Skip to main content
Top
Published in: Inflammation 1/2024

Open Access 29-10-2023 | Subarachnoid Hemorrhage | RESEARCH

Interleukin-4 Modulates Neuroinflammation by Inducing Phenotypic Transformation of Microglia Following Subarachnoid Hemorrhage

Authors: Jing Wang, Lili Wang, Qingjian Wu, Yichen Cai, Chengfu Cui, Ming Yang, Baoliang Sun, Leilei Mao, Yuan Wang

Published in: Inflammation | Issue 1/2024

Login to get access

Abstract

Neuroinflammation, a key pathological feature following subarachnoid hemorrhage (SAH), can be therapeutically targeted by inhibiting microglia M1 polarization and promoting phenotypic transformation to M2 microglia. Interleukin-4 (IL-4) is a pleiotropic cytokine known to its regulation of physiological functions of the central nervous system (CNS) and mediate neuroinflammatory processes. However, its specific role in neuroinflammation and microglia responses following SAH remains unexplored. In this investigation, we established both in vivo and in vitro SAH models and employed a comprehensive array of assessments, including ELISA, neurofunctional profiling, immunofluorescence staining, qRT-PCR, determination of phagocytic capacity, and RNA-Seq analyses. The findings demonstrate an elevated expression of IL-4 within cerebrospinal fluid (CSF) subsequent to SAH. Furthermore, exogenous administration of IL-4 ameliorates post-SAH neurofunctional deficits, attenuates cellular apoptosis, fosters M2 microglia phenotype conversion, and mitigates neuroinflammatory responses. The RNA-Seq analysis signifies that IL-4 governs the modulation of neuroinflammation in microglia within an in vitro SAH model through intricate cascades of signaling pathways, encompassing interactions between cytokines and cytokine receptors. These discoveries not only augment comprehension of the neuropathogenesis associated with post-SAH neuroinflammation but also present novel therapeutic targets for the management thereof.

