Synthetic biodegradable microparticle and nanoparticle platform technology provides the opportunity to design particles varying in composition, size, shape and surface properties for application in vaccine development. The use of particle vaccine formulations allows improvement of antigen stability and immunogenicity while allowing targeted delivery and slow release. This technology has been design to develop novel vaccines against the respiratory syncytial virus (RSV), the leading cause of lower respiratory tract infection in infants. In the last decade, several nano- and micro-sized RSV vaccine candidates have been developed and tested in animal models showing promising results. This review provides an overview of recent advances in prophylactic particle vaccines for RSV and the multiple factors that can affect vaccine efficacy.
Keywords: vaccine; nanoparticle; microparticle; RSV; VLPs
References
1. Pavia, A.T. Viral infections of the lower respiratory tract: Old viruses, new viruses, and the role of diagnosis. Clin. Infect. Dis. 2011, 52, S284–S289. [CrossRef] [PubMed]
2. Haynes, L.M. Progress and challenges in rsv prophylaxis and vaccine development. J. Infect. Dis. 2013, 208, S177–S183. [CrossRef] [PubMed]
3. Habibi, M.S.; Patel, S.; Openshaw, P. Hot topics in the prevention of respiratory syncytial virus disease. Expert Rev. Vaccines 2011, 10, 291–293. [CrossRef] [PubMed]
4. Openshaw, P.J.; Tregoning, J.S. Immune responses and disease enhancement during respiratory syncytial virus infection. Clin. Microbiol. Rev. 2005, 18, 541–555. [CrossRef] [PubMed]
5. Falsey, A.R.; Walsh, E.E. Respiratory syncytial virus infection in adults. Clin. Microbiol. Rev. 2000, 13, 371–384. [CrossRef] [PubMed]
6. Singh, M.; O0Hagan, D.T. Recent advances in vaccine adjuvants. Pharm. Res. 2002, 19, 715–728. [CrossRef] [PubMed]
7. Christensen, D. Vaccine adjuvants: Why and how. Hum. Vaccines Immunother. 2016. [CrossRef] [PubMed]
8. Kamphuis, T.; Meijerhof, T.; Stegmann, T.; Lederhofer, J.; Wilschut, J.; de Haan, A. Immunogenicity and protective capacity of a virosomal respiratory syncytial virus vaccine adjuvanted with monophosphoryl lipid a in mice. PLoS ONE 2012, 7, e36812. [CrossRef] [PubMed]
9. Frietze, K.M.; Peabody, D.S.; Chackerian, B. Engineering virus-like particles as vaccine platforms. Curr. Opin. Virol. 2016, 18, 44–49. [CrossRef] [PubMed]
10. Hwang, H.S.; Lee, Y.T.; Kim, K.H.; Park, S.; Kwon, Y.M.; Lee, Y.; Ko, E.J.; Jung, Y.J.; Lee, J.S.; Kim, Y.J.; et al. Combined virus-like particle and fusion protein-encoding DNA vaccination of cotton rats induces protection against respiratory syncytial virus without causing vaccine-enhanced disease. Virology 2016, 494, 215–224. [CrossRef] [PubMed]
11. Cimica, V.; Boigard, H.; Bhatia, B.; Fallon, J.T.; Alimova, A.; Gottlieb, P.; Galarza, J.M. Novel respiratory syncytial virus-like particle vaccine composed of the postfusion and prefusion conformations of the f glycoprotein. Clin. Vaccine Immunol. 2016, 23, 451–459. [CrossRef] [PubMed]
