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For: Carty M, Guy C, Bowie AG. Detection of Viral Infections by Innate Immunity. Biochem Pharmacol. 2021;183:114316. [PMID: 33152343 DOI: 10.1016/j.bcp.2020.114316] [Cited by in Crossref: 103] [Cited by in F6Publishing: 112] [Article Influence: 34.3] [Reference Citation Analysis]
Number Citing Articles
1 Jahun AS, Sorgeloos F, Chaudhry Y, Arthur SE, Hosmillo M, Georgana I, Izuagbe R, Goodfellow IG. Leaked genomic and mitochondrial DNA contribute to the host response to noroviruses in a STING-dependent manner. Cell Rep 2023;42:112179. [PMID: 36943868 DOI: 10.1016/j.celrep.2023.112179] [Reference Citation Analysis]
2 Zhang D, Zhao Y, You X, He S, Li E. Repurposing Axl Kinase Inhibitors for the Treatment of Respiratory Syncytial Virus Infection. Antimicrob Agents Chemother 2023;67:e0148722. [PMID: 36853000 DOI: 10.1128/aac.01487-22] [Reference Citation Analysis]
3 Biaesch K, Knapp S, Korn P. IFN-Induced PARPs—Sensors of Foreign Nucleic Acids? Pathogens 2023;12:457. [DOI: 10.3390/pathogens12030457] [Reference Citation Analysis]
4 Fu L, Zhou X, Jiao Q, Chen X. The Functions of TRIM56 in Antiviral Innate Immunity and Tumorigenesis. Int J Mol Sci 2023;24. [PMID: 36902478 DOI: 10.3390/ijms24055046] [Reference Citation Analysis]
5 Chera JS, Kumar S, Bairagi AK, Kumar A, Chandra P, Vats A, Ali M, Roshan M, Kataria RS, De S. Poly(I:C), a double stranded RNA analog, activates the anti-viral DNA sensors in buffalo fibroblasts. Veterinary Vaccine 2023. [DOI: 10.1016/j.vetvac.2023.100016] [Reference Citation Analysis]
6 Andreescu M, Frîncu F, Plotogea M, Mehedințu C. Recurrent Abortion and the Involvement of Killer-Cell Immunoglobulin-like Receptor (KIR) Genes, Activated T Cells, NK Abnormalities, and Cytokine Profiles. J Clin Med 2023;12. [PMID: 36835892 DOI: 10.3390/jcm12041355] [Reference Citation Analysis]
7 Miao G, Chen Z, Cao H, Wu W, Chu X, Liu H, Zhang L, Zhu H, Cai H, Lu X, Shi J, Liu Y, Feng T. From Immunogen to COVID-19 vaccines: Prospects for the post-pandemic era. Biomed Pharmacother 2023;158:114208. [PMID: 36800265 DOI: 10.1016/j.biopha.2022.114208] [Reference Citation Analysis]
8 Acevedo-Whitehouse K, Bruno R. Potential health risks of mRNA-based vaccine therapy: A hypothesis. Med Hypotheses 2023;171:111015. [PMID: 36718314 DOI: 10.1016/j.mehy.2023.111015] [Reference Citation Analysis]
9 Tafesh-Edwards G, Eleftherianos I. Functional role of thioester-containing proteins in the Drosophila anti-pathogen immune response. Dev Comp Immunol 2023;139:104578. [PMID: 36270515 DOI: 10.1016/j.dci.2022.104578] [Reference Citation Analysis]
10 Zhuandi G, Zhaofang Y, Dianyu L, Mengyuan P, Suocheng W. Immune escape of bovine parvovirus by VP1 inhibiting IFN-β production through the RIG-I-like receptor pathway. Int Microbiol 2023;:1-8. [PMID: 36703013 DOI: 10.1007/s10123-023-00330-8] [Reference Citation Analysis]
11 Sun H, Chan JF, Yuan S. Cellular Sensors and Viral Countermeasures: A Molecular Arms Race between Host and SARS-CoV-2. Viruses 2023;15. [PMID: 36851564 DOI: 10.3390/v15020352] [Reference Citation Analysis]
