Systemic inflammation, neuroinflammation and perioperative neurocognitive disorders.

Inflammatory mediators Neuroinflammation Perioperative neurocognitive disorders (PNDs) Systemic inflammation

Journal

Inflammation research : official journal of the European Histamine Research Society ... [et al.]
ISSN: 1420-908X
Titre abrégé: Inflamm Res
Pays: Switzerland
ID NLM: 9508160

Informations de publication

Date de publication:
Sep 2023
Historique:
received: 29 05 2023
accepted: 22 08 2023
revised: 20 08 2023
medline: 29 9 2023
pubmed: 9 9 2023
entrez: 9 9 2023
Statut: ppublish

Résumé

Perioperative neurocognitive disorder (PND) is a common disorder following anesthesia and surgery, especially in the elderly. The complex cellular and molecular processes are involved in PND, but the underlying pathogenesis of which remains inconclusive due to conflicting data. A growing body of evidence has been shown that perioperative systemic inflammation plays important roles in the development of PND. We reviewed the relevant literature retrieved by a search in the PubMed database (on July 20, 2023). The search terms used were "delirium", "post operative cognitive dysfunction", "perioperative neurocognitive disorder", "inflammation" and "systemic", alone and in combination. All articles identified were English-language, full-text papers. The ones cited in the review are those that make a substantial contribution to the knowledge about systemic inflammation and PNDs. The aim of this review is to bring together the latest evidence for the understanding of how perioperative systemic inflammation mediates neuroinflammation and brain injury, how the inflammation is regulated and how we can translate these findings into prevention and/or treatment for PND.

Identifiants

pubmed: 37688642
doi: 10.1007/s00011-023-01792-2
pii: 10.1007/s00011-023-01792-2
doi:

Types de publication

Journal Article Review

Langues

eng

Sous-ensembles de citation

IM

Pagination

1895-1907

Subventions

Organisme : National Natural Science Foundation of China
ID : 82270997

Informations de copyright

© 2023. The Author(s), under exclusive licence to Springer Nature Switzerland AG.

