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1.
J Cell Biol ; 193(2): 347-63, 2011 Apr 18.
Artigo em Inglês | MEDLINE | ID: mdl-21502359

RESUMO

Although RII protein kinase A (PKA) regulatory subunits are constitutively localized to discrete cellular compartments through binding to A-kinase-anchoring proteins (AKAPs), RI subunits are primarily diffuse in the cytoplasm. In this paper, we report a novel AKAP-dependent localization of RIα to distinct organelles, specifically, multivesicular bodies (MVBs). This localization depends on binding to AKAP11, which binds tightly to free RIα or RIα in complex with catalytic subunit (holoenzyme). However, recruitment to MVBs occurs only with the release of PKA catalytic subunit (PKAc). This recruitment is reversed by reassociation with PKAc, and it is disrupted by the presence of AKAP peptides, mutations in the RIα AKAP-binding site, or knockdown of AKAP11. Cyclic adenosine monophosphate binding not only unleashes active PKAc but also leads to the targeting of AKAP11:RIα to MVBs. Therefore, we show that the RIα holoenzyme is part of a signaling complex with AKAP11, in which AKAP11 may direct RIα functionality after disassociation from PKAc. This model defines a new paradigm for PKA signaling.


Assuntos
Proteínas Quinases Dependentes de AMP Cíclico/metabolismo , Corpos Multivesiculares , Proteínas de Ancoragem à Quinase A/genética , Proteínas de Ancoragem à Quinase A/metabolismo , Sequência de Aminoácidos , Sítios de Ligação/genética , Domínio Catalítico , Técnicas de Silenciamento de Genes , Células HEK293 , Células HeLa , Humanos , Isoenzimas/metabolismo , Dados de Sequência Molecular , Mutação , Ligação Proteica , Transporte Proteico , Transdução de Sinais
2.
Cold Spring Harb Protoc ; 2011(1): pdb.prot5547, 2011 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-21205847

RESUMO

Correlation of real-time or time-lapse light microscopy (LM) with electron microscopy (EM) of cells can be performed with biarsenical dyes. These dyes fluorescently label tetracysteine-tagged proteins so that they can be imaged with LM and, upon fluorescent photoconversion of 3,3'-diaminobenzidine tetrahydrochloride (DAB), with EM as well. In the following protocol, cells expressing tetracysteine-tagged proteins are labeled for 1 h with biarsenical dyes. The volumes indicated are for a single 30-mm culture dish containing 2 mL of labeling medium. Scale the suggested volumes up or down depending upon the size of the culture dish used in the labeling. The same procedure can be adapted for longer labeling times by lowering the amount of dye used to 50-100 nM; however, the amount of the competing dithiol EDT is maintained at 10-20 µM. Longer labeling times often produce higher signal-to-noise ratios and cause less trauma to the treated cells prior to imaging.


Assuntos
Proteínas Recombinantes/análise , Coloração e Rotulagem/métodos , Arsenicais , Linhagem Celular , Corantes , Processamento de Imagem Assistida por Computador/métodos , Microscopia/métodos
3.
Cold Spring Harb Protoc ; 2011(1): pdb.prot5548, 2011 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-21205848

RESUMO

Correlated light microscopy (LM)/electron microscopy (EM) analysis can be achieved by using biarsenical dyes to fluorescently label tetracysteine-tagged proteins. Once live cell imaging using LM is complete, cellular activity can be halted promptly using a glutaraldehyde-based fixative. Rapid fixation preserves cellular ultrastructure and limits diffusion of reaction products. This protocol provides details on rapid fixation of cells, followed by fluorescence photoconversion of 3,3'-diaminobenzidine tetrahydrochloride (DAB) and sample processing for EM that can be correlated with the live cell LM images.


Assuntos
Proteínas Recombinantes/análise , Coloração e Rotulagem/métodos , Arsenicais , Linhagem Celular , Corantes Fluorescentes , Processamento de Imagem Assistida por Computador/métodos , Microscopia Eletrônica/métodos
4.
Cold Spring Harb Protoc ; 2011(1): pdb.top94, 2011 Jan 01.
Artigo em Inglês | MEDLINE | ID: mdl-21205860

