Skip to main content
Top
Published in: Journal of Neuroinflammation 1/2012

Open Access 01-12-2012 | Research

Immunodominant fragments of myelin basic protein initiate T cell-dependent pain

Authors: Huaqing Liu, Sergey A Shiryaev, Andrei V Chernov, Youngsoon Kim, Igor Shubayev, Albert G Remacle, Svetlana Baranovskaya, Vladislav S Golubkov, Alex Y Strongin, Veronica I Shubayev

Published in: Journal of Neuroinflammation | Issue 1/2012

Login to get access

Abstract

Background

The myelin sheath provides electrical insulation of mechanosensory Aβ-afferent fibers. Myelin-degrading matrix metalloproteinases (MMPs) damage the myelin sheath. The resulting electrical instability of Aβ-fibers is believed to activate the nociceptive circuitry in Aβ-fibers and initiate pain from innocuous tactile stimulation (mechanical allodynia). The precise molecular mechanisms, responsible for the development of this neuropathic pain state after nerve injury (for example, chronic constriction injury, CCI), are not well understood.

Methods and results

Using mass spectrometry of the whole sciatic nerve proteome followed by bioinformatics analyses, we determined that the pathways, which are classified as the Infectious Disease and T-helper cell signaling, are readily activated in the nerves post-CCI. Inhibition of MMP-9/MMP-2 suppressed CCI-induced mechanical allodynia and concomitant TNF-α and IL-17A expression in nerves. MMP-9 proteolysis of myelin basic protein (MBP) generated the MBP84-104 and MBP68-86 digest peptides, which are prominent immunogenic epitopes. In agreement, the endogenous MBP69-86 epitope co-localized with MHCII and MMP-9 in Schwann cells and along the nodes of Ranvier. Administration of either the MBP84-104 or MBP68-86 peptides into the naïve nerve rapidly produced robust mechanical allodynia with a concomitant increase in T cells and MHCII-reactive cell populations at the injection site. As shown by the genome-wide expression profiling, a single intraneural MBP84-104 injection stimulated the inflammatory, immune cell trafficking, and antigen presentation pathways in the injected naïve nerves and the associated spinal cords. Both MBP84-104-induced mechanical allodynia and characteristic pathway activation were remarkably less prominent in the T cell-deficient athymic nude rats.

Conclusions

These data implicate MBP as a novel mediator of pain. Furthermore, the action of MMPs expressed within 1 day post-injury is critical to the generation of tactile allodynia, neuroinflammation, and the immunodominant MBP digest peptides in nerve. These MBP peptides initiate mechanical allodynia in both a T cell-dependent and -independent manner. In the course of Wallerian degeneration, the repeated exposure of the cryptic MBP epitopes, which are normally sheltered from immunosurveillance, may induce the MBP-specific T cell clones and a self-sustaining immune reaction, which may together contribute to the transition of acute pain into a chronic neuropathic pain state.
Appendix
Available only for authorised users
Literature
1.
go back to reference Devor M: Ectopic discharge in Abeta afferents as a source of neuropathic pain. Exp Brain Res 2009, 196:115–128.CrossRefPubMed Devor M: Ectopic discharge in Abeta afferents as a source of neuropathic pain. Exp Brain Res 2009, 196:115–128.CrossRefPubMed
2.
go back to reference Devor M: Sodium channels and mechanisms of neuropathic pain. J Pain 2006, Suppl 1:S3-S12.CrossRef Devor M: Sodium channels and mechanisms of neuropathic pain. J Pain 2006, Suppl 1:S3-S12.CrossRef
3.
go back to reference Wu G, Ringkamp M, Murinson BB, Pogatzki EM, Hartke TV, Weerahandi HM, Campbell JN, Griffin JW, Meyer RA: Degeneration of myelinated efferent fibers induces spontaneous activity in uninjured C-fiber afferents. J Neurosci 2002, 22:7746–7753.PubMed Wu G, Ringkamp M, Murinson BB, Pogatzki EM, Hartke TV, Weerahandi HM, Campbell JN, Griffin JW, Meyer RA: Degeneration of myelinated efferent fibers induces spontaneous activity in uninjured C-fiber afferents. J Neurosci 2002, 22:7746–7753.PubMed
4.
go back to reference Henry MA, Luo S, Foley BD, Rzasa RS, Johnson LR, Levinson SR: Sodium channel expression and localization at demyelinated sites in painful human dental pulp. J Pain 2009, 10:750–758.CrossRefPubMedPubMedCentral Henry MA, Luo S, Foley BD, Rzasa RS, Johnson LR, Levinson SR: Sodium channel expression and localization at demyelinated sites in painful human dental pulp. J Pain 2009, 10:750–758.CrossRefPubMedPubMedCentral
5.
go back to reference Kobayashi H, Chattopadhyay S, Kato K, Dolkas J, Kikuchi S, Myers RR, Shubayev VI: MMPs initiate Schwann cell-mediated MBP degradation and mechanical nociception after nerve damage. Mol Cell Neurosci 2008, 39:619–627.CrossRefPubMedPubMedCentral Kobayashi H, Chattopadhyay S, Kato K, Dolkas J, Kikuchi S, Myers RR, Shubayev VI: MMPs initiate Schwann cell-mediated MBP degradation and mechanical nociception after nerve damage. Mol Cell Neurosci 2008, 39:619–627.CrossRefPubMedPubMedCentral
6.
