Department of Molecular Microbiology and Immunology, Keck School of Medicine, University of Southern California, Los Angeles, CA 90033.
Department of NanoEngineering, University of California San Diego, La Jolla, CA 92093.
Proc Natl Acad Sci U S A. 2020 Apr 7;117(14):8083-8093. doi: 10.1073/pnas.1918607117. Epub 2020 Mar 25.
Three-dimensional (3D) cell culture is well documented to regain intrinsic metabolic properties and to better mimic the in vivo situation than two-dimensional (2D) cell culture. Particularly, proline metabolism is critical for tumorigenesis since pyrroline-5-carboxylate (P5C) reductase (PYCR/P5CR) is highly expressed in various tumors and its enzymatic activity is essential for in vitro 3D tumor cell growth and in vivo tumorigenesis. PYCR converts the P5C intermediate to proline as a biosynthesis pathway, whereas proline dehydrogenase (PRODH) breaks down proline to P5C as a degradation pathway. Intriguingly, expressions of proline biosynthesis gene and proline degradation gene are up-regulated directly by c-Myc oncoprotein and p53 tumor suppressor, respectively, suggesting that the proline-P5C metabolic axis is a key checkpoint for tumor cell growth. Here, we report a metabolic reprogramming of 3D tumor cell growth by oncogenic Kaposi's sarcoma-associated herpesvirus (KSHV), an etiological agent of Kaposi's sarcoma and primary effusion lymphoma. Metabolomic analyses revealed that KSHV infection increased nonessential amino acid metabolites, specifically proline, in 3D culture, not in 2D culture. Strikingly, the KSHV K1 oncoprotein interacted with and activated PYCR enzyme, increasing intracellular proline concentration. Consequently, the K1-PYCR interaction promoted tumor cell growth in 3D spheroid culture and tumorigenesis in nude mice. In contrast, depletion of expression markedly abrogated K1-induced tumor cell growth in 3D culture, not in 2D culture. This study demonstrates that an increase of proline biosynthesis induced by K1-PYCR interaction is critical for KSHV-mediated transformation in in vitro 3D culture condition and in vivo tumorigenesis.
三维(3D)细胞培养能够很好地恢复内在代谢特性,并且比二维(2D)细胞培养更好地模拟体内情况。特别是脯氨酸代谢对于肿瘤发生至关重要,因为吡咯啉-5-羧酸(P5C)还原酶(PYCR/P5CR)在各种肿瘤中高度表达,其酶活性对于体外 3D 肿瘤细胞生长和体内肿瘤发生是必不可少的。PYCR 将 P5C 中间体转化为脯氨酸作为生物合成途径,而脯氨酸脱氢酶(PRODH)将脯氨酸分解为 P5C 作为降解途径。有趣的是,脯氨酸生物合成基因和脯氨酸降解基因的表达分别被致癌的卡波济肉瘤相关疱疹病毒(KSHV)的 c-Myc 癌蛋白和 p53 肿瘤抑制因子直接上调,表明脯氨酸-P5C 代谢轴是肿瘤细胞生长的关键检查点。在这里,我们报告了致癌性卡波济肉瘤相关疱疹病毒(KSHV)对 3D 肿瘤细胞生长的代谢重编程,KSHV 是卡波济肉瘤和原发性渗出性淋巴瘤的病因。代谢组学分析显示,KSHV 感染增加了非必需氨基酸代谢物,特别是脯氨酸,在 3D 培养物中,而不是在 2D 培养物中。引人注目的是,KSHV K1 癌蛋白与 PYCR 酶相互作用并激活其,增加细胞内脯氨酸浓度。结果,K1-PYCR 相互作用促进了 3D 球体培养中的肿瘤细胞生长和裸鼠肿瘤形成。相比之下,表达的消耗显着削弱了 K1 在 3D 培养中诱导的肿瘤细胞生长,而不是在 2D 培养中。这项研究表明,由 K1-PYCR 相互作用诱导的脯氨酸生物合成增加对于 KSHV 在体外 3D 培养条件下和体内肿瘤发生中的转化是至关重要的。