RESUMO

Fundamental to obtaining a more complete understanding of the roles played by macromolecular complexes in cells is the ability to map their location, movement, and transient interactions at high temporal and high spatial resolution. Unfortunately, probes capable of allowing direct correlation of real-time or time-lapse light microscopy (LM) with electron microscopic observations are relatively few. Genetically encoded fluorescent reporters such as green fluorescent protein (GFP) have revolutionized live cell imaging studies but are not directly visible by electron microscopy (EM). Fluorescent nanoparticles or quantum dots are a type of label for LM that can also be visualized directly by EM, but targeting these to cytoplasmic proteins in living cells remains difficult. One method that does allow for highly correlated LM and EM with excellent preservation of cellular ultrastructure is fluorescence photoconversion, in which a fluorescent compound causes the deposition of a reaction product that can be rendered electron-dense and directly visualized by EM. We have used this method in combination with a class of genetically encoded peptide tags that can be labeled in living cells by fluorophores bearing two appropriately spaced arsenic atoms (biarsenicals). The tetracysteine motif is short, easily inserted into or attached to the termini of the host protein, and can be used in combination with other molecular tags such as GFP and its derivatives. This article presents methods to label cells with biarsenicals, conduct live cell imaging recording sessions, and generate specimens that can be evaluated by EM for a correlated LM/EM analysis.


Assuntos
Arsenicais/metabolismo , Cisteína/metabolismo , Microscopia/métodos , Coloração e Rotulagem/métodos , Arsenicais/química , Cisteína/química
5.
Mol Microbiol ; 76(1): 173-89, 2010 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-20149103

RESUMO

The bacterium Caulobacter crescentus has morphologically and functionally distinct cell poles that undergo sequential changes during the cell cycle. We show that the PopZ oligomeric network forms polar ribosome exclusion zones that change function during cell cycle progression. The parS/ParB chromosomal centromere is tethered to PopZ at one pole prior to the initiation of DNA replication. During polar maturation, the PopZ-centromere tether is broken, and the PopZ zone at that pole then switches function to act as a recruitment factor for the ordered addition of multiple proteins that promote the transformation of the flagellated pole into a stalked pole. Stalked pole assembly, in turn, triggers the initiation of chromosome replication, which signals the formation of a new PopZ zone at the opposite cell pole, where it functions to anchor the newly duplicated centromere that has traversed the long axis of the cell. We propose that pole-specific control of PopZ function co-ordinates polar development and cell cycle progression by enabling independent assembly and tethering activities at the two cell poles.


Assuntos
Proteínas de Bactérias/metabolismo , Caulobacter crescentus/fisiologia , Ciclo Celular , Polaridade Celular , Caulobacter crescentus/metabolismo , Centrômero/metabolismo , Cromossomos Bacterianos/metabolismo , Replicação do DNA , DNA Bacteriano/metabolismo , Microscopia Eletrônica de Transmissão , Microscopia de Fluorescência , Microscopia Imunoeletrônica , Modelos Biológicos , Modelos Moleculares , Multimerização Proteica
6.
Exp Eye Res ; 88(3): 600-9, 2009 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-19073179

RESUMO

Mutant connexins have been linked to hereditary congenital cataracts. One such mutant causes a proline-to-serine substitution at position 88 in human connexin 50 (CX50P88S). In transfected cells, CX50P88S does not form gap junctions, but localizes in cytoplasmic multilamellar structures. We studied the dynamics of formation and the stability of these structures in HeLa cells stably transfected with CX50P88S containing a tetracysteine motif appended to its C-terminus (HeLa-CX50P88S(Cys)(4) cells). The tetracysteine motif binds the membrane-permeable biarsenical compounds, FlAsH and ReAsH, which become fluorescent upon binding allowing detection of CX50P88S(Cys)(4) by fluorescence microscopy or by transmission electron microscopy after the ReAsH-driven fluorescent photoconversion of diaminobenzidine. CX50P88S structures were long-lived. Pulse labeling of HeLa-CX50P88S(Cys)(4) cells with FlAsH followed by a chase and ReAsH labeling showed a differential distribution of the labels, with older CX50P88S surrounded by newly synthesized protein. Formation of CX50P88S accumulations was not affected by treatments that block ER-to-Golgi transport. Transmission electron microscopy and tomographic reconstruction revealed that CX50P88S accumulations corresponded to closely apposed circular or semicircular membrane stacks that were sometimes continuous with the rough endoplasmic reticulum. These results suggest that CX50P88S accumulations originate from the rough endoplasmic reticulum and that mutant protein is sequentially added resulting in long-lived cytoplasmic particles. The persistence of these particles in the lens may cause light scattering and the pulverulent cataracts observed in affected individuals.