12. Kim, K.H.; Lee, Y.T.; Hwang, H.S.; Kwon, Y.M.; Kim, M.C.; Ko, E.J.; Lee, J.S.; Lee, Y.; Kang, S.M. Virus-like particle vaccine containing the f protein of respiratory syncytial virus confers protection without pulmonary disease by modulating specific subsets of dendritic cells and effector t cells. J. Virol. 2015, 89, 11692–11705. [CrossRef] [PubMed]
13. Sun, H.X.; Xie, Y.; Ye, Y.P. Iscoms and iscomatrix. Vaccine 2009, 27, 4388–4401. [CrossRef] [PubMed]
14. Drane, D.; Gittleson, C.; Boyle, J.; Maraskovsky, E. Iscomatrix adjuvant for prophylactic and therapeutic vaccines. Expert Rev. Vaccines 2007, 6, 761–772. [CrossRef] [PubMed]
15. Oussoren, C.; Zuidema, J.; Crommelin, D.J.; Storm, G. Lymphatic uptake and biodistribution of liposomes after subcutaneous injection. II. Influence of liposomal size, lipid compostion and lipid dose. Biochim. Biophys. Acta 1997, 1328, 261–272. [CrossRef]
16. Adair, B.M. Nanoparticle vaccines against respiratory viruses. Wiley Interdiscip. Rev. Nanomed. Nanobiotechnol. 2009, 1, 405–414. [CrossRef] [PubMed]
17. Bienenstock, J.; McDermott, M.R. Bronchus- and nasal-associated lymphoid tissues. Immunol. Rev. 2005, 206, 22–31. [CrossRef] [PubMed]
18. Foo, S.Y.; Phipps, S. Regulation of inducible balt formation and contribution to immunity and pathology. Mucosal Immunol. 2010, 3, 537–544. [CrossRef] [PubMed]
19. Mutoh, M.; Kimura, S.; Takahashi-Iwanaga, H.; Hisamoto, M.; Iwanaga, T.; Iida, J. Rankl regulates differentiation of microfold cells in mouse nasopharynx-associated lymphoid tissue (nalt). Cell Tissue Res. 2016, 364, 175–184. [CrossRef] [PubMed]
20. Xu, B.; Wagner, N.; Pham, L.N.; Magno, V.; Shan, Z.; Butcher, E.C.; Michie, S.A. Lymphocyte homing to bronchus-associated lymphoid tissue (balt) is mediated by l-selectin/pnad, alpha4beta1 integrin/vcam-1, and lfa-1 adhesion pathways. J. Exp. Med. 2003, 197, 1255–1267. [CrossRef] [PubMed]
21. Guy-Grand, D.; Griscelli, C.; Vassalli, P. The gut-associated lymphoid system: Nature and properties of the large dividing cells. Eur. J. Immunol. 1974, 4, 435–443. [CrossRef] [PubMed]
22. Onodera, T.; Takahashi, Y.; Yokoi, Y.; Ato, M.; Kodama, Y.; Hachimura, S.; Kurosaki, T.; Kobayashi, K. Memory B cells in the lung participate in protective humoral immune responses to pulmonary influenza virus reinfection. Proc. Natl. Acad. Sci. USA 2012, 109, 2485–2490. [CrossRef] [PubMed]
23. Viuff, B.; Tjornehoj, K.; Larsen, L.E.; Rontved, C.M.; Uttenthal, A.; Ronsholt, L.; Alexandersen, S. Replication and clearance of respiratory syncytial virus: Apoptosis is an important pathway of virus clearance after experimental infection with bovine respiratory syncytial virus. Am. J. Pathol. 2002, 161, 2195–2207. [CrossRef]
24. Kirby, A.C.; Coles, M.C.; Kaye, P.M. Alveolar macrophages transport pathogens to lung draining lymph nodes. J. Immunol. 2009, 183, 1983–1989. [CrossRef] [PubMed]