Références

Evered L, Silbert B, Knopman DS, Scott DA, DeKosky ST, Rasmussen LS, et al. Recommendations for the nomenclature of cognitive change associated with anaesthesia and surgery 2018. Anesthesiology. 2018;129:872–9. https://doi.org/10.1097/ALN.0000000000002334 .
doi: 10.1097/ALN.0000000000002334 pubmed: 30325806
Edwards ML, Bause GS. From dental to mental institutions: an american dentist and a british psychiatrist highlight insanity following nitrous-oxide administration. J Anesth Hist. 2018;4:133–4. https://doi.org/10.1016/j.janh.2018.02.002 .
doi: 10.1016/j.janh.2018.02.002 pubmed: 29960678
Bedford PD. Adverse cerebral effects of anaesthesia on old people. Lancet. 1955;269:259–63. https://doi.org/10.1016/s0140-6736(55)92689-1 .
doi: 10.1016/s0140-6736(55)92689-1 pubmed: 13243706
Evered L, Scott DA, Silbert B, Maruff P. Postoperative cognitive dysfunction is independent of type of surgery and anesthetic. Anesth Analg. 2011;112:1179–85. https://doi.org/10.1213/ANE.0b013e318215217e .
doi: 10.1213/ANE.0b013e318215217e pubmed: 21474666
Inouye SK, Marcantonio ER, Kosar CM, Tommet D, Schmitt EM, Travison TG, et al. The short-term and long-term relationship between delirium and cognitive trajectory in older surgical patients. Alzheimers Dement. 2016;12:766–75. https://doi.org/10.1016/j.jalz.2016.03.005 .
doi: 10.1016/j.jalz.2016.03.005 pubmed: 27103261 pmcid: 4947419
Moller JT, Cluitmans P, Rasmussen LS, Houx P, Rasmussen H, Canet J, et al. Long-term postoperative cognitive dysfunction in the elderly ISPOCD1 study. ISPOCD investigators. International study of post-operative cognitive dysfunction. Lancet. 1998;351:857–61. https://doi.org/10.1016/s0140-6736(97)07382-0 .
doi: 10.1016/s0140-6736(97)07382-0 pubmed: 9525362
Androsova G, Krause R, Winterer G, Schneider R. Biomarkers of postoperative delirium and cognitive dysfunction. Front Aging Neurosci. 2015;7:112. https://doi.org/10.3389/fnagi.2015.00112 .
doi: 10.3389/fnagi.2015.00112 pubmed: 26106326 pmcid: 4460425
Monk TG, Weldon BC, Garvan CW, Dede DE, van der Aa MT, Heilman KM, et al. Predictors of cognitive dysfunction after major noncardiac surgery. Anesthesiology. 2008;108:18–30. https://doi.org/10.1097/01.anes.0000296071.19434.1e .
doi: 10.1097/01.anes.0000296071.19434.1e pubmed: 18156878
Price CC, Garvan CW, Monk TG. Type and severity of cognitive decline in older adults after noncardiac surgery. Anesthesiology. 2008;108:8.
doi: 10.1097/01.anes.0000296072.02527.18 pubmed: 18156877
Steinmetz J, Christensen KB, Lund T, Lohse N, Rasmussen LS, Group I. Long-term consequences of postoperative cognitive dysfunction. Anesthesiology. 2009;110:548–55. https://doi.org/10.1097/ALN.0b013e318195b569 .
doi: 10.1097/ALN.0b013e318195b569 pubmed: 19225398
Pluvinage JV, Wyss-Coray T. Systemic factors as mediators of brain homeostasis, ageing and neurodegeneration. Nat Rev Neurosci. 2020;21:93–102. https://doi.org/10.1038/s41583-019-0255-9 .
doi: 10.1038/s41583-019-0255-9 pubmed: 31913356
Capuron L, Miller AH. Immune system to brain signaling: neuropsychopharmacological implications. Pharmacol Ther. 2011;130:226–38. https://doi.org/10.1016/j.pharmthera.2011.01.014 .
doi: 10.1016/j.pharmthera.2011.01.014 pubmed: 21334376 pmcid: 3072299
Dantzer R, O’Connor JC, Freund GG, Johnson RW, Kelley KW. From inflammation to sickness and depression: when the immune system subjugates the brain. Nat Rev Neurosci. 2008;9:46–56. https://doi.org/10.1038/nrn2297 .
doi: 10.1038/nrn2297 pubmed: 18073775 pmcid: 2919277
Cunningham C, Campion S, Lunnon K, Murray CL, Woods JF, Deacon RM, et al. Systemic inflammation induces acute behavioral and cognitive changes and accelerates neurodegenerative disease. Biol Psychiatry. 2009;65:304–12. https://doi.org/10.1016/j.biopsych.2008.07.024 .
doi: 10.1016/j.biopsych.2008.07.024 pubmed: 18801476 pmcid: 2633437
Gisondi P, Sala F, Alessandrini F, Avesani V, Zoccatelli G, Beltramello A, et al. Mild cognitive impairment in patients with moderate to severe chronic plaque psoriasis. Dermatology. 2014;228:78–85. https://doi.org/10.1159/000357220 .
doi: 10.1159/000357220 pubmed: 24434720
Sung CE, Huang RY, Cheng WC, Kao TW, Chen WL. Association between periodontitis and cognitive impairment: Analysis of national health and nutrition examination survey (NHANES) III. J Clin Periodontol. 2019;46:790–8. https://doi.org/10.1111/jcpe.13155 .
doi: 10.1111/jcpe.13155 pubmed: 31152592
Xue L, Zou X, Yang XQ, Peng F, Yu DK, Du JR. Chronic periodontitis induces microbiota-gut-brain axis disorders and cognitive impairment in mice. Exp Neurol. 2020;326:113176. https://doi.org/10.1016/j.expneurol.2020.113176 .
doi: 10.1016/j.expneurol.2020.113176 pubmed: 31926167
Yamanaka D, Kawano T, Nishigaki A, Aoyama B, Tateiwa H, Shigematsu-Locatelli M, et al. Preventive effects of dexmedetomidine on the development of cognitive dysfunction following systemic inflammation in aged rats. J Anesth. 2017;31:25–35. https://doi.org/10.1007/s00540-016-2264-4 .
doi: 10.1007/s00540-016-2264-4 pubmed: 27738803
Labrenz F, Wrede K, Forsting M, Engler H, Schedlowski M, Elsenbruch S, et al. Alterations in functional connectivity of resting state networks during experimental endotoxemia - An exploratory study in healthy men. Brain Behav Immun. 2016;54:17–26. https://doi.org/10.1016/j.bbi.2015.11.010 .
doi: 10.1016/j.bbi.2015.11.010 pubmed: 26597151
Biesmans S, Bouwknecht JA, Ver Donck L, Langlois X, Acton PD, De Haes P, et al. Peripheral Administration of Tumor Necrosis Factor-Alpha Induces Neuroinflammation and Sickness but Not Depressive-Like Behavior in Mice. Biomed Res Int. 2015;2015:716920. https://doi.org/10.1155/2015/716920 .
doi: 10.1155/2015/716920 pubmed: 26290874 pmcid: 4531164
Song L, Quan X, Su L, Wang K, Wang H, Wu L, et al. Inflammation and behavioral symptoms in preoperational glioma patients: Is depression, anxiety, and cognitive impairment related to markers of systemic inflammation? Brain Behav. 2020;10: e01771. https://doi.org/10.1002/brb3.1771 .
doi: 10.1002/brb3.1771 pubmed: 32790154 pmcid: 7507433
Myint AM, Schwarz MJ, Steinbusch HW, Leonard BE. Neuropsychiatric disorders related to interferon and interleukins treatment. Metab Brain Dis. 2009;24:55–68. https://doi.org/10.1007/s11011-008-9114-5 .
doi: 10.1007/s11011-008-9114-5 pubmed: 19067144
van den Boogaard M, Kox M, Quinn KL, van Achterberg T, van der Hoeven JG, Schoonhoven L, et al. Biomarkers associated with delirium in critically ill patients and their relation with long-term subjective cognitive dysfunction; indications for different pathways governing delirium in inflamed and noninflamed patients. Crit Care. 2011;15:R297. https://doi.org/10.1186/cc10598 .
doi: 10.1186/cc10598 pubmed: 22206727 pmcid: 3388649
Mooijaart SP, Sattar N, Trompet S, Lucke J, Stott DJ, Ford I, et al. Circulating interleukin-6 concentration and cognitive decline in old age: the PROSPER study. J Intern Med. 2013;274:77–85. https://doi.org/10.1111/joim.12052 .
doi: 10.1111/joim.12052 pubmed: 23414490
Serantes R, Arnalich F, Figueroa M, Salinas M, Andres-Mateos E, Codoceo R, et al. Interleukin-1beta enhances GABAA receptor cell-surface expression by a phosphatidylinositol 3-kinase/Akt pathway: relevance to sepsis-associated encephalopathy. J Biol Chem. 2006;281:14632–43. https://doi.org/10.1074/jbc.M512489200 .
doi: 10.1074/jbc.M512489200 pubmed: 16567807
