» Articles » PMID: 15121839

Polypyrimidine Tract Binding Protein Modulates Efficiency of Polyadenylation

Overview
Journal Mol Cell Biol
Specialty Cell Biology
Date 2004 May 4
PMID 15121839
Citations 105
Authors
Affiliations
Soon will be listed here.
Abstract

Polypyrimidine tract binding protein (PTB) is a major hnRNP protein with multiple roles in mRNA metabolism, including regulation of alternative splicing and internal ribosome entry site-driven translation. We show here that a fourfold overexpression of PTB results in a 75% reduction of mRNA levels produced from transfected gene constructs with different polyadenylation signals (pA signals). This effect is due to the reduced efficiency of mRNA 3' end cleavage, and in vitro analysis reveals that PTB competes with CstF for recognition of the pA signal's pyrimidine-rich downstream sequence element. This may be analogous to its role in alternative splicing, where PTB competes with U2AF for binding to pyrimidine-rich intronic sequences. The pA signal of the C2 complement gene unusually possesses a PTB-dependent upstream sequence, so that knockdown of PTB expression by RNA interference reduces C2 mRNA expression even though PTB overexpression still inhibits polyadenylation. Consequently, we show that PTB can act as a regulator of mRNA expression through both its negative and positive effects on mRNA 3' end processing.

Citing Articles

Fateful Decisions of Where to Cut the Line: Pathology Associated with Aberrant 3' End Processing and Transcription Termination.

Grzechnik P, Mischo H J Mol Biol. 2024; 437(1):168802.

PMID: 39321865 PMC: 11870849. DOI: 10.1016/j.jmb.2024.168802.


Regulation of alternative splicing and polyadenylation in neurons.

Lee S, Aubee J, Lai E Life Sci Alliance. 2023; 6(12).

PMID: 37793776 PMC: 10551640. DOI: 10.26508/lsa.202302000.


Reviewing PTBP1 Domain Modularity in the Pre-Genomic Era: A Foundation to Guide the Next Generation of Exploring PTBP1 Structure-Function Relationships.

Carico C, Placzek W Int J Mol Sci. 2023; 24(13).

PMID: 37446395 PMC: 10342978. DOI: 10.3390/ijms241311218.


PTBP1 enforces ATR-CHK1 signaling determining the potency of CDC7 inhibitors.

Goder A, Quinlan A, Rainey M, Bennett D, Shamavu D, Corso J iScience. 2023; 26(6):106951.

PMID: 37378325 PMC: 10291475. DOI: 10.1016/j.isci.2023.106951.


Transcriptome sequencing suggests that pre-mRNA splicing counteracts widespread intronic cleavage and polyadenylation.

Vlasenok M, Margasyuk S, Pervouchine D NAR Genom Bioinform. 2023; 5(2):lqad051.

PMID: 37260513 PMC: 10227441. DOI: 10.1093/nargab/lqad051.


References
1.
Gosert R, Chang K, Rijnbrand R, Yi M, Sangar D, Lemon S . Transient expression of cellular polypyrimidine-tract binding protein stimulates cap-independent translation directed by both picornaviral and flaviviral internal ribosome entry sites In vivo. Mol Cell Biol. 2000; 20(5):1583-95. PMC: 85342. DOI: 10.1128/MCB.20.5.1583-1595.2000. View

2.
Brown P, Tiley L, Cullen B . Efficient polyadenylation within the human immunodeficiency virus type 1 long terminal repeat requires flanking U3-specific sequences. J Virol. 1991; 65(6):3340-3. PMC: 240993. DOI: 10.1128/JVI.65.6.3340-3343.1991. View

3.
Vagner S, Vagner C, Mattaj I . The carboxyl terminus of vertebrate poly(A) polymerase interacts with U2AF 65 to couple 3'-end processing and splicing. Genes Dev. 2000; 14(4):403-13. PMC: 316384. View

4.
Brackenridge S, Proudfoot N . Recruitment of a basal polyadenylation factor by the upstream sequence element of the human lamin B2 polyadenylation signal. Mol Cell Biol. 2000; 20(8):2660-9. PMC: 85481. DOI: 10.1128/MCB.20.8.2660-2669.2000. View

5.
Chou M, Underwood J, Nikolic J, Luu M, Black D . Multisite RNA binding and release of polypyrimidine tract binding protein during the regulation of c-src neural-specific splicing. Mol Cell. 2000; 5(6):949-57. DOI: 10.1016/s1097-2765(00)80260-9. View