Kevin M. Franks is an Associate Professor of Neurobiology at Duke University, where he investigates how the olfactory system forms neural representations of sensory environments. His work focuses on functional neural circuits in the olfactory bulb and piriform cortex, using techniques like in vivo recordings, optogenetics, and behavioral assays. His research explores Neural circuit dynamics and plasticity Odor coding mechanisms Role of recurrent circuitry Integration of sensory modalities Recent publications highlight his contributions to understanding cortical odor representations, developmental neural connectivity, and cross-modal interactions. Awards include the 2024 Don Tucker Finalist recognition. He teaches advanced neuroscience courses at Duke, including Neurobiology research and concepts in neuronal systems.
Anna Levina is an Assistant Professor for Computational Neuroscience at the University of Tübingen , affiliated with the Department of Computer Science under the Faculty of Science. Her research focuses on the self-organization of neuronal activity, critical dynamics in neural networks, and the excitation/inhibition balance in cortical circuits. Current positions: Assistant Professor (since 2018), Group Leader (2017-2018), Equality Officer (Computer Science) Previous roles: IST Fellow (2015-2017), Associated Researcher (2011-2015), Postdoc/PI (2011-2015), Postdoc (2008-2011) Her research integrates mathematical modeling , statistical physics , and computational neuroscience to study criticality phenomena, neural avalanches, and adaptive network dynamics. Key interests include: Self-organized criticality in neural systems Excitation/Inhibition balance mechanisms Network topology and dynamics Timescale analysis in neural processing Stochastic modeling of neural activity Recent publications reveal trends in understanding critical dynamics across biological and artificial networks, with applications to memory systems, sensorimotor integration, and disease modeling. She has received recognition as an IST Fellow .
Dr. Hillel Adesnik is a Professor in the Department of Neuroscience at the University of California, Berkeley, and a leading researcher in the neural basis of sensory perception. His lab focuses on cortical microcircuits, optogenetics, and neural coding, with emphasis on visual processing and memory formation. Key Research Areas: Cortical Microcircuits Optogenetic Tools Gamma Band Rhythms Neural Coding Mechanisms Dr. Adesnik has pioneered high-speed optical methods like 3D-MAP and 3D-SHOT to manipulate neural activity. His work spans cortical dynamics, synaptic plasticity, and cortical layer interactions, with applications in understanding learning algorithms and sensory inference. Selected Trends from Publications: Recent preprints and papers highlight advancements in cortical VIP neuron function, channelrhodopsin structures, and inter-areal computations. His team utilizes two-photon holography, cryo-EM, and computational modeling to decode perception-related neural codes. Scientific Awards: NIH Director's New Innovator Award (2013) Dr. Adesnik's lab collaborates with institutions like NIH and develops tools for awake animal studies. Funding includes grants from the Beckman Young Investigator Program and NIH.
Istvan Mody is a Professor at the University of California, Los Angeles (UCLA) with appointments in the Department of Neurology and Department of Physiology . His research focuses on synaptic signaling in health and disease, including mechanisms of GABAergic transmission, calcium homeostasis, and their roles in neurological disorders such as epilepsy, Alzheimer's disease, Huntington's disease, stress, alcoholism, and postpartum depression. He utilizes advanced techniques like patch-clamp electrophysiology, neuroanatomical and immunohistochemical methods, and molecular biology in animal models and human brain tissue . Research Interests: Dr. Mody investigates the physiology, pharmacology, and pathology of synaptic transmission and extrasynaptic receptor activation , with a particular emphasis on GABA(A) receptors and their subunit-specific modulation. His work explores how disruptions in excitation-inhibition balance contribute to neurological diseases, including mechanisms of tonic inhibition , calcium signaling , and neurosteroid interactions . He also studies the effects of chronic stress and hormonal fluctuations on neural excitability and behavior. Publications Trends: Recent studies highlight his work on gamma oscillations in Alzheimer's models, microglial dynamics , and rehabilitation strategies for stroke. His lab develops optical tools like dqGEVI for neuronal activity monitoring and investigates human brain organoids to model network dysfunction in epilepsy and intellectual disability. Laboratory Location: 635 Charles Young Dr S, Los Angeles, CA 90095, United States.
