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1.
Dev Biol ; 421(2): 194-203, 2017 Jan 15.
Article in English | MEDLINE | ID: mdl-27913220

ABSTRACT

Using sea urchin embryos, we demonstrate that the MEK/MAPK/ERK cascade is essential for the proper progression of the cell cycle. Activation of a limited fraction of MAPK/ERK is required between S-phase and M-phase. Neither DNA replication nor CDK1 activation are impacted by the inhibition of this small active MAPK/ERK fraction. Nonetheless, the chromatin and spindle organisations are profoundly altered. Early morphological disorders induced by the absence of MAPK/ERK activation are correlated with an important inhibition of global protein synthesis and modification in the cyclin B accumulation profile. After appearance of morphological disorders, there is an increase in the level of the inhibitor of protein synthesis, 4E-BP, and, ultimately, an activation of the spindle checkpoint. Altogether, our results suggest that MAPK/ERK activity is required for the synthesis of (a) protein(s) implicated in an early step of chromatin /microtubule attachment. If this MAPK/ERK-dependent step is not achieved, the cell activates a new checkpoint mechanism, involving the reappearance of 4E-BP that maintains a low level of protein translation, thus saving cellular energy.


Subject(s)
Embryo, Nonmammalian/cytology , Embryo, Nonmammalian/enzymology , MAP Kinase Signaling System , Mitosis , Sea Urchins/cytology , Sea Urchins/embryology , Animals , Biological Evolution , Butadienes/pharmacology , CDC2 Protein Kinase/metabolism , Carrier Proteins/metabolism , Cell Division/drug effects , Chromatin/metabolism , Cyclin B/metabolism , DNA Replication/drug effects , Embryo, Nonmammalian/drug effects , Enzyme Activation/drug effects , Fertilization/drug effects , MAP Kinase Signaling System/drug effects , Microtubules/drug effects , Microtubules/metabolism , Mitosis/drug effects , Nitriles/pharmacology , Ovum/cytology , Ovum/drug effects , Phosphorylation/drug effects , Protein Biosynthesis/drug effects , Sea Urchins/drug effects
2.
Mol Reprod Dev ; 83(12): 1070-1082, 2016 12.
Article in English | MEDLINE | ID: mdl-27699901

ABSTRACT

Sea urchin eggs exhibit a cap-dependent increase in protein synthesis within minutes after fertilization. This rise in protein synthesis occurs at a constant rate for a great number of proteins translated from the different available mRNAs. Surprisingly, we found that cyclin B, a major cell-cycle regulator, follows a synthesis pattern that is distinct from the global protein population, so we developed a mathematical model to analyze this dissimilarity in biosynthesis kinetic patterns. The model includes two pathways for cyclin B mRNA entry into the translational machinery: one from immediately available mRNA (mRNAcyclinB) and one from mRNA activated solely after fertilization (XXmRNAcyclinB). Two coefficients, α and ß, were added to fit the measured scales of global protein and cyclin B synthesis, respectively. The model was simplified to identify the synthesis parameters and to allow its simulation. The calculated parameters for activation of the specific cyclin B synthesis pathway after fertilization included a kinetic constant (ka ) of 0.024 sec-1 , for the activation of XXmRNAcyclinB, and a critical time interval (t2 ) of 42 min. The proportion of XXmRNAcyclinB form was also calculated to be largely dominant over the mRNAcyclinB form. Regulation of cyclin B biosynthesis is an example of a select protein whose translation is controlled by pathways that are distinct from housekeeping proteins, even though both involve the same cap-dependent initiation pathway. Therefore, this model should help provide insight to the signaling utilized for the biosynthesis of cyclin B and other select proteins. Mol. Reprod. Dev. 83: 1070-1082, 2016. © 2016 Wiley Periodicals, Inc.


