Poly(A)-binding protein: Difference between revisions
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{{Short description|RNA binding protein}} |
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[[File:Poly(A)-binding protein.png|thumb|Poly(A) RNA binding protein PABP (PDB 1CVJ)]] |
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'''Poly(A)-binding protein''' ('''PAB''' or '''PABP''')<ref name="pmid15630022">{{cite journal |author=Kahvejian A, Svitkin YV, Sukarieh R, M'Boutchou MN, Sonenberg N |title=Mammalian poly(A)-binding protein is a eukaryotic translation initiation factor, which acts via multiple mechanisms |journal=Genes Dev. |volume=19 |issue=1 |pages=104–13 |date=January 2005 |pmid=15630022 |pmc=540229 |doi=10.1101/gad.1262905 |url=http://www.genesdev.org/cgi/pmidlookup?view=long&pmid=15630022}}</ref> is a [[RNA-binding protein]] which binds to the [[poly(A) tail]] of [[mRNA]].<ref>{{MeshName|Poly(A)-Binding+Proteins}}</ref> The poly(A) tail is located on the 3' end of mRNA. The nuclear [[isoforms]] selectively binds to around 50 nucleotides and stimulates the activity of [[Polyadenylate polymerase]]. |
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'''Poly(A)-binding protein''' ('''PAB''' or '''PABP''')<ref name="pmid15630022">{{cite journal | vauthors = Kahvejian A, Svitkin YV, Sukarieh R, M'Boutchou MN, Sonenberg N | title = Mammalian poly(A)-binding protein is a eukaryotic translation initiation factor, which acts via multiple mechanisms | journal = Genes & Development | volume = 19 | issue = 1 | pages = 104–13 | date = January 2005 | pmid = 15630022 | pmc = 540229 | doi = 10.1101/gad.1262905 }}</ref> is an [[RNA-binding protein]] which triggers the binding of eukaryotic initiation factor 4 complex (eIF4G) directly to the [[poly(A) tail]] of mRNA which is 200-250 nucleotides long.<ref>{{MeshName|Poly(A)-Binding+Proteins}}</ref> The poly(A) tail is located on the 3' end of mRNA and was discovered by [[Mary Edmonds]],<ref>{{cite journal | vauthors = Edmonds M, Vaughan MH, Nakazato H | title = Polyadenylic acid sequences in the heterogeneous nuclear RNA and rapidly-labeled polyribosomal RNA of HeLa cells: possible evidence for a precursor relationship | journal = Proceedings of the National Academy of Sciences of the United States of America | volume = 68 | issue = 6 | pages = 1336–40 | date = June 1971 | pmid = 5288383 | pmc = 389184 | doi = 10.1073/pnas.68.6.1336 | author-link = Mary Edmonds }}</ref> who also characterized the poly-A polymerase enzyme that generates the poly(a) tail.<ref>{{cite journal | vauthors = Winters MA, Edmonds M | title = A poly(A) polymerase from calf thymus. Purification and properities of the enzyme | journal = The Journal of Biological Chemistry | volume = 248 | issue = 13 | pages = 4756–62 | date = July 1973 | pmid = 4718742 | doi = 10.1016/s0021-9258(19)43729-0 | author-link = Mary Edmonds | doi-access = free }}</ref> The binding protein is also involved in [[Precursor mRNA|mRNA precursors]] by helping polyadenylate polymerase add the poly(A) nucleotide tail to the pre-mRNA before [[Translation (biology)|translation]].<ref>{{cite web|title=UniProtKB - Q86U42 (PABP2_HUMAN)|url=https://www.uniprot.org/uniprot/Q86U42|website=uniprot.org|access-date=17 November 2015}}</ref> The nuclear [[isoforms|isoform]] selectively binds to around 50 nucleotides and stimulates the activity of [[polyadenylate polymerase]] by increasing its affinity towards [[RNA]]. Poly(A)-binding protein is also present during stages of mRNA metabolism including [[nonsense-mediated decay]] and nucleocytoplasmic trafficking. The poly(A)-binding protein may also protect the tail from degradation and regulate mRNA production. Without these two proteins in-tandem, then the poly(A) tail would not be added and the RNA would degrade quickly.<ref>{{cite book| vauthors = Voet D, Voet J |title=Biochemistry |publisher=Wiley |page=1304 |edition=4th}}</ref> |
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== Structure == |
