Pannexin-1 Channels as Mediators of Neuroinflammation
Abstract
:1. Background
2. The Innate Immune System of the Brain and ATP Signaling
3. Neuroinflammation and Extracellular ATP
4. Pannexin-1 (Panx1) Channels
5. Pannexin-1 Channels in Neuroinflammation
5.1. Spinal Cord Injury, Neuropathic Pain, and Orofacial Pain
5.2. Brain Ischemia
5.3. Traumatic Brain Injury
6. Conclusions and Future Directions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Cova, I.; Markova, A.; Campini, I.; Grande, G.; Mariani, C.; Pomati, S. Worldwide trends in the prevalence of dementia. J. Neurol. Sci. 2017, 379, 259–260. [Google Scholar] [CrossRef] [PubMed]
- Virani, S.S.; Alonso, A.; Benjamin, E.J.; Bittencourt, M.S.; Callaway, C.W.; Carson, A.P.; Chamberlain, A.M.; Chang, A.R.; Cheng, S.; Delling, F.N.; et al. Heart disease and stroke statistics—2020 update: A report from the American Heart Association. Circulation 2020, 141, E139–E596. [Google Scholar] [CrossRef] [PubMed]
- Taylor, C.A.; Bell, J.M.; Breiding, M.J.; Xu, L. Traumatic brain injury-related emergency department visits, hospitalizations, and deaths—United States, 2007 and 2013. MMWR Surveill. Summ. 2017, 66, 1–16. [Google Scholar] [CrossRef] [PubMed]
- Kacirova, M.; Zmeskalova, A.; Korinkova, L.; Zelezna, B.; Kunes, J.; Maletinska, L. Inflammation: Major denominator of obesity, Type 2 diabetes and Alzheimer’s disease-like pathology? Clin. Sci. 2020, 134, 547–570. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hur, J.Y.; Frost, G.R.; Wu, X.; Crump, C.; Pan, S.J.; Wong, E.; Barros, M.; Li, T.; Nie, P.; Zhai, Y.; et al. The innate immunity protein IFITM3 modulates gamma-secretase in Alzheimer’s disease. Nature 2020, 586, 735–740. [Google Scholar] [CrossRef] [PubMed]
- Iannucci, J.; Renehan, W.; Grammas, P. Thrombin, a Mediator of Coagulation, Inflammation, and Neurotoxicity at the Neurovascular Interface: Implications for Alzheimer’s Disease. Front. Neurosci. 2020, 14, 762. [Google Scholar] [CrossRef]
- Ziebell, J.M.; Rowe, R.K.; Muccigrosso, M.M.; Reddaway, J.T.; Adelson, P.D.; Godbout, J.P.; Lifshitz, J. Aging with a traumatic brain injury: Could behavioral morbidities and endocrine symptoms be influenced by microglial priming? Brain Behav. Immun. 2017, 59, 1–7. [Google Scholar] [CrossRef] [PubMed]
- Anrather, J.; Iadecola, C. Inflammation and Stroke: An Overview. Neurotherapeutics 2016, 13, 661–670. [Google Scholar] [CrossRef]
- Swanson, K.V.; Deng, M.; Ting, J.P. The NLRP3 inflammasome: Molecular activation and regulation to therapeutics. Nat. Rev. Immunol. 2019, 19, 477–489. [Google Scholar] [CrossRef]
- Shabab, T.; Khanabdali, R.; Moghadamtousi, S.Z.; Kadir, H.A.; Mohan, G. Neuroinflammation pathways: A general review. Int. J. Neurosci. 2017, 127, 624–633. [Google Scholar] [CrossRef]
- Bruzzone, R.; Hormuzdi, S.G.; Barbe, M.T.; Herb, A.; Monyer, H. Pannexins, a family of gap junction proteins expressed in brain. Proc. Natl. Acad. Sci. USA 2003, 100, 13644–13649. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Dvoriantchikova, G.; Ivanov, D.; Panchin, Y.; Shestopalov, V.I. Expression of pannexin family of proteins in the retina. FEBS Lett. 2006, 580, 2178–2182. [Google Scholar] [CrossRef] [Green Version]
- Dvoriantchikova, G.; Ivanov, D.; Pestova, A.; Shestopalov, V. Molecular characterization of pannexins in the lens. Mol. Vis. 2006, 12, 1417–1426. [Google Scholar]
- Ray, A.; Zoidl, G.; Wahle, P.; Dermietzel, R. Pannexin expression in the cerebellum. Cerebellum 2006, 5, 189–192. [Google Scholar] [CrossRef] [PubMed]
- Ray, A.; Zoidl, G.; Weickert, S.; Wahle, P.; Dermietzel, R. Site-specific and developmental expression of pannexin1 in the mouse nervous system. Eur. J. Neurosci. 2005, 21, 3277–3290. [Google Scholar] [CrossRef] [PubMed]
- Sohl, G.; Maxeiner, S.; Willecke, K. Expression and functions of neuronal gap junctions. Nat. Rev. Neurosci. 2005, 6, 191–200. [Google Scholar] [CrossRef]
- Shestopalov, V.I.; Panchin, Y. Pannexins and gap junction protein diversity. Cell Mol. Life Sci. 2008, 65, 376–394. [Google Scholar] [CrossRef]
- Vogt, A.; Hormuzdi, S.G.; Monyer, H. Pannexin1 and Pannexin2 expression in the developing and mature rat brain. Brain Res. Mol. Brain Res. 2005, 141, 113–120. [Google Scholar] [CrossRef]
- Weickert, S.; Ray, A.; Zoidl, G.; Dermietzel, R. Expression of neural connexins and pannexin1 in the hippocampus and inferior olive: A quantitative approach. Brain Res. Mol. Brain Res. 2005, 133, 102–109. [Google Scholar] [CrossRef]
- Zappala, A.; Cicero, D.; Serapide, M.F.; Paz, C.; Catania, M.V.; Falchi, M.; Parenti, R.; Panto, M.R.; La Delia, F.; Cicirata, F. Expression of pannexin1 in the CNS of adult mouse: Cellular localization and effect of 4-aminopyridine-induced seizures. Neuroscience 2006, 141, 167–178. [Google Scholar] [CrossRef]