12 Wang M, Zhang M, Qiu J, Liu C, Lou Y, Wang T, Zhang Y, Mao Y. PU.1-CD23 signaling mediates pulmonary innate immunity against Aspergillus fumigatus infection by driving inflammatory response. BMC Immunol 2023;24:4. [PMID: 36650424 DOI: 10.1186/s12865-023-00539-2] [Reference Citation Analysis]
13 Fujii K, Kubo Y, Noguchi T, Tobita K. Effects of Bacillus subtilis Natto Strains on Antiviral Responses in Resiquimod-Stimulated Human M1-Phenotype Macrophages. Foods 2023;12. [PMID: 36673407 DOI: 10.3390/foods12020313] [Reference Citation Analysis]
14 Akhtar A, Kaur J, Chiu MN, Sah SP. Repurposing Anti-inflammatory Agents in the Potential Treatment of SARS-COV-2 Infection. Drug Repurposing for Emerging Infectious Diseases and Cancer 2023. [DOI: 10.1007/978-981-19-5399-6_17] [Reference Citation Analysis]
15 Shen S, Rui Y, Wang Y, Su J, Yu XF. SARS-CoV-2, HIV, and HPV: Convergent evolution of selective regulation of cGAS-STING signaling. J Med Virol 2023;95:e28220. [PMID: 36229923 DOI: 10.1002/jmv.28220] [Reference Citation Analysis]
16 Ma H, Liu M, Fu R, Feng J, Ren H, Cao J, Shi M. Phase separation in innate immune response and inflammation-related diseases. Front Immunol 2023;14:1086192. [PMID: 36860877 DOI: 10.3389/fimmu.2023.1086192] [Reference Citation Analysis]
17 Tomaszek Ł. The biological role of IL-1, IL-6 and CRP and their application in the diagnosis of the inflammatory process. Diagn Lab 2022;58:66-73. [DOI: 10.5604/01.3001.0016.1345] [Reference Citation Analysis]
18 Wu Y, Zhang M, Yuan C, Ma Z, Li W, Zhang Y, Su L, Xu J, Liu W. Progress of cGAS-STING signaling in response to SARS-CoV-2 infection. Front Immunol 2022;13:1010911. [PMID: 36569852 DOI: 10.3389/fimmu.2022.1010911] [Reference Citation Analysis]
19 Li J, Li J, Jing Z, Yu Q, Zheng G, Zhang B, Xing L, Zhang H, Wan F, Li C. Antiviral function of peptidoglycan recognition protein in Spodoptera exigua (Lepidoptera: Noctuidae). Insect Sci 2022. [PMID: 36464632 DOI: 10.1111/1744-7917.13158] [Reference Citation Analysis]
20 Zheng Q, Lin R, Chen Y, Lv Q, Zhang J, Zhai J, Xu W, Wang W. SARS-CoV-2 induces "cytokine storm" hyperinflammatory responses in RA patients through pyroptosis. Front Immunol 2022;13:1058884. [PMID: 36532040 DOI: 10.3389/fimmu.2022.1058884] [Reference Citation Analysis]
21 Song J, Liu Y, Guo Y, Qu Z, Liu P, Li F, Yang C, Fan F, Chen Z. TMEM173 rs7447927 genetic polymorphism and susceptibility to severe enterovirus 71 infection in Chinese children. Immun Inflamm Dis 2022;10:e742. [PMID: 36444630 DOI: 10.1002/iid3.742] [Reference Citation Analysis]
22 Espino A, Gouilly J, Chen Q, Colin P, Guerby P, Izopet J, Amara A, Tabiasco J, Al-Daccak R, El Costa H, Jabrane-Ferrat N. The mechanisms underlying the immune control of Zika virus infection at the maternal-fetal interface. Front Immunol 2022;13:1000861. [PMID: 36483552 DOI: 10.3389/fimmu.2022.1000861] [Reference Citation Analysis]
23 Mai D, June CH, Sheppard NC. In vivo gene immunotherapy for cancer. Sci Transl Med 2022;14. [DOI: 10.1126/scitranslmed.abo3603] [Reference Citation Analysis]
