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1.
EMBO Rep ; 24(8): e56100, 2023 08 03.
Artigo em Inglês | MEDLINE | ID: mdl-37291955

RESUMO

GCN2/eIF2αK4 is exclusively seen as an eIF2α kinase, which regulates reprogramming of protein translation in response to stress. Here, we show that GCN2 has an unexpected role in unstressed cells as a regulator of mitosis. This function is not through its canonical role in translation reprogramming, but through the regulation of two previously unidentified substrates, PP1α and γ. In the absence of GCN2 function, timing and levels of phosphorylation of key mitotic players are altered, leading to aberrant chromosome alignment, missegregating chromosomes, elevated number of tripolar spindles, and a delay in progression through mitosis. Pharmacological inhibition of GCN2 results in similar effects and is synergistic with Aurora A inhibition in causing more severe mitotic errors and cell death. We suggest that GCN2-dependent phosphorylation of PP1α and γ restrains their activity and this is important to ensure the timely regulation of phosphorylation of several PP1 substrates during early mitosis. These findings highlight a druggable PP1 inhibitor and open new avenues of research on the therapeutic potential of GCN2 inhibitors.


Assuntos
Mitose , Proteínas Serina-Treonina Quinases , Proteínas Serina-Treonina Quinases/genética , Proteínas Serina-Treonina Quinases/metabolismo , Fosforilação , Cromossomos/metabolismo
2.
Cell Commun Signal ; 21(1): 50, 2023 03 07.
Artigo em Inglês | MEDLINE | ID: mdl-36882786

RESUMO

BACKGROUND: To our current understanding, solid tumors depend on suppressed local immune reactions, often elicited by the interaction between tumor cells and tumor microenvironment (TME) components. Despite an improved understanding of anti-cancer immune responses in the TME, it is still unclear how immuno-suppressive TME are formed and how some cancer cells survive and metastasize. METHODS: To identify the major adaptations that cancer cells undergo during tumor development and progression, we compared the transcriptome and proteome from metastatic 66cl4 and non-metastatic 67NR cell lines in culture versus their corresponding mouse mammary primary tumors. Using confocal microscopy, RT-qPCR, flow cytometry and western blotting, we studied the signaling pathway and the mechanisms involved. In addition, we used public gene expression data from human breast cancer biopsies to evaluate the correlation between gene expression and clinical outcomes in patients. RESULTS: We found that type I interferon (IFN-I) response was a key differentially regulated pathway between metastatic and non-metastatic cell lines and tumors. The IFN-I response was active in metastatic cancer cells in culture and markedly dampened when these cells formed primary tumors. Interestingly, the opposite was observed in non-metastatic cancer cells and tumors. Consistent with an active IFN-I response in culture, the metastatic cancer cells displayed elevated levels of cytosolic DNA from both mitochondria and ruptured micronuclei with concomitant activation of cGAS-STING signaling. Interestingly, decreased IFN-I-related gene expression in breast cancer biopsies correlated with an unfavourable prognosis in patients. CONCLUSION: Our findings show that IFN-I response is dampened in the tumors with the metastatic ability and lower IFN-I expression predicts poor prognosis in triple-negative and HER2 enriched breast cancer patients. This study highlights the possibility of reactivating the IFN-I response as a potential therapeutic strategy in breast cancer. Video Abstract.


Assuntos
Neoplasias da Mama , Interferon Tipo I , Humanos , Animais , Camundongos , Feminino , Mama , Transdução de Sinais , Anticorpos , Microambiente Tumoral
3.
EMBO J ; 40(7): e106922, 2021 04 01.
Artigo em Inglês | MEDLINE | ID: mdl-33644904

RESUMO

The compartmentalization of eukaryotic cells, which is essential for their viability and functions, is ensured by single or double bilayer membranes that separate the cell from the exterior and form boundaries between the cell's organelles and the cytosol. Nascent nuclear envelopes and autophagosomes, which both are enveloped by double membranes, need to be sealed during the late stage of their biogenesis. On the other hand, the integrity of cellular membranes such as the plasma membrane, lysosomes and the nuclear envelope can be compromised by pathogens, chemicals, radiation, inflammatory responses and mechanical stress. There are cellular programmes that restore membrane integrity after injury. Here, we review cellular mechanisms that have evolved to maintain membrane integrity during organelle biogenesis and after injury, including membrane scission mediated by the endosomal sorting complex required for transport (ESCRT), vesicle patching and endocytosis.


