Anna Salvati is an Associate Professor specializing in nanomedicine and drug delivery systems. Her research focuses on nanoparticle-cell interactions, biomolecular corona formation, and the physicochemical properties governing nanomaterial behavior in biological environments. Key research themes include cellular uptake mechanisms, toxicity of nanomaterials, and nanoparticle targeting strategies. Recent publications highlight her work on nanoparticle stability, membrane interactions, and environmental impacts of microplastics. Her studies integrate multiomics approaches, advanced imaging, and interlaboratory validation to address challenges in nanomedicine design and safety testing. Current projects explore the role of high-density lipoproteins in nanoparticle functionality and the modulation of drug release kinetics through material engineering.
Yu He is an Assistant Professor of Applied Physics and Physics at Yale University, affiliated with the Department of Physics. His research focuses on condensed matter physics and experimental techniques such as angle-resolved photoemission spectroscopy (ARPES) and x-ray scattering to study correlated electronic systems and quantum materials. Prior to Yale, he completed a Miller Research Fellowship at UC Berkeley (2019) after earning his Ph.D. in Applied Physics from Stanford University. Key research areas include metal-to-insulator transitions, superconductivity, 2D magnetism, and solid-state quantum simulation. He has contributed to advancements in material characterization techniques, including high-resolution ARPES using tabletop lasers. His work integrates crystal synthesis, electric transport measurements, and surface decoration to explore material properties. Education: B.S. in Physics from University of Science and Technology of China (USTC); M.S. in Electrical Engineering and Ph.D. in Applied Physics from Stanford University. Research Interests: Experimental condensed matter physics, quantum materials, superconductivity, and light-matter interaction studies. His current projects aim to dissect microscopic degrees of freedom (electronic, lattice, spin) in novel materials using cutting-edge spectroscopic methods. The lab employs complementary techniques like electric transport measurements and crystal growth to characterize material properties comprehensively. Awards: Miller Research Fellow, UC Berkeley (2019) Advising & Grants: No student advisees listed. Research supported by Yale University and prior fellowships. Labs & Teams: Leads a research group at Yale focused on experimental condensed matter physics, collaborating on projects involving advanced material characterization and quantum material discovery.
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
Dr. Xi Chen is a Professor in the Department of Chemistry at the University of California, Davis, where he has been a faculty member since 2003. His research spans carbohydrate chemistry, glycobiology, and cancer biology, with notable contributions to chemoenzymatic methods for glycoconjugate synthesis. Dr. Chen's work focuses on developing hybrid chemical-enzymatic approaches to synthesize complex carbohydrates and glycoconjugates, characterizing glycosyltransferase mechanisms, and designing enzyme mutants for improved catalysis. He also investigates carbohydrate-based diagnostics and therapeutics, particularly in cancer and inflammatory diseases. His recent publications highlight interdisciplinary studies linking carbohydrate metabolism to p53 tumor suppression pathways and RNA-binding protein regulation in cancer. Awards include AAAS Fellow (2015), ACS Isbell Award (2012), and NSF CAREER Award (2006). He earned his Ph.D. at Wayne State University (2000) and B.S. at Xiamen University (1994). Scientific Awards American Association for the Advancement of Science Fellow (2015) Dean's Team Award for Excellence (2013) Carbohydrate Research Award for Creativity (2013) ACS CARB Horace S. Isbell Award (2012)
