Department of Pediatrics, Emory University School of Medicine, Atlanta, Georgia 30322, USA.
J Biol Chem. 2010 Mar 5;285(10):7827-37. doi: 10.1074/jbc.M109.040618. Epub 2010 Jan 6.
Tripartite motif (TRIM) protein TRIM5alpha has been shown to restrict human immunodeficiency virus, type 1 infection in Old World monkey cells at the early post-entry step by poorly understood mechanisms. Currently, the physiological function of TRIM5alpha is not known. In this study, we showed that transiently overexpressed TRIM5alpha causes a morphological change in HEK293T cells. A proteomics analysis of the protein complexes that were pulled down with hemagglutinin-tagged TRIM5alpha suggested that the heat shock protein 70 (Hsp70) may serve as a TRIM5alpha-binding partner. The interaction between Hsp70 and TRIM5alpha was confirmed by co-localization and co-immunoprecipitation assays. Co-expression of Hsp70 reversed the TRIM5alpha-induced morphological change in HEK293T cells. Another heat shock protein Hsc70 also bound to TRIM5alpha, but unlike Hsp70, Hsc70 was not able to reverse the TRIM5alpha-induced morphological change, suggesting that Hsp70 specifically reverses the morphological change caused by TRIM5alpha. Studies using a series of TRIM5alpha deletion mutants demonstrate that, although the PRYSPRY domain is critical for binding to Hsp70, the entire TRIM5alpha structure is necessary to induce the morphological change of cells. When the ATPase domain of Hsp70 was mutated, the mutated Hsp70 could not counteract the morphological change induced by TRIM5alpha, indicating that the catalytic activity of Hsp70 protein is important for this function. Co-expression of Hsp70 elevated the levels of TRIM5alpha in the detergent-soluble fraction with a concomitant decrease in the detergent-insoluble fraction. Together these results suggest that Hsp70 plays critical roles in the cellular management against the TRIM5alpha-induced cellular insults.
三结构域蛋白(TRIM)蛋白 TRIM5alpha 通过尚不清楚的机制,在早期进入后阶段限制了旧世界猴细胞中的人类免疫缺陷病毒 1 型感染。目前,TRIM5alpha 的生理功能尚不清楚。在这项研究中,我们表明瞬时过表达的 TRIM5alpha 会导致 HEK293T 细胞发生形态变化。用血凝素标记的 TRIM5alpha 下拉的蛋白质复合物的蛋白质组学分析表明,热休克蛋白 70(Hsp70)可能作为 TRIM5alpha 的结合伙伴。通过共定位和共免疫沉淀实验证实了 Hsp70 和 TRIM5alpha 之间的相互作用。Hsp70 的共表达逆转了 HEK293T 细胞中 TRIM5alpha 诱导的形态变化。另一种热休克蛋白 Hsc70 也与 TRIM5alpha 结合,但与 Hsp70 不同,Hsc70 不能逆转 TRIM5alpha 诱导的形态变化,表明 Hsp70 特异性逆转 TRIM5alpha 引起的形态变化。使用一系列 TRIM5alpha 缺失突变体的研究表明,尽管 PRYSPRY 结构域对于与 Hsp70 结合至关重要,但 TRIM5alpha 的整个结构对于诱导细胞的形态变化是必需的。当 Hsp70 的 ATP 酶结构域发生突变时,突变的 Hsp70 不能抵消 TRIM5alpha 诱导的形态变化,表明 Hsp70 蛋白的催化活性对于该功能很重要。Hsp70 的共表达提高了去污剂可溶性部分中 TRIM5alpha 的水平,同时降低了去污剂不溶性部分中的水平。这些结果表明 Hsp70 在细胞管理中起着关键作用,可对抗 TRIM5alpha 诱导的细胞损伤。