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AAV Exploits Subcellular Stress Associated with Inflammation Endoplasmic Reticulum Expansion and Misfolded Proteins in Models of Cystic Fibrosis

机译:AAV利用与囊性纤维化模型中的炎症内质网扩张和蛋白折叠错误相关的亚细胞应激

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摘要

Barriers to infection act at multiple levels to prevent viruses, bacteria, and parasites from commandeering host cells for their own purposes. An intriguing hypothesis is that if a cell experiences stress, such as that elicited by inflammation, endoplasmic reticulum (ER) expansion, or misfolded proteins, then subcellular barriers will be less effective at preventing viral infection. Here we have used models of cystic fibrosis (CF) to test whether subcellular stress increases susceptibility to adeno-associated virus (AAV) infection. In human airway epithelium cultured at an air/liquid interface, physiological conditions of subcellular stress and ER expansion were mimicked using supernatant from mucopurulent material derived from CF lungs. Using this inflammatory stimulus to recapitulate stress found in diseased airways, we demonstrated that AAV infection was significantly enhanced. Since over 90% of CF cases are associated with a misfolded variant of Cystic Fibrosis Transmembrane Conductance Regulator (ΔF508-CFTR), we then explored whether the presence of misfolded proteins could independently increase susceptibility to AAV infection. In these models, AAV was an order of magnitude more efficient at transducing cells expressing ΔF508-CFTR than in cells expressing wild-type CFTR. Rescue of misfolded ΔF508-CFTR under low temperature conditions restored viral transduction efficiency to that demonstrated in controls, suggesting effects related to protein misfolding were responsible for increasing susceptibility to infection. By testing other CFTR mutants, G551D, D572N, and 1410X, we have shown this phenomenon is common to other misfolded proteins and not related to loss of CFTR activity. The presence of misfolded proteins did not affect cell surface attachment of virus or influence expression levels from promoter transgene cassettes in plasmid transfection studies, indicating exploitation occurs at the level of virion trafficking or processing. Thus, we surmised that factors enlisted to process misfolded proteins such as ΔF508-CFTR in the secretory pathway also act to restrict viral infection. In line with this hypothesis, we found that AAV trafficked to the microtubule organizing center and localized near Golgi/ER transport proteins. Moreover, AAV infection efficiency could be modulated with siRNA-mediated knockdown of proteins involved in processing ΔF508-CFTR or sorting retrograde cargo from the Golgi and ER (calnexin, KDEL-R, β-COP, and PSMB3). In summary, our data support a model where AAV exploits a compromised secretory system and, importantly, underscore the gravity with which a stressed subcellular environment, under internal or external insults, can impact infection efficiency.
机译:感染的屏障在多个层面上发挥作用,以防止病毒,细菌和寄生虫出于自己的目的而侵害宿主细胞。一个有趣的假设是,如果细胞遭受压力,例如由炎症,内质网(ER)扩展或蛋白质折叠错误引起的压力,那么亚细胞壁垒在预防病毒感染方面的效果会更差。在这里,我们使用了囊性纤维化(CF)模型来测试亚细胞应激是否会增加对腺相关病毒(AAV)感染的敏感性。在气/液界面培养的人气道上皮中,使用来源于CF肺的粘胶质材料的上清液模拟亚细胞应激和ER扩展的生理条件。使用这种炎症刺激来概括患病气道中的压力,我们证明了AAV感染得到了显着增强。由于超过90%的CF病例与囊性纤维化跨膜电导调节器(ΔF508-CFTR)的错折叠变体有关,因此我们探讨了错折叠蛋白的存在是否可以独立增加对AAV感染的敏感性。在这些模型中,AAV在转导表达ΔF508-CFTR的细胞方面比在表达野生型CFTR的细胞中效率高一个数量级。在低温条件下挽回错误折叠的ΔF508-CFTR可使病毒的转导效率恢复到对照中所显示的水平,这表明与蛋白质错误折叠有关的效应导致感染的易感性增加。通过测试其他CFTR突变体G551D,D572N和1410X,我们已经发现这种现象是其他错折叠蛋白所共有的,并且与CFTR活性丧失无关。错折叠的蛋白质的存在不会影响病毒的细胞表面附着,也不会影响质粒转染研究中启动子转基因盒的表达水平,表明利用发生在病毒体运输或加工的水平。因此,我们推测,分泌途径中应处理错误折叠的蛋白质(例如ΔF508-CFTR)的因素也起着限制病毒感染的作用。符合此假设,我们发现AAV贩运到微管组织中心,并位于高尔基体/ ER转运蛋白附近。此外,可以通过siRNA介导的敲除参与加工ΔF508-CFTR或分拣来自高尔基体和ER的逆行货物的蛋白质(钙调蛋白,KDEL-R,β-COP和PSMB3)来调节AAV感染效率。总而言之,我们的数据支持了一种模型,其中AAV利用受损的分泌系统,并且重要地强调了在内部或外部侮辱下应激的亚细胞环境可影响感染效率的严重性。

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