Dr. Alexandra Piotrowski-Daspit is an Assistant Professor in the Biomedical Engineering department and Internal Medicine – Pulmonary and Critical Care Medicine at the University of Michigan Medical School. She is a chemical/biological engineer with expertise in polymeric biomaterials for gene therapies, focusing on in vivo behavior of delivery vehicles and strategies to optimize biodistribution. Education: Ph.D. in Chemical/Biological Engineering Her research bridges polymer chemistry, gene delivery, and translational medicine, emphasizing in utero interventions and pulmonary targeting. Key areas include nanoparticle surface engineering, macrophage decoys, and computational pharmacokinetic modeling. Recent publications highlight systemic in utero gene editing for cystic fibrosis, poly(amine-co-ester) nanoparticle tunability, and mucosal vaccination platforms. She also explores miRNA therapies for congenital diaphragmatic hernia and triplex-forming PNAs for CFTR correction. PhRMA Foundation Awardee (2024) Her work involves interdisciplinary collaborations, DEI initiatives, and translational projects from postdoc foundations in W. Mark Saltzman’s lab. Labs like Saltzman and SCGE teams support her research.
Professor Moritz Rossner serves as Head of the Department of Molecular and Behavioral Neurobiology at the Department of Psychiatry and Psychotherapy, Faculty of Medicine, Ludwig-Maximilians-Universität München (LMU). His research integrates molecular and behavioral approaches to understand the neurobiological underpinnings of psychiatric disorders, particularly schizophrenia and bipolar disorder. Rossner's research interests focus on molecular neurobiology and behavioral analysis using mouse models. His laboratory employs advanced techniques including mouse genetics , behavioral phenotyping , biosensors , next-generation sequencing , and transcriptomics to investigate psychiatric risk genes and pathways. His work bridges cellular and molecular mechanisms with behavioral outcomes, particularly in schizophrenia and bipolar disorder research. Analysis of Rossner's 15 most recent publications (2025) reveals a strong focus on precision psychiatry , neuroimaging biomarkers , and genetic mechanisms underlying psychiatric disorders. His research increasingly incorporates multimodal approaches combining neuroimaging, genomics, and clinical phenotyping to develop biologically informed diagnostic and treatment frameworks. Key themes include blood-brain barrier dysfunction in schizophrenia, inflammatory contributions to symptom severity, and pathway-specific polygenic scores for treatment prediction. Rossner leads the Molecular & Behavioural Neurobiology working group at LMU's Department of Psychiatry and Psychotherapy, which includes specialized units like the Mouse Behavioral Unit. His research program appears well-funded through multiple collaborative projects focused on understanding the molecular basis of psychiatric disorders and developing novel therapeutic approaches.
Dr. Juan Pablo Lopez is an Assistant Professor at the Department of Neuroscience, Karolinska Institutet (Sweden) , leading research on stress-related psychiatric disorders. He earned undergraduate degrees in Psychology and Biology (Florida International University), a PhD in Psychiatry (McGill University), and postdoctoral training at the Max Planck Institute of Psychiatry in Munich. His work combines single-cell transcriptomics behavioral mouse models automated behavioral tracking viral-mediated gene manipulations to study stress susceptibility, resilience, and antidepressant mechanisms. Research interests include: Neurobiology of stress and trauma Molecular mechanisms in psychiatric disorders Developmental neuroendocrinology Sex differences in stress response Neural circuits of depression His recent work analyzes how stress exposure during development influences lifelong mental health and treatment outcomes. Scientific accolades include 2023 ECNP Rising Star Award ERC Starting Grant (2023) Swedish Research Council Starting Grant (VR, MH-12) StratNeuro Startup Funding He leads the Lopez Lab, which collaborates with international groups through the NeSTED network (Neuropharmacology and Stress/Trauma Exposure during Development).
