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1.
Nucleic Acids Res ; 51(17): 9397-9414, 2023 09 22.
Artigo em Inglês | MEDLINE | ID: mdl-37526268

RESUMO

Ribosome biogenesis is one of the biggest consumers of cellular energy. More than 20 genetic diseases (ribosomopathies) and multiple cancers arise from defects in the production of the 40S (SSU) and 60S (LSU) ribosomal subunits. Defects in the production of either the SSU or LSU result in p53 induction through the accumulation of the 5S RNP, an LSU assembly intermediate. While the mechanism is understood for the LSU, it is still unclear how SSU production defects induce p53 through the 5S RNP since the production of the two subunits is believed to be uncoupled. Here, we examined the response to SSU production defects to understand how this leads to the activation of p53 via the 5S RNP. We found that p53 activation occurs rapidly after SSU production is blocked, prior to changes in mature ribosomal RNA (rRNA) levels but correlated with early, middle and late SSU pre-rRNA processing defects. Furthermore, both nucleolar/nuclear LSU maturation, in particular late stages in 5.8S rRNA processing, and pre-LSU export were affected by SSU production defects. We have therefore uncovered a novel connection between the SSU and LSU production pathways in human cells, which explains how p53 is induced in response to SSU production defects.


Assuntos
Subunidades Ribossômicas Maiores , Subunidades Ribossômicas Menores , Proteína Supressora de Tumor p53 , Humanos , Proteínas Ribossômicas/genética , Proteínas Ribossômicas/metabolismo , Subunidades Ribossômicas Maiores/metabolismo , Subunidades Ribossômicas Menores/metabolismo , Ribossomos/genética , Ribossomos/metabolismo , RNA Ribossômico/genética , RNA Ribossômico/metabolismo , Proteína Supressora de Tumor p53/genética , Proteína Supressora de Tumor p53/metabolismo
2.
Proc Natl Acad Sci U S A ; 117(51): 32386-32394, 2020 12 22.
Artigo em Inglês | MEDLINE | ID: mdl-33288716

RESUMO

In translation elongation, two translational guanosine triphosphatase (trGTPase) factors EF1A and EF2 alternately bind to the ribosome and promote polypeptide elongation. The ribosomal stalk is a multimeric ribosomal protein complex which plays an essential role in the recruitment of EF1A and EF2 to the ribosome and their GTP hydrolysis for efficient and accurate translation elongation. However, due to the flexible nature of the ribosomal stalk, its structural dynamics and mechanism of action remain unclear. Here, we applied high-speed atomic force microscopy (HS-AFM) to directly visualize the action of the archaeal ribosomal heptameric stalk complex, aP0•(aP1•aP1)3 (P-stalk). HS-AFM movies clearly demonstrated the wobbling motion of the P-stalk on the large ribosomal subunit where the stalk base adopted two conformational states, a predicted canonical state, and a newly identified flipped state. Moreover, we showed that up to seven molecules of archaeal EF1A (aEF1A) and archaeal EF2 (aEF2) assembled around the ribosomal P-stalk, corresponding to the copy number of the common C-terminal factor-binding site of the P-stalk. These results provide visual evidence for the factor-pooling mechanism by the P-stalk within the ribosome and reveal that the ribosomal P-stalk promotes translation elongation by increasing the local concentration of translational GTPase factors.


Assuntos
Proteínas Arqueais/química , Fatores de Elongação Ligados a GTP Fosfo-Hidrolases/metabolismo , Microscopia de Força Atômica/métodos , Proteínas Ribossômicas/química , Subunidades Ribossômicas Maiores/química , Proteínas Arqueais/metabolismo , Escherichia coli/genética , Fatores de Elongação Ligados a GTP Fosfo-Hidrolases/química , GTP Fosfo-Hidrolases/metabolismo , Guanosina Difosfato/metabolismo , Guanosina Trifosfato/metabolismo , Complexos Multiproteicos/química , Complexos Multiproteicos/metabolismo , Elongação Traducional da Cadeia Peptídica , Pyrococcus horikoshii/química , Pyrococcus horikoshii/genética , Proteínas Ribossômicas/metabolismo , Subunidades Ribossômicas Maiores/metabolismo
3.
Nat Commun ; 11(1): 3751, 2020 07 27.
Artigo em Inglês | MEDLINE | ID: mdl-32719344

