Multiple sclerosis: Difference between revisions
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<scene name='Multiple_sclerosis/Interferon_beta/9'>Interferon-β</scene> 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.<ref name="Biochem Text">Voet, D., Voet, J.G., and C. Pratt. ''Fundamentals of Biochemistry'' 3rd Edition. Hoboken, NJ: John Wiley and Sons, 2008. Print.</ref> | <scene name='Multiple_sclerosis/Interferon_beta/9'>Interferon-β</scene> 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.<ref name="Biochem Text">Voet, D., Voet, J.G., and C. Pratt. ''Fundamentals of Biochemistry'' 3rd Edition. Hoboken, NJ: John Wiley and Sons, 2008. Print.</ref> | ||
Interferon-β is a relatively simple biological response modifier, with several <scene name='Multiple_sclerosis/Interferon_beta_labeled/1'>identifiable regions</scene>. It consists of five <scene name='Multiple_sclerosis/Ifnb_helices_in_color/1'>alpha helices</scene>, as well as multiple interconnecting <scene name='Multiple_sclerosis/Interferon_beta_loops/2'>loop regions</scene>. Helices A, B and D run <scene name='Multiple_sclerosis/Ifnb_parallel_abd/3'>parallel to one another</scene>, and helices C and E run <scene name='Multiple_sclerosis/Ifnb_antiparallel/ | Interferon-β is a relatively simple biological response modifier, with several <scene name='Multiple_sclerosis/Interferon_beta_labeled/1'>identifiable regions</scene>. It consists of five <scene name='Multiple_sclerosis/Ifnb_helices_in_color/1'>alpha helices</scene>, as well as multiple interconnecting <scene name='Multiple_sclerosis/Interferon_beta_loops/2'>loop regions</scene>. Helices A, B and D run <scene name='Multiple_sclerosis/Ifnb_parallel_abd/3'>parallel to one another</scene>, and helices C and E run <scene name='Multiple_sclerosis/Ifnb_antiparallel/2'>anti-parallel</scene> to the other three helices, but <scene name='Multiple_sclerosis/Ifnb_antiparallel_ce/3'>parallel</scene> 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.<ref name="Structure Ifn B">PMID:20616576</ref><ref name="UniProt">http://www.uniprot.org/uniprot/P00784</ref> | ||
===Interferon Alpha, Interferon Beta, and Interferon Receptors 1 & 2 === | ===Interferon Alpha, Interferon Beta, and Interferon Receptors 1 & 2 === | ||
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Interferon alpha has a very similar structure to interferon beta. It, too, has many <scene name='Multiple_sclerosis/Ifna_labeled/1'>identifiable regions</scene> with two <scene name='Multiple_sclerosis/Ifna_disulfide_bonds/1'>disulfide bonds</scene>: one between the <scene name='Multiple_sclerosis/Ifna_disulfide_bondsn-e/1'>N-terminus and Helix E</scene>, and the other between <scene name='Multiple_sclerosis/Ifna_disulfide_bonds_ab-g/1'>Loop AB and Helix G</scene>. It has seven <scene name='Multiple_sclerosis/Ifna_alphahelices/1'>alpha helices</scene>, as compared to the five of interferon-β, and therefore has several more <scene name='Multiple_sclerosis/Ifna_loops_regions/1'>loop regions.</scene> The helices A, C, and F run <scene name='Multiple_sclerosis/Ifna_parallelacf/2'>parallel</scene> to one another, and <scene name='Multiple_sclerosis/Ifna_antiparallel/1'>anti-parallel</scene> to B, E, and G which run <scene name='Multiple_sclerosis/Ifna_parallel_beg/2'>parallel</scene> to each other. | Interferon alpha has a very similar structure to interferon beta. It, too, has many <scene name='Multiple_sclerosis/Ifna_labeled/1'>identifiable regions</scene> with two <scene name='Multiple_sclerosis/Ifna_disulfide_bonds/1'>disulfide bonds</scene>: one between the <scene name='Multiple_sclerosis/Ifna_disulfide_bondsn-e/1'>N-terminus and Helix E</scene>, and the other between <scene name='Multiple_sclerosis/Ifna_disulfide_bonds_ab-g/1'>Loop AB and Helix G</scene>. It has seven <scene name='Multiple_sclerosis/Ifna_alphahelices/1'>alpha helices</scene>, as compared to the five of interferon-β, and therefore has several more <scene name='Multiple_sclerosis/Ifna_loops_regions/1'>loop regions.</scene> The helices A, C, and F run <scene name='Multiple_sclerosis/Ifna_parallelacf/2'>parallel</scene> to one another, and <scene name='Multiple_sclerosis/Ifna_antiparallel/1'>anti-parallel</scene> to B, E, and G which run <scene name='Multiple_sclerosis/Ifna_parallel_beg/2'>parallel</scene> to each other. | ||
<scene name='Multiple_sclerosis/Ifna_notparalleltoanyoned/1'>Helix D</scene> 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. | |||
Revision as of 02:44, 22 April 2012
Please have patience as I edit this page over the next week! Thank you!--Kirsten Eldredge 03:16, 22 April 2012 (IDT)--Kirsten Eldredge 04:06, 21 April 2012 (IDT)
Multiple sclerosis (MS) - an autoimmune disease that effects every patient differently based on the neurologic lesions inflicted throughout the body. While some can go through their lives with relatively mild symptoms and short periods of relapse, others can become incapacitated within years or even months. Defined by Nylander and Hafler, MS is a "multifocal demyelinating disease with progressive neurodegeneration caused by an autoimmune response to self-antigens in a genetically susceptible individual."[1] Inflammation is the primary cause of damage in MS, and though the effects of the disease are well known, and various treatments exist for the disease, the exact identity of an antigen or infectious agent that causes the initiation of a myriad of symptoms is unknown.[2]
There are three ways in which MS is categorized: relapsing-remitting (RRMS), secondary progressive (SPMS), and primary progressive (PPMS). In RRMS, the patient experiences periods of time in which the symptoms increase considerably, although the neurological function of the patient usually returns to normal after the episode. Those with SPMS have symptoms like RRMS, but do not return to normal neurological function after the episode, rather they sustain the neurological damage (such as permanently losing the use of an arm). In PPMS, the patient has an initial episode that never ends. That is, once the symptoms begin, there is no remission in the neurological degradation. A constant autoimmune attack on the patient's body causes increasingly severe symptoms, which can sometimes lead to death.
Taking a biochemical look at the immunopathology and some of the various treatments that exist for MS helps in the understanding that MS is no longer a diagnosis which is hopeless, but is in fact full of hopeful and helpful treatments.
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References
- ↑ Nylander A, Hafler DA. Multiple sclerosis. J Clin Invest. 2012 Apr 2;122(4):1180-8. doi: 10.1172/JCI58649. Epub 2012 Apr 2. PMID:22466660 doi:10.1172/JCI58649
- ↑ Loma I, Heyman R. Multiple sclerosis: pathogenesis and treatment. Curr Neuropharmacol. 2011 Sep;9(3):409-16. PMID:22379455 doi:10.2174/157015911796557911
Relevant 3D Structures
Interferon Beta
2ra4 - Homo sapiens
Interferon Receptors
1tcr, 1bx2, 2xpg, 3csp, 2y1z, Interferons, 2kz1, 2lag, 3s8w, 3s9d - Homo sapiens