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Papillomavirus Virion Proteins and Vaccines

Papillomavirus Virion Proteins and Vaccines
乳头瘤病毒病毒颗粒蛋白和疫苗
批准号:
6433132
负责人:
JOHN T. SCHILLER
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
乳头瘤病毒(PV)感染动物和人的上皮细胞,通常在感染部位诱导良性增殖。然而,人类生殖器病变的恶性进展与某些类型的HPV有很强的相关性,最常见的是HPV16型。我们已经为HPV16型和其他由L1主要衣壳蛋白或L1+L2(次要衣壳蛋白)组成的PV产生了病毒样颗粒(VLP)。在动物模型中,静脉注射纯化的VLP可诱导高滴度的中和抗体并保护其免受实验攻击。基于这些结果,我们已经验证了GMP级VLP,最近完成了HPV16VLP疫苗的第一阶段和第二阶段临床试验。接种疫苗的人,即使是那些在没有佐剂的情况下接种的人,也会持续产生高滴度的HPV16假病毒中和抗体,并且只报告了很小的副作用。我们还在开发替代候选疫苗。为了提高VLP疫苗的治疗潜力,我们将非结构HPV蛋白作为L2融合蛋白引入VLP中。用HPV16E7或E7-E2嵌合VLP免疫小鼠,产生CD8限制性T细胞反应,保护小鼠免受肿瘤攻击,并诱导已建立的肿瘤的消退。用于I期临床试验的临床级嵌合VLP现在正在生产中。为了提高粘膜免疫反应,我们对纯化的VLP进行了小鼠鼻内滴注试验。与非肠道接种VLP相比,该方案在女性生殖道中同时诱导分泌型IgA和漏出型Ig G。在鼻腔接种的小鼠中,在整个ESTUS周期中检测到中和抗体,但在非肠道接种的小鼠中没有检测到中和抗体。鼻腔给药后也检测到了对VLP的有效的抗肿瘤细胞介导的反应。为了打破B细胞的耐受性并诱导对自身蛋白的抗体反应,我们在VLP表面以有序的阵列展示了目标自体多肽。展示了一种在小鼠体内诱导高滴度的肿瘤坏死因子免疫球蛋白的肿瘤坏死因子多肽,部分地保护了小鼠免受实验性风湿性关节炎的影响。小鼠和猕猴接种显示猕猴CCR5 N末端的VLP后,产生高滴度的抗体,结合细胞表面CCR5并阻止培养细胞的HIV感染。这些发现提出了一种诱导自身抗体的一般方法,具有许多基础和应用研究应用。为了开始确定VLP疫苗如何能够在没有佐剂和局部炎症的情况下诱导有效的B和T细胞反应,我们研究了VLP与未成熟的小鼠骨髓来源的树突状细胞(BMDCs)的相互作用。BMDCs快速结合和内化VLP。与VLPs的相互作用,但不是无序的衣壳亚单位,导致BMDCs的表型迅速成熟,但相对于一种具有良好特性的诱导物--细菌脂多糖,促炎症细胞因子的释放延迟。VLP激活的BMDCs在体外诱导以Th1为主的初级T细胞应答。这些结果表明,树突状细胞对病毒粒子表面的模式识别在抗病毒粒子免疫中起核心作用。
英文摘要
Papillomaviruses (PVs) infect the epithelia of animals and man where they generally induce benign proliferation at the site of infection. However, there is a strong association between malignant progression of human genital lesions and certain HPV types, most frequently HPV 16. We have generated virus-like particles (VLPs) for HPV 16 and other PVs that consist of the L1 major capsid protein or L1 plus L2, the minor capsid protein. Parenteral injection of purifed VLPs induced high titers of neutralizing antibodies and protection from experimental challenge in animal models. Based upon these results, we have validated GMP grade VLPs and have recently completed a phase 1 and phase 2 clinical trial of an HPV16 VLP vaccine. Vaccinees, even those vaccinated in the absence of adjuvant, consistantly produced high titers of HPV16 psuedovirion neutralizing antibodies and reported only minor side effects. We are also developing alternative vaccine candidates. To increase the therapeutic potential of a VLP-based vaccine, we have incorporated non-structural HPV proteins into the VLPs as L2 fusion proteins. Vaccination with an HPV16 E7 or E7-E2 chimeric VLP generated a CD8 restricted T cell response that protected mice from tumor challenge using an E7 expressing tumor line and also induced regression of established tumors. Clinical grade chimeric VLPs for a phase I clinical trial are now being produced. To increase mucosal immune responses, we have tested intranasal instillation of purified VLPs in mice. In contrast to parenteral inoculation of VLPs, this protocol elicited both secretory IgA and transudated IgG in the female genital tract. Neutralizing antibodies were detected throughout the estus cycle in intranasally vaccinated mice, but not in those vaccinated parenterally. Potent anti-tumor cell mediated responses to VLPs were also detected after intranasal administration.To break B-cell tolerance and induce antibody responses to a self-protein, we have displayed the target self-polypeptide in an ordered array on a VLP surface. Display of a TNF peptide induced high titers of TNF IgG in mice that partially protected the mice from experimentally induced rheumatoid arthritis. Mice and macaques vaccinated with VLPs displaying the N-terminus of macaque CCR5 produced high titers of antibodies that bound cell surface CCR5 and blocked HIV infection of cultured cells. These findings suggest a general method for inducing auto-antibodies, with many basic and applied research applications. To begin to determine how VLP vaccination is able to induce potent B and T cell responses in the absence of adjuvant and without local inflammation, we have examine the interaction of VLPs with immature mouse bone marrow-derived dentritic cells (BMDCs). BMDCs rapidly bound and internalized VLPs. Interaction with VLPs, but not disorganized capsid subunits, resulted in rapid phenotypic maturation of BMDCs, but delayed release of pro-inflammatory cytokines, relative to a well characterized inducer, bacterial lipopolysacharide. VLP activated BMDCs induced a Th1 dominated primary T cell response in vitro. The results provide evidence that pattern recognition of virion surfaces by dendritic cell can play a central role in anti-virion immunity.
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