Assuntos
Membrana Celular/metabolismo , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Animais , Permeabilidade da Membrana Celular , Humanos , Biogênese de Organelas
4.
Nat Cell Biol ; 22(7): 856-867, 2020 07.
Artigo em Inglês | MEDLINE | ID: mdl-32601372

RESUMO

The ESCRT-III membrane fission machinery maintains the integrity of the nuclear envelope. Although primary nuclei resealing takes minutes, micronuclear envelope ruptures seem to be irreversible. Instead, micronuclear ruptures result in catastrophic membrane collapse and are associated with chromosome fragmentation and chromothripsis, complex chromosome rearrangements thought to be a major driving force in cancer development. Here we use a combination of live microscopy and electron tomography, as well as computer simulations, to uncover the mechanism underlying micronuclear collapse. We show that, due to their small size, micronuclei inherently lack the capacity of primary nuclei to restrict the accumulation of CHMP7-LEMD2, a compartmentalization sensor that detects loss of nuclear integrity. This causes unrestrained ESCRT-III accumulation, which drives extensive membrane deformation, DNA damage and chromosome fragmentation. Thus, the nuclear-integrity surveillance machinery is a double-edged sword, as its sensitivity ensures rapid repair at primary nuclei while causing unrestrained activity at ruptured micronuclei, with catastrophic consequences for genome stability.


Assuntos
Núcleo Celular/patologia , Cromatina/metabolismo , Aberrações Cromossômicas , Dano ao DNA , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Instabilidade Genômica , Proteínas de Membrana/metabolismo , Proteínas Nucleares/metabolismo , Núcleo Celular/genética , Núcleo Celular/metabolismo , Cromatina/genética , Complexos Endossomais de Distribuição Requeridos para Transporte/genética , Células HeLa , Humanos
5.
Nat Rev Mol Cell Biol ; 21(1): 25-42, 2020 01.
Artigo em Inglês | MEDLINE | ID: mdl-31705132

RESUMO

Cellular membranes can form two principally different involutions, which either exclude or contain cytosol. The 'classical' budding reactions, such as those occurring during endocytosis or formation of exocytic vesicles, involve proteins that assemble on the cytosol-excluding face of the bud neck. Inverse membrane involution occurs in a wide range of cellular processes, supporting cytokinesis, endosome maturation, autophagy, membrane repair and many other processes. Such inverse membrane remodelling is mediated by a heteromultimeric protein machinery known as endosomal sorting complex required for transport (ESCRT). ESCRT proteins assemble on the cytosolic (or nucleoplasmic) face of the neck of the forming involution and cooperate with the ATPase VPS4 to drive membrane scission or sealing. Here, we review similarities and differences of various ESCRT-dependent processes, with special emphasis on mechanisms of ESCRT recruitment.


Assuntos
Membrana Celular/metabolismo , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Neurônios/citologia , Membrana Nuclear/metabolismo , Replicação Viral/fisiologia , Animais , Citocinese , Endossomos/metabolismo , Exossomos/metabolismo , Interações Hospedeiro-Patógeno , Humanos , Neurônios/metabolismo , Fagossomos/metabolismo , Transporte Proteico , Espastina/metabolismo
6.
Dev Cell ; 47(5): 541-542, 2018 12 03.
Artigo em Inglês | MEDLINE | ID: mdl-30513298

RESUMO

Sealing of the nascent nuclear envelope during mitotic exit is mediated by the polymeric ESCRT-III protein machinery. In this issue of Developmental Cell, Ventimiglia et al. (2018) identify the ESCRT-III-associated protein CC2D1B as a lipid-binding coordinator of late-mitotic ESCRT-III assembly and disassembly of the mitotic spindle.