- Zoidl, G.; Petrasch-Parwez, E.; Ray, A.; Meier, C.; Bunse, S.; Habbes, H.W.; Dahl, G.; Dermietzel, R. Localization of the pannexin1 protein at postsynaptic sites in the cerebral cortex and hippocampus. Neuroscience 2007, 146, 9–16. [Google Scholar] [CrossRef] [PubMed]
- Penuela, S.; Gehi, R.; Laird, D.W. The biochemistry and function of pannexin channels. Biochim. Biophys. Acta 2013, 1828, 15–22. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Saez, P.J.; Vargas, P.; Shoji, K.F.; Harcha, P.A.; Lennon-Dumenil, A.M.; Saez, J.C. ATP promotes the fast migration of dendritic cells through the activity of pannexin 1 channels and P2X7 receptors. Sci. Signal. 2017, 10, eaah7107. [Google Scholar] [CrossRef] [Green Version]
- Seo, J.H.; Dalal, M.S.; Calderon, F.; Contreras, J.E. Myeloid Pannexin-1 mediates acute leukocyte infiltration and leads to worse outcomes after brain trauma. J. Neuroinflamm. 2020, 17, 245. [Google Scholar] [CrossRef] [PubMed]
- Di Virgilio, F.; Dal Ben, D.; Sarti, A.C.; Giuliani, A.L.; Falzoni, S. The P2X7 Receptor in Infection and Inflammation. Immunity 2017, 47, 15–31. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Chekeni, F.B.; Elliott, M.R.; Sandilos, J.K.; Walk, S.F.; Kinchen, J.M.; Lazarowski, E.R.; Armstrong, A.J.; Penuela, S.; Laird, D.W.; Salvesen, G.S.; et al. Pannexin 1 channels mediate ‘find-me’ signal release and membrane permeability during apoptosis. Nature 2010, 467, 863–867. [Google Scholar] [CrossRef] [Green Version]
- Bravo, D.; Ibarra, P.; Retamal, J.; Pelissier, T.; Laurido, C.; Hernandez, A.; Constandil, L. Pannexin 1: A novel participant in neuropathic pain signaling in the rat spinal cord. Pain 2014, 155, 2108–2115. [Google Scholar] [CrossRef] [PubMed]
- Zhang, Y.; Laumet, G.; Chen, S.R.; Hittelman, W.N.; Pan, H.L. Pannexin-1 Up-regulation in the Dorsal Root Ganglion Contributes to Neuropathic Pain Development. J. Biol. Chem. 2015, 290, 14647–14655. [Google Scholar] [CrossRef] [Green Version]
- Kwon, H.S.; Koh, S.H. Neuroinflammation in neurodegenerative disorders: The roles of microglia and astrocytes. Transl. Neurodegener. 2020, 9, 42. [Google Scholar] [CrossRef]
- Subhramanyam, C.S.; Wang, C.; Hu, Q.; Dheen, S.T. Microglia-mediated neuroinflammation in neurodegenerative diseases. Semin. Cell Dev. Biol. 2019, 94, 112–120. [Google Scholar] [CrossRef]
- Fields, R.D.; Araque, A.; Johansen-Berg, H.; Lim, S.S.; Lynch, G.; Nave, K.A.; Nedergaard, M.; Perez, R.; Sejnowski, T.; Wake, H. Glial biology in learning and cognition. Neuroscientist 2014, 20, 426–431. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Tremblay, M.E.; Stevens, B.; Sierra, A.; Wake, H.; Bessis, A.; Nimmerjahn, A. The role of microglia in the healthy brain. J. Neurosci. 2011, 31, 16064–16069. [Google Scholar] [CrossRef] [PubMed]
- Ginhoux, F.; Garel, S. The mysterious origins of microglia. Nat. Neurosci. 2018, 21, 897–899. [Google Scholar] [CrossRef]
- Hickman, S.E.; Kingery, N.D.; Ohsumi, T.K.; Borowsky, M.L.; Wang, L.C.; Means, T.K.; El Khoury, J. The microglial sensome revealed by direct RNA sequencing. Nat. Neurosci. 2013, 16, 1896–1905. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Nayak, D.; Zinselmeyer, B.H.; Corps, K.N.; McGavern, D.B. In vivo dynamics of innate immune sentinels in the CNS. Intravital 2012, 1, 95–106. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Stephan, A.H.; Barres, B.A.; Stevens, B. The complement system: An unexpected role in synaptic pruning during development and disease. Annu. Rev. Neurosci. 2012, 35, 369–389. [Google Scholar] [CrossRef] [Green Version]
- Davalos, D.; Grutzendler, J.; Yang, G.; Kim, J.V.; Zuo, Y.; Jung, S.; Littman, D.R.; Dustin, M.L.; Gan, W.B. ATP mediates rapid microglial response to local brain injury in vivo. Nat. Neurosci. 2005, 8, 752–758. [Google Scholar] [CrossRef]
- Lou, N.; Takano, T.; Pei, Y.; Xavier, A.L.; Goldman, S.A.; Nedergaard, M. Purinergic receptor P2RY12-dependent microglial closure of the injured blood-brain barrier. Proc. Natl. Acad. Sci. USA 2016, 113, 1074–1079. [Google Scholar] [CrossRef] [Green Version]
- Roth, T.L.; Nayak, D.; Atanasijevic, T.; Koretsky, A.P.; Latour, L.L.; McGavern, D.B. Transcranial amelioration of inflammation and cell death after brain injury. Nature 2014, 505, 223–228. [Google Scholar] [CrossRef] [Green Version]
- Donat, C.K.; Scott, G.; Gentleman, S.M.; Sastre, M. Microglial Activation in Traumatic Brain Injury. Front. Aging Neurosci. 2017, 9, 208. [Google Scholar] [CrossRef] [Green Version]
