Your browser doesn't support javascript.
loading
Mostrar: 20 | 50 | 100
Resultados 1 - 14 de 14
Filtrar
Mais filtros










Base de dados
Intervalo de ano de publicação
1.
Proc Natl Acad Sci U S A ; 119(47): e2207660119, 2022 11 22.
Artigo em Inglês | MEDLINE | ID: mdl-36375065

RESUMO

In the early stages of meiosis, maternal and paternal chromosomes pair with their homologous partner and recombine to ensure exchange of genetic information and proper segregation. These events can vary drastically between species and between males and females of the same species. In Drosophila, in contrast to females, males do not form synaptonemal complexes (SCs), do not recombine, and have no crossing over; yet, males are able to segregate their chromosomes properly. Here, we investigated the early steps of homolog pairing in Drosophila males. We found that homolog centromeres are not paired in germline stem cells (GSCs) and become paired in the mitotic region before meiotic entry, similarly to females. Surprisingly, male germline cells express SC proteins, which localize to centromeres and promote pairing. We further found that the SUN/KASH (LINC) complex and microtubules are required for homolog pairing as in females. Chromosome movements in males, however, are much slower than in females and we demonstrate that this slow dynamic is compensated in males by having longer cell cycles. In agreement, slowing down cell cycles was sufficient to rescue pairing-defective mutants in female meiosis. Our results demonstrate that although meiosis differs significantly between males and females, sex-specific cell cycle kinetics integrate similar molecular mechanisms to achieve proper centromere pairing.


Assuntos
Pareamento Cromossômico , Drosophila , Animais , Masculino , Feminino , Pareamento Cromossômico/genética , Drosophila/genética , Complexo Sinaptonêmico , Centrômero/genética , Meiose/genética , Cromossomos , Segregação de Cromossomos/genética
2.
Genetics ; 217(1): 1-12, 2021 03 03.
Artigo em Inglês | MEDLINE | ID: mdl-33683355

RESUMO

Glycolysis and fatty acid (FA) synthesis directs the production of energy-carrying molecules and building blocks necessary to support cell growth, although the absolute requirement of these metabolic pathways must be deeply investigated. Here, we used Drosophila genetics and focus on the TOR (Target of Rapamycin) signaling network that controls cell growth and homeostasis. In mammals, mTOR (mechanistic-TOR) is present in two distinct complexes, mTORC1 and mTORC2; the former directly responds to amino acids and energy levels, whereas the latter sustains insulin-like-peptide (Ilp) response. The TORC1 and Ilp signaling branches can be independently modulated in most Drosophila tissues. We show that TORC1 and Ilp-dependent overgrowth can operate independently in fat cells and that ubiquitous over-activation of TORC1 or Ilp signaling affects basal metabolism, supporting the use of Drosophila as a powerful model to study the link between growth and metabolism. We show that cell-autonomous restriction of glycolysis or FA synthesis in fat cells retrains overgrowth dependent on Ilp signaling but not TORC1 signaling. Additionally, the mutation of FASN (Fatty acid synthase) results in a drop in TORC1 but not Ilp signaling, whereas, at the cell-autonomous level, this mutation affects none of these signals in fat cells. These findings thus reveal differential metabolic sensitivity of TORC1- and Ilp-dependent growth and suggest that cell-autonomous metabolic defects might elicit local compensatory pathways. Conversely, enzyme knockdown in the whole organism results in animal death. Importantly, our study weakens the use of single inhibitors to fight mTOR-related diseases and strengthens the use of drug combination and selective tissue-targeting.