Graphical Abstract

Literature
1.
go back to reference Etminan, N., H.S. Chang, K. Hackenberg, N.K. de Rooij, M.D.I. Vergouwen, G.J.E. Rinkel, and A. Algra. 2019. Worldwide incidence of aneurysmal subarachnoid hemorrhage according to region, time period, blood pressure, and smoking prevalence in the population: A systematic review and meta-analysis. JAMA Neurology 76: 588–597.PubMedPubMedCentralCrossRef Etminan, N., H.S. Chang, K. Hackenberg, N.K. de Rooij, M.D.I. Vergouwen, G.J.E. Rinkel, and A. Algra. 2019. Worldwide incidence of aneurysmal subarachnoid hemorrhage according to region, time period, blood pressure, and smoking prevalence in the population: A systematic review and meta-analysis. JAMA Neurology 76: 588–597.PubMedPubMedCentralCrossRef
2.
go back to reference Taufique, Z., T. May, E. Meyers, C. Falo, S.A. Mayer, S. Agarwal, S. Park, E.S. Connolly, J. Claassen, and J.M. Schmidt. 2016. Predictors of poor quality of life 1 year after subarachnoid hemorrhage. Neurosurgery 78: 256–264.PubMedCrossRef Taufique, Z., T. May, E. Meyers, C. Falo, S.A. Mayer, S. Agarwal, S. Park, E.S. Connolly, J. Claassen, and J.M. Schmidt. 2016. Predictors of poor quality of life 1 year after subarachnoid hemorrhage. Neurosurgery 78: 256–264.PubMedCrossRef
3.
go back to reference Lauzier, D.C., K. Jayaraman, J.Y. Yuan, D. Diwan, A.K. Vellimana, J.W. Osbun, A.R. Chatterjee, U. Athiraman, R. Dhar, and G.J. Zipfel. 2023. Early brain injury after subarachnoid hemorrhage: Incidence and mechanisms. Stroke 54: 1426–1440.PubMedCrossRef Lauzier, D.C., K. Jayaraman, J.Y. Yuan, D. Diwan, A.K. Vellimana, J.W. Osbun, A.R. Chatterjee, U. Athiraman, R. Dhar, and G.J. Zipfel. 2023. Early brain injury after subarachnoid hemorrhage: Incidence and mechanisms. Stroke 54: 1426–1440.PubMedCrossRef
4.
go back to reference Sehba, F.A., J. Hou, R.M. Pluta, and J.H. Zhang. 2012. The importance of early brain injury after subarachnoid hemorrhage. Progress in Neurobiology 97: 14–37.PubMedPubMedCentralCrossRef Sehba, F.A., J. Hou, R.M. Pluta, and J.H. Zhang. 2012. The importance of early brain injury after subarachnoid hemorrhage. Progress in Neurobiology 97: 14–37.PubMedPubMedCentralCrossRef
5.
go back to reference Schneider, U.C., A.M. Davids, S. Brandenburg, A. Müller, A. Elke, S. Magrini, E. Atangana, K. Turkowski, T. Finger, A. Gutenberg, et al. 2015. Microglia inflict delayed brain injury after subarachnoid hemorrhage. Acta Neuropathologica 130: 215–231.PubMedCrossRef Schneider, U.C., A.M. Davids, S. Brandenburg, A. Müller, A. Elke, S. Magrini, E. Atangana, K. Turkowski, T. Finger, A. Gutenberg, et al. 2015. Microglia inflict delayed brain injury after subarachnoid hemorrhage. Acta Neuropathologica 130: 215–231.PubMedCrossRef
6.
7.
go back to reference Kigerl, K.A., J.C. Gensel, D.P. Ankeny, J.K. Alexander, D.J. Donnelly, and P.G. Popovich. 2009. Identification of two distinct macrophage subsets with divergent effects causing either neurotoxicity or regeneration in the injured mouse spinal cord. Journal of Neuroscience 29: 13435–13444.PubMedCrossRef Kigerl, K.A., J.C. Gensel, D.P. Ankeny, J.K. Alexander, D.J. Donnelly, and P.G. Popovich. 2009. Identification of two distinct macrophage subsets with divergent effects causing either neurotoxicity or regeneration in the injured mouse spinal cord. Journal of Neuroscience 29: 13435–13444.PubMedCrossRef
8.
go back to reference Ansari, M.A. 2015. Temporal profile of M1 and M2 responses in the hippocampus following early 24h of neurotrauma. Journal of the Neurological Sciences 357: 41–49.PubMedCrossRef Ansari, M.A. 2015. Temporal profile of M1 and M2 responses in the hippocampus following early 24h of neurotrauma. Journal of the Neurological Sciences 357: 41–49.PubMedCrossRef
9.
