Institute of Medical Physics and Biophysics, Leipzig University, Leipzig, Germany.
Institut für Analytische Chemie, Leipzig University, Leipzig, Germany.
PLoS One. 2023 Apr 14;18(4):e0284215. doi: 10.1371/journal.pone.0284215. eCollection 2023.
Leptin is a hormone that plays a key role in controlling food intake and energy homeostasis. Skeletal muscle is an important target for leptin and recent studies have shown that leptin deficiency may lead to muscular atrophy. However, leptin deficiency-induced structural changes in muscles are poorly understood. The zebrafish has emerged as an excellent model organism for studies of vertebrate diseases and hormone response mechanisms. In this study, we explored ex-vivo magnetic resonance microimaging (μMRI) methods to non-invasively assess muscle wasting in leptin-deficient (lepb-/-) zebrafish model. The fat mapping performed by using chemical shift selective imaging shows significant fat infiltration in muscles of lepb-/- zebrafish compared to control zebrafish. T2 relaxation measurements show considerably longer T2 values in the muscle of lepb-/- zebrafish. Multiexponential T2 analysis detected a significantly higher value and magnitude of long T2 component in the muscles of lepb-/- as compared to control zebrafish. For further zooming into the microstructural changes, we applied diffusion-weighted MRI. The results show a significant decrease in the apparent diffusion coefficient indicating increased constraints of molecular movements within the muscle regions of lepb-/- zebrafish. The use of the phasor transformation for the separation of diffusion-weighted decay signals showed a bi-component diffusion system which allows us to estimate each fraction on a voxel-wise basis. A substantial difference was found between the ratio of two components in lepb-/- and control zebrafish muscles, indicating alterations in diffusion behavior associated with the tissue microstructural changes in muscles of lepb-/- zebrafish as compared to control zebrafish. Taken together, our results demonstrate that the muscles of lepb-/- zebrafish undergo significant fat infiltration and microstructural changes leading to muscle wasting. This study also demonstrates that μMRI provides excellent means to non-invasively study the microstructural changes in the muscles of the zebrafish model.
瘦素是一种在控制食物摄入和能量平衡方面起着关键作用的激素。骨骼肌是瘦素的重要靶标,最近的研究表明,瘦素缺乏可能导致肌肉萎缩。然而,瘦素缺乏引起的肌肉结构变化知之甚少。斑马鱼已成为研究脊椎动物疾病和激素反应机制的优秀模式生物。在这项研究中,我们探索了离体磁共振微成像(μMRI)方法,以非侵入性地评估瘦素缺乏(lepb-/-)斑马鱼模型中的肌肉减少。使用化学位移选择性成像进行的脂肪图谱显示,与对照斑马鱼相比,lepb-/-斑马鱼肌肉中的脂肪浸润明显。T2 弛豫测量显示,lepb-/-斑马鱼肌肉中的 T2 值明显更长。多指数 T2 分析检测到,与对照斑马鱼相比,lepb-/-斑马鱼肌肉中的长 T2 成分的数值和幅度显著更高。为了进一步深入研究微观结构变化,我们应用了扩散加权 MRI。结果表明,表观扩散系数显著降低,表明肌肉区域内分子运动的约束增加。相位向量变换用于分离扩散加权衰减信号的应用显示出双组分扩散系统,这使我们能够在体素基础上估计每个分数。在 lep-/-和对照斑马鱼肌肉中的两个分量的比值之间发现了显著差异,表明与 lep-/-斑马鱼肌肉中的组织微观结构变化相关的扩散行为发生了改变。总之,我们的结果表明,lepb-/-斑马鱼的肌肉发生了显著的脂肪浸润和微观结构变化,导致肌肉减少。这项研究还表明,μMRI 提供了一种极好的非侵入性方法来研究斑马鱼模型肌肉的微观结构变化。