go back to reference Zhu YL, Xie ZL, Wu YW, Duan WR, Xie YK: Early demyelination of primary A-fibers induces a rapid-onset of neuropathic pain in rat. Neuroscience 2012, 200:186–198.CrossRefPubMed Zhu YL, Xie ZL, Wu YW, Duan WR, Xie YK: Early demyelination of primary A-fibers induces a rapid-onset of neuropathic pain in rat. Neuroscience 2012, 200:186–198.CrossRefPubMed
7.
go back to reference Treede RD, Jensen TS, Campbell JN, Cruccu G, Dostrovsky JO, Griffin JW, Hansson P, Hughes R, Nurmikko T, Serra J: Neuropathic pain: redefinition and a grading system for clinical and research purposes. Neurology 2008, 70:1630–1635.CrossRefPubMed Treede RD, Jensen TS, Campbell JN, Cruccu G, Dostrovsky JO, Griffin JW, Hansson P, Hughes R, Nurmikko T, Serra J: Neuropathic pain: redefinition and a grading system for clinical and research purposes. Neurology 2008, 70:1630–1635.CrossRefPubMed
8.
go back to reference Scholz J, Woolf CJ: The neuropathic pain triad: neurons, immune cells and glia. Nat Neurosci 2007, 10:1361–1368.CrossRefPubMed Scholz J, Woolf CJ: The neuropathic pain triad: neurons, immune cells and glia. Nat Neurosci 2007, 10:1361–1368.CrossRefPubMed
9.
go back to reference Moalem G, Xu K, Yu L: T lymphocytes play a role in neuropathic pain following peripheral nerve injury in rats. Neuroscience 2004, 129:767–777.CrossRefPubMed Moalem G, Xu K, Yu L: T lymphocytes play a role in neuropathic pain following peripheral nerve injury in rats. Neuroscience 2004, 129:767–777.CrossRefPubMed
10.
go back to reference Tsai YC, Won SJ: Effects of tramadol on T lymphocyte proliferation and natural killer cell activity in rats with sciatic constriction injury. Pain 2001, 92:63–69.CrossRefPubMed Tsai YC, Won SJ: Effects of tramadol on T lymphocyte proliferation and natural killer cell activity in rats with sciatic constriction injury. Pain 2001, 92:63–69.CrossRefPubMed
11.
go back to reference Kleinschnitz C, Hofstetter HH, Meuth SG, Braeuninger S, Sommer C, Stoll G: T cell infiltration after chronic constriction injury of mouse sciatic nerve is associated with interleukin-17 expression. Exp Neurol 2006, 200:480–485.CrossRefPubMed Kleinschnitz C, Hofstetter HH, Meuth SG, Braeuninger S, Sommer C, Stoll G: T cell infiltration after chronic constriction injury of mouse sciatic nerve is associated with interleukin-17 expression. Exp Neurol 2006, 200:480–485.CrossRefPubMed
12.
go back to reference Cao L, DeLeo JA: CNS-infiltrating CD4+ T lymphocytes contribute to murine spinal nerve transection-induced neuropathic pain. Eur J Immunol 2008, 38:448–458.CrossRefPubMedPubMedCentral Cao L, DeLeo JA: CNS-infiltrating CD4+ T lymphocytes contribute to murine spinal nerve transection-induced neuropathic pain. Eur J Immunol 2008, 38:448–458.CrossRefPubMedPubMedCentral
13.
go back to reference Sweitzer SM, Hickey WF, Rutkowski MD, Pahl JL, DeLeo JA: Focal peripheral nerve injury induces leukocyte trafficking into the central nervous system: potential relationship to neuropathic pain. Pain 2002, 100:163–170.CrossRefPubMed Sweitzer SM, Hickey WF, Rutkowski MD, Pahl JL, DeLeo JA: Focal peripheral nerve injury induces leukocyte trafficking into the central nervous system: potential relationship to neuropathic pain. Pain 2002, 100:163–170.CrossRefPubMed
14.
go back to reference Costigan M, Moss A, Latremoliere A, Johnston C, Verma-Gandhu M, Herbert TA, Barrett L, Brenner GJ, Vardeh D, Woolf CJ, Fitzgerald M: T-cell infiltration and signaling in the adult dorsal spinal cord is a major contributor to neuropathic pain-like hypersensitivity. J Neurosci 2009, 29:14415–14422.CrossRefPubMedPubMedCentral Costigan M, Moss A, Latremoliere A, Johnston C, Verma-Gandhu M, Herbert TA, Barrett L, Brenner GJ, Vardeh D, Woolf CJ, Fitzgerald M: T-cell infiltration and signaling in the adult dorsal spinal cord is a major contributor to neuropathic pain-like hypersensitivity. J Neurosci 2009, 29:14415–14422.CrossRefPubMedPubMedCentral
15.
go back to reference Kim CF, Moalem-Taylor G: Interleukin-17 contributes to neuroinflammation and neuropathic pain following peripheral nerve injury in mice. J Pain 2011, 12:370–383.CrossRefPubMed Kim CF, Moalem-Taylor G: Interleukin-17 contributes to neuroinflammation and neuropathic pain following peripheral nerve injury in mice. J Pain 2011, 12:370–383.CrossRefPubMed
16.
go back to reference Sweitzer SM, White KA, Dutta C, DeLeo JA: The differential role of spinal MHC class II and cellular adhesion molecules in peripheral inflammatory versus neuropathic pain in rodents. J Neuroimmunol 2002, 125:82–93.CrossRefPubMed Sweitzer SM, White KA, Dutta C, DeLeo JA: The differential role of spinal MHC class II and cellular adhesion molecules in peripheral inflammatory versus neuropathic pain in rodents. J Neuroimmunol 2002, 125:82–93.CrossRefPubMed
17.