- Koizumi, S.; Shigemoto-Mogami, Y.; Nasu-Tada, K.; Shinozaki, Y.; Ohsawa, K.; Tsuda, M.; Joshi, B.V.; Jacobson, K.A.; Kohsaka, S.; Inoue, K. UDP acting at P2Y6 receptors is a mediator of microglial phagocytosis. Nature 2007, 446, 1091–1095. [Google Scholar] [CrossRef] [Green Version]
- Hernandez-Ontiveros, D.G.; Tajiri, N.; Acosta, S.; Giunta, B.; Tan, J.; Borlongan, C.V. Microglia activation as a biomarker for traumatic brain injury. Front. Neurol. 2013, 4, 30. [Google Scholar] [CrossRef] [Green Version]
- Colton, C.A. Heterogeneity of microglial activation in the innate immune response in the brain. J. Neuroimmune Pharmacol. 2009, 4, 399–418. [Google Scholar] [CrossRef] [Green Version]
- Ambrosini, E.; Aloisi, F. Chemokines and glial cells: A complex network in the central nervous system. Neurochem. Res. 2004, 29, 1017–1038. [Google Scholar] [CrossRef]
- Elkabes, S.; DiCicco-Bloom, E.M.; Black, I.B. Brain microglia/macrophages express neurotrophins that selectively regulate microglial proliferation and function. J. Neurosci. 1996, 16, 2508–2521. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hicks, R.R.; Numan, S.; Dhillon, H.S.; Prasad, M.R.; Seroogy, K.B. Alterations in BDNF and NT-3 mRNAs in rat hippocampus after experimental brain trauma. Brain Res. Mol. Brain Res. 1997, 48, 401–406. [Google Scholar] [CrossRef]
- Mitrasinovic, O.M.; Perez, G.V.; Zhao, F.; Lee, Y.L.; Poon, C.; Murphy, G.M., Jr. Overexpression of macrophage colony-stimulating factor receptor on microglial cells induces an inflammatory response. J. Biol. Chem. 2001, 276, 30142–30149. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Linnerbauer, M.; Wheeler, M.A.; Quintana, F.J. Astrocyte Crosstalk in CNS Inflammation. Neuron 2020, 108, 608–622. [Google Scholar] [CrossRef]
- Ravi, K.; Paidas, M.J.; Saad, A.; Jayakumar, A.R. Astrocytes in rare neurological conditions: Morphological and functional considerations. J. Comp. Neurol. 2021. [Google Scholar] [CrossRef]
- Han, R.T.; Kim, R.D.; Molofsky, A.V.; Liddelow, S.A. Astrocyte-immune cell interactions in physiology and pathology. Immunity 2021, 54, 211–224. [Google Scholar] [CrossRef]
- Lagos-Cabre, R.; Burgos-Bravo, F.; Avalos, A.M.; Leyton, L. Connexins in Astrocyte Migration. Front. Pharmacol. 2019, 10, 1546. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Liddelow, S.A.; Guttenplan, K.A.; Clarke, L.E.; Bennett, F.C.; Bohlen, C.J.; Schirmer, L.; Bennett, M.L.; Munch, A.E.; Chung, W.S.; Peterson, T.C.; et al. Neurotoxic reactive astrocytes are induced by activated microglia. Nature 2017, 541, 481–487. [Google Scholar] [CrossRef] [PubMed]
- Kim, R.Y.; Hoffman, A.S.; Itoh, N.; Ao, Y.; Spence, R.; Sofroniew, M.V.; Voskuhl, R.R. Astrocyte CCL2 sustains immune cell infiltration in chronic experimental autoimmune encephalomyelitis. J. Neuroimmunol. 2014, 274, 53–61. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Guttenplan, K.A.; Weigel, M.K.; Adler, D.I.; Couthouis, J.; Liddelow, S.A.; Gitler, A.D.; Barres, B.A. Knockout of reactive astrocyte activating factors slows disease progression in an ALS mouse model. Nat. Commun. 2020, 11, 3753. [Google Scholar] [CrossRef] [PubMed]
- Rivera, A.; Vanzulli, I.; Butt, A.M. A Central Role for ATP Signalling in Glial Interactions in the CNS. Curr. Drug Targets 2016, 17, 1829–1833. [Google Scholar] [CrossRef] [PubMed]
- Parpura, V.; Fisher, E.S.; Lechleiter, J.D.; Schousboe, A.; Waagepetersen, H.S.; Brunet, S.; Baltan, S.; Verkhratsky, A. Glutamate and ATP at the Interface Between Signaling and Metabolism in Astroglia: Examples from Pathology. Neurochem. Res. 2017, 42, 19–34. [Google Scholar] [CrossRef] [PubMed]
- Habib, N.; McCabe, C.; Medina, S.; Varshavsky, M.; Kitsberg, D.; Dvir-Szternfeld, R.; Green, G.; Dionne, D.; Nguyen, L.; Marshall, J.L.; et al. Disease-associated astrocytes in Alzheimer’s disease and aging. Nat. Neurosci. 2020, 23, 701–706. [Google Scholar] [CrossRef]
- Boulay, A.C.; Gilbert, A.; Oliveira Moreira, V.; Blugeon, C.; Perrin, S.; Pouch, J.; Le Crom, S.; Ducos, B.; Cohen-Salmon, M. Connexin 43 Controls the Astrocyte Immunoregulatory Phenotype. Brain Sci. 2018, 8, 50. [Google Scholar] [CrossRef] [Green Version]
- Suadicani, S.O.; Brosnan, C.F.; Scemes, E. P2X7 receptors mediate ATP release and amplification of astrocytic intercellular Ca2+ signaling. J. Neurosci. 2006, 26, 1378–1385. [Google Scholar] [CrossRef] [Green Version]
- Scemes, E.; Suadicani, S.O.; Dahl, G.; Spray, D.C. Connexin and pannexin mediated cell-cell communication. Neuron Glia Biol. 2007, 3, 199–208. [Google Scholar] [CrossRef] [Green Version]
- Jassam, Y.N.; Izzy, S.; Whalen, M.; McGavern, D.B.; El Khoury, J. Neuroimmunology of Traumatic Brain Injury: Time for a Paradigm Shift. Neuron 2017, 95, 1246–1265. [Google Scholar] [CrossRef] [Green Version]
