Nikonorova Inna A, desRanleau Elizabeth, Jacobs Katherine C, Saul Joshua, Walsh Jonathon D, Wang Juan, Barr Maureen M
Department of Genetics and Human Genetics Institute of New Jersey, Rutgers, The State University of New Jersey; Piscataway, New Jersey 08854, USA.
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bioRxiv. 2024 Apr 18:2024.04.17.588758. doi: 10.1101/2024.04.17.588758.
Therapeutic use of tiny extracellular vesicles (EVs) requires understanding cargo loading mechanisms. Here, we used a modular proximity label approach to identify EV cargo associated with the transient potential channel (TRP) polycystin PKD-2 of . Polycystins are conserved receptor-TRP channel proteins affecting cilium function; dysfunction causes polycystic kidney disease in humans and mating deficits in . Polycystin-2 EV localization is conserved from algae to humans, hinting at an ancient and unknown function. We discovered that polycystins associate with and direct specific cargo to EVs: channel-like PACL-1, dorsal and ventral membrane C-type lectins PAMLs, and conserved tumor necrosis-associated factor (TRAF) signaling adaptors TRF-1 and TRF-2. Loading of these components relied on polycystin-1 LOV-1. Our modular EV-TurboID approach can be applied in both cell- and tissue-specific manners to define the composition of distinct EV subtypes, addressing a major challenge of the EV field.
微小细胞外囊泡(EVs)的治疗应用需要了解其货物装载机制。在此,我们采用模块化邻近标记方法来鉴定与瞬时电位通道(TRP)多囊蛋白PKD-2相关的EV货物。多囊蛋白是影响纤毛功能的保守受体-TRP通道蛋白;功能障碍会导致人类多囊肾病和[物种名称未明确,推测可能是某种生物]的交配缺陷。从藻类到人类,多囊蛋白-2在EV中的定位是保守的,这暗示着一种古老而未知的功能。我们发现多囊蛋白与特定货物相关联并将其导向EV:类通道蛋白PACL-1、背腹膜C型凝集素PAMLs以及保守的肿瘤坏死相关因子(TRAF)信号衔接蛋白TRF-1和TRF-2。这些成分的装载依赖于多囊蛋白-1 LOV-1。我们的模块化EV-TurboID方法可以以细胞特异性和组织特异性方式应用,以确定不同EV亚型的组成,解决了EV领域的一个主要挑战。