go back to reference Orihuela, R., C.A. McPherson, and G.J. Harry. 2016. Microglial M1/M2 polarization and metabolic states. British Journal of Pharmacology 173: 649–665.PubMedCrossRef Orihuela, R., C.A. McPherson, and G.J. Harry. 2016. Microglial M1/M2 polarization and metabolic states. British Journal of Pharmacology 173: 649–665.PubMedCrossRef
10.
go back to reference Zhang, J., P. Rong, L. Zhang, H. He, T. Zhou, Y. Fan, L. Mo, Q. Zhao, Y. Han, S. Li, et al. 2021. IL4-driven microglia modulate stress resilience through BDNF-dependent neurogenesis. Science Advances 7. Zhang, J., P. Rong, L. Zhang, H. He, T. Zhou, Y. Fan, L. Mo, Q. Zhao, Y. Han, S. Li, et al. 2021. IL4-driven microglia modulate stress resilience through BDNF-dependent neurogenesis. Science Advances 7.
11.
go back to reference Hasan, M., J.E. Seo, K.A. Rahaman, M.J. Kang, B.H. Jung, and O.S. Kwon. 2016. Increased levels of brain serotonin correlated with MMP-9 activity and IL-4 levels resulted in severe experimental autoimmune encephalomyelitis (EAE) in obese mice. Neuroscience 319: 168–182.PubMedCrossRef Hasan, M., J.E. Seo, K.A. Rahaman, M.J. Kang, B.H. Jung, and O.S. Kwon. 2016. Increased levels of brain serotonin correlated with MMP-9 activity and IL-4 levels resulted in severe experimental autoimmune encephalomyelitis (EAE) in obese mice. Neuroscience 319: 168–182.PubMedCrossRef
12.
go back to reference Zhao, X., H. Wang, G. Sun, J. Zhang, N.J. Edwards, and J. Aronowski. 2015. Neuronal interleukin-4 as a modulator of microglial pathways and ischemic brain damage. Journal of Neuroscience 35: 11281–11291.PubMedCrossRef Zhao, X., H. Wang, G. Sun, J. Zhang, N.J. Edwards, and J. Aronowski. 2015. Neuronal interleukin-4 as a modulator of microglial pathways and ischemic brain damage. Journal of Neuroscience 35: 11281–11291.PubMedCrossRef
13.
go back to reference Ponomarev, E.D., K. Maresz, Y. Tan, and B.N. Dittel. 2007. CNS-derived interleukin-4 is essential for the regulation of autoimmune inflammation and induces a state of alternative activation in microglial cells. Journal of Neuroscience 27: 10714–10721.PubMedCrossRef Ponomarev, E.D., K. Maresz, Y. Tan, and B.N. Dittel. 2007. CNS-derived interleukin-4 is essential for the regulation of autoimmune inflammation and induces a state of alternative activation in microglial cells. Journal of Neuroscience 27: 10714–10721.PubMedCrossRef
14.
go back to reference Gärtner, Y., L. Bitar, F. Zipp, and C.F. Vogelaar. 2023. Interleukin-4 as a therapeutic target. Pharmacology & Therapeutics 242: 108348.CrossRef Gärtner, Y., L. Bitar, F. Zipp, and C.F. Vogelaar. 2023. Interleukin-4 as a therapeutic target. Pharmacology & Therapeutics 242: 108348.CrossRef
15.
go back to reference Zhou, Y., Y. Jiang, Y. Peng, and M. Zhang. 2017. The quantitative and functional changes of postoperative peripheral blood immune cell subsets relate to prognosis of patients with subarachnoid hemorrhage: A preliminary study. World Neurosurgery 108: 206–215.PubMedCrossRef Zhou, Y., Y. Jiang, Y. Peng, and M. Zhang. 2017. The quantitative and functional changes of postoperative peripheral blood immune cell subsets relate to prognosis of patients with subarachnoid hemorrhage: A preliminary study. World Neurosurgery 108: 206–215.PubMedCrossRef
16.
go back to reference Al-Tamimi, Y.Z., D. Bhargava, N.M. Orsi, A. Teraifi, M. Cummings, U.V. Ekbote, A.C. Quinn, S. Homer-Vanniasinkam, and S. Ross. 2019. Compartmentalisation of the inflammatory response following aneurysmal subarachnoid haemorrhage. Cytokine 123: 154778.PubMedCrossRef Al-Tamimi, Y.Z., D. Bhargava, N.M. Orsi, A. Teraifi, M. Cummings, U.V. Ekbote, A.C. Quinn, S. Homer-Vanniasinkam, and S. Ross. 2019. Compartmentalisation of the inflammatory response following aneurysmal subarachnoid haemorrhage. Cytokine 123: 154778.PubMedCrossRef
17.