- Gombault, A.; Baron, L.; Couillin, I. ATP release and purinergic signaling in NLRP3 inflammasome activation. Front. Immunol. 2012, 3, 414. [Google Scholar] [CrossRef] [Green Version]
- Corriden, R.; Insel, P.A. New insights regarding the regulation of chemotaxis by nucleotides, adenosine, and their receptors. Purinergic Signal. 2012, 8, 587–598. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- de Rivero Vaccari, J.P.; Dietrich, W.D.; Keane, R.W. Activation and regulation of cellular inflammasomes: Gaps in our knowledge for central nervous system injury. J. Cereb. Blood Flow Metab. 2014, 34, 369–375. [Google Scholar] [CrossRef] [PubMed]
- Liu, H.D.; Li, W.; Chen, Z.R.; Hu, Y.C.; Zhang, D.D.; Shen, W.; Zhou, M.L.; Zhu, L.; Hang, C.H. Expression of the NLRP3 inflammasome in cerebral cortex after traumatic brain injury in a rat model. Neurochem. Res. 2013, 38, 2072–2083. [Google Scholar] [CrossRef] [PubMed]
- de Rivero Vaccari, J.P.; Lotocki, G.; Alonso, O.F.; Bramlett, H.M.; Dietrich, W.D.; Keane, R.W. Therapeutic neutralization of the NLRP1 inflammasome reduces the innate immune response and improves histopathology after traumatic brain injury. J. Cereb. Blood Flow Metab. 2009, 29, 1251–1261. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Allan, S.M.; Tyrrell, P.J.; Rothwell, N.J. Interleukin-1 and neuronal injury. Nat. Rev. Immunol. 2005, 5, 629–640. [Google Scholar] [CrossRef] [PubMed]
- Helmy, A.; Guilfoyle, M.R.; Carpenter, K.L.; Pickard, J.D.; Menon, D.K.; Hutchinson, P.J. Recombinant human interleukin-1 receptor antagonist in severe traumatic brain injury: A phase II randomized control trial. J. Cereb. Blood Flow Metab. 2014, 34, 845–851. [Google Scholar] [CrossRef] [Green Version]
- Woodcock, T.; Morganti-Kossmann, M.C. The role of markers of inflammation in traumatic brain injury. Front. Neurol. 2013, 4, 18. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Melani, A.; Turchi, D.; Vannucchi, M.G.; Cipriani, S.; Gianfriddo, M.; Pedata, F. ATP extracellular concentrations are increased in the rat striatum during in vivo ischemia. Neurochem. Int. 2005, 47, 442–448. [Google Scholar] [CrossRef]
- Zheng, L.M.; Zychlinsky, A.; Liu, C.C.; Ojcius, D.M.; Young, J.D. Extracellular ATP as a trigger for apoptosis or programmed cell death. J. Cell Biol. 1991, 112, 279–288. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Man, S.M.; Karki, R.; Kanneganti, T.D. Molecular mechanisms and functions of pyroptosis, inflammatory caspases and inflammasomes in infectious diseases. Immunol. Rev. 2017, 277, 61–75. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Silinsky, E.M. On the association between transmitter secretion and the release of adenine nucleotides from mammalian motor nerve terminals. J. Physiol. 1975, 247, 145–162. [Google Scholar] [CrossRef]
- Zimmermann, H. Signalling via ATP in the nervous system. Trends Neurosci. 1994, 17, 420–426. [Google Scholar] [CrossRef]
- Jo, Y.H.; Schlichter, R. Synaptic corelease of ATP and GABA in cultured spinal neurons. Nat. Neurosci. 1999, 2, 241–245. [Google Scholar] [CrossRef]
- Hazama, A.; Fan, H.T.; Abdullaev, I.; Maeno, E.; Tanaka, S.; Ando-Akatsuka, Y.; Okada, Y. Swelling-activated, cystic fibrosis transmembrane conductance regulator-augmented ATP release and Cl- conductances in murine C127 cells. J. Physiol. 2000, 523 Pt 1, 1–11. [Google Scholar] [CrossRef]
- Osipchuk, Y.; Cahalan, M. Cell-to-cell spread of calcium signals mediated by ATP receptors in mast cells. Nature 1992, 359, 241–244. [Google Scholar] [CrossRef]
- Weilinger, N.L.; Lohman, A.W.; Rakai, B.D.; Ma, E.M.; Bialecki, J.; Maslieieva, V.; Rilea, T.; Bandet, M.V.; Ikuta, N.T.; Scott, L.; et al. Metabotropic NMDA receptor signaling couples Src family kinases to pannexin-1 during excitotoxicity. Nat. Neurosci. 2016, 19, 432–442. [Google Scholar] [CrossRef]
- Weilinger, N.L.; Tang, P.L.; Thompson, R.J. Anoxia-induced NMDA receptor activation opens pannexin channels via Src family kinases. J. Neurosci. 2012, 32, 12579–12588. [Google Scholar] [CrossRef]
- Scemes, E.; Veliskova, J. Exciting and not so exciting roles of pannexins. Neurosci. Lett. 2019, 695, 25–31. [Google Scholar] [CrossRef] [PubMed]
- Aquilino, M.S.; Whyte-Fagundes, P.; Lukewich, M.K.; Zhang, L.; Bardakjian, B.L.; Zoidl, G.R.; Carlen, P.L. Pannexin-1 Deficiency Decreases Epileptic Activity in Mice. Int. J. Mol. Sci. 2020, 21, 7510. [Google Scholar] [CrossRef]
- Chiu, Y.H.; Schappe, M.S.; Desai, B.N.; Bayliss, D.A. Revisiting multimodal activation and channel properties of Pannexin 1. J. Gen. Physiol. 2018, 150, 19–39. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lohman, A.W.; Leskov, I.L.; Butcher, J.T.; Johnstone, S.R.; Stokes, T.A.; Begandt, D.; DeLalio, L.J.; Best, A.K.; Penuela, S.; Leitinger, N.; et al. Pannexin 1 channels regulate leukocyte emigration through the venous endothelium during acute inflammation. Nat. Commun. 2015, 6, 7965. [Google Scholar] [CrossRef]