Herman Sintim is the Grace-Rupley Professor of Chemical Biology in the Department of Chemistry and Biochemistry at the University of Notre Dame, where he also serves as the Associate Director of the Harper Cancer Research Institute. He has previously held faculty positions at Purdue University and the University of Maryland at College Park, progressing from Assistant to Full Professor. His research is highly interdisciplinary, bridging organic chemistry, chemical biology, and drug discovery. Research Interests: Dr. Sintim's research focuses on understanding and modulating cyclic dinucleotide signaling pathways in both bacteria and mammalian immune systems. His lab explores the roles of molecules like c-di-GMP, c-di-AMP, and cGAMP in biofilm formation, virulence, and immune activation, particularly via the STING pathway. A major thrust is the development of small molecule probes and therapeutics targeting these pathways for use in cancer immunotherapy and as novel antibiotics. Additionally, his group pioneers the synthesis of new kinase inhibitors using multi-component reactions to combat drug resistance in cancer, targeting kinases such as FLT3, CDKs, and RET. The recent publications of the Sintim group reflect a strong trend in designing novel chemotypes for both STING modulation (agonists and antagonists) and kinase inhibition, with an emphasis on oral bioavailability and efficacy in animal models. These works span chemical synthesis, biochemical evaluation, and translational applications in oncology and immunology. Scientific Awards: Lafayette Lions Club Cancer Research Award (2022) Sigma Xi Distinguished Lecturer (2015) Camille Dreyfus Teacher-Scholar Award (2011) Allen Angerio Award for Excellence in Faculty Mentorship (2010) Kavli Fellow (2009) NSF CAREER Award (2008) Roche First Prize, Switzerland (2002) First Innocentive Awardee (2001) Pfizer UK PhD Prize (2001) ORS Fellowship, University of Oxford (2000) Pathfinder Scholarship, University College London (1996) Advising and Grants: While specific students are not listed, Dr. Sintim has a well-established record of mentoring, recognized by awards such as the Allen Angerio Award. He has secured major funding through grants like the NSF CAREER Award and has advanced drug discovery projects to the level of co-founding KinaRx LLC, indicating strong translational grant and entrepreneurial success. His leadership as Associate Director of a major cancer research institute further underscores his role in guiding research teams and collaborative science. Labs and Teams: The Sintim Research Group at Notre Dame operates at the intersection of synthetic organic chemistry and biological signaling, with active projects in cancer, inflammation, and antibiotic discovery. The lab employs integrated computational and experimental workflows and collaborates widely, as seen in multi-institutional publications involving researchers in pharmacology, oncology, and immunology.
Hong Han is an Assistant Professor in the Department of Biochemistry & Biomedical Sciences within McMaster University's Faculty of Health Sciences and a member of the Centre for Discovery in Cancer Research (CDCR). She holds a Canada Research Chair and leads the Han Lab, which focuses on cancer biology, RNA regulation, and innovative high-throughput technologies for therapeutic discovery. Dr. Han earned her Ph.D. from the University of Toronto (2010-2016) and has established herself as a leading researcher in glioblastoma and alternative splicing regulation. Her interdisciplinary research integrates cancer biology, RNA science, and multilayer gene regulation to uncover mechanisms underlying cancer progression and treatment resistance. Her laboratory pioneers integrated technological platforms for large-scale genetic/drug screening and ultra-high-throughput single-cell profiling. The research focuses on three main areas: alternative splicing regulation in cancer (particularly glioblastoma and prostate cancer), multilayer mechanisms of glioblastoma heterogeneity and microenvironment evolution, and multiplexed screening approaches for therapeutic discovery in treatment-resistant cancers. Analysis of Dr. Han's recent publications reveals a strong emphasis on single-cell technologies to characterize glioblastoma heterogeneity, minimal residual disease states, and tumor-immune interactions. Her work increasingly bridges basic RNA biology with translational applications, particularly in developing novel therapeutic strategies targeting splicing networks and immune evasion mechanisms. Canada Research Chair Dr. Han teaches Advanced Techniques in the Biomedical Sciences (BIOCHEM 734). Her research program is supported by multiple funding sources, as evidenced by her extensive publication record in high-impact journals including Nature, Cell, Molecular Cell, and Nature Communications. She employs a comprehensive approach combining in vitro, in vivo, and patient cohort studies with cutting-edge genomic technologies. The Han Lab has developed innovative multiplexed screening platforms that enable simultaneous interrogation of thousands of conditions, ranging from CAR-T cells to small molecule therapeutics. This approach accelerates the discovery of novel cancer targets and therapeutic strategies for treatment-resistant cancers.