Assuntos
Proliferação de Células , Proteínas de Drosophila/metabolismo , Corpo Adiposo/metabolismo , Insulinas/metabolismo , Alvo Mecanístico do Complexo 1 de Rapamicina/metabolismo , Transdução de Sinais , Animais , Metabolismo Basal , Drosophila melanogaster , Corpo Adiposo/citologia , Corpo Adiposo/fisiologia , Ácido Graxo Sintase Tipo I/metabolismo , Ácidos Graxos/biossíntese , Glicólise
3.
Cells ; 9(3)2020 03 12.
Artigo em Inglês | MEDLINE | ID: mdl-32178277

RESUMO

Meiosis is a key event in the manufacturing of an oocyte. During this process, the oocyte creates a set of unique chromosomes by recombining paternal and maternal copies of homologous chromosomes, and by eliminating one set of chromosomes to become haploid. While meiosis is conserved among sexually reproducing eukaryotes, there is a bewildering diversity of strategies among species, and sometimes within sexes of the same species, to achieve proper segregation of chromosomes. Here, we review the very first steps of meiosis in females, when the maternal and paternal copies of each homologous chromosomes have to move, find each other and pair. We explore the similarities and differences observed in C. elegans, Drosophila, zebrafish and mouse females.


Assuntos
Cromossomos/metabolismo , Meiose/imunologia , Animais , Caenorhabditis elegans
4.
PLoS Genet ; 15(10): e1008412, 2019 10.
Artigo em Inglês | MEDLINE | ID: mdl-31609962

RESUMO

During meiosis, each chromosome must selectively pair and synapse with its own unique homolog to enable crossover formation and subsequent segregation. How homolog pairing is maintained in early meiosis to ensure synapsis occurs exclusively between homologs is unknown. We aimed to further understand this process by examining the meiotic defects of a unique Drosophila mutant, Mcm5A7. We found that Mcm5A7 mutants are proficient in homolog pairing at meiotic onset yet fail to maintain pairing as meiotic synapsis ensues, causing seemingly normal synapsis between non-homologous loci. This pairing defect corresponds with a reduction of SMC1-dependent centromere clustering at meiotic onset. Overexpressing SMC1 in this mutant significantly restores centromere clustering, homolog pairing, and crossover formation. These data indicate that the initial meiotic pairing of homologs is not sufficient to yield synapsis exclusively between homologs and provide a model in which meiotic homolog pairing must be stabilized by centromeric SMC1 to ensure proper synapsis.


Assuntos
Proteínas de Ciclo Celular/genética , Centrômero/genética , Proteínas Cromossômicas não Histona/genética , Recombinação Homóloga/genética , Meiose/genética , Animais , Pareamento Cromossômico/genética , Segregação de Cromossomos/genética , Drosophila/genética , Complexo Sinaptonêmico , Telômero/genética
6.
Nat Cell Biol ; 17(11): 1388-400, 2015 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-26458247

RESUMO

At the onset of meiosis, each chromosome needs to find its homologue and pair to ensure proper segregation. In Drosophila, pairing occurs during the mitotic cycles preceding meiosis. Here we show that germ cell nuclei undergo marked movements during this developmental window. We demonstrate that microtubules and Dynein are driving nuclear rotations and are required for centromere pairing and clustering. We further found that Klaroid (SUN) and Klarsicht (KASH) co-localize with centromeres at the nuclear envelope and are required for proper chromosome motions and pairing. We identified Mud (NuMA in vertebrates) as co-localizing with centromeres, Klarsicht and Klaroid. Mud is also required to maintain the integrity of the nuclear envelope and for the correct assembly of the synaptonemal complex. Our findings reveal a mechanism for chromosome pairing in Drosophila, and indicate that microtubules, centrosomes and associated proteins play a crucial role in the dynamic organization of chromosomes inside the nucleus.


Assuntos
Núcleo Celular/metabolismo , Pareamento Cromossômico , Meiose , Microtúbulos/metabolismo , Animais , Animais Geneticamente Modificados , Núcleo Celular/genética , Centrômero/genética , Centrômero/metabolismo , Centrossomo/metabolismo , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/genética , Drosophila melanogaster/metabolismo , Dineínas/metabolismo , Feminino , Cinética , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Proteínas de Membrana/genética , Proteínas de Membrana/metabolismo , Proteínas de Membrana Transportadoras/genética , Proteínas de Membrana Transportadoras/metabolismo , Microscopia Confocal , Proteínas do Tecido Nervoso/genética , Proteínas do Tecido Nervoso/metabolismo , Ovário/citologia , Ovário/metabolismo , Ligação Proteica , Interferência de RNA , Rotação , Complexo Sinaptonêmico , Imagem com Lapso de Tempo/métodos
7.
J Lipid Res ; 56(11): 2094-101, 2015 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-26353752