Riera Romo M, Perez-Martinez D, Castillo Ferrer C. Innate immunity in vertebrates: an overview. Immunology. 2016;148:125–39. https://doi.org/10.1111/imm.12597 .
doi: 10.1111/imm.12597 pubmed: 26878338 pmcid: 4863567
Zhang Q, Raoof M, Chen Y, Sumi Y, Sursal T, Junger W, et al. Circulating mitochondrial DAMPs cause inflammatory responses to injury. Nature. 2010;464:104–7. https://doi.org/10.1038/nature08780 .
doi: 10.1038/nature08780 pubmed: 20203610 pmcid: 2843437
Andersson U, Tracey KJ. HMGB1 is a therapeutic target for sterile inflammation and infection. Annu Rev Immunol. 2011;29:139–62. https://doi.org/10.1146/annurev-immunol-030409-101323 .
doi: 10.1146/annurev-immunol-030409-101323 pubmed: 21219181 pmcid: 4536551
Lotze MT, Tracey KJ. High-mobility group box 1 protein (HMGB1): nuclear weapon in the immune arsenal. Nat Rev Immunol. 2005;5:331–42. https://doi.org/10.1038/nri1594 .
doi: 10.1038/nri1594 pubmed: 15803152
Huang C, Irwin MG, Wong GTC, Chang RCC. Evidence of the impact of systemic inflammation on neuroinflammation from a non-bacterial endotoxin animal model. J Neuroinflammation. 2018;15:147. https://doi.org/10.1186/s12974-018-1163-z .
doi: 10.1186/s12974-018-1163-z pubmed: 29776428 pmcid: 5960121
Hovens IB, Schoemaker RG, van der Zee EA, Heineman E, Nyakas C, van Leeuwen BL. Surgery-induced behavioral changes in aged rats. Exp Gerontol. 2013;48:1204–11. https://doi.org/10.1016/j.exger.2013.07.011 .
doi: 10.1016/j.exger.2013.07.011 pubmed: 23916881
Terrando N, Eriksson LI, Ryu JK, Yang T, Monaco C, Feldmann M, et al. Resolving postoperative neuroinflammation and cognitive decline. Ann Neurol. 2011;70:986–95. https://doi.org/10.1002/ana.22664 .
doi: 10.1002/ana.22664 pubmed: 22190370 pmcid: 4556354
Hovens IB, van Leeuwen BL, Nyakas C, Heineman E, van der Zee EA, Schoemaker RG. Prior infection exacerbates postoperative cognitive dysfunction in aged rats. Am J Physiol Regul Integr Comp Physiol. 2015;309:R148-59. https://doi.org/10.1152/ajpregu.00002.2015 .
doi: 10.1152/ajpregu.00002.2015 pubmed: 25972458
He Y, Li Z, Zuo YX. Nerve blockage attenuates postoperative inflammation in hippocampus of young rat model with surgical trauma. Mediators Inflamm. 2015;2015:460125. https://doi.org/10.1155/2015/460125 .
doi: 10.1155/2015/460125 pubmed: 26664150 pmcid: 4668320
Gong M, Wang G, Li G, Liu J, Sun P, Xu L, et al. Dysfunction of inflammation-resolving pathways is associated with postoperative cognitive decline in elderly mice. Behav Brain Res. 2020;386:112538. https://doi.org/10.1016/j.bbr.2020.112538 .
doi: 10.1016/j.bbr.2020.112538 pubmed: 32113876
Zhang J, Tan H, Jiang W, Zuo Z. The choice of general anesthetics may not affect neuroinflammation and impairment of learning and memory after surgery in elderly rats. J Neuroimmune Pharmacol. 2015;10:179–89. https://doi.org/10.1007/s11481-014-9580-y .
doi: 10.1007/s11481-014-9580-y pubmed: 25649847
Hirsch J, Vacas S, Terrando N, Yuan M, Sands LP, Kramer J, et al. Perioperative cerebrospinal fluid and plasma inflammatory markers after orthopedic surgery. J Neuroinflammation. 2016;13:211. https://doi.org/10.1186/s12974-016-0681-9 .
doi: 10.1186/s12974-016-0681-9 pubmed: 27577265 pmcid: 5006595
Helmy SA, Wahby MA, El-Nawaway M. The effect of anaesthesia and surgery on plasma cytokine production. Anaesthesia. 1999;54:733–8. https://doi.org/10.1046/j.1365-2044.1999.00947.x .
doi: 10.1046/j.1365-2044.1999.00947.x pubmed: 10460524
Yang T, Velagapudi R, Terrando N. Neuroinflammation after surgery: from mechanisms to therapeutic targets. Nat Immunol. 2020;21:1319–26. https://doi.org/10.1038/s41590-020-00812-1 .
doi: 10.1038/s41590-020-00812-1 pubmed: 33077953 pmcid: 7704062
Thordardottir S, Vikingsdottir T, Bjarnadottir H, Jonsson H Jr, Gudbjornsson B. Activation of complement following total hip replacement. Scand J Immunol. 2016;83:219–24. https://doi.org/10.1111/sji.12411 .
doi: 10.1111/sji.12411 pubmed: 26725858
Hoedemaekers C, van Deuren M, Sprong T, Pickkers P, Mollnes TE, Klasen I, et al. The complement system is activated in a biphasic pattern after coronary artery bypass grafting. Ann Thorac Surg. 2010;89:710–6. https://doi.org/10.1016/j.athoracsur.2009.11.049 .
doi: 10.1016/j.athoracsur.2009.11.049 pubmed: 20172115
Yuki K, Eckenhoff RG. Mechanisms of the immunological effects of volatile anesthetics: a review. Anesth Analg. 2016;123:326–35. https://doi.org/10.1213/ANE.0000000000001403 .
doi: 10.1213/ANE.0000000000001403 pubmed: 27308954 pmcid: 4851113
Stollings LM, Jia LJ, Tang P, Dou H, Lu B, Xu Y. Immune modulation by volatile anesthetics. Anesthesiology. 2016;125:399–411. https://doi.org/10.1097/ALN.0000000000001195 .
doi: 10.1097/ALN.0000000000001195 pubmed: 27286478
Whitaker EE, Christofi FL, Quinn KM, Wiemann BZ, Xia JC, Tobias JD, et al. Selective induction of IL-1beta after a brief isoflurane anesthetic in children undergoing MRI examination. J Anesth. 2017;31:219–24. https://doi.org/10.1007/s00540-016-2294-y .
doi: 10.1007/s00540-016-2294-y pubmed: 28050702
Kallioinen M, Scheinin A, Maksimow M, Langsjo J, Kaisti K, Takala R, et al. The influence of dexmedetomidine and propofol on circulating cytokine levels in healthy subjects. BMC Anesthesiol. 2019;19:222. https://doi.org/10.1186/s12871-019-0895-3 .
doi: 10.1186/s12871-019-0895-3 pubmed: 31805854 pmcid: 6894489
Deiner S, Baxter MG, Mincer JS, Sano M, Hall J, Mohammed I, et al. Human plasma biomarker responses to inhalational general anaesthesia without surgery. Br J Anaesth. 2020. https://doi.org/10.1016/j.bja.2020.04.085 .
doi: 10.1016/j.bja.2020.04.085 pubmed: 32800503 pmcid: 7565909
Cibelli M, Fidalgo AR, Terrando N, Ma D, Monaco C, Feldmann M, et al. Role of interleukin-1beta in postoperative cognitive dysfunction. Ann Neurol. 2010;68:360–8. https://doi.org/10.1002/ana.22082 .
doi: 10.1002/ana.22082 pubmed: 20818791 pmcid: 4836445
Terrando N, Yang T, Wang X, Fang J, Cao M, Andersson U, et al. Systemic HMGB1 neutralization prevents postoperative neurocognitive dysfunction in aged rats. Front Immunol. 2016;7:441. https://doi.org/10.3389/fimmu.2016.00441 .
doi: 10.3389/fimmu.2016.00441 pubmed: 27822212 pmcid: 5075578
Li RL, Zhang ZZ, Peng M, Wu Y, Zhang JJ, Wang CY, et al. Postoperative impairment of cognitive function in old mice: a possible role for neuroinflammation mediated by HMGB1, S100B, and RAGE. J Surg Res. 2013;185:815–24. https://doi.org/10.1016/j.jss.2013.06.043 .
doi: 10.1016/j.jss.2013.06.043 pubmed: 23899512
Chavan SS, Huerta PT, Robbiati S, Valdes-Ferrer SI, Ochani M, Dancho M, et al. HMGB1 mediates cognitive impairment in sepsis survivors. Mol Med. 2012;18:930–7. https://doi.org/10.2119/molmed.2012.00195 .
doi: 10.2119/molmed.2012.00195 pubmed: 22634723 pmcid: 3459473
He HJ, Wang Y, Le Y, Duan KM, Yan XB, Liao Q, et al. Surgery upregulates high mobility group box-1 and disrupts the blood-brain barrier causing cognitive dysfunction in aged rats. CNS Neurosci Ther. 2012;18:994–1002. https://doi.org/10.1111/cns.12018 .
doi: 10.1111/cns.12018 pubmed: 23078219 pmcid: 6493557
Lin GX, Wang T, Chen MH, Hu ZH, Ouyang W. Serum high-mobility group box 1 protein correlates with cognitive decline after gastrointestinal surgery. Acta Anaesthesiol Scand. 2014;58:668–74. https://doi.org/10.1111/aas.12320 .
doi: 10.1111/aas.12320 pubmed: 24754551