Kristina Schoonjans is an Associate Professor at EPFL’s School of Life Sciences, where she leads the Laboratory of Metabolic Signaling (UPSCHOONJANS). Her research focuses on the molecular mechanisms of bile acid signaling, nutrient sensing, and intermediary metabolism, particularly in the context of metabolic disorders such as obesity, fatty liver disease, and cancer. She investigates how the liver-gut-brain axis integrates metabolic signals through nuclear receptors and mitochondrial dynamics. Her research interests include: Bile acid signaling and its role as a hormonal regulator Nutrient and metabolite sensing in energy homeostasis Intermediary metabolism and metabolic disorders Role of nuclear receptors (e.g., TGR5, LRH-1) in liver, gut, and adipose tissue Mitochondrial dynamics and fission in metabolic regulation Organoid models for studying liver and intestinal metabolism Systems genetics using BXD mouse populations The most recent articles highlight a strong focus on bile acid signaling, particularly through TGR5 and LRH-1, in regulating metabolic health. Themes include the conversion of white fat to beige fat (beiging), hepatic tumorigenesis, mitochondrial fission, and the use of organoid and genetically engineered mouse models. There is a consistent emphasis on translational applications for obesity, fatty liver disease, and cancer. Scientific honors include: Windaus Prize from the Dr. Falk Foundation (2010, shared with Johan Auwerx) for the discovery of the signaling/endocrine function of bile acids Prof. Schoonjans actively supervises PhD students and has advised numerous doctoral candidates who have since completed their theses. Her lab is supported by multiple grants from Swiss and international funding agencies, including the Swiss National Science Foundation, EPFL, CONACYT, and the Foundation for Health and Education. She teaches in several doctoral programs at EPFL, including Life Sciences Engineering, and contributes to education through the SSV and EDBB/EDCB/EDMS-ENS programs. The Schoonjans Lab brings together scientists, doctoral assistants, and technicians working on projects related to metabolic signaling. The team uses advanced techniques such as genetically modified mouse models, organoid cultures, and multi-omics (metabolomics, proteomics, transcriptomics) to study the liver-gut and brain-liver axes. The lab has a strong track record of high-impact publications and collaborations with institutions worldwide.
Gustavo Nader, Ph.D., is a Professor of Kinesiology at The Pennsylvania State University's College of Health and Human Development, where he holds the Dorothy Foehr Huck and J. Loyd Huck Endowed Chair in Molecular, Cellular and Integrative Physiology. His research laboratory at 101 Noll Lab focuses on molecular mechanisms of skeletal muscle adaptation, employing human, animal, and cellular models to investigate ribosome biogenesis, transcriptional regulation, and muscle growth control in contexts ranging from exercise hypertrophy to cancer cachexia. Dr. Nader's research examines fundamental processes including: Ribosome biogenesis and its role in muscle growth regulation Epigenetic control of RNA Polymerase I activity Molecular pathways in mechanical overload-induced hypertrophy Tumor-induced muscle wasting mechanisms Biomimicry approaches inspired by hibernator physiology His work spans exercise physiology, cancer biology, and environmental stress responses. Analysis of his 15 most recent publications (2015-2025) reveals predominant themes in muscle hypertrophy mechanisms, cancer cachexia pathophysiology, ribosomal function analysis, and environmental stress impacts on muscle. His work consistently integrates molecular techniques with physiological models across species. Notable scientific recognitions include: Dorothy Foehr Huck and J. Loyd Huck Chair appointment (2024) Huck Institutes Leadership Fellowship (2025-2026) Dr. Nader leads an active research team investigating muscle plasticity, with current projects funded through the Huck Institutes of the Life Sciences. He collaborates extensively through Penn State's Integrative and Biomedical Physiology graduate program and Center for Cellular Dynamics.
