Schully K L, Bell M G, Prouty A M, Gallovic M D, Gautam S, Peine K J, Sharma S, Bachelder E M, Pesce J T, Elberson M A, Ainslie K M, Keane-Myers A
Vaccines and Medical Countermeasures, Biological Defense Research Directorate, Naval Medical Research Center-Frederick, Ft Detrick, MD 21702, USA.
William G. Lowrie Department of Chemical and Biomolecular Engineering, College of Engineering, The Ohio State University, Columbus, OH 43210, USA.
Int J Pharm. 2015 Nov 30;495(2):849-61. doi: 10.1016/j.ijpharm.2015.09.059. Epub 2015 Sep 28.
Melioidosis, a potentially lethal disease of humans and animals, is caused by the soil-dwelling bacterium Burkholderia pseudomallei. Due to B. pseudomallei's classification as a Tier 1 Select Agent, there is substantial interest in the development of an effective vaccine. Yet, despite decades of research, no effective target, adjuvant or delivery vehicle capable of inducing protective immunity against B. pseudomallei infection has been identified. We propose a microparticulate delivery vehicle comprised of the novel polymer acetalated dextran (Ac-DEX). Ac-DEX is an acid-sensitive biodegradable carrier that can be fabricated into microparticles (MPs) that are relatively stable at pH 7.4, but rapidly degrade after phagocytosis by antigen presenting cells where the pH can drop to 5.0. As compared to other biomaterials, this acid sensitivity has been shown to enhance cross presentation of subunit antigens. To evaluate this platform as a delivery system for a melioidosis vaccine, BALB/c mice were vaccinated with Ac-DEX MPs separately encapsulating B. pseudomallei whole cell lysate and the toll-like receptor (TLR) 7/8 agonist resiquimod. This vaccine elicited a robust antibody response that included both Th1 and Th2 immunity. Following lethal intraperitoneal challenge with B. pseudomallei 1026b, vaccinated mice demonstrated a significant delay to time of death compared to untreated mice. The formulation, however, demonstrated incomplete protection indicating that lysate protein offers limited value as an antigen. Nevertheless, our Ac-DEX MPs may offer an effective delivery vehicle for a subunit B. psuedomallei vaccine.
类鼻疽病是一种对人类和动物具有潜在致命性的疾病,由土壤中生存的细菌类鼻疽伯克霍尔德菌引起。由于类鼻疽伯克霍尔德菌被列为一级选择生物剂,因此人们对开发一种有效的疫苗有着浓厚的兴趣。然而,尽管经过了数十年的研究,尚未发现能够诱导针对类鼻疽伯克霍尔德菌感染产生保护性免疫的有效靶点、佐剂或递送载体。我们提出了一种由新型聚合物乙酰化葡聚糖(Ac-DEX)组成的微粒递送载体。Ac-DEX是一种酸敏感的可生物降解载体,可以制成微粒(MPs),这些微粒在pH 7.4时相对稳定,但在被抗原呈递细胞吞噬后会迅速降解,此时pH值可降至5.0。与其他生物材料相比,这种酸敏感性已被证明可增强亚单位抗原的交叉呈递。为了评估该平台作为类鼻疽病疫苗的递送系统,用分别包裹类鼻疽伯克霍尔德菌全细胞裂解物和Toll样受体(TLR)7/8激动剂瑞喹莫德的Ac-DEX MPs对BALB/c小鼠进行免疫接种。这种疫苗引发了强烈的抗体反应,包括Th1和Th2免疫。在用类鼻疽伯克霍尔德菌1026b进行致死性腹腔攻击后,与未治疗的小鼠相比,接种疫苗的小鼠死亡时间显著延迟。然而,该制剂显示出不完全的保护作用,表明裂解物蛋白作为抗原的价值有限。尽管如此,我们的Ac-DEX MPs可能为亚单位类鼻疽伯克霍尔德菌疫苗提供一种有效的递送载体。