Vladimir Itskov is an Associate Professor in the Department of Mathematics at The Pennsylvania State University, affiliated with the Eberly College of Science. His research focuses on theoretical neuroscience, applied algebraic topology, and neural networks. He holds a Ph.D. in Mathematics from the University of Minnesota (2002) and a B.S. from Moscow Institute of Electronics and Mathematics (1995). His career includes roles at the University of Nebraska-Lincoln (2009–2014), Columbia University’s Center for Theoretical Neuroscience (2006–2009), and Rutgers University (2004–2006). Research interests include understanding neural coding, network dynamics, and topological methods in neuroscience. Notable work involves applying algebraic topology to analyze neural correlations and developing models for neural network behavior. He has received grants from NIH, NSF, and DARPA, focusing on projects like olfactory coding and neural network dynamics. His lab, the Mathematical Neuroscience Laboratory, develops computational tools and collaborates on interdisciplinary projects. Software packages are hosted on GitHub (nebneuron repository). Publications span journals such as PNAS, SIAM, and Neural Computation, addressing topics from clique topology to competitive network dynamics. His theoretical contributions emphasize bridging data-driven neuroscience with mathematical rigor.
Catherine Mooney is a Professor in the School of Computer Science at University College Dublin (UCD), leading the Life Science Data Analytics Group (LiSDA). Her research focuses on applying machine learning to healthcare challenges, including biomarker development, clinical decision support systems, and addressing ethical and technical barriers in healthcare AI. Education: BSc in [field unspecified] from Trinity College Dublin PhD in Computer Science from UCD Prof Dip University Teaching & Learning from UCD Research Interests: Machine Learning applications in healthcare Biomarker discovery for neurological and metabolic conditions Explainable AI for clinical decision support Promoting diversity and inclusion in STEM education Her work bridges computational methods with medical challenges, emphasizing ethical AI and translational research. Notable Awards: Best Paper Award in Applied Biosciences (2023) UCD Long-Service Award (2022) Best Poster Award at ITiCSE ’20 (2020) Her research has led to impactful tools like LiSDA’s clinical decision support systems for epilepsy and pregnancy care. She also advocates for gender diversity in computing, serving in leadership roles like Vice Principal for EDI in UCD’s College of Science (2022–2024).
Dr. Pulin Gong is an Associate Professor in the School of Physics at the University of Sydney. His research focuses on understanding the self-organizing mechanisms of neural circuits' spatiotemporal dynamics and their computational principles. He investigates distributed dynamic computation via propagating neural waves, irregular neural activity variability, and coherent spatiotemporal patterns in large-scale neural data. His work combines experimental and computational approaches to unravel neural coding principles. Research interests include: Distributed dynamic computation (e.g., visual feature integration) Irregular neural dynamics and membrane potential fluctuations Coherent spatiotemporal wave patterns (e.g., spiral waves) Recent projects involve analyzing cortical wave patterns in mice and primates, fractional neural sampling, and Lévy walk dynamics in neural systems. Collaborators include institutions like Fudan University and Kyoto University. Current research student: Andrew LY, working on cortico-cortical loop dynamics and AI applications.
Kai Mesa is an Assistant Professor in the Department of Molecular Biology at Princeton University, where he leads the Laboratory of Macrophage Dynamics. His research integrates immunology, stem cell biology, and advanced imaging to study macrophage behavior in tissue regeneration and aging, primarily using mouse skin models. Education: Ph.D., Yale University B.S., University of California, Berkeley Dr. Mesa's research focuses on understanding how macrophages establish niche-specific identities, influence wound healing outcomes, and contribute to age-related tissue dysfunction. By combining multiphoton intravital microscopy with spatial transcriptomics, his lab investigates the molecular and cellular dynamics governing immune cell integration, tissue regeneration, and aging. His work has significant implications for regenerative medicine and immunosenescence. The recent publications highlight a consistent trend in studying cellular dynamics in vivo, particularly in skin and immune systems. The research spans stem cell regulation, macrophage function, and immune-microenvironment interactions, with increasing focus on aging and spatial organization. Key methodologies include intravital imaging, lineage tracing, and single-cell spatial analysis. Scientific Awards: Charles H. Revson Senior Fellowship in Biomedical Science (2021) Jane Coffin Childs Postdoctoral Fellowship (2017) Carolyn Slayman Prize in Genetics, Yale University (2017) ASCB Beckman Coulter Distinguished Graduate Student Achievement Prize (2015) National Science Foundation Graduate Research Fellowship (2014) Dr. Mesa has been supported by competitive fellowships during his graduate and postdoctoral training. He mentors research in a dynamic lab environment and is actively recruiting new members. His advising focuses on interdisciplinary approaches combining imaging, molecular biology, and systems-level analysis of tissue-immune interactions. The Mesa Lab, also known as the Laboratory of Macrophage Dynamics, utilizes cutting-edge techniques such as multiphoton intravital microscopy and spatial transcriptomics to study macrophage behavior in living tissues. The lab explores fundamental questions about immune cell niche establishment, wound-induced immune dynamics, and age-related immune dysfunction in mammalian skin.
