Alternative pre-mRNA splicing is a major source of proteomic diversity in higher eukaryotes. This process requires that the splicing machinery (spliceosome) select the correct splice sites within thousands of nucleotides of pre-mRNA sequences. However, exactly how the splice sites are recognized is poorly understood. The overall goal of this research proposal is to understand the sequential three-dimensional interactions that guide 3' splice site selection and promote spliceosome assembly. During the critical early stages of 3' splice site recognition, the essential splicing factor U2AF recognizes the poly-pyrimidine tract (Py-tract) pre-mRNA consensus sequence. In turn, the U2AF/Py-tract provides a distinct molecular surface that promotes association of the U2 snRNP, a core component of the active spliceosome.
The specific aims of the proposal are: 1. To elucidate the interactions that enable U2AF to recognize a variety of metazoan Py-tract sequences, as opposed to sequence-specific alternative splicing factors. 2. To investigate the sequential interactions with U2AF that recruit the U2 snRNP to the pre-mRNA. 3. To explore the potential protein-interaction targets of other U2AF-homologous motifs (UHM) found in a wide variety of splicing factors. In particular, we focus on the UHM of a medically-relevant target, Tat-SF1, a cellular cofactor for HIV-1 replication. Many serious human diseases are associated with mis-spliced mRNA variants, including CD44 or BRCA1/BRCA2 in cancers, dystrophin in muscular dystrophy, and ATM in ataxia telangiectasia among others. Moreover, disruption of protein-protein interactions mediated by the Tat-SF1 protein presents a potential therapeutic target for treatment of AIDS patients. In the long term, understanding the key interactions that guide normal splice site recognition will provide a basis to target specific molecular strategies, such as peptidomimetics or anti-sense oligonucleotides, against harmful splice variants.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
1R01GM070503-01
Application #
6757013
Study Section
Biophysical Chemistry Study Section (BBCB)
Program Officer
Lewis, Catherine D
Project Start
2004-07-01
Project End
2009-06-30
Budget Start
2004-07-01
Budget End
2005-06-30
Support Year
1
Fiscal Year
2004
Total Cost
$311,715
Indirect Cost
Name
Johns Hopkins University
Department
Biochemistry
Type
Schools of Public Health
DUNS #
001910777
City
Baltimore
State
MD
Country
United States
Zip Code
21218
Kielkopf, Clara L (2018) Insights from structures of cancer-relevant pre-mRNA splicing factors. Curr Opin Genet Dev 48:57-66
Loerch, Sarah; Leach, Justin R; Horner, Steven W et al. (2018) The pre-mRNA splicing and transcription factor Tat-SF1 is a functional partner of the spliceosome SF3b1 subunit via a U2AF homology motif interface. J Biol Chem :
Glasser, Eliezra; Agrawal, Anant A; Jenkins, Jermaine L et al. (2017) Cancer-Associated Mutations Mapped on High-Resolution Structures of the U2AF2 RNA Recognition Motifs. Biochemistry 56:4757-4761
Jenkins, Jermaine L; Kielkopf, Clara L (2017) Splicing Factor Mutations in Myelodysplasias: Insights from Spliceosome Structures. Trends Genet 33:336-348
Chatrikhi, Rakesh; Wang, Wenhua; Gupta, Ankit et al. (2016) SF1 Phosphorylation Enhances Specific Binding to U2AF65 and Reduces Binding to 3'-Splice-Site RNA. Biophys J 111:2570-2586
Fei, Dennis Liang; Motowski, Hayley; Chatrikhi, Rakesh et al. (2016) Wild-Type U2AF1 Antagonizes the Splicing Program Characteristic of U2AF1-Mutant Tumors and Is Required for Cell Survival. PLoS Genet 12:e1006384
Loerch, Sarah; Kielkopf, Clara L (2016) Unmasking the U2AF homology motif family: a bona fide protein-protein interaction motif in disguise. RNA 22:1795-1807
Agrawal, Anant A; Salsi, Enea; Chatrikhi, Rakesh et al. (2016) An extended U2AF(65)-RNA-binding domain recognizes the 3' splice site signal. Nat Commun 7:10950
Okeyo-Owuor, T; White, B S; Chatrikhi, R et al. (2015) U2AF1 mutations alter sequence specificity of pre-mRNA binding and splicing. Leukemia 29:909-17
Loerch, Sarah; Kielkopf, Clara L (2015) Dividing and Conquering the Family of RNA Recognition Motifs: A Representative Case Based on hnRNP L. J Mol Biol 427:2997-3000

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