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1.
Res Sq ; 2023 Dec 07.
Artículo en Inglés | MEDLINE | ID: mdl-38106181

RESUMEN

NPM1 is an abundant nucleolar chaperone that, in addition to facilitating ribosome biogenesis, contributes to nucleolar stress responses and tumor suppression through its regulation of the p14 Alternative Reading Frame tumor suppressor protein (p14ARF). Oncogenic stress induces p14ARF to inhibit MDM2, stabilize p53 and arrest the cell cycle. Under non-stress conditions, NPM1 stabilizes p14ARF in nucleoli, preventing its degradation and blocking p53 activation. However, the mechanisms underlying the regulation of p14ARF by NPM1 are unclear because the structural features of the p14ARF-NPM1 complex remain elusive. Here we show that NPM1 sequesters p14ARF within phase-separated condensates, facilitating the assembly of p14ARF into a gel-like meso-scale network. This assembly is mediated by intermolecular contacts formed by hydrophobic residues in an α-helix and ß-strands within a partially folded N-terminal domain of p14ARF. Those hydrophobic interactions promote phase separation with NPM1, enhance nucleolar partitioning of p14ARF, restrict p14ARF and NPM1 diffusion within condensates and in nucleoli, and reduce cell viability. Our structural model provides novel insights into the multifaceted chaperone function of NPM1 in nucleoli by mechanistically linking the nucleolar localization of p14ARF to its partial folding and meso-scale assembly upon phase separation with NPM1.

2.
Mol Cell ; 82(23): 4443-4457.e9, 2022 12 01.
Artículo en Inglés | MEDLINE | ID: mdl-36423630

RESUMEN

Ribosome biogenesis takes place in the nucleolus, a nuclear membrane-less organelle. Although well studied, it remains unknown how nascent ribosomal subunits separate from the central chromatin compartment and move to the outer granular component, where maturation occurs. We find that the Schizosaccharomyces pombe nucleophosmin-like protein Fkbp39 localizes to rDNA sites encoding the 60S subunit rRNA, and this localization contributes to its specific association with nascent 60S subunits. Fkbp39 dissociates from chromatin to bind nascent 60S subunits, causing the latter to partition away from chromatin and from nascent 40S subunits through liquid-liquid phase separation. In vivo, Fkbp39 binding directs the translocation of nascent 60S subunits toward the nucleophosmin-rich granular component. This process increases the efficiency of 60S subunit assembly, facilitating the incorporation of 60S RNA domain III. Thus, chromatin localization determines the specificity of nucleophosmin in sorting nascent ribosomal subunits and coordinates their movement into specialized assembly compartments within the nucleolus.


Asunto(s)
Cromatina , Schizosaccharomyces , Cromatina/genética , Nucleofosmina , Nucléolo Celular/genética , Membrana Nuclear , Schizosaccharomyces/genética , Ribosomas/genética
3.
Cancer Discov ; 12(4): 1152-1169, 2022 04 01.
Artículo en Inglés | MEDLINE | ID: mdl-34903620

RESUMEN

NUP98 fusion oncoproteins (FO) are drivers in pediatric leukemias and many transform hematopoietic cells. Most NUP98 FOs harbor an intrinsically disordered region from NUP98 that is prone to liquid-liquid phase separation (LLPS) in vitro. A predominant class of NUP98 FOs, including NUP98-HOXA9 (NHA9), retains a DNA-binding homeodomain, whereas others harbor other types of DNA- or chromatin-binding domains. NUP98 FOs have long been known to form puncta, but long-standing questions are how nuclear puncta form and how they drive leukemogenesis. Here we studied NHA9 condensates and show that homotypic interactions and different types of heterotypic interactions are required to form nuclear puncta, which are associated with aberrant transcriptional activity and transformation of hematopoietic stem and progenitor cells. We also show that three additional leukemia-associated NUP98 FOs (NUP98-PRRX1, NUP98-KDM5A, and NUP98-LNP1) form nuclear puncta and transform hematopoietic cells. These findings indicate that LLPS is critical for leukemogenesis by NUP98 FOs. SIGNIFICANCE: We show that homotypic and heterotypic mechanisms of LLPS control NUP98-HOXA9 puncta formation, modulating transcriptional activity and transforming hematopoietic cells. Importantly, these mechanisms are generalizable to other NUP98 FOs that share similar domain structures. These findings address long-standing questions on how nuclear puncta form and their link to leukemogenesis. This article is highlighted in the In This Issue feature, p. 873.


