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1.
J Biol Chem ; 296: 100659, 2021.
Article in English | MEDLINE | ID: mdl-33857479

ABSTRACT

Fused in sarcoma (FUS) is a predominantly nuclear RNA-binding protein with key functions in RNA processing and DNA damage repair. Defects in nuclear import of FUS have been linked to severe neurodegenerative diseases; hence, it is of great interest to understand this process and how it is dysregulated in disease. Transportin-1 (TNPO1) and the closely related transportin-2 have been identified as major nuclear import receptors of FUS. They bind to the C-terminal nuclear localization signal of FUS and mediate the protein's nuclear import and at the same time also suppress aberrant phase transitions of FUS in the cytoplasm. Whether FUS can utilize other nuclear transport receptors for the purpose of import and chaperoning has not been examined so far. Here, we show that FUS directly binds to different import receptors in vitro. FUS formed stable complexes not only with TNPO1 but also with transportin-3, importin ß, importin 7, or the importin ß/7 heterodimer. Binding of these alternative import receptors required arginine residues within FUS-RG/RGG motifs and was weakened by arginine methylation. Interaction with these importins suppressed FUS phase separation and reduced its sequestration into stress granules. In a permeabilized cell system, we further showed that transportin-3 had the capacity to import FUS into the nucleus, albeit with lower efficiency than TNPO1. Our data suggest that aggregation-prone RNA-binding proteins such as FUS may utilize a network of importins for chaperoning and import, similar to histones and ribosomal proteins.


Subject(s)
Cell Nucleus/metabolism , Karyopherins/metabolism , Molecular Chaperones/metabolism , RNA-Binding Protein FUS/metabolism , Receptors, Cytoplasmic and Nuclear/metabolism , beta Karyopherins/metabolism , Cell Nucleus/genetics , HeLa Cells , Humans , Karyopherins/genetics , Molecular Chaperones/genetics , Nuclear Localization Signals , Protein Binding , RNA-Binding Protein FUS/genetics , Receptors, Cytoplasmic and Nuclear/genetics , beta Karyopherins/genetics
2.
Cell Rep ; 33(12): 108538, 2020 12 22.
Article in English | MEDLINE | ID: mdl-33357437

ABSTRACT

Nuclear import receptors, also called importins, mediate nuclear import of proteins and chaperone aggregation-prone cargoes (e.g., neurodegeneration-linked RNA-binding proteins [RBPs]) in the cytoplasm. Importins were identified as modulators of cellular toxicity elicited by arginine-rich dipeptide repeat proteins (DPRs), an aberrant protein species found in C9orf72-linked amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD). Mechanistically, the link between importins and arginine-rich DPRs remains unclear. Here, we show that arginine-rich DPRs (poly-GR and poly-PR) bind directly to multiple importins and, in excess, promote their insolubility and condensation. In cells, poly-GR impairs Impα/ß-mediated nuclear import, including import of TDP-43, an RBP that aggregates in C9orf72-ALS/FTD patients. Arginine-rich DPRs promote phase separation and insolubility of TDP-43 in vitro and in cells, and this pathological interaction is suppressed by elevating importin concentrations. Our findings suggest that importins can decrease toxicity of arginine-rich DPRs by suppressing their pathological interactions.


Subject(s)
Arginine/metabolism , Dipeptides/metabolism , Receptors, Cytoplasmic and Nuclear/metabolism , Humans
3.
Proc Natl Acad Sci U S A ; 117(15): 8503-8514, 2020 04 14.
Article in English | MEDLINE | ID: mdl-32234784

ABSTRACT

The specific interaction of importins with nuclear localization signals (NLSs) of cargo proteins not only mediates nuclear import but also, prevents their aberrant phase separation and stress granule recruitment in the cytoplasm. The importin Transportin-1 (TNPO1) plays a key role in the (patho-)physiology of both processes. Here, we report that both TNPO1 and Transportin-3 (TNPO3) recognize two nonclassical NLSs within the cold-inducible RNA-binding protein (CIRBP). Our biophysical investigations show that TNPO1 recognizes an arginine-glycine(-glycine) (RG/RGG)-rich region, whereas TNPO3 recognizes a region rich in arginine-serine-tyrosine (RSY) residues. These interactions regulate nuclear localization, phase separation, and stress granule recruitment of CIRBP in cells. The presence of both RG/RGG and RSY regions in numerous other RNA-binding proteins suggests that the interaction of TNPO1 and TNPO3 with these nonclassical NLSs may regulate the formation of membraneless organelles and subcellular localization of numerous proteins.


