Nadine Mugisha
Permanent URI for this collection
Browse
Browsing Nadine Mugisha by Author "Nagham Ramadan"
Now showing 1 - 2 of 2
Results Per Page
Sort Options
- Some of the metrics are blocked by yourconsent settings
Publication Physical activity intervention for the prevention of neurological diseases(Wiley, 2023-08) ;Burhan Kantawala ;Nagham Ramadan ;Youmna Hassan ;Violette Fawaz ;Nadine Mugisha ;Abubakar Nazir ;Magda WojtaraOlivier UwishemaThe brain is a vital organ responsible for motor and sensory functions as well as complex processes like perception, learning, and emotions. Maintaining brain health is crucial, and it can be achieved through the increasing physical activity, preventing metabolic syndrome, preserving mental health, and improving sleep quality. Physical activity encompasses a wide range of exercises, from walking to intense sports, which contribute to cerebral blood flow, a healthy sympathetic system, and cellular brain regeneration. Neglecting physical activity can lead to various neurological diseases, affecting around one billion people worldwide. The abandonment of prevention at different levels worsens the situation, including negligence of key factors, lack of preventive programs, and inadequate health care systems.1 This correspondence focuses on the role of physical activity interventions in preventing neurological diseases. - Some of the metrics are blocked by yourconsent settings
Publication Revolutionizing neurotherapeutics: blood-brain barrier-on-a-chip technologies for precise drug delivery(Ovid Technologies (Wolters Kluwer Health), 2024-03-04) ;Burhan Kantawala ;Sanobar Shariff ;Nagham Ramadan ;Violette Fawaz ;Youmna Hassan ;Nadine Mugisha ;Konstantin Yenkoyan ;Abubakar NazirOlivier UwishemaIntroduction: The blood-brain barrier (BBB) is a critical neurovascular unit regulating substances' passage from the bloodstream to the brain. Its selective permeability poses significant challenges in drug delivery for neurological disorders. Conventional methods often fail due to the BBB's complex structure. Aim: The study aims to shed light on their pivotal role in revolutionizing neurotherapeutics and explores the transformative potential of BBB-on-a-Chip technologies in drug delivery research to comprehensively review BBB-on-a-chip technologies, focusing on their design, and substantiate advantages over traditional models. Methods: A detailed analysis of existing literature and experimental data pertaining to BBB-on-a-Chip technologies was conducted. Various models, their physiological relevance, and innovative design considerations were examined through databases like Scopus, EbscoHost, PubMed Central, and Medline. Case studies demonstrating enhanced drug transport through BBB-on-a-Chip models were also reviewed, highlighting their potential impact on neurological disorders. Results: BBB-on-a-Chip models offer a revolutionary approach, accurately replicating BBB properties. These microphysiological systems enable high-throughput screening, real-time monitoring of drug transport, and precise localization of drugs. Case studies demonstrate their efficacy in enhancing drug penetration, offering potential therapies for diseases like Parkinson's and Alzheimer's. Conclusion: BBB-on-a-Chip models represent a transformative milestone in drug delivery research. Their ability to replicate BBB complexities, offer real-time monitoring, and enhance drug transport holds immense promise for neurological disorders. Continuous research and development are imperative to unlock BBB-on-a-Chip models' full potential, ushering in a new era of targeted, efficient, and safer drug therapies for challenging neurological conditions.