25. Jenkins, S.J.; Ruckerl, D.; Cook, P.C.; Jones, L.H.; Finkelman, F.D.; van Rooijen, N.; MacDonald, A.S.; Allen, J.E. Local macrophage proliferation, rather than recruitment from the blood, is a signature of TH2 inflammation. Science 2011, 332, 1284–1288. [CrossRef] [PubMed]
26. Braciale, T.J.; Sun, J.; Kim, T.S. Regulating the adaptive immune response to respiratory virus infection. Nat. Rev. Immunol. 2012, 12, 295–305. [CrossRef] [PubMed]
27. Angelin-Duclos, C.; Cattoretti, G.; Lin, K.I.; Calame, K. Commitment of b lymphocytes to a plasma cell fate is associated with blimp-1 expression in vivo. J. Immunol. 2000, 165, 5462–5471. [CrossRef] [PubMed]
28. Waffarn, E.E.; Baumgarth, N. Protective B cell responses to flu—No fluke! J. Immunol. 2011, 186, 3823–3829. [CrossRef] [PubMed]
29. Zouali, M.; Richard, Y. Marginal zone B-cells, a gatekeeper of innate immunity. Front. Immunol. 2011. [CrossRef] [PubMed]
30. Singleton, R.; Etchart, N.; Hou, S.; Hyland, L. Inability to evoke a long-lasting protective immune response to respiratory syncytial virus infection in mice correlates with ineffective nasal antibody responses. J. Virol. 2003, 77, 11303–11311. [CrossRef] [PubMed]
31. Harcourt, J.; Alvarez, R.; Jones, L.P.; Henderson, C.; Anderson, L.J.; Tripp, R.A. Respiratory syncytial virus g protein and g protein cx3c motif adversely affect CX3CR1+ T cell responses. J. Immunol. 2006, 176, 1600–1608. [CrossRef] [PubMed]
32. Nidhi; Rashid, M.; Kaur, V.; Hallan, S.S.; Sharma, S.; Mishra, N. Microparticles as controlled drug delivery carrier for the treatment of ulcerative colitis: A brief review. Saudi Pharm. J. 2016, 24, 458–472. [CrossRef] [PubMed]
33. Bachmann, M.F.; Jennings, G.T. Vaccine delivery: A matter of size, geometry, kinetics and molecular patterns. Nat. Rev. Immunol. 2010, 10, 787–796. [CrossRef] [PubMed]
34. Benne, N.; van Duijn, J.; Kuiper, J.; Jiskoot, W.; Slutter, B. Orchestrating immune responses: How size, shape and rigidity affect the immunogenicity of particulate vaccines. J. Control. Release 2016, 234, 124–134. [CrossRef] [PubMed]
35. Manolova, V.; Flace, A.; Bauer, M.; Schwarz, K.; Saudan, P.; Bachmann, M.F. Nanoparticles target distinct dendritic cell populations according to their size. Eur. J. Immunol. 2008, 38, 1404–1413. [CrossRef] [PubMed]
36. Iyer, V.; Cayatte, C.; Guzman, B.; Schneider-Ohrum, K.; Matuszak, R.; Snell, A.; Rajani, G.M.; McCarthy, M.P.; Muralidhara, B. Impact of formulation and particle size on stability and immunogenicity of oil-in-water emulsion adjuvants. Hum. Vaccines Immunother. 2015, 11, 1853–1864. [CrossRef] [PubMed]
37. Mottram, P.L.; Leong, D.; Crimeen-Irwin, B.; Gloster, S.; Xiang, S.D.; Meanger, J.; Ghildyal, R.; Vardaxis, N.; Plebanski, M. Type 1 and 2 immunity following vaccination is influenced by nanoparticle size: Formulation of a model vaccine for respiratory syncytial virus. Mol. Pharm. 2007, 4, 73–84. [CrossRef] [PubMed]
38. Xiang, S.D.; Scholzen, A.; Minigo, G.; David, C.; Apostolopoulos, V.; Mottram, P.L.; Plebanski, M. Pathogen recognition and development of particulate vaccines: Does size matter? Methods 2006, 40, 1–9. [CrossRef] [PubMed]