Subject(s)
Cyclin B/biosynthesis , Fertilization , Models, Biological , Ovum/metabolism , Protein Biosynthesis/physiology , RNA, Messenger, Stored/metabolism , Animals , Female , Ovum/cytology , Sea Urchins/metabolism
4.
Front Genet ; 5: 117, 2014.
Article in English | MEDLINE | ID: mdl-24834072

ABSTRACT

Fertilization of sea urchin eggs involves an increase in protein synthesis associated with a decrease in the amount of the translation initiation inhibitor 4E-BP. A highly simple reaction model for the regulation of protein synthesis was built and was used to simulate the physiological changes in the total 4E-BP amount observed during time after fertilization. Our study evidenced that two changes occurring at fertilization are necessary to fit with experimental data. The first change was an 8-fold increase in the dissociation parameter (koff1) of the eIF4E:4E-BP complex. The second was an important 32.5-fold activation of the degradation mechanism of the protein 4E-BP. Additionally, the changes in both processes should occur in 5 min time interval post-fertilization. To validate the model, we checked that the kinetic of the predicted 4.2-fold increase of eIF4E:eIF4G complex concentration at fertilization matched the increase of protein synthesis experimentally observed after fertilization (6.6-fold, SD = 2.3, n = 8). The minimal model was also used to simulate changes observed after fertilization in the presence of rapamycin, a FRAP/mTOR inhibitor. The model showed that the eIF4E:4E-BP complex destabilization was impacted and surprisingly, that the mechanism of 4E-BP degradation was also strongly affected, therefore suggesting that both processes are controlled by the protein kinase FRAP/mTOR.

5.
Dev Biol ; 365(1): 303-9, 2012 May 01.
Article in English | MEDLINE | ID: mdl-22425618

ABSTRACT

The eukaryotic Initiation Factor 2 (eIF2) is a key regulator of protein synthesis in eukaryotic cells, implicated in the initiation step of translation. Fertilization of the sea urchin eggs triggers a rapid increase in protein synthesis activity, which is necessary for the progress into embryonic cell cycles. Here we demonstrate that fertilization triggers eIF2α dephosphorylation, concomitant with an increase in protein synthesis and that induction of the eIF2α phosphorylation is intimately linked with an inhibition of protein synthesis and cell cycle arrest. Using a phospho-mimetic protein microinjected into sea urchin eggs, we showed that dephosphorylation of eIF2α is necessary for protein synthesis activity and cell division progression following fertilization. Our results demonstrate that regulation of eIF2α plays an important role in the protein synthesis rise that occurs during early development following fertilization.


Subject(s)
Eukaryotic Initiation Factor-2/physiology , Sea Urchins/physiology , Animals , Cell Cycle/physiology , Fertilization/physiology , Phosphorylation , Protein Biosynthesis , Sea Urchins/embryology
6.
Dev Biol ; 350(2): 476-83, 2011 Feb 15.
Article in English | MEDLINE | ID: mdl-21167828

ABSTRACT

Elongation factor 2 (eEF2) is the main regulator of peptide chain elongation in eukaryotic cells. Using sea urchin eggs and early embryos, two isoforms of eEF2 of respectively 80 and 83 kDa apparent molecular weight have been discovered. Both isoforms were identified by immunological analysis as well as mass spectrometry, and appeared to originate from a unique post-translationally modified protein. Accompanying the net increase in protein synthesis that occurs in early development, both eEF2 isoforms underwent dephosphorylation in the 15 min period following fertilization, in accordance with the active role of dephosphorylated eEF2 in regulation of protein synthesis. After initial dephosphorylation, the major 83 kDa isoform remained dephosphorylated while the 80 kDa isoform was progressively re-phosphorylated in a cell-cycle dependent fashion. In vivo inhibition of phosphorylation of the 80 kDa isoform impaired the completion of the first cell cycle of early development implicating the involvement of eEF2 phosphorylation in the exit from mitosis.


