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1.
Adv Exp Med Biol ; 773: 309-22, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24563354

RESUMO

Tpr is a prominent architectural component of the nuclear pore complex that forms the basket-like structure on the nucleoplasmic side of the pore. Tpr, which stands for translocated promoter region, was originally described in the context of oncogenic fusions with the receptor tyrosine kinases Met, TRK, and Raf. Tpr has been since implicated in a variety of nuclear functions, including nuclear transport, chromatin organization, regulation of transcription, and mitosis. More recently, Tpr function has been linked to events including p53 signaling and premature aging in Hutchinson-Gilford Progeria Syndrome (HGPS). Here we provide an overview of the various processes that involve Tpr, and discuss how the levels and localization of a single protein can affect diverse pathways in the cell.


Assuntos
Envelhecimento/fisiologia , Complexo de Proteínas Formadoras de Poros Nucleares/fisiologia , Poro Nuclear/fisiologia , Proteínas Proto-Oncogênicas/fisiologia , Humanos , Proteínas Oncogênicas/fisiologia , Fuso Acromático
2.
PLoS Genet ; 4(10): e1000219, 2008 Oct 03.
Artigo em Inglês | MEDLINE | ID: mdl-18833302

RESUMO

Skeletal muscle morphogenesis transforms short muscle precursor cells into long, multinucleate myotubes that anchor to tendons via the myotendinous junction (MTJ). In vertebrates, a great deal is known about muscle specification as well as how somitic cells, as a cohort, generate the early myotome. However, the cellular mechanisms that generate long muscle fibers from short cells and the molecular factors that limit elongation are unknown. We show that zebrafish fast muscle fiber morphogenesis consists of three discrete phases: short precursor cells, intercalation/elongation, and boundary capture/myotube formation. In the first phase, cells exhibit randomly directed protrusive activity. The second phase, intercalation/elongation, proceeds via a two-step process: protrusion extension and filling. This repetition of protrusion extension and filling continues until both the anterior and posterior ends of the muscle fiber reach the MTJ. Finally, both ends of the muscle fiber anchor to the MTJ (boundary capture) and undergo further morphogenetic changes as they adopt the stereotypical, cylindrical shape of myotubes. We find that the basement membrane protein laminin is required for efficient elongation, proper fiber orientation, and boundary capture. These early muscle defects in the absence of either lamininbeta1 or laminingamma1 contrast with later dystrophic phenotypes in lamininalpha2 mutant embryos, indicating discrete roles for different laminin chains during early muscle development. Surprisingly, genetic mosaic analysis suggests that boundary capture is a cell-autonomous phenomenon. Taken together, our results define three phases of muscle fiber morphogenesis and show that the critical second phase of elongation proceeds by a repetitive process of protrusion extension and protrusion filling. Furthermore, we show that laminin is a novel and critical molecular cue mediating fiber orientation and limiting muscle cell length.


Assuntos
Processamento de Imagem Assistida por Computador , Modelos Teóricos , Morfogênese , Músculo Esquelético/crescimento & desenvolvimento , Peixe-Zebra/crescimento & desenvolvimento , Animais , Laminina/metabolismo , Fibras Musculares Esqueléticas/química , Fibras Musculares Esqueléticas/metabolismo , Músculo Esquelético/química , Músculo Esquelético/embriologia , Músculo Esquelético/metabolismo , Peixe-Zebra/embriologia , Peixe-Zebra/metabolismo , Proteínas de Peixe-Zebra/metabolismo
3.
Gene Expr Patterns ; 9(1): 37-42, 2009 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-18783736

RESUMO

Muscle development involves the specification and morphogenesis of muscle fibers that attach to tendons. After attachment, muscles and tendons then function as an integrated unit to transduce force to the skeletal system and stabilize joints. The attachment site is the myotendinous junction, or MTJ, and is the primary site of force transmission. We find that attachment of fast-twitch myofibers to the MTJ correlates with the formation of novel microenvironments within the MTJ. The expression or activation of two proteins involved in anchoring the intracellular cytoskeleton to the extracellular matrix, Focal adhesion kinase (Fak) and beta-dystroglycan is up-regulated. Conversely, the extracellular matrix protein Fibronectin (Fn) is down-regulated. This degradation of Fn as fast-twitch fibers attach to the MTJ results in Fn protein defining a novel microenvironment within the MTJ adjacent to slow-twitch, but not fast-twitch, muscle. Interestingly, however, Fak, laminin, Fn and beta-dystroglycan concentrate at the MTJ in mutants that do not have slow-twitch fibers. Taken together, these data elucidate novel and dynamic microenvironments within the MTJ and indicate that MTJ morphogenesis is spatially and temporally complex.