39. Matsunaga, Y.; Wakatsuki, Y.; Tabata, Y.; Kawasaki, H.; Usui, T.; Yoshida, M.; Itoh, T.; Habu, S.; Kita, T. Oral immunization with size-purified microsphere beads as a vehicle selectively induces systemic tolerance and sensitization. Vaccine 2000, 19, 579–588. [CrossRef]
40. Tabata, Y.; Inoue, Y.; Ikada, Y. Size effect on systemic and mucosal immune responses induced by oral administration of biodegradable microspheres. Vaccine 1996, 14, 1677–1685. [CrossRef]
41. Huang, X.; Li, L.; Liu, T.; Hao, N.; Liu, H.; Chen, D.; Tang, F. The shape effect of mesoporous silica nanoparticles on biodistribution, clearance, and biocompatibility in vivo. ACS Nano 2011, 5, 5390–5399. [CrossRef] [PubMed]
42. Geng, Y.; Dalhaimer, P.; Cai, S.; Tsai, R.; Tewari, M.; Minko, T.; Discher, D.E. Shape effects of filaments versus spherical particles in flow and drug delivery. Nat. Nanotechnol. 2007, 2, 249–255. [CrossRef] [PubMed]
43. Wang, Z.; Tiruppathi, C.; Cho, J.; Minshall, R.D.; Malik, A.B. Delivery of nanoparticle: Complexed drugs across the vascular endothelial barrier via caveolae. IUBMB Life 2011, 63, 659–667. [CrossRef] [PubMed]
44. Pelkmans, L. Secrets of caveolae- and lipid raft-mediated endocytosis revealed by mammalian viruses. Biochim. Biophys. Acta 2005, 1746, 295–304. [CrossRef] [PubMed]
45. Qaddoumi, M.G.; Gukasyan, H.J.; Davda, J.; Labhasetwar, V.; Kim, K.J.; Lee, V.H. Clathrin and caveolin-1 expression in primary pigmented rabbit conjunctival epithelial cells: Role in plga nanoparticle endocytosis. Mol. Vis. 2003, 9, 559–568. [PubMed]
46. Chakraborty, A.; Jana, N.R. Clathrin to lipid raft-endocytosis via controlled surface chemistry and efficient perinuclear targeting of nanoparticle. J. Phys. Chem. Lett. 2015, 6, 3688–3697. [CrossRef] [PubMed]
47. Liu, Z.; Roche, P.A. Macropinocytosis in phagocytes: Regulation of mhc class-II-restricted antigen presentation in dendritic cells. Front. Physiol. 2015. [CrossRef] [PubMed]
48. ten Broeke, T.; Wubbolts, R.; Stoorvogel, W. Mhc class II antigen presentation by dendritic cells regulated through endosomal sorting. Cold Spring Harb. Perspect. Biol. 2013. [CrossRef] [PubMed]
49. Baleeiro, R.B.; Rietscher, R.; Diedrich, A.; Czaplewska, J.A.; Lehr, C.M.; Scherliess, R.; Hanefeld, A.; Gottschaldt, M.; Walden, P. Spatial separation of the processing and MHC class I loading compartments for cross-presentation of the tumor-associated antigen her2/neu by human dendritic cells. Oncoimmunology 2015. [CrossRef] [PubMed]
50. Kovacsovics-Bankowski, M.; Clark, K.; Benacerraf, B.; Rock, K.L. Efficient major histocompatibility complex class i presentation of exogenous antigen upon phagocytosis by macrophages. Proc. Natl. Acad. Sci. USA 1993, 90, 4942–4946. [CrossRef] [PubMed]
51. Song, C.; Noh, Y.W.; Lim, Y.T. Polymer nanoparticles for cross-presentation of exogenous antigens and enhanced cytotoxic t-lymphocyte immune response. Int. J. Nanomed. 2016, 11, 3753–3764.