Sharon Rozovsky is a Professor in the Department of Chemistry and Biochemistry at the University of Delaware's College of Arts & Sciences, where she leads research on oxidative stress response mechanisms and protein quality control pathways. Her work bridges biochemistry, chemical biology, and structural biology with direct implications for understanding neurodegenerative diseases and viral pathogenesis. Her academic foundation includes a B.S. from Tel Aviv University (1994) and a Ph.D. from Columbia University (2000), establishing her expertise in protein dynamics and redox biochemistry. These credentials underpin her innovative approaches to studying cellular stress responses. Rozovsky's research program centers on selenoproteins—proteins containing the rare amino acid selenocysteine—and their critical roles in endoplasmic reticulum (ER) stress resolution. She investigates how membrane-bound selenoproteins like Selenoprotein S and K regulate the ER-associated degradation (ERAD) pathway, with recent work revealing their surprising autoproteolytic activity and involvement in SARS-CoV-2 replication. Her lab pioneers chemical tools including expressed protein ligation and advanced 77Se NMR spectroscopy to characterize these systems at molecular resolution. Analysis of her 2021-2025 publications shows dominant themes in selenoprotein structure-function relationships, ER stress mechanisms, and viral interactions, alongside methodological innovations in cryo-EM grid technology and NMR. This body of work demonstrates consistent focus on redox biochemistry with expanding applications in virology and structural biology. No major scientific awards or fellowships were explicitly documented in the available materials, though her research impact is evident through high-impact publications and methodological contributions. She directs the active Rozovsky Research Group, mentoring graduate students and postdoctoral researchers in biochemical and biophysical techniques. Her laboratory operations are supported by competitive funding including an NSF CAREER award (2011) focused on selenoprotein reactivity, reflecting sustained recognition of her innovative research program.
Eric W. Schmidt is a Distinguished Professor of Medicinal Chemistry at the University of Utah, with adjunct appointments in Biological Sciences and Chemistry. His research focuses on natural products chemistry, biosynthesis, synthetic biology, and pharmaceutical applications of marine animal microbiomes. University of California, San Diego (BS, PhD) Research areas include: Biosynthesis in animals and their microbiomes Synthetic biology approaches to chemical engineering Drug design from marine natural products Metagenomic analysis of symbiotic relationships Neuroactive compound discovery Antibiotic development against resistant pathogens His lab has pioneered methods for: Biosynthetic gene cluster identification Heterologous expression in E. coli Enzymatic modification of peptides Chemical analysis of marine invertebrates Recent publications highlight discoveries in: Marine animal chemical defense mechanisms Evolution of biosynthetic pathways Antibiotic resistance profiling Ionic channel-targeting compounds Peptide macrocyclization techniques Lipid-polyketide biosynthesis continuum Email: ews1@utah.edu Honors include: Distinguished Professor recognition
Bérénice Benayoun, PhD is an Associate Professor at the USC Leonard Davis School of Gerontology , with secondary appointments in the Department of Molecular and Computational Biology (USC Dornsife College of Letters, Arts and Sciences) and the USC Norris Comprehensive Cancer Center . Her research bridges aging biology , epigenetics , and sex differences using vertebrate models like the African turquoise killifish and machine learning . Education : École Normale Supérieure (BSc, MSc), Paris Diderot-Paris 7 University (PhD in Genetics and Cell Biology) Her lab investigates epigenome and transcriptome remodeling during aging , focusing on how biological sex influences these processes. Key themes include inflamm-aging , genomic instability , and immune senescence , with applications in neurodegeneration and reproductive longevity . Recent publications highlight sex-dimorphic gene regulation in neutrophils , macrophages , and brain aging , alongside novel insights into transposable elements and MOTS-c mitochondrial signaling . She pioneers the use of single-cell transcriptomics and multi-omics in aging research. Scientific awards include: 2024 Vincent Cristofalo Rising Star in Aging Research Award 2023 AGHE Rising Star Early Career Faculty Award 2023 USC Mentoring Award 2023 Rising Star in Reproductive Biology 2021 Nathan Shock New Investigator Award 2019 Rosalind Franklin Young Investigator Award Her editorial roles include Geroscience , Translational Medicine of Aging , and eLife . She mentors students across PhD programs in Biology of Aging , Neuroscience , and Molecular Medicine , as well as Master's and undergraduate trainees.
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).