Assuntos
Complexos Endossomais de Distribuição Requeridos para Transporte/genética , Membrana Nuclear , Mitose , Fuso Acromático
7.
Curr Opin Cell Biol ; 41: 1-8, 2016 08.
Artigo em Inglês | MEDLINE | ID: mdl-27031044

RESUMO

The endosomal sorting complex required for transport (ESCRT), originally identified for its role in endosomal protein sorting and biogenesis of multivesicular endosomes (MVEs), has proven to be a versatile machinery for involution and scission of narrow membrane invaginations filled with cytosol. Budding of enveloped viruses and cytokinetic abscission were early described functions for the ESCRT machinery, and recently a number of new ESCRT functions have emerged. These include cytokinetic abscission checkpoint control, plasma membrane repair, exovesicle release, quality control of nuclear pore complexes, neuron pruning, and sealing of the newly formed nuclear envelope. Here we review these novel ESCRT mechanisms and discuss similarities and differences between the various ESCRT-dependent activities.


Assuntos
Células/metabolismo , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Animais , Citocinese , Endossomos/metabolismo , Humanos , Corpos Multivesiculares/metabolismo , Plasticidade Neuronal , Membrana Nuclear/metabolismo
8.
Curr Opin Cell Biol ; 40: 90-97, 2016 06.
Artigo em Inglês | MEDLINE | ID: mdl-27016712

RESUMO

The nuclear envelope (NE) ensures nucleo-cytoplasmic compartmentalization, with trafficking of macromolecules across this double membrane controlled by embedded nuclear pore complexes (NPCs). The NE and associated proteins are dismantled during open mitosis and reestablishment of this barrier during mitotic exit requires dynamic remodeling of endoplasmic reticulum (ER) membranes and coordination with NPC reformation, with NPC deposition continuing during subsequent interphase. In this review, we discuss recent progress in our understanding of NE reformation and nuclear pore complex generation, with special focus on work implicating the endosomal sorting complex required for transport (ESCRT) membrane remodeling machinery in these events.


Assuntos
Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Membrana Nuclear/metabolismo , Animais , Divisão Celular , Cromossomos/metabolismo , Retículo Endoplasmático/metabolismo , Humanos , Mitose , Poro Nuclear/metabolismo , Proteínas Nucleares/metabolismo , Transporte Proteico
9.
Nature ; 522(7555): 231-5, 2015 Jun 11.
Artigo em Inglês | MEDLINE | ID: mdl-26040712

RESUMO

At the onset of metazoan cell division the nuclear envelope breaks down to enable capture of chromosomes by the microtubule-containing spindle apparatus. During anaphase, when chromosomes have separated, the nuclear envelope is reassembled around the forming daughter nuclei. How the nuclear envelope is sealed, and how this is coordinated with spindle disassembly, is largely unknown. Here we show that endosomal sorting complex required for transport (ESCRT)-III, previously found to promote membrane constriction and sealing during receptor sorting, virus budding, cytokinesis and plasma membrane repair, is transiently recruited to the reassembling nuclear envelope during late anaphase. ESCRT-III and its regulatory AAA (ATPase associated with diverse cellular activities) ATPase VPS4 are specifically recruited by the ESCRT-III-like protein CHMP7 to sites where the reforming nuclear envelope engulfs spindle microtubules. Subsequent association of another ESCRT-III-like protein, IST1, directly recruits the AAA ATPase spastin to sever microtubules. Disrupting spastin function impairs spindle disassembly and results in extended localization of ESCRT-III at the nuclear envelope. Interference with ESCRT-III functions in anaphase is accompanied by delayed microtubule disassembly, compromised nuclear integrity and the appearance of DNA damage foci in subsequent interphase. We propose that ESCRT-III, VPS4 and spastin cooperate to coordinate nuclear envelope sealing and spindle disassembly at nuclear envelope-microtubule intersection sites during mitotic exit to ensure nuclear integrity and genome safeguarding, with a striking mechanistic parallel to cytokinetic abscission.