- Sanchez-Arias, J.C.; van der Slagt, E.; Vecchiarelli, H.A.; Candlish, R.C.; York, N.; Young, P.A.; Shevtsova, O.; Juma, A.; Tremblay, M.E.; Swayne, L.A. Purinergic signaling in nervous system health and disease: Focus on pannexin 1. Pharmacol. Ther. 2021, 107840. [Google Scholar] [CrossRef] [PubMed]
- Ishikawa, M.; Williams, G.L.; Ikeuchi, T.; Sakai, K.; Fukumoto, S.; Yamada, Y. Pannexin 3 and connexin 43 modulate skeletal development through their distinct functions and expression patterns. J. Cell Sci. 2016, 129, 1018–1030. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Zhang, P.; Ishikawa, M.; Doyle, A.; Nakamura, T.; He, B.; Yamada, Y. Pannexin 3 regulates skin development via Epiprofin. Sci. Rep. 2021, 11, 1779. [Google Scholar] [CrossRef] [PubMed]
- Scemes, E.; Spray, D.C.; Meda, P. Connexins, pannexins, innexins: Novel roles of “hemi-channels”. Pflug. Arch. 2009, 457, 1207–1226. [Google Scholar] [CrossRef] [Green Version]
- Pelegrin, P.; Surprenant, A. Pannexin-1 mediates large pore formation and interleukin-1beta release by the ATP-gated P2X7 receptor. EMBO J. 2006, 25, 5071–5082. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Illes, P. P2X7 Receptors Amplify CNS Damage in Neurodegenerative Diseases. Int. J. Mol. Sci. 2020, 21, 5996. [Google Scholar] [CrossRef]
- Freeman, T.J.; Sayedyahossein, S.; Johnston, D.; Sanchez-Pupo, R.E.; O’Donnell, B.; Huang, K.; Lakhani, Z.; Nouri-Nejad, D.; Barr, K.J.; Harland, L.; et al. Inhibition of Pannexin 1 Reduces the Tumorigenic Properties of Human Melanoma Cells. Cancers 2019, 11, 102. [Google Scholar] [CrossRef] [Green Version]
- Graham, S.V.; Jiang, J.X.; Mesnil, M. Connexins and Pannexins: Important Players in Tumorigenesis, Metastasis and Potential Therapeutics. Int. J. Mol. Sci. 2018, 19, 1645. [Google Scholar] [CrossRef] [Green Version]
- Thompson, R.J.; Zhou, N.; MacVicar, B.A. Ischemia opens neuronal gap junction hemichannels. Science 2006, 312, 924–927. [Google Scholar] [CrossRef] [PubMed]
- Taylor, K.A.; Wright, J.R.; Vial, C.; Evans, R.J.; Mahaut-Smith, M.P. Amplification of human platelet activation by surface pannexin-1 channels. J. Thromb. Haemost. 2014, 12, 987–998. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Dossi, E.; Blauwblomme, T.; Moulard, J.; Chever, O.; Vasile, F.; Guinard, E.; Le Bert, M.; Couillin, I.; Pallud, J.; Capelle, L.; et al. Pannexin-1 channels contribute to seizure generation in human epileptic brain tissue and in a mouse model of epilepsy. Sci. Transl. Med. 2018, 10, eaar3796. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Orellana, J.A.; Velasquez, S.; Williams, D.W.; Saez, J.C.; Berman, J.W.; Eugenin, E.A. Pannexin1 hemichannels are critical for HIV infection of human primary CD4+ T lymphocytes. J. Leukoc. Biol. 2013, 94, 399–407. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Scemes, E.; Velisek, L.; Veliskova, J. Astrocyte and Neuronal Pannexin1 Contribute Distinctly to Seizures. ASN Neuro 2019, 11. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Santiago, M.F.; Veliskova, J.; Patel, N.K.; Lutz, S.E.; Caille, D.; Charollais, A.; Meda, P.; Scemes, E. Targeting pannexin1 improves seizure outcome. PLoS ONE 2011, 6, e25178. [Google Scholar] [CrossRef] [Green Version]
- Allan, S.M.; Rothwell, N.J. Inflammation in central nervous system injury. Philos. Trans. R. Soc. Lond. B Biol. Sci. 2003, 358, 1669–1677. [Google Scholar] [CrossRef] [Green Version]
- Zhou, Y.; Song, W.M.; Andhey, P.S.; Swain, A.; Levy, T.; Miller, K.R.; Poliani, P.L.; Cominelli, M.; Grover, S.; Gilfillan, S.; et al. Human and mouse single-nucleus transcriptomics reveal TREM2-dependent and TREM2-independent cellular responses in Alzheimer’s disease. Nat. Med. 2020, 26, 131–142. [Google Scholar] [CrossRef]
- Ulland, T.K.; Song, W.M.; Huang, S.C.; Ulrich, J.D.; Sergushichev, A.; Beatty, W.L.; Loboda, A.A.; Zhou, Y.; Cairns, N.J.; Kambal, A.; et al. TREM2 Maintains Microglial Metabolic Fitness in Alzheimer’s Disease. Cell 2017, 170, 649–663. [Google Scholar] [CrossRef]
- Tiwari, S.; Atluri, V.; Kaushik, A.; Yndart, A.; Nair, M. Alzheimer’s disease: Pathogenesis, diagnostics, and therapeutics. Int. J. Nanomed. 2019, 14, 5541–5554. [Google Scholar] [CrossRef] [Green Version]
- Hong, S.; Beja-Glasser, V.F.; Nfonoyim, B.M.; Frouin, A.; Li, S.; Ramakrishnan, S.; Merry, K.M.; Shi, Q.; Rosenthal, A.; Barres, B.A.; et al. Complement and microglia mediate early synapse loss in Alzheimer mouse models. Science 2016, 352, 712–716. [Google Scholar] [CrossRef] [Green Version]