Subject(s)
Cell Nucleus/metabolism , Nuclear Localization Signals , Peptide Fragments/metabolism , RNA-Binding Proteins/metabolism , beta Karyopherins/metabolism , Active Transport, Cell Nucleus , Arginine/chemistry , Arginine/metabolism , Cytoplasm/metabolism , Glycine/chemistry , Glycine/metabolism , HeLa Cells , Humans , Peptide Fragments/chemistry , Protein Binding , Protein Conformation , RNA-Binding Proteins/chemistry , Serine/chemistry , Serine/metabolism , Tyrosine/chemistry , Tyrosine/metabolism , beta Karyopherins/chemistry
4.
J Biol Chem ; 294(18): 7137-7150, 2019 05 03.
Article in English | MEDLINE | ID: mdl-30587571

ABSTRACT

Ribonucleoprotein (RNP) granules are membrane-less organelles consisting of RNA-binding proteins (RBPs) and RNA. RNA granules form through liquid-liquid phase separation (LLPS), whereby weak promiscuous interactions among RBPs and/or RNAs create a dense network of interacting macromolecules and drive the phase separation. Post-translational modifications (PTMs) of RBPs have emerged as important regulators of LLPS and RNP granule dynamics, as they can directly weaken or enhance the multivalent interactions between phase-separating macromolecules or can recruit or exclude certain macromolecules into or from condensates. Here, we review recent insights into how PTMs regulate phase separation and RNP granule dynamics, in particular arginine (Arg)-methylation and phosphorylation. We discuss how these PTMs regulate the phase behavior of prototypical RBPs and how, as "friend or foe," they might influence the assembly, disassembly, or material properties of cellular RNP granules, such as stress granules or amyloid-like condensates. We particularly highlight how PTMs control the phase separation and aggregation behavior of disease-linked RBPs. We also review how disruptions of PTMs might be involved in aberrant phase transitions and the formation of amyloid-like protein aggregates as observed in neurodegenerative diseases.


Subject(s)
Cytoplasmic Granules/metabolism , Protein Processing, Post-Translational , Ribonucleoproteins/metabolism , HeLa Cells , Humans , Methylation , Organelles/metabolism , Phase Transition , Phosphorylation
5.
Cell ; 173(3): 706-719.e13, 2018 04 19.
Article in English | MEDLINE | ID: mdl-29677514

ABSTRACT

Cytoplasmic FUS aggregates are a pathological hallmark in a subset of patients with frontotemporal dementia (FTD) or amyotrophic lateral sclerosis (ALS). A key step that is disrupted in these patients is nuclear import of FUS mediated by the import receptor Transportin/Karyopherin-ß2. In ALS-FUS patients, this is caused by mutations in the nuclear localization signal (NLS) of FUS that weaken Transportin binding. In FTD-FUS patients, Transportin is aggregated, and post-translational arginine methylation, which regulates the FUS-Transportin interaction, is lost. Here, we show that Transportin and arginine methylation have a crucial function beyond nuclear import-namely to suppress RGG/RG-driven phase separation and stress granule association of FUS. ALS-associated FUS-NLS mutations weaken the chaperone activity of Transportin and loss of FUS arginine methylation, as seen in FTD-FUS, promote phase separation, and stress granule partitioning of FUS. Our findings reveal two regulatory mechanisms of liquid-phase homeostasis that are disrupted in FUS-associated neurodegeneration.