24 Cavalcante LTDF, da Fonseca GC, Amado Leon LA, Salvio AL, Brustolini OJ, Gerber AL, Guimarães APDC, Marques CAB, Fernandes RA, Ramos Filho CHF, Kader RL, Pimentel Amaro M, da Costa Gonçalves JP, Vieira Alves-leon S, Vasconcelos ATR. Buffy Coat Transcriptomic Analysis Reveals Alterations in Host Cell Protein Synthesis and Cell Cycle in Severe COVID-19 Patients. IJMS 2022;23:13588. [DOI: 10.3390/ijms232113588] [Reference Citation Analysis]
25 Su W, Lin XT, Zhao S, Zheng XQ, Zhou YQ, Xiao LL, Chen H, Zhang ZY, Zhang LJ, Wu XX. Tripartite motif-containing protein 46 accelerates influenza A H7N9 virus infection by promoting K48-linked ubiquitination of TBK1. Virol J 2022;19:176. [PMID: 36329446 DOI: 10.1186/s12985-022-01907-x] [Reference Citation Analysis]
26 Langbein LE, El Hajjar R, Kim WY, Yang H. The convergence of tumor suppressors on the type I interferon pathway in clear cell renal cell carcinoma and its therapeutic implications. Am J Physiol Cell Physiol 2022;323:C1417-29. [PMID: 36154696 DOI: 10.1152/ajpcell.00255.2022] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
27 Garay JA, Silva JE, Di Genaro MS, Davicino RC. The Multiple Faces of Nitric Oxide in Chronic Granulomatous Disease: A Comprehensive Update. Biomedicines 2022;10:2570. [PMID: 36289832 DOI: 10.3390/biomedicines10102570] [Reference Citation Analysis]
28 Ge Z, Ding S. Regulation of cGAS/STING signaling and corresponding immune escape strategies of viruses. Front Cell Infect Microbiol 2022;12:954581. [DOI: 10.3389/fcimb.2022.954581] [Reference Citation Analysis]
29 Kusiak A, Brady G. Bifurcation of signalling in human innate immune pathways to NF-kB and IRF family activation. Biochem Pharmacol 2022;205:115246. [PMID: 36088989 DOI: 10.1016/j.bcp.2022.115246] [Reference Citation Analysis]
30 Calvet-Mirabent M, Martín-Gayo E. Effective innate immune response in natural HIV-1 controllers. Can mimicking lead to novel preventive and cure strategies against HIV-1? Curr Opin HIV AIDS 2022;17:308-14. [PMID: 35938465 DOI: 10.1097/COH.0000000000000750] [Reference Citation Analysis]
31 Cai C, Tang YD, Zhai J, Zheng C. The RING finger protein family in health and disease. Signal Transduct Target Ther 2022;7:300. [PMID: 36042206 DOI: 10.1038/s41392-022-01152-2] [Cited by in Crossref: 5] [Cited by in F6Publishing: 4] [Article Influence: 5.0] [Reference Citation Analysis]
32 Sun C, Han Y, Zhang R, Liu S, Wang J, Zhang Y, Chen X, Jiang C, Wang J, Fan X, Wang J. Regulated necrosis in COVID-19: A double-edged sword. Front Immunol 2022;13:917141. [DOI: 10.3389/fimmu.2022.917141] [Reference Citation Analysis]
33 Huang Z, Zhan M, Cheng G, Lin R, Zhai X, Zheng H, Wang Q, Yu Y, Xu Z. IHNV Infection Induces Strong Mucosal Immunity and Changes of Microbiota in Trout Intestine. Viruses 2022;14:1838. [PMID: 36016461 DOI: 10.3390/v14081838] [Reference Citation Analysis]
34 Selickman J, Vrettou CS, Mentzelopoulos SD, Marini JJ. COVID-19-Related ARDS: Key Mechanistic Features and Treatments. J Clin Med 2022;11:4896. [PMID: 36013135 DOI: 10.3390/jcm11164896] [Cited by in F6Publishing: 1] [Reference Citation Analysis]
35 Sanche S, Cassidy T, Chu P, Perelson AS, Ribeiro RM, Ke R. A simple model of COVID-19 explains disease severity and the effect of treatments. Sci Rep 2022;12. [DOI: 10.1038/s41598-022-18244-2] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