go back to reference Austin PJ, Moalem-Taylor G: The neuro-immune balance in neuropathic pain: involvement of inflammatory immune cells, immune-like glial cells and cytokines. J Neuroimmunol 2010, 229:26–50.CrossRefPubMed Austin PJ, Moalem-Taylor G: The neuro-immune balance in neuropathic pain: involvement of inflammatory immune cells, immune-like glial cells and cytokines. J Neuroimmunol 2010, 229:26–50.CrossRefPubMed
18.
go back to reference Hu P, Bembrick AL, Keay KA, McLachlan EM: Immune cell involvement in dorsal root ganglia and spinal cord after chronic constriction or transection of the rat sciatic nerve. Brain Behav Immun 2007, 21:599–616.CrossRefPubMed Hu P, Bembrick AL, Keay KA, McLachlan EM: Immune cell involvement in dorsal root ganglia and spinal cord after chronic constriction or transection of the rat sciatic nerve. Brain Behav Immun 2007, 21:599–616.CrossRefPubMed
19.
go back to reference Alzate O, Hussain SR, Goettl VM, Tewari AK, Madiai F, Stephens RL, Hackshaw KV: Proteomic identification of brainstem cytosolic proteins in a neuropathic pain model. Brain Res Mol Brain Res 2004, 128:193–200.CrossRefPubMed Alzate O, Hussain SR, Goettl VM, Tewari AK, Madiai F, Stephens RL, Hackshaw KV: Proteomic identification of brainstem cytosolic proteins in a neuropathic pain model. Brain Res Mol Brain Res 2004, 128:193–200.CrossRefPubMed
21.
go back to reference Givogri MI, Bongarzone ER, Campagnoni AT: New insights on the biology of myelin basic protein gene: the neural-immune connection. J Neurosci Res 2000, 59:153–159.CrossRefPubMed Givogri MI, Bongarzone ER, Campagnoni AT: New insights on the biology of myelin basic protein gene: the neural-immune connection. J Neurosci Res 2000, 59:153–159.CrossRefPubMed
22.
go back to reference Garbay B, Heape AM, Sarqueil F, Cassagne C: Myelin synthesis in the peripheral nervous system. Prog Neurobiol 2000, 61:267–304.CrossRefPubMed Garbay B, Heape AM, Sarqueil F, Cassagne C: Myelin synthesis in the peripheral nervous system. Prog Neurobiol 2000, 61:267–304.CrossRefPubMed
23.
24.
go back to reference Moalem-Taylor G, Allbutt HN, Iordanova MD, Tracey DJ: Pain hypersensitivity in rats with experimental autoimmune neuritis, an animal model of human inflammatory demyelinating neuropathy. Brain Behav Immun 2007, 21:699–710.CrossRefPubMed Moalem-Taylor G, Allbutt HN, Iordanova MD, Tracey DJ: Pain hypersensitivity in rats with experimental autoimmune neuritis, an animal model of human inflammatory demyelinating neuropathy. Brain Behav Immun 2007, 21:699–710.CrossRefPubMed
25.
go back to reference Vargas ME, Watanabe J, Singh SJ, Robinson WH, Barres BA: Endogenous antibodies promote rapid myelin clearance and effective axon regeneration after nerve injury. Proc Natl Acad Sci U S A 2010, 107:11993–11998.CrossRefPubMedPubMedCentral Vargas ME, Watanabe J, Singh SJ, Robinson WH, Barres BA: Endogenous antibodies promote rapid myelin clearance and effective axon regeneration after nerve injury. Proc Natl Acad Sci U S A 2010, 107:11993–11998.CrossRefPubMedPubMedCentral
26.
go back to reference Marty MC, Alliot F, Rutin J, Fritz R, Trisler D, Pessac B: The myelin basic protein gene is expressed in differentiated blood cell lineages and in hemopoietic progenitors. Proc Natl Acad Sci U S A 2002, 99:8856–8861.CrossRefPubMedPubMedCentral Marty MC, Alliot F, Rutin J, Fritz R, Trisler D, Pessac B: The myelin basic protein gene is expressed in differentiated blood cell lineages and in hemopoietic progenitors. Proc Natl Acad Sci U S A 2002, 99:8856–8861.CrossRefPubMedPubMedCentral
27.
go back to reference Shiryaev SA, Savinov AY, Cieplak P, Ratnikov BI, Motamedchaboki K, Smith JW, Strongin AY: Matrix metalloproteinase proteolysis of the myelin basic protein isoforms is a source of immunogenic peptides in autoimmune multiple sclerosis. PLoS One 2009, 4:e4952.CrossRefPubMedPubMedCentral Shiryaev SA, Savinov AY, Cieplak P, Ratnikov BI, Motamedchaboki K, Smith JW, Strongin AY: Matrix metalloproteinase proteolysis of the myelin basic protein isoforms is a source of immunogenic peptides in autoimmune multiple sclerosis. PLoS One 2009, 4:e4952.CrossRefPubMedPubMedCentral
28.
go back to reference Proost P, Van Damme J, Opdenakker G: Leukocyte gelatinase B cleavage releases encephalitogens from human myelin basic protein. Biochem Biophys Res Commun 1993, 192:1175–1181.CrossRefPubMed Proost P, Van Damme J, Opdenakker G: Leukocyte gelatinase B cleavage releases encephalitogens from human myelin basic protein. Biochem Biophys Res Commun 1993, 192:1175–1181.CrossRefPubMed
29.