Forsberg A, Cervenka S, Jonsson Fagerlund M, Rasmussen LS, Zetterberg H, Erlandsson Harris H, et al. The immune response of the human brain to abdominal surgery. Ann Neurol. 2017;81:572–82. https://doi.org/10.1002/ana.24909 .
doi: 10.1002/ana.24909 pubmed: 28253549
Hudetz JA, Gandhi SD, Iqbal Z, Patterson KM, Pagel PS. Elevated postoperative inflammatory biomarkers are associated with short- and medium-term cognitive dysfunction after coronary artery surgery. J Anesth. 2011;25:1–9. https://doi.org/10.1007/s00540-010-1042-y .
doi: 10.1007/s00540-010-1042-y pubmed: 21061037
Ji MH, Yuan HM, Zhang GF, Li XM, Dong L, Li WY, et al. Changes in plasma and cerebrospinal fluid biomarkers in aged patients with early postoperative cognitive dysfunction following total hip-replacement surgery. J Anesth. 2013;27:236–42. https://doi.org/10.1007/s00540-012-1506-3 .
doi: 10.1007/s00540-012-1506-3 pubmed: 23085747
Qiao Y, Feng H, Zhao T, Yan H, Zhang H, Zhao X. Postoperative cognitive dysfunction after inhalational anesthesia in elderly patients undergoing major surgery: the influence of anesthetic technique, cerebral injury and systemic inflammation. BMC Anesthesiol. 2015;15:154. https://doi.org/10.1186/s12871-015-0130-9 .
doi: 10.1186/s12871-015-0130-9 pubmed: 26497059 pmcid: 4619426
Casey CP, Lindroth H, Mohanty R, Farahbakhsh Z, Ballweg T, Twadell S, et al. Postoperative delirium is associated with increased plasma neurofilament light. Brain. 2020;143:47–54. https://doi.org/10.1093/brain/awz354 .
doi: 10.1093/brain/awz354 pubmed: 31802104
Sun L, Xie K, Zhang C, Song R, Zhang H. Hyperbaric oxygen preconditioning attenuates postoperative cognitive impairment in aged rats. Neuroreport. 2014;25:718–24. https://doi.org/10.1097/WNR.0000000000000181 .
doi: 10.1097/WNR.0000000000000181 pubmed: 24870985
He Z, Xu N, Qi S. Remote ischemic preconditioning improves the cognitive function of elderly patients following colon surgery: A randomized clinical trial. Medicine (Baltimore). 2017;96: e6719. https://doi.org/10.1097/MD.0000000000006719 .
doi: 10.1097/MD.0000000000006719 pubmed: 28445286 pmcid: 5413251
Hu J, Feng X, Valdearcos M, Lutrin D, Uchida Y, Koliwad SK, et al. Interleukin-6 is both necessary and sufficient to produce perioperative neurocognitive disorder in mice. Br J Anaesth. 2018;120:537–45. https://doi.org/10.1016/j.bja.2017.11.096 .
doi: 10.1016/j.bja.2017.11.096 pubmed: 29452810 pmcid: 6200097
Terrando N, Monaco C, Ma D, Foxwell BM, Feldmann M, Maze M. Tumor necrosis factor-alpha triggers a cytokine cascade yielding postoperative cognitive decline. Proc Natl Acad Sci U S A. 2010;107:20518–22. https://doi.org/10.1073/pnas.1014557107 .
doi: 10.1073/pnas.1014557107 pubmed: 21041647 pmcid: 2996666
Xiong C, Liu J, Lin D, Zhang J, Terrando N, Wu A. Complement activation contributes to perioperative neurocognitive disorders in mice. J Neuroinflammation. 2018;15:254. https://doi.org/10.1186/s12974-018-1292-4 .
doi: 10.1186/s12974-018-1292-4 pubmed: 30180861 pmcid: 6123969
Sahoo AK, Panda N, Sabharwal P, Luthra A, Balu M, Chauhan R, et al. Effect of anesthetic agents on cognitive function and peripheral inflammatory biomarkers in young patients undergoing surgery for spine disorders. Asian J Neurosurg. 2019;14:1095–105. https://doi.org/10.4103/ajns.AJNS_173_19 .
doi: 10.4103/ajns.AJNS_173_19 pubmed: 31903346 pmcid: 6896617
Sweeney MD, Zhao Z, Montagne A, Nelson AR, Zlokovic BV. Blood-brain barrier: from physiology to disease and back. Physiol Rev. 2019;99:21–78. https://doi.org/10.1152/physrev.00050.2017 .
doi: 10.1152/physrev.00050.2017 pubmed: 30280653
Abbott NJ, Ronnback L, Hansson E. Astrocyte-endothelial interactions at the blood-brain barrier. Nat Rev Neurosci. 2006;7:41–53. https://doi.org/10.1038/nrn1824 .
doi: 10.1038/nrn1824 pubmed: 16371949
Armulik A, Genove G, Mae M, Nisancioglu MH, Wallgard E, Niaudet C, et al. Pericytes regulate the blood-brain barrier. Nature. 2010;468:557–61. https://doi.org/10.1038/nature09522 .
doi: 10.1038/nature09522 pubmed: 20944627
Zhao Z, Nelson AR, Betsholtz C, Zlokovic BV. Establishment and dysfunction of the blood-brain barrier. Cell. 2015;163:1064–78. https://doi.org/10.1016/j.cell.2015.10.067 .
doi: 10.1016/j.cell.2015.10.067 pubmed: 26590417 pmcid: 4655822
Nation DA, Sweeney MD, Montagne A, Sagare AP, D’Orazio LM, Pachicano M, et al. Blood-brain barrier breakdown is an early biomarker of human cognitive dysfunction. Nat Med. 2019;25:270–6. https://doi.org/10.1038/s41591-018-0297-y .
doi: 10.1038/s41591-018-0297-y pubmed: 30643288 pmcid: 6367058
Yang S, Gu C, Mandeville ET, Dong Y, Esposito E, Zhang Y, et al. Anesthesia and surgery impair blood-brain barrier and cognitive function in mice. Front Immunol. 2017;8:902. https://doi.org/10.3389/fimmu.2017.00902 .
doi: 10.3389/fimmu.2017.00902 pubmed: 28848542 pmcid: 5552714
Yang T, Xu G, Newton PT, Chagin AS, Mkrtchian S, Carlstrom M, et al. Maresin 1 attenuates neuroinflammation in a mouse model of perioperative neurocognitive disorders. Br J Anaesth. 2019;122:350–60. https://doi.org/10.1016/j.bja.2018.10.062 .
doi: 10.1016/j.bja.2018.10.062 pubmed: 30770053
Ni P, Dong H, Wang Y, Zhou Q, Xu M, Qian Y, et al. IL-17A contributes to perioperative neurocognitive disorders through blood-brain barrier disruption in aged mice. J Neuroinflammation. 2018;15:332. https://doi.org/10.1186/s12974-018-1374-3 .
doi: 10.1186/s12974-018-1374-3 pubmed: 30501622 pmcid: 6267879
Degos V, Vacas S, Han Z, van Rooijen N, Gressens P, Su H, et al. Depletion of bone marrow-derived macrophages perturbs the innate immune response to surgery and reduces postoperative memory dysfunction. Anesthesiology. 2013;118:527–36. https://doi.org/10.1097/ALN.0b013e3182834d94 .
doi: 10.1097/ALN.0b013e3182834d94 pubmed: 23426204
Schwartz M, Baruch K. The resolution of neuroinflammation in neurodegeneration: leukocyte recruitment via the choroid plexus. EMBO J. 2014;33:7–22. https://doi.org/10.1002/embj.201386609 .
doi: 10.1002/embj.201386609 pubmed: 24357543
Kunis G, Baruch K, Rosenzweig N, Kertser A, Miller O, Berkutzki T, et al. IFN-gamma-dependent activation of the brain’s choroid plexus for CNS immune surveillance and repair. Brain. 2013;136:3427–40. https://doi.org/10.1093/brain/awt259 .
doi: 10.1093/brain/awt259 pubmed: 24088808
Baruch K, Schwartz M. CNS-specific T cells shape brain function via the choroid plexus. Brain Behav Immun. 2013;34:11–6. https://doi.org/10.1016/j.bbi.2013.04.002 .
doi: 10.1016/j.bbi.2013.04.002 pubmed: 23597431
Baruch K, Ron-Harel N, Gal H, Deczkowska A, Shifrut E, Ndifon W, et al. CNS-specific immunity at the choroid plexus shifts toward destructive Th2 inflammation in brain aging. Proc Natl Acad Sci USA. 2013;110:2264–9. https://doi.org/10.1073/pnas.1211270110 .
doi: 10.1073/pnas.1211270110 pubmed: 23335631 pmcid: 3568380
Redzic ZB, Segal MB. The structure of the choroid plexus and the physiology of the choroid plexus epithelium. Adv Drug Deliv Rev. 2004;56:1695–716. https://doi.org/10.1016/j.addr.2004.07.005 .
doi: 10.1016/j.addr.2004.07.005 pubmed: 15381330
Johanson C, Stopa E, McMillan P, Roth D, Funk J, Krinke G. The distributional nexus of choroid plexus to cerebrospinal fluid, ependyma and brain: toxicologic/pathologic phenomena, periventricular destabilization, and lesion spread. Toxicol Pathol. 2011;39:186–212. https://doi.org/10.1177/0192623310394214 .
doi: 10.1177/0192623310394214 pubmed: 21189316