RESUMO

The protein composition and structure of assembling 60S ribosomal subunits undergo numerous changes as pre-ribosomes transition from the nucleolus to the nucleoplasm. This includes stable anchoring of the Rpf2 subcomplex containing 5S rRNA, rpL5, rpL11, Rpf2 and Rrs1, which initially docks onto the flexible domain V of rRNA at earlier stages of assembly. In this work, we tested the function of the C-terminal domain (CTD) of Rpf2 during these anchoring steps, by truncating this extension and assaying effects on middle stages of subunit maturation. The rpf2Δ255-344 mutation affects proper folding of rRNA helices H68-70 during anchoring of the Rpf2 subcomplex. In addition, several assembly factors (AFs) are absent from pre-ribosomes or in altered conformations. Consequently, major remodeling events fail to occur: rotation of the 5S RNP, maturation of the peptidyl transferase center (PTC) and the nascent polypeptide exit tunnel (NPET), and export of assembling subunits to the cytoplasm.


Assuntos
Ribonucleoproteínas/metabolismo , Subunidades Ribossômicas Maiores/metabolismo , Rotação , Saccharomyces cerevisiae/metabolismo , Transporte Ativo do Núcleo Celular , Núcleo Celular/metabolismo , Modelos Moleculares , Proteínas Mutantes/química , Proteínas Mutantes/genética , Mutação/genética , Domínios Proteicos , Dobramento de Proteína , Proteínas de Ligação a RNA/química , Proteínas de Ligação a RNA/metabolismo , Proteínas de Ligação a RNA/ultraestrutura , Subunidades Ribossômicas Maiores/química , Saccharomyces cerevisiae/crescimento & desenvolvimento , Saccharomyces cerevisiae/ultraestrutura , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/ultraestrutura
4.
Sci Rep ; 8(1): 11904, 2018 08 09.
Artigo em Inglês | MEDLINE | ID: mdl-30093689

RESUMO

The entire chemical modification repertoire of yeast ribosomal RNAs and the enzymes responsible for it have recently been identified. Nonetheless, in most cases the precise roles played by these chemical modifications in ribosome structure, function and regulation remain totally unclear. Previously, we demonstrated that yeast Rrp8 methylates m1A645 of 25S rRNA in yeast. Here, using mung bean nuclease protection assays in combination with quantitative RP-HPLC and primer extension, we report that 25S/28S rRNA of S. pombe, C. albicans and humans also contain a single m1A methylation in the helix 25.1. We characterized nucleomethylin (NML) as a human homolog of yeast Rrp8 and demonstrate that NML catalyzes the m1A1322 methylation of 28S rRNA in humans. Our in vivo structural probing of 25S rRNA, using both DMS and SHAPE, revealed that the loss of the Rrp8-catalyzed m1A modification alters the conformation of domain I of yeast 25S rRNA causing translation initiation defects detectable as halfmers formation, likely because of incompetent loading of 60S on the 43S-preinitiation complex. Quantitative proteomic analysis of the yeast Δrrp8 mutant strain using 2D-DIGE, revealed that loss of m1A645 impacts production of specific set of proteins involved in carbohydrate metabolism, translation and ribosome synthesis. In mouse, NML has been characterized as a metabolic disease-associated gene linked to obesity. Our findings in yeast also point to a role of Rrp8 in primary metabolism. In conclusion, the m1A modification is crucial for maintaining an optimal 60S conformation, which in turn is important for regulating the production of key metabolic enzymes.


Assuntos
Adenosina/análogos & derivados , Metiltransferases/metabolismo , Proteínas Nucleares/metabolismo , RNA Ribossômico/metabolismo , Proteínas Ribossômicas/metabolismo , Subunidades Ribossômicas Maiores/metabolismo , Adenosina/metabolismo , Sequência de Bases , Eletroforese em Gel Bidimensional , Células HCT116 , Humanos , Metilação , Metiltransferases/genética , Mutação , Proteínas Nucleares/química , Proteínas Nucleares/genética , Conformação de Ácido Nucleico , Domínios Proteicos , Proteína O-Metiltransferase , Proteômica/métodos , RNA Ribossômico/química , RNA Ribossômico/genética , Proteínas de Ligação a RNA , Proteínas Ribossômicas/química , Proteínas Ribossômicas/genética , Subunidades Ribossômicas Maiores/química , Subunidades Ribossômicas Maiores/genética , Proteínas de Saccharomyces cerevisiae/química , Proteínas de Saccharomyces cerevisiae/genética , Proteínas de Saccharomyces cerevisiae/metabolismo
5.
J Clin Invest ; 128(4): 1597-1614, 2018 04 02.
Artigo em Inglês | MEDLINE | ID: mdl-29408805

