Sandbox Reserved 1110
From Proteopedia
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Since the X-ray crystal structure of NGF has been known since the ‘90s, the general structure of 5LSD can be described by relatable structures such as a '''β-sandwich fold''', with '''four loop regions''' (I,II,III and V) which are the center of interactions with ligands but which are inactive in the case of 5LSD. | Since the X-ray crystal structure of NGF has been known since the ‘90s, the general structure of 5LSD can be described by relatable structures such as a '''β-sandwich fold''', with '''four loop regions''' (I,II,III and V) which are the center of interactions with ligands but which are inactive in the case of 5LSD. | ||
| - | In this PDB representation, there are two 118 amino acids chains, <scene name='82/829363/Chain_a/3'>chain A</scene> and chain B, which are similar to the residues NGF ones, except for these fragments, proper to 5LSD. [https://www.ncbi.nlm.nih.gov/Structure/pdb/5LSD] | + | In this PDB representation, there are two 118 amino acids chains, <scene name='82/829363/Chain_a/3'>chain A</scene> and <scene name='82/829363/Chain_b/1'>chain B</scene>, which are similar to the residues NGF ones, except for these fragments, proper to 5LSD. [https://www.ncbi.nlm.nih.gov/Structure/pdb/5LSD] |
In the absence of partners, the NGF N-terminus has a strong tendency to fold into a '''helix'''. This challenges the current view that this region is unstructured. Experiments have shown that this N-terminus plays an important role in many processes, and its absence triggers a loss of affinity with the receptor '''TrkA'''. The loops, especially II and V, and the C-terminus are relatively more flexible than the more rigid β-sheet regions (showing hetNOE values lower than the average of 0.7). However, the loop variations are relatively small compared to the flexibility of the N- and C-termini, which indicates that the loops are plastic but not flexible. <ref>PMID: 28083536</ref> | In the absence of partners, the NGF N-terminus has a strong tendency to fold into a '''helix'''. This challenges the current view that this region is unstructured. Experiments have shown that this N-terminus plays an important role in many processes, and its absence triggers a loss of affinity with the receptor '''TrkA'''. The loops, especially II and V, and the C-terminus are relatively more flexible than the more rigid β-sheet regions (showing hetNOE values lower than the average of 0.7). However, the loop variations are relatively small compared to the flexibility of the N- and C-termini, which indicates that the loops are plastic but not flexible. <ref>PMID: 28083536</ref> | ||
Revision as of 12:21, 17 January 2020
| This Sandbox is Reserved from 25/11/2019, through 30/9/2020 for use in the course "Structural Biology" taught by Bruno Kieffer at the University of Strasbourg, ESBS. This reservation includes Sandbox Reserved 1091 through Sandbox Reserved 1115. |
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5LSD
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References
- ↑ Paoletti F, de Chiara C, Kelly G, Covaceuszach S, Malerba F, Yan R, Lamba D, Cattaneo A, Pastore A. Conformational Rigidity within Plasticity Promotes Differential Target Recognition of Nerve Growth Factor. Front Mol Biosci. 2016 Dec 26;3:83. doi: 10.3389/fmolb.2016.00083. eCollection, 2016. PMID:28083536 doi:http://dx.doi.org/10.3389/fmolb.2016.00083
- ↑ Paoletti F, de Chiara C, Kelly G, Covaceuszach S, Malerba F, Yan R, Lamba D, Cattaneo A, Pastore A. Conformational Rigidity within Plasticity Promotes Differential Target Recognition of Nerve Growth Factor. Front Mol Biosci. 2016 Dec 26;3:83. doi: 10.3389/fmolb.2016.00083. eCollection, 2016. PMID:28083536 doi:http://dx.doi.org/10.3389/fmolb.2016.00083
- ↑ Tiveron C, Fasulo L, Capsoni S, Malerba F, Marinelli S, Paoletti F, Piccinin S, Scardigli R, Amato G, Brandi R, Capelli P, D'Aguanno S, Florenzano F, La Regina F, Lecci A, Manca A, Meli G, Pistillo L, Berretta N, Nistico R, Pavone F, Cattaneo A. ProNGF\NGF imbalance triggers learning and memory deficits, neurodegeneration and spontaneous epileptic-like discharges in transgenic mice. Cell Death Differ. 2013 Aug;20(8):1017-30. doi: 10.1038/cdd.2013.22. Epub 2013, Mar 29. PMID:23538417 doi:http://dx.doi.org/10.1038/cdd.2013.22
- ↑ Bannwarth B, Kostine M. Targeting nerve growth factor (NGF) for pain management: what does the future hold for NGF antagonists? Drugs. 2014 Apr;74(6):619-26. doi: 10.1007/s40265-014-0208-6. PMID:24691709 doi:http://dx.doi.org/10.1007/s40265-014-0208-6
- ↑ Bannwarth B, Kostine M. Targeting nerve growth factor (NGF) for pain management: what does the future hold for NGF antagonists? Drugs. 2014 Apr;74(6):619-26. doi: 10.1007/s40265-014-0208-6. PMID:24691709 doi:http://dx.doi.org/10.1007/s40265-014-0208-6