Assuntos
Embrião não Mamífero/metabolismo , Morfogênese , Fibras Musculares de Contração Rápida/fisiologia , Fibras Musculares de Contração Lenta/fisiologia , Músculo Esquelético/embriologia , Tendões/embriologia , Peixe-Zebra/embriologia , Animais , Distroglicanas/metabolismo , Meio Ambiente , Fibronectinas/metabolismo , Proteína-Tirosina Quinases de Adesão Focal/metabolismo , Regulação da Expressão Gênica no Desenvolvimento , Técnicas Imunoenzimáticas , Laminina/metabolismo
4.
Lab Chip ; 19(7): 1193-1204, 2019 03 27.
Artigo em Inglês | MEDLINE | ID: mdl-30839006

RESUMO

The development of drugs to treat cancer is hampered by the inefficiency of translating pre-clinical in vitro monoculture and mouse studies into clinical benefit. There is a critical need to improve the accuracy of evaluating pre-clinical drug efficacy through the development of more physiologically relevant models. In this study, a human triculture 3D in vitro tumor microenvironment system (TMES) was engineered to accurately mimic the tumor microenvironment. The TMES recapitulates tumor hemodynamics and biological transport with co-cultured human microvascular endothelial cells, pancreatic ductal adenocarcinoma, and pancreatic stellate cells. We demonstrate that significant tumor cell transcriptomic changes occur in the TMES that correlate with the in vivo xenograft and patient transcriptome. Treatment with therapeutically relevant doses of chemotherapeutics yields responses paralleling the patients' clinical responses. Thus, this model provides a unique platform to rigorously evaluate novel therapies and is amenable to using patient tumor material directly, with applicability for patient avatars.


Assuntos
Biomimética/métodos , Carcinoma Ductal Pancreático/patologia , Microambiente Tumoral , Proliferação de Células/efeitos dos fármacos , Humanos , Microambiente Tumoral/efeitos dos fármacos
5.
Mol Biol Cell ; 25(8): 1202-15, 2014 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-24523287

RESUMO

Maintaining the Ran GTPase at a proper concentration in the nucleus is important for nucleocytoplasmic transport. Previously we found that nuclear levels of Ran are reduced in cells from patients with Hutchinson-Gilford progeria syndrome (HGPS), a disease caused by constitutive attachment of a mutant form of lamin A (termed progerin) to the nuclear membrane. Here we explore the relationship between progerin, the Ran GTPase, and oxidative stress. Stable attachment of progerin to the nuclear membrane disrupts the Ran gradient and results in cytoplasmic localization of Ubc9, a Ran-dependent import cargo. Ran and Ubc9 disruption can be induced reversibly with H2O2. CHO cells preadapted to oxidative stress resist the effects of progerin on Ran and Ubc9. Given that HGPS-patient fibroblasts display elevated ROS, these data suggest that progerin inhibits nuclear transport via oxidative stress. A drug that inhibits pre-lamin A cleavage mimics the effects of progerin by disrupting the Ran gradient, but the effects on Ran are observed before a substantial ROS increase. Moreover, reducing the nuclear concentration of Ran is sufficient to induce ROS irrespective of progerin. We speculate that oxidative stress caused by progerin may occur upstream or downstream of Ran, depending on the cell type and physiological setting.


