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1.
Int J Mol Sci ; 24(22)2023 Nov 14.
Artigo em Inglês | MEDLINE | ID: mdl-38003508

RESUMO

FMRP is a multifunctional protein encoded by the Fragile X Messenger Ribonucleoprotein 1 gene (FMR1). The inactivation of the FMR1 gene results in fragile X syndrome (FXS), a serious neurodevelopmental disorder. FMRP deficiency causes abnormal neurite outgrowth, which is likely to lead to abnormal learning and memory capabilities. However, the mechanism of FMRP in modulating neuronal development remains unknown. We found that FMRP enhances the translation of 4EBP2, a neuron-specific form of 4EBPs that inactivates eIF4E by inhibiting the interaction between eIF4E and eIF4G. Depletion of 4EBP2 results in abnormal neurite outgrowth. Moreover, the impairment of neurite outgrowth upon FMRP depletion was overcome by the ectopic expression of 4EBP2. These results suggest that FMRP controls neuronal development by enhancing 4EBP2 expression at the translational level. In addition, treatment with 4EGI-1, a chemical that blocks eIF4E activity, restored neurite length in FMRP-depleted and 4EBP2-depleted cells. In conclusion, we discovered that 4EBP2 functions as a key downstream regulator of FMRP activity in neuronal development and that FMRP represses eIF4E activity by enhancing 4EBP2 translation.


Assuntos
Proteína do X Frágil da Deficiência Intelectual , Síndrome do Cromossomo X Frágil , Humanos , Proteína do X Frágil da Deficiência Intelectual/genética , Proteína do X Frágil da Deficiência Intelectual/metabolismo , RNA Mensageiro/genética , RNA Mensageiro/metabolismo , Fator de Iniciação 4E em Eucariotos/genética , Fator de Iniciação 4E em Eucariotos/metabolismo , Neurônios/metabolismo , Síndrome do Cromossomo X Frágil/genética , Diferenciação Celular/genética
2.
Viruses ; 14(9)2022 09 08.
Artigo em Inglês | MEDLINE | ID: mdl-36146792

RESUMO

To investigate the proliferation cycle of a virus, virus-host interaction, and pathogenesis of a virus, virion particles must be concentrated from the media of virus cell culture or the sera of virus-infected patients. Ultracentrifugation of the culture media is a standard method for concentrating virion particles. However, this method is time-consuming and requires special equipment (ultracentrifuge). Moreover, a large number of infectious viruses are lost during enrichment. We developed a new method of hepatitis C virus (HCV) concentration to overcome the issues associated with traditional methods of virus concentration. We used an aqueous two-phase system (ATPS) to concentrate the virus. HCV, which causes various liver diseases, such as liver fibrosis, cirrhosis, and hepatocellular carcinoma, was used as a model virus to test the efficacy and reliability of the ATPS. The efficiency of HCV concentration by the ATPS was approximately three times higher than that by ultracentrifugation. Moreover, the infectivity of the concentrated HCV, which is a labile virus, remained the same after concentration of the virus by the ATPS. Considering the simplicity and effectiveness of the ATPS, it is the method of choice for concentrating viruses.


Assuntos
Hepatite C , Neoplasias Hepáticas , Meios de Cultura , Hepacivirus , Humanos , Reprodutibilidade dos Testes , Vírion
3.
Cell Mol Life Sci ; 77(22): 4693-4708, 2020 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-32030451

RESUMO

During mitosis, translation of most mRNAs is strongly repressed; none of the several explanatory hypotheses suggested can fully explain the molecular basis of this phenomenon. Here we report that cyclin-dependent CDK11/p58-a serine/threonine kinase abundantly expressed during M phase-represses overall translation by phosphorylating a subunit (eIF3F) of the translation factor eIF3 complex that is essential for translation initiation of most mRNAs. Ectopic expression of CDK11/p58 strongly repressed cap-dependent translation, and knockdown of CDK11/p58 nullified the translational repression during M phase. We identified the phosphorylation sites in eIF3F responsible for M phase-specific translational repression by CDK11/p58. Alanine substitutions of CDK11/p58 target sites in eIF3F nullified its effects on cell cycle-dependent translational regulation. The mechanism of translational regulation by the M phase-specific kinase, CDK11/p58, has deep evolutionary roots considering the conservation of CDK11 and its target sites on eIF3F from C. elegans to humans.


Assuntos
Quinases Ciclina-Dependentes/genética , Mitose/genética , Biossíntese de Proteínas/genética , Proteínas Serina-Treonina Quinases/genética , Análogos de Capuz de RNA/genética , Divisão Celular/genética , Linhagem Celular Tumoral , Fator de Iniciação 3 em Eucariotos/genética , Células HeLa , Humanos , Fosforilação/genética , RNA Mensageiro/genética , Transdução de Sinais/genética
4.
Nucleic Acids Res ; 45(1): 296-310, 2017 Jan 09.
Artigo em Inglês | MEDLINE | ID: mdl-27899592

RESUMO

c-Src, a non-receptor protein tyrosine kinase, activates NF-κB and STAT3, which in turn triggers the transcription of anti-apoptosis- and cell cycle-related genes. c-Src protein regulates cell proliferation, cell motility and programmed cell death. And the elevated level of activated c-Src protein is related with solid tumor generation. Translation of c-Src mRNA is directed by an IRES element which mediates persistent translation under stress conditions when translation of most mRNAs is inhibited by a phosphorylation of the alpha subunit of eIF2 carrying the initiator tRNA (tRNAi) to 40S ribosomal subunit under normal conditions. The molecular basis of the stress-resistant translation of c-Src mRNA remained to be elucidated. Here, we report that eIF2A, an alternative tRNAi carrier, is responsible for the stress-resistant translation of c-Src mRNA. eIF2A facilitates tRNAi loading onto the 40S ribosomal subunit in a c-Src mRNA-dependent manner. And a direct interaction between eIF2A and a stem-loop structure (SL I) in the c-Src IRES is required for the c-Src IRES-dependent translation under stress conditions but not under normal conditions. Finally, we showed that the eIF2A-dependent translation of c-Src mRNA plays a pivotal role in cell proliferation under stress conditions.


Assuntos
Fator de Iniciação 2 em Eucariotos/genética , Hepatócitos/metabolismo , Biossíntese de Proteínas , RNA de Transferência de Metionina/genética , RNA/genética , Quinases da Família src/genética , Biotinilação , Proteína Tirosina Quinase CSK , Linhagem Celular Tumoral , Proliferação de Células/efeitos dos fármacos , Fator de Iniciação 2 em Eucariotos/metabolismo , Regulação da Expressão Gênica , Células HEK293 , Hepatócitos/citologia , Hepatócitos/efeitos dos fármacos , Humanos , NF-kappa B/genética , NF-kappa B/metabolismo , Conformação de Ácido Nucleico , Fosforilação , RNA/metabolismo , RNA de Transferência de Metionina/metabolismo , Elementos de Resposta , Subunidades Ribossômicas Menores de Eucariotos/química , Subunidades Ribossômicas Menores de Eucariotos/metabolismo , Fator de Transcrição STAT3/genética , Fator de Transcrição STAT3/metabolismo , Estresse Fisiológico , Tunicamicina/farmacologia , Quinases da Família src/metabolismo
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