scholarly article | Q13442814 |
P50 | author | Peter L Nagy | Q63682027 |
James J. Moresco | Q41679245 | ||
P2093 | author name string | John R Yates | |
Stuart Andrews | |||
Xavier Tadeo | |||
Songtao Jia | |||
Haitong Hou | |||
Scott P Kallgren | |||
Patricia G Tu | |||
P2860 | cites work | The genome sequence of Schizosaccharomyces pombe | Q21972841 |
Regulation of chromatin structure by site-specific histone H3 methyltransferases | Q24290115 | ||
Proteomics analysis reveals stable multiprotein complexes in both fission and budding yeasts containing Myb-related Cdc5p/Cef1p, novel pre-mRNA splicing factors, and snRNAs. | Q24537200 | ||
Selective recognition of methylated lysine 9 on histone H3 by the HP1 chromo domain | Q27860477 | ||
Systematic two-hybrid and comparative proteomic analyses reveal novel yeast pre-mRNA splicing factors connected to Prp19. | Q27932730 | ||
Characterization of the BUD31 gene of Saccharomyces cerevisiae | Q27933708 | ||
Involvement of the spliceosomal U4 small nuclear RNA in heterochromatic gene silencing at fission yeast centromeres | Q42918010 | ||
Repeat-induced gene silencing in mammals. | Q44031048 | ||
RNAi-independent heterochromatin nucleation by the stress-activated ATF/CREB family proteins | Q44952131 | ||
Regulation of Swi6/HP1-dependent heterochromatin assembly by cooperation of components of the mitogen-activated protein kinase pathway and a histone deacetylase Clr6. | Q45005910 | ||
Context dependent splicing functions of Bud31/Ycr063w define its role in budding and cell cycle progression | Q45328682 | ||
Expansions of transgene repeats cause heterochromatin formation and gene silencing in Drosophila | Q52542203 | ||
Two RNAi complexes, RITS and RDRC, physically interact and localize to noncoding centromeric RNAs. | Q55039785 | ||
Synthetic Genetic Array (SGA) Analysis in Saccharomyces cerevisiae and Schizosaccharomyces pombe | Q56994328 | ||
Two different Argonaute complexes are required for siRNA generation and heterochromatin assembly in fission yeast | Q57973165 | ||
A transcription factor–based mechanism for mouse heterochromatin formation | Q64387285 | ||
Mutations in the fission yeast silencing factors clr4+ and rik1+ disrupt the localisation of the chromo domain protein Swi6p and impair centromere function | Q71821145 | ||
Telomere binding protein Taz1 establishes Swi6 heterochromatin independently of RNAi at telomeres | Q81389440 | ||
The spliceosome: design principles of a dynamic RNP machine | Q28131809 | ||
Functional genomic analysis of RNA interference in C. elegans | Q28241721 | ||
Small RNAs in transcriptional gene silencing and genome defence | Q28307317 | ||
Heterochromatin revisited | Q29614716 | ||
Role of histone H3 lysine 9 methylation in epigenetic control of heterochromatin assembly | Q29614718 | ||
Fission yeast Tel1(ATM) and Rad3(ATR) promote telomere protection and telomerase recruitment | Q33497909 | ||
Histone variant H2A.Z regulates centromere silencing and chromosome segregation in fission yeast | Q33581966 | ||
Splicing factor Spf30 assists exosome-mediated gene silencing in fission yeast | Q33648862 | ||
Dim1p is required for efficient splicing and export of mRNA encoding lid1p, a component of the fission yeast anaphase-promoting complex | Q33770574 | ||
Requirement of heterochromatin for cohesion at centromeres | Q34094956 | ||
Recruitment of cohesin to heterochromatic regions by Swi6/HP1 in fission yeast | Q34108294 | ||
cis-acting DNA from fission yeast centromeres mediates histone H3 methylation and recruitment of silencing factors and cohesin to an ectopic site | Q34152857 | ||
Common ground: small RNA programming and chromatin modifications | Q34176993 | ||
Mutations derepressing silent centromeric domains in fission yeast disrupt chromosome segregation. | Q34318276 | ||
Telomere-associated chromosome breakage in fission yeast results in variegated expression of adjacent genes | Q34332700 | ||
RNA interference in the nucleus: roles for small RNAs in transcription, epigenetics and beyond | Q34385616 | ||
Transient inhibition of histone deacetylation alters the structural and functional imprint at fission yeast centromeres. | Q34452191 | ||