Antonia Krefeld-Schwalb is an Assistant Professor at the Department of Marketing Management, Rotterdam School of Management, Erasmus University. With a background in cognitive science and management, her research bridges computational modeling, eye-tracking, and consumer decision-making to address sustainability challenges. Current Affiliation: Assistant Professor, Rotterdam School of Management Research Focus: Sustainable consumer behavior, decision-making processes, and methodological improvements Key Collaborations: Columbia University, University of Geneva, Erasmus Sustainability Program Her cognitive science training informs methodological approaches like mouse/eye tracking and computational modeling applied to marketing problems. She investigates structural parameter interdependencies, external validity threats in surveys, and climate risk communication effectiveness. Recent research trends include climate adaptation strategies, sustainable behavior interventions, and meta-scientific analyses of statistical practices in consumer research. She advocates for heterogeneous population sampling and preregistration to enhance validity. Scientific Honors: Veni Grant (NWO) She develops targeted sustainability interventions through collaborations like the Erasmus Sustainability Program. Her work appears in journals such as PNAS, Journal of Marketing Research, and Psychological Review.
Trond Vidar Hansen is a Professor at the Department of Pharmacy, University of Oslo , and leads the LIPCHEM research group . He collaborates with institutions including the University of Bergen and Vestlandets Innovasjonsselskap through the VITADEL project, which recently received NOK 5,000,000 in verification support from the Research Council of Norway. His research focuses on the synthesis and biological evaluation of specialized pro-resolving lipid mediators derived from omega-3 fatty acids, with applications in inflammation resolution, neuroinflammation, and drug development. University : University of Oslo Department : Department of Pharmacy Research Group : LIPCHEM Collaborations : University of Bergen, Vestlandets Innovasjonsselskap Research Interests : H Hansen's work centers on the organic synthesis of bioactive lipid derivatives, particularly pro-resolving mediators from omega-3 polyunsaturated fatty acids. His team investigates their roles in inflammatory disease models , neuroinflammation , and PPAR receptor activation , aiming to develop therapeutic agents for conditions like chronic pain, diabetes, and neurodegenerative disorders. The research integrates stereoselective chemistry , biochemical profiling , and pharmacological evaluation to validate these mediators' clinical potential. Recent Awards : 2025: NOK 2,000,000 verification support from Research Council of Norway 2025: Co-leader of NOK 5,000,000 VITADEL project Publications : His articles (2015–2024) reveal a focus on stereoselective synthesis of resolvins, protectins, and maresins, with applications in anti-inflammatory and neuroprotective therapies . Key subfields include omega-3 metabolite profiling , PPAR agonist design , and biosynthetic pathway elucidation , often utilizing human cell models and mouse disease models . Collaborative projects emphasize commercialization of academic research and translational medicine .
Dr. Craig R. Forest is a Professor at the Georgia Institute of Technology's Woodruff School of Mechanical Engineering, specializing in bioMEMS, neuroengineering, and high-throughput instrumentation. He leads the Precision Biosystems Laboratory, focusing on developing robotic tools for neuroscience and genomics. His research bridges mechanical engineering with biological systems, creating innovations like the PatcherBot for automated electrophysiology. Forest earned his Ph.D. (2007) and M.S. (2003) from MIT and B.S. (2001) from Georgia Tech. He has been recognized with awards including the 2013 Georgia Tech Class of 1940 W. Roane Beard Outstanding Teacher Award and Engineer of the Year (2013). His work emphasizes interdisciplinary collaboration, particularly through initiatives like CREATE-X and the Invention Studio, fostering student entrepreneurship and maker culture. Key contributions include ultra-high-throughput genomics tools, microfluidic systems, and acoustic reporter genes for medical imaging. Forest’s lab explores emerging fields like intracellular robotics in neuroscience and molecular communication networks, with applications in drug discovery and personalized medicine. Scientific awards highlight his impact in education and engineering innovation. His grants and collaborations span academic and industrial partnerships, advancing both theoretical and applied research in bioengineering and nanotechnology.
