Photo of Steve Buratowski

Stephen Buratowski, Ph.D.

Hamilton Kuhn Professor of Biological Chemistry and Molecular Pharmacology

Our lab studies eukaryotic gene expression. We are concentrating on three areas: (A) the functions and interactions of the RNA polymerase II (RNApII) basal transcription factors, (B) the communication between chromatin and the transcription machinery, and (C) mRNA processing enzymes and their interactions with RNApII.

Research:

Our lab studies eukaryotic gene expression. We are concentrating on three areas: (A) the functions and interactions of the RNA polymerase II (RNApII) basal transcription factors, (B) the communication between chromatin and the transcription machinery, and (C) mRNA processing enzymes and their interactions with RNApII. Using the yeast Saccharomyces cerevisiae, a combination of biochemical and genetic techniques are being brought to bear on these questions. Several dozen proteins are required simply to initiate transcription, and many more are required for processes linked to transcription. Therefore, it is now necessary to decipher the functions of each of the individual factors. Some of our recent projects:

1. The RNApII C-terminal domain (CTD) and mRNA processing enzymes. mRNAs are capped at the 5' end and polyadenylated at the 3' ends. We discovered that the phosphorylated CTD acts as a binding site for mRNA processing enzymes, thereby linking transcription and mRNA processing. Interestingly, the pattern of CTD phosphorylation changes at various points of transcription initiation and elongation. It appears that these different phosphorylated forms bind different sets of factors involved in regulation of elongation, termination, capping, splicing, and polyadenylation.

2. We are studying the many factors that modulate transcription elongation and termination by RNApII. We have found that different mechanisms are used for termination at different classes of genes. Genes that encode polyadenylated mRNAs use an exonuclease-dependent pathway, while genes for the non-polyadenylated sn/snoRNAs use a pathway that includes the exosome and the Nrd1 and Nab3 RNA binding proteins. We are working to further understand the two pathways and how the choice is made between them.

3. Connections between transcription and chromatin structure. We and others showed that the act of transcription causes major changes in the nucleosomes that package the gene. For example, the histone methyltransferases Set1 and Set2 are targeted to promoter and coding regions, respectively, via binding to the phosphorylated RNApII CTD. Specific demethylases also regulate gene regulation. These transcription-coupled histone methylation patterns have been linked to human cancers, but yeast provides a perfect model system for getting at their basic functions.

Address: 

Room C-347

240 Longwood Avenue

Boston, MA 02115

Publications View
Systematic dissection of roles for chromatin regulators in a yeast stress response.
Authors: Authors: Weiner A, Chen HV, Liu CL, Rahat A, Klien A, Soares L, Gudipati M, Pfeffner J, Regev A, Buratowski S, Pleiss JA, Friedman N, Rando OJ.
PLoS Biol
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A key role for Chd1 in histone H3 dynamics at the 3' ends of long genes in yeast.
Authors: Authors: Radman-Livaja M, Quan TK, Valenzuela L, Armstrong JA, van Welsem T, Kim T, Lee LJ, Buratowski S, van Leeuwen F, Rando OJ, Hartzog GA.
PLoS Genet
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Sub1 and RPA associate with RNA polymerase II at different stages of transcription.
Authors: Authors: Sikorski TW, Ficarro SB, Holik J, Kim T, Rando OJ, Marto JA, Buratowski S.
Mol Cell
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H3K4 trimethylation by Set1 promotes efficient termination by the Nrd1-Nab3-Sen1 pathway.
Authors: Authors: Terzi N, Churchman LS, Vasiljeva L, Weissman J, Buratowski S.
Mol Cell Biol
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The specificity and topology of chromatin interaction pathways in yeast.
Authors: Authors: Lenstra TL, Benschop JJ, Kim T, Schulze JM, Brabers NA, Margaritis T, van de Pasch LA, van Heesch SA, Brok MO, Groot Koerkamp MJ, Ko CW, van Leenen D, Sameith K, van Hooff SR, Lijnzaad P, Kemmeren P, Hentrich T, Kobor MS, Buratowski S, Holstege FC.
Mol Cell
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Distinct RNA degradation pathways and 3' extensions of yeast non-coding RNA species.
Authors: Authors: Marquardt S, Hazelbaker DZ, Buratowski S.
Transcription
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Leo1 subunit of the yeast paf1 complex binds RNA and contributes to complex recruitment.
Authors: Authors: Dermody JL, Buratowski S.
J Biol Chem
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Cooperative interaction of transcription termination factors with the RNA polymerase II C-terminal domain.
Authors: Authors: Lunde BM, Reichow SL, Kim M, Suh H, Leeper TC, Yang F, Mutschler H, Buratowski S, Meinhart A, Varani G.
Nat Struct Mol Biol
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RNA polymerase mapping during stress responses reveals widespread nonproductive transcription in yeast.
Authors: Authors: Kim TS, Liu CL, Yassour M, Holik J, Friedman N, Buratowski S, Rando OJ.
Genome Biol
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The role of cotranscriptional histone methylations.
Authors: Authors: Buratowski S, Kim T.
Cold Spring Harb Symp Quant Biol
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