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Molecular imaging of diabetes and diabetic complications: Beyond pancreatic β-cell targeting
Jichun Yang1, Long Jiang Zhang2, Fan Wang3
1Department of Physiology and Pathophysiology, School of Basic Medical Sciences Peking University Health Science Center, Key Laboratory of Cardiovascular Science of the Ministry of Education, Center for Non-coding RNA Medicine, Beijing 100191, China.
Abstract:
Diabetes is a chronic non-communicable disease affecting over 400 million people worldwide. Diabetic patients are at a high risk of various complications, such as cardiovascular, renal, and other diseases. The pathogenesis of diabetes (both type 1 and type 2 diabetes) is associated with a functional impairment of pancreatic β-cells. Consequently, most efforts to manage and prevent diabetes have focused on preserving β-cells and their function. Advances in imaging techniques, such as magnetic resonance imaging, magnetic resonance spectroscopy, positron emission tomography, and single-photon-emission computed tomography, have enabled noninvasive and quantitative detection and characterization of the population and function of β-cells in vivo. These advantages aid in defining and monitoring the progress of diabetes and determining the efficacy of anti-diabetic therapies. Beyond β-cell targeting, molecular imaging of biomarkers associated with the development of diabetes, e.g., lymphocyte infiltration, insulitis, and metabolic changes, may also be a promising strategy for early detection of diabetes, monitoring its progression, and occurrence of complications, as well as facilitating exploration of new therapeutic interventions. Moreover, molecular imaging of glucose uptake, production and excretion in specified tissues is critical for understanding the pathogenesis of diabetes. In the current review, we summarize and discuss recent advances in noninvasive imaging technologies for imaging of biomarkers beyond β-cells for early diagnosis of diabetes, investigation of glucose metabolism, and precise diagnosis and monitoring of diabetic complications for better management of diabetic patients.
Insights
Advanced imaging techniques offer new ways to detect and manage diabetes by visualizing pancreatic beta-cells and related biomarkers. This approach aids in early diagnosis, monitoring disease progression, and assessing treatment effectiveness for better patient outcomes.
Area of Science:
- Medical Imaging
- Endocrinology
- Metabolic Diseases
Background:
- Diabetes mellitus affects over 400 million globally, leading to severe complications.
- Pancreatic beta-cell dysfunction is central to diabetes pathogenesis.
- Current management focuses on preserving beta-cell function.
Purpose of the Study:
- To review recent advances in noninvasive imaging technologies for diabetes.
- To explore molecular imaging beyond beta-cells for diagnosis and monitoring.
- To highlight imaging's role in understanding glucose metabolism and complications.
Main Methods:
- Review of noninvasive imaging techniques: MRI, MRS, PET, SPECT.
- Focus on molecular imaging of beta-cells and diabetes-associated biomarkers.
- Analysis of imaging applications in glucose metabolism and complication assessment.
Main Results:
- Noninvasive imaging enables in vivo detection and functional characterization of beta-cells.
- Molecular imaging of biomarkers (e.g., insulitis) shows promise for early diagnosis.
- Imaging facilitates monitoring of diabetes progression and therapeutic efficacy.
Conclusions:
- Noninvasive imaging is crucial for diabetes diagnosis, monitoring, and management.
- Imaging beyond beta-cells offers new strategies for early detection and intervention.
- Molecular imaging aids in understanding pathogenesis and developing novel therapies.
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