Subject(s)
Arginine/chemistry , RNA-Binding Protein FUS/chemistry , beta Karyopherins/chemistry , Active Transport, Cell Nucleus , Amino Acid Motifs , Cytoplasm/metabolism , DNA Methylation , DNA, Complementary/metabolism , Densitometry , Frontotemporal Lobar Degeneration/metabolism , HeLa Cells , Homeostasis , Humans , Karyopherins/chemistry , Magnetic Resonance Spectroscopy , Methylation , Molecular Chaperones/chemistry , Mutation , Neurodegenerative Diseases/metabolism , Protein Binding , Protein Domains
6.
Nucleic Acids Res ; 43(17): e112, 2015 Sep 30.
Article in English | MEDLINE | ID: mdl-26007658

ABSTRACT

Any profound comprehension of gene function requires detailed information about the subcellular localization, molecular interactions and spatio-temporal dynamics of gene products. We developed a multifunctional integrase (MIN) tag for rapid and versatile genome engineering that serves not only as a genetic entry site for the Bxb1 integrase but also as a novel epitope tag for standardized detection and precipitation. For the systematic study of epigenetic factors, including Dnmt1, Dnmt3a, Dnmt3b, Tet1, Tet2, Tet3 and Uhrf1, we generated MIN-tagged embryonic stem cell lines and created a toolbox of prefabricated modules that can be integrated via Bxb1-mediated recombination. We used these functional modules to study protein interactions and their spatio-temporal dynamics as well as gene expression and specific mutations during cellular differentiation and in response to external stimuli. Our genome engineering strategy provides a versatile open platform for efficient generation of multiple isogenic cell lines to study gene function under physiological conditions.


Subject(s)
Cell Engineering/methods , Animals , Antibodies, Monoclonal , CRISPR-Cas Systems , Cell Differentiation/genetics , Cell Line , Embryonic Stem Cells/metabolism , Gene Expression , Genetic Loci , Genomics/methods , Integrases/genetics , Integrases/immunology , Integrases/metabolism , Mutation , Rats , Recombination, Genetic
7.
Mol Biol Cell ; 24(13): 2098-111, 2013 Jul.
Article in English | MEDLINE | ID: mdl-23676662

ABSTRACT

Ribonucleoprotein (RNP) granules are cytoplasmic, microscopically visible structures composed of RNA and protein with proposed functions in mRNA decay and storage. Trypanosomes have several types of RNP granules, but lack most of the granule core components identified in yeast and humans. The exception is SCD6/Rap55, which is essential for processing body (P-body) formation. In this study, we analyzed the role of trypanosome SCD6 in RNP granule formation. Upon overexpression, the majority of SCD6 aggregates to multiple granules enriched at the nuclear periphery that recruit both P-body and stress granule proteins, as well as mRNAs. Granule protein composition depends on granule distance to the nucleus. In contrast to findings in yeast and humans, granule formation does not correlate with translational repression and can also take place in the nucleus after nuclear targeting of SCD6. While the SCD6 Lsm domain alone is both necessary and sufficient for granule induction, the RGG motif determines granule type and number: the absence of an intact RGG motif results in the formation of fewer granules that resemble P-bodies. The differences in granule number remain after nuclear targeting, indicating translation-independent functions of the RGG domain. We propose that, in trypanosomes, a local increase in SCD6 concentration may be sufficient to induce granules by recruiting mRNA. Proteins that bind selectively to the RGG and/or Lsm domain of SCD6 could be responsible for regulating granule type and number.


Subject(s)
Cytoplasmic Granules/genetics , Cytoskeletal Proteins/genetics , Protozoan Proteins/genetics , RNA, Messenger/metabolism , Ribonucleoproteins/genetics , Trypanosoma brucei brucei/genetics , Amino Acid Sequence , Cytoplasmic Granules/metabolism , Cytoplasmic Granules/ultrastructure , Cytoskeletal Proteins/chemistry , Cytoskeletal Proteins/metabolism , Gene Expression Regulation , Molecular Sequence Data , Protein Binding , Protein Structure, Tertiary , Protozoan Proteins/chemistry , Protozoan Proteins/metabolism , RNA, Messenger/genetics , Ribonucleoproteins/chemistry , Ribonucleoproteins/metabolism , Trypanosoma brucei brucei/metabolism , Trypanosoma brucei brucei/ultrastructure
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