Activation of Human Complement System by Dextran-Coated Iron Oxide Nanoparticles Is Not Affected by Dextran/Fe Ratio, Hydroxyl Modifications, and Crosslinking

被引:42
|
作者
Wang, Guankui [1 ]
Chen, Fangfang [1 ,2 ]
Banda, Nirmal K. [3 ]
Holers, V. Michael [3 ]
Wu, LinPing [4 ]
Moghimi, S. Moein [5 ]
Simberg, Dmitri [1 ]
机构
[1] Univ Colorado, Dept Pharmaceut Sci, Skaggs Sch Pharm & Pharmaceut Sci, Anschutz Med Campus, Aurora, CO 80045 USA
[2] Jilin Univ, Dept Gastrointestinal Surg, China Japan Union Hosp, Changchun, Peoples R China
[3] Univ Colorado Denver, Div Rheumatol, Sch Med, Aurora, CO USA
[4] Univ Copenhagen, Nanomed Lab, Dept Pharm, Ctr Pharmaceut Nanotechnol & Nanotoxicol, Copenhagen, Denmark
[5] Univ Durham, Sch Med Pharm & Hlth, Durham, England
来源
FRONTIERS IN IMMUNOLOGY | 2016年 / 7卷
关键词
iron oxide nanoparticles; complement C3; complement system proteins; properdin; dextran; lectin pathway; alternative pathway of complement; ALTERNATIVE PATHWAY; POLY(ETHYLENE GLYCOL); IMMUNE RECOGNITION; MODULATORY ROLE; C3; CONVERTASE; SURFACE; SERUM; NANOWORMS; LIPOSOMES; DISEASE;
D O I
10.3389/fimmu.2016.00418
中图分类号
R392 [医学免疫学]; Q939.91 [免疫学];
学科分类号
100102 ;
摘要
While having tremendous potential as therapeutic and imaging tools, the clinical use of engineered nanoparticles has been associated with serious safety concerns. Activation of the complement cascade and the release of proinflammatory factors C3a and C5a may contribute to infusion related reactions, whereas opsonization with C3 fragments promotes rapid recognition and clearance of nanomaterials by mononuclear phagocytes. We used dextran-coated superparamagnetic iron oxide nanoparticles (SPIO), which are potent activators of the complement system, to study the role of nanoparticle surface chemistry in inciting complement in human serum. Using complement inhibitors and measuring levels of fluid phase markers (sC5b-9, C5a, and Bb), we found that the majority of human complement activation by SPIO is through the alternative pathways (AP). SPIO prepared with high dextran/iron ratio showed some complement activation via calcium-sensitive pathways, but the AP was responsible for the bulk of complement activation and amplification. Activation via the AP required properdin, the positive regulator of the alternative C3bBb convertase. Modification of sugar alcohols of dextran with alkylating, acylating, or crosslinking agents did not overcome complement activation and C3 opsonization. These data demonstrate that human complement activation is independent of dextran modification of SPIO and suggest a crucial role of the AP in immune recognition of nano-assemblies in human serum.
引用
收藏
页数:8
相关论文
共 50 条
  • [31] Dextran-coated iron oxide nanoparticle-induced nanotoxicity in neuron cultures
    Badman, Ryan P.
    Moore, Shanna L.
    Killian, Jessica L.
    Feng, Tuancheng
    Cleland, Thomas A.
    Hu, Fenghua
    Wang, Michelle D.
    SCIENTIFIC REPORTS, 2020, 10 (01)
  • [32] Response of the Endogenous Antioxidant Defense System Induced in RAW 264.7 Macrophages upon Exposure to Dextran-Coated Iron Oxide Nanoparticles
    Balas, Mihaela
    Iconaru, Simona Liliana
    Dinischiotu, Anca
    Buton, Nicolas
    Predoi, Daniela
    PHARMACEUTICS, 2023, 15 (02)
  • [33] Comparison between Dextran-coated Superparamagnetic Iron Oxide Nanoparticles and Magnetoliposome on Rabbit Corneal Endothelial Cells Labeling
    Wu, Ming-Feng
    Lu, Li Xia
    Sun, Xiao-Ting
    Du, Fei
    Bi, Yan-Long
    ADVANCES IN MATERIALS AND MATERIALS PROCESSING, PTS 1-3, 2013, 652-654 : 234 - +
  • [34] Transient modulation of acetylcholinesterase activity caused by exposure to dextran-coated iron oxide nanoparticles in brain of adult zebrafish
    Tavares de Oliveira, Giovanna Medeiros
    Kist, Luiza Wilges
    Brandao Pereira, Talita Carneiro
    Bortolotto, Josiane Woutheres
    Paquete, Francisco Lima
    Nunes de Oliveira, Elisa Magno
    Leite, Carlos Eduardo
    Bonan, Carla Denise
    de Souza Basso, Nara Regina
    Papaleo, Ricardo Meurer
    Bogo, Mauricio Reis
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY C-TOXICOLOGY & PHARMACOLOGY, 2014, 162 : 77 - 84
  • [35] Enhancement of irradiation effects on cancer cells by cross-linked dextran-coated iron oxide (CLIO) nanoparticles
    Huang, Fu-Kuo
    Chen, Wen-Chang
    Lai, Sheng-Feng
    Liu, Chi-Jen
    Wang, Cheng-Liang
    Wang, Chang-Hai
    Chen, Hsiang-Hsin
    Hua, Tzu-En
    Cheng, Yi-Yun
    Wu, M. K.
    Hwu, Y.
    Yang, Chung-Shi
    Margaritondo, G.
    PHYSICS IN MEDICINE AND BIOLOGY, 2010, 55 (02): : 469 - 482
  • [36] Rapid Size-Controlled Synthesis of Dextran-Coated, 64Cu-Doped Iron Oxide Nanoparticles
    Wong, Ray M.
    Gilbert, Dustin A.
    Liu, Kai
    Louie, Angelique Y.
    ACS NANO, 2012, 6 (04) : 3461 - 3467
  • [37] Intraplaque and Cellular Distribution of Dextran-Coated Iron Oxide Fluorescently Labeled Nanoparticles: Insights Into Atherothrombosis and Plaque Rupture
    Calcagno, Claudia
    Fayad, Zahi A.
    CIRCULATION-CARDIOVASCULAR IMAGING, 2017, 10 (05)
  • [38] In vivo toxicity studies of dextran coated iron oxide nanoparticles
    Prodan, A. M.
    Iconaru, S. L.
    Popa, C. L.
    Predoi, D.
    FEBS JOURNAL, 2014, 281 : 573 - 573
  • [39] Synthesis, Magnetic Characterization, and Sensing Applications of Novel Dextran-Coated Iron Oxide Nanorods
    Nath, Sudip
    Kaittanis, Charalambos
    Ramachandran, Vasanth
    Dalal, Naresh S.
    Perez, J. Manuel
    CHEMISTRY OF MATERIALS, 2009, 21 (08) : 1761 - 1767
  • [40] Comparative study of ferrofluids based on dextran-coated iron oxide and metal nanoparticles for contrast agents in magnetic resonance imaging
    Bautista, MC
    Bomati-Miguel, O
    Zhao, X
    Morales, MP
    González-Carreño, T
    de Alejo, RP
    Ruiz-Cabello, J
    Veintemillas-Verdaguer, S
    NANOTECHNOLOGY, 2004, 15 (04) : S154 - S159