Department of Molecular Biotechnology and Health Sciences, University of Turin, 10126 Turin, Italy.
Department of Veterinary Sciences, University of Turin, 10095 Grugliasco (TO), Italy.
Mol Ther. 2023 Aug 2;31(8):2342-2359. doi: 10.1016/j.ymthe.2023.06.004. Epub 2023 Jun 12.
The high mortality rate of osteosarcoma (OSA) patients highlights the requirement of alternative strategies. The young age of patients, as well as the rarity and aggressiveness of the disease, limits opportunities for the robust testing of novel therapies, suggesting the need for valuable preclinical systems. Having previously shown the overexpression of the chondroitin sulfate proteoglycan (CSPG)4 in OSA, herein the functional consequences of its downmodulation in human OSA cells were evaluated in vitro, with a significant impairment of cell proliferation, migration, and osteosphere generation. The potential of a chimeric human/dog (HuDo)-CSPG4 DNA vaccine was explored in translational comparative OSA models, including human xenograft mouse models and canine patients affected by spontaneous OSA. The adoptive transfer of HuDo-CSPG4 vaccine-induced CD8 T cells and sera in immunodeficient human OSA-bearing mice delayed tumor growth and metastasis development. HuDo-CSPG4 vaccination resulted safe and effective in inducing anti-CSPG4 immunity in OSA-affected dogs, which displayed prolonged survival as compared to controls. Finally, HuDo-CSPG4 was also able to induce a cytotoxic response in a human surrogate setting in vitro. On the basis of these results and the high predictive value of spontaneous OSA in dogs, this study paves the way for a possible translation of this approach to humans.
骨肉瘤(OSA)患者的高死亡率突出了需要替代策略。患者年龄较小,以及疾病的罕见性和侵袭性,限制了新疗法的有力测试机会,这表明需要有价值的临床前系统。先前已经表明软骨素硫酸盐蛋白聚糖(CSPG)4 在 OSA 中的过表达,在此,在体外评估了其在人 OSA 细胞中的下调对细胞增殖、迁移和成骨球生成的功能影响,发现细胞增殖、迁移和成骨球生成显著受损。在包括人异种移植小鼠模型和患有自发性 OSA 的犬科患者的转化比较 OSA 模型中,探索了嵌合人/犬(HuDo)-CSPG4 DNA 疫苗的潜力。在免疫缺陷的人 OSA 荷瘤小鼠中过继转移 HuDo-CSPG4 疫苗诱导的 CD8 T 细胞和血清可延迟肿瘤生长和转移发展。HuDo-CSPG4 疫苗接种在患有 OSA 的犬中安全且有效地诱导了抗 CSPG4 免疫,与对照组相比,犬的存活时间延长。最后,HuDo-CSPG4 还能够在体外的人类替代环境中诱导细胞毒性反应。基于这些结果以及犬自发性 OSA 的高预测价值,本研究为将该方法转化为人类铺平了道路。