go back to reference Righy, C., R. Turon, G. Freitas, A.M. Japiassú, H.C.C. Faria Neto, M. Bozza, M.F. Oliveira, and F.A. Bozza. 2018. Hemoglobin metabolism by-products are associated with an inflammatory response in patients with hemorrhagic stroke. Revista Brasileira de Terapia Intensiva 30: 21–27.PubMedPubMedCentralCrossRef Righy, C., R. Turon, G. Freitas, A.M. Japiassú, H.C.C. Faria Neto, M. Bozza, M.F. Oliveira, and F.A. Bozza. 2018. Hemoglobin metabolism by-products are associated with an inflammatory response in patients with hemorrhagic stroke. Revista Brasileira de Terapia Intensiva 30: 21–27.PubMedPubMedCentralCrossRef
18.
go back to reference Sugawara, T., R. Ayer, V. Jadhav, and J.H. Zhang. 2008. A new grading system evaluating bleeding scale in filament perforation subarachnoid hemorrhage rat model. Journal of Neuroscience Methods 167: 327–334.PubMedCrossRef Sugawara, T., R. Ayer, V. Jadhav, and J.H. Zhang. 2008. A new grading system evaluating bleeding scale in filament perforation subarachnoid hemorrhage rat model. Journal of Neuroscience Methods 167: 327–334.PubMedCrossRef
19.
go back to reference Chen, Q., Y. Cai, X. Zhu, J. Wang, F. Gao, M. Yang, L. Mao, Z. Zhang, and B. Sun. 2022. Edaravone dexborneol treatment attenuates neuronal apoptosis and improves neurological function by suppressing 4-HNE-associated oxidative stress after subarachnoid hemorrhage. Frontiers in Pharmacology 13: 848529.PubMedPubMedCentralCrossRef Chen, Q., Y. Cai, X. Zhu, J. Wang, F. Gao, M. Yang, L. Mao, Z. Zhang, and B. Sun. 2022. Edaravone dexborneol treatment attenuates neuronal apoptosis and improves neurological function by suppressing 4-HNE-associated oxidative stress after subarachnoid hemorrhage. Frontiers in Pharmacology 13: 848529.PubMedPubMedCentralCrossRef
20.
go back to reference Mao, L., L. Sun, J. Sun, B. Sun, Y. Gao, and H. Shi. 2021. Ethyl pyruvate improves white matter remodeling in rats after traumatic brain injury. CNS Neuroscience & Therapeutics 27: 113–122.CrossRef Mao, L., L. Sun, J. Sun, B. Sun, Y. Gao, and H. Shi. 2021. Ethyl pyruvate improves white matter remodeling in rats after traumatic brain injury. CNS Neuroscience & Therapeutics 27: 113–122.CrossRef
21.
go back to reference Toft-Bertelsen, T.L., D. Barbuskaite, E.K. Heerfordt, S.D. Lolansen, S.N. Andreassen, N. Rostgaard, M.H. Olsen, N.H. Norager, T. Capion, M.F. Rath, et al. 2022. Lysophosphatidic acid as a CSF lipid in posthemorrhagic hydrocephalus that drives CSF accumulation via TRPV4-induced hyperactivation of NKCC1. Fluids Barriers CNS 19: 69.PubMedPubMedCentralCrossRef Toft-Bertelsen, T.L., D. Barbuskaite, E.K. Heerfordt, S.D. Lolansen, S.N. Andreassen, N. Rostgaard, M.H. Olsen, N.H. Norager, T. Capion, M.F. Rath, et al. 2022. Lysophosphatidic acid as a CSF lipid in posthemorrhagic hydrocephalus that drives CSF accumulation via TRPV4-induced hyperactivation of NKCC1. Fluids Barriers CNS 19: 69.PubMedPubMedCentralCrossRef
22.
go back to reference Liu, X., J. Liu, S. Zhao, H. Zhang, W. Cai, M. Cai, X. Ji, R.K. Leak, Y. Gao, J. Chen, and X. Hu. 2016. Interleukin-4 is essential for microglia/macrophage M2 polarization and long-term recovery after cerebral ischemia. Stroke 47: 498–504.PubMedPubMedCentralCrossRef Liu, X., J. Liu, S. Zhao, H. Zhang, W. Cai, M. Cai, X. Ji, R.K. Leak, Y. Gao, J. Chen, and X. Hu. 2016. Interleukin-4 is essential for microglia/macrophage M2 polarization and long-term recovery after cerebral ischemia. Stroke 47: 498–504.PubMedPubMedCentralCrossRef
23.
go back to reference Wang, J., Y. Cai, J. Sun, H. Feng, X. Zhu, Q. Chen, F. Gao, Q. Ni, L. Mao, M. Yang, and B. Sun. 2023. Administration of intramuscular AAV-BDNF and intranasal AAV-TrkB promotes neurological recovery via enhancing corticospinal synaptic connections in stroke rats. Experimental Neurology 359: 114236.PubMedCrossRef Wang, J., Y. Cai, J. Sun, H. Feng, X. Zhu, Q. Chen, F. Gao, Q. Ni, L. Mao, M. Yang, and B. Sun. 2023. Administration of intramuscular AAV-BDNF and intranasal AAV-TrkB promotes neurological recovery via enhancing corticospinal synaptic connections in stroke rats. Experimental Neurology 359: 114236.PubMedCrossRef
