Adam S. Charles · Biomedical Engineering
Dr. Adam S. Charles's lab focuses on advancing brain imaging technologies to study neural function in real time. By developing new optical imaging methods, the lab aims to capture detailed brain activity at high speeds across large areas. This research can help uncover complex brain dynamics and improve our understanding of various neurological disorders.
Dara L Kraitchman · Biomedical Engineering
Dr. Dara Kraitchman's lab focuses on developing innovative treatments for obesity and osteosarcoma using cutting-edge imaging and interventional techniques. Their research includes exploring minimally invasive methods like bariatric arterial embolization and targeted alpha-emitter therapy to improve patient outcomes. The lab uses large animal models to better mimic human conditions, aiming to create safer and more effective treatment options for these serious health issues.
Reza Shadmehr · Biomedical Engineering
Dr. Reza Shadmehr's lab at Johns Hopkins University investigates how the cerebellum helps control movement. They study neurons called Purkinje cells and how they communicate and coordinate to regulate precise motor actions. By using advanced recording techniques, the lab aims to unravel the neural mechanisms behind movement disorders, such as tremors and dysmetria, which can occur due to cerebellar dysfunction.
Hanzhang Lu · Biomedical Engineering
The research lab led by Hanzhang Lu at Johns Hopkins University focuses on understanding the vascular contributions to cognitive impairment and dementia, particularly small-vessel-related conditions. They work on developing and validating biomarkers that can help in the diagnosis and treatment of various types of dementia, including Alzheimer's disease. Their pioneering work includes using advanced MRI techniques to measure brain physiology, aiming to improve patient care through better diagnostic tools.
Zhiliang Wei · Biomedical Engineering
Dr. Zhiliang Wei's lab at Johns Hopkins University focuses on understanding how reduced blood flow in the brain, known as hypoperfusion, affects Alzheimer's disease and related dementias. By using advanced MRI techniques and mouse models, the lab aims to explore how blood flow interacts with brain metabolism and cognitive functions. This research is crucial for identifying new biomarkers and treatments for dementia, enhancing the understanding of the disease mechanisms.
Kathleen E Cullen · Biomedical Engineering
Dr. Kathleen E. Cullen's lab at Johns Hopkins University focuses on understanding how the brain processes balance and motion through the vestibular system, which is crucial for maintaining stability and clear vision. The lab's research aims to uncover the mechanisms by which the cerebellum helps the brain differentiate between self-generated and external motion effects. Additionally, they are working on developing innovative treatments like vestibular prostheses to assist individuals who have lost their balance sensations due to disease or aging.
Yong Du · Biomedical Engineering
Dr. Yong Du's lab at Johns Hopkins University focuses on developing advanced imaging systems for radiopharmaceutical therapy, a cutting-edge treatment for cancer. They are working to create tools that allow researchers to observe and understand how these therapies target cancer cells at a microscale level, significantly improving the efficacy and safety of treatments. The lab's projects aim to better visualise the distribution and effect of targeted radiation therapies in small animal models and potentially enhance clinical application in humans.
Richard Anthony Edward Edden · Biomedical Engineering
Dr. Richard Edden's lab focuses on using advanced Magnetic Resonance Spectroscopy (MRS) techniques to study brain chemistry throughout different stages of human development, particularly in childhood. The lab develops innovative methods to measure essential neurochemicals non-invasively, which can help investigate brain development and disorders. Their work is closely connected with the Healthy Brain and Child Development Study, aiming to enhance our understanding of neurodevelopmental trajectories and challenges.
Timothy D Harris · Biomedical Engineering
Dr. Timothy D. Harris's lab at Johns Hopkins University focuses on developing advanced techniques for brain-wide electrophysiology in freely moving rodents. The lab is pioneering robotic-assisted surgeries for implanting multiple probes, improving data acquisition methods, and creating automated data analysis pipelines. This research aims to enhance our understanding of how different brain regions work together during behaviors like navigation.
Ana Ponce Kiess · Biomedical Engineering
Dr. Ana Ponce Kiess leads a research lab that focuses on improving cancer therapies through advanced radiation techniques. The lab aims to develop methods for dosimetry which can more precisely measure radiation doses delivered during alpha-particle emitter radiopharmaceutical therapy. This research is particularly aimed at treating metastatic cancer while minimizing harmful side effects. By enhancing treatment planning, Dr. Kiess's lab seeks to improve survival rates for patients with difficult-to-treat cancers.