RESUMO

In terrestrial insects, cuticular hydrocarbons (CHCs) provide protection from desiccation. Specific CHCs can also act as pheromones, which are important for successful mating. Oenocytes are abdominal cells thought to act as specialized units for CHC biogenesis that consists of long-chain fatty acid (LCFA) synthesis, optional desaturation(s), elongation to very long-chain fatty acids (VLCFAs), and removal of the carboxyl group. By investigating CHC biogenesis in Drosophila melanogaster, we showed that VLCFA synthesis takes place only within the oenocytes. Conversely, several pathways, which may compensate for one another, can feed the oenocyte pool of LCFAs, suggesting that this step is a critical node for regulating CHC synthesis. Importantly, flies deficient in LCFA synthesis sacrificed their triacylglycerol stores while maintaining some CHC production. Moreover, pheromone production was lower in adult flies that emerged from larvae that were fed excess dietary lipids, and their mating success was lower. Further, we showed that pheromone production in the oenocytes depends on lipid metabolism in the fat tissue and that fatty acid transport protein, a bipartite acyl-CoA synthase (ACS)/FA transporter, likely acts through its ACS domain in the oenocyte pathway of CHC biogenesis. Our study highlights the importance of environmental and physiological inputs in regulating LCFA synthesis to eventually control sexual communication in a polyphagous animal.


Assuntos
Drosophila melanogaster/metabolismo , Metabolismo dos Lipídeos , Feromônios/biossíntese , Animais , Vias Biossintéticas , Proteínas de Drosophila/metabolismo , Corpo Adiposo/metabolismo , Ácido Graxo Sintase Tipo I/metabolismo , Ácidos Graxos/metabolismo , Feminino , Homeostase , Larva/metabolismo , Gotículas Lipídicas/metabolismo , Masculino , Receptores de Lipoproteínas/metabolismo , Triglicerídeos/metabolismo
8.
Methods Mol Biol ; 1328: 29-55, 2015.
Artigo em Inglês | MEDLINE | ID: mdl-26324428

RESUMO

Drosophila melanogaster oogenesis is a versatile model system used to address many important questions of cell and developmental biology such as stem cell regulation, cell determination, cell polarization, cell-cell signaling, cell-cell adhesion, and cell-cycle regulation. The ovary is composed of germline and somatic cells of different origins and functions. Mosaic analysis using the powerful genetic tools available in Drosophila melanogaster allows deciphering the contribution of each cell type in the different processes leading to the formation of a mature egg. Germ cells and follicle cells are produced by actively dividing stem cells, which permit the use of recombinases, such as FLP, to generate genetic mosaics using mitotic recombination. This chapter summarizes the different methods used to create genetic mosaics in the germline and in somatic cells of adult ovaries. We briefly introduce the morphology and development of the adult female ovary. We then describe in practical terms how to generate mosaics with examples of cross schemes and recombining strains. We also explain how to identify the appropriate progeny and how to prepare clonal tissues for phenotypic analysis.


Assuntos
Drosophila melanogaster/crescimento & desenvolvimento , Biologia Molecular/métodos , Mosaicismo , Células-Tronco/citologia , Animais , Drosophila melanogaster/genética , Feminino , Células Germinativas/crescimento & desenvolvimento , Oócitos/crescimento & desenvolvimento , Folículo Ovariano/crescimento & desenvolvimento
9.
PLoS Genet ; 11(2): e1004995, 2015 Feb.
Artigo em Inglês | MEDLINE | ID: mdl-25692475

