降低神经酰胺含量可挽救酸性鞘磷脂酶缺乏果蝇模型的呼吸缺陷。

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Alexander J Hull, Magda L Atilano, Jenny Hallqvist, Wendy Heywood, Kerri J Kinghorn
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引用次数: 0

摘要

A型和B型尼曼-皮克病(NPD)是由SMPD1基因突变引起的遗传性多系统溶酶体储积症。呼吸功能障碍是 NPD 的一个主要特征,但其发病机制尚未得到充分研究。SMPD1 编码酸性鞘磷脂酶(ASM),它能将鞘磷脂水解为神经酰胺和磷酸胆碱。在这里,我们展示了一个 ASM 功能缺失的果蝇模型,该模型缺乏 SMPD1 的苍蝇直向同源物 dASM,模拟了 NPD 呼吸系统病理学的几个方面。缺失 dASM 会导致胚胎死亡,并且气管腔在羽化前无法正常充满气体。我们证明,在dASM突变体中,充气前管腔成分的内细胞清除是有缺陷的,并且在胚胎气管晚期与自噬缺陷(而非溶酶体缺陷)同时存在。最后,我们发现,虽然大量鞘脂没有变化,但饮食中损失的脂类与神经酰胺合成的遗传和药物阻断相结合,可以挽救气道充气缺陷。我们强调myriocin是一种潜在的治疗药物,可用于治疗与ASM缺乏症相关的呼吸道发育缺陷,并提出了一种可用于遗传学和药理学筛选的新型NPD模型。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ceramide lowering rescues respiratory defects in a Drosophila model of acid sphingomyelinase deficiency.

Types A and B Niemann-Pick disease (NPD) are inherited multisystem lysosomal storage disorders due to mutations in the SMPD1 gene. Respiratory dysfunction is a key hallmark of NPD, yet the mechanism for this is underexplored. SMPD1 encodes acid sphingomyelinase (ASM), which hydrolyses sphingomyelin to ceramide and phosphocholine. Here, we present a Drosophila model of ASM loss-of-function, lacking the fly orthologue of SMPD1, dASM, modelling several aspects of the respiratory pathology of NPD. dASM is expressed in the late-embryonic fly respiratory network, the trachea, and is secreted into the tracheal lumen. Loss of dASM results in embryonic lethality, and the tracheal lumen fails to fill normally with gas prior to eclosion. We demonstrate that the endocytic clearance of luminal constituents prior to gas-filling is defective in dASM mutants, and is coincident with autophagic, but not lysosomal defects, in late stage embryonic trachea. Finally, we show that although bulk sphingolipids are unchanged, dietary loss of lipids in combination with genetic and pharmacological block of ceramide synthesis rescues the airway gas-filling defects. We highlight myriocin as a potential therapeutic drug for the treatment of the developmental respiratory defects associated with ASM deficiency, and present a new NPD model amenable to genetic and pharmacological screens.

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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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