24.
go back to reference Hu, Q., Q. Du, W. Yu, and X. Dong. 2022. 2-Methoxyestradiol alleviates neuroinflammation and brain edema in early brain injury after subarachnoid hemorrhage in rats. Frontiers in Cellular Neuroscience 16: 869546.PubMedPubMedCentralCrossRef Hu, Q., Q. Du, W. Yu, and X. Dong. 2022. 2-Methoxyestradiol alleviates neuroinflammation and brain edema in early brain injury after subarachnoid hemorrhage in rats. Frontiers in Cellular Neuroscience 16: 869546.PubMedPubMedCentralCrossRef
25.
go back to reference Sun, X.G., X.H. Chu, I.S. Godje Godje, S.Y. Liu, H.Y. Hu, Y.B. Zhang, L.J. Zhu, H. Wang, C. Sui, J. Huang, and Y.J. Shen. 2022. Aerobic glycolysis induced by mTOR/HIF-1α promotes early brain injury after subarachnoid hemorrhage via activating M1 microglia. Translational Stroke Research. Sun, X.G., X.H. Chu, I.S. Godje Godje, S.Y. Liu, H.Y. Hu, Y.B. Zhang, L.J. Zhu, H. Wang, C. Sui, J. Huang, and Y.J. Shen. 2022. Aerobic glycolysis induced by mTOR/HIF-1α promotes early brain injury after subarachnoid hemorrhage via activating M1 microglia. Translational Stroke Research.
26.
go back to reference Latta, C.H., T.L. Sudduth, E.M. Weekman, H.M. Brothers, E.L. Abner, G.J. Popa, M.D. Mendenhall, F. Gonzalez-Oregon, K. Braun, and D.M. Wilcock. 2015. Determining the role of IL-4 induced neuroinflammation in microglial activity and amyloid-β using BV2 microglial cells and APP/PS1 transgenic mice. Journal of Neuroinflammation 12: 41.PubMedPubMedCentralCrossRef Latta, C.H., T.L. Sudduth, E.M. Weekman, H.M. Brothers, E.L. Abner, G.J. Popa, M.D. Mendenhall, F. Gonzalez-Oregon, K. Braun, and D.M. Wilcock. 2015. Determining the role of IL-4 induced neuroinflammation in microglial activity and amyloid-β using BV2 microglial cells and APP/PS1 transgenic mice. Journal of Neuroinflammation 12: 41.PubMedPubMedCentralCrossRef
27.
go back to reference Nakamura, R., M. Konishi, Y. Higashi, M. Saito, and T. Akizawa. 2023. Five-mer peptides prevent short-term spatial memory deficits in Aβ25-35-induced Alzheimer’s model mouse by suppressing Aβ25-35 aggregation and resolving its aggregate form. Alzheimer’s Research & Therapy 15: 83.CrossRef Nakamura, R., M. Konishi, Y. Higashi, M. Saito, and T. Akizawa. 2023. Five-mer peptides prevent short-term spatial memory deficits in Aβ25-35-induced Alzheimer’s model mouse by suppressing Aβ25-35 aggregation and resolving its aggregate form. Alzheimer’s Research & Therapy 15: 83.CrossRef
28.
go back to reference Cui, W., C. Sun, Y. Ma, S. Wang, X. Wang, and Y. Zhang. 2020. Inhibition of TLR4 induces M2 microglial polarization and provides neuroprotection via the NLRP3 inflammasome in Alzheimer’s disease. Frontiers in Neuroscience 14: 444.PubMedPubMedCentralCrossRef Cui, W., C. Sun, Y. Ma, S. Wang, X. Wang, and Y. Zhang. 2020. Inhibition of TLR4 induces M2 microglial polarization and provides neuroprotection via the NLRP3 inflammasome in Alzheimer’s disease. Frontiers in Neuroscience 14: 444.PubMedPubMedCentralCrossRef
29.
go back to reference Ma, Z., D. Liu, W. Li, S. Di, Z. Zhang, J. Zhang, L. Xu, K. Guo, Y. Zhu, J. Han, et al. 2019. STYK1 promotes tumor growth and metastasis by reducing SPINT2/HAI-2 expression in non-small cell lung cancer. Cell Death & Disease 10: 435.CrossRef Ma, Z., D. Liu, W. Li, S. Di, Z. Zhang, J. Zhang, L. Xu, K. Guo, Y. Zhu, J. Han, et al. 2019. STYK1 promotes tumor growth and metastasis by reducing SPINT2/HAI-2 expression in non-small cell lung cancer. Cell Death & Disease 10: 435.CrossRef
30.
go back to reference Bernstein, Z.J., A. Shenoy, A. Chen, N.M. Heller, and J.B. Spangler. 2023. Engineering the IL-4/IL-13 axis for targeted immune modulation. Immunological Reviews. Bernstein, Z.J., A. Shenoy, A. Chen, N.M. Heller, and J.B. Spangler. 2023. Engineering the IL-4/IL-13 axis for targeted immune modulation. Immunological Reviews.
31.
