Dennis L Parker · Biomedical Engineering
Dr. Dennis L Parker's lab focuses on advancing magnetic resonance imaging (MRI) techniques for the evaluation and management of carotid artery disease. The lab collaborates with multiple centers to develop user-friendly, non-contrast MRI methods that can provide critical information about atherosclerosis without the need for complex procedures. The ultimate goal is to improve clinical practices and patient outcomes through innovative imaging and analysis techniques.
Ivana Parker · Biomedical Engineering
Dr. Ivana Parker's lab at the University of Florida focuses on understanding how bacterial vaginosis (BV) affects immune cells, specifically macrophages, and increases the risk of HIV in women. Her research combines advanced techniques like multi-omics and machine learning to analyze vaginal microbiomes and their influence on inflammation. This innovative work aims to reveal new insights into HIV prevention and women's health.
Evan M. Gordon · Biomedical Engineering
Dr. Evan M. Gordon's lab at Washington University focuses on understanding Parkinson's Disease (PD) by studying a newly identified brain circuit known as the Somato-Cognitive Action Network (SCAN). This research aims to determine how SCAN is connected to critical subcortical structures involved in PD, which may lead to new treatment targets for the disease. By employing advanced noninvasive imaging techniques, the lab seeks to redefine our understanding of PD, potentially improving patient evaluation and treatment through pinpointing specific brain regions affected by the disorder.
Meghan C Campbell · Biomedical Engineering
Dr. Meghan C. Campbell's lab at Washington University focuses on understanding Parkinson's disease through advanced brain imaging techniques. The lab aims to identify individual differences in brain network organization that can serve as biomarkers for the disease. By linking these biomarkers to cognitive and psychiatric symptoms, the research seeks to pave the way for personalized treatments that address the complex manifestations of Parkinson's disease.
Jay L. Alberts · Biomedical Engineering
Dr. Jay L. Alberts and his research team study how different forms of aerobic exercise can help people with Parkinson's disease (PD). They investigate the effects of high-intensity exercise, particularly in community settings, and how genetics influence the effectiveness of these interventions. They also explore the neural mechanisms behind improvements from exercise, especially for advanced Parkinson's patients using deep brain stimulation. Their work aims to create personalized exercise recommendations to slow disease progression and improve the quality of life for those living with PD.
Allison Payne · Biomedical Engineering
Allison Payne's research focuses on improving breast cancer treatments through non-invasive techniques. Her lab is exploring magnetic resonance guided focused ultrasound (MRgFUS) as a way to treat localized breast tumors while minimizing damage to surrounding tissues. By developing advanced imaging biomarkers and deep learning models, the lab aims to provide real-time assessments of tissue viability during treatment, ultimately enhancing treatment effectiveness and reducing overtreatment of patients.
Siqi Li · Biomedical Engineering
Dr. Siqi Li's lab focuses on improving imaging techniques for diagnosing and monitoring pediatric cancers using advanced PET technology. They aim to develop methods that allow for quicker, accurate quantification of disease progression, making imaging safer and more effective for children. By utilizing innovative imaging techniques, the lab strives to enhance clinical outcomes for young cancer patients.
Christopher L Brace · Biomedical Engineering
Dr. Christopher Brace's lab at the University of Wisconsin-Madison focuses on innovative treatments for pediatric limb length discrepancies. The lab is developing a non-invasive method using microwave energy to disrupt growth plates, offering a safer, quicker recovery compared to traditional surgical methods. Their research aims to improve the quality of life for children who suffer from these conditions by reducing recovery time and medical complications.
Erik Shapiro · Biomedical Engineering
Dr. Erik Shapiro's lab focuses on enhancing the healing of peripheral nerve injuries by using advanced 3D printed tissue engineered scaffolds. These scaffolds incorporate special materials that allow for monitoring via standard imaging techniques, helping doctors ensure that the devices are functioning as intended after implantation. The research aims to translate these innovative devices from the lab to clinical practice to improve patient recovery outcomes.
Eric Jon Perreault · Biomedical Engineering
Dr. Eric Jon Perreault's lab focuses on improving rehabilitation techniques by developing noninvasive methods to assess muscle function and structure. They study how muscle stiffness and force can impact movement, especially in patients with disorders like stroke or cerebral palsy. By utilizing advanced ultrasound techniques, the lab aims to provide accurate measurements that can enhance recovery protocols for individuals with musculoskeletal injuries.
