Li Jiayi, Huang Kerui, Dibra Indira, Liu Ying, Perrimon Norbert, Simons Matias
Nephrogenetics unit, Institute of Human Genetics, University Hospital Heidelberg, Heidelberg, Germany.
Molecular Medicine Partnership Unit (MMPU), University of Heidelberg and European Molecular Biology Laboratory (EMBL), Heidelberg, Germany.
Res Sq. 2024 Dec 11:rs.3.rs-5566817. doi: 10.21203/rs.3.rs-5566817/v1.
Similar to the mammalian hepatocytes, oenocytes accumulate fat during fasting, but it is unclear how they communicate with the fat body, the major lipid source. Using a modified protocol for prolonged starvation, we show that knockdown (KD) of the sole delta 9 desaturase, Desat1 (SCD in mammals), specifically in oenocytes leads to more saturated lipids in the hemolymph and reduced triacylglycerol (TAG) storage in the fat body. Additionally, oenocytes with KD exhibited an accumulation of lipoproteins and actin filaments at the cortex, which decreased lipoproteins in the hemolymph. We further show that ImpL2 (IGFBP7 in mammals) is secreted from oenocytes during starvation in a -dependent manner. Flies with oenocyte-specific KD and overexpression of ImpL2 exhibited higher and lower sensitivity to starvation as well as lower and higher levels of TAG, respectively. Intriguingly, the depolymerization of cortical actin in the oenocytes decreased lipoprotein sequestration and alleviated the secretion defect of in KD cells, leading to rescued TAG levels and starvation sensitivity. Overall, this study highlights the central role of oenocytes in systemic lipid metabolism in as well as the importance of Desat1 in maintaining the proper functioning of oenocytes during periods of starvation.
与哺乳动物的肝细胞类似,卵母细胞在禁食期间会积累脂肪,但目前尚不清楚它们如何与主要脂质来源脂肪体进行交流。通过使用改良的长期饥饿实验方案,我们发现特异性敲低卵母细胞中唯一的δ9去饱和酶Desat1(哺乳动物中的SCD)会导致血淋巴中脂质饱和度增加,脂肪体中三酰甘油(TAG)储存减少。此外,敲低Desat1的卵母细胞在皮质处会出现脂蛋白和肌动蛋白丝的积累,这会降低血淋巴中的脂蛋白水平。我们进一步表明,ImpL2(哺乳动物中的IGFBP7)在饥饿期间以一种依赖于Desat1的方式从卵母细胞中分泌出来。卵母细胞特异性敲低Desat1并过表达ImpL2的果蝇分别对饥饿表现出更高和更低的敏感性,以及更低和更高的TAG水平。有趣的是,卵母细胞中皮质肌动蛋白的解聚减少了脂蛋白的隔离,并缓解了敲低Desat1的细胞中ImpL2的分泌缺陷,从而使TAG水平和饥饿敏感性得到恢复。总体而言,这项研究突出了卵母细胞在果蝇全身脂质代谢中的核心作用,以及Desat1在饥饿期间维持卵母细胞正常功能的重要性。