RESUMO

Fatty acid (FA) metabolism is deregulated in several human diseases including metabolic syndrome, type 2 diabetes and cancers. Therefore, FA-metabolic enzymes are potential targets for drug therapy, although the consequence of these treatments must be precisely evaluated at the organismal and cellular levels. In healthy organism, synthesis of triacylglycerols (TAGs)-composed of three FA units esterified to a glycerol backbone-is increased in response to dietary sugar. Saturation in the storage and synthesis capacity of TAGs is associated with type 2 diabetes progression. Sugar toxicity likely depends on advanced-glycation-end-products (AGEs) that form through covalent bounding between amine groups and carbonyl groups of sugar or their derivatives α-oxoaldehydes. Methylglyoxal (MG) is a highly reactive α-oxoaldehyde that is derived from glycolysis through a non-enzymatic reaction. Glyoxalase 1 (Glo1) works to neutralize MG, reducing its deleterious effects. Here, we have used the power of Drosophila genetics to generate Fatty acid synthase (FASN) mutants, allowing us to investigate the consequence of this deficiency upon sugar-supplemented diets. We found that FASN mutants are lethal but can be rescued by an appropriate lipid diet. Rescued animals do not exhibit insulin resistance, are dramatically sensitive to dietary sugar and accumulate AGEs. We show that FASN and Glo1 cooperate at systemic and cell-autonomous levels to protect against sugar toxicity. We observed that the size of FASN mutant cells decreases as dietary sucrose increases. Genetic interactions at the cell-autonomous level, where glycolytic enzymes or Glo1 were manipulated in FASN mutant cells, revealed that this sugar-dependent size reduction is a direct consequence of MG-derived-AGE accumulation. In summary, our findings indicate that FASN is dispensable for cell growth if extracellular lipids are available. In contrast, FA-synthesis appears to be required to limit a cell-autonomous accumulation of MG-derived-AGEs, supporting the notion that MG is the most deleterious α-oxoaldehyde at the intracellular level.


Assuntos
Diabetes Mellitus Tipo 2/genética , Ácido Graxo Sintase Tipo I/genética , Lactoilglutationa Liase/genética , Síndrome Metabólica/genética , Neoplasias/genética , Animais , Diabetes Mellitus Tipo 2/metabolismo , Diabetes Mellitus Tipo 2/patologia , Sacarose Alimentar/administração & dosagem , Sacarose Alimentar/toxicidade , Drosophila , Ácido Graxo Sintase Tipo I/metabolismo , Produtos Finais de Glicação Avançada/genética , Produtos Finais de Glicação Avançada/metabolismo , Humanos , Resistência à Insulina/genética , Lactoilglutationa Liase/metabolismo , Lipídeos/administração & dosagem , Síndrome Metabólica/metabolismo , Síndrome Metabólica/patologia , Mutação , Neoplasias/metabolismo , Neoplasias/patologia , Aldeído Pirúvico/metabolismo , Triglicerídeos/biossíntese
10.
Biol Open ; 3(6): 522-8, 2014 May 29.
Artigo em Inglês | MEDLINE | ID: mdl-24876387

RESUMO

Cenp-E is a kinesin-like motor protein required for efficient end-on attachment of kinetochores to the spindle microtubules. Cenp-E immunodepletion in Xenopus mitotic extracts results in the loss of mitotic arrest and massive chromosome missegregation, whereas its depletion in mammalian cells leads to chromosome segregation defects despite the presence of a functional spindle assembly checkpoint (SAC). Cenp-meta has previously been reported to be the Drosophila homolog of vertebrate Cenp-E. In this study, we show that cenp-metaΔ mutant neuroblasts arrest in mitosis when treated with colchicine. cenp-metaΔ mutant cells display a mitotic delay. Yet, despite the persistence of the two checkpoint proteins Mad2 and BubR1 on unattached kinetochores, these cells eventually enter anaphase and give rise to highly aneuploid daughter cells. Indeed, we find that cenp-metaΔ mutant cells display a slow but continuous degradation of cyclin B, which eventually triggers the mitotic exit observed. Thus, our data provide evidence for a role of Cenp-meta in sustaining the SAC response.