Assuntos
Peróxido de Hidrogênio/farmacologia , Proteínas Nucleares/metabolismo , Estresse Oxidativo , Progéria/patologia , Precursores de Proteínas/metabolismo , Enzimas de Conjugação de Ubiquitina/metabolismo , Proteína ran de Ligação ao GTP/metabolismo , Transporte Ativo do Núcleo Celular , Animais , Células CHO , Células COS , Células Cultivadas , Chlorocebus aethiops , Cricetulus , Inibidores do Citocromo P-450 CYP3A/farmacologia , Fibroblastos , Células HeLa , Humanos , Lamina Tipo A , Lopinavir/farmacologia , Potencial da Membrana Mitocondrial , Membrana Nuclear/metabolismo , Ligação Proteica , Interferência de RNA , RNA Interferente Pequeno , Sumoilação , Proteína ran de Ligação ao GTP/genética
6.
J Cell Biol ; 201(4): 541-57, 2013 May 13.
Artigo em Inglês | MEDLINE | ID: mdl-23649804

RESUMO

The RanGTPase acts as a master regulator of nucleocytoplasmic transport by controlling assembly and disassembly of nuclear transport complexes. RanGTP is required in the nucleus to release nuclear localization signal (NLS)-containing cargo from import receptors, and, under steady-state conditions, Ran is highly concentrated in the nucleus. We previously showed the nuclear/cytoplasmic Ran distribution is disrupted in Hutchinson-Gilford Progeria syndrome (HGPS) fibroblasts that express the Progerin form of lamin A, causing a major defect in nuclear import of the protein, translocated promoter region (Tpr). In this paper, we show that Tpr import was mediated by the most abundant import receptor, KPNA2, which binds the bipartite NLS in Tpr with nanomolar affinity. Analyses including NLS swapping revealed Progerin did not cause global inhibition of nuclear import. Rather, Progerin inhibited Tpr import because transport of large protein cargoes was sensitive to changes in the Ran nuclear/cytoplasmic distribution that occurred in HGPS. We propose that defective import of large protein complexes with important roles in nuclear function may contribute to disease-associated phenotypes in Progeria.


Assuntos
Núcleo Celular/metabolismo , Complexo de Proteínas Formadoras de Poros Nucleares/metabolismo , Progéria/genética , Proteínas Proto-Oncogênicas/metabolismo , alfa Carioferinas/metabolismo , Proteína ran de Ligação ao GTP/metabolismo , Transporte Ativo do Núcleo Celular , Motivos de Aminoácidos , Sequência de Aminoácidos , Fibroblastos/metabolismo , Células HeLa , Humanos , Lamina Tipo A , Dados de Sequência Molecular , Sinais de Localização Nuclear , Complexo de Proteínas Formadoras de Poros Nucleares/genética , Proteínas Nucleares/metabolismo , Fenótipo , Progéria/metabolismo , Regiões Promotoras Genéticas , Precursores de Proteínas/metabolismo , Proteínas Proto-Oncogênicas/genética , alfa Carioferinas/genética
7.
Mol Cell Biol ; 33(24): 4766-78, 2013 Dec.
Artigo em Inglês | MEDLINE | ID: mdl-24100013

RESUMO

The androgen receptor (AR) has critical functions as a transcription factor in both normal and cancer cells, but the specific mechanisms that regulate its nuclear localization are not well defined. We found that an AR mutation commonly reported in prostate cancer generates an androgen-independent gain of function for nuclear import. The substitution, Thr877Ala, is within the ligand-binding domain, but the nuclear import gain of function is mediated by the bipartite nuclear localization signal (NLS) spanning the DNA-binding domain (DBD) and hinge region. Bipartite NLS activity depends on the structure provided by the DBD, and protein interactions with the bipartite NLS are repressed by the hinge region. The bipartite NLS is recognized by importin 7, a nuclear import receptor for several proteins. Importin 7 binding to AR, however, inhibits import by shielding the bipartite NLS. Androgen binding relieves the inhibition by inducing a switch that promotes exchange of importin 7 for karyopherin alpha import receptors. Importin 7 contributes to the regulation of AR import by restraining import until androgen is detected in the cytoplasm.