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[[File:PABP Motifs.jpg|thumb|RRM 1 and 2 connected by a short linker showing binding to the polyadenylate RNA.]] |
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Cytosolic poly-A binding protein (PABPC) is made up of four [[RNA recognition motif]]s (RRMs) and a C-terminal region known as the PABC domain. RRM is the most common motifs for RNA recognition and is usually made up of 90-100 [[amino acids]]. Previous solution [[NMR]] and [[X-ray crystallography]] studies have shown that RRMs are [[protein domain|globular domains]], each composed of 4 anti-parallel [[beta sheet|β sheets]] that are backed by 2 [[alpha helix|α-helices]]. The central two β-strands, connected by a short linker, of each RRM forms a trough-like surface that is thought to be responsible for binding to the poly(A) [[oligonucleotide]]s. The polyadenylate RNA adopts an extended conformation running the length of the molecular trough. [[Adenine]] recognition is primarily mediated by contacts with [[Conserved sequence|conserved residues]] found in the [[RNA recognition motif|RNP motifs]] of the two RRMs.<ref>{{cite journal | vauthors = Deo RC, Bonanno JB, Sonenberg N, Burley SK | title = Recognition of polyadenylate RNA by the poly(A)-binding protein | journal = Cell | volume = 98 | issue = 6 | pages = 835–45 | date = September 1999 | pmid = 10499800 | doi = 10.1016/s0092-8674(00)81517-2 | doi-access = free }}</ref> In vitro studies have shown the binding affinities to be on the order of 2-7nM, while affinity for poly(U), poly(G), and poly(C) were reportedly lower or undetectable in comparison. This shows that the poly(A)-binding protein is specific to poly(A) oligonucleotides and not others.<ref>{{cite journal | vauthors = Goss DJ, Kleiman FE | title = Poly(A) binding proteins: are they all created equal? | journal = Wiley Interdisciplinary Reviews. RNA | volume = 4 | issue = 2 | pages = 167–79 | date = 2013 | pmid = 23424172 | pmc = 3580857 | doi = 10.1002/WRNA.1151 }}</ref> Since the two central β-strands are used for poly(A) oligonucleotide binding, the other face of the protein is free for protein-protein interactions. |
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The PABC domain is approximately 75 amino acids and consists of 4 or 5 α-helices depending on the organism – human PABCs have 5, while [[yeast]] has been observed to have 4. This domain does not contact RNA, and instead, it recognizes 15 residues sequences that are a part of the PABP interaction motif (PAM-2) found on such proteins as [[Eukaryotic release factors|eukaryotic translation termination factor]] (eRF3) and PABP interacting proteins 1 and 2 (PAIP 1, PAIP2). |
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The structure of human poly(A)-binding protein found in the [[Cell nucleus|nucleus]] (PABPN1) has yet to be well determined but it has been shown to contain a single RRM domain and an [[arginine]] rich [[Carboxylic acid|carboxy]] terminal domain. They are thought to be structurally and functionally different from poly-A binding proteins found in the [[cytosol]]. |
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==Expression and binding== |
==Expression and binding== |
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The expression of mammalian |
The expression of mammalian poly(A)-binding protein is regulated at the translational level by a feed-back mechanism: the mRNA encoding PABP contains in its 5' [[Untranslated Region|UTR]] an A-rich sequence which binds poly(A)-binding protein. This leads to autoregulatory repression of translation of PABP. |
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The cytosolic isoform of |
