Role of Metallic Nanoparticles in Vaccinology: Implications for Infectious Disease Vaccine Development

被引:87
|
作者
Marques Neto, Lazaro Moreira [1 ]
Kipnis, Andre [1 ]
Junqueira-Kipnis, Ana Paula [1 ]
机构
[1] Univ Fed Goias, Dept Microbiol Immunol Pathol & Parasitol, Inst Trop Pathol & Publ Hlth, Goiania, Go, Brazil
来源
FRONTIERS IN IMMUNOLOGY | 2017年 / 8卷
关键词
particulate vaccine; adjuvant; immune response; Th1; Th17; CHELATING NANOLIPOPROTEIN PARTICLES; IRON-OXIDE NANOPARTICLES; HIS-TAGGED PROTEINS; GOLD NANOPARTICLES; IMMUNE-RESPONSES; IN-VITRO; TIO2; NANOPARTICLES; INFLAMMATORY RESPONSES; GLYCOCONJUGATE VACCINE; ANTIBODY-PRODUCTION;
D O I
10.3389/fimmu.2017.00239
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
Subunit vaccines are safer but less immunogenic than live-attenuated vaccines or whole cell inactivated vaccines. Adjuvants are used to enhance and modulate antigen (Ag) immunogenicity, aiming to induce a protective and long-lasting immune response. Several molecules and formulations have been studied for their adjuvanticity, but only seven have been approved to formulate human vaccines. Metallic nanoparticles (MeNPs), particularly those containing gold and iron oxides, are widely used in medicine for diagnosis and therapy and have been used as carriers for drugs and vaccines. However, little is known about the immune response elicited by MeNPs or about their importance in the development of new vaccines. There is evidence that these particles display adjuvant characteristics, promoting cell recruitment, antigen-presenting cell activation, cytokine production, and inducing a humoral immune response. This review focuses on the characteristics of MeNPs that could facilitate the induction of a cellular immune response, particularly T-helper 1 and T-helper 17, and their potential functions as adjuvants for subunit vaccines.
引用
下载
收藏
页数:10
相关论文
共 50 条
  • [21] Insights into structural vaccinology harnessed for universal coronavirus vaccine development
    Lim, Chin Peng
    Leow, Chiuan Herng
    Lim, Hui Ting
    Kok, Boon Hui
    Chuah, Candy
    Oliveira, Jonas Ivan Nobre
    Jones, Malcolm
    Leow, Chiuan Yee
    CLINICAL AND EXPERIMENTAL VACCINE RESEARCH, 2024, 13 (03) : 202 - 217
  • [22] Systems vaccinology: its promise and challenge for HIV vaccine development
    Nakaya, Helder I.
    Pulendran, Bali
    CURRENT OPINION IN HIV AND AIDS, 2012, 7 (01) : 24 - 31
  • [23] The Development of a Vaccine Against Meningococcus B Using Reverse Vaccinology
    Masignani, Vega
    Pizza, Mariagrazia
    Moxon, E. Richard
    FRONTIERS IN IMMUNOLOGY, 2019, 10
  • [24] Role of Biofunctionalized Nanoparticles in Digestive Cancer Vaccine Development
    Zdrehus, Razvan
    Delcea, Cristian
    Mocan, Lucian
    PHARMACEUTICS, 2024, 16 (03)
  • [25] Mechanisms of Immunity in Hydatid Disease: Implications for Vaccine Development
    Zhang, Wenbao
    Ross, Allen G.
    McManus, Donald P.
    JOURNAL OF IMMUNOLOGY, 2008, 181 (10): : 6679 - 6685
  • [26] Emerging infectious disease laboratory and diagnostic preparedness to accelerate vaccine development
    Roberts, Christine C.
    HUMAN VACCINES & IMMUNOTHERAPEUTICS, 2019, 15 (10) : 2258 - 2263
  • [27] The role of pulmonary defences in the development of infectious respiratory disease
    Bayly, WM
    Hines, MT
    Slocombe, RF
    CESMAS - CONFERENCE ON EQUINE SPORTS MEDICINE AND SCIENCE, 1998, : 3 - 13
  • [28] Vaccine-Associated Enhanced Viral Disease: Implications for Viral Vaccine Development
    Scott B. Halstead
    BioDrugs, 2021, 35 : 505 - 515
  • [29] Vaccine-Associated Enhanced Viral Disease: Implications for Viral Vaccine Development
    Halstead, Scott B.
    BIODRUGS, 2021, 35 (05) : 505 - 515
  • [30] Modern vaccine development via reverse vaccinology to combat antimicrobial resistance
    Tobuse, Asuka Joy
    Ang, Chee Wei
    Yeong, Keng Yoon
    LIFE SCIENCES, 2022, 302