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Novel Dual-Emissive Up-conversion Fluorescent Probe for Imaging Ectopic Lipid Accumulation in Diabetes Mellitus
Zheming Zhang1, Zhiyuan Wang1, Mengfan Kan2,3
1School of Chemistry and Chemical Engineering, University of Jinan, Jinan 250022, Shandong, China.
Abstract:
Diabetic kidney disease (DKD) is a leading cause of death among diabetic patients, primarily due to ectopic lipid accumulation in nonadipose tissues. The lack of molecular tools for quantitatively visualizing this lipid accumulation has hindered in-depth studies. This study aims to develop a dual-emissive up-conversion fluorescent probe, DSDM, for precise in vivo and ex vivo analyses of lipid accumulation. DSDM exhibits up-conversion green emission and down-conversion near-infrared (NIR) fluorescence when excited at 561 nm. This allows for the simultaneous imaging of lipid droplets (LDs) and the endoplasmic reticulum (ER), the primary sites for lipid synthesis and storage. With intracellular lipid consumption and accumulation, the green emission in LDs decreased or increased, while the NIR fluorescence in the ER remained constant. Using the NIR emission as an internal control, the green-to-NIR emission intensity ratio can quantify the LD amount accurately, overcoming the possible interferences from inhomogeneous staining, variation in cell population, and other factors. With the probe, we quantitatively analyzed LD accumulation in human kidney cells with either overexpressed or silenced aquaporin 7 (AQP7), induced by palmitic acid. Herein, AQP7 is specifically expressed in kidney tubules and is the only channel that regulates adipose glycerol transport. In DKD mice with kidney-specific AQP7 knockout, the probe successfully detected up-regulated lipid accumulation and ER stress. Tissue imaging revealed that the inhibited close contact between LDs and ER might facilitate the assessment of lipid accumulation in DKD. This approach effectively addresses the limitations of precise tissue biopsy in DKD, thereby improving DKD management.
Insights
Researchers developed a novel fluorescent probe, DSDM, to precisely measure ectopic lipid accumulation in diabetic kidney disease (DKD). This tool enables accurate in vivo and ex vivo analysis, improving DKD diagnosis and management.
Area of Science:
- Biomedical Engineering
- Molecular Imaging
- Diabetology
Background:
- Diabetic kidney disease (DKD) is a major cause of mortality linked to ectopic lipid accumulation.
- Current methods for visualizing lipid buildup lack quantitative precision, hindering research.
- Novel molecular tools are needed for accurate in vivo and ex vivo analysis of lipid accumulation in DKD.
Purpose of the Study:
- To develop a dual-emissive fluorescent probe, DSDM, for quantitative visualization of lipid accumulation.
- To enable simultaneous imaging of lipid droplets (LDs) and endoplasmic reticulum (ER) for precise lipid quantification.
- To apply the probe for analyzing lipid accumulation and ER stress in DKD models.
Main Methods:
- Development of a dual-emissive up-conversion/down-conversion fluorescent probe (DSDM).
- Simultaneous imaging of LDs (green emission) and ER (NIR fluorescence).
- Quantification of LDs using the green-to-NIR emission intensity ratio as an internal control.
- Application of DSDM in human kidney cells and DKD mouse models with AQP7 manipulation.
Main Results:
- DSDM allows accurate quantification of intracellular lipid accumulation by normalizing green emission to constant NIR ER fluorescence.
- The probe successfully detected increased lipid accumulation and ER stress in DKD mouse models with kidney-specific AQP7 knockout.
- Inhibited close contact between LDs and ER was observed in DKD, potentially aiding lipid accumulation assessment.
Conclusions:
- The DSDM probe offers a precise method for quantifying ectopic lipid accumulation in DKD.
- This tool overcomes limitations of traditional methods, improving the understanding and management of DKD.
- The findings highlight the potential of DSDM for in vivo and ex vivo diagnostic applications in DKD.
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