Chi Liu · Biomedical Engineering
Dr. Chi Liu's lab at Yale University is focused on enhancing the accuracy and reliability of Positron Emission Tomography (PET) imaging through innovative deep learning techniques. By addressing the issue of high image noise in PET scans, the lab aims to develop software that transforms standard clinical images into high-quality outputs, ultimately improving clinical decision-making and patient outcomes. The lab collaborates with top academic centers and industry leaders to ensure that their advancements can be effectively integrated into clinical practice.
Dana C Peters · Biomedical Engineering
Dr. Dana C. Peters' lab focuses on improving cardiac MRI techniques to better diagnose heart failure, particularly heart failure with preserved ejection fraction (HFpEF), which is often challenging to identify with traditional methods. The lab is developing innovative MRI methods to measure diastolic function and the pressures in the heart that contribute to symptoms like unexplained breathlessness. Their research integrates advanced imaging techniques and deep learning to enhance the accuracy and reliability of cardiac evaluation, especially before and after exercise.
Edward Phelps · Biomedical Engineering
Dr. Edward Phelps' lab focuses on understanding the mechanisms behind type 1 diabetes (T1D) by studying how metabolism and immune system interactions contribute to the impairment of insulin-producing beta cells. The research uses advanced techniques on human pancreas slices to map changes in glucose metabolism and evaluate how the immune environment affects cell function. This work aims to uncover insights that could lead to new therapeutic approaches for T1D and pre-diabetes.
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.
Gianmarco Pinton · Biomedical Engineering
Dr. Gianmarco Pinton's lab at the University of North Carolina Chapel Hill focuses on developing innovative ultrasound technologies for brain imaging and therapy. By using volumetric ultrasound, the lab aims to enable real-time monitoring and targeted neuromodulation of brain circuits in awake animals. This research has the potential to improve the understanding of brain function and lead to advanced treatments for neurological disorders.
Helen M Piwnica-Worms · Biomedical Engineering
Dr. Helen M. Piwnica-Worms' lab focuses on understanding how fasting before radiation therapy can protect healthy cells from damage. By studying the effects of fasting on small intestinal cells, the lab aims to find ways to enhance the treatment of cancer while reducing adverse effects in patients. The research has implications for improving the safety of radiation therapies by leveraging dietary interventions.
Martin G Pomper · Biomedical Engineering
Dr. Martin G Pomper's lab specializes in developing innovative therapies and imaging techniques for prostate cancer, which is a significant health concern for men. They are focused on creating multimodal theranostic agents that combine diagnosis and treatment into one platform, particularly using dendrimers to target prostate-specific membrane antigen (PSMA). Their research aims to improve patient outcomes by enhancing the accuracy of cancer detection and monitoring treatment efficacy through advanced imaging methods.
Austin Pantel · Biomedical Engineering
Dr. Austin Pantel's lab focuses on advancing cancer imaging techniques using innovative PET radiotracers. They develop methods to conduct dual-tracer imaging in a single session, which allows for more efficient and accurate cancer diagnosis and monitoring. This work aims to improve precision medicine in oncology and better inform treatment decisions for patients.
Chuan Zhou · Biomedical Engineering
Dr. Chuan Zhou's research focuses on improving the treatment outcomes for patients with multiple myeloma, a type of blood cancer. His lab is developing a decision support system that combines MRI imaging with clinical data to enhance the prediction of how patients will respond to treatment. By using advanced artificial intelligence methods, the goal is to provide personalized treatment recommendations that can lead to better patient care and outcomes, ultimately working towards precision medicine in oncology.
Richard J. Price · Biomedical Engineering
Richard J. Price's research lab at the University of Virginia focuses on innovative therapies for neurological diseases like Alzheimer's disease and cerebral cavernous malformations (CCMs). The lab uses advanced techniques such as magnetic resonance imaging (MRI) and focused ultrasound (FUS) to enhance drug delivery and manipulate microglial responses in the brain. Their ultimate goal is to improve cognitive function and minimize the impact of these diseases through targeted, non-invasive treatments.