The cytosolic isoform of eukaryotic poly(A)-binding protein binds to the initiation factor [[eIF4G]] via its C-terminal domain. eIF4G is a component of the [[eIF4F]] complex, containing [[eIF4E]], another initiation factor bound to the [[5' cap]] on the 5' end of mRNA. This binding forms the characteristic loop structure of [[Eukaryotic translation|eukaryotic protein synthesis]]. Poly(A)-binding proteins in the cytosol compete for the eIF4G binding sites. This interaction enhances both the affinity of eIF4E for the cap structure and PABP1 for poly(A), effectively locking proteins onto both ends of the mRNA. As a result, this association may in part underlie the ability of PABP1 to promote small [[ribosome|ribosomal]] (40S) subunit recruitment, which is aided by the interaction between eIF4G and [[Eukaryotic initiation factor|eIF3]]. Poly(A)-binding protein has also been shown to interact with a termination factor ([[eRF3]]). The eRF3/PABP1 interaction may promote recycling of terminating ribosomes from the 3' to 5' end, facilitating multiple rounds of initiation on an mRNA. Alternatively, it may link [[Translation (biology)|translation]] to mRNA decay, as eRF3 appears to interfere with the ability of PABP1 to multimerise/form on poly(A), potentially leading to PABP1 dissociation, [[Polyadenylation|deadenylation]] and, ultimately, turnover.<ref>{{cite journal | vauthors = Gorgoni B, Gray NK | title = The roles of cytoplasmic poly(A)-binding proteins in regulating gene expression: a developmental perspective | journal = Briefings in Functional Genomics & Proteomics | volume = 3 | issue = 2 | pages = 125–41 | date = August 2004 | pmid = 15355595 | doi = 10.1093/bfgp/3.2.125 | doi-access = free }}</ref> |
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==Rotavirus NSP3== |
==Rotavirus NSP3== |
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[[ |
[[File:Rotavirus Translation.svg|thumb|Cellular vs rotavirus translation]] |
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[[Rotavirus]] [[RNA-binding protein]] [[NSP3(Rotavirus)|NSP3]] interacts with [[Eukaryotic initiation factor|eIF4GI]] and evicts the poly(A) binding protein from [[Eukaryotic initiation factor|eIF4F]]. |
[[Rotavirus]] [[RNA-binding protein]] [[NSP3(Rotavirus)|NSP3]] interacts with [[Eukaryotic initiation factor|eIF4GI]] and evicts the poly(A) binding protein from [[Eukaryotic initiation factor|eIF4F]]. NSP3A by taking the place of PABP on [[Eukaryotic initiation factor|eIF4GI]], is responsible for the shut-off of cellular protein synthesis.<ref name=pmid9755181>{{cite journal | vauthors = Piron M, Vende P, Cohen J, Poncet D | title = Rotavirus RNA-binding protein NSP3 interacts with eIF4GI and evicts the poly(A) binding protein from eIF4F | journal = The EMBO Journal | volume = 17 | issue = 19 | pages = 5811–21 | date = October 1998 | pmid = 9755181 | pmc = 1170909 | doi = 10.1093/emboj/17.19.5811 }}</ref> Rotavirus mRNAs terminate a 3’ GACC motif that is recognized by the [[viral protein]] NSP3. This is the location where NSP3 competes with poly(A)-binding protein for eIF4G binding. |
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Once rotavirus infection occurs viral GACC-tailed mRNAs are translated while the poly(A)-tailed mRNA is severely impaired. In infected cells, there have been high magnitudes of both translation induction (GACC-tailed mRNA) and reduction (poly(A)-tailed mRNA) both dependent on the rotavirus strain. These data suggest that NSP3 is a translational surrogate of the PABP-poly(A) complex; therefore, it cannot by itself be responsible for inhibiting the translation of host poly(A)-tailed mRNAs upon rotavirus infection.<ref>{{cite journal | vauthors = Gratia M, Sarot E, Vende P, Charpilienne A, Baron CH, Duarte M, Pyronnet S, Poncet D | display-authors = 6 | title = Rotavirus NSP3 Is a Translational Surrogate of the Poly(A) Binding Protein-Poly(A) Complex | journal = Journal of Virology | volume = 89 | issue = 17 | pages = 8773–82 | date = September 2015 | pmid = 26063427 | pmc = 4524085 | doi = 10.1128/JVI.01402-15 }}</ref> |
