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April 5, 2026Journal of Lipid Research1 citationsOpen Access

In vivo visualization of lipophagy dynamics using the tfLiveDrop reporter mice

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SGSiqiao GongQZQiaofei ZhangHWHongluan Wu

Key Points

  • The aim is to visualize and understand the dynamics of lipophagy in living organisms using a novel reporter mouse model.
  • Developed the tfLiveDrop reporter mouse with a fluorescent probe for real-time imaging.
  • Validated the reporter's sensitivity in renal tubular epithelial cells.
  • Mapped lipophagic activity across different organs in mice.
  • Investigated alterations in lipophagic flux in Type 2 diabetes models.
  • Tracked lipophagic activity during kidney development.
  • Real-time visualization revealed significant heterogeneity in lipophagic activity under normal conditions.
  • Lipophagic flux was found to be dysregulated in specific tissues of male mice with Type 2 diabetes.
  • Longitudinal studies indicated essential lipophagic activity during renal maturation.

Abstract

Lipophagy, a selective form of autophagy, is critical for maintaining cellular lipid homeostasis.However, understanding its dynamic regulation and pathophysiological significance in vivo has been hindered by a lack of sensitive and versatile monitoring tools.To address this gap, we generated the tfLiveDrop (mCherry-eGFP-LiveDrop) reporter mouse by integrating a tandem mCherry-eGFP fluorescent probe with the lipid droplet-targeting domain of glycerol-3-phosphate acyltransferase 4 (GPAT4, the rate-limiting enzyme in triacylglycerol synthesis), termed the LiveDrop domain.This model enables real-time, spatiotemporal visualization of lipophagic flux at single-cell resolution in living animals.We initially validated the sensitivity and specificity of the tfLiveDrop reporter in primary renal tubular epithelial cells (TECs).Systemic mapping of lipophagic activity across organs revealed pronounced heterogeneity in basal lipophagic activity under physiological conditions.Furthermore, in a model of Type 2 diabetes, we demonstrated that lipophagic flux is dysregulated in a tissue-specific manner in male mice, underscoring its pivotal role in disease-associated lipid metabolism.Notably, longitudinal tracking during kidney development uncovered a programmed wave of lipophagic activity that is essential for lipid homeostasis during renal maturation.Our findings provide a powerful and versatile platform for in vivo lipophagy research, establishing a foundation for elucidating its functional contributions to metabolic disorders and organ development.

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Cite This Study

Gong et al. (2026) studied this question.

synapsesocial.com/papers/69d1fc28a79560c99a0a1ccehttps://doi.org/10.1016/j.jlr.2026.101033
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