go back to reference Nagase H, Visse R, Murphy G: Structure and function of matrix metalloproteinases and TIMPs. Cardiovasc Res 2006, 69:562–573.CrossRefPubMed Nagase H, Visse R, Murphy G: Structure and function of matrix metalloproteinases and TIMPs. Cardiovasc Res 2006, 69:562–573.CrossRefPubMed
30.
go back to reference Shubayev VI, Angert M, Dolkas J, Campana WM, Palenscar K, Myers RR: TNFalpha-induced MMP-9 promotes macrophage recruitment into injured peripheral nerve. Mol Cell Neurosci 2006, 31:407–415.CrossRefPubMed Shubayev VI, Angert M, Dolkas J, Campana WM, Palenscar K, Myers RR: TNFalpha-induced MMP-9 promotes macrophage recruitment into injured peripheral nerve. Mol Cell Neurosci 2006, 31:407–415.CrossRefPubMed
31.
go back to reference Kieseier BC, Hartung HP, Wiendl H: Immune circuitry in the peripheral nervous system. Curr Opin Neurol 2006, 19:437–445.CrossRefPubMed Kieseier BC, Hartung HP, Wiendl H: Immune circuitry in the peripheral nervous system. Curr Opin Neurol 2006, 19:437–445.CrossRefPubMed
32.
go back to reference Chattopadhyay S, Myers RR, Janes J, Shubayev V: Cytokine regulation of MMP-9 in peripheral glia: implications for pathological processes and pain in injured nerve. Brain Behav Immun 2007, 21:561–568.CrossRefPubMed Chattopadhyay S, Myers RR, Janes J, Shubayev V: Cytokine regulation of MMP-9 in peripheral glia: implications for pathological processes and pain in injured nerve. Brain Behav Immun 2007, 21:561–568.CrossRefPubMed
33.
go back to reference Kawasaki Y, Xu Z-Z, Wang X, Park JY, Zhuang Z-Y, Tan P-H, Gao Y-J, Roy K, Corfas G, Lo EH, Ji R-R: Distinct roles of matrix metalloproteases in the early- and late-phase development of neuropathic pain. Nat Med 2008, 14:331–336.CrossRefPubMedPubMedCentral Kawasaki Y, Xu Z-Z, Wang X, Park JY, Zhuang Z-Y, Tan P-H, Gao Y-J, Roy K, Corfas G, Lo EH, Ji R-R: Distinct roles of matrix metalloproteases in the early- and late-phase development of neuropathic pain. Nat Med 2008, 14:331–336.CrossRefPubMedPubMedCentral
34.
go back to reference Dev R, Srivastava PK, Iyer JP, Dastidar SG, Ray A: Therapeutic potential of matrix metalloprotease inhibitors in neuropathic pain. Expert Opin Investig Drugs 2010, 19:455–468.CrossRefPubMed Dev R, Srivastava PK, Iyer JP, Dastidar SG, Ray A: Therapeutic potential of matrix metalloprotease inhibitors in neuropathic pain. Expert Opin Investig Drugs 2010, 19:455–468.CrossRefPubMed
35.
go back to reference Bennett GJ, Xie YK: A peripheral mononeuropathy in rat that produces disorders of pain sensation like those seen in man. Pain 1988, 33:87–107.CrossRefPubMed Bennett GJ, Xie YK: A peripheral mononeuropathy in rat that produces disorders of pain sensation like those seen in man. Pain 1988, 33:87–107.CrossRefPubMed
36.
go back to reference Livak KJ, Schmittgen TD: Analysis of relative gene expression data using real-time quantitative PCR and the 2(−Delta Delta C(T)) Method. Methods 2001, 25:402–408.CrossRefPubMed Livak KJ, Schmittgen TD: Analysis of relative gene expression data using real-time quantitative PCR and the 2(−Delta Delta C(T)) Method. Methods 2001, 25:402–408.CrossRefPubMed
37.
go back to reference Shiryaev SA, Remacle AG, Savinov AY, Chernov AV, Cieplak P, Radichev IA, Williams R, Shiryaeva TN, Gawlik K, Postnova TI, Ratnikov BI, Eroshkin AM, Motamedchaboki K, Smith JW, Strongin AY: Inflammatory proprotein convertase-matrix metalloproteinase proteolytic pathway in antigen-presenting cells as a step to autoimmune multiple sclerosis. J Biol Chem 2009, 284:30615–30626.CrossRefPubMedPubMedCentral Shiryaev SA, Remacle AG, Savinov AY, Chernov AV, Cieplak P, Radichev IA, Williams R, Shiryaeva TN, Gawlik K, Postnova TI, Ratnikov BI, Eroshkin AM, Motamedchaboki K, Smith JW, Strongin AY: Inflammatory proprotein convertase-matrix metalloproteinase proteolytic pathway in antigen-presenting cells as a step to autoimmune multiple sclerosis. J Biol Chem 2009, 284:30615–30626.CrossRefPubMedPubMedCentral
38.
go back to reference Chaplan SR, Bach FW, Pogrel JW, Chung JM, Yaksh TL: Quantitative assessment of tactile allodynia in the rat paw. J Neurosci Methods 1994, 53:55–63.CrossRefPubMed Chaplan SR, Bach FW, Pogrel JW, Chung JM, Yaksh TL: Quantitative assessment of tactile allodynia in the rat paw. J Neurosci Methods 1994, 53:55–63.CrossRefPubMed
39.
