Immunopathology
Classical MS pathology has been characterized by white matter plaques which are typically located in the subcortical or periventricular white matter, optic nerve sheaths, brain stem, and spinal cord. The lesions that occur in these regions are generally identified by perivascular infiltrates that contain clonally expanded CD8+ T cells (two ectodomains shown, 3qzw), as well as a smaller amount of CD4+ T cells (3t0e), monocytes (2ra4), and rare B cells (4e96) and plasma cells (2wq9). Pathologists disagree on whether there are different mechanisms for the inflammatory and degenerative components of MS, especially given that older patients have generally progressed further along with their degeneration. There are many proposed degeneration mechanisms including Wallerian degeneration secondary to demyelination, and axonal transection, damage from reactive oxygen species and nitric oxide, or energy failure from mitochondrial dysfunction.[1][2][3][4] Many antigens have been investigated to determine whether they are the cause of T cell autoreactivity (extracellular domain shown, 1tcr) in the hopes to determine a single culprit including: myelin basic protein (MBP, 1bx2) with a peptide shown; proteolipid protein (PLP, 2xpg) with peptide shown; oligodendrocyte glycoprotein (MOG, 3csp); oligodendroglia-specific enzyme transaldolase, and heat shock protein alphaB crystallin (2y1z).[1]
Interesting discoveries have been made on possible inhibitors of myelin repair functions within the body, with an obvious application to MS treatment. The structure of the lingo-1 ectodomain is a module implicated in central nervous system repair inhibition. The interactions of lingo-1 with receptors lead to neurite and axonal collapse. Lingo- 1 also regulates oligodendrocyte differentiation and myelination, thus leading to the suggestion that pharmacological modulation of Lingo-1 function could be a novel approach for nerve repair and remyelination therapies.[5]
Interferon-β
Interferon-β is a protein growth factor that stimulates an antiviral defense. Its encoding gene is one of only two known vertebrate structural genes that lacks introns.[6]
Interferon-β is a relatively simple biological response modifier, with several identifiable regions. It consists of five alpha helices, as well as multiple interconnecting loop regions. Helices A, B and D run parallel to one another, and helices C and E run anti-parallel to the other three helices, but parallel to one another. Helix A consists of residues 6-23; Helix B consists of residues 49-65; Helix C consists of residues 77-91; Helix D consists of residues 112-131; and Helix E consists of residues 135-155.[7][8]
Interferon Alpha, Interferon Beta, and Interferon Receptors 1 & 2
Since a PDB reference does not exist for interferon beta interacting with interferon receptors 1 or 2, and a multitude of files exist on Interferon-α interacting with the receptor, a comparison to interferon-α will be made prior to demonstrating the types of bonding that occur between the interferon and its receptor. To see more information regarding interferons, please visit the Interferons site.
Interferon alpha has a 31% sequence homology to interferon beta. It, too, has many identifiable regions with two disulfide bonds: one between the N-terminus and Helix E, and the other between Loop AB and Helix G. It has seven alpha helices, as compared to the five of interferon-β, and therefore has several more loop regions. The helices A, C, and F run parallel to one another, and anti-parallel to B, E, and G which run parallel to each other.
Helix D does not run parallel or anti-parallel to either set, but rather runs at a 45-90 degree angle to them. Helix A consists of residues 10-12; Helix B of 40-43; Helix C of 53-68; Helix D of 70-75; Helix E of 78-100; Helix F of 109-132; and Helix G of 137-158.