Neman J, Chen TC. The Choroid Plexus and Cerebrospinal Fluid: Emerging Roles in CNS Development, Maintenance, and Disease Progression. Academic Press.2015;1st edition:155–65.
Kaur C, Rathnasamy G, Ling EA. The choroid plexus in healthy and diseased brain. J Neuropathol Exp Neurol. 2016;75:198–213. https://doi.org/10.1093/jnen/nlv030 .
doi: 10.1093/jnen/nlv030 pubmed: 26888305
Kratzer I, Ek J, Stolp H. The molecular anatomy and functions of the choroid plexus in healthy and diseased brain. Biochim Biophys Acta Biomembr. 2020;1862:183430. https://doi.org/10.1016/j.bbamem.2020.183430 .
doi: 10.1016/j.bbamem.2020.183430 pubmed: 32750317
Ott BR, Jones RN, Daiello LA, de la Monte SM, Stopa EG, Johanson CE, et al. Blood-cerebrospinal fluid barrier gradients in mild cognitive impairment and Alzheimer’s disease: relationship to inflammatory cytokines and chemokines. Front Aging Neurosci. 2018;10:245. https://doi.org/10.3389/fnagi.2018.00245 .
doi: 10.3389/fnagi.2018.00245 pubmed: 30186149 pmcid: 6110816
Goldim MP, Danielski LG, Rodrigues JF, Joaquim L, Garbossa L, de Oliveira Junior AN, et al. Oxidative stress in the choroid plexus contributes to blood-cerebrospinal fluid barrier disruption during sepsis development. Microvasc Res. 2019;123:19–24. https://doi.org/10.1016/j.mvr.2018.12.001 .
doi: 10.1016/j.mvr.2018.12.001 pubmed: 30552905
Mesquita SD, Ferreira AC, Gao F, Coppola G, Geschwind DH, Sousa JC, et al. The choroid plexus transcriptome reveals changes in type I and II interferon responses in a mouse model of Alzheimer’s disease. Brain Behav Immun. 2015;49:280–92. https://doi.org/10.1016/j.bbi.2015.06.008 .
doi: 10.1016/j.bbi.2015.06.008 pubmed: 26092102
Zanotto C, Simao F, Gasparin MS, Biasibetti R, Tortorelli LS, Nardin P, et al. Exendin-4 reverses biochemical and functional alterations in the blood-brain and blood-CSF barriers in diabetic rats. Mol Neurobiol. 2017;54:2154–66. https://doi.org/10.1007/s12035-016-9798-1 .
doi: 10.1007/s12035-016-9798-1 pubmed: 26927659
Hov KR, Berg JP, Frihagen F, Raeder J, Hall R, Wyller TB, et al. Blood-cerebrospinal fluid barrier integrity in delirium determined by Q-albumin. Dement Geriatr Cogn Disord. 2016;41:192–8. https://doi.org/10.1159/000443789 .
doi: 10.1159/000443789 pubmed: 27058253
Benarroch EE. Circumventricular organs: receptive and homeostatic functions and clinical implications. Neurology. 2011;77:1198–204. https://doi.org/10.1212/WNL.0b013e31822f04a0 .
doi: 10.1212/WNL.0b013e31822f04a0 pubmed: 21931109
Wei SG, Zhang ZH, Beltz TG, Yu Y, Johnson AK, Felder RB. Subfornical organ mediates sympathetic and hemodynamic responses to blood-borne proinflammatory cytokines. Hypertension. 2013;62:118–25. https://doi.org/10.1161/HYPERTENSIONAHA.113.01404 .
doi: 10.1161/HYPERTENSIONAHA.113.01404 pubmed: 23670302
Korim WS, Elsaafien K, Basser JR, Setiadi A, May CN, Yao ST. In renovascular hypertension, TNF-alpha type-1 receptors in the area postrema mediate increases in cardiac and renal sympathetic nerve activity and blood pressure. Cardiovasc Res. 2019;115:1092–101. https://doi.org/10.1093/cvr/cvy268 .
doi: 10.1093/cvr/cvy268 pubmed: 30358805
Okamoto A, Fujii R, Yoshimura R, Miyata S. Transcytosis of tanycytes in the circumventricular organs of adult mouse brain. Neurosci Lett. 2022;779:136633. https://doi.org/10.1016/j.neulet.2022.136633 .
doi: 10.1016/j.neulet.2022.136633 pubmed: 35429588
Jeong JK, Dow SA, Young CN. Sensory circumventricular organs, neuroendocrine control, and metabolic regulation. Metabolites. 2021. https://doi.org/10.3390/metabo11080494 .
doi: 10.3390/metabo11080494 pubmed: 34940575 pmcid: 8707369
Berthoud HR, Neuhuber WL. Functional and chemical anatomy of the afferent vagal system. Auton Neurosci. 2000;85:1–17. https://doi.org/10.1016/S1566-0702(00)00215-0 .
doi: 10.1016/S1566-0702(00)00215-0 pubmed: 11189015
Dilger RN, Johnson RW. Aging, microglial cell priming, and the discordant central inflammatory response to signals from the peripheral immune system. J Leukoc Biol. 2008;84:932–9. https://doi.org/10.1189/jlb.0208108 .
doi: 10.1189/jlb.0208108 pubmed: 18495785 pmcid: 2538600
Maier SF. Bi-directional immune-brain communication: Implications for understanding stress, pain, and cognition. Brain Behav Immun. 2003;17:69–85. https://doi.org/10.1016/s0889-1591(03)00032-1 .
doi: 10.1016/s0889-1591(03)00032-1 pubmed: 12676570
Zielinski MR, Dunbrasky DL, Taishi P, Souza G, Krueger JM. Vagotomy attenuates brain cytokines and sleep induced by peripherally administered tumor necrosis factor-alpha and lipopolysaccharide in mice. Sleep. 2013;36(1227–38):38A. https://doi.org/10.5665/sleep.2892 .
doi: 10.5665/sleep.2892
Luheshi GN, Bluthe RM, Rushforth D, Mulcahy N, Konsman JP, Goldbach M, et al. Vagotomy attenuates the behavioural but not the pyrogenic effects of interleukin-1 in rats. Auton Neurosci. 2000;85:127–32. https://doi.org/10.1016/S1566-0702(00)00231-9 .
doi: 10.1016/S1566-0702(00)00231-9 pubmed: 11189019
Kubota T, Fang J, Guan Z, Brown RA, Krueger JM. Vagotomy attenuates tumor necrosis factor-alpha-induced sleep and EEG delta-activity in rats. Am J Physiol Regul Integr Comp Physiol. 2001;280:R1213-20. https://doi.org/10.1152/ajpregu.2001.280.4.R1213 .
doi: 10.1152/ajpregu.2001.280.4.R1213 pubmed: 11247847
Romanovsky AA, Ivanov AI, Szekely M. Neural route of pyrogen signaling to the brain. Clin Infect Dis. 2000;31(Suppl 5):S162-7. https://doi.org/10.1086/317515 .
doi: 10.1086/317515 pubmed: 11113019
Cugurra A, Mamuladze T, Rustenhoven J, Dykstra T, Beroshvili G, Greenberg ZJ, et al. Skull and vertebral bone marrow are myeloid cell reservoirs for the meninges and CNS parenchyma. Science. 2021. https://doi.org/10.1126/science.abf7844 .
doi: 10.1126/science.abf7844 pubmed: 34083447 pmcid: 8863069
Cai R, Pan C, Ghasemigharagoz A, Todorov MI, Forstera B, Zhao S, et al. Panoptic imaging of transparent mice reveals whole-body neuronal projections and skull-meninges connections. Nat Neurosci. 2019;22:317–27. https://doi.org/10.1038/s41593-018-0301-3 .
doi: 10.1038/s41593-018-0301-3 pubmed: 30598527
Herisson F, Frodermann V, Courties G, Rohde D, Sun Y, Vandoorne K, et al. Direct vascular channels connect skull bone marrow and the brain surface enabling myeloid cell migration. Nat Neurosci. 2018;21:1209–17. https://doi.org/10.1038/s41593-018-0213-2 .
doi: 10.1038/s41593-018-0213-2 pubmed: 30150661 pmcid: 6148759
Yao H, Price TT, Cantelli G, Ngo B, Warner MJ, Olivere L, et al. Leukaemia hijacks a neural mechanism to invade the central nervous system. Nature. 2018;560:55–60. https://doi.org/10.1038/s41586-018-0342-5 .
doi: 10.1038/s41586-018-0342-5 pubmed: 30022166 pmcid: 10257142
Galea I, Perry VH. The blood-brain interface: a culture change. Brain Behav Immun. 2018;68:11–6. https://doi.org/10.1016/j.bbi.2017.10.014 .
doi: 10.1016/j.bbi.2017.10.014 pubmed: 29107155
Smyth LCD, Rustenhoven J, Park TI, Schweder P, Jansson D, Heppner PA, et al. Unique and shared inflammatory profiles of human brain endothelia and pericytes. J Neuroinflammation. 2018;15:138. https://doi.org/10.1186/s12974-018-1167-8 .
doi: 10.1186/s12974-018-1167-8 pubmed: 29751771 pmcid: 5948925
D’Mello C, Riazi K, Le T, Stevens KM, Wang A, McKay DM, et al. P-selectin-mediated monocyte-cerebral endothelium adhesive interactions link peripheral organ inflammation to sickness behaviors. J Neurosci. 2013;33:14878–88. https://doi.org/10.1523/JNEUROSCI.1329-13.2013 .