RESUMO

Ribosomal proteins (RP) regulate specific gene expression by selectively translating subsets of mRNAs. Indeed, in Diamond-Blackfan anemia and 5q- syndrome, mutations in RP genes lead to a specific defect in erythroid gene translation and cause anemia. Little is known about the molecular mechanisms of selective mRNA translation and involvement of ribosomal-associated factors in this process. Ribonuclease inhibitor 1 (RNH1) is a ubiquitously expressed protein that binds to and inhibits pancreatic-type ribonucleases. Here, we report that RNH1 binds to ribosomes and regulates erythropoiesis by controlling translation of the erythroid transcription factor GATA1. Rnh1-deficient mice die between embryonic days E8.5 and E10 due to impaired production of mature erythroid cells from progenitor cells. In Rnh1-deficient embryos, mRNA levels of Gata1 are normal, but GATA1 protein levels are decreased. At the molecular level, we found that RNH1 binds to the 40S subunit of ribosomes and facilitates polysome formation on Gata1 mRNA to confer transcript-specific translation. Further, RNH1 knockdown in human CD34+ progenitor cells decreased erythroid differentiation without affecting myelopoiesis. Our results reveal an unsuspected role for RNH1 in the control of GATA1 mRNA translation and erythropoiesis.


Assuntos
Embrião de Mamíferos/metabolismo , Eritropoese , Fator de Transcrição GATA1/biossíntese , Células-Tronco Hematopoéticas/metabolismo , Biossíntese de Proteínas , Proteínas/metabolismo , Animais , Embrião de Mamíferos/citologia , Fator de Transcrição GATA1/genética , Células-Tronco Hematopoéticas/citologia , Humanos , Células K562 , Camundongos , Camundongos Knockout , Proteínas/genética , Subunidades Ribossômicas Maiores/genética , Subunidades Ribossômicas Maiores/metabolismo
6.
Mol Biol Cell ; 24(3): 184-93, 2013 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-23171548

RESUMO

Mammalian mitochondria harbor a dedicated translation apparatus that is required for the synthesis of 13 mitochondrial DNA (mtDNA)-encoded polypeptides, all of which are essential components of the oxidative phosphorylation (OXPHOS) complexes. Little is known about the mechanism of assembly of the mitoribosomes that catalyze this process. Here we show that C7orf30, a member of the large family of DUF143 proteins, associates with the mitochondrial large ribosomal subunit (mt-LSU). Knockdown of C7orf30 by short hairpin RNA (shRNA) does not alter the sedimentation profile of the mt-LSU, but results in the depletion of several mt-LSU proteins and decreased monosome formation. This leads to a mitochondrial translation defect, involving the majority of mitochondrial polypeptides, and a severe OXPHOS assembly defect. Immunoprecipitation and mass spectrometry analyses identified mitochondrial ribosomal protein (MRP)L14 as the specific interacting protein partner of C7orf30 in the mt-LSU. Reciprocal experiments in which MRPL14 was depleted by small interfering RNA (siRNA) phenocopied the C7orf30 knockdown. Members of the DUF143 family have been suggested to be universally conserved ribosomal silencing factors, acting by sterically inhibiting the association of the small and large ribosomal subunits. Our results demonstrate that, although the interaction between C7orf30 and MRPL14 has been evolutionarily conserved, human C7orf30 is, on the contrary, essential for mitochondrial ribosome biogenesis and mitochondrial translation.


Assuntos
Mitocôndrias/genética , Proteínas Mitocondriais/metabolismo , Biossíntese de Proteínas , Proteínas Ribossômicas/metabolismo , Subunidades Ribossômicas Maiores/metabolismo , Técnicas de Silenciamento de Genes , Células HEK293 , Humanos , Mitocôndrias/metabolismo , Proteínas Mitocondriais/biossíntese , Proteínas Mitocondriais/genética , Ligação Proteica , RNA Interferente Pequeno/genética , Proteínas Ribossômicas/genética
7.
Cell Cycle ; 10(20): 3441-6, 2011 Oct 15.
Artigo em Inglês | MEDLINE | ID: mdl-22031223

