mRNA polyadenylation is a key processing event for almost all mRNAs in eukaryotic cells. It involves cleavage of maturing mRNAs at the 3'end and addition of a poly(A) tail. The poly(A) tail influences many aspects of mRNA metabolism, including mRNA stability, mRNA transport, and translation. Over half of all human genes have multiple polyadenylation sites, or poly(A) sites, leading to transcript variants containing distinct mRNA cis- regulatory elements and/or encoding protein isoforms. Alternative polyadenylation has been shown to be regulated in tissue- and condition-specific manners. A growing number of human diseases have been associated with altered polyadenylation activity. While the core elements for polyadenylation have been well characterized, little is known about the auxiliary elements that modulate polyadenylation activity. In particular, the role of RNA secondary structures in regulation of polyadenylation is completely unclear. The long term goal is to fully understand the mechanisms by which mRNA polyadenylation is regulated under different biological conditions.
The specific aims of this study are 1) to systematically analyze different types of RNA structures associated with mammalian poly(A) sites by bioinformatics, and 2) to examine how RNA structures regulate mRNA polyadenylation by experimental assays.

Public Health Relevance

mRNA polyadenylation is a key processing event for almost all mRNAs in eukaryotic cells. It involves cleavage of maturing mRNAs at the 3'end and addition of a poly(A) tail. The poly(A) tail influences many aspects of mRNA metabolism, including mRNA stability, mRNA transport, and translation. Over half of all human genes have multiple polyadenylation sites, or poly(A) sites, leading to transcript variants containing distinct mRNA cis- regulatory elements and/or encoding protein isoforms. Alternative polyadenylation has been shown to be regulated in tissue- and condition-specific manners. A growing number of human diseases have been associated with altered polyadenylation activity. While the core elements for polyadenylation have been well characterized, little is known about the auxiliary elements that modulate polyadenylation activity. In particular, the role of RNA secondary structures in regulation of polyadenylation is completely unclear. The long term goal is to fully understand the mechanisms by which mRNA polyadenylation is regulated under different biological conditions.
The specific aims of this study are 1) to systematically analyze different types of RNA structures associated with mammalian poly(A) sites by bioinformatics, and 2) to examine how RNA structures regulate mRNA polyadenylation by experimental assays.

Agency
National Institute of Health (NIH)
Institute
National Human Genome Research Institute (NHGRI)
Type
Exploratory/Developmental Grants (R21)
Project #
5R21HG005129-02
Application #
7895058
Study Section
Genomics, Computational Biology and Technology Study Section (GCAT)
Program Officer
Good, Peter J
Project Start
2009-07-22
Project End
2012-06-30
Budget Start
2010-07-01
Budget End
2012-06-30
Support Year
2
Fiscal Year
2010
Total Cost
$234,000
Indirect Cost
Name
University of Medicine & Dentistry of NJ
Department
Biochemistry
Type
Schools of Medicine
DUNS #
623946217
City
Newark
State
NJ
Country
United States
Zip Code
07107
Haenni, Simon; Ji, Zhe; Hoque, Mainul et al. (2012) Analysis of C. elegans intestinal gene expression and polyadenylation by fluorescence-activated nuclei sorting and 3'-end-seq. Nucleic Acids Res 40:6304-18
Darmon, Sarah K; Lutz, Carol S (2012) Novel upstream and downstream sequence elements contribute to polyadenylation efficiency. RNA Biol 9:1255-65
Lutz, Carol S; Moreira, Alexandra (2011) Alternative mRNA polyadenylation in eukaryotes: an effective regulator of gene expression. Wiley Interdiscip Rev RNA 2:23-31
Lutz, Carol S; Moreira, Alexandra (2011) Alternative mRNA polyadenylation in eukaryotes: an effective regulator of gene expression. Wiley Interdiscip Rev RNA 2:22-31
Parrott, Andrew M; Tsai, Michael; Batchu, Priyanka et al. (2011) The evolution and expression of the snaR family of small non-coding RNAs. Nucleic Acids Res 39:1485-500
Newnham, Catherine M; Hall-Pogar, Tyra; Liang, Songchun et al. (2010) Alternative polyadenylation of MeCP2: Influence of cis-acting elements and trans-acting factors. RNA Biol 7:361-72