原位胶质细胞表面蛋白质组学鉴定果蝇的促长寿因子。

Madeline P Marques, Bo Sun, Ye-Jin Park, Tyler Jackson, Tzu-Chiao Lu, Yanyan Qi, Erin Harrison, Miranda C Wang, Kartik Venkatachalam, Omar Moussa Pasha, Amogh Varanasi, Dominique Kiki Carey, D R Mani, Jonathan Zirin, Mujeeb Qadiri, Yanhui Hu, Norbert Perrimon, Steven A Carr, Namrata D Udeshi, Liqun Luo, Jiefu Li, Hongjie Li
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引用次数: 0

摘要

由于神经胶质细胞在维持健康的脑功能中起着关键作用,因此许多焦点转移到了解神经胶质功能障碍如何导致与年龄相关的神经变性。细胞-细胞相互作用主要由细胞表面蛋白介导,控制着发育和生理的许多关键方面;因此,神经胶质细胞表面蛋白的失调被认为在与年龄相关的神经变性中起重要作用。然而,在完整的大脑中描绘神经胶质细胞表面蛋白在技术上仍然很困难。在这里,我们将细胞表面蛋白质组学分析方法应用于来自果蝇完整大脑的神经胶质细胞,这使我们能够原位完整地描述细胞表面蛋白质组学,保留了传统蛋白质组学方法可能忽略的天然细胞-细胞相互作用。将该平台应用于年轻和年老的果蝇,我们研究了胶质细胞表面蛋白质组在衰老过程中的变化。我们确定了预计与大脑衰老有关的候选基因,包括几个与神经发育和突触连接分子相关的基因,这些基因之前被认为在神经胶质细胞中特别活跃。通过功能性基因筛选,我们发现了一种表面蛋白DIP-β,该蛋白在老年果蝇中下调,在成年胶质细胞中过表达可延长果蝇寿命。我们进一步进行了全头单核rna测序,发现DIP-β过表达主要影响胶质细胞和脂肪细胞。我们还发现,胶质DIP-β过表达与细胞间通讯的改善有关,这可能有助于观察到的寿命延长。我们的研究首次将原位细胞表面蛋白质组学应用于果蝇的神经胶质细胞,并确定DIP-β是脑衰老的潜在神经胶质调节剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
In-situ glial cell-surface proteomics identifies pro-longevity factors in Drosophila.

Much focus has shifted towards understanding how glial dysfunction contributes to age-related neurodegeneration due to the critical roles glial cells play in maintaining healthy brain function. Cell-cell interactions, which are largely mediated by cell-surface proteins, control many critical aspects of development and physiology; as such, dysregulation of glial cell-surface proteins in particular is hypothesized to play an important role in age-related neurodegeneration. However, it remains technically difficult to profile glial cell-surface proteins in intact brains. Here, we applied a cell-surface proteomic profiling method to glial cells from intact brains in Drosophila, which enabled us to fully profile cell-surface proteomes in-situ, preserving native cell-cell interactions that would otherwise be omitted using traditional proteomics methods. Applying this platform to young and old flies, we investigated how glial cell-surface proteomes change during aging. We identified candidate genes predicted to be involved in brain aging, including several associated with neural development and synapse wiring molecules not previously thought to be particularly active in glia. Through a functional genetic screen, we identified one surface protein, DIP-β, which is down-regulated in old flies and can increase fly lifespan when overexpressed in adult glial cells. We further performed whole-head single-nucleus RNA-seq, and revealed that DIP-β overexpression mainly impacts glial and fat cells. We also found that glial DIP-β overexpression was associated with improved cell-cell communication, which may contribute to the observed lifespan extension. Our study is the first to apply in-situ cell-surface proteomics to glial cells in Drosophila, and to identify DIP-β as a potential glial regulator of brain aging.

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