52. Burgdorf, S.; Kautz, A.; Bohnert, V.; Knolle, P.A.; Kurts, C. Distinct pathways of antigen uptake and intracellular routing in CD4 and CD8 T cell activation. Science 2007, 316, 612–616. [CrossRef] [PubMed]
53. Amigorena, S. Antigen presentation: From cell biology to physiology. Immunol. Rev. 2016, 272, 5–7. [CrossRef] [PubMed]
54. Alloatti, A.; Kotsias, F.; Magalhaes, J.G.; Amigorena, S. Dendritic cell maturation and cross-presentation: Timing matters! Immunol. Rev. 2016, 272, 97–108. [CrossRef] [PubMed]
55. Foged, C.; Brodin, B.; Frokjaer, S.; Sundblad, A. Particle size and surface charge affect particle uptake by human dendritic cells in an in vitro model. Int. J. Pharm. 2005, 298, 315–322. [CrossRef] [PubMed]
56. Patino, T.; Soriano, J.; Barrios, L.; Ibanez, E.; Nogues, C. Surface modification of microparticles causes differential uptake responses in normal and tumoral human breast epithelial cells. Sci. Rep. 2015. [CrossRef] [PubMed]
57. Li, Z.; Xiong, F.; He, J.; Dai, X.; Wang, G. Surface-functionalized, pH-responsive poly(lactic-co-glycolic acid)-based microparticles for intranasal vaccine delivery: Effect of surface modification with chitosan and mannan. Eur. J. Pharm. Biopharm. 2016. [CrossRef] [PubMed]
58. Zuckerman, J.N. The importance of injecting vaccines into muscle. Different patients need different needle sizes. Br. Med. J. 2000, 321, 1237–1238. [CrossRef]
59. Habibi, M.S.; Jozwik, A.; Makris, S.; Dunning, J.; Paras, A.; DeVincenzo, J.P.; de Haan, C.A.; Wrammert, J.; Openshaw, P.J.; Chiu, C.; et al. Impaired antibody-mediated protection and defective iga b-cell memory in experimental infection of adults with respiratory syncytial virus. Am. J. Respir. Crit. Care Med. 2015, 191, 1040–1049. [CrossRef] [PubMed]
60. Zaman, M.; Chandrudu, S.; Toth, I. Strategies for intranasal delivery of vaccines. Drug Deliv. Transl. Res. 2013, 3, 100–109. [CrossRef] [PubMed]
61. Garg, N.K.; Mangal, S.; Khambete, H.; Tyagi, R.K. Mucosal delivery of vaccines: Role of mucoadhesive/ biodegradable polymers. Recent Pat. Drug Deliv. Formul. 2010, 4, 114–128. [CrossRef] [PubMed]
62. Mansoor, F.; Earley, B.; Cassidy, J.P.; Markey, B.; Doherty, S.; Welsh, M.D. Comparing the immune response to a novel intranasal nanoparticle PLGA vaccine and a commercial BPI3V vaccine in dairy calves. BMC Vet. Res. 2015. [CrossRef] [PubMed]
63. Firdous, J.; Islam, M.A.; Park, S.M.; Cheon, I.S.; Shim, B.S.; Yoon, H.S.; Song, M.; Chang, J.; Choi, Y.J.; Park, Y.M.; et al. Induction of long-term immunity against respiratory syncytial virus glycoprotein by an osmotic polymeric nanocarrier. Acta Biomater. 2014, 10, 4606–4617. [CrossRef] [PubMed]
64. Kraan, H.; Vrieling, H.; Czerkinsky, C.; Jiskoot, W.; Kersten, G.; Amorij, J.P. Buccal and sublingual vaccine delivery. J. Control. Release 2014, 190, 580–592. [CrossRef] [PubMed]
65. Jalilian, F.A.; Yusoff, K.; Suhaimi, S.; Amini, R.; Sekawi, Z.; Jahanshiri, F. Development of two salmonella-based oral vaccines against human respiratory syncytial virus. J. Biol. Regul. Homeost. Agents 2015, 29, 7–18.