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There are several forms.<ref name="pmid20943973">{{cite journal |author=Katzenellenbogen RA, Vliet-Gregg P, Xu M, Galloway DA |title=Cytoplasmic Poly(A) Binding Proteins Regulate Telomerase Activity and Cell Growth in Human Papillomavirus Type 16 E6-Expressing Keratinocytes |journal=J. Virol. |volume=84 |issue=24 |pages=12934–44 |date=December 2010 |pmid=20943973 |doi=10.1128/JVI.01377-10 |url=http://jvi.asm.org/cgi/pmidlookup?view=long&pmid=20943973 |pmc=3004306}}</ref> These include: |
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PABP-C1 evicted from eIF4G by NSP3 accumulates in the nucleus of rotavirus-infected cells. This eviction process requires rotavirus NSP3, eIF4G, and [[Roxan (protein)|RoXaN]]. To better understand the interaction, modeling of the NSP3-RoXaN complex, demonstrates mutations in NSP3 interrupt this complex without compromising NSP3 interaction with eIF4G. The [[Nuclear localization sequence|nuclear localization]] of PABP-C1 is dependent on the capacity of NSP3 to interact with eIF4G and also requires the interaction of NSP3 with a specific region in RoXaN, the [[leucine]]- and [[aspartic acid]]-rich (LD) domain. RoXaN is identified as a cellular partner of NSP3 involved in the nucleocytoplasmic localization of PABP-C1.<ref>{{cite journal | vauthors = Harb M, Becker MM, Vitour D, Baron CH, Vende P, Brown SC, Bolte S, Arold ST, Poncet D | display-authors = 6 | title = Nuclear localization of cytoplasmic poly(A)-binding protein upon rotavirus infection involves the interaction of NSP3 with eIF4G and RoXaN | journal = Journal of Virology | volume = 82 | issue = 22 | pages = 11283–93 | date = November 2008 | pmid = 18799579 | pmc = 2573281 | doi = 10.1128/JVI.00872-08 }}</ref> |
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* ''[[PABPC1]]'', ''[[PABPC3]]'', ''[[PABPC4]]'', {{Gene|PABPC5}} |
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==Associated diseases== |
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===OPMD=== |
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[[Oculopharyngeal muscular dystrophy]] (OPMD) is a [[Genetic disorder|genetic condition]] that occurs in adulthood often after the age of 40. This disorder usually leads to weaker facial muscles oftentimes showing as progressive eyelid drooping, swallowing difficulties, and proximal limb muscle weakness such as weak leg and hip muscles. People with this disorder are often hindered to the point that they have to use a cane in order to walk.<ref>{{cite web|title=Oculopharyngeal muscular dystrophy|url=http://ghr.nlm.nih.gov/condition/oculopharyngeal-muscular-dystrophy|website=Genetics Home Reference|publisher=National Library of Medicine}}</ref> OPMD has been reported in approximately 29 countries and the number affected varies widely by specific population. The disease can be inherited as an autosomal [[Dominance (genetics)|dominant]] or [[Dominance (genetics)|recessive]] trait.<ref>{{cite web|title=Oculopharyngeal Muscular Dystrophy|url=https://rarediseases.org/rare-diseases/oculopharyngeal-muscular-dystrophy/|website=National Organization for Rare Disorders}}</ref> |
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===Mutations=== |
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[[Mutation]]s of poly(A)-binding protein nuclear 1 (PABPN1) can cause OPMD (oculopharyngeal muscular dystrophy). What makes the PABPN1 protein so different than all other genes with disease causing expanded [[Alanine|polyalanine]] tracts, is that it is not a [[transcription factor]]. Instead, PABPN1 is involved in the polyadenylation of [[Precursor mRNA|mRNA precursors]].<ref>{{cite journal| vauthors = Shoubridge C |title=Polyalanine Tract Disorders and Neurocognitive Phenotypes|journal=Madame Curie Bioscience Database|date=2000|url=https://www.ncbi.nlm.nih.gov/books/NBK51932/}}</ref> |
