His professional interests focus on complex musculoskeletal conditions including multi-ligament knee injuries, meniscal transplantation, cartilage restoration techniques (OATS, ACI), knee osteotomies, shoulder instability, rotator cuff injuries, and shoulder arthroplasty. He emphasizes patient safety and critical evaluation of emerging medical technologies, prioritizing evidence-based treatments. Dr. Karistinos is certified by the American Board of Orthopaedic Surgery in both Orthopaedic Surgery and Orthopaedic Sports Medicine. He is a Fellow of the American Academy of Orthopaedic Surgeons and specializes in sports medicine, arthroscopic surgery, and trauma care. His research integrates anatomical insights with clinical outcomes to improve surgical techniques and patient recovery processes.
Stephen Parada is a Professor at the Medical College of Georgia, with academic appointments in the Department of Orthopedic Surgery. He is actively involved in clinical education and research, contributing significantly to orthopedic surgery, particularly in shoulder and elbow arthroplasty and biomechanics. Research Interests: His work spans orthopedic surgery, biomechanics, surgical outcomes, and the application of artificial intelligence in patient education. He focuses on improving clinical outcomes in total joint replacement, understanding shoulder instability, and evaluating publication trends in orthopedic research. The recent publications indicate a strong trend toward evidence-based orthopedics, with emphasis on predictive modeling of surgical outcomes, implant longevity, and the role of digital tools in patient communication. His research bridges clinical practice with academic scholarship. Scientific Awards: AAOS Kappa Delta Award, AAOS, 2025 Resident Research Award, Georgia Orthopaedic Society, 2022 GME Exemplary Teaching Award, Medical College of Georgia, 2021 GME Exemplary Teaching Award, Medical College of Georgia, 2020 Teaching and Service: Dr. Parada teaches key surgical clerkships and orthopedic externships. He serves on the AAOS Exhibits Committee and holds leadership roles in the Georgia Shoulder & Elbow Society. His professional service includes roles in ASES, AANA, and AAOS annual meetings, reflecting active engagement in national orthopedic communities. Laboratories and Research Teams: He is involved in Orthopaedic Research at the Medical College of Georgia (2023–present), contributing to a collaborative environment focused on advancing musculoskeletal care through innovation and education.
Dr. Timur Alexander Yorgan is a prominent researcher at the Department of Osteology and Biomechanics at University Medical Center Hamburg-Eppendorf (UKE). Holding a Dr. rer. nat. degree, he has established himself as a leading figure in bone biology with over 60 publications spanning from 2013 to 2025. His research is deeply integrated with key institutional research areas including the Hamburg Center of Neuroscience and immunology research networks at UKE. Dr. Yorgan's research focuses on skeletal development, bone remodeling, and genetic bone disorders, with particular emphasis on Wnt signaling pathways and their role in bone homeostasis. His work spans multiple approaches from molecular genetics to translational studies, investigating osteoblast and osteocyte biology, genetic mechanisms underlying disorders like osteogenesis imperfecta, and the effects of various mutations on skeletal integrity. Recent research has expanded into the gut-bone axis, mechanobiology of bone cells, and neuro-immune interactions affecting bone metabolism. Analysis of Dr. Yorgan's publication record reveals a consistent trajectory of high-impact research in bone biology. His work increasingly explores interdisciplinary connections between bone metabolism and other physiological systems, with growing emphasis on translational approaches for therapeutic interventions. The research demonstrates sophisticated use of mouse models and molecular techniques to unravel complex bone disorders and identify potential treatment targets. Dr. Yorgan appears to be actively involved in collaborative research across multiple institutions, as evidenced by his extensive publication record with numerous co-authors from various departments and institutions. His work is frequently published in high-impact journals including Journal of Bone and Mineral Research, Nature Communications, and Bone Research. The Department of Osteology and Biomechanics at UKE, where Dr. Yorgan is based, is part of a vibrant research ecosystem that includes the Hamburg Center of Neuroscience and other key research networks focusing on immunology, oncology, and cardiovascular research. This collaborative environment enables interdisciplinary approaches to understanding skeletal disorders and developing novel therapeutic strategies.