doi: 10.1523/JNEUROSCI.1329-13.2013 pubmed: 24027287 pmcid: 6705165
Liu X, Nemeth DP, McKim DB, Zhu L, DiSabato DJ, Berdysz O, et al. Cell-type-specific interleukin 1 receptor 1 signaling in the brain regulates distinct neuroimmune activities. Immunity. 2019;50:764–6. https://doi.org/10.1016/j.immuni.2019.02.012 .
doi: 10.1016/j.immuni.2019.02.012 pubmed: 30893590
Erikson K, Tuominen H, Vakkala M, Liisanantti JH, Karttunen T, Syrjala H, et al. Brain tight junction protein expression in sepsis in an autopsy series. Crit Care. 2020;24:385. https://doi.org/10.1186/s13054-020-03101-3 .
doi: 10.1186/s13054-020-03101-3 pubmed: 32600371 pmcid: 7325252
Konsman JP, Vigues S, Mackerlova L, Bristow A, Blomqvist A. Rat brain vascular distribution of interleukin-1 type-1 receptor immunoreactivity: relationship to patterns of inducible cyclooxygenase expression by peripheral inflammatory stimuli. J Comp Neurol. 2004;472:113–29. https://doi.org/10.1002/cne.20052 .
doi: 10.1002/cne.20052 pubmed: 15024756
Engblom D, Ek M, Saha S, Ericsson-Dahlstrand A, Jakobsson PJ, Blomqvist A. Prostaglandins as inflammatory messengers across the blood-brain barrier. J Mol Med (Berl). 2002;80:5–15. https://doi.org/10.1007/s00109-001-0289-z .
doi: 10.1007/s00109-001-0289-z pubmed: 11862319
Propson NE, Roy ER, Litvinchuk A, Kohl J, Zheng H. Endothelial C3a receptor mediates vascular inflammation and blood-brain barrier permeability during aging. J Clin Invest. 2021. https://doi.org/10.1172/JCI140966 .
doi: 10.1172/JCI140966 pubmed: 32990682 pmcid: 7773352
Bhatia K, Ahmad S, Kindelin A, Ducruet AF. Complement C3a receptor-mediated vascular dysfunction: a complex interplay between aging and neurodegeneration. J Clin Invest. 2021. https://doi.org/10.1172/JCI144348 .
doi: 10.1172/JCI144348 pubmed: 33539324 pmcid: 8011894
Wu F, Liu L, Zhou H. Endothelial cell activation in central nervous system inflammation. J Leukoc Biol. 2017;101:1119–32. https://doi.org/10.1189/jlb.3RU0816-352RR .
doi: 10.1189/jlb.3RU0816-352RR pubmed: 28196850
Vizcaychipi MP, Watts HR, O’Dea KP, Lloyd DG, Penn JW, Wan Y, et al. The therapeutic potential of atorvastatin in a mouse model of postoperative cognitive decline. Ann Surg. 2014;259:1235–44. https://doi.org/10.1097/SLA.0000000000000257 .
doi: 10.1097/SLA.0000000000000257 pubmed: 24263322
Winkler EA, Bell RD, Zlokovic BV. Central nervous system pericytes in health and disease. Nat Neurosci. 2011;14:1398–405. https://doi.org/10.1038/nn.2946 .
doi: 10.1038/nn.2946 pubmed: 22030551 pmcid: 4020628
Duan L, Zhang XD, Miao WY, Sun YJ, Xiong G, Wu Q, et al. PDGFRbeta Cells Rapidly Relay Inflammatory Signal from the Circulatory System to Neurons via Chemokine CCL2. Neuron. 2018. https://doi.org/10.1016/j.neuron.2018.08.030 .
doi: 10.1016/j.neuron.2018.08.030 pubmed: 30269986 pmcid: 6284407
Brown GC, Vilalta A. How microglia kill neurons. Brain Res. 2015;1628:288–97. https://doi.org/10.1016/j.brainres.2015.08.031 .
doi: 10.1016/j.brainres.2015.08.031 pubmed: 26341532
Montagne A, Nikolakopoulou AM, Zhao Z, Sagare AP, Si G, Lazic D, et al. Pericyte degeneration causes white matter dysfunction in the mouse central nervous system. Nat Med. 2018;24:326–37. https://doi.org/10.1038/nm.4482 .
doi: 10.1038/nm.4482 pubmed: 29400711 pmcid: 5840035
Jansson D, Rustenhoven J, Feng S, Hurley D, Oldfield RL, Bergin PS, et al. A role for human brain pericytes in neuroinflammation. J Neuroinflammation. 2014;11:104. https://doi.org/10.1186/1742-2094-11-104 .
doi: 10.1186/1742-2094-11-104 pubmed: 24920309 pmcid: 4105169
Greter M, Lelios I, Croxford AL. Microglia versus myeloid cell nomenclature during brain inflammation. Front Immunol. 2015;6:249. https://doi.org/10.3389/fimmu.2015.00249 .
doi: 10.3389/fimmu.2015.00249 pubmed: 26074918 pmcid: 4443742
Chowen JA, Garcia-Segura LM. Microglia, neurodegeneration and loss of neuroendocrine control. Prog Neurobiol. 2020;184:101720. https://doi.org/10.1016/j.pneurobio.2019.101720 .
doi: 10.1016/j.pneurobio.2019.101720 pubmed: 31715222
Davoust N, Vuaillat C, Androdias G, Nataf S. From bone marrow to microglia: barriers and avenues. Trends Immunol. 2008;29:227–34. https://doi.org/10.1016/j.it.2008.01.010 .
doi: 10.1016/j.it.2008.01.010 pubmed: 18396103
D’Mello C, Le T, Swain MG. Cerebral microglia recruit monocytes into the brain in response to tumor necrosis factoralpha signaling during peripheral organ inflammation. J Neurosci. 2009;29:2089–102. https://doi.org/10.1523/JNEUROSCI.3567-08.2009 .
doi: 10.1523/JNEUROSCI.3567-08.2009 pubmed: 19228962 pmcid: 6666330
Wang T, Zhu H, Hou Y, Gu W, Wu H, Luan Y, et al. Galantamine reversed early postoperative cognitive deficit via alleviating inflammation and enhancing synaptic transmission in mouse hippocampus. Eur J Pharmacol. 2019;846:63–72. https://doi.org/10.1016/j.ejphar.2018.12.034 .
doi: 10.1016/j.ejphar.2018.12.034 pubmed: 30586550
Buvanendran A, Kroin JS, Berger RA, Hallab NJ, Saha C, Negrescu C, et al. Upregulation of prostaglandin E2 and interleukins in the central nervous system and peripheral tissue during and after surgery in humans. Anesthesiology. 2006;104:403–10. https://doi.org/10.1097/00000542-200603000-00005 .
doi: 10.1097/00000542-200603000-00005 pubmed: 16508385
Hanisch UK. Microglia as a source and target of cytokines. Glia. 2002;40:140–55. https://doi.org/10.1002/glia.10161 .
doi: 10.1002/glia.10161 pubmed: 12379902
Wang HL, Liu H, Xue ZG, Liao QW, Fang H. Minocycline attenuates post-operative cognitive impairment in aged mice by inhibiting microglia activation. J Cell Mol Med. 2016;20:1632–9. https://doi.org/10.1111/jcmm.12854 .
doi: 10.1111/jcmm.12854 pubmed: 27061744 pmcid: 4988280
Feng X, Valdearcos M, Uchida Y, Lutrin D, Maze M, Koliwad SK. Microglia mediate postoperative hippocampal inflammation and cognitive decline in mice. JCI Insight. 2017;2: e91229. https://doi.org/10.1172/jci.insight.91229 .
doi: 10.1172/jci.insight.91229 pubmed: 28405620 pmcid: 5374063
Zhou X, Lu J, Wu T, Jiang X, Tian W, Dai W, et al. Multiple anesthesia/surgery cannot impair reference memory in adult mice. Mediators Inflamm. 2020;2020:3736912. https://doi.org/10.1155/2020/3736912 .
doi: 10.1155/2020/3736912 pubmed: 32214903 pmcid: 7081041
Wang HL, Ma RH, Fang H, Xue ZG, Liao QW. Impaired spatial learning memory after isoflurane anesthesia or appendectomy in aged mice is associated with microglia activation. J Cell Death. 2015;8:9–19. https://doi.org/10.4137/JCD.S30596 .
doi: 10.4137/JCD.S30596 pubmed: 26380557 pmcid: 4560456
Lee HG, Wheeler MA, Quintana FJ. Function and therapeutic value of astrocytes in neurological diseases. Nat Rev Drug Discov. 2022;21:339–58. https://doi.org/10.1038/s41573-022-00390-x .
doi: 10.1038/s41573-022-00390-x pubmed: 35173313 pmcid: 9081171
Zhou Y, Wu X, Ye L, Bai Y, Zhang H, Xuan Z, et al. Edaravone at high concentrations attenuates cognitive dysfunctions induced by abdominal surgery under general anesthesia in aged mice. Metab Brain Dis. 2020;35:373–83. https://doi.org/10.1007/s11011-019-00532-y .
doi: 10.1007/s11011-019-00532-y pubmed: 31916204
Quiroz-Padilla MF, Guillazo-Blanch G, Sanchez MY, Dominguez-Sanchez MA, Gomez RM. Effects of excitotoxic lesion with inhaled anesthetics on nervous system cells of rodents. Curr Pharm Des. 2018;24:4–14. https://doi.org/10.2174/1381612823666170817125015 .
doi: 10.2174/1381612823666170817125015 pubmed: 28820078