Markus Heilig is a Professor of Psychiatry and Head of the Department of Biomedical and Clinical Sciences (BKV) at Linköping University. He serves as Director of the Center for Social and Affective Neuroscience (CSAN), integrating basic and clinical neuroscience to address addictive and affective disorders. His work bridges neuropharmacology, molecular psychiatry, and clinical trials. Linköping University (Current) Center for Social and Affective Neuroscience (CSAN) (Director) Wallenberg Center for Molecular Medicine (Collaborator) His research focuses on alcohol dependence mechanisms, stress-neurotransmitter interactions (e.g., CRF, substance P, endocannabinoids), and personalized medicine approaches. Using animal models and human neuroimaging (fMRI), his lab explores epigenetic changes in frontal lobe and amygdala neurons that drive compulsive alcohol use. Recent publications highlight his work on endocannabinoid modulation for PTSD treatment, neural correlates of reward choices, and pharmacological interventions targeting GABA and opioid receptors. His studies often combine brain imaging, behavioral analysis, and pharmacology. Scientific awards include the 2019 Wallenberg Clinical Scholar grant and 2017 CAN/Nordic Drugs prizes. Heilig's research is supported by Vetenskapsrådet (SEK 57 million center funding) and international donations like the Andrew J. Bock Memorial Fund.
Dr. Rodolfo J. Flores serves as an Assistant Professor in the Department of Psychology within the College of Liberal Arts at the University of Texas at El Paso (UTEP). His primary research investigates neuromodulator function in the prefrontal cortex, with emphasis on acetylcholine and dynorphin systems during motivational conflict, stress responses, and addiction pathways. He employs advanced optogenetic and biosensor technologies to dissect neural circuitry underlying psychiatric conditions. Dr. Flores earned his Ph.D. in Social Cognitive and Neuroscience from UTEP in 2019, followed by postdoctoral training at the National Institute of Mental Health (NIMH). His work bridges molecular neuroscience with behavioral outcomes, focusing on how stress and substance exposure alter prefrontal cortical function. His research portfolio demonstrates consistent high-impact publication in top neuroscience journals including Nature Neuroscience , Neuron , and Psychoneuroendocrinology . Current work examines opioid neuropeptide dynamics, nicotine-alcohol interactions, and sex-specific hormonal influences on addiction behaviors. Methodologically, he specializes in genetically encoded biosensors and circuit-level manipulations to study threat processing and reward pathways. Dr. Flores teaches graduate and undergraduate courses including PSYC 4341 (Motivation & Emotion), thesis/dissertation supervision (PSYC 5395/6395), and research applications courses. His lab actively trains students through undergraduate research (RSRC 4033) and independent study opportunities (PSYC 4352).
Chen Ran, PhD, is an Assistant Professor in the Department of Neuroscience at Scripps Research in San Diego. His laboratory focuses on understanding how the brain processes internal sensory signals from visceral organs, such as hunger, satiety, nausea, and visceral pain. Using advanced techniques like in vivo two-photon calcium imaging, optogenetics, and circuit tracing, his team maps the functional architecture of brainstem circuits responsible for interoceptive processing. Key contributions include the discovery of a 'visceral homunculus' in the brainstem and the development of novel calcium indicators for high-resolution neuronal activity tracking. Education : PhD in Biology, Stanford University (2017) Bachelor of Science in Biology, Peking University (2011) Research Interests : Dr. Ran’s work integrates experimental and analytical approaches to decode how visceral stimuli are transduced into conscious sensations. Current projects investigate the coding logic of mechanical, chemical, and thermal signals from internal organs, with implications for developing therapies for obesity, diabetes, visceral pain, and eating disorders. The lab employs cutting-edge tools to visualize and manipulate neural circuits in awake behaving mice, linking circuit-level activity to physiological states. Awards & Honors : NARSAD Young Investigator Award (2022) NIH K01 Career Development Award (2023) Simons Collaboration on the Global Brain Award (2022) Harvard Brain Science Initiative Award (2021) Grants & Funding : Supported by NIH, Simons Foundation, and private philanthropy, his research bridges basic science and translational medicine. Current grants focus on brainstem circuit mapping and developing therapeutic targets for interoceptive disorders. Labs & Affiliations : Dr. Ran leads an interdisciplinary team at Scripps Research’s Neuroscience Department, collaborating with engineers, geneticists, and clinicians to advance interoceptive neuroscience.
