Zhang Ling-Xiao, Hu Jing, Jia Ying-Bo, Liu Rui-Tian, Cai Ting, Xu Zhi Ping
Hwa Mei Hospital, University of Chinese Academy of Sciences (Ningbo No. 2 Hospital), Ningbo 315010, China.
Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian 116023, China and University of Chinese Academy of Sciences, Beijing 100049, China.
Nanoscale. 2021 Apr 30;13(16):7533-7549. doi: 10.1039/d1nr00881a.
Layered double hydroxide (LDH) is a 'sandwich'-like two-dimensional clay material that has been systematically investigated for biomedical application in the past two decades. LDH is an alum-similar adjuvant, which has a well-defined layered crystal structure and exhibits high adjuvanticity. The unique structure of LDH includes positively charged layers composed of divalent and trivalent cations and anion-exchangeable interlayer galleries. Among the many variants of LDH, MgAl-LDH (the cationic ions are Mg2+ and Al3+) has the highest affinity to antigens, bioadjuvants and drug molecules, and exhibits superior biosafety. Past research studies indicate that MgAl-LDH can simultaneously load antigens, bioadjuvants and molecular drugs to amplify the strength of immune responses, and induce broad-spectrum immune responses. Moreover, the size and dispersity of MgAl-LDH in biological environments can be well controlled to actively deliver antigens to the immune system, realizing the rapid induction and maintenance of durable immune responses. Furthermore, the functionalization of MgAl-LDH nanoadjuvants enables it to capture antigens in situ and induce personalized immune responses, thereby more effectively overcoming complex diseases. In this review, we comprehensively summarize the development and application of MgAl-LDH nanoparticles as a vaccine adjuvant, demonstrating that MgAl-LDH is the most potential adjuvant for clinical application.
层状双氢氧化物(LDH)是一种类似“三明治”的二维粘土材料,在过去二十年中已被系统地研究用于生物医学应用。LDH是一种类似明矾的佐剂,具有明确的层状晶体结构并表现出高佐剂活性。LDH的独特结构包括由二价和三价阳离子组成的带正电荷的层以及可阴离子交换的层间通道。在LDH的众多变体中,MgAl-LDH(阳离子为Mg2+和Al3+)对抗原、生物佐剂和药物分子具有最高的亲和力,并表现出卓越的生物安全性。过去的研究表明,MgAl-LDH可以同时负载抗原、生物佐剂和分子药物以增强免疫反应的强度,并诱导广谱免疫反应。此外,MgAl-LDH在生物环境中的大小和分散性可以得到很好的控制,从而将抗原主动递送至免疫系统,实现持久免疫反应的快速诱导和维持。此外,MgAl-LDH纳米佐剂的功能化使其能够原位捕获抗原并诱导个性化免疫反应,从而更有效地克服复杂疾病。在本综述中,我们全面总结了MgAl-LDH纳米颗粒作为疫苗佐剂的发展和应用,证明MgAl-LDH是最具临床应用潜力的佐剂。