Innate Immunity to H5N1 Influenza Viruses in Humans
Abstract
:1. H5N1 viruses and human infection
2. Hypercytokinemia Induction in Humans by H5N1: Insights from ex vivo Experimental Models
Cell culture system | IAV subtype | Cytokine induction | Genes up-regulated | Refs. | |
---|---|---|---|---|---|
Non-immune cells | HTBE (non polarized) | H5N1 vs H1N1 | Higher in H5N1 infected cells | IFN-β, IP-10, RANTES, IL-6, MCP-1, IL-8 | [46] |
Primary BECs | H5N1 vs H3N2 | Attenuated in H5N1 | IFN, PKR, RIG-I | [45] | |
Calu-3 | H5N1 vs H3N2 | Attenuated in H5N1 | IFN, PKR, RIG-I | [45] | |
Polarized HTBE | H5N1 vs H3N2 | Attenuated in H5N1 | IFN-β, ISGs | [51] | |
Polarized Calu-3 | H5N1 vs H3N2 | Attenuated in H5N1 | IFN-β, ISGs | [51] | |
Polarized HTBE | H5N1 vs H1N1 | Attenuated in H5N1 | IFN-β | [50] | |
HTBE (non polarized) | H5N1 vs H1N1 | Higher in H5N1 infected cells | IFN-β | [50] | |
Primary Type I pneumocytes | H5N1 vs H1N1 | Higher in H5N1 infected cells | IFN, IP-10, RANTES, IL-6 | [49] | |
Primary Type II pneumocytes | H5N1 vs H1N1 | Higher in H5N1 infected cells | IFN-β, IP-10, RANTES, IL-6 | [46] | |
HMVEC (Primary endothelial cells) | H5N1 vs H1N1 | Higher in H5N1 infected cells | IFN-β, IL-7, TNF, CCL2 | [52] | |
HUVEC (Primary endothelial cells) | H5N1 and H1N1 | Higher in H5N1 infected cells | IFN-β, ISGs | [53] | |
HTBE (non polarized) | H5N1 | Induction of IP-10 | IP-10 | [18] | |
HMVEC (Primary endothelial cells) | H5N1 | Induction of IP-10 | IP-10 | [18] | |
Immune cells | hMDMs | H5N1 vs H1N1 | Higher in H5N1 infected cells | TNF-α, MCP-1, RANTES, IP-10, IL-1β, IL-6, IFN-αβ, and TRAIL | [54] |
hMDMs | H5N1 vs H1N1 | Higher in H5N1 infected cells | RIG-I, MDA5, TLR3, IFN-β, TNF-α, IP-10 | [55] | |
hMDMs | H5N1 and H1N1 or H3N2 | Higher in H5N1 than H1N1/H3N2 infected cells | NF α, IFN-α/β,IL-1β, MCP-1, MIP-1α, RANTES, IL-12 | [56] | |
hMDMs | H5N1 and H1N1 or H3N2 | Higher in H5N1/H3N1 than in H1N1 infected cells | TNF α, IL-6, MIP-1α, IP-10 | [57] | |
hMDMs | H5N1 vs H1N1 | Higher in H1N1 infected cells | TNF-α, IFN-β, IFN-λ1,IFN-α, MCP-1 | [58] | |
hMDMs | H5N1 vs H1N1 | Higher in H1N1 infected cells | TNF-α, IFN-β, IFN-λ1, IP-10 | [59] | |
MDDCs, mDCs and pDCs | H5N1 | IFN-α, TNF-α | [60] | ||
pDCs | H5N1 and H1N1 or H3N2 | Higher in H5N1 than H1N1/H3N2 infected cells | IFN-α, TNF-α | [61] |
3. HA: Involvement in Entry and Cell Signaling
4. NS1: The Innate Immunity Suppressor
5. PB1-F2: A Double-edged Sword
6. Polymerase
7. Concluding Remarks
Conflict of Interest
Acknowledgements
References
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Ramos, I.; Fernandez-Sesma, A. Innate Immunity to H5N1 Influenza Viruses in Humans. Viruses 2012, 4, 3363-3388. https://doi.org/10.3390/v4123363
Ramos I, Fernandez-Sesma A. Innate Immunity to H5N1 Influenza Viruses in Humans. Viruses. 2012; 4(12):3363-3388. https://doi.org/10.3390/v4123363
Chicago/Turabian StyleRamos, Irene, and Ana Fernandez-Sesma. 2012. "Innate Immunity to H5N1 Influenza Viruses in Humans" Viruses 4, no. 12: 3363-3388. https://doi.org/10.3390/v4123363
APA StyleRamos, I., & Fernandez-Sesma, A. (2012). Innate Immunity to H5N1 Influenza Viruses in Humans. Viruses, 4(12), 3363-3388. https://doi.org/10.3390/v4123363