Our goal is to understand better the relationship between polyoma virus genome structure and gene expression. Our particular interests are in the late leader unit and in the late promoter. Polyoma late mRNA molecules have multiple, tandem copies of a 57-base, untranslated sequence the """"""""late leader"""""""" at their 5'-ends. The function of the leader in late gene expression is somewhat unclear. We shall study its role in RNA synthesis, processing and translation. Our recent work has shown that the length of the leader, but not its sequence, is important for both late RNA splicing and stability. We shall extend these studies in order to elucidate the molecular events involved in late leader splicing. We shall use deletion and point mutants to test the role of leader length and of the 3' splice site at its 5' boundary in splicing and RNA stability. We shall insert the ALM leader region into other transcripts, upstream or downstream of other exons, to determine whether it can confer instability on other pre-mRNAs. We shall use chimeric double-genome plasmids and DNA transfections to study the order of exon splicing in polyoma late transcripts and we shall examine the possibility of trans splicing of polyoma late RNAs. We shall establish in vitro splicing of late viral pre- mRNAs in HeLa cell extracts and use this system to test leader region mutants for splicing, RNA stability, and splicing complex formation. In order to investigate the significance of leader multiplicity we shall study a mutant genome with the 3'-end processing/polyadenylation region of SV40 inserted into the 3'-end region of polyoma. This virus should only generate single leader units on all late messages. We shall test the leader region for a role in translation. We shall use reticulocyte lysates for in vitro translation of VP1 or VP2 from capped, T7 transcripts. We shall translate RNAs individually or use them in competition experiments with rabbit beta-globin. Experiments will be done with RNAs containing deleted, substituted or reiterated leader units. In in vivo experiments, we shall use S1 analysis to determine whether larger polysomes form infected cells contain viral mRNAs with more leader units. Another of our goals is to define cis-acting regulatory sequences that are involved in the initiation and control of transcription from the late promoter. Toward this end we shall use CAT assays, nuclear run-off experiments and S1 analysis to measure and compare early and late promoter activity in a large number of mutants, many made by site-directed oliqonucleotide deletion mutagenesis. We shall perform these experiments in the presence or absence of large T antigen or DNA replication inhibitors. Nuclear run-off experiments will be done as a function of time after wild type or mutant transfection/infection in order to determine the time course of late promoter activation and its relationship to large T, DNA replication and specific cis-acting DNA sequences.

Agency
National Institute of Health (NIH)
Institute
National Cancer Institute (NCI)
Type
Research Project (R01)
Project #
5R01CA045382-05
Application #
3188497
Study Section
Experimental Virology Study Section (EVR)
Project Start
1987-07-01
Project End
1992-05-31
Budget Start
1991-06-01
Budget End
1992-05-31
Support Year
5
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Connecticut
Department
Type
Schools of Dentistry
DUNS #
City
Farmington
State
CT
Country
United States
Zip Code
06030
Carmichael, Gordon G (2016) Gene Regulation and Quality Control in Murine Polyomavirus Infection. Viruses 8:
Garren, Seth B; Kondaveeti, Yuvabharath; Duff, Michael O et al. (2015) Global Analysis of Mouse Polyomavirus Infection Reveals Dynamic Regulation of Viral and Host Gene Expression and Promiscuous Viral RNA Editing. PLoS Pathog 11:e1005166
Carmichael, Gordon (2015) My RNA world: past, present and future. RNA 21:578-9
Yang, Li; Duff, Michael O; Graveley, Brenton R et al. (2011) Genomewide characterization of non-polyadenylated RNAs. Genome Biol 12:R16
Chen, Ling-Ling; Carmichael, Gordon G (2010) Decoding the function of nuclear long non-coding RNAs. Curr Opin Cell Biol 22:357-64
Huang, Yingqun; Carmichael, Gordon G (2009) RNA processing in the polyoma virus life cycle. Front Biosci (Landmark Ed) 14:4968-77
Chen, Ling-Ling; Carmichael, Gordon G (2009) Altered nuclear retention of mRNAs containing inverted repeats in human embryonic stem cells: functional role of a nuclear noncoding RNA. Mol Cell 35:467-78
Gu, Rui; Zhang, Zuo; DeCerbo, Joshua N et al. (2009) Gene regulation by sense-antisense overlap of polyadenylation signals. RNA 15:1154-63
Gu, R; Zhang, Z; Carmichael, G G (2006) How a small DNA virus uses dsRNA but not RNAi to regulate its life cycle. Cold Spring Harb Symp Quant Biol 71:293-9
Wang, Qiaoqiao; Zhang, Zuo; Blackwell, Katherine et al. (2005) Vigilins bind to promiscuously A-to-I-edited RNAs and are involved in the formation of heterochromatin. Curr Biol 15:384-91

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