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Mutations in PABPN1 that cause this disorder, result when the protein has an extended polyalanine tract (12-17 alanines long vs. the expected amount of 10). The extra alanines cause PABPN1 to aggregate and form clumps within muscles because they are not able to be broken down. These clumps are believed to disrupt the normal function of [[Myocyte|muscle cells]] which eventually lead to cell death. This progressive loss of muscle cells most likely causes the weakness in muscles seen in patients with OPMD. It is still not known why this disorder only affects certain muscles like the upper leg and hip. In recent studies on OPMD in [[Drosophila]], it has been shown that the degeneration of muscles within those who are affected may not solely be due to the expanded polyalanine tract. It may actually be due to the RNA-binding domain and its function in binding.<ref>{{cite journal | vauthors = Chartier A, Benoit B, Simonelig M | title = A Drosophila model of oculopharyngeal muscular dystrophy reveals intrinsic toxicity of PABPN1 | journal = The EMBO Journal | volume = 25 | issue = 10 | pages = 2253–62 | date = May 2006 | pmid = 16642034 | pmc = 1462976 | doi = 10.1038/sj.emboj.7601117 }}</ref> |
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===Studies=== |
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As of November 2015, significant effort has been dedicated to researching OPMD and potential treatment methods. Myoblast Transplantation has been suggested and is in fact in clinical trials in France. This is done by taking [[myocyte|myoblasts]] from a normal muscle cell and putting them into [[pharyngeal muscles]] and allowing them to develop to help form new muscle cells. There has also been testing of compounds, either existing or developed, to see if they might combat OPMD and its symptoms. [[Trehalose]] is a special form of sugar that has shown reduced aggregate formation and delayed pathology in the mouse model of OPMD. [[Doxycycline]] also played a similar role in delaying [[toxicity]] of OPMD in mouse models most likely due to stopping aggregate formation and reduced [[apoptosis]]. Many other compounds and methods are currently being researched and showing some success in [[clinical trial]]s leading to optimism in curing this disease.<ref>{{cite web|title=Research and Outcomes|url=http://neurology.unm.edu/centers/opmd/research.html|website=University of New Mexico, School of Medicine}}</ref> |
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Multiple human genes encode different protein isoforms and paralogs of PABP, including [[PABPN1]], [[PABPC1]], [[PABPC3]], [[PABPC4]], [[PABPC5]].<ref>{{gene|PABPC5}}. [[HUGO Gene Nomenclature Committee]]. Accessed 8 April 2020.</ref> |
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{{RNA-binding proteins}} |
{{RNA-binding proteins}} |
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[[Category:RNA-binding proteins]] |
[[Category:RNA-binding proteins]] |
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{{Biochem-stub}} |
Latest revision as of 07:45, 17 February 2024
Poly(A)-binding protein (PAB or PABP)[1] is an RNA-binding protein which triggers the binding of eukaryotic initiation factor 4 complex (eIF4G) directly to the poly(A) tail of mRNA which is 200-250 nucleotides long.[2] The poly(A) tail is located on the 3' end of mRNA and was discovered by Mary Edmonds,[3] who also characterized the poly-A polymerase enzyme that generates the poly(a) tail.[4] The binding protein is also involved in mRNA precursors by helping polyadenylate polymerase add the poly(A) nucleotide tail to the pre-mRNA before translation.[5] The nuclear isoform selectively binds to around 50 nucleotides and stimulates the activity of polyadenylate polymerase by increasing its affinity towards RNA. Poly(A)-binding protein is also present during stages of mRNA metabolism including nonsense-mediated decay and nucleocytoplasmic trafficking. The poly(A)-binding protein may also protect the tail from degradation and regulate mRNA production. Without these two proteins in-tandem, then the poly(A) tail would not be added and the RNA would degrade quickly.[6]
