Heat shock protein 90α reduces CD8
Journal
Cell death discovery
ISSN: 2058-7716
Titre abrégé: Cell Death Discov
Pays: United States
ID NLM: 101665035
Informations de publication
Date de publication:
13 Jun 2024
13 Jun 2024
Historique:
received:
12
10
2023
accepted:
28
05
2024
revised:
20
05
2024
medline:
14
6
2024
pubmed:
14
6
2024
entrez:
13
6
2024
Statut:
epublish
Résumé
CD8
Identifiants
pubmed: 38871699
doi: 10.1038/s41420-024-02046-8
pii: 10.1038/s41420-024-02046-8
doi:
Types de publication
Journal Article
Langues
eng
Pagination
283Subventions
Organisme : National Natural Science Foundation of China (National Science Foundation of China)
ID : 82102255
Informations de copyright
© 2024. The Author(s).
Références
Singer M, Deutschman CS, Seymour CW, Shankar-Hari M, Annane D, Bauer M, et al. The third international consensus definitions for sepsis and septic shock (sepsis-3). JAMA. 2016;315:801–10.
doi: 10.1001/jama.2016.0287
pubmed: 26903338
pmcid: 4968574
Yin J, Chen Y, Huang JL, Yan L, Kuang ZS, Xue MM, et al. Prognosis-related classification and dynamic monitoring of immune status in patients with sepsis: a prospective observational study. World J Emerg Med. 2021;12:185–91.
doi: 10.5847/wjem.j.1920-8642.2021.03.004
pubmed: 34141032
pmcid: 8188286
Li W, Li D, Chen Y, Abudou H, Wang H, Cai J, et al. Classic signaling pathways in alveolar injury and repair involved in sepsis-induced ali/ards: new research progress and prospect. Dis Markers. 2022;2022:6362344.
pubmed: 35726235
pmcid: 9206211
Dvorščak MB, Lupis T, Adanić M, Aarić JP. Acute respiratory distress syndrome and other respiratory disorders in sepsis. Acta Med Croat. 2015;69:167–75.
Abe T, Madotto F, Pham T, Nagata I, Uchida M, Tamiya N, et al. Epidemiology and patterns of tracheostomy practice in patients with acute respiratory distress syndrome in ICUs across 50 countries. Crit Care. 2018;22:195.
doi: 10.1186/s13054-018-2126-6
pubmed: 30115127
pmcid: 6097245
Pais FM, Sinha P, Liu KD, Matthay MA. Influence of clinical factors and exclusion criteria on mortality in ards observational studies and randomized controlled trials. Respir Care. 2018;63:1060–9.
doi: 10.4187/respcare.06034
pubmed: 29991643
Yan L, Tong CY. Analysis of blood immune cell and gene microarray data of patients with sepsis related acute respiratory distress syndrome based on GEO database. Fudan Univ J Med Sci, 2023;50:509–16, 525.
Yan L, Chen Y, Han Y, Tong C. Role of CD8(+) T cell exhaustion in the progression and prognosis of acute respiratory distress syndrome induced by sepsis: a prospective observational study. BMC Emerg Med. 2022;22:182.
doi: 10.1186/s12873-022-00733-2
pubmed: 36402952
pmcid: 9675152
Yadav M, Singh AK, Kumar A, Thareja S, Kumar P. An insight to heat shock protein 90: a remedy for multiple problems. Curr Pharm Des. 2022;28:2664–76.
doi: 10.2174/1381612828666220829120630
pubmed: 36043709
Sima S, Richter K. Regulation of the HSP90 system. Biochim Biophys Acta Mol Cell Res. 2018;1865:889–97.
doi: 10.1016/j.bbamcr.2018.03.008
pubmed: 29563055
Dernovšek J, Tomašič T. Following the design path of isoform-selective HSP90 inhibitors: small differences, great opportunities. Pharm Ther. 2023;245:108396.
doi: 10.1016/j.pharmthera.2023.108396
Costa T, Raghavendra NM, Penido C. Natural heat shock protein 90 inhibitors in cancer and inflammation. Eur J Med Chem. 2020;189:112063.
doi: 10.1016/j.ejmech.2020.112063
pubmed: 31972392
Bae J, Munshi A, Li C, Samur M, Prabhala R, Mitsiades C, et al. Heat shock protein 90 is critical for regulation of phenotype and functional activity of human T lymphocytes and NK cells. J Immunol. 2013;190:1360–71.