Dr. Teresa Puthussery is an Associate Professor in the School of Optometry & Vision Science at the University of California, Berkeley. Her research focuses on retinal neurobiology and neurophysiology, investigating how visual signals are encoded in healthy retinas and disrupted during degeneration. She uses advanced techniques like patch-clamp electrophysiology, immunohistochemistry, and microscopy to study retinal circuits, neurotransmitter receptors, and ion channels. Dr. Puthussery teaches courses on vision science anatomy, physiology, and problem-based learning, including VISION SCIENCE 206B/C and 260C. Her research explores questions such as how retinal neurons extract motion/spatial details, how photoreceptor mutations cause degeneration, and how inner retinal circuits adapt post-photoreceptor loss. Recent work includes studies on ON-type direction-selective ganglion cells, optogenetic therapy for vision restoration, and calcium dynamics in foveal ganglion cells post-degeneration. She collaborates on projects involving primate and rodent models, contributing to understanding retinal disease mechanisms and therapeutic targets. Dr. Puthussery’s lab (retinalab.berkeley.edu) emphasizes translational research, bridging basic science and clinical applications. Her work has been published in journals like Nature and Cell Reports , with a focus on retinal degeneration, synaptic plasticity, and optogenetic interventions. She actively participates in training future vision scientists through Berkeley’s Optometry program and oversees GSI affairs as a faculty advisor.
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.
Anna Mathia Klawonn is an Associate Professor affiliated with three units at Aarhus University: the Danish Research Institute of Translational Neuroscience (DANDRITE), the Department of Biomedicine, and the Department of Molecular Biology and Genetics - Neurobiology. As a group leader at DANDRITE, she explores neural circuits and immune-to-brain signaling mechanisms regulating affective states through transgenic strategies and neurocircuitry techniques. Neuroscience Neuroimmunology Immune-to-Brain Signaling Affective Disorders Her research focuses on understanding how brain circuits and glial cells (microglia and astrocytes) contribute to affective states in both health and disease. Current projects investigate mechanisms in major depressive disorder and Parkinson's disease, emphasizing prostaglandin signaling, nicotinic receptor function, and striatal neuron modulation. Recent publications highlight her work in molecular neuroscience, neuropharmacology, and behavioral neuroscience. Key themes include cholinergic transmission in motivation, neuroimmune interactions in aversion, and reward/aversion circuitry. Her studies employ advanced neurocircuitry methods and transgenic models. In teaching, Klawonn is course responsible for the 3rd-semester Neuroscience course (10 ECTS) in the medical bachelor program. She actively engages in didactic development, frequently speaking about student motivation, flipped learning, and challenge-based learning. Klawonn leads the Klawonn Group at DANDRITE, with lab and office spaces in the Skou Building (Høegh-Guldbergs Gade 10, Aarhus C). Her work involves collaborations across neuroscience, neuroimmunology, and affective disease research.