Asunto(s)
Leucemia , Proteínas de Complejo Poro Nuclear , Carcinogénesis , Núcleo Celular , Niño , Proteínas de Homeodominio/genética , Proteínas de Homeodominio/metabolismo , Humanos , Leucemia/genética , Proteínas de Complejo Poro Nuclear/genética , Proteínas de Fusión Oncogénica/genética , Proteínas de Fusión Oncogénica/metabolismo , Proteína 2 de Unión a Retinoblastoma
4.
Nature ; 581(7807): 209-214, 2020 05.
Artículo en Inglés | MEDLINE | ID: mdl-32405004

RESUMEN

Intracellular bodies such as nucleoli, Cajal bodies and various signalling assemblies represent membraneless organelles, or condensates, that form via liquid-liquid phase separation (LLPS)1,2. Biomolecular interactions-particularly homotypic interactions mediated by self-associating intrinsically disordered protein regions-are thought to underlie the thermodynamic driving forces for LLPS, forming condensates that can facilitate the assembly and processing of biochemically active complexes, such as ribosomal subunits within the nucleolus. Simplified model systems3-6 have led to the concept that a single fixed saturation concentration is a defining feature of endogenous LLPS7-9, and has been suggested as a mechanism for intracellular concentration buffering2,7,8,10. However, the assumption of a fixed saturation concentration remains largely untested within living cells, in which the richly multicomponent nature of condensates could complicate this simple picture. Here we show that heterotypic multicomponent interactions dominate endogenous LLPS, and give rise to nucleoli and other condensates that do not exhibit a fixed saturation concentration. As the concentration of individual components is varied, their partition coefficients change in a manner that can be used to determine the thermodynamic free energies that underlie LLPS. We find that heterotypic interactions among protein and RNA components stabilize various archetypal intracellular condensates-including the nucleolus, Cajal bodies, stress granules and P-bodies-implying that the composition of condensates is finely tuned by the thermodynamics of the underlying biomolecular interaction network. In the context of RNA-processing condensates such as the nucleolus, this manifests in the selective exclusion of fully assembled ribonucleoprotein complexes, providing a thermodynamic basis for vectorial ribosomal RNA flux out of the nucleolus. This methodology is conceptually straightforward and readily implemented, and can be broadly used to extract thermodynamic parameters from microscopy images. These approaches pave the way for a deeper understanding of the thermodynamics of multicomponent intracellular phase behaviour and its interplay with the nonequilibrium activity that is characteristic of endogenous condensates.


Asunto(s)
Espacio Intracelular/química , Espacio Intracelular/metabolismo , Orgánulos/química , Orgánulos/metabolismo , Termodinámica , Proteínas Adaptadoras Transductoras de Señales/deficiencia , Nucléolo Celular/química , Nucléolo Celular/metabolismo , Cuerpos Enrollados/química , Cuerpos Enrollados/metabolismo , Gránulos Citoplasmáticos/química , Gránulos Citoplasmáticos/metabolismo , ADN Helicasas/deficiencia , Células HeLa , Humanos , Proteínas Nucleares/química , Proteínas Nucleares/metabolismo , Nucleofosmina , Transición de Fase , Proteínas de Unión a Poli-ADP-Ribosa/deficiencia , ARN Helicasas/deficiencia , Proteínas con Motivos de Reconocimiento de ARN/deficiencia , ARN Ribosómico/química , ARN Ribosómico/metabolismo , Proteínas de Unión al ARN , Ribosomas/química , Ribosomas/metabolismo
5.
Nat Commun ; 9(1): 5064, 2018 11 29.
Artículo en Inglés | MEDLINE | ID: mdl-30498217

RESUMEN

The nucleolus, the site for ribosome biogenesis contains hundreds of proteins and several types of RNA. The functions of many non-ribosomal nucleolar proteins are poorly understood, including Surfeit locus protein 6 (SURF6), an essential disordered protein with roles in ribosome biogenesis and cell proliferation. SURF6 co-localizes with Nucleophosmin (NPM1), a highly abundant protein that mediates the liquid-like features of the granular component region of the nucleolus through phase separation. Here, we show that electrostatically-driven interactions between disordered regions of NPM1 and SURF6 drive liquid-liquid phase separation. We demonstrate that co-existing heterotypic (NPM1-SURF6) and homotypic (NPM1-NPM1) scaffolding interactions within NPM1-SURF6 liquid-phase droplets dynamically and seamlessly interconvert in response to variations in molecular crowding and protein concentrations. We propose a mechanism wherein NPM1-dependent nucleolar scaffolds are modulated by non-ribosomal proteins through active rearrangements of interaction networks that can possibly contribute to the directionality of ribosomal biogenesis within the liquid-like nucleolus.