- Yun, S.P.; Kam, T.I.; Panicker, N.; Kim, S.; Oh, Y.; Park, J.S.; Kwon, S.H.; Park, Y.J.; Karuppagounder, S.S.; Park, H.; et al. Block of A1 astrocyte conversion by microglia is neuroprotective in models of Parkinson’s disease. Nat. Med. 2018, 24, 931–938. [Google Scholar] [CrossRef]
- Garre, J.M.; Retamal, M.A.; Cassina, P.; Barbeito, L.; Bukauskas, F.F.; Saez, J.C.; Bennett, M.V.; Abudara, V. FGF-1 induces ATP release from spinal astrocytes in culture and opens pannexin and connexin hemichannels. Proc. Natl. Acad. Sci. USA 2010, 107, 22659–22664. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Burma, N.E.; Bonin, R.P.; Leduc-Pessah, H.; Baimel, C.; Cairncross, Z.F.; Mousseau, M.; Shankara, J.V.; Stemkowski, P.L.; Baimoukhametova, D.; Bains, J.S.; et al. Blocking microglial pannexin-1 channels alleviates morphine withdrawal in rodents. Nat. Med. 2017, 23, 355–360. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Weaver, J.L.; Arandjelovic, S.; Brown, G.; Mendu, S.K.; Schappe, M.S.; Buckley, M.W.; Chiu, Y.H.; Shu, S.; Kim, J.K.; Chung, J.; et al. Hematopoietic pannexin 1 function is critical for neuropathic pain. Sci. Rep. 2017, 7, 42550. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Garre, J.M.; Yang, G.; Bukauskas, F.F.; Bennett, M.V. FGF-1 Triggers Pannexin-1 Hemichannel Opening in Spinal Astrocytes of Rodents and Promotes Inflammatory Responses in Acute Spinal Cord Slices. J. Neurosci. 2016, 36, 4785–4801. [Google Scholar] [CrossRef] [PubMed]
- Lutz, S.E.; Gonzalez-Fernandez, E.; Ventura, J.C.; Perez-Samartin, A.; Tarassishin, L.; Negoro, H.; Patel, N.K.; Suadicani, S.O.; Lee, S.C.; Matute, C.; et al. Contribution of pannexin1 to experimental autoimmune encephalomyelitis. PLoS ONE 2013, 8, e66657. [Google Scholar] [CrossRef]
- Mousseau, M.; Burma, N.E.; Lee, K.Y.; Leduc-Pessah, H.; Kwok, C.H.T.; Reid, A.R.; O’Brien, M.; Sagalajev, B.; Stratton, J.A.; Patrick, N.; et al. Microglial pannexin-1 channel activation is a spinal determinant of joint pain. Sci. Adv. 2018, 4, eaas9846. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hanstein, R.; Negoro, H.; Patel, N.K.; Charollais, A.; Meda, P.; Spray, D.C.; Suadicani, S.O.; Scemes, E. Promises and pitfalls of a Pannexin1 transgenic mouse line. Front. Pharmacol. 2013, 4, 61. [Google Scholar] [CrossRef] [Green Version]
- Chichorro, J.G.; Porreca, F.; Sessle, B. Mechanisms of craniofacial pain. Cephalalgia 2017, 37, 613–626. [Google Scholar] [CrossRef] [PubMed]
- Karatas, H.; Erdener, S.E.; Gursoy-Ozdemir, Y.; Lule, S.; Eren-Kocak, E.; Sen, Z.D.; Dalkara, T. Spreading depression triggers headache by activating neuronal Panx1 channels. Science 2013, 339, 1092–1095. [Google Scholar] [CrossRef] [PubMed]
- Hanstein, R.; Hanani, M.; Scemes, E.; Spray, D.C. Glial pannexin1 contributes to tactile hypersensitivity in a mouse model of orofacial pain. Sci. Rep. 2016, 6, 38266. [Google Scholar] [CrossRef] [Green Version]
- Charles, A.C.; Baca, S.M. Cortical spreading depression and migraine. Nat. Rev. Neurol. 2013, 9, 637–644. [Google Scholar] [CrossRef] [PubMed]
- Moskowitz, M.A. The neurobiology of vascular head pain. Ann. Neurol. 1984, 16, 157–168. [Google Scholar] [CrossRef]
- Moskowitz, M.A.; Nozaki, K.; Kraig, R.P. Neocortical spreading depression provokes the expression of c-fos protein-like immunoreactivity within trigeminal nucleus caudalis via trigeminovascular mechanisms. J. Neurosci. 1993, 13, 1167–1177. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Dalkara, T.; Zervas, N.T.; Moskowitz, M.A. From spreading depression to the trigeminovascular system. Neurol. Sci. 2006, 27 (Suppl. 2), S86–S90. [Google Scholar] [CrossRef]
- Zhang, X.; Levy, D.; Noseda, R.; Kainz, V.; Jakubowski, M.; Burstein, R. Activation of meningeal nociceptors by cortical spreading depression: Implications for migraine with aura. J. Neurosci. 2010, 30, 8807–8814. [Google Scholar] [CrossRef] [PubMed]
- Bolay, H.; Reuter, U.; Dunn, A.K.; Huang, Z.; Boas, D.A.; Moskowitz, M.A. Intrinsic brain activity triggers trigeminal meningeal afferents in a migraine model. Nat. Med. 2002, 8, 136–142. [Google Scholar] [CrossRef]
- Xing, C.; Arai, K.; Lo, E.H.; Hommel, M. Pathophysiologic cascades in ischemic stroke. Int. J. Stroke 2012, 7, 378–385. [Google Scholar] [CrossRef] [PubMed]
- Campbell, B.C.V.; De Silva, D.A.; Macleod, M.R.; Coutts, S.B.; Schwamm, L.H.; Davis, S.M.; Donnan, G.A. Ischaemic stroke. Nat. Rev. Dis. Primers 2019, 5, 70. [Google Scholar] [CrossRef]