66. Fu, Y.H.; Jiao, Y.Y.; He, J.S.; Giang, G.Y.; Zhang, W.; Yan, Y.F.; Ma, Y.; Hua, Y.; Zhang, Y.; Peng, X.L.; et al. Sublingual administration of a helper-dependent adenoviral vector expressing the codon-optimized soluble fusion glycoprotein of human respiratory syncytial virus elicits protective immunity in mice. Antiviral Res. 2014, 105, 72–79. [CrossRef] [PubMed]
67. Tree, J.A.; Bembridge, G.; Hou, S.; Taylor, G.; Fashola-Stone, E.; Melero, J.; Cranage, M.P. An assessment of different DNA delivery systems for protection against respiratory syncytial virus infection in the murine model: Gene-gun delivery induces igg in the lung. Vaccine 2004, 22, 2438–2443. [CrossRef] [PubMed]
68. de Titta, A.; Ballester, M.; Julier, Z.; Nembrini, C.; Jeanbart, L.; van der Vlies, A.J.; Swartz, M.A.; Hubbell, J.A. Nanoparticle conjugation of cpg enhances adjuvancy for cellular immunity and memory recall at low dose. Proc. Natl. Acad. Sci. USA 2013, 110, 19902–19907. [CrossRef] [PubMed]
69. Bobbala, S.; Hook, S. Is there an optimal formulation and delivery strategy for subunit vaccines? Pharm. Res. 2016, 33, 2078–2097. [CrossRef] [PubMed]
70. Bitencourt Cda, S.; Silva, L.B.; Pereira, P.A.; Gelfuso, G.M.; Faccioli, L.H. Microspheres prepared with different co-polymers of poly (lactic-glycolic acid) (plga) or with chitosan cause distinct effects on macrophages. Colloids Surf. B 2015, 136, 678–686. [CrossRef] [PubMed]
71. Cheung, R.C.; Ng, T.B.; Wong, J.H.; Chan, W.Y. Chitosan: An update on potential biomedical and pharmaceutical applications. Mar. Drugs 2015, 13, 5156–5186. [CrossRef] [PubMed]
72. Bird, G.H.; Boyapalle, S.; Wong, T.; Opoku-Nsiah, K.; Bedi, R.; Crannell, W.C.; Perry, A.F.; Nguyen, H.; Sampayo, V.; Devareddy, A.; et al. Mucosal delivery of a double-stapled rsv peptide prevents nasopulmonary infection. J. Clin. Investig. 2014, 124, 2113–2124. [CrossRef] [PubMed]
73. Mohapatra, S.S. Mucosal gene expression vaccine: A novel vaccine strategy for respiratory syncytial virus. Pediatr. Infect. Dis. J. 2003, 22, S100–S103. [CrossRef] [PubMed]
74. Boyoglu, S.; Vig, K.; Pillai, S.; Rangari, V.; Dennis, V.A.; Khazi, F.; Singh, S.R. Enhanced delivery and expression of a nanoencapsulated DNA vaccine vector for respiratory syncytial virus. Nanomedicine 2009, 5, 463–472. [CrossRef] [PubMed]
75. Eroglu, E.; Tiwari, P.M.; Waffo, A.B.; Miller, M.E.; Vig, K.; Dennis, V.A.; Singh, S.R. A nonviral phema+chitosan nanosphere-mediated high-efficiency gene delivery system. Int. J. Nanomed. 2013, 8, 1403–1415.