RESUMO

Ribosome biogenesis and translation can be simplified as the processes of generating ribosomes and their use for decoding mRNA into a protein. Ribosome biogenesis has been efficiently studied in unicellular organisms like the budding yeast, allowing us a deep and basic knowledge of this process in growing cells. Translation has been modeled in vitro and in unicellular organisms. These studies have given us an important insight into the mechanisms and evolutionarily conserved aspects of ribosome biology. However, we advocate the need of the direct study of these processes in multicellular organisms. Analysis of ribosome biogenesis and translation in vivo in Metazoa and mammalian models is emerging and unveils the unexpected consequences of perturbed ribosome biogenesis and translation. Here, we will describe how one factor, eIF6, plays a crucial role both in the generation of the large ribosomal subunit and its availability for translation. From there, we will make specific conclusions on the physiological relevance of eIF6 in 80S formation, cell cycle progression and disease, raising the point that the control of gene expression may occur at the unexpected level of the large ribosomal subunit. In the future, the modulation of eIF6 binding to the 60S may be pharmacologically exploited to reduce the growth of cancer cells or ameliorate the phenotype of SDS syndrome.


Assuntos
Doenças da Medula Óssea/metabolismo , Ciclo Celular/fisiologia , Transformação Celular Neoplásica/metabolismo , Fatores de Iniciação em Eucariotos/metabolismo , Insuficiência Pancreática Exócrina/metabolismo , Regulação da Expressão Gênica/fisiologia , Lipomatose/metabolismo , Biossíntese de Proteínas/fisiologia , Subunidades Ribossômicas Maiores/fisiologia , Animais , Humanos , Modelos Biológicos , Subunidades Ribossômicas Maiores/metabolismo , Síndrome de Shwachman-Diamond , Transdução de Sinais/fisiologia
8.
Mol Cell Biol ; 31(22): 4482-99, 2011 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-21930789

RESUMO

Protein syntheses mediated by cellular and viral internal ribosome entry sites (IRESs) are believed to have many features in common. Distinct mechanisms for ribosome recruitment and preinitiation complex assembly between the two processes have not been identified thus far. Here we show that the methylation status of rRNA differentially influenced the mechanism of 80S complex formation on IRES elements from the cellular sodium-coupled neutral amino acid transporter 2 (SNAT2) versus the hepatitis C virus mRNA. Translation initiation involves the assembly of the 48S preinitiation complex, followed by joining of the 60S ribosomal subunit and formation of the 80S complex. Abrogation of rRNA methylation did not affect the 48S complex but resulted in impairment of 80S complex assembly on the cellular, but not the viral, IRESs tested. Impairment of 80S complex assembly on the amino acid transporter SNAT2 IRES was rescued by purified 60S subunits containing fully methylated rRNA. We found that rRNA methylation did not affect the activity of any of the viral IRESs tested but affected the activity of numerous cellular IRESs. This work reveals a novel mechanism operating on a cohort of cellular IRESs that involves rRNA methylation for proper 80S complex assembly and efficient translation initiation.


Assuntos
Sistema A de Transporte de Aminoácidos/metabolismo , Iniciação Traducional da Cadeia Peptídica , Processamento Pós-Transcricional do RNA , RNA Mensageiro/genética , RNA Ribossômico/metabolismo , Subunidades Ribossômicas/metabolismo , Sistema A de Transporte de Aminoácidos/genética , Transportador 1 de Aminoácidos Catiônicos/biossíntese , Células HEK293 , Células HeLa , Hepacivirus/genética , Humanos , Metilação , Biossíntese de Proteínas , Proteínas Proto-Oncogênicas c-myc/biossíntese , RNA Mensageiro/metabolismo , RNA Viral/química , RNA Viral/genética , RNA Viral/metabolismo , Proteínas Ribossômicas/biossíntese , Subunidades Ribossômicas/química , Subunidades Ribossômicas Maiores/metabolismo , Subunidades Ribossômicas Menores/metabolismo , Estresse Fisiológico
9.
Mol Biol Cell ; 20(20): 4424-34, 2009 Oct.
Artigo em Inglês | MEDLINE | ID: mdl-19710426