- Jin, R.; Liu, L.; Zhang, S.; Nanda, A.; Li, G. Role of inflammation and its mediators in acute ischemic stroke. J. Cardiovasc. Transl. Res. 2013, 6, 834–851. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Santos, M.S.; Moreno, A.J.; Carvalho, A.P. Relationships between ATP depletion, membrane potential, and the release of neurotransmitters in rat nerve terminals. An in vitro study under conditions that mimic anoxia, hypoglycemia, and ischemia. Stroke 1996, 27, 941–950. [Google Scholar] [CrossRef] [PubMed]
- Ogura, Y.; Sutterwala, F.S.; Flavell, R.A. The inflammasome: First line of the immune response to cell stress. Cell 2006, 126, 659–662. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Savio, L.E.B.; de Andrade Mello, P.; da Silva, C.G.; Coutinho-Silva, R. The P2X7 Receptor in Inflammatory Diseases: Angel or Demon? Front. Pharmacol. 2018, 9, 52. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Bargiotas, P.; Krenz, A.; Hormuzdi, S.G.; Ridder, D.A.; Herb, A.; Barakat, W.; Penuela, S.; von Engelhardt, J.; Monyer, H.; Schwaninger, M. Pannexins in ischemia-induced neurodegeneration. Proc. Natl. Acad. Sci. USA 2011, 108, 20772–20777. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Wei, R.; Wang, J.; Xu, Y.; Yin, B.; He, F.; Du, Y.; Peng, G.; Luo, B. Probenecid protects against cerebral ischemia/reperfusion injury by inhibiting lysosomal and inflammatory damage in rats. Neuroscience 2015, 301, 168–177. [Google Scholar] [CrossRef]
- Cisneros-Mejorado, A.; Gottlieb, M.; Cavaliere, F.; Magnus, T.; Koch-Nolte, F.; Scemes, E.; Perez-Samartin, A.; Matute, C. Blockade of P2X7 receptors or pannexin-1 channels similarly attenuates postischemic damage. J. Cereb. Blood Flow Metab. 2015, 35, 843–850. [Google Scholar] [CrossRef] [Green Version]
- Freitas-Andrade, M.; Bechberger, J.F.; MacVicar, B.A.; Viau, V.; Naus, C.C. Pannexin1 knockout and blockade reduces ischemic stroke injury in female, but not in male mice. Oncotarget 2017, 8, 36973–36983. [Google Scholar] [CrossRef] [Green Version]
- Prins, M.; Greco, T.; Alexander, D.; Giza, C.C. The pathophysiology of traumatic brain injury at a glance. Dis. Model Mech. 2013, 6, 1307–1315. [Google Scholar] [CrossRef] [Green Version]
- Lumpkins, K.M.; Bochicchio, G.V.; Keledjian, K.; Simard, J.M.; McCunn, M.; Scalea, T. Glial fibrillary acidic protein is highly correlated with brain injury. J. Trauma 2008, 65, 778–782. [Google Scholar] [CrossRef]
- Raghupathi, R. Cell death mechanisms following traumatic brain injury. Brain Pathol. 2004, 14, 215–222. [Google Scholar] [CrossRef] [PubMed]
- Meaney, D.F.; Smith, D.H. Cellular biomechanics of central nervous system injury. Handb. Clin. Neurol. 2015, 127, 105–114. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Takano, T.; Oberheim, N.; Cotrina, M.L.; Nedergaard, M. Astrocytes and ischemic injury. Stroke 2009, 40, S8–S12. [Google Scholar] [CrossRef] [Green Version]
- Blennow, K.; Brody, D.L.; Kochanek, P.M.; Levin, H.; McKee, A.; Ribbers, G.M.; Yaffe, K.; Zetterberg, H. Traumatic brain injuries. Nat. Rev. Dis. Primers 2016, 2, 16084. [Google Scholar] [CrossRef] [PubMed]
- Hanisch, U.K.; Kettenmann, H. Microglia: Active sensor and versatile effector cells in the normal and pathologic brain. Nat. Neurosci. 2007, 10, 1387–1394. [Google Scholar] [CrossRef] [PubMed]
- Weaver, L.C.; Bao, F.; Dekaban, G.A.; Hryciw, T.; Shultz, S.R.; Cain, D.P.; Brown, A. CD11d integrin blockade reduces the systemic inflammatory response syndrome after traumatic brain injury in rats. Exp. Neurol. 2015, 271, 409–422. [Google Scholar] [CrossRef] [Green Version]
- Kenne, E.; Erlandsson, A.; Lindbom, L.; Hillered, L.; Clausen, F. Neutrophil depletion reduces edema formation and tissue loss following traumatic brain injury in mice. J. Neuroinflamm. 2012, 9, 17. [Google Scholar] [CrossRef] [Green Version]
- Morganti, J.M.; Jopson, T.D.; Liu, S.; Riparip, L.K.; Guandique, C.K.; Gupta, N.; Ferguson, A.R.; Rosi, S. CCR2 antagonism alters brain macrophage polarization and ameliorates cognitive dysfunction induced by traumatic brain injury. J. Neurosci. 2015, 35, 748–760. [Google Scholar] [CrossRef] [Green Version]
- Hsieh, C.L.; Niemi, E.C.; Wang, S.H.; Lee, C.C.; Bingham, D.; Zhang, J.; Cozen, M.L.; Charo, I.; Huang, E.J.; Liu, J.; et al. CCR2 deficiency impairs macrophage infiltration and improves cognitive function after traumatic brain injury. J. Neurotrauma 2014, 31, 1677–1688. [Google Scholar] [CrossRef] [Green Version]
- Junger, W.G. Immune cell regulation by autocrine purinergic signalling. Nat. Rev. Immunol. 2011, 11, 201–212. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Alves, M.; Beamer, E.; Engel, T. The Metabotropic Purinergic P2Y Receptor Family as Novel Drug Target in Epilepsy. Front. Pharmacol. 2018, 9, 193. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- de Rivero Vaccari, J.P.; Bastien, D.; Yurcisin, G.; Pineau, I.; Dietrich, W.D.; De Koninck, Y.; Keane, R.W.; Lacroix, S. P2X4 receptors influence inflammasome activation after spinal cord injury. J. Neurosci. 2012, 32, 3058–3066. [Google Scholar] [CrossRef] [PubMed]
