Major vault protein

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MVP is thought to be identical to the human lung resistance protein (LRP) that is overexpressed in multiple chemotherapy resistance models [31]. Though MVP is also overexpressed in drug resistant human cancer cells, its role in drug resistance has some contradictory observations: While on the one hand knockdown of MVP by siRNA has led to accumulation of drugs like doxorubicin, MVP(-/-) mice did not exhibited any hypersensitivity to drugs [79].
MVP is thought to be identical to the human lung resistance protein (LRP) that is overexpressed in multiple chemotherapy resistance models [31]. Though MVP is also overexpressed in drug resistant human cancer cells, its role in drug resistance has some contradictory observations: While on the one hand knockdown of MVP by siRNA has led to accumulation of drugs like doxorubicin, MVP(-/-) mice did not exhibited any hypersensitivity to drugs [79].
===MVP and apoptosis===
===MVP and apoptosis===
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MVP was found to enhance the expression of the anti-apoptotic protein bcl-2 in senescent human fibroblasts [38 PBD]. By binding to COP1, which is an E3 ligase, MVP forms an interaction which is essential for the degradation of c-June. This degradation is important in senescent human fibroblasts regarding the modulation of the anti-apoptotic protein bcl-2, and it is reduced when MVP is subjected to UV light which causes it to be tyrosine-phosphorylated.
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MVP was found to enhance the expression of the anti-apoptotic protein bcl-2 in senescent human fibroblasts [38]. By binding to COP1, which is an E3 ligase, MVP forms an interaction which is essential for the degradation of c-June. This degradation is important in senescent human fibroblasts regarding the modulation of the anti-apoptotic protein bcl-2, and it is reduced when MVP is subjected to UV light which causes it to be tyrosine-phosphorylated.
===MVP and vaults in signal regulation and transport platforms===
===MVP and vaults in signal regulation and transport platforms===
Though the inner cavity of the vault particle created by MVP was reported to accommodate an unknown inner mass [8], and though vaults have known qualities like rapid movement to lipid rafts, unique subcellular localization [99,113,114,115]and in vitro and clinical correlation with drug resistance [34] (that led some to hypothesize that MVP is a promiscuous transport vehicle), no consensus has been reached regarding MVP’s role in intracellular transport. Still, there are some known relations between MVP and signal transduction proteins:
Though the inner cavity of the vault particle created by MVP was reported to accommodate an unknown inner mass [8], and though vaults have known qualities like rapid movement to lipid rafts, unique subcellular localization [99,113,114,115]and in vitro and clinical correlation with drug resistance [34] (that led some to hypothesize that MVP is a promiscuous transport vehicle), no consensus has been reached regarding MVP’s role in intracellular transport. Still, there are some known relations between MVP and signal transduction proteins:
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== Structural highlights ==
== Structural highlights ==
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MVP is highly conserved in evolution and can create the entire outer shell of the vault barrel structure, which is comprised of two identical halves. The outer shell is a closed, smooth surface without any large gaps or windows. When considering the individual MVP within a vault particle, their N-terminus ( residues 113–620) forms the waist of the particle while their C-terminus (residues 621-893) builds the cap and the cap/barrel junction[26]. This leads to the current belief that the N-terminus accounts for the non-covalent interface between the identical particle halves[9]. In addition, each MVP represents a unique 100-110 kDa that does not share a homology with other proteins, yet exhibits a high degree of conservation [8,9,20,22,23]- around 90% within mammals [14,16].
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MVP is highly conserved in evolution and can create the entire outer shell of the vault barrel structure, which is comprised of two identical halves. The outer shell is a closed, smooth surface without any large gaps or windows. When considering the individual MVP within a vault particle, their <scene name='78/783129/N-terminus/1'>N-terminus ( residues 113–620)</scene> forms the waist of the particle while their <scene name='78/783129/C-terminus/2'>C-terminus (residues 621-893)</scene> builds the cap and the cap/barrel junction[26]. This leads to the current belief that the N-terminus accounts for the non-covalent interactions between the identical particle halves[9]. In addition, each MVP represents a unique structure that does not share a homology with other proteins, yet exhibits a high degree of conservation [8,9,20,22,23]- around 90% within mammals [14,16].
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There are several domains within MVP, among the most important is the highly conserved α- helical domain near the C-terminus that functions as a coiled coil which mediates an interaction between different MVPs and subsequently vault formation. The N-terminal of MVP was reported to bind Ca2+ [+PDB], but while it has been speculated that MVP contains at least 2 Ca2+-binding EF hands in positions 131–143[28], substructure determinations by NMR could not confirm these EF hands and thus an alternative Ca2+ mechanism was suggested which included coordination by large number of acidic residues in the long β1/β2 and β2/β3 loops of multiple MVP domains [10 find PBD], in a way similar to that which is found in integrins(figure x).
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There are several domains within MVP, among the most important is the highly conserved<scene name='78/783129/C-terminus/2'> α- helical domain</scene> near the C-terminus that functions as a coiled coil which mediates an interaction between different MVPs and subsequently vault formation. The N-terminal of MVP was reported to bind Ca2+ [+PDB], but while it has been speculated that MVP contains at least 2 Ca2+-binding EF hands in<scene name='78/783129/Ef-hand_location/1'> positions 131–143</scene>[28], substructure determinations by NMR could not confirm these EF hands and thus an alternative Ca2+ mechanism was suggested which included coordination by large number of acidic residues in the long β1/β2 and β2/β3 loops of multiple MVP domains [10 find PBD], in a way similar to that which is found in integrins(figure x).
==The MVP gene, transcription, translation and post translation modifications==
==The MVP gene, transcription, translation and post translation modifications==

Revision as of 15:10, 16 March 2018

The Major Vault Protein

The outer shell of the Vault particle

Drag the structure with the mouse to rotate

References

  1. Hanson, R. M., Prilusky, J., Renjian, Z., Nakane, T. and Sussman, J. L. (2013), JSmol and the Next-Generation Web-Based Representation of 3D Molecular Structure as Applied to Proteopedia. Isr. J. Chem., 53:207-216. doi:http://dx.doi.org/10.1002/ijch.201300024
  2. Herraez A. Biomolecules in the computer: Jmol to the rescue. Biochem Mol Biol Educ. 2006 Jul;34(4):255-61. doi: 10.1002/bmb.2006.494034042644. PMID:21638687 doi:10.1002/bmb.2006.494034042644

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Idan Ben-Nachum, Michal Harel

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