Assuntos
Catarata/genética , Conexinas/genética , Citoplasma/metabolismo , Proteínas do Olho/genética , Mutação , Proteínas Reguladoras de Apoptose/metabolismo , Proteínas de Ligação ao Cálcio/metabolismo , Conexinas/metabolismo , Citoplasma/ultraestrutura , Tomografia com Microscopia Eletrônica , Retículo Endoplasmático/metabolismo , Retículo Endoplasmático/ultraestrutura , Proteínas do Olho/metabolismo , Células HeLa , Humanos , Microscopia Eletrônica
7.
J Struct Biol ; 161(3): 439-46, 2008 Mar.
Artigo em Inglês | MEDLINE | ID: mdl-17998167

RESUMO

Virus assembly occurs in a complex environment and is dependent upon viral and cellular components being properly correlated in time and space. The simplicity of the flock house virus (FHV) capsid and the extensive structural, biochemical and genetic characterization of the virus make it an excellent system for studying in vivo virus assembly. The tetracysteine motif (CCPGCC), that induces fluorescence in bound biarsenical compounds (FlAsH and ReAsH), was genetically inserted in the coat protein, to visualize this gene product during virus infection. The small size of this modification when compared to those made by traditional fluorescent proteins minimizes disruption of the coat proteins numerous functions. ReAsH not only fluoresces when bound to the tetracysteine motif but also allows correlated electron microscopy (EM) of the same cell following photoconversion and osmium staining. These studies demonstrated that the coat protein was concentrated in discrete patches in the cell. High pressure freezing (HPF) followed by freeze substitution (FS) of infected cells showed that these patches were formed by virus particles in crystalline arrays. EM tomography (EMT) of the HPF/FS prepared samples showed that these arrays were proximal to highly modified mitochondria previously established to be the site of RNA replication. Two features of the mitochondrial modification are approximately 60 nm spherules that line the outer membrane and the large chamber created by the convolution induced in the entire organelle.


Assuntos
Capsídeo/ultraestrutura , Drosophila/virologia , Nodaviridae/ultraestrutura , Montagem de Vírus/fisiologia , Animais , Proteínas Luminescentes , Microscopia Eletrônica , Mitocôndrias/ultraestrutura , Tomografia
8.
Biochem J ; 408(3): 375-85, 2007 Dec 15.
Artigo em Inglês | MEDLINE | ID: mdl-17714073

RESUMO

The C-terminus of the most abundant and best-studied gap-junction protein, connexin43, contains multiple phosphorylation sites and protein-binding domains that are involved in regulation of connexin trafficking and channel gating. It is well-documented that SDS/PAGE of NRK (normal rat kidney) cell lysates reveals at least three connexin43-specific bands (P0, P1 and P2). P1 and P2 are phosphorylated on multiple, unidentified serine residues and are found primarily in gap-junction plaques. In the present study we prepared monoclonal antibodies against a peptide representing the last 23 residues at the C-terminus of connexin43. Immunofluorescence studies showed that one antibody (designated CT1) bound primarily to connexin43 present in the Golgi apparatus, whereas the other antibody (designated IF1) labelled predominately connexin43 present in gap junctions. CT1 immunoprecipitates predominantly the P0 form whereas IF1 recognized all three bands. Peptide mapping, mutational analysis and protein-protein interaction experiments revealed that unphosphorylated Ser364 and/or Ser365 are critical for CT1 binding. The IF1 paratope binds to residues Pro375-Asp379 and requires Pro375 and Pro377. These proline residues are also necessary for ZO-1 interaction. These studies indicate that the conformation of Ser364/Ser365 is important for intracellular localization, whereas the tertiary structure of Pro375-Asp379 is essential in targeting and regulation of gap junctional connexin43.


Assuntos
Anticorpos/imunologia , Conexina 43/química , Junções Comunicantes/química , Complexo de Golgi/química , Animais , Linhagem Celular , Conexina 43/genética , Conexina 43/imunologia , Cães , Eletroforese em Gel de Poliacrilamida , Imunoprecipitação , Microscopia Confocal , Microscopia de Fluorescência , Mutagênese Sítio-Dirigida , Fosforilação , Conformação Proteica , Ratos
10.
Proc Natl Acad Sci U S A ; 103(47): 17777-82, 2006 Nov 21.
Artigo em Inglês | MEDLINE | ID: mdl-17101980