RESUMO

Mammalian nucleostemin (NS) is a nucleolar guanosine triphosphate-binding protein implicated in cell cycle progression, stem cell proliferation, and ribosome assembly. Drosophila melanogaster contains a four-member nucleostemin family (NS1-4). NS1 is the closest orthologue to human NS; it shares 33% identity and 67% similarity with human NS. We show that NS1 has intrinsic GTPase and ATPase activity and that it is present within nucleoli of most larval and adult cells. Endogenous NS1 and lightly expressed green fluorescent protein (GFP)-NS1 enrich within the nucleolar granular regions as expected, whereas overexpressed GFP-NS1 localized throughout the nucleolus and nucleoplasm, and to several transcriptionally active interbands of polytene chromosomes. Severe overexpression correlated with the appearance of melanotic tumors and larval/pupal lethality. Depletion of 60% of NS1 transcripts also lead to larval and pupal lethality. NS1 protein depletion>95 correlated with the loss of imaginal island (precursor) cells in the larval midgut and to an apparent block in the nucleolar release of large ribosomal subunits in terminally differentiated larval midgut polyploid cells. Ultrastructural examination of larval Malpighian tubule cells depleted for NS1 showed a loss of cytoplasmic ribosomes and a concomitant appearance of cytoplasmic preautophagosomes and lysosomes. We interpret the appearance of these structures as indicators of cell stress response.


Assuntos
Trifosfato de Adenosina/metabolismo , Proteínas de Drosophila/fisiologia , Proteínas de Ligação ao GTP/fisiologia , Guanosina Trifosfato/metabolismo , Intestinos/citologia , Subunidades Ribossômicas Maiores/metabolismo , Sequência de Aminoácidos , Animais , Diferenciação Celular , Nucléolo Celular/enzimologia , Cromossomos/ultraestrutura , Sequência Conservada , Proteínas de Drosophila/deficiência , Proteínas de Drosophila/genética , Proteínas de Ligação ao GTP/deficiência , Proteínas de Ligação ao GTP/genética , Deleção de Genes , Técnicas de Silenciamento de Genes , Genes Reporter , Intestinos/enzimologia , Intestinos/crescimento & desenvolvimento , Larva , Lisossomos/fisiologia , Túbulos de Malpighi/enzimologia , Túbulos de Malpighi/ultraestrutura , Dados de Sequência Molecular , Neoplasias Experimentais/genética , Fagossomos/fisiologia , Pupa , Interferência de RNA , Alinhamento de Sequência , Homologia de Sequência de Aminoácidos
10.
Bing Du Xue Bao ; 25(3): 213-9, 2009 May.
Artigo em Chinês | MEDLINE | ID: mdl-19634765

RESUMO

Six genes for nucleoprotein, phosphoprotein, matrix protein, hemagglutinin neuramindase protein, fusion protein and large protein were obtained by reverse transcription and PCR methods based on our previous work of sequencing full length genome of sendai virus BB1 strain (DQ219803 in GenBank). Sequencing showed the six genes were completely identical to that we reported. In order to supply the function necessary for rescuing and packaging of sendai virus vector in trans, the N, P, M, F, HN and L genes were separately cloned into an adenoviral shuttle expression vector pDC316 resulting in six recombinant adenoviral plasimds. Six replicating defective recombinant adenoviruses Ad5-N, Ad5-P, Ad5-M, Ad5-F, Ad5-HN and Ad5-L were obtained by separately cotransfection of pDC316 carrying N, P, M, F, HN and L genes with the adenoviral genomic plasmid pBHGloxdeltaE1, 3Cre into HEK293cells. Restrictive enzymatic results indicated that the six recombinant plasmids were correctly constructed. PCR results showed the recombinant adenoviruses contained the respective SeV genes . Western blotting as well as immunofluorescence assay indicated the expression of the corresponding proteins of sendai virus. These work laid the basis for the construction of the full length genome plasmid of sendai virus BB1 strain and the setup of SeV virus vector system based on SeV BB1 strain.


Assuntos
Regulação Viral da Expressão Gênica , Vírus Sendai/genética , Vírus Sendai/metabolismo , Proteínas Virais/genética , Proteínas Virais/metabolismo , Adenoviridae/genética , Animais , Linhagem Celular , Clonagem Molecular , Vetores Genéticos/genética , Proteína HN/genética , Proteína HN/metabolismo , Humanos , Macaca mulatta , Nucleoproteínas/genética , Nucleoproteínas/metabolismo , Fosfoproteínas/genética , Fosfoproteínas/metabolismo , Reação em Cadeia da Polimerase Via Transcriptase Reversa , Subunidades Ribossômicas Maiores/genética , Subunidades Ribossômicas Maiores/metabolismo , Proteínas Virais de Fusão/genética , Proteínas Virais de Fusão/metabolismo , Proteínas da Matriz Viral/genética , Proteínas da Matriz Viral/metabolismo
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