Assuntos
Adenosina Trifosfatases/metabolismo , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Fusão de Membrana , Membrana Nuclear/metabolismo , Fuso Acromático/metabolismo , ATPases Associadas a Diversas Atividades Celulares , Anáfase , Pontos de Checagem do Ciclo Celular , Cromatina/genética , Cromatina/metabolismo , Dano ao DNA , Humanos , Microtúbulos/metabolismo , Espastina , ATPases Vacuolares Próton-Translocadoras/metabolismo
10.
Nature ; 520(7546): 234-8, 2015 Apr 09.
Artigo em Inglês | MEDLINE | ID: mdl-25855459

RESUMO

The main organelles of the secretory and endocytic pathways--the endoplasmic reticulum (ER) and endosomes, respectively--are connected through contact sites whose numbers increase as endosomes mature. One function of such sites is to enable dephosphorylation of the cytosolic tails of endosomal signalling receptors by an ER-associated phosphatase, whereas others serve to negatively control the association of endosomes with the minus-end-directed microtubule motor dynein or mediate endosome fission. Cholesterol transfer and Ca(2+) exchange have been proposed as additional functions of such sites. However, the compositions, activities and regulations of ER-endosome contact sites remain incompletely understood. Here we show in human and rat cell lines that protrudin, an ER protein that promotes protrusion and neurite outgrowth, forms contact sites with late endosomes (LEs) via coincident detection of the small GTPase RAB7 and phosphatidylinositol 3-phosphate (PtdIns(3)P). These contact sites mediate transfer of the microtubule motor kinesin 1 from protrudin to the motor adaptor FYCO1 on LEs. Repeated LE-ER contacts promote microtubule-dependent translocation of LEs to the cell periphery and subsequent synaptotagmin-VII-dependent fusion with the plasma membrane. Such fusion induces outgrowth of protrusions and neurites, which requires the abilities of protrudin and FYCO1 to interact with LEs and kinesin 1. Thus, protrudin-containing ER-LE contact sites are platforms for kinesin-1 loading onto LEs, and kinesin-1-mediated translocation of LEs to the plasma membrane, fuelled by repeated ER contacts, promotes protrusion and neurite outgrowth.


Assuntos
Retículo Endoplasmático/metabolismo , Endossomos/metabolismo , Neuritos/metabolismo , Animais , Sítios de Ligação , Transporte Biológico , Linhagem Celular , Membrana Celular/metabolismo , Proteínas de Ligação a DNA/metabolismo , Células HeLa , Humanos , Cinesinas/metabolismo , Proteínas Associadas aos Microtúbulos , Microtúbulos/metabolismo , Fosfatos de Fosfatidilinositol/metabolismo , Ratos , Sinaptotagminas/metabolismo , Fatores de Transcrição/metabolismo , Proteínas de Transporte Vesicular/metabolismo , Proteínas rab de Ligação ao GTP/metabolismo , proteínas de unión al GTP Rab7
11.
Nat Cell Biol ; 16(6): 550-60, 2014 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-24814515

RESUMO

During the final stage of cell division, cytokinesis, the Aurora-B-dependent abscission checkpoint (NoCut) delays membrane abscission to avoid DNA damage and aneuploidy in cells with chromosome segregation defects. This arrest depends on Aurora-B-mediated phosphorylation of CHMP4C, a component of the endosomal sorting complex required for transport (ESCRT) machinery that mediates abscission, but the mechanism remains unknown. Here we describe ANCHR (Abscission/NoCut Checkpoint Regulator; ZFYVE19) as a key regulator of the abscission checkpoint, functioning through the most downstream component of the ESCRT machinery, the ATPase VPS4. In concert with CHMP4C, ANCHR associates with VPS4 at the midbody ring following DNA segregation defects to control abscission timing and prevent multinucleation in an Aurora-B-dependent manner. This association prevents VPS4 relocalization to the abscission zone and is relieved following inactivation of Aurora B to allow abscission. We propose that the abscission checkpoint is mediated by ANCHR and CHMP4C through retention of VPS4 at the midbody ring.


Assuntos
Aurora Quinase B/metabolismo , Pontos de Checagem do Ciclo Celular , Citocinese , Complexos Endossomais de Distribuição Requeridos para Transporte/metabolismo , Proteínas Oncogênicas/metabolismo , ATPases Vacuolares Próton-Translocadoras/metabolismo , ATPases Associadas a Diversas Atividades Celulares , Aurora Quinase B/genética , Cromatina/metabolismo , Aberrações Cromossômicas , Segregação de Cromossomos , Complexos Endossomais de Distribuição Requeridos para Transporte/genética , Ativação Enzimática , Células HeLa , Humanos , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Proteínas Oncogênicas/genética , Fosforilação , Transporte Proteico , Interferência de RNA , Transdução de Sinais , Fatores de Tempo , Transfecção , ATPases Vacuolares Próton-Translocadoras/genética
12.
Biochem Biophys Res Commun ; 376(1): 65-9, 2008 Nov 07.
Artigo em Inglês | MEDLINE | ID: mdl-18768137