36 Chilunda V, Weiselberg J, Martinez-meza S, Mhamilawa LE, Cheney L, Berman JW. Methamphetamine induces transcriptional changes in cultured HIV-infected mature monocytes that may contribute to HIV neuropathogenesis. Front Immunol 2022;13:952183. [DOI: 10.3389/fimmu.2022.952183] [Reference Citation Analysis]
37 Tian G, Shi Y, Cao X, Chen W, Gu Y, Li N, Huang C, Zhuang Y, Li G, Liu P, Hu G, Gao X, Guo X. Preparation of the RIPK3 Polyclonal Antibody and Its Application in Immunoassays of Nephropathogenic Infectious Bronchitis Virus-Infected Chickens. Viruses 2022;14:1747. [DOI: 10.3390/v14081747] [Reference Citation Analysis]
38 Liu Q, Zhang M, Wang J, Zhang J, Wang Z, Ma J, Yan Y, Sun J, Cheng Y. Functional characterization of bat IRF1 in IFN induction. Dev Comp Immunol 2022;:104500. [PMID: 35933044 DOI: 10.1016/j.dci.2022.104500] [Reference Citation Analysis]
39 Gao X, Zhang Y, Zheng J, Yang X, Wang Y, Qin Q, Huang X, Huang Y. Grouper interferon-induced protein 35, a CP-interacting protein, inhibits fish nodavirus replication via positively regulating host interferon and inflammatory immune response. Fish Shellfish Immunol 2022;128:113-22. [PMID: 35931290 DOI: 10.1016/j.fsi.2022.07.077] [Reference Citation Analysis]
40 Qi F, Zhang X, Wang L, Ren C, Zhao X, Luo J, Lu D. E3 ubiquitin ligase NEURL3 promotes innate antiviral response through catalyzing K63-linked ubiquitination of IRF7. FASEB J 2022;36:e22409. [PMID: 35792897 DOI: 10.1096/fj.202200316R] [Reference Citation Analysis]
41 Sun C, Zhao H, Han Y, Wang Y, Sun X. The Role of Inflammasomes in COVID-19: Potential Therapeutic Targets. J Interferon Cytokine Res 2022;42:406-20. [PMID: 35984324 DOI: 10.1089/jir.2022.0061] [Reference Citation Analysis]
42 Xiangbo Z, Zhaofang Y, Jinjing G, Zhuandi G, Suocheng W. Bovine coronavirus nucleocapsid suppresses IFN-β production by inhibiting RIG-I-like receptors pathway in host cells. Arch Microbiol 2022;204:536. [PMID: 35913638 DOI: 10.1007/s00203-022-03149-5] [Reference Citation Analysis]
43 Patel H, McArdle A, Seaby E, Levin M, Whittaker E. The immunopathogenesis of SARS-CoV-2 infection in children: diagnostics, treatment and prevention. Clin Transl Immunology 2022;11:e1405. [PMID: 35903804 DOI: 10.1002/cti2.1405] [Reference Citation Analysis]
44 Wang L, Cao Z, Wang Z, Guo J, Wen J. Reactive oxygen species associated immunoregulation post influenza virus infection. Front Immunol 2022;13:927593. [PMID: 35967412 DOI: 10.3389/fimmu.2022.927593] [Cited by in F6Publishing: 1] [Reference Citation Analysis]
45 Redondo N, Rodríguez-goncer I, Parra P, Ruiz-merlo T, López-medrano F, González E, Polanco N, Trujillo H, Hernández A, San Juan R, Andrés A, Aguado JM, Fernández-ruiz M. Influence of single-nucleotide polymorphisms in TLR3 (rs3775291) and TLR9 (rs352139) on the risk of CMV infection in kidney transplant recipients. Front Immunol 2022;13:929995. [DOI: 10.3389/fimmu.2022.929995] [Reference Citation Analysis]
46 Fu F, Lin Z, Li Y, Wang J, Li Y, Liu P, Wang Z, Ma J, Yan Y, Sun J, Cheng Y. Goose STING mediates IFN signaling activation against RNA viruses. Front Immunol 2022;13:921800. [DOI: 10.3389/fimmu.2022.921800] [Reference Citation Analysis]