- Ulmann, L.; Hatcher, J.P.; Hughes, J.P.; Chaumont, S.; Green, P.J.; Conquet, F.; Buell, G.N.; Reeve, A.J.; Chessell, I.P.; Rassendren, F. Up-regulation of P2X4 receptors in spinal microglia after peripheral nerve injury mediates BDNF release and neuropathic pain. J. Neurosci. 2008, 28, 11263–11268. [Google Scholar] [CrossRef] [PubMed]
- Choo, A.M.; Miller, W.J.; Chen, Y.C.; Nibley, P.; Patel, T.P.; Goletiani, C.; Morrison, B., 3rd; Kutzing, M.K.; Firestein, B.L.; Sul, J.Y.; et al. Antagonism of purinergic signalling improves recovery from traumatic brain injury. Brain 2013, 136, 65–80. [Google Scholar] [CrossRef] [Green Version]
- Garg, C.; Seo, J.H.; Ramachandran, J.; Loh, J.M.; Calderon, F.; Contreras, J.E. Trovafloxacin attenuates neuroinflammation and improves outcome after traumatic brain injury in mice. J. Neuroinflamm. 2018, 15, 42. [Google Scholar] [CrossRef]
- Ni, B.K.; Cai, J.Y.; Lin, Q.; Zheng, K.H.; Lin, L.; Wu, J.H. Evaluation of serum pannexin-1 as a prognostic biomarker for traumatic brain injury. Clin. Chim. Acta 2019, 488, 159–164. [Google Scholar] [CrossRef]
- Jian, Z.; Ding, S.; Deng, H.; Wang, J.; Yi, W.; Wang, L.; Zhu, S.; Gu, L.; Xiong, X. Probenecid protects against oxygen-glucose deprivation injury in primary astrocytes by regulating inflammasome activity. Brain Res. 2016, 1643, 123–129. [Google Scholar] [CrossRef]
- Siebert, A.P.; Ma, Z.; Grevet, J.D.; Demuro, A.; Parker, I.; Foskett, J.K. Structural and functional similarities of calcium homeostasis modulator 1 (CALHM1) ion channel with connexins, pannexins, and innexins. J. Biol. Chem. 2013, 288, 6140–6153. [Google Scholar] [CrossRef] [Green Version]
Pathophysiology | Pharmacological Blockade of Panx1 | Genetic Deletion | Outcome |
---|---|---|---|
Epilepsy | Probenecid and mefloquine | Global Panx1 KO | Blocked Ictal discharge and resistance to Kainic induced seizure (Dossi et al., 2018) |
Spinal cord injury | 10Panx, Mefloquine, Probenecid | Microglia Panx1 KO | Reduces Morphine withdrawal and joint pain by mechanical allodynia (Mousseau et al., 2018) (Burma et al., 2017) |
Sciatic Nerve injury (Neuropathic pain) | Carbenoxolone and Trovafloxacin | Global Panx1 KO Myeloid Panx1 (Microglia and infiltrating monocytes) KO | Blockers reduced hypersensitivity to tactile and thermal stimuli Myeloid Panx1 KO did not reduced neuropathic pain (Weaver et al., 2017) |
Ischemia (MCAO) | Probenecid | Global Panx1 KO Double KO of Panx1 and Panx2 | Probenecid reduced neuronal death and inflammasome activation in rat model of ischemia.(Wei et al., 2015) Panx1 KO did not show neuroprotection but Double KO of Panx1 and Panx2 showed reduced neurological deficits and reduced infarct volume compared to WT in MCAO model (Bargiotas et al., 2011) |
Ischemia/Reperfusion | Probenecid, mefloquine, Carbenoxolone | Global Panx1 KO | Blockers as well as Panx1 KO showed reduced infarct volume, neuronal and tissue damage and improved motor function. (Cisneros-Mejorado et al., 2015) |
Traumatic brain injury | Trovafloxacin(TVX) | Myeloid Panx1 KO | TVX reduced macrophage infiltration and astrogliosis correlated with improvement in locomotor activity(Garg et al., 2018) Myeloid Panx1 KO showed improved motor co-ordination, memory outcomes, reduced tissue damage, less BBB leakage and less infiltration of leukocytes (Seo et al., 2020) |
Experimental Autoimmune Encephalopathy | Mefloquine | Global Panx1 KO | Panx1 KO mice showed delayed onset of clinical signs of EAE and decreased mortality rate compared to WT mice Mefloquine (MFQ) reduced severity of acute and chronic EAE (Lutz, S.E., et al., 2013) |
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Seo, J.H.; Dalal, M.S.; Contreras, J.E. Pannexin-1 Channels as Mediators of Neuroinflammation. Int. J. Mol. Sci. 2021, 22, 5189. https://doi.org/10.3390/ijms22105189
Seo JH, Dalal MS, Contreras JE. Pannexin-1 Channels as Mediators of Neuroinflammation. International Journal of Molecular Sciences. 2021; 22(10):5189. https://doi.org/10.3390/ijms22105189
Chicago/Turabian StyleSeo, Joon Ho, Miloni S. Dalal, and Jorge E. Contreras. 2021. "Pannexin-1 Channels as Mediators of Neuroinflammation" International Journal of Molecular Sciences 22, no. 10: 5189. https://doi.org/10.3390/ijms22105189
APA StyleSeo, J. H., Dalal, M. S., & Contreras, J. E. (2021). Pannexin-1 Channels as Mediators of Neuroinflammation. International Journal of Molecular Sciences, 22(10), 5189. https://doi.org/10.3390/ijms22105189