Structure
[edit]Cytosolic poly-A binding protein (PABPC) is made up of four RNA recognition motifs (RRMs) and a C-terminal region known as the PABC domain. RRM is the most common motifs for RNA recognition and is usually made up of 90-100 amino acids. Previous solution NMR and X-ray crystallography studies have shown that RRMs are globular domains, each composed of 4 anti-parallel β sheets that are backed by 2 α-helices. The central two β-strands, connected by a short linker, of each RRM forms a trough-like surface that is thought to be responsible for binding to the poly(A) oligonucleotides. The polyadenylate RNA adopts an extended conformation running the length of the molecular trough. Adenine recognition is primarily mediated by contacts with conserved residues found in the RNP motifs of the two RRMs.[7] In vitro studies have shown the binding affinities to be on the order of 2-7nM, while affinity for poly(U), poly(G), and poly(C) were reportedly lower or undetectable in comparison. This shows that the poly(A)-binding protein is specific to poly(A) oligonucleotides and not others.[8] Since the two central β-strands are used for poly(A) oligonucleotide binding, the other face of the protein is free for protein-protein interactions.
The PABC domain is approximately 75 amino acids and consists of 4 or 5 α-helices depending on the organism – human PABCs have 5, while yeast has been observed to have 4. This domain does not contact RNA, and instead, it recognizes 15 residues sequences that are a part of the PABP interaction motif (PAM-2) found on such proteins as eukaryotic translation termination factor (eRF3) and PABP interacting proteins 1 and 2 (PAIP 1, PAIP2).
The structure of human poly(A)-binding protein found in the nucleus (PABPN1) has yet to be well determined but it has been shown to contain a single RRM domain and an arginine rich carboxy terminal domain. They are thought to be structurally and functionally different from poly-A binding proteins found in the cytosol.
Expression and binding
[edit]The expression of mammalian poly(A)-binding protein is regulated at the translational level by a feed-back mechanism: the mRNA encoding PABP contains in its 5' UTR an A-rich sequence which binds poly(A)-binding protein. This leads to autoregulatory repression of translation of PABP.
The cytosolic isoform of eukaryotic poly(A)-binding protein binds to the initiation factor eIF4G via its C-terminal domain. eIF4G is a component of the eIF4F complex, containing eIF4E, another initiation factor bound to the 5' cap on the 5' end of mRNA. This binding forms the characteristic loop structure of eukaryotic protein synthesis. Poly(A)-binding proteins in the cytosol compete for the eIF4G binding sites. This interaction enhances both the affinity of eIF4E for the cap structure and PABP1 for poly(A), effectively locking proteins onto both ends of the mRNA. As a result, this association may in part underlie the ability of PABP1 to promote small ribosomal (40S) subunit recruitment, which is aided by the interaction between eIF4G and eIF3. Poly(A)-binding protein has also been shown to interact with a termination factor (eRF3). The eRF3/PABP1 interaction may promote recycling of terminating ribosomes from the 3' to 5' end, facilitating multiple rounds of initiation on an mRNA. Alternatively, it may link translation to mRNA decay, as eRF3 appears to interfere with the ability of PABP1 to multimerise/form on poly(A), potentially leading to PABP1 dissociation, deadenylation and, ultimately, turnover.[9]
Rotavirus NSP3
[edit]Rotavirus RNA-binding protein NSP3 interacts with eIF4GI and evicts the poly(A) binding protein from eIF4F. NSP3A by taking the place of PABP on eIF4GI, is responsible for the shut-off of cellular protein synthesis.[10] Rotavirus mRNAs terminate a 3’ GACC motif that is recognized by the viral protein NSP3. This is the location where NSP3 competes with poly(A)-binding protein for eIF4G binding.