go back to reference Czimmerer, Z., B. Daniel, A. Horvath, D. Rückerl, G. Nagy, M. Kiss, M. Peloquin, M.M. Budai, I. Cuaranta-Monroy, Z. Simandi, et al. 2018. The transcription factor STAT6 mediates direct repression of inflammatory enhancers and limits activation of alternatively polarized macrophages. Immunity 48: 75-90.e76.PubMedPubMedCentralCrossRef Czimmerer, Z., B. Daniel, A. Horvath, D. Rückerl, G. Nagy, M. Kiss, M. Peloquin, M.M. Budai, I. Cuaranta-Monroy, Z. Simandi, et al. 2018. The transcription factor STAT6 mediates direct repression of inflammatory enhancers and limits activation of alternatively polarized macrophages. Immunity 48: 75-90.e76.PubMedPubMedCentralCrossRef
32.
go back to reference Kawahara, K., M. Suenobu, A. Yoshida, K. Koga, A. Hyodo, H. Ohtsuka, A. Kuniyasu, N. Tamamaki, Y. Sugimoto, and H. Nakayama. 2012. Intracerebral microinjection of interleukin-4/interleukin-13 reduces β-amyloid accumulation in the ipsilateral side and improves cognitive deficits in young amyloid precursor protein 23 mice. Neuroscience 207: 243–260.PubMedCrossRef Kawahara, K., M. Suenobu, A. Yoshida, K. Koga, A. Hyodo, H. Ohtsuka, A. Kuniyasu, N. Tamamaki, Y. Sugimoto, and H. Nakayama. 2012. Intracerebral microinjection of interleukin-4/interleukin-13 reduces β-amyloid accumulation in the ipsilateral side and improves cognitive deficits in young amyloid precursor protein 23 mice. Neuroscience 207: 243–260.PubMedCrossRef
33.
go back to reference Liu, X., N. Jiang, and W. Zhou. 2023. Various energetic metabolism of microglia in response to different stimulations. Molecules 28. Liu, X., N. Jiang, and W. Zhou. 2023. Various energetic metabolism of microglia in response to different stimulations. Molecules 28.
34.
go back to reference Xu, J., Z. Chen, F. Yu, H. Liu, C. Ma, D. Xie, X. Hu, R.K. Leak, S.H.Y. Chou, R.A. Stetler, et al. 2020. IL-4/STAT6 signaling facilitates innate hematoma resolution and neurological recovery after hemorrhagic stroke in mice. Proceedings of the National Academy of Sciences U S A 117: 32679–32690.CrossRef Xu, J., Z. Chen, F. Yu, H. Liu, C. Ma, D. Xie, X. Hu, R.K. Leak, S.H.Y. Chou, R.A. Stetler, et al. 2020. IL-4/STAT6 signaling facilitates innate hematoma resolution and neurological recovery after hemorrhagic stroke in mice. Proceedings of the National Academy of Sciences U S A 117: 32679–32690.CrossRef
35.
go back to reference Jiang, Y., D.W. Liu, X.Y. Han, Y.N. Dong, J. Gao, B. Du, L. Meng, and J.G. Shi. 2012. Neuroprotective effects of anti-tumor necrosis factor-alpha antibody on apoptosis following subarachnoid hemorrhage in a rat model. Journal of Clinical Neuroscience 19: 866–872.PubMedCrossRef Jiang, Y., D.W. Liu, X.Y. Han, Y.N. Dong, J. Gao, B. Du, L. Meng, and J.G. Shi. 2012. Neuroprotective effects of anti-tumor necrosis factor-alpha antibody on apoptosis following subarachnoid hemorrhage in a rat model. Journal of Clinical Neuroscience 19: 866–872.PubMedCrossRef
36.
go back to reference Ma, L., Y. Jiang, Y. Dong, J. Gao, B. Du, and D. Liu. 2018. Anti-TNF-alpha antibody attenuates subarachnoid hemorrhage-induced apoptosis in the hypothalamus by inhibiting the activation of Erk. Neuropsychiatric Disease and Treatment 14: 525–536.PubMedPubMedCentralCrossRef Ma, L., Y. Jiang, Y. Dong, J. Gao, B. Du, and D. Liu. 2018. Anti-TNF-alpha antibody attenuates subarachnoid hemorrhage-induced apoptosis in the hypothalamus by inhibiting the activation of Erk. Neuropsychiatric Disease and Treatment 14: 525–536.PubMedPubMedCentralCrossRef
37.
go back to reference Fragata, I., A. Bustamante, A. Penalba, P. Ferreira, A.P. Nunes, P. Canhão, and J. Montaner. 2020. TNF-R1 correlates with cerebral perfusion and acute ischemia following subarachnoid hemorrhage. Neurocritical Care 33: 679–687.PubMedCrossRef Fragata, I., A. Bustamante, A. Penalba, P. Ferreira, A.P. Nunes, P. Canhão, and J. Montaner. 2020. TNF-R1 correlates with cerebral perfusion and acute ischemia following subarachnoid hemorrhage. Neurocritical Care 33: 679–687.PubMedCrossRef