go back to reference Hargreaves K, Dubner R, Brown F, Flores C, Joris J: A new and sensitive method for measuring thermal nociception in cutaneous hyperalgesia. Pain 1988, 32:77–88.CrossRefPubMed Hargreaves K, Dubner R, Brown F, Flores C, Joris J: A new and sensitive method for measuring thermal nociception in cutaneous hyperalgesia. Pain 1988, 32:77–88.CrossRefPubMed
40.
go back to reference Attal N, Jazat F, Kayser V, Guilbaud G: Further evidence for ‘pain-related’ behaviours in a model of unilateral peripheral mononeuropathy. Pain 1990, 41:235–251.CrossRefPubMed Attal N, Jazat F, Kayser V, Guilbaud G: Further evidence for ‘pain-related’ behaviours in a model of unilateral peripheral mononeuropathy. Pain 1990, 41:235–251.CrossRefPubMed
41.
go back to reference Backonja M, Woolf CJ: Future directions in neuropathic pain therapy: closing the translational loop. Oncologist 2010, Suppl 2:24–29.CrossRef Backonja M, Woolf CJ: Future directions in neuropathic pain therapy: closing the translational loop. Oncologist 2010, Suppl 2:24–29.CrossRef
43.
go back to reference Kim CF, Moalem-Taylor G: Detailed characterization of neuro-immune responses following neuropathic injury in mice. Brain Res 2011, 1405:95–108.CrossRefPubMed Kim CF, Moalem-Taylor G: Detailed characterization of neuro-immune responses following neuropathic injury in mice. Brain Res 2011, 1405:95–108.CrossRefPubMed
44.
go back to reference Kim Y, Remacle AG, Chernov AV, Liu H, Shubayev I, Lai C, Dolkas J, Shiryaev SA, Golubkov VS, Mizisin AP, Strongin AY, Shubayev VI: The MMP-9/TIMP-1 axis controls the status of differentiation and function of myelin-forming Schwann cells in nerve regeneration. PLoS One 2012, 7:e33664.CrossRefPubMedPubMedCentral Kim Y, Remacle AG, Chernov AV, Liu H, Shubayev I, Lai C, Dolkas J, Shiryaev SA, Golubkov VS, Mizisin AP, Strongin AY, Shubayev VI: The MMP-9/TIMP-1 axis controls the status of differentiation and function of myelin-forming Schwann cells in nerve regeneration. PLoS One 2012, 7:e33664.CrossRefPubMedPubMedCentral
45.
go back to reference Shubayev VI, Myers RR: Endoneurial remodeling by TNFalpha- and TNFalpha-releasing proteases. A spatial and temporal co-localization study in painful neuropathy. J Peripher Nerv Syst 2002, 7:28–36.CrossRefPubMed Shubayev VI, Myers RR: Endoneurial remodeling by TNFalpha- and TNFalpha-releasing proteases. A spatial and temporal co-localization study in painful neuropathy. J Peripher Nerv Syst 2002, 7:28–36.CrossRefPubMed
46.
go back to reference Shubayev VI, Myers RR: Upregulation and interaction of TNFalpha and gelatinases A and B in painful peripheral nerve injury. Brain Res 2000, 855:83–89.CrossRefPubMed Shubayev VI, Myers RR: Upregulation and interaction of TNFalpha and gelatinases A and B in painful peripheral nerve injury. Brain Res 2000, 855:83–89.CrossRefPubMed
47.
go back to reference Brown S, Bernardo MM, Li Z-H, Kotra LP, Tanaka Y, Fridman R, Mobashery S: Potent and selective mechanism-based inhibition of gelatinases. J Am Chem Soc 2000, 122:6799–6800.CrossRef Brown S, Bernardo MM, Li Z-H, Kotra LP, Tanaka Y, Fridman R, Mobashery S: Potent and selective mechanism-based inhibition of gelatinases. J Am Chem Soc 2000, 122:6799–6800.CrossRef
48.
go back to reference Liu H, Shubayev VI: Matrix metalloproteinase-9 controls proliferation of NG2+ progenitor cells immediately after spinal cord injury. Exp Neurol 2011, 231:236–246.CrossRefPubMedPubMedCentral Liu H, Shubayev VI: Matrix metalloproteinase-9 controls proliferation of NG2+ progenitor cells immediately after spinal cord injury. Exp Neurol 2011, 231:236–246.CrossRefPubMedPubMedCentral
49.
go back to reference Gu Z, Cui J, Brown S, Fridman R, Mobashery S, Strongin AY, Lipton SA: A highly specific inhibitor of matrix metalloproteinase-9 rescues laminin from proteolysis and neurons from apoptosis in transient focal cerebral ischemia. J Neurosci 2005, 25:6401–6408.CrossRefPubMed Gu Z, Cui J, Brown S, Fridman R, Mobashery S, Strongin AY, Lipton SA: A highly specific inhibitor of matrix metalloproteinase-9 rescues laminin from proteolysis and neurons from apoptosis in transient focal cerebral ischemia. J Neurosci 2005, 25:6401–6408.CrossRefPubMed
50.
go back to reference Gould KE, Swanborg RH: T and B cell responses to myelin basic protein and encephalitogenic epitopes. J Neuroimmunol 1993, 46:193–198.CrossRefPubMed Gould KE, Swanborg RH: T and B cell responses to myelin basic protein and encephalitogenic epitopes. J Neuroimmunol 1993, 46:193–198.CrossRefPubMed
51.