Michael Krisinger is an Associate Professor of Teaching in the Department of Biochemistry & Molecular Biology at the University of British Columbia . He began his teaching career in 2010, transitioning to full-time in 2013. He lectures Biochemistry 202 (Introductory Medical Biochemistry) and Biochemistry 303 (Molecular Biochemistry) while serving as a tutor in the Faculty of Medicine's Case Based Learning program. Krisinger co-developed the department's two-course summer program for international students and mentors postdoctoral fellows in teaching. He also manages the department's CANVAS digital learning platform. Krisinger's research focuses on the molecular mechanisms of coagulation and complement system regulation , particularly their evolutionary relationship and functional interplay. His work has explored thrombin's role in complement activation, polyphosphate-mediated complement suppression, and nanoparticle surface interactions with proteolytic cascades. He previously co-supervised graduate students at UBC's Centre for Blood Research before prioritizing education. Publications highlight his expertise in protease-substrate dynamics , lipoprotein-phospholipid interactions , and hemostasis-immunity crosstalk . He remains engaged in public science through community environmental initiatives and local outreach activities.
Panagiota (Nota) Klentrou is a Distinguished Professor and Dean of the Faculty of Applied Health Sciences at Brock University, specializing in Kinesiology. Her research focuses on exercise physiology , bone development , and the health implications of sport training in youth , particularly examining cellular mechanisms linking exercise, diet, and lifelong bone health. Supported by NSERC, CIHR, Osteoporosis Canada, and the International Gymnastics Federation Education: PhD, FCSEP (Fellow of the Canadian Society of Exercise Physiology) Her work spans bone physiology , inflammatory responses to exercise , and sclerostin-mediated tissue cross-talk , with recent studies exploring the impact of obesogenic diets , acute exercise , and nutritional interventions on skeletal growth and adaptation. Key findings include the role of sprint interval training in modulating adipose tissue Wnt signaling and the effects of dairy consumption on bone turnover markers. Scientific Awards & Distinctions Fellow, Canadian Society for Exercise Physiology (CSEP), 2020 Marilyn Rose Graduate Leadership Award, 2017 TVO's Best Lecturer nominee, 2010 Chancellor’s Chair for Research Excellence, Brock University, 2009 Award for Distinguished Research & Creative Activity, Brock University, 2006 Dr. Klentrou actively supervises graduate and undergraduate students in projects related to bone physiology , inflammation , and exercise adaptation , and collaborates with organizations like Osteoporosis Canada and the International Gymnastics Federation.
John F. Brooks II is an Assistant Professor in the Department of Molecular Biology at Princeton University, where he leads the Brooks Lab. His research focuses on the circadian regulation of host-microbe dynamics, particularly how the circadian clock interfaces with the immune system to maintain gut microbiome harmony. Education: Ph.D., Northwestern University Feinberg School of Medicine, Walter S. and Lucienne Driskill Graduate Training Program in Life Sciences B.S., University of Michigan, Microbiology Research Interests: Dr. Brooks investigates how the circadian clock controls the rhythmic secretion of antimicrobial proteins (AMPs) in the small intestine and how persistent infections override these rhythms to sustain AMP production. His work integrates cell and molecular immunology, mouse genetics, and genomics to uncover mechanisms of circadian-immune crosstalk. This research has broad implications for disorders linked to circadian disruption, including obesity, diabetes, and chronic gut inflammation. Recent Publication Trends: His recent publications emphasize the coordination between microbial signals and host circadian rhythms in regulating innate immunity. Key themes include diurnal patterns in immune function, microbiota-driven immune modulation, and the physiological consequences of circadian misalignment in infection and disease. Scientific Awards: Pew Scholar in the Biomedical Sciences (2024) Advising and Grants: Dr. Brooks mentors graduate students and postdoctoral researchers, including Talia Akoh-Arrey and Urbashi Basu. His lab has received significant funding, notably the Pew Biomedical Scholars Award, supporting innovative research at the intersection of immunology, microbiology, and chronobiology. Labs and Teams: The Brooks Lab at Princeton employs interdisciplinary approaches to study host-microbe interactions. The team collaborates with experts in immunology and circadian biology, including Lora Hooper and Joseph Takahashi, to advance understanding of temporal regulation in immunity.