38.
go back to reference Wang, X., D. Wen, C. You, and L. Ma. 2022. Identification of the key immune-related genes in aneurysmal subarachnoid hemorrhage. Frontiers in Molecular Neuroscience 15: 931753.PubMedPubMedCentralCrossRef Wang, X., D. Wen, C. You, and L. Ma. 2022. Identification of the key immune-related genes in aneurysmal subarachnoid hemorrhage. Frontiers in Molecular Neuroscience 15: 931753.PubMedPubMedCentralCrossRef
39.
go back to reference Herz, J., P. Sabellek, T.E. Lane, M. Gunzer, D.M. Hermann, and T.R. Doeppner. 2015. Role of neutrophils in exacerbation of brain injury after focal cerebral ischemia in hyperlipidemic mice. Stroke 46: 2916–2925.PubMedPubMedCentralCrossRef Herz, J., P. Sabellek, T.E. Lane, M. Gunzer, D.M. Hermann, and T.R. Doeppner. 2015. Role of neutrophils in exacerbation of brain injury after focal cerebral ischemia in hyperlipidemic mice. Stroke 46: 2916–2925.PubMedPubMedCentralCrossRef
40.
go back to reference Brait, V.H., J. Rivera, B.R. Broughton, S. Lee, G.R. Drummond, and C.G. Sobey. 2011. Chemokine-related gene expression in the brain following ischemic stroke: No role for CXCR2 in outcome. Brain Research 1372: 169–179.PubMedCrossRef Brait, V.H., J. Rivera, B.R. Broughton, S. Lee, G.R. Drummond, and C.G. Sobey. 2011. Chemokine-related gene expression in the brain following ischemic stroke: No role for CXCR2 in outcome. Brain Research 1372: 169–179.PubMedCrossRef
41.
go back to reference Xie, W., T. Huang, Y. Guo, Y. Zhang, W. Chen, Y. Li, C. Chen, and P. Li. 2023. Neutrophil-derived cathelicidin promotes cerebral angiogenesis after ischemic stroke. Journal of Cerebral Blood Flow & Metabolism 271678x231175190. Xie, W., T. Huang, Y. Guo, Y. Zhang, W. Chen, Y. Li, C. Chen, and P. Li. 2023. Neutrophil-derived cathelicidin promotes cerebral angiogenesis after ischemic stroke. Journal of Cerebral Blood Flow & Metabolism 271678x231175190.
42.
go back to reference Vallès, A., L. Grijpink-Ongering, F.M. de Bree, T. Tuinstra, and E. Ronken. 2006. Differential regulation of the CXCR2 chemokine network in rat brain trauma: Implications for neuroimmune interactions and neuronal survival. Neurobiology of Diseases 22: 312–322.CrossRef Vallès, A., L. Grijpink-Ongering, F.M. de Bree, T. Tuinstra, and E. Ronken. 2006. Differential regulation of the CXCR2 chemokine network in rat brain trauma: Implications for neuroimmune interactions and neuronal survival. Neurobiology of Diseases 22: 312–322.CrossRef
43.
go back to reference Bonecchi, R., F. Facchetti, S. Dusi, W. Luini, D. Lissandrini, M. Simmelink, M. Locati, S. Bernasconi, P. Allavena, E. Brandt, et al. 2000. Induction of functional IL-8 receptors by IL-4 and IL-13 in human monocytes. The Journal of Immunology 164: 3862–3869.PubMedCrossRef Bonecchi, R., F. Facchetti, S. Dusi, W. Luini, D. Lissandrini, M. Simmelink, M. Locati, S. Bernasconi, P. Allavena, E. Brandt, et al. 2000. Induction of functional IL-8 receptors by IL-4 and IL-13 in human monocytes. The Journal of Immunology 164: 3862–3869.PubMedCrossRef
44.
go back to reference Pattanaik, K.P., G. Ganguli, S.K. Naik, and A. Sonawane. 2021. Mycobacterium tuberculosis EsxL induces TNF-α secretion through activation of TLR2 dependent MAPK and NF-κB pathways. Molecular Immunology 130: 133–141.PubMedCrossRef Pattanaik, K.P., G. Ganguli, S.K. Naik, and A. Sonawane. 2021. Mycobacterium tuberculosis EsxL induces TNF-α secretion through activation of TLR2 dependent MAPK and NF-κB pathways. Molecular Immunology 130: 133–141.PubMedCrossRef
45.
go back to reference Gea-Sorlí, S., and D. Closa. 2009. In vitro, but not in vivo, reversibility of peritoneal macrophages activation during experimental acute pancreatitis. BMC Immunology 10: 42.PubMedPubMedCentralCrossRef Gea-Sorlí, S., and D. Closa. 2009. In vitro, but not in vivo, reversibility of peritoneal macrophages activation during experimental acute pancreatitis. BMC Immunology 10: 42.PubMedPubMedCentralCrossRef