go back to reference Katsara M, Deraos G, Tselios T, Matsoukas J, Apostolopoulos V: Design of novel cyclic altered peptide ligands of myelin basic protein MBP83–99 that modulate immune responses in SJL/J mice. J Med Chem 2008, 51:3971–3978.CrossRefPubMed Katsara M, Deraos G, Tselios T, Matsoukas J, Apostolopoulos V: Design of novel cyclic altered peptide ligands of myelin basic protein MBP83–99 that modulate immune responses in SJL/J mice. J Med Chem 2008, 51:3971–3978.CrossRefPubMed
52.
go back to reference Matsoukas J, Apostolopoulos V, Kalbacher H, Papini AM, Tselios T, Chatzantoni K, Biagioli T, Lolli F, Deraos S, Papathanassopoulos P, Troganis A, Mantzourani E, Mavromoutsakos T, Mouzaki A: Design and synthesis of a novel potent myelin basic protein epitope 87–99 cyclic analogue: enhanced stability and biological properties of mimics render them a potentially new class of immunomodulators. J Med Chem 2005, 48:1470–1480.CrossRefPubMed Matsoukas J, Apostolopoulos V, Kalbacher H, Papini AM, Tselios T, Chatzantoni K, Biagioli T, Lolli F, Deraos S, Papathanassopoulos P, Troganis A, Mantzourani E, Mavromoutsakos T, Mouzaki A: Design and synthesis of a novel potent myelin basic protein epitope 87–99 cyclic analogue: enhanced stability and biological properties of mimics render them a potentially new class of immunomodulators. J Med Chem 2005, 48:1470–1480.CrossRefPubMed
53.
go back to reference Stepaniak JA, Gould KE, Swanborg RH: Encephalitogenic T cells are present in Lewis rats protected from autoimmune encephalomyelitis by coimmunization with MBP73–84 and its analog. J Neurosci Res 1996, 45:447–454.CrossRefPubMed Stepaniak JA, Gould KE, Swanborg RH: Encephalitogenic T cells are present in Lewis rats protected from autoimmune encephalomyelitis by coimmunization with MBP73–84 and its analog. J Neurosci Res 1996, 45:447–454.CrossRefPubMed
54.
go back to reference Tselios T, Apostolopoulos V, Daliani I, Deraos S, Grdadolnik S, Mavromoustakos T, Melachrinou M, Thymianou S, Probert L, Mouzaki A, Matsoukas J: Antagonistic effects of human cyclic MBP(87–99) altered peptide ligands in experimental allergic encephalomyelitis and human T-cell proliferation. J Med Chem 2002, 45:275–283.CrossRefPubMed Tselios T, Apostolopoulos V, Daliani I, Deraos S, Grdadolnik S, Mavromoustakos T, Melachrinou M, Thymianou S, Probert L, Mouzaki A, Matsoukas J: Antagonistic effects of human cyclic MBP(87–99) altered peptide ligands in experimental allergic encephalomyelitis and human T-cell proliferation. J Med Chem 2002, 45:275–283.CrossRefPubMed
55.
go back to reference Matsuo A, Lee GC, Terai K, Takami K, Hickey WF, McGeer EG, McGeer PL: Unmasking of an unusual myelin basic protein epitope during the process of myelin degeneration in humans: a potential mechanism for the generation of autoantigens. Am J Pathol 1997, 150:1253–1266.PubMedPubMedCentral Matsuo A, Lee GC, Terai K, Takami K, Hickey WF, McGeer EG, McGeer PL: Unmasking of an unusual myelin basic protein epitope during the process of myelin degeneration in humans: a potential mechanism for the generation of autoantigens. Am J Pathol 1997, 150:1253–1266.PubMedPubMedCentral
56.
go back to reference Chattopadhyay S, Shubayev VI: MMP-9 controls Schwann cell proliferation and phenotypic remodeling via IGF-1 and ErbB receptor-mediated activation of MEK/ERK pathway. GLIA 2009, 57:1316–1325.CrossRefPubMedPubMedCentral Chattopadhyay S, Shubayev VI: MMP-9 controls Schwann cell proliferation and phenotypic remodeling via IGF-1 and ErbB receptor-mediated activation of MEK/ERK pathway. GLIA 2009, 57:1316–1325.CrossRefPubMedPubMedCentral
57.
go back to reference Thacker MA, Clark AK, Marchand F, McMahon SB: Pathophysiology of peripheral neuropathic pain: immune cells and molecules. Anesth Analg 2007, 105:838–847.CrossRefPubMed Thacker MA, Clark AK, Marchand F, McMahon SB: Pathophysiology of peripheral neuropathic pain: immune cells and molecules. Anesth Analg 2007, 105:838–847.CrossRefPubMed
58.
go back to reference Myers RR, Campana WM, Shubayev VI: The role of neuroinflammation in neuropathic pain: mechanisms and therapeutic targets. Drug Discov Today 2006, 11:8–20.CrossRefPubMed Myers RR, Campana WM, Shubayev VI: The role of neuroinflammation in neuropathic pain: mechanisms and therapeutic targets. Drug Discov Today 2006, 11:8–20.CrossRefPubMed
59.
go back to reference Wieseler-Frank J, Maier SF, Watkins LR: Glial activation and pathological pain. Neurochem Int 2004, 45:389–395.CrossRefPubMed Wieseler-Frank J, Maier SF, Watkins LR: Glial activation and pathological pain. Neurochem Int 2004, 45:389–395.CrossRefPubMed
61.