doi: 10.4049/jimmunol.1200593
pubmed: 23293352
Albakova Z, Mangasarova Y, Sapozhnikov A. Impaired heat shock protein expression in activated T cells in B-cell lymphoma. Biomedicines. 2022;10:2747.
doi: 10.3390/biomedicines10112747
pubmed: 36359267
pmcid: 9687880
Liu K, Huang J, Liu J, Li C, Kroemer G, Tang D, et al. HSP90 mediates ifnγ-induced adaptive resistance to anti-pd-1 immunotherapy. Cancer Res. 2022;82:2003–18.
doi: 10.1158/0008-5472.CAN-21-3917
pubmed: 35247909
Cheng Y, Shao Z, Chen L, Zheng Q, Zhang Q, Ding W, et al. Role, function and regulation of the thymocyte selection-associated high mobility group box protein in CD8(+) T cell exhaustion. Immunol Lett. 2021;229:1–7.
doi: 10.1016/j.imlet.2020.11.004
pubmed: 33186634
Roe K. A role for T-cell exhaustion in long COVID-19 and severe outcomes for several categories of COVID-19 patients. J Neurosci Res. 2021;99:2367–76.
doi: 10.1002/jnr.24917
pubmed: 34288064
pmcid: 8427009
Mclane LM, Abdel-Hakeem MS, Wherry EJ. Cd8 T cell exhaustion during chronic viral infection and cancer. Annu Rev Immunol. 2019;37:457–95.
doi: 10.1146/annurev-immunol-041015-055318
pubmed: 30676822
Heidarian M, Griffith TS, Badovinac VP. Sepsis-induced changes in differentiation, maintenance, and function of memory CD8 T cell subsets. Front Immunol. 2023;14:1130009.
doi: 10.3389/fimmu.2023.1130009
pubmed: 36756117
pmcid: 9899844
Liu Q, Xue M, Song Q, Xie J, Yang Y, Liu S. Expression of pd-1 on memory T lymphocytes predicts 28-day mortality of patients with sepsis: a prospective observational study. J Inflamm Res. 2022;15:5043–52.
doi: 10.2147/JIR.S376897
pubmed: 36072779
pmcid: 9444038
Danahy DB, Strother RK, Badovinac VP, Griffith TS. Clinical and experimental sepsis impairs CD8 T-cell-mediated immunity. Crit Rev Immunol. 2016;36:57–74.
doi: 10.1615/CritRevImmunol.2016017098
pubmed: 27480902
pmcid: 5314458
Hashimoto M, Kamphorst AO, Im SJ, Kissick HT, Pillai RN, Ramalingam SS, et al. Cd8 T cell exhaustion in chronic infection and cancer: opportunities for interventions. Annu Rev Med. 2018;69:301–18.
doi: 10.1146/annurev-med-012017-043208
pubmed: 29414259
Vanders RL, Murphy VE, Gibson PG, Hansbro PM, Wark PA. Cd8 T cells and dendritic cells: key players in the attenuated maternal immune response to influenza infection. J Reprod Immunol. 2015;107:1–9.
doi: 10.1016/j.jri.2014.09.051
pubmed: 25453203
Sen DR, Kaminski J, Barnitz RA, Kurachi M, Gerdemann U, Yates KB, et al. The epigenetic landscape of T cell exhaustion. Science. 2016;354:1165–9.
doi: 10.1126/science.aae0491
pubmed: 27789799
pmcid: 5497589
Fitrolaki MD, Dimitriou H, Venihaki M, Katrinaki M, Ilia S, Briassoulis G. Increased extracellular heat shock protein 90α in severe sepsis and sirs associated with multiple organ failure and related to acute inflammatory-metabolic stress response in children. Medicine (Baltimore). 2016;95:e4651.
doi: 10.1097/MD.0000000000004651
pubmed: 27583886
Scarneo SA, Smith AP, Favret J, O’Connell R, Pickeral J, Yang KW, et al. Expression of membrane HSP90 is a molecular signature of T cell activation. Sci Rep. 2022;12:18091.