46.
go back to reference Prendiville, J., N. Thatcher, M. Lind, R. McIntosh, A. Ghosh, P. Stern, and D. Crowther. 1993. Recombinant human interleukin-4 (rhu IL-4) administered by the intravenous and subcutaneous routes in patients with advanced cancer–a phase I toxicity study and pharmacokinetic analysis. European Journal of Cancer 29a: 1700–1707.PubMedCrossRef Prendiville, J., N. Thatcher, M. Lind, R. McIntosh, A. Ghosh, P. Stern, and D. Crowther. 1993. Recombinant human interleukin-4 (rhu IL-4) administered by the intravenous and subcutaneous routes in patients with advanced cancer–a phase I toxicity study and pharmacokinetic analysis. European Journal of Cancer 29a: 1700–1707.PubMedCrossRef
47.
go back to reference Enam, S.F., S.R. Kader, N. Bodkin, J.G. Lyon, M. Calhoun, C. Azrak, P.M. Tiwari, D. Vanover, H. Wang, P.J. Santangelo, and R.V. Bellamkonda. 2020. Evaluation of M2-like macrophage enrichment after diffuse traumatic brain injury through transient interleukin-4 expression from engineered mesenchymal stromal cells. Journal of Neuroinflammation 17: 197.PubMedPubMedCentralCrossRef Enam, S.F., S.R. Kader, N. Bodkin, J.G. Lyon, M. Calhoun, C. Azrak, P.M. Tiwari, D. Vanover, H. Wang, P.J. Santangelo, and R.V. Bellamkonda. 2020. Evaluation of M2-like macrophage enrichment after diffuse traumatic brain injury through transient interleukin-4 expression from engineered mesenchymal stromal cells. Journal of Neuroinflammation 17: 197.PubMedPubMedCentralCrossRef
48.
go back to reference Chen, X., J. Zhang, Y. Song, P. Yang, Y. Yang, Z. Huang, and K. Wang. 2020. Deficiency of anti-inflammatory cytokine IL-4 leads to neural hyperexcitability and aggravates cerebral ischemia-reperfusion injury. Acta Pharmaceutica Sinica B 10: 1634–1645.PubMedPubMedCentralCrossRef Chen, X., J. Zhang, Y. Song, P. Yang, Y. Yang, Z. Huang, and K. Wang. 2020. Deficiency of anti-inflammatory cytokine IL-4 leads to neural hyperexcitability and aggravates cerebral ischemia-reperfusion injury. Acta Pharmaceutica Sinica B 10: 1634–1645.PubMedPubMedCentralCrossRef
49.
go back to reference Brombacher, T.M., J.K. Nono, K.S. De Gouveia, N. Makena, M. Darby, J. Womersley, O. Tamgue, and F. Brombacher. 2017. IL-13-mediated regulation of learning and memory. The Journal of Immunology 198: 2681–2688.PubMedCrossRef Brombacher, T.M., J.K. Nono, K.S. De Gouveia, N. Makena, M. Darby, J. Womersley, O. Tamgue, and F. Brombacher. 2017. IL-13-mediated regulation of learning and memory. The Journal of Immunology 198: 2681–2688.PubMedCrossRef
Metadata
Title
Interleukin-4 Modulates Neuroinflammation by Inducing Phenotypic Transformation of Microglia Following Subarachnoid Hemorrhage
Authors
Jing Wang
Lili Wang
Qingjian Wu
Yichen Cai
Chengfu Cui
Ming Yang
Baoliang Sun
Leilei Mao
Yuan Wang
Publication date
29-10-2023
Publisher
Springer US
Published in
Inflammation / Issue 1/2024
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-023-01917-z

Other articles of this Issue 1/2024

Inflammation 1/2024 Go to the issue
Live Webinar | 27-06-2024 | 18:00 (CEST)

Keynote webinar | Spotlight on medication adherence

Live: Thursday 27th June 2024, 18:00-19:30 (CEST)

WHO estimates that half of all patients worldwide are non-adherent to their prescribed medication. The consequences of poor adherence can be catastrophic, on both the individual and population level.

Join our expert panel to discover why you need to understand the drivers of non-adherence in your patients, and how you can optimize medication adherence in your clinics to drastically improve patient outcomes.

Prof. Kevin Dolgin
Prof. Florian Limbourg
Prof. Anoop Chauhan
Developed by: Springer Medicine
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discusses last year's major advances in heart failure and cardiomyopathies.