go back to reference Djouhri L, Lawson SN: Abeta-fiber nociceptive primary afferent neurons: a review of incidence and properties in relation to other afferent A-fiber neurons in mammals. Brain Res Brain Res Rev 2004, 46:131–145.CrossRefPubMed Djouhri L, Lawson SN: Abeta-fiber nociceptive primary afferent neurons: a review of incidence and properties in relation to other afferent A-fiber neurons in mammals. Brain Res Brain Res Rev 2004, 46:131–145.CrossRefPubMed
62.
go back to reference D’Souza CA, Moscarello MA: Differences in susceptibility of MBP charge isomers to digestion by stromelysin-1 (MMP-3) and release of an immunodominant epitope. Neurochem Res 2006, 31:1045–1054.CrossRefPubMed D’Souza CA, Moscarello MA: Differences in susceptibility of MBP charge isomers to digestion by stromelysin-1 (MMP-3) and release of an immunodominant epitope. Neurochem Res 2006, 31:1045–1054.CrossRefPubMed
63.
go back to reference Chandler S, Coates R, Gearing A, Lury J, Well G, Bone E: Matrix metalloproteinases degrade myelin basic protein. Neurosci Lett 1995, 201:223–226.CrossRefPubMed Chandler S, Coates R, Gearing A, Lury J, Well G, Bone E: Matrix metalloproteinases degrade myelin basic protein. Neurosci Lett 1995, 201:223–226.CrossRefPubMed
64.
go back to reference Campagnoni AT, Pribyl TM, Campagnoni CW, Kampf K, Amur-Umarjee S, Landry CF, Handley VW, Newman SL, Garbay B, Kitamura K: Structure and developmental regulation of Golli-mbp, a 105-kilobase gene that encompasses the myelin basic protein gene and is expressed in cells in the oligodendrocyte lineage in the brain. J Biol Chem 1993, 268:4930–4938.PubMed Campagnoni AT, Pribyl TM, Campagnoni CW, Kampf K, Amur-Umarjee S, Landry CF, Handley VW, Newman SL, Garbay B, Kitamura K: Structure and developmental regulation of Golli-mbp, a 105-kilobase gene that encompasses the myelin basic protein gene and is expressed in cells in the oligodendrocyte lineage in the brain. J Biol Chem 1993, 268:4930–4938.PubMed
65.
go back to reference Filipovic R, Rakic S, Zecevic N: Expression of Golli proteins in adult human brain and multiple sclerosis lesions. J Neuroimmunol 2002, 127:1–12.CrossRefPubMed Filipovic R, Rakic S, Zecevic N: Expression of Golli proteins in adult human brain and multiple sclerosis lesions. J Neuroimmunol 2002, 127:1–12.CrossRefPubMed
66.
go back to reference Tienari PJ, Kuokkanen S, Pastinen T, Wikstrom J, Sajantila A, Sandberg-Wolheim M, Palo J, Peltonen L: Golli-MBP gene in multiple sclerosis susceptibility. J Neuroimmunol 1998, 81:158–167.CrossRefPubMed Tienari PJ, Kuokkanen S, Pastinen T, Wikstrom J, Sajantila A, Sandberg-Wolheim M, Palo J, Peltonen L: Golli-MBP gene in multiple sclerosis susceptibility. J Neuroimmunol 1998, 81:158–167.CrossRefPubMed
67.
go back to reference Myers RR, Shubayev VI: The ology of neuropathy: an integrative review of the role of neuroinflammation and TNF-alpha axonal transport in neuropathic pain. J Peripher Nerv Syst 2011, 16:277–286.CrossRefPubMedPubMedCentral Myers RR, Shubayev VI: The ology of neuropathy: an integrative review of the role of neuroinflammation and TNF-alpha axonal transport in neuropathic pain. J Peripher Nerv Syst 2011, 16:277–286.CrossRefPubMedPubMedCentral
68.
go back to reference Meyerzu Horste G, Hu W, Hartung HP, Lehmann HC, Kieseier BC: The immunocompetence of Schwann cells. Muscle Nerve 2008, 37:3–13.CrossRef Meyerzu Horste G, Hu W, Hartung HP, Lehmann HC, Kieseier BC: The immunocompetence of Schwann cells. Muscle Nerve 2008, 37:3–13.CrossRef
69.
go back to reference Vargas ME, Barres BA: Why is Wallerian degeneration in the CNS so slow? Annu Rev Neurosci 2007, 30:153–179.CrossRefPubMed Vargas ME, Barres BA: Why is Wallerian degeneration in the CNS so slow? Annu Rev Neurosci 2007, 30:153–179.CrossRefPubMed
70.
go back to reference Feng JM, Fernandes AO, Campagnoni CW, Hu YH, Campagnoni AT: The golli-myelin basic protein negatively regulates signal transduction in T lymphocytes. J Neuroimmunol 2004, 152:57–66.CrossRefPubMed Feng JM, Fernandes AO, Campagnoni CW, Hu YH, Campagnoni AT: The golli-myelin basic protein negatively regulates signal transduction in T lymphocytes. J Neuroimmunol 2004, 152:57–66.CrossRefPubMed
71.
go back to reference Paez PM, Spreuer V, Handley V, Feng JM, Campagnoni C, Campagnoni AT: Increased expression of golli myelin basic proteins enhances calcium influx into oligodendroglial cells. J Neurosci 2007, 27:12690–12699.CrossRefPubMed Paez PM, Spreuer V, Handley V, Feng JM, Campagnoni C, Campagnoni AT: Increased expression of golli myelin basic proteins enhances calcium influx into oligodendroglial cells. J Neurosci 2007, 27:12690–12699.CrossRefPubMed
72.
