Immune responses to gene therapy vectors: influence on vector function and effector mechanisms

被引:534
作者
Bessis, N
GarciaCozar, FJ
Boissier, MC
机构
[1] Univ Paris 13, UPRES EA 3408, F-93017 Bobigny, France
[2] Avicenne Teaching Hosp APHP, Dept Rheumatol, Bobigny, France
[3] Univ Cadiz, Univ Hosp, Fac Med, Puerto Real, Spain
关键词
innate immunity; specific immunity; AAV;
D O I
10.1038/sj.gt.3302364
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 [生物化学与分子生物学]; 081704 [应用化学];
摘要
Circumventing the immune response to the vector is a major challenge with all vector types. Viral vectors are the most likely to induce an immune response, especially those, like adenovirus and AAV, which express immunogenic epitopes within the organism. The first immune response occurring after vector transfer emerges from the innate immune system, mainly consisting in a rapid (few hours) inflammatory cytokines and chemokines secretion around the administration site. This reaction is high with adenoviral vectors and almost null with AAV. It is noteworthy that plasmid DNA vectors, because of CpG stimulatory islets, also stimulate the innate immunity via the stimulation of TLR receptors on leukocytes. Specific immune response leading to antibodies production and T lymphocytes activation also occurs within a few days after vector introduction. Capsid antigens are mostly responsible for specific immunity toward adenoviruses, and are also involved in the response against AAV. In the former case only, however, viral gene-encoded proteins can also be immunogenic. The pre-existing humoral immunity coming from early infections with wild-type AAV or adenovirus can prevent efficient gene transfer with the corresponding vectors. In all cases, some parameters like route of administration, dose, or promoter type have been extensively described as critical factors influencing vector immunity. Strategies to fight against vector-induced immunity can come from the immunology field, since tolerance induction or immunosuppression are a possibility. Alterations to vector structure have also been extensively performed to circumvent the immune system and thus enhance gene transfer efficiency and safety.
引用
收藏
页码:S10 / S17
页数:8
相关论文
共 72 条
[1]
Influence of immunosuppressive drugs on dendritic cells [J].
Abe, M ;
Thomson, AW .
TRANSPLANT IMMUNOLOGY, 2003, 11 (3-4) :357-365
[2]
A deviant immune response to viral proteins and transgene product is generated on subretinal administration of adenovirus and adeno-associated virus [J].
Anand, V ;
Duffy, B ;
Yang, ZX ;
Dejneka, NS ;
Maguire, AM ;
Bennett, J .
MOLECULAR THERAPY, 2002, 5 (02) :125-132
[3]
Controllers of the immune system and a new promise for immunotherapy [J].
Banchereau, J ;
Paczesny, S ;
Blanco, P ;
Bennett, L ;
Pascual, V ;
Fay, J ;
Palucka, AK .
IMMUNE MECHANISMS AND DISEASE, 2003, 987 :180-187
[4]
Repeated delivery of adeno-associated virus vectors to the rabbit airway [J].
Beck, SE ;
Jones, LA ;
Chesnut, K ;
Walsh, SM ;
Reynolds, TC ;
Carter, BJ ;
Askin, FB ;
Flotte, TR ;
Guggino, WB .
JOURNAL OF VIROLOGY, 1999, 73 (11) :9446-9455
[5]
Effect of adeno-associated virus-specific immunoglobulin G in human amniotic fluid on gene transfer [J].
Boyle, MP ;
Enke, RA ;
Mogayzel, PJ ;
Guggino, WB ;
Martin, DB ;
Agarwal, S ;
Zeitlin, PL .
HUMAN GENE THERAPY, 2003, 14 (04) :365-373
[6]
Induction of immunity to antigens expressed by recombinant adeno-associated virus depends on the route of administration [J].
Brockstedt, DG ;
Podsakoff, GM ;
Fong, L ;
Kurtzman, G ;
Mueller-Ruchholtz, W ;
Engleman, EG .
CLINICAL IMMUNOLOGY, 1999, 92 (01) :67-75
[7]
Identification of methylated CpG motifs as inhibitors of the immune stimulatory CpG motifs [J].
Chen, Y ;
Lenert, P ;
Weeratna, R ;
McCluskie, M ;
Wu, T ;
Davis, HL ;
Krieg, AM .
GENE THERAPY, 2001, 8 (13) :1024-1032
[8]
Testing recombinant adeno-associated virus-gene loading of dendritic cells for generating potent cytotoxic T lymphocytes against a prototype self-antigen, multiple myeloma HM1.24 [J].
Chiriva-Internati, M ;
Liu, Y ;
Weidanz, JA ;
Grizzi, F ;
You, H ;
Zhou, WP ;
Bumm, K ;
Barlogie, B ;
Mehta, JL ;
Hermonat, PL .
BLOOD, 2003, 102 (09) :3100-3107
[9]
Role of E4 in eliciting CD4 T-cell and B-cell responses to adenovirus vectors delivered to murine and nonhuman primate lungs [J].
Chirmule, N ;
Hughes, JV ;
Gao, GP ;
Raper, SE ;
Wilson, JM .
JOURNAL OF VIROLOGY, 1998, 72 (07) :6138-6145
[10]
Immune responses to adenovirus and adeno-associated virus in humans [J].
Chirmule, N ;
Propert, KJ ;
Magosin, SA ;
Qian, Y ;
Qian, R ;
Wilson, JM .
GENE THERAPY, 1999, 6 (09) :1574-1583