Subject(s)
Cell Division , Peptide Elongation Factor 2/physiology , Sea Urchins/embryology , Animals , Fertilization , Molecular Weight , Ovum/chemistry , Phosphorylation , Protein Isoforms
7.
Mol Reprod Dev ; 77(3): 257-64, 2010 Mar.
Article in English | MEDLINE | ID: mdl-20014323

ABSTRACT

The large and rapid increase in the rate of protein synthesis following fertilization of the sea urchin egg has long been a paradigm of translational control, an important component of the regulation of gene expression in cells. This translational up-regulation is linked to physiological changes that occur upon fertilization and is necessary for entry into first cell division cycle. Accumulated knowledge on cap-dependent initiation of translation makes it suited and timely to start integrating the data into a system view of biological functions. Using a programming environment for system biology coupled with model validation (named Biocham), we have built an integrative model for cap-dependent initiation of translation. The model is described by abstract rules. It contains 51 reactions involved in 74 molecular complexes. The model proved to be coherent with existing knowledge by using queries based on computational tree logic (CTL) as well as Boolean simulations. The model could simulate the change in translation occurring at fertilization in the sea urchin model. It could also be coupled with an existing model designed for cell-cycle control. Therefore, the cap-dependent translation initiation model can be considered a first step towards the eukaryotic translation regulation network.


Subject(s)
Models, Genetic , Peptide Chain Initiation, Translational/genetics , RNA Caps/genetics , Sea Urchins/genetics , Systems Biology/methods , Animals , Computer Simulation , Fertilization , Protein Binding , RNA, Messenger/genetics , Reproducibility of Results
8.
Exp Cell Res ; 314(5): 961-8, 2008 Mar 10.
Article in English | MEDLINE | ID: mdl-18234192

ABSTRACT

Translational control was investigated in sea urchin eggs and embryos in response to the DNA-damaging agent methyl methanesulfonate (MMS). We have shown in this report that exposure of sea urchin embryos to MMS induces drastic effects on protein synthesis activity, and on translation factors level, integrity and post-translational modifications. In response to the treatment of embryos by the DNA-damaging agent MMS, protein synthesis is inhibited independently of the translation inhibitor 4E-BP and in correlation with phosphorylation of the translation factor eIF2alpha subunit. Furthermore, a low molecular weight form of translation initiation factor eIF4G is detected correlatively with MMS-induced apoptosis. We propose that modifications of translation factors play an important role in protein synthesis modulation that occurs during DNA-damage induced apoptosis.


Subject(s)
Apoptosis , DNA Damage/drug effects , Protein Biosynthesis/drug effects , Ribosomal Proteins/metabolism , Animals , Embryo, Nonmammalian , Eukaryotic Initiation Factor-2/metabolism , Eukaryotic Initiation Factor-4G/analysis , Methyl Methanesulfonate/pharmacology , Ovum , Phosphorylation , Ribosomal Proteins/drug effects , Sea Urchins
9.
Chem Res Toxicol ; 21(2): 542-9, 2008 Feb.
Article in English | MEDLINE | ID: mdl-18197632

ABSTRACT

Using sea urchin early embryos as a pertinent model, chromium(III) provoked cell cycle arrest and induced apoptosis. The molecular machinery of translation initiation was investigated. Chromium provoked a time- and dose-dependent increase in the level of 4E-BP protein, the natural regulator of the cap-dependent initiation factor 4E (eIF4E). The 4E-BP increase was the result of 4E-BP stabilization and appeared functional for physiological eIF4E binding, removal of eIF4E from the initiation factor eIF4G, and almost full inhibition of cap-dependent translation in vivo. The protein 4E-BP may be involved in the biological pathway of apoptosis associated with the activation of the DNA-damaged checkpoint of the cell cycle.


Subject(s)
Cell Cycle/drug effects , Chlorides/toxicity , Chromium Compounds/toxicity , DNA Damage , Embryo, Nonmammalian/drug effects , Intracellular Signaling Peptides and Proteins/metabolism , Animals , Apoptosis/drug effects , Cell Cycle/genetics , Dose-Response Relationship, Drug , Embryo, Nonmammalian/chemistry , Embryo, Nonmammalian/metabolism , Embryonic Development/drug effects , Eukaryotic Initiation Factor-4E/analysis , Eukaryotic Initiation Factor-4E/metabolism , Intracellular Signaling Peptides and Proteins/analysis , Ovum/chemistry , Ovum/drug effects , Ovum/metabolism , Protein Binding , Sea Urchins/embryology , Sea Urchins/physiology , Time Factors
10.
J Soc Biol ; 201(3): 297-306, 2007.
Article in French | MEDLINE | ID: mdl-18157082