Assuntos
Substituição de Aminoácidos , Androgênios/fisiologia , Núcleo Celular/metabolismo , Carioferinas/metabolismo , Receptores Androgênicos/metabolismo , Receptores Citoplasmáticos e Nucleares/metabolismo , Transporte Ativo do Núcleo Celular , Motivos de Aminoácidos , Animais , Células COS , Chlorocebus aethiops , Citoplasma/metabolismo , Células HeLa , Humanos , Masculino , Metribolona/farmacologia , Modelos Moleculares , Sinais de Localização Nuclear/genética , Neoplasias da Próstata , Ligação Proteica , Receptores Androgênicos/química , Receptores Androgênicos/genética , Reticulócitos/metabolismo , Congêneres da Testosterona/farmacologia
8.
Mol Cell Biol ; 31(16): 3378-95, 2011 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-21670151

RESUMO

The mutant form of lamin A responsible for the premature aging disease Hutchinson-Gilford progeria syndrome (termed progerin) acts as a dominant negative protein that changes the structure of the nuclear lamina. How the perturbation of the nuclear lamina in progeria is transduced into cellular changes is undefined. Using patient fibroblasts and a variety of cell-based assays, we determined that progerin expression in Hutchinson-Gilford progeria syndrome inhibits the nucleocytoplasmic transport of several factors with key roles in nuclear function. We found that progerin reduces the nuclear/cytoplasmic concentration of the Ran GTPase and inhibits the nuclear localization of Ubc9, the sole E2 for SUMOylation, and of TPR, the nucleoporin that forms the basket on the nuclear side of the nuclear pore complex. Forcing the nuclear localization of Ubc9 in progerin-expressing cells rescues the Ran gradient and TPR import, indicating that these pathways are linked. Reducing nuclear SUMOylation decreases the nuclear mobility of the Ran nucleotide exchange factor RCC1 in vivo, and the addition of SUMO E1 and E2 promotes the dissociation of RCC1 and Ran from chromatin in vitro. Our data suggest that the cellular effects of progerin are transduced, at least in part, through reduced function of the Ran GTPase and SUMOylation pathways.


Assuntos
Transporte Ativo do Núcleo Celular , Lâmina Nuclear/patologia , Progéria/patologia , Enzimas de Conjugação de Ubiquitina/metabolismo , Proteína ran de Ligação ao GTP/metabolismo , Proteínas de Ciclo Celular , Fatores de Troca do Nucleotídeo Guanina , Humanos , Proteínas Nucleares , Progéria/metabolismo , Sumoilação , Enzimas de Conjugação de Ubiquitina/antagonistas & inibidores
9.
Dev Dyn ; 237(9): 2542-53, 2008 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-18729220

RESUMO

After somitogenesis, skeletal muscle precursors elongate into muscle fibers that anchor to the somite boundary, which becomes the myotome boundary. Fibronectin (Fn) is a major component of the extracellular matrix in both boundaries. Although Fn is required for somitogenesis, effects of Fn disruption on subsequent muscle development are unknown. We show that fn knockdown disrupts myogenesis. Muscle morphogenesis is more disrupted in fn morphants than in a mutant where initial somite boundaries did not form, aei/deltaD. We quantified this disruption using the two-dimensional Wavelet-Transform Modulus Maxima method, which uses the variation of intensity in an image with respect to the direction considered to characterize the structure in a cell lattice. We show that fibers in fn morphants are less organized than in aei/deltaD mutant embryos. Fast- and slow-twitch muscle lengths are also more frequently uncoupled. These data suggest that fn may function to regulate fiber organization and limit fast-twitch muscle fiber length.


Assuntos
Fibronectinas/metabolismo , Desenvolvimento Muscular/fisiologia , Proteínas de Peixe-Zebra/metabolismo , Peixe-Zebra/metabolismo , Animais , Embrião não Mamífero/embriologia , Embrião não Mamífero/metabolismo , Fibronectinas/genética , Regulação da Expressão Gênica no Desenvolvimento , Imuno-Histoquímica , Hibridização In Situ , Modelos Biológicos , Desenvolvimento Muscular/genética , Fibras Musculares de Contração Rápida/metabolismo , Fibras Musculares de Contração Lenta/metabolismo , Somitos/embriologia , Somitos/metabolismo , Peixe-Zebra/embriologia , Proteínas de Peixe-Zebra/genética
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