Tagless LysoIP for immunoaffinity enrichment of native lysosomes from clinical samples.

Daniel Saarela,Pawel Lis,Sara Gomes,Raja S Nirujogi,Wentao Dong,Eshaan S Rawat,Sophie Glendinning,Karolina Zeneviciute,Enrico Bagnoli,Rotimi Fasimoye,Cindy Lin,Kwamina Nyame,Fanni A Boros,Friederike Zunke,Frederic Lamoliatte,Sadik Elshani,Matthew Jaconelli,Judith Jm Jans,Margriet A Huisman,Christian Posern,Lena M Westermann,Angela Schulz,Peter M van Hasselt,Dario R Alessi,Monther Abu-Remaileh,Esther M Sammler
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Abstract

Lysosomes are implicated in a wide spectrum of human diseases including monogenic lysosomal storage disorders (LSDs), age-associated neurodegeneration and cancer. Profiling lysosomal content using tag-based lysosomal immunoprecipitation (LysoTagIP) in cell and animal models has substantially moved the field forward, but studying lysosomal dysfunction in human patients remains challenging. Here, we report the development of the 'tagless LysoIP' method, designed to enable the rapid enrichment of lysosomes, via immunoprecipitation, using the endogenous integral lysosomal membrane protein TMEM192, directly from clinical samples and human cell lines (e.g., induced pluripotent stem cell derived neurons). Isolated lysosomes were intact and suitable for subsequent multimodal omics analyses. To validate our approach, we applied the tagless LysoIP to enrich lysosomes from peripheral blood mononuclear cells derived from fresh blood of healthy donors and patients with CLN3 disease, an autosomal recessive neurodegenerative LSD. Metabolic profiling of isolated lysosomes revealed massive accumulation of glycerophosphodiesters (GPDs) in patients' lysosomes. Interestingly, a patient with a milder phenotype and genotype displayed lower accumulation of lysosomal GPDs, consistent with their potential role as disease biomarkers. Altogether, the tagless LysoIP provides a framework to study native lysosomes from patient samples, identify disease biomarkers, and discover human-relevant disease mechanisms.
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无标记LysoIP用于临床样品中天然溶酶体的免疫亲和力富集。
溶酶体涉及广泛的人类疾病,包括单基因溶酶体储存障碍(lsd),年龄相关的神经变性和癌症。在细胞和动物模型中使用基于标记的溶酶体免疫沉淀(LysoTagIP)分析溶酶体含量已经大大推动了该领域的发展,但在人类患者中研究溶酶体功能障碍仍然具有挑战性。在这里,我们报告了“无标签溶酶体”方法的发展,旨在通过免疫沉淀,使用内源性溶酶体整体膜蛋白TMEM192,直接从临床样品和人类细胞系(例如,诱导多能干细胞衍生的神经元)中快速富集溶酶体。分离的溶酶体是完整的,适合随后的多模态组学分析。为了验证我们的方法,我们应用无标记LysoIP富集来自健康供者和CLN3疾病(一种常染色体隐性神经退行性LSD)患者新鲜血液的外周血单个核细胞的溶酶体。分离溶酶体的代谢谱显示患者溶酶体中甘油磷酸二酯(gpd)的大量积累。有趣的是,表型和基因型较轻的患者表现出较低的溶酶体gpd积累,这与它们作为疾病生物标志物的潜在作用一致。总之,无标记LysoIP为研究患者样本中的天然溶酶体、识别疾病生物标志物和发现与人类相关的疾病机制提供了一个框架。
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