Silvia Arber holds a joint appointment as Full Professor for Neurobiology/Cell Biology at the Biozentrum, University of Basel, and serves as Senior Group Leader at the Friedrich Miescher Institute (FMI) in Basel, Switzerland. Her laboratory investigates the organization, function, and development of neuronal circuits controlling motor behavior, with a particular focus on how these circuits enable precise movement control. Arber obtained her PhD in 1996 from the Friedrich Miescher Institute under Pico Caroni, followed by postdoctoral training with Thomas Jessell at Columbia University (1996-2000), where she studied transcription factors in spinal cord neuronal differentiation. Her educational background includes Biology II studies at the Biozentrum of the University of Basel with graduation in Cell Biology (1987), a diploma thesis at the FMI (1990), and graduate work at the FMI (1992). Her research program centers on elucidating how neuronal circuits orchestrate accurate motor behavior in response to sensory cues and voluntary movement initiation. Using mouse as a model system, her laboratory employs multi-faceted approaches including advanced mouse genetics, viral technologies for transsynaptic circuit tracing, optogenetics and pharmacogenetics for functional manipulation, quantitative behavioral analysis, electrophysiology, and gene expression profiling. Her work has revealed precise synaptic interactions within dedicated motor circuit modules throughout the nervous system and how these impact function, with implications for understanding diseases causing motor deficits and spinal cord injury. Analysis of Arber's publication record shows a consistent focus on motor circuit organization, with particular emphasis on transcriptional control mechanisms, circuit connectivity mapping, and the relationship between developmental processes and functional circuit organization. Her work bridges molecular, cellular, and systems neuroscience, providing fundamental insights into how the nervous system controls movement. The Brain Prize (2022) Elected to the National Academy of Sciences of the United States (2020) Physiological Society Annual Review Prize Lecture (2019) Pradel Research Award (2018) W. Alden Spencer Award (2018) Louis-Jeantet Prize for Medicine (2017) ERC Advanced Grant (2010-2015) EMBO Member (2005) EMBO Young Investigator Award (2001) While specific students are not listed in the provided materials, Arber's laboratory has received significant research funding including an ERC Advanced Grant (2010-2015) and multiple prestigious awards supporting her research program. Her laboratory at the Biozentrum (Room 11.038) collaborates closely with the Friedrich Miescher Institute, where she serves as Senior Group Leader. The research group employs cutting-edge technologies for neural circuit analysis and has contributed fundamental insights into motor circuit organization, with implications for understanding and potentially treating movement disorders and spinal cord injuries.
Amjad Javed is a Professor and Associate Dean at the University of Alabama at Birmingham , with primary appointments in the School of Dentistry - Oral & Maxillofacial Surgery and joint affiliations in Cell, Developmental and Integrative Biology , Otolaryngology , and Biomedical Engineering . His research spans bone biology, cartilage development, and myeloma bone disease. PhD in Physiology (University of the Punjab, 2003) MS in Zoology/Animal Biology (University of the Punjab, 1992) Research Interests focus on transcriptional regulation via RUNX2 and Sp7 in skeletogenesis, vascular calcification mechanisms, epigenetic control of bone formation, and tumor-bone microenvironment interactions in multiple myeloma. Key subfields include endochondral ossification, osteoclast differentiation, and nanomatrix-based tissue engineering. Scientific Contributions include discoveries about RUNX2's role in postnatal bone resorption, λ5 protein's impact on skeletal aging, and heparanase's promotion of myeloma metastasis. His work demonstrates RUNX2's dual function in chondrocyte apoptosis and cartilage degradation. Teaching & Mentorship involves graduate committee service for over 15 students and instruction in courses like Connective Tissue and Bone , Oral & Skeletal Biology , and Journal Clubs . Collaborations span Comprehensive Arthritis, Musculoskeletal, Bone and Autoimmunity Center , Integrative Center for Aging Research , and Biomatrix Eng Regen Med Center .
Mathew Yarossi is an Assistant Professor at Northeastern University with a joint appointment in the College of Engineering (Electrical and Computer Engineering) and Bouvé College of Health Sciences (Physical Therapy, Movement, and Rehabilitation Sciences). He holds a PhD from Rutgers University (2017) and joined Northeastern in 2022. Research Focus: His work bridges movement neuroscience, clinical research, and engineering, with emphasis on AI-driven solutions for rehabilitation. Key areas include physiological signal processing, neuromuscular control, and human-robot interaction. His NSF-funded project on dyadic object handover with robots highlights his interdisciplinary approach. Publications: Recent work explores VR-based interventions, EMG-driven prosthetics, and computational modeling of transcranial stimulation. His 2025 patent on virtual reality experiment design underscores his translational impact. Awards: Holds a patent for VR experiment systems (2025). Advising & Grants: Mentors students in PEAK Experiences programs and collaborates with the U.S. Army on AI applications in combat systems. His lab is part of the Institute for Experiential AI.
Dr. Eric Meyers is an Assistant Professor in the Department of Bioengineering at the Erik Jonsson School of Engineering and Computer Science, University of Texas at Dallas. He holds a Ph.D. in Biomedical Engineering and dual Bachelor's/Master's degrees in Electrical Engineering from the same institution. His research focuses on closed-loop neurotechnology, neuromodulation, and bioelectronic medicine to enhance recovery from nervous system injuries. Key projects include developing wearable EMG sleeves for stroke rehabilitation and closed-loop neuromodulation systems to restore motor function. Education: B.S. (2012), M.S. (2018), Electrical Engineering; Ph.D. (2017), Biomedical Engineering – all from UTD His research interests span machine learning applications in neurorehabilitation, biomarker discovery for neurological conditions, and clinical translation of bioelectronic therapies. Recent work emphasizes wearable devices for real-time motor function assessment and neuromodulation-driven recovery strategies. Publications highlight advancements in EMG-based neural interfaces, closed-loop algorithms for stroke therapy, and innovative FES systems. His lab actively collaborates on projects funded by NIH and industry partnerships, with a focus on translating technologies to clinical settings.