47 Hu M, Zhang X, Hu C, Teng T, Tang Q. A brief overview about the adipokine: Isthmin-1. Front Cardiovasc Med 2022;9. [DOI: 10.3389/fcvm.2022.939757] [Reference Citation Analysis]
48 Liu W, Ma Z, Wu Y, Yuan C, Zhang Y, Liang Z, Yang Y, Zhang W, Jiao P. MST4 negatively regulates type I interferons production via targeting MAVS-mediated pathway. Cell Commun Signal 2022;20:103. [PMID: 35820905 DOI: 10.1186/s12964-022-00922-3] [Reference Citation Analysis]
49 Chen S, Kuang M, Qu Y, Huang S, Gong B, Lin S, Wang H, Wang G, Tao H, Yu J, Yang Z, Jiang M, Xie Q. Expression of Serum Cytokines Profile in Neonatal Sepsis. Infect Drug Resist 2022;15:3437-45. [PMID: 35794925 DOI: 10.2147/IDR.S368772] [Reference Citation Analysis]
50 Zhang Y, Wu L, Wang Z, Wang J, Roychoudhury S, Tomasik B, Wu G, Wang G, Rao X, Zhou R. Replication Stress: A Review of Novel Targets to Enhance Radiosensitivity-From Bench to Clinic. Front Oncol 2022;12:838637. [DOI: 10.3389/fonc.2022.838637] [Reference Citation Analysis]
51 Redondo N, Rodríguez-Goncer I, Parra P, López-Medrano F, González E, Hernández A, Trujillo H, Ruiz-Merlo T, San Juan R, Folgueira MD, Andrés A, Aguado JM, Fernández-Ruiz M. Genetic polymorphisms in TLR3, IL10 and CD209 influence the risk of BK polyomavirus infection after kidney transplantation. Sci Rep 2022;12:11338. [PMID: 35790769 DOI: 10.1038/s41598-022-15406-0] [Reference Citation Analysis]
52 Ismail N, Sharma A, Soong L, Walker DH. Protective Immunity and Immunopathology in Ehrlichiosis. Zoonoses 2022;2. [DOI: 10.15212/zoonoses-2022-0009] [Reference Citation Analysis]
53 Hao M, Wang D, Xia Q, Kan S, Chang L, Liu H, Yang Z, Liu W. Pathogenic Mechanism and Multi-omics Analysis of Oral Manifestations in COVID-19. Front Immunol 2022;13:879792. [DOI: 10.3389/fimmu.2022.879792] [Reference Citation Analysis]
54 Kannan A, Suomalainen M, Volle R, Bauer M, Amsler M, Trinh HV, Vavassori S, Schmid JP, Vilhena G, Marín-gonzález A, Perez R, Franceschini A, Mering CV, Hemmi S, Greber UF. Sequence-Specific Features of Short Double-Strand, Blunt-End RNAs Have RIG-I- and Type 1 Interferon-Dependent or -Independent Anti-Viral Effects. Viruses 2022;14:1407. [DOI: 10.3390/v14071407] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
55 Yelemali P, Hao L, Liu Q. Mechanisms of host type I interferon response modulation by the nucleocapsid proteins of alpha- and betacoronaviruses. Arch Virol 2022. [PMID: 35763067 DOI: 10.1007/s00705-022-05513-8] [Reference Citation Analysis]
56 Cai W, Zhang SL. Anti-Inflammatory Mechanisms of Total Flavonoids from Mosla scabra against Influenza A Virus-Induced Pneumonia by Integrating Network Pharmacology and Experimental Verification. Evid Based Complement Alternat Med 2022;2022:2154485. [PMID: 35722153 DOI: 10.1155/2022/2154485] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 2.0] [Reference Citation Analysis]
57 Liu Q, Chi S, Dmytruk K, Dmytruk O, Tan S. Coronaviral Infection and Interferon Response: The Virus-Host Arms Race and COVID-19. Viruses 2022;14:1349. [DOI: 10.3390/v14071349] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 2.0] [Reference Citation Analysis]