RESUMO

Combinations of molecular tags visible in light and electron microscopes become particularly advantageous in the analysis of dynamic cellular components like the Golgi apparatus. This organelle disassembles at the onset of mitosis and, after a sequence of poorly understood events, reassembles after cytokinesis. The precise location of Golgi membranes and resident proteins during mitosis remains unclear, partly due to limitations of molecular markers and the resolution of light microscopy. We generated a fusion consisting of the first 117 residues of alpha-mannosidase II tagged with a fluorescent protein and a tetracysteine motif. The mannosidase component guarantees docking into the Golgi membrane, with the tags exposed in the lumen. The fluorescent protein is optically visible without further treatment, whereas the tetracysteine tag can be reduced acutely with a membrane-permeant phosphine, labeled with ReAsH, monitored in the light microscope, and used to trigger the photoconversion of diaminobenzidine, allowing 4D optical recording on live cells and correlated ultrastructural analysis by electron microscopy. These methods reveal that Golgi reassembly is preceded by the formation of four colinear clusters at telophase, two per daughter cell. Within each daughter, the smaller cluster near the midbody gradually migrates to rejoin the major cluster on the far side of the nucleus and asymmetrically reconstitutes a single Golgi apparatus, first in one daughter cell and then in the other. Our studies provide previously undescribed insights into Golgi disassociation and reassembly during mitosis and offer a powerful approach to follow recombinant protein distribution in 4D imaging and correlated high-resolution analysis.


Assuntos
Complexo de Golgi , Microscopia Eletrônica/métodos , Mitose/fisiologia , Coloração e Rotulagem/métodos , Cisteína/genética , Cisteína/metabolismo , Retículo Endoplasmático/metabolismo , Retículo Endoplasmático/ultraestrutura , Transferência Ressonante de Energia de Fluorescência , Corantes Fluorescentes/metabolismo , Complexo de Golgi/metabolismo , Complexo de Golgi/ultraestrutura , Células HeLa , Humanos , Isoenzimas/genética , Isoenzimas/metabolismo , Microscopia Eletrônica/instrumentação , Oxirredução , Peptídeos/genética , Peptídeos/metabolismo , Proteínas Recombinantes de Fusão/genética , Proteínas Recombinantes de Fusão/metabolismo , alfa-Manosidase/genética , alfa-Manosidase/metabolismo
11.
J Biol Chem ; 281(12): 7994-8009, 2006 Mar 24.
Artigo em Inglês | MEDLINE | ID: mdl-16407179

RESUMO

Single site mutations in connexins have provided insights about the influence specific amino acids have on gap junction synthesis, assembly, trafficking, and functionality. We have discovered a single point mutation that eliminates functionality without interfering with gap junction formation. The mutation occurs at a threonine residue located near the cytoplasmic end of the third transmembrane helix. This threonine is strictly conserved among members of the alpha- and beta-connexin subgroups but not the gamma-subgroup. In HeLa cells, connexin43 and connexin26 mutants are synthesized, traffic to the plasma membrane, and make gap junctions with the same overall appearance as wild type. We have isolated connexin26T135A gap junctions both from HeLa cells and baculovirus-infected insect Sf9 cells. By using cryoelectron microscopy and correlation averaging, difference images revealed a small but significant size change within the pore region and a slight rearrangement of the subunits between mutant and wild-type connexons expressed in Sf9 cells. Purified, detergent-solubilized mutant connexons contain both hexameric and partially disassembled structures, although wild-type connexons are almost all hexameric, suggesting that the three-dimensional mutant connexon is unstable. Mammalian cells expressing gap junction plaques composed of either connexin43T154A or connexin26T135A showed an absence of dye coupling. When expressed in Xenopus oocytes, these mutants, as well as a cysteine substitution mutant of connexin50 (connexin50T157C), failed to produce electrical coupling in homotypic and heteromeric pairings with wild type in a dominant-negative effect. This mutant may be useful as a tool for knocking down or knocking out connexin function in vitro or in vivo.


