Although it is logical to assume that all eukaryotes share a common mechanism for pre-mRNA splicing, gene transfer experiments indicate that critical differences exist between the events leading to mammalian, yeast and plant intron recognition. Differences which also exist between plant introns have prevented in vivo expression of some plant genes containing introns in transgenic plants. In vivo analysis of the cis-acting factors required for intron recognition in plant nuclei has allowed us to develop a model for intron recognition stating that AU elements spread throughout the length of plant introns roughly define intron boundaries by generating strong AU-transition points and masking internal cryptic sites. Potential splice sites are then selected in a position-dependent manner if they are located upstream (5' splice site) or downstream (3' splice site) from these AU transition points and not if they are embedded within AU-rich intron sequences. This mode of recognition relaxes the need for strong splice site and branchpoint consensus sequences and suggests that plant splicing machineries rely on a variety of novel trans-acting factors. The prominence of AU-rich introns and AU transition points at the intron/exon boundaries of Tetrahymena, Drosophila, C. elegans and S. pombe introns suggests that similar mechanisms for intron recognition and splice site definition may operate in a variety of species. Experiments proposed here are aimed at fully defining cis-acting sequences mediating intron recognition in plant nuclei and isolating trans-acting factors that interact with these sequences. Objectives are: 1) To test the universality of this model for intron recognition on other introns; 2) To define in detail cis-acting elements responsible in vivo for 5' and 3' splice site selection in AU-rich introns; 3) To identify trans-acting factors that interact with the cis-acting sequences, especially AU-binding proteins that appear to differentiate introns from exons in vivo and other proteins that enhance recognition of plant introns in an in vitro HeLa-plant complementation system. These experiments will identify splicing factors and recognition schemes that may mediate excision of AU-rich introns in many species and will determine critical associations that commit pre-mRNAs of this type of a splicing pathway. Ultimately, this information should clarify similarities and differences between the modes of intron recognition operating in mammalian, yeast and plant nuclei and provide for a more thorough mechanistic definition of pre-mRNA splicing.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM039025-07
Application #
2179643
Study Section
Molecular Biology Study Section (MBY)
Project Start
1988-08-26
Project End
1997-07-31
Budget Start
1994-08-01
Budget End
1995-07-31
Support Year
7
Fiscal Year
1994
Total Cost
Indirect Cost
Name
University of Illinois Urbana-Champaign
Department
Other Basic Sciences
Type
Schools of Arts and Sciences
DUNS #
041544081
City
Champaign
State
IL
Country
United States
Zip Code
61820
Merritt, H; McCullough, A J; Schuler, M A (1997) Internal AU-rich elements modulate activity of two competing 3' splice sites in plant nuclei. Plant J 12:937-43
Egoavil, C; Marton, H A; Baynton, C E et al. (1997) Structural analysis of elements contributing to 5' splice site selection in plant pre-mRNA transcripts. Plant J 12:971-80
McCullough, A J; Schuler, M A (1997) Intronic and exonic sequences modulate 5' splice site selection in plant nuclei. Nucleic Acids Res 25:1071-7
Baynton, C E; Potthoff, S J; McCullough, A J et al. (1996) U-rich tracts enhance 3' splice site recognition in plant nuclei. Plant J 10:703-11
McCullough, A J; Baynton, C E; Schuler, M A (1996) Interactions across exons can influence splice site recognition in plant nuclei. Plant Cell 8:2295-307
McCullough, A J; Lou, H; Schuler, M A (1993) Factors affecting authentic 5' splice site selection in plant nuclei. Mol Cell Biol 13:1323-31
Lou, H; McCullough, A J; Schuler, M A (1993) 3' splice site selection in dicot plant nuclei is position dependent. Mol Cell Biol 13:4485-93
McCullough, A J; Schuler, M A (1993) AU-rich intronic elements affect pre-mRNA 5' splice site selection in Drosophila melanogaster. Mol Cell Biol 13:7689-97
Lou, H; McCullough, A J; Schuler, M A (1993) Expression of maize Adh1 intron mutants in tobacco nuclei. Plant J 3:393-403
Musci, M A; Egeland, D B; Schuler, M A (1992) Molecular comparison of monocot and dicot U1 and U2 snRNAs. Plant J 2:589-99

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