Asunto(s)
Proteínas Nucleares/metabolismo , Ribosomas/metabolismo , Nucléolo Celular/metabolismo , Recuperación de Fluorescencia tras Fotoblanqueo , Humanos , Nucleofosmina , Biogénesis de Organelos , Unión Proteica , ARN Ribosómico/metabolismo
6.
J Mol Biol ; 430(23): 4773-4805, 2018 11 02.
Artículo en Inglés | MEDLINE | ID: mdl-30017918

RESUMEN

Membrane-less organelles are cellular structures which arise through the phenomenon of phase separation. This process enables compartmentalization of specific sets of macromolecules (e.g., proteins, nucleic acids), thereby regulating cellular processes by increasing local concentration, and modulating the structure and dynamics of their constituents. Understanding the connection between structure, material properties and function of membrane-less organelles requires inter-disciplinary approaches, which address length and timescales that span several orders of magnitude (e.g., Ångstroms to micrometer, picoseconds to hours). In this review, we discuss the wide variety of methods that have been applied to characterize the morphology, rheology, structure and dynamics of membrane-less organelles and their components, in vitro and in live cells.


Asunto(s)
Orgánulos/metabolismo , Proteínas/metabolismo , ARN Mensajero/metabolismo , Animales , Fenómenos Biofísicos , Perfilación de la Expresión Génica , Humanos , Transición de Fase , Proteómica
7.
Biochemistry ; 52(49): 8843-54, 2013 Dec 10.
Artículo en Inglés | MEDLINE | ID: mdl-24236614

RESUMEN

Susceptibility to aggregation is general to proteins because of the potential for intermolecular interactions between hydrophobic stretches in their amino acid sequences. Protein aggregation has been implicated in several catastrophic diseases, yet we still lack in-depth understanding about how proteins are channeled to this state. Using a predominantly ß-sheet protein whose folding has been explored in detail, cellular retinoic acid-binding protein 1 (CRABP1), as a model, we have tackled the challenge of understanding the links between a protein's natural tendency to fold, 'breathe', and function with its propensity to misfold and aggregate. We identified near-native dynamic species that lead to aggregation and found that inherent structural fluctuations in the native protein, resulting in opening of the ligand-entry portal, expose hydrophobic residues on the most vulnerable aggregation-prone sequences in CRABP1. CRABP1 and related intracellullar lipid-binding proteins have not been reported to aggregate inside cells, and we speculate that the cellular concentration of their open, aggregation-prone conformations is sufficient for ligand binding but below the critical concentration for aggregation. Our finding provides an example of how nature fine-tunes a delicate balance between protein function, conformational variability, and aggregation vulnerability and implies that with the evolutionary requirement for proteins to fold and function, aggregation becomes an unavoidable but controllable risk.


Asunto(s)
Receptores de Ácido Retinoico/química , Sustitución de Aminoácidos , Animales , Medición de Intercambio de Deuterio , Enlace de Hidrógeno , Interacciones Hidrofóbicas e Hidrofílicas , Ratones , Modelos Moleculares , Resonancia Magnética Nuclear Biomolecular , Unión Proteica , Pliegue de Proteína , Estabilidad Proteica , Estructura Secundaria de Proteína , Estructura Terciaria de Proteína , Desplegamiento Proteico , Receptores de Ácido Retinoico/genética
8.
Structure ; 21(3): 476-85, 2013 Mar 05.
Artículo en Inglés | MEDLINE | ID: mdl-23454187

RESUMEN

Protein folding and aggregation inevitably compete with one another. This competition is even keener for proteins with frustrated landscapes, such as those rich in ß structure. It is interesting that, despite their rugged energy landscapes and high ß sheet content, intracellular lipid-binding proteins (iLBPs) appear to successfully avoid aggregation, as they are not implicated in aggregation diseases. In this study, we used a canonical iLBP, cellular retinoic acid-binding protein 1 (CRABP1), to understand better how folding is favored over aggregation. Analysis of folding kinetics of point mutants reveals that the folding pathway of CRABP1 involves early barrel closure. This folding mechanism protects sequences in CRABP1 that comprise cores of aggregates as identified by nuclear magnetic resonance. The amino acid conservation pattern in other iLBPs suggests that early barrel closure may be a general strategy for successful folding and minimization of aggregation. We suggest that folding mechanisms in general may incorporate steps that disfavor aggregation.


Asunto(s)
Pliegue de Proteína , Receptores de Ácido Retinoico/química , Animales , Cristalografía por Rayos X , Escherichia coli/genética , Cinética , Ratones , Simulación de Dinámica Molecular , Mutación , Estructura Secundaria de Proteína , Estructura Terciaria de Proteína , Receptores de Ácido Retinoico/genética , Proteínas Recombinantes de Fusión/química , Proteínas Recombinantes de Fusión/genética , Relación Estructura-Actividad , Termodinámica
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