Dr. Barbara L. Hempstead is a Professor of Neuroscience and Medicine at Weill Cornell Medical College, where she has held positions since 2001 and 2002 respectively. Her research focuses on neurotrophin signaling mechanisms, particularly the roles of BDNF and its receptors in neuroinflammation, synaptic plasticity, and neurodegenerative diseases. She has made significant contributions to understanding proBDNF/proNGF signaling pathways in neuronal apoptosis and vascular biology. Education: M.D., Ph.D., Washington University School of Medicine (1982) B.A., Tufts University (1976) Dr. Hempstead's work bridges molecular neuroscience and cardiovascular biology, with a particular interest in receptor stoichiometry (p75NTR, TrkB), neurotrophin-induced synaptic remodeling, and therapeutic applications of neurotrophin modulators in Huntington's disease and post-seizure neuronal injury. Her lab investigates how genetic variants like BDNF Val66Met influence anxiety-related behaviors, social memory, and neurodegenerative disease progression through altered neurotrophin trafficking and signaling. Her recent publications highlight neuroinflammatory mechanisms (2023), immune-neurotrophin interactions (2022), and molecular pathways involving BDNF prodomain structure (2020) and SorCS2-mediated receptor trafficking (2017-2020). While no scientific awards are explicitly mentioned in the scraped text, her funded research (National Institute on Aging, NIMH) demonstrates sustained recognition of her work in neurotrophin biology. Dr. Hempstead's lab develops in vitro and in vivo models to study neurotrophin-receptor dynamics, including 3D culture systems for angiogenesis research and transgenic mouse models for Huntington's disease. Her interdisciplinary approach combines molecular neurobiology with vascular physiology to uncover novel therapeutic targets for neurological and cardiovascular conditions.
Kuo-Fen Lee, PhD is a Professor at the Salk Institute for Biological Studies, holding the prestigious Helen McLoraine Chair of Molecular Neurobiology. He leads the Clayton Foundation Laboratories for Peptide Biology, where his research focuses on nerve regeneration, spinal cord injury, and molecular mechanisms underlying neural development and neurodegenerative diseases. His work bridges basic neuroscience with potential therapeutic applications for conditions like ALS, paralysis, and Alzheimer's disease. Dr. Lee received his educational training from multiple prestigious institutions: a degree in Plant Pathology from National Taiwan University; an MS in Cancer Enzymology and Cell Differentiation from National Yang-Ming Medical College, Taiwan; a PhD in Endocrinology from Baylor College of Medicine, Houston; and completed his postdoctoral training at the Whitehead Institute for Biomedical Research. His primary research interests center on understanding why humans cannot regenerate damaged nerves while many other animals can. Dr. Lee has made significant discoveries regarding the p45 protein, which promotes nerve regrowth in mice but is absent in humans (who instead have p75, which inhibits nerve growth). His laboratory also studies neuregulin signaling, neuromuscular synapse formation, and the role of various proteins like nestin in neural development and maintenance. His work often employs mouse models to investigate spinal cord injury, pain pathways, and neurodegenerative conditions. Analysis of Dr. Lee's recent publications reveals a consistent focus on molecular neurobiology with particular emphasis on neural signaling pathways, synaptic maintenance, and nerve regeneration mechanisms. His research spans from basic molecular mechanisms to potential therapeutic applications, with increasing attention to pain pathways, Alzheimer's disease models, and the intersection of neuroscience with immunology and metabolism in recent years. As holder of the Helen McLoraine Chair of Molecular Neurobiology, Dr. Lee has received significant institutional recognition for his contributions to neuroscience. While specific awards aren't detailed in the provided text, his sustained funding and leadership position indicate substantial peer recognition in his field. Dr. Lee's research program involves extensive collaboration with other neuroscience laboratories, as evidenced by his numerous co-authored publications across various neuroscience subdisciplines. His work has been consistently funded, allowing for the maintenance of an active research laboratory focused on nerve regeneration and molecular neurobiology. The Clayton Foundation Laboratories for Peptide Biology serves as the primary research environment for Dr. Lee's team, where they investigate molecular mechanisms of nerve development, regeneration, and degeneration using advanced genetic, molecular, and cellular approaches. The laboratory maintains active research programs in multiple areas of neural signaling and development.