go back to reference Smith GS, Paez PM, Spreuer V, Campagnoni CW, Boggs JM, Campagnoni AT, Harauz G: Classical 18.5-and 21.5-kDa isoforms of myelin basic protein inhibit calcium influx into oligodendroglial cells, in contrast to golli isoforms. J Neurosci Res 2011, 89:467–480.CrossRefPubMed Smith GS, Paez PM, Spreuer V, Campagnoni CW, Boggs JM, Campagnoni AT, Harauz G: Classical 18.5-and 21.5-kDa isoforms of myelin basic protein inhibit calcium influx into oligodendroglial cells, in contrast to golli isoforms. J Neurosci Res 2011, 89:467–480.CrossRefPubMed
73.
go back to reference Yaksh TL: Calcium channels as therapeutic targets in neuropathic pain. J Pain 2006, Suppl 1:S13–30.CrossRef Yaksh TL: Calcium channels as therapeutic targets in neuropathic pain. J Pain 2006, Suppl 1:S13–30.CrossRef
74.
go back to reference Fernandez-Valle C, Bunge RP, Bunge MB: Schwann cells degrade myelin and proliferate in the absence of macrophages: evidence from in vitro studies of Wallerian degeneration. J Neurocytol 1995, 24:667–679.CrossRefPubMed Fernandez-Valle C, Bunge RP, Bunge MB: Schwann cells degrade myelin and proliferate in the absence of macrophages: evidence from in vitro studies of Wallerian degeneration. J Neurocytol 1995, 24:667–679.CrossRefPubMed
75.
76.
go back to reference Stoll G, Griffin JW, Li CY, Trapp BD: Wallerian degeneration in the peripheral nervous system: participation of both Schwann cells and macrophages in myelin degradation. J Neurocytol 1989, 18:671–683.CrossRefPubMed Stoll G, Griffin JW, Li CY, Trapp BD: Wallerian degeneration in the peripheral nervous system: participation of both Schwann cells and macrophages in myelin degradation. J Neurocytol 1989, 18:671–683.CrossRefPubMed
77.
go back to reference Wekerle H, Schwab M, Linington C, Meyermann R: Antigen presentation in the peripheral nervous system: Schwann cells present endogenous myelin autoantigens to lymphocytes. Eur J Immunol 1986, 16:1551–1557.CrossRefPubMed Wekerle H, Schwab M, Linington C, Meyermann R: Antigen presentation in the peripheral nervous system: Schwann cells present endogenous myelin autoantigens to lymphocytes. Eur J Immunol 1986, 16:1551–1557.CrossRefPubMed
78.
go back to reference Lilje O: The processing and presentation of endogenous and exogenous antigen by Schwann cells in vitro. Cell Mol Life Sci 2002, 59:2191–2198.CrossRefPubMed Lilje O: The processing and presentation of endogenous and exogenous antigen by Schwann cells in vitro. Cell Mol Life Sci 2002, 59:2191–2198.CrossRefPubMed
79.
go back to reference Shir Y, Seltzer Z: A-fibers mediate mechanical hyperesthesia and allodynia and C-fibers mediate thermal hyperalgesia in a new model of causalgiform pain disorders in rats. Neurosci Lett 1990, 115:62–67.CrossRefPubMed Shir Y, Seltzer Z: A-fibers mediate mechanical hyperesthesia and allodynia and C-fibers mediate thermal hyperalgesia in a new model of causalgiform pain disorders in rats. Neurosci Lett 1990, 115:62–67.CrossRefPubMed
80.
go back to reference Ossipov MH, Bian D, Malan TP, Lai J, Porreca F: Lack of involvement of capsaicin-sensitive primary afferents in nerve-ligation injury induced tactile allodynia in rats. Pain 1999, 79:127–133.CrossRefPubMed Ossipov MH, Bian D, Malan TP, Lai J, Porreca F: Lack of involvement of capsaicin-sensitive primary afferents in nerve-ligation injury induced tactile allodynia in rats. Pain 1999, 79:127–133.CrossRefPubMed
81.
go back to reference Cheng C, Zochodne DW: In vivo proliferation, migration and phenotypic changes of Schwann cells in the presence of myelinated fibers. Neuroscience 2002, 115:321–329.CrossRefPubMed Cheng C, Zochodne DW: In vivo proliferation, migration and phenotypic changes of Schwann cells in the presence of myelinated fibers. Neuroscience 2002, 115:321–329.CrossRefPubMed
82.
go back to reference Solaro C, Messmer Uccelli M: Pharmacological management of pain in patients with multiple sclerosis. Drugs 2010, 70:1245–1254.PubMed Solaro C, Messmer Uccelli M: Pharmacological management of pain in patients with multiple sclerosis. Drugs 2010, 70:1245–1254.PubMed
Metadata
Title
Immunodominant fragments of myelin basic protein initiate T cell-dependent pain
Authors
Huaqing Liu
Sergey A Shiryaev
Andrei V Chernov
Youngsoon Kim
Igor Shubayev
Albert G Remacle
Svetlana Baranovskaya
Vladislav S Golubkov
Alex Y Strongin
Veronica I Shubayev
Publication date
01-12-2012
Publisher
BioMed Central
Published in
Journal of Neuroinflammation / Issue 1/2012
Electronic ISSN: 1742-2094
DOI
https://doi.org/10.1186/1742-2094-9-119

Other articles of this Issue 1/2012

Journal of Neuroinflammation 1/2012 Go to the issue