doi: 10.1038/s41598-022-22788-8
pubmed: 36302951
pmcid: 9613876
Scott AC, Dündar F, Zumbo P, Chandran SS, Klebanoff CA, Shakiba M, et al. Tox is a critical regulator of tumour-specific T cell differentiation. Nature. 2019;571:270–4.
doi: 10.1038/s41586-019-1324-y
pubmed: 31207604
pmcid: 7698992
Seo H, Chen J, González-Avalos E, Samaniego-Castruita D, Das A, Wang YH, et al. Tox and TOX2 transcription factors cooperate with NR4A transcription factors to impose CD8(+) T cell exhaustion. Proc Natl Acad Sci USA. 2019;116:12410–5.
doi: 10.1073/pnas.1905675116
pubmed: 31152140
pmcid: 6589758
Kurachi M. Cd8(+) T cell exhaustion. Semin Immunopathol. 2019;41:327–37.
doi: 10.1007/s00281-019-00744-5
pubmed: 30989321
Wickramaratne A, Wickner S. Diptoindonesin G, a new HSP90 drug. J Biol Chem. 2023;299:102826.
doi: 10.1016/j.jbc.2022.102826
pubmed: 36572186
Talaei S, Mellatyar H, Asadi A, Akbarzadeh A, Sheervalilou R, Zarghami N. Spotlight on 17-AAG as an HSP90 inhibitor for molecular targeted cancer treatment. Chem Biol Drug Des. 2019;93:760–86.
doi: 10.1111/cbdd.13486
pubmed: 30697932
Chen X, Zhao C, Li X, Wang T, Li Y, Cao C, et al. Terazosin activates PGK1 and HSP90 to promote stress resistance. Nat Chem Biol. 2015;11:19–25.
doi: 10.1038/nchembio.1657
pubmed: 25383758
Belk JA, Daniel B, Satpathy AT. Epigenetic regulation of T cell exhaustion. Nat Immunol. 2022;23:848–60.
doi: 10.1038/s41590-022-01224-z
pubmed: 35624210
pmcid: 10439681
Pichler AC, Cannons JL, Schwartzberg PL. The road less taken: less appreciated pathways for manipulating CD8(+) T cell exhaustion. Front Immunol. 2022;13:926714.
doi: 10.3389/fimmu.2022.926714
pubmed: 35874734
pmcid: 9297918
Alfei F, Kanev K, Hofmann M, Wu M, Ghoneim HE, Roelli P, et al. Tox reinforces the phenotype and longevity of exhausted T cells in chronic viral infection. Nature. 2019;571:265–9.
doi: 10.1038/s41586-019-1326-9
pubmed: 31207605
Liu S, Yang Y, Zeng L, Wang L, He C, Chen Z, et al. Tox promotes follicular helper T cell differentiation in patients with primary Sjögren’s syndrome. Rheumatology (Oxford). 2023;62:946–57.
doi: 10.1093/rheumatology/keac304
pubmed: 35713502
Ryan N, Anderson K, Volpedo G, Hamza O, Varikuti S, Satoskar AR, et al. STAT1 inhibits T-cell exhaustion and myeloid derived suppressor cell accumulation to promote antitumor immune responses in head and neck squamous cell carcinoma. Int J Cancer. 2020;146:1717–29.
doi: 10.1002/ijc.32781
pubmed: 31709529
Friedrich J, Heim L, Trufa DI, Sirbu H, Rieker RJ, Chiriac MT, et al. STAT1 deficiency supports PD-1/PD-L1 signaling resulting in dysfunctional TNFα mediated immune responses in a model of NSCLC. Oncotarget. 2018;9:37157–72.
doi: 10.18632/oncotarget.26441
pubmed: 30647851
pmcid: 6324686
He R, Liu B, Xiong R, Geng B, Meng H, Lin W, et al. Itaconate inhibits ferroptosis of macrophage via Nrf2 pathways against sepsis-induced acute lung injury. Cell Death Discov. 2022;8:43.
doi: 10.1038/s41420-021-00807-3
pubmed: 35110526
pmcid: 8810876
Chiu KH, Lee WL, Chang CC, Chen SC, Chang YC, Ho MN, et al. A label-free differential proteomic analysis of mouse bronchoalveolar lavage fluid exposed to ultrafine carbon black. Anal Chim Acta. 2010;673:160–6.
doi: 10.1016/j.aca.2010.05.041
pubmed: 20599030