Defective meiosis in telomere-silencing mutants of Schizosaccharomyces pombe | Q34466609 | ||
Elimination of a specific histone H3K14 acetyltransferase complex bypasses the RNAi pathway to regulate pericentric heterochromatin functions | Q34557115 | ||
Dynamic repertoire of a eukaryotic transcriptome surveyed at single-nucleotide resolution | Q34779368 | ||
Splicing factors facilitate RNAi-directed silencing in fission yeast | Q34864584 | ||
Synthetic heterochromatin bypasses RNAi and centromeric repeats to establish functional centromeres. | Q34989114 | ||
Defective RNA processing enhances RNA silencing and influences flowering of Arabidopsis | Q35056695 | ||
The splicing factor SR45 affects the RNA-directed DNA methylation pathway in Arabidopsis | Q35897258 | ||
Regulation of Set9-mediated H4K20 methylation by a PWWP domain protein | Q37169910 | ||
Conservation and rewiring of functional modules revealed by an epistasis map in fission yeast. | Q37365634 | ||
Heterochromatin maintenance and establishment: lessons from the mouse pericentromere | Q37937379 | ||
Functional separation of the requirements for establishment and maintenance of centromeric heterochromatin. | Q38301349 | ||
Comparative analysis of argonaute-dependent small RNA pathways in Drosophila | Q39913357 | ||
A chromodomain protein, Chp1, is required for the establishment of heterochromatin in fission yeast. | Q40197642 | ||
Structural and functional characterization of the N terminus of Schizosaccharomyces pombe Cwf10. | Q41790611 | ||
Heterochromatin links to centromeric protection by recruiting shugoshin | Q42152372 | ||
A novel RNAi protein, Dsh1, assembles RNAi machinery on chromatin to amplify heterochromatic siRNA. | Q42321072 | ||
Ers1, a rapidly diverging protein essential for RNA interference-dependent heterochromatic silencing in Schizosaccharomyces pombe | Q42458688 | ||
Identification of small RNA pathway genes using patterns of phylogenetic conservation and divergence | Q42584215 | ||
P275 | copyright license | Creative Commons Attribution 4.0 International | Q20007257 |
P6216 | copyright status | copyrighted | Q50423863 |
P433 | issue | 5 | |
P304 | page(s) | e1004334 | |
P577 | publication date | 2014-05-29 | |
P1433 | published in | PLOS Genetics | Q1893441 |
P1476 | title | The proper splicing of RNAi factors is critical for pericentric heterochromatin assembly in fission yeast | |
P478 | volume | 10 |
Q34441358 | A systematic genetic screen identifies new factors influencing centromeric heterochromatin integrity in fission yeast |
Q92811766 | Centromeric Non-Coding RNAs: Conservation and Diversity in Function |
Q36958121 | Interconnections Between RNA-Processing Pathways Revealed by a Sequencing-Based Genetic Screen for Pre-mRNA Splicing Mutants in Fission Yeast |
Q35223649 | RNA-mediated epigenetic regulation of gene expression |
Q47633384 | Sde2 is an intron-specific pre-mRNA splicing regulator activated by ubiquitin-like processing |
Q37189009 | Set3 contributes to heterochromatin integrity by promoting transcription of subunits of Clr4-Rik1-Cul4 histone methyltransferase complex in fission yeast |
Q36409104 | Splicing stimulates siRNA formation at Drosophila DNA double-strand breaks. |
Q41729977 | The Conserved RNA Binding Cyclophilin, Rct1, Regulates Small RNA Biogenesis and Splicing Independent of Heterochromatin Assembly |
Q38935467 | The RNA-binding protein HOS5 and serine/arginine-rich proteins RS40 and RS41 participate in miRNA biogenesis in Arabidopsis |
Q87203026 | The effect of the cwf14 gene of fission yeast on cell wall integrity is associated with rho1 |
Q26780444 | The expanding world of small RNAs in plants |
Q36288451 | The intron in centromeric noncoding RNA facilitates RNAi-mediated formation of heterochromatin. |
Q35961743 | The proper connection between shelterin components is required for telomeric heterochromatin assembly. |
Q34313064 | Tls1 regulates splicing of shelterin components to control telomeric heterochromatin assembly and telomere length. |
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