Deok-Ho Kim · Biomedical Engineering
Dr. Deok-Ho Kim's lab at Johns Hopkins University focuses on developing innovative in vitro models to study complex diseases such as Parkinson's and cardiac conditions. They utilize advanced microphysiological systems to replicate human tissue environments and investigate how disease mechanisms affect neural and cardiac function. The aim is to improve understanding of disease pathways and evaluate potential therapeutic strategies using patient-specific cells.
Xingde Li · Biomedical Engineering
Dr. Xingde Li's research focuses on developing advanced imaging technologies to study how brain networks operate in real-time within freely-moving rodents. His lab is working on a new type of optical imaging system that allows scientists to visualize brain activity in multiple regions at once without restricting the animal's movements. By using this cutting-edge technology, they aim to gain insights into neural connectivity and behavior, which can help us understand how different parts of the brain communicate during tasks such as social interactions.
Reza Kalhor · Biomedical Engineering
Professor Reza Kalhor's research lab focuses on understanding how genetic changes affect brain development and lead to conditions like autism. By using advanced genomic techniques, they aim to create detailed maps of how brain cells develop from their early stages. This knowledge could help uncover the origins of developmental disorders and improve public health outcomes.
Philipp Oberdoerffer · Biomedical Engineering
Dr. Philipp Oberdoerffer's lab at Johns Hopkins University focuses on understanding how epigenetic mechanisms influence DNA repair processes, particularly in the context of cancer. The team investigates how specific protein variants, especially a histone called macroH2A1, affect the repair of single-stranded DNA lesions that can lead to mutations and cancer. This research aims to improve our understanding of cancer vulnerabilities and potentially enhance treatment strategies.
Georg Oeltzschner · Biomedical Engineering
Dr. Georg Oeltzschner's lab at Johns Hopkins focuses on improving the accuracy of non-invasive brain measurements using magnetic resonance spectroscopy (MRS). The team develops cutting-edge statistical models to analyze biochemical data from the brain, particularly in the context of cancer research. Their goal is to ensure that these methods can reliably capture the complexity of biological data to aid in diagnosing and monitoring treatment responses in diseases affect the brain.
Katsuyuki Taguchi · Biomedical Engineering
Dr. Katsuyuki Taguchi's lab focuses on advancing x-ray computed tomography (CT) technology by developing innovative photon counting detectors (PCDs). They are particularly interested in improving real-time brain perfusion imaging for stroke patients, enhancing diagnostic precision and treatment outcomes. By integrating novel detector technologies and algorithms, the lab aims to significantly reduce costs and improve performance in medical imaging.
Sangeeta Ray · Biomedical Engineering
Dr. Sangeeta Ray's lab focuses on cancer therapies, particularly using targeted radiopharmaceuticals to improve treatment outcomes for prostate and renal cancers. By studying how glutamine metabolism influences cancer cell survival and response to radiation, the lab aims to develop innovative therapies that could enhance the effectiveness of existing treatments. Their work is crucial in understanding how to overcome resistance to radiation therapy in these prevalent cancers.
Steven L. Salzberg · Biomedical Engineering
Dr. Steven Salzberg's lab at Johns Hopkins University focuses on developing advanced computational methods to analyze and interpret genomic data. By creating new tools and databases, the lab aims to enhance our understanding of human and other genomes, improving gene discovery and genome annotation processes. This research is essential for addressing genetic diseases and expanding the knowledge of biological diversity.
Joseph Webster Stayman · Biomedical Engineering
Dr. Joseph Stayman's lab focuses on improving the accuracy and standardization of radiomics, which are models that help in diagnosing diseases like interstitial lung disease using medical imaging. By developing a mathematical framework, the lab seeks to reduce errors associated with different imaging protocols and devices, ultimately enhancing the reliability of imaging biomarkers. This research is crucial for leveraging large patient image databases for better disease classification and patient outcomes.
Shanshan Jiang · Biomedical Engineering
Dr. Shanshan Jiang's lab at Johns Hopkins University focuses on improving the diagnosis and treatment monitoring of glioblastoma, a highly aggressive brain tumor. The research combines innovative liquid biopsy techniques, analyzing circulating tumor DNA, with advanced MRI imaging to provide real-time insights into how well patients are responding to treatment. This work aims to develop non-invasive methods that could spare many patients from unnecessary surgeries and lead to more personalized treatment strategies.