11.
PLoS Genet ; 9(12): e1004012, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-24367278

RESUMO

Mitosis and meiosis are two distinct cell division programs. During mitosis, sister chromatids separate, whereas during the first meiotic division, homologous chromosomes pair and then segregate from each other. In most organisms, germ cells do both programs sequentially, as they first amplify through mitosis, before switching to meiosis to produce haploid gametes. Here, we show that autosomal chromosomes are unpaired at their centromeres in Drosophila germline stem cells, and become paired during the following four mitosis of the differentiating daughter cell. Surprisingly, we further demonstrate that components of the central region of the synaptonemal complex are already expressed in the mitotic region of the ovaries, localize close to centromeres, and promote de novo association of centromeres. Our results thus show that meiotic proteins and meiotic organization of centromeres, which are key features to ensure reductional segregation, are laid out in amplifying germ cells, before meiosis has started.


Assuntos
Centrômero/genética , Pareamento Cromossômico/genética , Drosophila melanogaster/genética , Meiose/genética , Complexo Sinaptonêmico/genética , Animais , Cromátides/genética , Segregação de Cromossomos , Drosophila melanogaster/citologia , Células Germinativas/citologia , Mitose , Troca de Cromátide Irmã/genética
12.
PLoS One ; 7(11): e49958, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-23185495

RESUMO

The potential to produce new cells during adult life depends on the number of stem cell niches and the capacity of stem cells to divide, and is therefore under the control of programs ensuring developmental homeostasis. However, it remains generally unknown how the number of stem cell niches is controlled. In the insect ovary, each germline stem cell (GSC) niche is embedded in a functional unit called an ovariole. The number of ovarioles, and thus the number of GSC niches, varies widely among species. In Drosophila, morphogenesis of ovarioles starts in larvae with the formation of terminal filaments (TFs), each made of 8-10 cells that pile up and sort in stacks. TFs constitute organizers of individual germline stem cell niches during larval and early pupal development. In the Drosophila melanogaster subgroup, the number of ovarioles varies interspecifically from 8 to 20. Here we show that pipsqueak, Trithorax-like, batman and the bric-à-brac (bab) locus, all encoding nuclear BTB/POZ factors of the Tramtrack Group, are involved in limiting the number of ovarioles in D. melanogaster. At least two different processes are differentially perturbed by reducing the function of these genes. We found that when the bab dose is reduced, sorting of TF cells into TFs was affected such that each TF contains fewer cells and more TFs are formed. In contrast, psq mutants exhibited a greater number of TF cells per ovary, with a normal number of cells per TF, thereby leading to formation of more TFs per ovary than in the wild type. Our results indicate that two parallel genetic pathways under the control of a network of nuclear BTB factors are combined in order to negatively control the number of germline stem cell niches.


Assuntos
Proteínas de Ligação a DNA , Proteínas de Drosophila , Proteínas Nucleares , Nicho de Células-Tronco/genética , Fatores de Transcrição , Animais , Proteínas de Ligação a DNA/genética , Proteínas de Ligação a DNA/metabolismo , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Drosophila melanogaster/genética , Drosophila melanogaster/crescimento & desenvolvimento , Feminino , Dosagem de Genes/genética , Regulação da Expressão Gênica no Desenvolvimento , Células Germinativas/citologia , Células Germinativas/crescimento & desenvolvimento , Homeostase/genética , Homeostase/fisiologia , Morfogênese , Proteínas Nucleares/genética , Proteínas Nucleares/metabolismo , Ovário/citologia , Ovário/crescimento & desenvolvimento , Nicho de Células-Tronco/fisiologia , Fatores de Transcrição/genética , Fatores de Transcrição/metabolismo
13.
PLoS Genet ; 8(8): e1002925, 2012.
Artigo em Inglês | MEDLINE | ID: mdl-22956916