Once rotavirus infection occurs viral GACC-tailed mRNAs are translated while the poly(A)-tailed mRNA is severely impaired. In infected cells, there have been high magnitudes of both translation induction (GACC-tailed mRNA) and reduction (poly(A)-tailed mRNA) both dependent on the rotavirus strain. These data suggest that NSP3 is a translational surrogate of the PABP-poly(A) complex; therefore, it cannot by itself be responsible for inhibiting the translation of host poly(A)-tailed mRNAs upon rotavirus infection.[11]
PABP-C1 evicted from eIF4G by NSP3 accumulates in the nucleus of rotavirus-infected cells. This eviction process requires rotavirus NSP3, eIF4G, and RoXaN. To better understand the interaction, modeling of the NSP3-RoXaN complex, demonstrates mutations in NSP3 interrupt this complex without compromising NSP3 interaction with eIF4G. The nuclear localization of PABP-C1 is dependent on the capacity of NSP3 to interact with eIF4G and also requires the interaction of NSP3 with a specific region in RoXaN, the leucine- and aspartic acid-rich (LD) domain. RoXaN is identified as a cellular partner of NSP3 involved in the nucleocytoplasmic localization of PABP-C1.[12]
Associated diseases
[edit]OPMD
[edit]Oculopharyngeal muscular dystrophy (OPMD) is a genetic condition that occurs in adulthood often after the age of 40. This disorder usually leads to weaker facial muscles oftentimes showing as progressive eyelid drooping, swallowing difficulties, and proximal limb muscle weakness such as weak leg and hip muscles. People with this disorder are often hindered to the point that they have to use a cane in order to walk.[13] OPMD has been reported in approximately 29 countries and the number affected varies widely by specific population. The disease can be inherited as an autosomal dominant or recessive trait.[14]
Mutations
[edit]Mutations of poly(A)-binding protein nuclear 1 (PABPN1) can cause OPMD (oculopharyngeal muscular dystrophy). What makes the PABPN1 protein so different than all other genes with disease causing expanded polyalanine tracts, is that it is not a transcription factor. Instead, PABPN1 is involved in the polyadenylation of mRNA precursors.[15]
Mutations in PABPN1 that cause this disorder, result when the protein has an extended polyalanine tract (12-17 alanines long vs. the expected amount of 10). The extra alanines cause PABPN1 to aggregate and form clumps within muscles because they are not able to be broken down. These clumps are believed to disrupt the normal function of muscle cells which eventually lead to cell death. This progressive loss of muscle cells most likely causes the weakness in muscles seen in patients with OPMD. It is still not known why this disorder only affects certain muscles like the upper leg and hip. In recent studies on OPMD in Drosophila, it has been shown that the degeneration of muscles within those who are affected may not solely be due to the expanded polyalanine tract. It may actually be due to the RNA-binding domain and its function in binding.[16]
Studies
[edit]As of November 2015, significant effort has been dedicated to researching OPMD and potential treatment methods. Myoblast Transplantation has been suggested and is in fact in clinical trials in France. This is done by taking myoblasts from a normal muscle cell and putting them into pharyngeal muscles and allowing them to develop to help form new muscle cells. There has also been testing of compounds, either existing or developed, to see if they might combat OPMD and its symptoms. Trehalose is a special form of sugar that has shown reduced aggregate formation and delayed pathology in the mouse model of OPMD. Doxycycline also played a similar role in delaying toxicity of OPMD in mouse models most likely due to stopping aggregate formation and reduced apoptosis. Many other compounds and methods are currently being researched and showing some success in clinical trials leading to optimism in curing this disease.[17]
Genes
[edit]Multiple human genes encode different protein isoforms and paralogs of PABP, including PABPN1, PABPC1, PABPC3, PABPC4, PABPC5.[18]
References
[edit]- ^ Kahvejian A, Svitkin YV, Sukarieh R, M'Boutchou MN, Sonenberg N (January 2005). "Mammalian poly(A)-binding protein is a eukaryotic translation initiation factor, which acts via multiple mechanisms". Genes & Development. 19 (1): 104–13. doi:10.1101/gad.1262905. PMC 540229. PMID 15630022.