Assuntos
Membrana Celular/metabolismo , Conexinas/química , Conexinas/genética , Mutação , Treonina/química , Sequência de Aminoácidos , Animais , Baculoviridae/metabolismo , Linhagem Celular , Conexina 26 , Conexina 43/genética , Microscopia Crioeletrônica , Cisteína/química , Citoplasma/metabolismo , DNA Complementar/metabolismo , Eletrofisiologia , Corantes Fluorescentes/farmacologia , Junções Comunicantes , Genes Dominantes , Células HeLa , Humanos , Processamento de Imagem Assistida por Computador , Insetos , Queratinócitos/metabolismo , Luz , Microscopia Eletrônica , Microscopia de Fluorescência , Dados de Sequência Molecular , Mutagênese Sítio-Dirigida , Oócitos/metabolismo , Oxigênio/metabolismo , Filogenia , Mutação Puntual , RNA Complementar/metabolismo , Ratos , Fatores de Tempo , Transfecção , Xenopus
12.
Cell Commun Adhes ; 10(4-6): 181-6, 2003.
Artigo em Inglês | MEDLINE | ID: mdl-14681013

RESUMO

Gap junctions (GJ) are defined as contact regions between two adjacent cells containing tens to thousands of closely packed membrane channels. Cells dynamically modulate communication through GJ by regulating the synthesis, transport and turnover of these channels. Previously, we engineered a recombinant connexin43 (Cx43) by genetically appending a small tetracysteine peptide motif containing the sequence -Cys-Cys-Xaa-Xaa-Cys-Cys- to the carboxy terminus of Cx43 (Cx43-TC) (3). Cx43-TC was stably expressed in HeLa cells and was specifically labeled by exposing the cells to membrane-permeant non-fluorescent ligands, such as FlAsH (a fluorescein derivative) and ReAsH (a resorufin derivative). Direct correlation of live cell images with high resolution EM detection was possible because bound ReAsH not only becomes fluorescent, but can also be used to initiate the photoconversion of diaminobenzidine (DAB) that causes the localized polymerization of an insoluble osmiophilic precipitate then visible by EM. Cx43-TC GJ's could be labeled with ReAsH and photooxidized to give selectively stained channels. Here, how the development of these tetracysteine tags complexed with appropriate ligands are useful for experiments spanning resolution ranges from light microscopy to electron tomography to molecular purification and detection is described.


Assuntos
Conexina 43/genética , Cisteína/genética , Fluoresceínas/química , Junções Comunicantes/ultraestrutura , Transporte Biológico/fisiologia , Compostos Cromogênicos/química , Conexina 43/metabolismo , Cisteína/metabolismo , Junções Comunicantes/metabolismo , Células HeLa , Humanos , Microscopia Eletrônica
13.
J Neurocytol ; 32(4): 373-80, 2003 May.
Artigo em Inglês | MEDLINE | ID: mdl-14724380

RESUMO

Pharmacological approaches and optical recordings have shown that Schwann cells of a myelinating phenotype are activated by 5-HT upon its interaction with the 5-HT(2A) receptor (5-HT(2A)R). In order to further characterize the expression and distribution of this receptor in Schwann cells, we examined rat sciatic nerve and cultured rat Schwann cells using probes specific to 5-HT(2A)R protein mRNA. We also examined the endogenous sources of 5-HT in rat sciatic nerve by employing both histochemical stains and an antibody that specifically recognizes 5-HT. Rat Schwann cells of a myelinating phenotype contained both 5-HT(2A)R protein and mRNA. In the healthy adult rat sciatic nerve, 5-HT(2A)Rs were evenly distributed along the outermost portion of the Schwann cell plasma membrane and within the cytoplasm. The most prominent source of 5-HT was within granules of the endoneurial mast cells, closely juxtaposed to Schwann cells within myelinating sciatic nerves. These results support the hypothesis that the 5-HT receptors expressed by rat Schwann cells in vivo are activated by the release of 5-HT from neighboring mast cells.


Assuntos
Bainha de Mielina/imunologia , Fibras Nervosas Mielinizadas/imunologia , Receptor 5-HT2A de Serotonina/metabolismo , Células de Schwann/imunologia , Nervo Isquiático/crescimento & desenvolvimento , Nervo Isquiático/imunologia , Serotonina/metabolismo , Animais , Animais Recém-Nascidos , Membrana Celular/imunologia , Membrana Celular/ultraestrutura , Células Cultivadas , Quimiotaxia de Leucócito/imunologia , Doenças Desmielinizantes/imunologia , Doenças Desmielinizantes/fisiopatologia , Imuno-Histoquímica , Macrófagos/imunologia , Mastócitos/imunologia , Microscopia Eletrônica , Bainha de Mielina/ultraestrutura , Fibras Nervosas Mielinizadas/ultraestrutura , Nervos Periféricos/imunologia , Nervos Periféricos/ultraestrutura , RNA Mensageiro/metabolismo , Ratos , Ratos Sprague-Dawley , Receptor 5-HT2A de Serotonina/genética , Células de Schwann/ultraestrutura , Nervo Isquiático/ultraestrutura
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