58 Znaidia M, Demeret C, van der Werf S, Komarova AV. Characterization of SARS-CoV-2 Evasion: Interferon Pathway and Therapeutic Options. Viruses 2022;14:1247. [PMID: 35746718 DOI: 10.3390/v14061247] [Cited by in F6Publishing: 2] [Reference Citation Analysis]
59 Li X, Feng Y, Liu W, Tan L, Sun Y, Song C, Liao Y, Xu C, Ren T, Ding C, Qiu X. A Role for the Chicken Interferon-Stimulated Gene CMPK2 in the Host Response Against Virus Infection. Front Microbiol 2022;13:874331. [PMID: 35633731 DOI: 10.3389/fmicb.2022.874331] [Reference Citation Analysis]
60 Lockhart A, Mucida D, Parsa R. Immunity to enteric viruses. Immunity 2022;55:800-18. [PMID: 35545029 DOI: 10.1016/j.immuni.2022.04.007] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 3.0] [Reference Citation Analysis]
61 Jiménez D, Torres Arias M. Immunouniverse of SARS-CoV-2. Immunol Med 2022;:1-39. [PMID: 35502127 DOI: 10.1080/25785826.2022.2066251] [Cited by in Crossref: 1] [Article Influence: 1.0] [Reference Citation Analysis]
62 Liu Y, Xiao J, Qiao G, Wang Q, Yang X, Xu X, Li J, Zhang J, Chang M, Feng H. DDX19 inhibits RLR/IRF3 mediated type I interferon signaling of black carp Mylopharyngodon piceus by restricting IRF3 from entering nucleus. Aquaculture 2022;553:738087. [DOI: 10.1016/j.aquaculture.2022.738087] [Reference Citation Analysis]
63 Yadav D, Agarwal S, Pancham P, Jindal D, Agarwal V, Dubey PK, Jha SK, Mani S, Rachana, Dey A, Jha NK, Kesari KK, Singh M. Probing the Immune System Dynamics of the COVID-19 Disease for Vaccine Designing and Drug Repurposing Using Bioinformatics Tools. Immuno 2022;2:344-71. [DOI: 10.3390/immuno2020022] [Reference Citation Analysis]
64 Cesar-Silva D, Pereira-Dutra FS, Moraes Giannini AL, Jacques G de Almeida C. The Endolysosomal System: The Acid Test for SARS-CoV-2. Int J Mol Sci 2022;23:4576. [PMID: 35562967 DOI: 10.3390/ijms23094576] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
65 Verbsky J. Genetic Defects that Predispose to Serious Viral Infections. Critical Care Clinics 2022;38:443-53. [DOI: 10.1016/j.ccc.2021.11.012] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
66 Chen Y, Zhong W, Xie Z, Li B, Li H, Gao K, Ning Z. Suppressor of cytokine signaling 1 (SOCS1) inhibits antiviral responses to facilitate Senecavirus A infection by regulating the NF-κB signaling pathway. Virus Res 2022;:198748. [PMID: 35304133 DOI: 10.1016/j.virusres.2022.198748] [Reference Citation Analysis]
67 Hong J, Chi X, Yuan X, Wen F, Rai KR, Wu L, Song Z, Wang S, Guo G, Chen J. I226R Protein of African Swine Fever Virus Is a Suppressor of Innate Antiviral Responses. Viruses 2022;14:575. [DOI: 10.3390/v14030575] [Cited by in Crossref: 4] [Cited by in F6Publishing: 5] [Article Influence: 4.0] [Reference Citation Analysis]
68 Chawla K, Subramanian G, Rahman T, Fan S, Chakravarty S, Gujja S, Demchak H, Chakravarti R, Chattopadhyay S. Autophagy in Virus Infection: A Race between Host Immune Response and Viral Antagonism. Immuno 2022;2:153-69. [PMID: 35252965 DOI: 10.3390/immuno2010012] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 3.0] [Reference Citation Analysis]
