Shaanxi Provincial People's Hospital, Third Affiliated Hospital of the School of Medicine, Xi'an Jiaotong University, Xi'an, 710068, China
Exp Mol Pathol. 2011 Aug;91(1):325-30. doi: 10.1016/j.yexmp.2011.03.005. Epub 2011 Apr 2.
Although the human papillomavirus (HPV) DNA therapeutic vaccine represents a promising approach to the prevention and treatment of cervical cancer, the mechanism of the HPV DNA vaccine is poorly understood. Moreover, current strategies have met with only limited success in preclinical and dendritic cell-based (DC-based) clinical research. In addition, two-dimensional (2-D) DC monolayers poorly mimic the physiology function in vivo. We used a three-dimensional (3-D) DC culture model in vitro to explore the immune mechanism of the HPV DNA vaccine. DCs were generated from peripheral blood monocytes with interleukin-4 (IL-4) and granulocyte-macrophage colony-stimulating factor (GM-CSF). The cells, growing in 3-D collagen gel, were treated with pcDNA3.1-HPV16mE7 in vitro for 48 h. Compared to DCs treated with E7 in a 2-D culture model, the expression of co-stimulatory molecules CD80 and CD40 were significantly increased in the 3-D model (p<0.05), and a remarkable increase of IL-12 p70 was observed. However, we did not detect any obvious change in IL-10 in 3-D culture. In addition, we found that IFN-γ expression increased when HPV16mE7-DC cells were co-cultured with T-cells for 96 h in the 3-D model, and HPV16mE7-DCs stimulated the proliferation of T lymphocytes more efficiently in the 3-D model than in the 2-D model (p<0.05). These results suggest that DCs in 3-D culture model have a notable effect on the enhancement of the HPV16 DNA vaccine's immune reaction and indicate that the DC-based 3-D model is a novel approach to study the HPV vaccine.
尽管人乳头瘤病毒(HPV)DNA 治疗疫苗代表了预防和治疗宫颈癌的一种有前途的方法,但 HPV DNA 疫苗的机制还了解甚少。此外,目前的策略在临床前和树突状细胞(DC 基)临床研究中仅取得了有限的成功。此外,二维(2-D)DC 单层在很大程度上不能模拟体内的生理功能。我们使用体外三维(3-D)DC 培养模型来探索 HPV DNA 疫苗的免疫机制。DC 由外周血单核细胞产生,使用白细胞介素-4(IL-4)和粒细胞-巨噬细胞集落刺激因子(GM-CSF)。细胞在 3-D 胶原凝胶中生长,然后在体外用 pcDNA3.1-HPV16mE7 处理 48 小时。与在 2-D 培养模型中用 E7 处理的 DC 相比,3-D 模型中协同刺激分子 CD80 和 CD40 的表达显著增加(p<0.05),并且观察到 IL-12 p70 的显著增加。然而,在 3-D 培养中未检测到任何明显的 IL-10 变化。此外,我们发现当 HPV16mE7-DC 细胞在 3-D 模型中与 T 细胞共培养 96 小时时,IFN-γ 表达增加,并且 HPV16mE7-DC 比在 2-D 模型中更有效地刺激 T 淋巴细胞的增殖(p<0.05)。这些结果表明,3-D 培养模型中的 DC 对增强 HPV16 DNA 疫苗的免疫反应有显著影响,并表明基于 DC 的 3-D 模型是研究 HPV 疫苗的一种新方法。