改变LCMV假型慢病毒α-三磷酸腺苷受体亲和力产生独特的细胞和组织亲和性。

Douglas E Dylla, Litao Xie, Daniel E Michele, Stefan Kunz, Paul B McCray
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引用次数: 17

摘要

背景:淋巴细胞性脉络丛脑膜炎病毒(LCMV)的包膜糖蛋白能有效地假型慢病毒载体。一些LCMV菌株利用与α-三聚糖聚糖(α-DG)的高亲和力相互作用结合到细胞表面,随后融合在低pH的内体中。低α-DG亲和力的LCMV菌株利用未知受体并表现出独特的组织趋向性。我们使用LCMV衍生的高或低α-DG亲和力的糖蛋白对非灵长类猫免疫缺陷病毒(FIV)载体进行了假型,并在体外和体内评价了它们的特性。方法:我们用LCMV WE54菌株包膜糖蛋白进行假型,并在WE54包膜糖蛋白(L260F)上进行点突变,以降低α-DG的亲和力和与替代受体的直接结合。我们假设这种变化会改变体内组织的向性,并增强基因向新生动物的转移。结果:小鼠肝脏α-和β-DG的表达在妊娠晚期和新生儿时最高。当在FIV慢病毒表面显示时,WE54 L260F突变糖蛋白与固定化α-DG结合较弱。此外,LCMV WE54假型FIV载体的转导被可溶性α-DG预孵育中和,而突变糖蛋白假型载体则不被中和。静脉给药后,成年小鼠的体内基因转移在肝细胞中的转导效率较低。与此形成鲜明对比的是,通过荧光素酶测定、生物发光成像和β-半乳糖苷酶染色检测,新生儿用LCMV包膜进行基因转移,特别是用FIV-L260F载体进行基因转移,可以获得丰富的肝脏和较低水平的心肌细胞转导。结论:这些结果表明LCMV发育调节受体在新生小鼠中大量表达。LCMV伪型载体可能用于新生儿基因转移。缩写:Armstrong 53b (Arm53b);加州签名杆状病毒GP64 (GP64);电荷耦合器件;dystroglycan (DG);猫免疫缺陷病毒(FIV);糖蛋白前体(GP-C);萤火虫荧光素酶(Luc);淋巴细胞性脉络丛脑膜炎病毒;核靶向β-半乳糖苷酶(ntLacZ);光密度;PBS/0.1% (w/v)吐温20 (PBST);相对光单位(RLU);劳斯肉瘤病毒;转换单位/毫升(TU/ml);水泡性口炎病毒(VSV-G);小麦胚芽凝集素;结合降低50% (C50)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Altering α-dystroglycan receptor affinity of LCMV pseudotyped lentivirus yields unique cell and tissue tropism.

Background: The envelope glycoprotein of lymphocytic choriomeningitis virus (LCMV) can efficiently pseudotype lentiviral vectors. Some strains of LCMV exploit high affinity interactions with α-dystroglycan (α-DG) to bind to cell surfaces and subsequently fuse in low pH endosomes. LCMV strains with low α-DG affinity utilize an unknown receptor and display unique tissue tropisms. We pseudotyped non-primate feline immunodeficiency virus (FIV) vectors using LCMV derived glycoproteins with high or low affinity to α-DG and evaluated their properties in vitro and in vivo.

Methods: We pseudotyped FIV with the LCMV WE54 strain envelope glycoprotein and also engineered a point mutation in the WE54 envelope glycoprotein (L260F) to diminish α-DG affinity and direct binding to alternate receptors. We hypothesized that this change would alter in vivo tissue tropism and enhance gene transfer to neonatal animals.

Results: In mice, hepatic α- and β-DG expression was greatest at the late gestational and neonatal time points. When displayed on the surface of the FIV lentivirus the WE54 L260F mutant glycoprotein bound weakly to immobilized α-DG. Additionally, LCMV WE54 pseudotyped FIV vector transduction was neutralized by pre-incubation with soluble α-DG, while the mutant glycoprotein pseudotyped vector was not. In vivo gene transfer in adult mice with either envelope yielded low transduction efficiencies in hepatocytes following intravenous delivery. In marked contrast, neonatal gene transfer with the LCMV envelopes, and notably with the FIV-L260F vector, conferred abundant liver and lower level cardiomyocyte transduction as detected by luciferase assays, bioluminescent imaging, and β-galactosidase staining.

Conclusions: These results suggest that a developmentally regulated receptor for LCMV is expressed abundantly in neonatal mice. LCMV pseudotyped vectors may have applications for neonatal gene transfer.

Abbreviations: Armstrong 53b (Arm53b); baculovirus Autographa californica GP64 (GP64); charge-coupled device (CCD); dystroglycan (DG); feline immunodeficiency virus (FIV); glycoprotein precursor (GP-C); firefly luciferase (Luc); lymphocytic choriomeningitis virus (LCMV); nuclear targeted β-galactosidase (ntLacZ); optical density (OD); PBS/0.1% (w/v) Tween-20 (PBST); relative light units (RLU); Rous sarcoma virus (RSV); transducing units per milliliter (TU/ml); vesicular stomatitis virus (VSV-G); wheat germ agglutinin (WGA); 50% reduction in binding (C50).

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