76. Zhang, W.; Yang, H.; Kong, X.; Mohapatra, S.; San Juan-Vergara, H.; Hellermann, G.; Behera, S.; Singam, R.; Lockey, R.F.; Mohapatra, S.S. Inhibition of respiratory syncytial virus infection with intranasal sirna nanoparticles targeting the viral ns1 gene. Nat. Med. 2005, 11, 56–62. [CrossRef] [PubMed]
77. Salatin, S.; Barar, J.; Barzegar-Jalali, M.; Adibkia, K.; Milani, M.A.; Jelvehgari, M. Hydrogel nanoparticles and nanocomposites for nasal drug/vaccine delivery. Arch. Pharm. Res. 2016, 39, 1181–1192. [CrossRef] [PubMed]
78. Biswas, S.; Chattopadhyay, M.; Sen, K.K.; Saha, M.K. Development and characterization of alginate coated low molecular weight chitosan nanoparticles as new carriers for oral vaccine delivery in mice. Carbohydr. Polym. 2015, 121, 403–410. [CrossRef] [PubMed]
79. Gentile, P.; Chiono, V.; Carmagnola, I.; Hatton, P.V. An overview of poly (lactic-co-glycolic) acid (plga)-based biomaterials for bone tissue engineering. Int. J. Mol. Sci. 2014, 15, 3640–3659. [CrossRef] [PubMed]
80. Helson, R.; Olszewska, W.; Singh, M.; Megede, J.Z.; Melero, J.A.; O0Hagan, D.; Openshaw, P.J. Polylactide-co-glycolide (plg) microparticles modify the immune response to DNA vaccination. Vaccine 2008, 26, 753–761. [CrossRef] [PubMed]
81. Nguyen, T.N.; Power, U.F.; Robert, A.; Haeuw, J.F.; Helffer, K.; Perez, A.; Asin, M.A.; Corvaia, N.; Libon, C. The respiratory syncytial virus g protein conserved domain induces a persistent and protective antibody response in rodents. PLoS ONE 2012, 7, e34331. [CrossRef] [PubMed]
82. Kavanagh, O.V.; Adair, B.M.; Welsh, M.; Earley, B. Immunogenetic responses in calves to intranasal delivery of bovine respiratory syncytial virus (brsv) epitopes encapsulated in poly (D,L-lactide-co-glycolide) microparticles. Res. Vet. Sci. 2013, 95, 786–793. [CrossRef] [PubMed]
83. Vallhov, H.; Gabrielsson, S.; Stromme, M.; Scheynius, A.; Garcia-Bennett, A.E. Mesoporous silica particles induce size dependent effects on human dendritic cells. Nano Lett. 2007, 7, 3576–3582. [CrossRef] [PubMed]
84. Wang, T.; Jiang, H.; Zhao, Q.; Wang, S.; Zou, M.; Cheng, G. Enhanced mucosal and systemic immune responses obtained by porous silica nanoparticles used as an oral vaccine adjuvant: Effect of silica architecture on immunological properties. Int. J. Pharm. 2012, 436, 351–358. [CrossRef] [PubMed]
85. Deng, Y.; Mathaes, R.; Winter, G.; Engert, J. Encapsulation of antigen-loaded silica nanoparticles into microparticles for intradermal powder injection. Eur. J. Pharm. Sci. 2014, 63, 154–166. [CrossRef] [PubMed]
86. Francica, J.R.; Lynn, G.M.; Laga, R.; Joyce, M.G.; Ruckwardt, T.J.; Moribito, K.M.; Chen, M.; Chaudhuri, R.; Zhang, B.; Sastry, M.; et al. Thermo-responsive polymer nanoparticles co-deliver rsv f trimers with a TLR-7/8 adjuvant. Bioconjug. Chem. 2016. [CrossRef] [PubMed]
87. Yan, Y.; Björnmalm, M.; Caruso, F. Assembly of layer-by-layer particles and their interactions with biological systems. Chem. Mater. 2014, 26, 452–460. [CrossRef]
88. Jorquera, P.A.; Choi, Y.; Oakley, K.E.; Powell, T.J.; Boyd, J.G.; Palath, N.; Haynes, L.M.; Anderson, L.J.; Tripp, R.A. Nanoparticle vaccines encompassing the respiratory syncytial virus (RSV) G protein CX3C chemokine motif induce robust immunity protecting from challenge and disease. PLoS ONE 2013, 8, e74905. [CrossRef] [PubMed]
89. Powell, T.J.; Mistillis, M.; Palath, N.; Tang, J.; Jacobs, A.; Cardenas, W.; Boyd, J.; Prausnitz, M. Immunization with synthetic lbl microparticle vaccine administered using a microneedle patch elicits humoral and cellular immune responses and protects mice from challenge with respiratory syncytial virus. J. Immunol. 2016, 196, 76–78.
