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1.
Mol Cell ; 84(2): 386-400.e11, 2024 Jan 18.
Article in English | MEDLINE | ID: mdl-38103558

ABSTRACT

The posttranslational modifier ubiquitin regulates most cellular processes. Its ability to form polymeric chains of distinct linkages is key to its diverse functionality. Yet, we still lack the experimental tools to induce linkage-specific polyubiquitylation of a protein of interest in cells. Here, we introduce a set of engineered ubiquitin protein ligases and matching ubiquitin acceptor tags for the rapid, inducible linear (M1-), K48-, or K63-linked polyubiquitylation of proteins in yeast and mammalian cells. By applying the so-called "Ubiquiton" system to proteasomal targeting and the endocytic pathway, we validate this tool for soluble cytoplasmic and nuclear as well as chromatin-associated and integral membrane proteins and demonstrate how it can be used to control the localization and stability of its targets. We expect that the Ubiquiton system will serve as a versatile, broadly applicable research tool to explore the signaling functions of polyubiquitin chains in many biological contexts.


Subject(s)
Ubiquitin-Protein Ligases , Ubiquitin , Animals , Ubiquitin/metabolism , Ubiquitin-Protein Ligases/genetics , Ubiquitin-Protein Ligases/metabolism , Polyubiquitin/genetics , Polyubiquitin/metabolism , Signal Transduction , Proteasome Endopeptidase Complex/metabolism , Ubiquitination , Mammals/metabolism
2.
Cell Rep ; 41(7): 111670, 2022 11 15.
Article in English | MEDLINE | ID: mdl-36384122

ABSTRACT

In healthy vessels, endothelial cells maintain a stable, differentiated, and growth-arrested phenotype for years. Upon injury, a rapid phenotypic switch facilitates proliferation to restore tissue perfusion. Here we report the identification of the endothelial cell-enriched long non-coding RNA (lncRNA) PCAT19, which contributes to the proliferative switch and acts as a safeguard for the endothelial genome. PCAT19 is enriched in confluent, quiescent endothelial cells and binds to the full replication protein A (RPA) complex in a DNA damage- and cell-cycle-related manner. Our results suggest that PCAT19 limits the phosphorylation of RPA2, primarily on the serine 33 (S33) residue, and thereby facilitates an appropriate DNA damage response while slowing cell cycle progression. Reduction in PCAT19 levels in response to either loss of cell contacts or knockdown promotes endothelial proliferation and angiogenesis. Collectively, PCAT19 acts as a dynamic guardian of the endothelial genome and facilitates rapid switching from quiescence to proliferation.


Subject(s)
RNA, Long Noncoding , Phosphorylation , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , Endothelial Cells/metabolism , DNA/metabolism , Replication Protein A/genetics , Replication Protein A/metabolism
3.
Semin Cell Dev Biol ; 132: 132-145, 2022 12.
Article in English | MEDLINE | ID: mdl-34840080

ABSTRACT

Ubiquitin and its relatives are major players in many biological pathways, and a variety of experimental tools based on biological chemistry or protein engineering is available for their manipulation. One popular approach is the use of linear fusions between the modifier and a protein of interest. Such artificial constructs can facilitate the understanding of the role of ubiquitin in biological processes and can be exploited to control protein stability, interactions and degradation. Here we summarize the basic design considerations and discuss the advantages as well as limitations associated with their use. Finally, we will refer to several published case studies highlighting the principles of how they provide insight into pathways ranging from membrane protein trafficking to the control of epigenetic modifications.


Subject(s)
Small Ubiquitin-Related Modifier Proteins , Ubiquitin , Humans , Protein Stability , Small Ubiquitin-Related Modifier Proteins/metabolism , Ubiquitin/genetics , Epigenesis, Genetic
4.
DNA Repair (Amst) ; 105: 103163, 2021 09.
Article in English | MEDLINE | ID: mdl-34186497

ABSTRACT

Dealing with DNA lesions during genome replication is particularly challenging because damaged replication templates interfere with the progression of the replicative DNA polymerases and thereby endanger the stability of the replisome. A variety of mechanisms for the recovery of replication forks exist, but both bacteria and eukaryotic cells also have the option of continuing replication downstream of the lesion, leaving behind a daughter-strand gap in the newly synthesized DNA. In this review, we address the significance of these single-stranded DNA structures as sites of DNA damage sensing and processing at a distance from ongoing genome replication. We describe the factors controlling the emergence of daughter-strand gaps from stalled replication intermediates, the benefits and risks of their expansion and repair via translesion synthesis or recombination-mediated template switching, and the mechanisms by which they activate local as well as global replication stress signals. Our growing understanding of daughter-strand gaps not only identifies them as targets of fundamental genome maintenance mechanisms, but also suggests that proper control over their activities has important practical implications for treatment strategies and resistance mechanisms in cancer therapy.


Subject(s)
DNA Damage , DNA Repair , DNA Replication , Signal Transduction , Animals , DNA/metabolism , Eukaryota/genetics , Eukaryota/metabolism , Humans
5.
J Mol Biol ; 428(10 Pt B): 2134-45, 2016 05 22.
Article in English | MEDLINE | ID: mdl-26707202

ABSTRACT

N6-methyladenosine (m(6)A) is ubiquitously present in the RNA of living organisms from Escherichia coli to humans. Methyltransferases that catalyze adenosine methylation are drastically different in specificity from modification of single residues in bacterial ribosomal or transfer RNA to modification of thousands of residues spread among eukaryotic mRNA. Interactions that are formed by m(6)A residues range from RNA-RNA tertiary contacts to RNA-protein recognition. Consequences of the modification loss might vary from nearly negligible to complete reprogramming of regulatory pathways and lethality. In this review, we summarized current knowledge on enzymes that introduce m(6)A modification, ways to detect m(6)A presence in RNA and the functional role of this modification everywhere it is present, from bacteria to humans.


Subject(s)
Adenosine/analogs & derivatives , Adenosine/metabolism , Escherichia coli/metabolism , RNA/metabolism , Humans , Methylation , Methyltransferases/metabolism
6.
Nucleic Acids Res ; 42(4): e27, 2014 Feb.
Article in English | MEDLINE | ID: mdl-24265225

ABSTRACT

Chemical landscape of natural RNA species is decorated with the large number of modified nucleosides. Some of those could easily be detected by reverse transcription, while others permit only high-performance liquid chromatography or mass-spectrometry detection. Presence of m(6)A nucleoside at a particular position of long RNA molecule is challenging to observe. Here we report an easy and high-throughput method for detection of m(6)A nucleosides in RNA based on high-resolution melting analysis. The method relies on the previous knowledge of the modified nucleoside position at a particular place of RNA and allows rapid screening for conditions or genes necessary for formation of that modification.


Subject(s)
Adenosine/chemistry , Nucleic Acid Hybridization/methods , RNA/chemistry , Adenosine/analysis , Adenosine/metabolism , HEK293 Cells , Humans , Methylation , Methyltransferases/genetics , Oligonucleotide Probes , RNA/metabolism
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