- ^ Poly(A)-Binding+Proteins at the U.S. National Library of Medicine Medical Subject Headings (MeSH)
- ^ Edmonds M, Vaughan MH, Nakazato H (June 1971). "Polyadenylic acid sequences in the heterogeneous nuclear RNA and rapidly-labeled polyribosomal RNA of HeLa cells: possible evidence for a precursor relationship". Proceedings of the National Academy of Sciences of the United States of America. 68 (6): 1336–40. doi:10.1073/pnas.68.6.1336. PMC 389184. PMID 5288383.
- ^ Winters MA, Edmonds M (July 1973). "A poly(A) polymerase from calf thymus. Purification and properities of the enzyme". The Journal of Biological Chemistry. 248 (13): 4756–62. doi:10.1016/s0021-9258(19)43729-0. PMID 4718742.
- ^ "UniProtKB - Q86U42 (PABP2_HUMAN)". uniprot.org. Retrieved 17 November 2015.
- ^ Voet D, Voet J. Biochemistry (4th ed.). Wiley. p. 1304.
- ^ Deo RC, Bonanno JB, Sonenberg N, Burley SK (September 1999). "Recognition of polyadenylate RNA by the poly(A)-binding protein". Cell. 98 (6): 835–45. doi:10.1016/s0092-8674(00)81517-2. PMID 10499800.
- ^ Goss DJ, Kleiman FE (2013). "Poly(A) binding proteins: are they all created equal?". Wiley Interdisciplinary Reviews. RNA. 4 (2): 167–79. doi:10.1002/WRNA.1151. PMC 3580857. PMID 23424172.
- ^ Gorgoni B, Gray NK (August 2004). "The roles of cytoplasmic poly(A)-binding proteins in regulating gene expression: a developmental perspective". Briefings in Functional Genomics & Proteomics. 3 (2): 125–41. doi:10.1093/bfgp/3.2.125. PMID 15355595.
- ^ Piron M, Vende P, Cohen J, Poncet D (October 1998). "Rotavirus RNA-binding protein NSP3 interacts with eIF4GI and evicts the poly(A) binding protein from eIF4F". The EMBO Journal. 17 (19): 5811–21. doi:10.1093/emboj/17.19.5811. PMC 1170909. PMID 9755181.
- ^ Gratia M, Sarot E, Vende P, Charpilienne A, Baron CH, Duarte M, et al. (September 2015). "Rotavirus NSP3 Is a Translational Surrogate of the Poly(A) Binding Protein-Poly(A) Complex". Journal of Virology. 89 (17): 8773–82. doi:10.1128/JVI.01402-15. PMC 4524085. PMID 26063427.
- ^ Harb M, Becker MM, Vitour D, Baron CH, Vende P, Brown SC, et al. (November 2008). "Nuclear localization of cytoplasmic poly(A)-binding protein upon rotavirus infection involves the interaction of NSP3 with eIF4G and RoXaN". Journal of Virology. 82 (22): 11283–93. doi:10.1128/JVI.00872-08. PMC 2573281. PMID 18799579.
- ^ "Oculopharyngeal muscular dystrophy". Genetics Home Reference. National Library of Medicine.
- ^ "Oculopharyngeal Muscular Dystrophy". National Organization for Rare Disorders.
- ^ Shoubridge C (2000). "Polyalanine Tract Disorders and Neurocognitive Phenotypes". Madame Curie Bioscience Database.
- ^ Chartier A, Benoit B, Simonelig M (May 2006). "A Drosophila model of oculopharyngeal muscular dystrophy reveals intrinsic toxicity of PABPN1". The EMBO Journal. 25 (10): 2253–62. doi:10.1038/sj.emboj.7601117. PMC 1462976. PMID 16642034.
- ^ "Research and Outcomes". University of New Mexico, School of Medicine.
- ^ PABPC5. HUGO Gene Nomenclature Committee. Accessed 8 April 2020.