90. Gu, H.; Li, T.; Han, L.; Zhu, P.; Zhang, P.; Zhang, S.; Sun, S.; Duan, Y.; Xing, L.; Zhao, Z.; et al. Protection conferred by virus-like particle vaccines against respiratory syncytial virus infection in mice by intranasal vaccination. Hum. Vaccines Immunother. 2015, 11, 1057–1064. [CrossRef] [PubMed]
91. Quan, F.S.; Kim, Y.; Lee, S.; Yi, H.; Kang, S.M.; Bozja, J.; Moore, M.L.; Compans, R.W. Viruslike particle vaccine induces protection against respiratory syncytial virus infection in mice. J. Infect. Dis. 2011, 204, 987–995. [CrossRef] [PubMed]
92. Cullen, L.M.; Blanco, J.C.; Morrison, T.G. Cotton rat immune responses to virus-like particles containing the pre-fusion form of respiratory syncytial virus fusion protein. J. Transl. Med. 2015. [CrossRef] [PubMed]
93. Takimoto, T.; Hurwitz, J.L.; Coleclough, C.; Prouser, C.; Krishnamurthy, S.; Zhan, X.; Boyd, K.; Scroggs, R.A.; Brown, B.; Nagai, Y.; et al. Recombinant sendai virus expressing the g glycoprotein of respiratory syncytial virus (rsv) elicits immune protection against rsv. J. Virol. 2004, 78, 6043–6047. [CrossRef] [PubMed]
94. Walpita, P.; Johns, L.M.; Tandon, R.; Moore, M.L. Mammalian cell-derived respiratory syncytial virus-like particles protect the lower as well as the upper respiratory tract. PLoS ONE 2015, 10, e0130755. [CrossRef] [PubMed]
95. Yusibov, V.; Mett, V.; Mett, V.; Davidson, C.; Musiychuk, K.; Gilliam, S.; Farese, A.; Macvittie, T.; Mann, D. Peptide-based candidate vaccine against respiratory syncytial virus. Vaccine 2005, 23, 2261–2265. [CrossRef] [PubMed]
96. Yusibov, V.; Streatfield, S.J.; Kushnir, N.; Roy, G.; Padmanaban, A. Hybrid viral vectors for vaccine and antibody production in plants. Curr. Pharm. Des. 2013, 19, 5574–5586. [CrossRef] [PubMed]
97. Schickli, J.H.; Whitacre, D.C.; Tang, R.S.; Kaur, J.; Lawlor, H.; Peters, C.J.; Jones, J.E.; Peterson, D.L.; McCarthy, M.P.; Van Nest, G.; et al. Palivizumab epitope-displaying virus-like particles protect rodents from rsv challenge. J. Clin. Investig. 2015, 125, 1637–1647. [CrossRef] [PubMed]
98. Van Braeckel-Budimir, N.; Haijema, B.J.; Leenhouts, K. Bacterium-like particles for efficient immune stimulation of existing vaccines and new subunit vaccines in mucosal applications. Front. Immunol. 2013. [CrossRef] [PubMed]
99. Qiao, L.; Zhang, Y.; Chai, F.; Tan, Y.; Huo, C.; Pan, Z. Chimeric virus-like particles containing a conserved region of the g protein in combination with a single peptide of the M2 protein confer protection against respiratory syncytial virus infection. Antiviral Res. 2016, 131, 131–140. [CrossRef] [PubMed]
100. Glenn, G.M.; Fries, L.F.; Thomas, D.N.; Smith, G.; Kpamegan, E.; Lu, H.; Flyer, D.; Jani, D.; Hickman, S.P.; Piedra, P.A. A randomized, blinded, controlled, dose-ranging study of a respiratory syncytial virus recombinant fusion (f) nanoparticle vaccine in healthy women of childbearing age. J. Infect. Dis. 2016, 213, 411–422. [CrossRef] [PubMed]