Wan Y, Xu J, Ma D, Zeng Y, Cibelli M, Maze M. Postoperative impairment of cognitive function in rats: a possible role for cytokine-mediated inflammation in the hippocampus. Anesthesiology. 2007;106:436–43. https://doi.org/10.1097/00000542-200703000-00007 .
doi: 10.1097/00000542-200703000-00007 pubmed: 17325501
Liddelow SA, Guttenplan KA, Clarke LE, Bennett FC, Bohlen CJ, Schirmer L, et al. Neurotoxic reactive astrocytes are induced by activated microglia. Nature. 2017;541:481–7. https://doi.org/10.1038/nature21029 .
doi: 10.1038/nature21029 pubmed: 28099414 pmcid: 5404890
Bradl M, Lassmann H. Oligodendrocytes: biology and pathology. Acta Neuropathol. 2010;119:37–53. https://doi.org/10.1007/s00401-009-0601-5 .
doi: 10.1007/s00401-009-0601-5 pubmed: 19847447
Maes M, Thisayakorn P, Thipakorn Y, Tantavisut S, Sirivichayakul S, Vojdani A. Reactivity to neural tissue epitopes, aquaporin 4 and heat shock protein 60 is associated with activated immune-inflammatory pathways and the onset of delirium following hip fracture surgery. Eur Geriatr Med. 2023;14:99–112. https://doi.org/10.1007/s41999-022-00729-y .
doi: 10.1007/s41999-022-00729-y pubmed: 36520371
Favrais G, Bokobza C, Saliba E, Chalon S, Gressens P. Alteration of the oligodendrocyte lineage varies according to the systemic inflammatory stimulus in animal models that mimic the encephalopathy of prematurity. Front Physiol. 2022;13:881674. https://doi.org/10.3389/fphys.2022.881674 .
doi: 10.3389/fphys.2022.881674 pubmed: 35928559 pmcid: 9343871
Farrar WL, Kilian PL, Ruff MR, Hill JM, Pert CB. Visualization and characterization of interleukin 1 receptors in brain. J Immunol. 1987;139:459–63.
doi: 10.4049/jimmunol.139.2.459 pubmed: 2955042
Prieto GA, Snigdha S, Baglietto-Vargas D, Smith ED, Berchtold NC, Tong L, et al. Synapse-specific IL-1 receptor subunit reconfiguration augments vulnerability to IL-1beta in the aged hippocampus. Proc Natl Acad Sci USA. 2015;112:E5078-87. https://doi.org/10.1073/pnas.1514486112 .
doi: 10.1073/pnas.1514486112 pubmed: 26305968 pmcid: 4568670
Wang DS, Zurek AA, Lecker I, Yu J, Abramian AM, Avramescu S, et al. Memory deficits induced by inflammation are regulated by alpha5-subunit-containing GABAA receptors. Cell Rep. 2012;2:488–96. https://doi.org/10.1016/j.celrep.2012.08.022 .
doi: 10.1016/j.celrep.2012.08.022 pubmed: 22999935 pmcid: 4391624
Yang L, Lindholm K, Konishi Y, Li R, Shen Y. Target depletion of distinct tumor necrosis factor receptor subtypes reveals hippocampal neuron death and survival through different signal transduction pathways. J Neurosci. 2002;22:3025–32. https://doi.org/10.1523/JNEUROSCI.22-08-03025.2002 .
doi: 10.1523/JNEUROSCI.22-08-03025.2002 pubmed: 11943805 pmcid: 6757531
Li R, Yang L, Lindholm K, Konishi Y, Yue X, Hampel H, et al. Tumor necrosis factor death receptor signaling cascade is required for amyloid-beta protein-induced neuron death. J Neurosci. 2004;24:1760–71. https://doi.org/10.1523/JNEUROSCI.4580-03.2004 .
doi: 10.1523/JNEUROSCI.4580-03.2004 pubmed: 14973251 pmcid: 6730458
Subramaniyan S, Terrando N. Neuroinflammation and perioperative neurocognitive disorders. Anesth Analg. 2019;128:781–8. https://doi.org/10.1213/ANE.0000000000004053 .
doi: 10.1213/ANE.0000000000004053 pubmed: 30883423 pmcid: 6437083
Kawano T, Yamanaka D, Aoyama B, Tateiwa H, Shigematsu-Locatelli M, Nishigaki A, et al. Involvement of acute neuroinflammation in postoperative delirium-like cognitive deficits in rats. J Anesth. 2018;32:506–17. https://doi.org/10.1007/s00540-018-2504-x .
doi: 10.1007/s00540-018-2504-x pubmed: 29725829
Danielson M, Wiklund A, Granath F, Blennow K, Mkrtchian S, Nellgard B, et al. Neuroinflammatory markers associate with cognitive decline after major surgery: Findings of an explorative study. Ann Neurol. 2020;87:370–82. https://doi.org/10.1002/ana.25678 .
doi: 10.1002/ana.25678 pubmed: 31930549
Riazi K, Galic MA, Kentner AC, Reid AY, Sharkey KA, Pittman QJ. Microglia-dependent alteration of glutamatergic synaptic transmission and plasticity in the hippocampus during peripheral inflammation. J Neurosci. 2015;35:4942–52. https://doi.org/10.1523/JNEUROSCI.4485-14.2015 .
doi: 10.1523/JNEUROSCI.4485-14.2015 pubmed: 25810524 pmcid: 6705378
Greenhalgh AD, David S, Bennett FC. Immune cell regulation of glia during CNS injury and disease. Nat Rev Neurosci. 2020;21:139–52. https://doi.org/10.1038/s41583-020-0263-9 .
doi: 10.1038/s41583-020-0263-9 pubmed: 32042145
Li D, Chen M, Meng T, Fei J. Hippocampal microglial activation triggers a neurotoxic-specific astrocyte response and mediates etomidate-induced long-term synaptic inhibition. J Neuroinflammation. 2020;17:109. https://doi.org/10.1186/s12974-020-01799-0 .
doi: 10.1186/s12974-020-01799-0 pubmed: 32264970 pmcid: 7140340
Yang W, Kong LS, Zhu XX, Wang RX, Liu Y, Chen LR. Effect of dexmedetomidine on postoperative cognitive dysfunction and inflammation in patients after general anaesthesia: A PRISMA-compliant systematic review and meta-analysis. Medicine (Baltimore). 2019;98: e15383. https://doi.org/10.1097/MD.0000000000015383 .
doi: 10.1097/MD.0000000000015383 pubmed: 31045788 pmcid: 6504304
Lei D, Sha Y, Wen S, Xie S, Liu L, Han C. Dexmedetomidine may reduce IL-6 level and the risk of postoperative cognitive dysfunction in patients after surgery: a meta-analysis. Dose Response. 2020;18:1559325820902345. https://doi.org/10.1177/1559325820902345 .
doi: 10.1177/1559325820902345 pubmed: 32076394 pmcid: 7003176
Huang JM, Lv ZT, Zhang B, Jiang WX, Nie MB. Intravenous parecoxib for early postoperative cognitive dysfunction in elderly patients: evidence from a meta-analysis. Expert Rev Clin Pharmacol. 2020;13:451–60. https://doi.org/10.1080/17512433.2020.1732815 .
doi: 10.1080/17512433.2020.1732815 pubmed: 32077347
Li B, Li Y, Tian S, Wang H, Wu H, Zhang A, et al. Anti-inflammatory effects of perioperative dexmedetomidine administered as an adjunct to general anesthesia: a meta-analysis. Sci Rep. 2015;5:12342. https://doi.org/10.1038/srep12342 .
doi: 10.1038/srep12342 pubmed: 26196332 pmcid: 4508837
Mei B, Xu G, Han W, Lu X, Liu R, Cheng X, et al. The benefit of dexmedetomidine on postoperative cognitive function is unrelated to the modulation on peripheral inflammation: a single-center, prospective. Randomized Study Clin J Pain. 2020;36:88–95. https://doi.org/10.1097/AJP.0000000000000779 .
doi: 10.1097/AJP.0000000000000779 pubmed: 31714323
Glumac S, Kardum G, Sodic L, Supe-Domic D, Karanovic N. Effects of dexamethasone on early cognitive decline after cardiac surgery: a randomised controlled trial. Eur J Anaesthesiol. 2017;34:776–84. https://doi.org/10.1097/EJA.0000000000000647 .
doi: 10.1097/EJA.0000000000000647 pubmed: 28985195
Ottens TH, Dieleman JM, Sauer AM, Peelen LM, Nierich AP, de Groot WJ, et al. Effects of dexamethasone on cognitive decline after cardiac surgery: a randomized clinical trial. Anesthesiology. 2014;121:492–500. https://doi.org/10.1097/ALN.0000000000000336 .
doi: 10.1097/ALN.0000000000000336 pubmed: 25225745
Kluger MT, Skarin M, Collier J, Rice DA, McNair PJ, Seow MY, et al. Steroids to reduce the impact on delirium (STRIDE): a double-blind, randomised, placebo-controlled feasibility trial of pre-operative dexamethasone in people with hip fracture. Anaesthesia. 2021;76:1031–41. https://doi.org/10.1111/anae.15465 .
doi: 10.1111/anae.15465 pubmed: 33899214