RESUMO

Fatty acid (FA) metabolism plays a central role in body homeostasis and related diseases. Thus, FA metabolic enzymes are attractive targets for drug therapy. Mouse studies on Acetyl-coenzymeA-carboxylase (ACC), the rate-limiting enzyme for FA synthesis, have highlighted its homeostatic role in liver and adipose tissue. We took advantage of the powerful genetics of Drosophila melanogaster to investigate the role of the unique Drosophila ACC homologue in the fat body and the oenocytes. The fat body accomplishes hepatic and storage functions, whereas the oenocytes are proposed to produce the cuticular lipids and to contribute to the hepatic function. RNA-interfering disruption of ACC in the fat body does not affect viability but does result in a dramatic reduction in triglyceride storage and a concurrent increase in glycogen accumulation. These metabolic perturbations further highlight the role of triglyceride and glycogen storage in controlling circulatory sugar levels, thereby validating Drosophila as a relevant model to explore the tissue-specific function of FA metabolic enzymes. In contrast, ACC disruption in the oenocytes through RNA-interference or tissue-targeted mutation induces lethality, as does oenocyte ablation. Surprisingly, this lethality is associated with a failure in the watertightness of the spiracles-the organs controlling the entry of air into the trachea. At the cellular level, we have observed that, in defective spiracles, lipids fail to transfer from the spiracular gland to the point of air entry. This phenotype is caused by disrupted synthesis of a putative very-long-chain-FA (VLCFA) within the oenocytes, which ultimately results in a lethal anoxic issue. Preventing liquid entry into respiratory systems is a universal issue for air-breathing animals. Here, we have shown that, in Drosophila, this process is controlled by a putative VLCFA produced within the oenocytes.


Assuntos
Acetil-CoA Carboxilase , Drosophila melanogaster , Ácidos Graxos/metabolismo , Metabolismo dos Lipídeos/genética , Sistema Respiratório/metabolismo , Acetil-CoA Carboxilase/genética , Acetil-CoA Carboxilase/metabolismo , Animais , Metabolismo dos Carboidratos , Drosophila melanogaster/genética , Drosophila melanogaster/metabolismo , Corpo Adiposo/citologia , Corpo Adiposo/metabolismo , Ácidos Graxos/genética , Glicogênio/metabolismo , Hipóxia/genética , Hipóxia/metabolismo , Interferência de RNA , Triglicerídeos/genética , Triglicerídeos/metabolismo , Água/metabolismo
14.
Int J Dev Biol ; 52(1): 21-31, 2008.
Artigo em Inglês | MEDLINE | ID: mdl-18033669

RESUMO

The stereotyped organization of the Drosophila compound eye depends on the elimination by apoptosis of about 25% of the inter-ommatidial pigment cell precursors (IOCs) during metamorphosis. This program of cell death is under antagonistic effects of the Notch and the EGFR pathways. In addition, uncharacterized positional cues may underlie death versus survival choices among IOCs. Our results provide new genetic evidences that cell death is regulated in a position- dependent manner in the eye. We show that mutations in Trithorax-like (Trl) and lola-like/batman specifically block IOC death during eye morphogenesis. These genes share characteristics of both Polycomb-Group and trithorax-Group genes, in that they are required for chromatin-mediated repression and activation of Hox genes. However, Trl function in triggering IOC death is independent from a function in repressing Hox gene expression during eye development. Analysis of mosaic ommatidiae containing Trl mutant cells revealed that Trl function for IOC death is required in cone cells. Strikingly, cell death suppression in Trl mutants depends on the position of IOCs. Our results further support a model whereby death of IOCs on the oblique sides of ommatidiae requires Trl-dependent reduction of a survival signal, or an increase of a death signal, emanating from cone cells. Trl does not have the same effect on horizontal IOCs whose survival seems to involve additional topological constraints.


Assuntos
Apoptose/genética , Drosophila/genética , Regulação da Expressão Gênica no Desenvolvimento , Genes de Insetos , Epitélio Pigmentado Ocular/fisiologia , Animais , Apoptose/fisiologia , Biomarcadores/metabolismo , Drosophila/fisiologia , Proteínas de Drosophila/genética , Proteínas de Drosophila/metabolismo , Receptores ErbB/genética , Receptores ErbB/metabolismo , Olho/crescimento & desenvolvimento , Olho/ultraestrutura , Morfogênese , Mutação , Proteínas Quinases/genética , Proteínas Quinases/metabolismo , Pupa/crescimento & desenvolvimento , Receptores de Peptídeos de Invertebrados/genética , Receptores de Peptídeos de Invertebrados/metabolismo , Receptores Notch/genética , Receptores Notch/metabolismo , Retina/citologia , Retina/fisiologia , Transgenes
SELEÇÃO DE REFERÊNCIAS
DETALHE DA PESQUISA
...