Joe Paton is a Professor and Principal Investigator at the Champalimaud Neuroscience Programme, Champalimaud Foundation in Lisbon, Portugal. He leads the Paton Lab which focuses on understanding how animals determine which environmental cues are predictive of behaviorally relevant events, known as the credit assignment problem. His research combines behavioral experiments with neurophysiological recordings in rodents to investigate neural mechanisms of time perception and decision making. Dr. Paton's research interests center on interval timing, temporal processing in the brain, and the neural basis of learning. His work particularly examines how the striatum and dopamine systems contribute to time perception and how animals solve the credit assignment problem through statistical inference in the time domain. His lab employs advanced techniques including optogenetics, neural recordings, and computational modeling to address these questions. Analysis of Dr. Paton's recent publications reveals a strong focus on striatal function in timing processes, with particular attention to how neural populations encode temporal information. His work bridges behavioral neuroscience with computational approaches, demonstrating how timing mechanisms influence decision making and learning processes. The research spans multiple levels from cellular mechanisms to behavioral outputs. Midbrain dopamine neurons control judgment of time (2016) Striatal dynamics explain duration judgments (2015) A Scalable Population Code for Time in the Striatum (2015) The Neural Basis of Timing: Distributed Mechanisms for Diverse Functions (2018) Dr. Paton has mentored numerous PhD students and postdoctoral researchers through the INDP (International Neuroscience Doctoral Program) and supervises a diverse team including research technicians, postdocs, and students. His lab has contributed significantly to understanding the neural basis of time perception and its role in learning and decision making. The Paton Lab also develops experimental tools and frameworks like Bonsai for behavioral neuroscience research.
Noelia Fernández Castillo is a Lecturer at the University of Barcelona's Faculty of Biology, affiliated with the Department of Genetics, Microbiology, and Statistics. She leads the Human Molecular Genetics research group and holds roles in academia spanning education and research. Education: Bachelor's/Master's in Genetics (University of Barcelona, 2004) Experimental Biology Master's (2006) Teaching Certification (2005) PhD in Biology (2011) Research focuses on genetic mechanisms underlying psychiatric disorders, addiction, and neurodevelopmental conditions. Key areas include epigenetic influences on ADHD, genetic contributions to aggression, and molecular pathways in substance use disorders. Uses animal models (zebrafish, mice) and human genomic data to explore these topics. Notable projects include studying nutrition's impact on impulsive behaviors (Eat2beNICE project, 2017-2022) and investigating shared genetic susceptibility between addictions and aggression. Current work emphasizes genetic pleiotropy in ADHD and psychiatric comorbidity. Has led/co-led grants from the European Union, Spanish Ministry of Health, and Ministry of Science. Active in collaborative research with institutions across Europe and North America.
Brandon Weissbourd is an Assistant Professor in the Biology department at the Massachusetts Institute of Technology (MIT) and holds a joint appointment as an Investigator at the Picower Institute for Learning and Memory. He joined MIT in 2023 after completing a postdoctoral fellowship in the lab of David Anderson at the California Institute of Technology (Caltech). Prior to that, he earned his PhD in Biology from Stanford University in 2016 under the mentorship of Liqun Luo, and a BA in Human Evolutionary Biology from Harvard University in 2009. His research interests encompass systems neuroscience, evolutionary biology, and molecular biology. He uses jellyfish models, such as Clytia hemisphaerica, to study the evolution and functional mechanisms of nervous systems. His work combines computational techniques like single-cell RNA-seq and advanced microscopy with traditional genetic and anatomical approaches to dissect neural circuits and their roles in behaviors like feeding and social interaction. Additionally, he has explored serotonin and noradrenaline systems in mammals, focusing on their heterogeneity and functional connectivity. Recent publications emphasize the utility of non-traditional model organisms for evolutionary studies and underscore his expertise in computational methods for neurobiological analysis. Earlier work includes groundbreaking studies on the dorsal raphe serotonin system and basal forebrain circuits governing sleep-wake cycles. No scientific awards or honors have been explicitly mentioned in the provided text. Weissbourd’s academic trajectory reflects a strong emphasis on interdisciplinary research, merging evolutionary, molecular, and systems-level perspectives to understand neural systems across species. His advising record is not detailed here, though he has been affiliated with prestigious research labs during his training. Current affiliations include the MIT Biology department and the Picower Institute, where he likely contributes to collaborative projects in systems and evolutionary neuroscience. Weissbourd’s work is grounded in experimental models such as Clytia medusa and mouse brain studies, enabling him to investigate both ancient nervous system architectures and modern mammalian neural pathways. His lab’s focus on functional genomics and circuit mapping positions him at the forefront of studies on neural diversity and evolutionary innovation.