Anna G Orr serves as Nan and Stephen Swid Assistant Professor of Frontotemporal Dementia Research and Assistant Professor of Neuroscience at Weill Cornell Medical College's Brain and Mind Research Institute since 2016, leading pioneering research on astrocyte biology in dementia pathogenesis. Her educational background includes: Ph.D. from Emory University (2008) B.S. from Allegheny College (2002) Dr. Orr's research program centers on astrocytic-neuronal interactions , mitochondrial signaling , and neuroimmune mechanisms through three interconnected pathways: neuroimmune , oxidative , and G protein-coupled signaling . Her lab investigates how these mechanisms influence neuroinflammation, protein aggregation, synaptic function, and behavioral outcomes in dementia, with parallel therapeutic discovery efforts targeting astrocytic pathways for novel dementia treatments. Analysis of her 15 most recent publications (2025-2010) reveals escalating focus on astrocyte-specific dementia mechanisms , particularly mitochondrial ROS signaling, sex-dimorphic memory effects, TDP-43 pathology interactions with antiviral pathways, and lipid dysregulation in neurodegeneration. Her work consistently bridges molecular discoveries with therapeutic applications, demonstrating increasing NIH funding support for translational approaches. Key scientific recognitions include: NIH K99/R00 Pathway to Independence Award (2017) Leon Levy Fellowship in Neuroscience (2021) Nan and Stephen Swid Endowed Professorship (2021) Outstanding Neuroscience Teaching Award (2021) Dr. Orr actively mentors eight trainees across career stages, including Ph.D. candidates Evelyn Hardin and Constance Zhou, while securing major NIH grants as Principal Investigator for projects like Uncovering Dementia-Related Lipid Alterations in Astrocytes (NIA 2024-2026) and Mitochondrial Complex III Free Radicals in Dementia Pathology (NIA 2020-2026), alongside collaborative awards from the Alzheimer's Association. Her Orr Lab maintains a dual focus on mechanistic astrocyte biology and therapeutic translation, with current projects examining astrocytic TDP-43 dysregulation, mitochondrial complex III signaling, and sex-specific memory mechanisms using advanced in vivo techniques and disease models.
Andrew J. Todd is a Professor and Honorary Fellow in the School of Psychology & Neuroscience at the University of Glasgow. His research focuses on neurochemistry and synaptic connections in the mammalian spinal cord, particularly the organization of neuronal circuits underlying pain and itch perception. He employs techniques like immunocytochemistry, confocal microscopy, and electron microscopy. Collaborations include researchers from institutions such as UCL, Saga University, and the University of Pittsburgh. His work is funded by the Wellcome Trust and BBSRC. Roles: Professor, Honorary Fellow Affiliations: School of Psychology & Neuroscience, University of Glasgow Research Interests Dr. Todd investigates spinal dorsal horn circuits, including projection neurons, interneurons, and synaptic plasticity. Key topics include: Neurochemical characterization of spinal neurons Role of neuropeptides like substance P and gastrin-releasing peptide Mechanisms of neuropathic pain and spinal circuit adaptations Functional roles of specific neuron populations in laminae I-III Articles Overview Recent work includes studies on spinal projection neuron markers (e.g., Tacr1, Gpr83), synaptic circuits involving GRP-expressing neurons, and interneuron subtypes' roles in pain/itch. Notable findings include the absence of neuronal loss in neuropathic pain models and the identification of novel spinal circuits. Grants & Funding Funded by the Wellcome Trust and BBSRC . Collaborations span international institutions, emphasizing spinal neurobiology and sensory processing.