Interferons -α and -β interact with a receptor at the cell surface.[9] This receptor has three domains: an
N-domain, with two disulfide bonds, a C-domain, with one disulfide bond, and a linker region. The termini regions of the receptor have no secondary structure, allowing for some serious flexibility, leading to eight clashes amongst the domains.[10]
Interferon-α binds to an interferon receptor mainly with helices C and G. There are many residues within 4 angstroms of one another. These residues could form many different types of bonds, illustrated in white dotted lines. Given that interferon-α does not undergo many structural changes upon binding to interferon receptor II, Quadt-Akabayov et al. have concluded that the binding mechanism is similar to that of a lock and key. While interferon-α and -β bind to the same receptors as one another, the affinities with which they bind to IFNAR1 and IFNAR2 differ. While the binding to IFNAR2 is stronger for both in comparison to IFNAR1, interferon-β has a much stronger affinity for IFNAR1 than interferon-α.[11]
Interferon-β and MS
Interferon-β was first approved for the treatment of MS in 1993. The drug has shown to be extremely effective on RRMS and SPMS, though more so on RRMS, with a reduction in relapse rate, decrease in disability progression, and MRI evidence of disease activity. While the exact mechanism of effectiveness is not known, it is quite clear that when administered, interferon-β is extremely effective at slowing the progression of the two less severe types of MS. Two types of interferon-βs exist on the market: interferon-β 1a and interferon-β 1b. Interferon-β 1a products Avonex and Rebif are recombinant peptides that are produced in Chinese hamster ovary cells and are identical to natural human Interferon-β. Avonex is injected intramuscularly once a week, while Rebif is injected subcutaneously three times a week. Interferon-β 1b products Betaseron and Extavia are produced recombinantly in Escherichia coli bacteria and administered subcutaneous injection every other day. The sequence is only one residue off from that of human Interferon-β. Interferon-β 1b is titrated to a target dose over 6 weeks. All four of these major market drugs bind to the same human interferon receptor.[12]
Other Treatments
Copaxone
- ↑ 1.0 1.1 Cite error: Invalid
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- ↑ Dziedzic T, Metz I, Dallenga T, Konig FB, Muller S, Stadelmann C, Bruck W. Wallerian degeneration: a major component of early axonal pathology in multiple sclerosis. Brain Pathol. 2010 Sep;20(5):976-85. Epub 2010 Apr 14. PMID:20477831 doi:10.1111/j.1750-3639.2010.00401.x
- ↑ Smith KJ, Lassmann H. The role of nitric oxide in multiple sclerosis. Lancet Neurol. 2002 Aug;1(4):232-41. PMID:12849456
- ↑ Campbell GR, Ziabreva I, Reeve AK, Krishnan KJ, Reynolds R, Howell O, Lassmann H, Turnbull DM, Mahad DJ. Mitochondrial DNA deletions and neurodegeneration in multiple sclerosis. Ann Neurol. 2011 Mar;69(3):481-92. doi: 10.1002/ana.22109. Epub 2010 Nov 8. PMID:21446022 doi:10.1002/ana.22109
- ↑ Mosyak L, Wood A, Dwyer B, Buddha M, Johnson M, Aulabaugh A, Zhong X, Presman E, Benard S, Kelleher K, Wilhelm J, Stahl ML, Kriz R, Gao Y, Cao Z, Ling HP, Pangalos MN, Walsh FS, Somers WS. The structure of the Lingo-1 ectodomain, a module implicated in central nervous system repair inhibition. J Biol Chem. 2006 Nov 24;281(47):36378-90. Epub 2006 Sep 27. PMID:17005555 doi:M607314200
- ↑ Voet, D., Voet, J.G., and C. Pratt. Fundamentals of Biochemistry 3rd Edition. Hoboken, NJ: John Wiley and Sons, 2008. Print.
- ↑ Kudo M. Management of hepatocellular carcinoma: from prevention to molecular targeted therapy. Oncology. 2010 Jul;78 Suppl 1:1-6. Epub 2010 Jul 8. PMID:20616576 doi:10.1159/000315222
- ↑ https://www.uniprot.org/uniprot/P00784
- ↑ [1] Samuel, C.E. "Interferons, Interferon Receptors, Signal Transducer and Transcriptional Activators, and Inteferon Regulatory Factors." J Biol Chem 2007 282: 20045-20046. First Published on May 14, 2007, doi:10.1074/jbc.R700025200
- ↑ Chill JH, Quadt SR, Levy R, Schreiber G, Anglister J. The human type I interferon receptor: NMR structure reveals the molecular basis of ligand binding. Structure. 2003 Jul;11(7):791-802. PMID:12842042
- ↑ Quadt-Akabayov SR, Chill JH, Levy R, Kessler N, Anglister J. Determination of the human type I interferon receptor binding site on human interferon-alpha2 by cross saturation and an NMR-based model of the complex. Protein Sci. 2006 Nov;15(11):2656-68. Epub 2006 Sep 25. PMID:17001036 doi:10.1110/ps.062283006
- ↑ 'MS:Pathogenesis and Treatment'