RESUMO

PKC isoform betaII modulates translation and can be recruited on ribosomes via its scaffold RACK1 (receptor for activated protein kinase C 1), which resides on the 40S ribosomal subunit. However, whether a PKC activity exists on the ribosome is not yet demonstrated. We purified native ribosomes by two different techniques, which avoid stripping of initiation factors and other associated proteins. In both cases, purified ribosomes are able to phosphorylate a specific PKC substrate, MARCKS (Myristoylated Alanine-Rich C-Kinase Substrate). MARCKS phosphorylation is switched on by treatment with PKC agonist PMA (Phorbol 12-Myristate 13-Acetate). Consistently, the broad PKC inhibitor BMI (Bisindolyl Maleimide I) abrogates MARCKS phosphorylation. These data show that native ribosomes host active PKC and hence allow the phosphorylation of ribosome-associated substrates like initiation factors and mRNA binding proteins.


Assuntos
Proteína Quinase C/metabolismo , Ribossomos/enzimologia , Linhagem Celular , Proteínas de Fluorescência Verde/genética , Humanos , Peptídeos e Proteínas de Sinalização Intracelular/metabolismo , Isoenzimas/metabolismo , Proteínas de Membrana/metabolismo , Substrato Quinase C Rico em Alanina Miristoilada , Fosforilação , Proteína Quinase C/antagonistas & inibidores , Proteína Quinase C/genética , Proteína Quinase C beta , Proteínas de Ligação a RNA/metabolismo , Acetato de Tetradecanoilforbol/farmacologia
13.
Biochem J ; 415(1): 77-85, 2008 Oct 01.
Artigo em Inglês | MEDLINE | ID: mdl-18557705

RESUMO

RACK1 (receptor for activated C kinase 1) is an abundant scaffolding protein, which binds active PKCbetaII (protein kinase C betaII) increasing its activity in vitro. RACK1 has also been described as a component of the small ribosomal subunit, in proximity to the mRNA exit channel. In the present study we tested the hypothesis that PKCbetaII plays a specific role in translational control and verified whether it may associate with the ribosomal machinery. We find that specific inhibition of PKCbetaI/II reduces translation as well as global PKC inhibition, but without affecting phosphorylation of mTOR (mammalian target of rapamycin) targets. These results suggest that PKCbetaII acts as a specific PKC isoform affecting translation in an mTOR-independent fashion, possibly close to the ribosomal machinery. Using far-Western analysis, we found that PKCbetaII binds ribosomes in vitro. Co-immunoprecipitation studies indicate that a small but reproducible pool of PKCbetaII is associated with membranes containing ribosomes, suggesting that in vivo PKCbetaII may also physically interact with the ribosomal machinery. Polysomal profiles show that stimulation of PKC results in an increased polysomes/80S ratio, associated with a shift of PKCbetaII to the heavier part of the gradient. A RACK1-derived peptide that inhibits the binding of active PKCbetaII to RACK1 reduces the polysomes/80S ratio and methionine incorporation, suggesting that binding of PKCbetaII to RACK1 is important for PKC-mediated translational control. Finally, down-regulation of RACK1 by siRNA (small interfering RNA) impairs the PKC-mediated increase of translation. Taken together the results of the present study show that PKCbetaII can act as a specific PKC isoform regulating translation, in an mTOR-independent fashion, possibly close to the ribosomal machinery.


Assuntos
Biossíntese de Proteínas/efeitos dos fármacos , Proteína Quinase C/fisiologia , Proteínas Quinases/fisiologia , Receptores de Superfície Celular/fisiologia , Animais , Células HeLa , Humanos , Masculino , Camundongos , Polirribossomos/metabolismo , Proteína Quinase C/antagonistas & inibidores , Proteína Quinase C beta , Pironas/farmacologia , Receptores de Quinase C Ativada , Ribossomos/metabolismo , Serina-Treonina Quinases TOR
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