Kristen Pleil is an Associate Professor at Weill Cornell Medicine in the Graduate School of Medical Sciences, affiliated with the Department of Pharmacology and Neuroscience. She serves as Co-director of the NIGMS-sponsored Training in Pharmacological Sciences (TIPS) predoctoral T32 program. Academic Appointments: Assistant Professor (2016), Associate Professor (2021) Education: BA in Psychology (Emory University, 2005), PhD in Neuroscience (Duke University, 2010), Postdoc at University of North Carolina School of Medicine Research Focus: The Pleil lab investigates how sex and stress hormones regulate alcohol/substance use, stress responsivity, and affective behavior through neuropeptidergic brain circuits and hormone-neuropeptide signaling. Key projects include estrogen's role in alcohol drinking and anxiety, opioid receptor signaling in reward/aversion learning, and sex-dependent thalamic control of stress responses. The lab uses in vivo and ex vivo mouse models to study synaptic/epigenetic plasticity across developmental stages. Publications Trends: Her work spans molecular pharmacology, neurophysiology, and addiction research with a focus on sex differences in neuropsychiatric diseases. Articles cover topics like estrogen signaling in binge drinking, opioid-context memory, thalamic circuits in stress response, and optogenetic tools for receptor imaging. Scientific Awards: President’s Young Investigator Award, ISBRA (2013) Elizabeth Young New Investigator Award, OSSD (2015) K99/R00 Pathway to Independence Award, NIAAA (2015) Kellen Foundation Junior Faculty Fellowship (2016) NARSAD Young Investigator Award (2017) Early Career Investigator Award, NIDA-NIAAA (2017) Training and Collaborations: As Co-director of the TIPS T32 program, she mentors graduate students in pharmacological sciences. Her collaborations include researchers at UNC, Duke, and Weill Cornell, with grants from NIAAA, NIMH, and NIGMS.
Sunny K. Boyd is a Professor in the Department of Biological Sciences at the University of Notre Dame, where she has served since 1987. She also held significant administrative roles, including Associate Vice President for Research (2009–2013) and Director of Graduate Studies (2008–2013). Her research integrates neuroscience, endocrinology, and computational modeling to understand the chemical regulation of animal behavior. Her educational background includes: A.B. in Biology, Princeton University (1981) M.S. in Behavioral Endocrinology, Oregon State University (1984) Ph.D. in Neuroendocrinology, Oregon State University (1987) Dr. Boyd’s research focuses on the interactions of neuropeptides, neurotransmitters, and neurosteroids in controlling social behaviors, particularly in amphibians. Her lab employs a multi-level approach—spanning molecular, cellular, organismal, and computational levels—to investigate mechanisms from synapses to social interactions. Key interests include GABAergic signaling, neurosteroid modulation, and the role of vasotocin in vocal and reproductive behaviors. Her recent publications reflect a strong trend in integrating computational models with empirical data, especially using agent-based simulations to explore mate choice, aggression, and spatial behavior. These studies bridge neuroscience and behavioral ecology, offering insights into both animal and potential human social behaviors. She has received notable scientific recognition, including: Joyce Award for Excellence in Undergraduate Teaching (2007, 1999) Kaneb Faculty Fellow (2003–2004) Editorial roles for General and Comparative Endocrinology and Hormones and Behavior Service on NSF, NIH, and American Heart Association review panels Dr. Boyd is actively involved in mentoring and training students at all levels. She has advised multiple graduate students and currently leads a vibrant research team. Her lab is supported by grants from the National Science Foundation (NSF), National Institutes of Health (NIH), and U.S. Forest Service. She emphasizes interdisciplinary collaboration, notably with computer scientists on modeling projects. She also teaches courses in neuroscience, physiology, and scientific writing, with a focus on training future health professionals. The Boyd Lab operates at the intersection of experimental and synthetic approaches, combining wet-lab neuroscience with computational modeling. Current projects include: Peptide control of vocalization in amphibians GABA and neurosteroid interactions in neural circuits Agent-based modeling of mate choice and social behavior The lab fosters collaboration across biology, psychology, engineering, and computer science, maintaining an interdisciplinary and innovative research environment.
Megan Carey is a Researcher at the Champalimaud Foundation , leading the Carey Lab . Her research focuses on understanding how cellular and synaptic mechanisms in the cerebellum influence motor behavior and learning. Key projects include studies on cerebellar neural circuits, locomotor adaptation, and sensory-motor integration. Her recent work highlights cross-species comparisons (mice and flies), zebrafish visual system neurobiology, and pharmacological modulation of motor learning. The lab employs genetic perturbations, optogenetics, and behavioral analysis to dissect neural circuit dynamics. Notable collaborators include senior scientists, postdoctoral researchers, and PhD students. The lab's publications span high-impact journals like J. Neurosci. , eLife , and Neuron , with funding from HHMI and NIH.