Auteurs

Shilin Jia (S)

Department of Anesthesiology, Hospital of Stomatology, Guanghua School of Stomatology, Sun Yat-Sen University, 74 Zhongshan Rd 2, Guangzhou, 510080, China.
Guangdong Provincial Key Laboratory of Stomatology, Guangzhou, China.

Hui Yang (H)

Guangdong Provincial Key Laboratory of Stomatology, Guangzhou, China.

Fang Huang (F)

Guangdong Provincial Key Laboratory of Stomatology, Guangzhou, China.

Wenguo Fan (W)

Department of Anesthesiology, Hospital of Stomatology, Guanghua School of Stomatology, Sun Yat-Sen University, 74 Zhongshan Rd 2, Guangzhou, 510080, China. fanweng@mail.sysu.edu.cn.
Guangdong Provincial Key Laboratory of Stomatology, Guangzhou, China. fanweng@mail.sysu.edu.cn.

Articles similaires

[Redispensing of expensive oral anticancer medicines: a practical application].

Lisanne N van Merendonk, Kübra Akgöl, Bastiaan Nuijen
1.00
Humans Antineoplastic Agents Administration, Oral Drug Costs Counterfeit Drugs

Smoking Cessation and Incident Cardiovascular Disease.

Jun Hwan Cho, Seung Yong Shin, Hoseob Kim et al.
1.00
Humans Male Smoking Cessation Cardiovascular Diseases Female
Humans United States Aged Cross-Sectional Studies Medicare Part C
1.00
Humans Yoga Low Back Pain Female Male

Classifications MeSH