69 Wang Q, Zhou L, Wang J, Su D, Li D, Du Y, Yang G, Zhang G, Chu B. African Swine Fever Virus K205R Induces ER Stress and Consequently Activates Autophagy and the NF-κB Signaling Pathway. Viruses 2022;14:394. [DOI: 10.3390/v14020394] [Cited by in Crossref: 4] [Cited by in F6Publishing: 4] [Article Influence: 4.0] [Reference Citation Analysis]
70 Xu X, Liu L, Feng J, Li X, Zhang J. Comparative transcriptome analysis reveals potential anti-viral immune pathways of turbot (Scophthalmus maximus) subverted by megalocytivirus RBIV-C1 for immune evasion. Fish Shellfish Immunol 2022:S1050-4648(22)00067-5. [PMID: 35150827 DOI: 10.1016/j.fsi.2022.02.005] [Reference Citation Analysis]
71 Hernandez Acosta RA, Garrigos ZE, Marcelin JR, Vijayvargiya P. COVID-19: Pathogenesis and Clinical Manifestations. Infectious Disease Clinics of North America 2022. [DOI: 10.1016/j.idc.2022.01.003] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 2.0] [Reference Citation Analysis]
72 Liu N, Pang X, Zhang H, Ji P. The cGAS-STING Pathway in Bacterial Infection and Bacterial Immunity. Front Immunol 2021;12:814709. [PMID: 35095914 DOI: 10.3389/fimmu.2021.814709] [Cited by in Crossref: 8] [Cited by in F6Publishing: 8] [Article Influence: 8.0] [Reference Citation Analysis]
73 de Carvalho Lima EN, Octaviano ALM, Piqueira JRC, Diaz RS, Justo JF. Coronavirus and Carbon Nanotubes: Seeking Immunological Relationships to Discover Immunotherapeutic Possibilities. IJN 2022;Volume 17:751-81. [DOI: 10.2147/ijn.s341890] [Cited by in Crossref: 2] [Cited by in F6Publishing: 2] [Article Influence: 2.0] [Reference Citation Analysis]
74 Wang C, Wang T, Duan L, Chen H, Hu R, Wang X, Jia Y, Chu Z, Liu H, Wang X, Zhang S, Xiao S, Wang J, Dang R, Yang Z. Evasion of Host Antiviral Innate Immunity by Paramyxovirus Accessory Proteins. Front Microbiol 2022;12:790191. [DOI: 10.3389/fmicb.2021.790191] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
75 Naghib M, Kariminik A, Kazemi Arababadi M. TLR2, as a Pathogen Recognition Receptor, Plays Critical Roles in Hepatitis B Outcome. Viral Immunol 2022. [PMID: 35020525 DOI: 10.1089/vim.2021.0141] [Cited by in Crossref: 1] [Cited by in F6Publishing: 1] [Article Influence: 1.0] [Reference Citation Analysis]
76 Büttiker P, Stefano GB, Weissenberger S, Ptacek R, Anders M, Raboch J, Kream RM. HIV, HSV, SARS-CoV-2 and Ebola Share Long-Term Neuropsychiatric Sequelae. Neuropsychiatr Dis Treat 2022;18:2229-37. [PMID: 36221293 DOI: 10.2147/NDT.S382308] [Cited by in Crossref: 1] [Article Influence: 1.0] [Reference Citation Analysis]
77 Ye Z, Shi Y, Lees-Miller SP, Tainer JA. Function and Molecular Mechanism of the DNA Damage Response in Immunity and Cancer Immunotherapy. Front Immunol 2021;12:797880. [PMID: 34970273 DOI: 10.3389/fimmu.2021.797880] [Cited by in Crossref: 6] [Cited by in F6Publishing: 9] [Article Influence: 6.0] [Reference Citation Analysis]
78 Hu T, Pan M, Yin Y, Wang C, Cui Y, Wang Q. The Regulatory Network of Cyclic GMP-AMP Synthase-Stimulator of Interferon Genes Pathway in Viral Evasion. Front Microbiol 2021;12:790714. [PMID: 34966372 DOI: 10.3389/fmicb.2021.790714] [Cited by in Crossref: 3] [Cited by in F6Publishing: 3] [Article Influence: 1.5] [Reference Citation Analysis]
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