ABSTRACT

Gene expression regulation is crucial for organism survival. Each step has to be regulated, from the gene to the protein. mRNA can be stored in the cell without any direct translation. This process is used by the cell to control protein synthesis rapidly at the right place, at the right time. Protein synthesis costs a lot of energy for the cell, so that a precise control of this process is required. Translation initiation represents an important step to regulate gene expression. Many factors that can bind mRNA and recruit different partners are involved in the inhibition or stimulation of protein synthesis. Oceans contain an important diversity of organisms that are used as important models to analyse gene expression at the translational level. These are useful to study translational control in different physiological processes for instance cell cycle (meiosis during meiotic maturation of starfish oocytes, mitosis following fertilization of sea urchin eggs) or to understand nervous system mechanisms (aplysia). All these studies will help finding novel actors involved in translational control and will thus be useful to discover new targets for therapeutic treatments against human diseases.


Subject(s)
Gene Expression Regulation , Protein Biosynthesis , RNA, Messenger/genetics , 5' Untranslated Regions/genetics , Animals , Female , Fertilization , Humans , Oocytes/physiology , Seawater
11.
J Soc Biol ; 201(3): 307-15, 2007.
Article in French | MEDLINE | ID: mdl-18157083

ABSTRACT

mRNA translation is now recognized as a important regulatory step for gene expression in different physiological and pathophysiological processes including cell proliferation and apoptosis. B-cell chronic lymphocytic leukemia (B-CLL) is characterized by the accumulation of resting lymphocytes and defective apoptosis. The mRNA cap-binding protein eIF4E (eukaryotic Initiation Factor 4E) and its repressor 4E-BP (eIF4E Binding protein) are crucial translational regulators that have been involved in survival and apoptosis processes of cells. We have shown that the release of eIF4E from its translational repressor 4E-BP is an important event for the first mitotic division triggered by fertilization and that the degradation of 4E-BP is a new means to regulate 4E-BP function that has to be analyzed in other physiological and physiopathological processes. In this chapter, we describe recent advances illustrating the importance of eIF4E and 4E-BP in cancer processes, suggesting that these actors can be targeted for potential therapy against cancer in general and LLC in particular.


Subject(s)
Gene Expression Regulation, Neoplastic , Leukemia, Lymphocytic, Chronic, B-Cell/genetics , Peptide Initiation Factors/genetics , Protein Biosynthesis , RNA, Messenger/genetics , Apoptosis , Eukaryotic Initiation Factor-4E/genetics , Female , Humans , Leukemia, Lymphocytic, Chronic, B-Cell/pathology , Leukemia, Lymphocytic, Chronic, B-Cell/physiopathology , Models, Genetic , Oocytes/physiology , Peptide Chain Elongation, Translational , Peptide Chain Initiation, Translational , Peptide Chain Termination, Translational
12.
J Soc Biol ; 201(3): 317-27, 2007.
Article in French | MEDLINE | ID: mdl-18157084

ABSTRACT

Cell division is an essential process for heredity, maintenance and evolution of the whole living kingdom. Sea urchin early development represents an excellent experimental model for the analysis of cell cycle checkpoint mechanisms since embryonic cells contain a functional DNA-damage checkpoint and since the whole sea urchin genome is sequenced. The DNA-damaged checkpoint is responsible for an arrest in the cell cycle when DNA is damaged or incorrectly replicated, for activation of the DNA repair mechanism, and for commitment to cell death by apoptosis in the case of failure to repair. New insights in cancer biology lead to two fundamental concepts about the very first origin of cancerogenesis. Cancers result from dysfunction of DNA-damaged checkpoints and cancers appear as a result of normal stem cell (NCS) transformation into a cancer stem cell (CSC). The second aspect suggests a new definition of "cancer", since CSC can be detected well before any clinical evidence. Since early development starts from the zygote, which is a primary stem cell, sea urchin early development allows analysis of the early steps of the cancerization process. Although sea urchins do not develop cancers, the model is alternative and complementary to stem cells which are not easy to isolate, do not divide in a short time and do not divide synchronously. In the field of toxicology and incidence on human health, the sea urchin experimental model allows assessment of cancer risk from single or combined molecules long before any epidemiologic evidence is available. Sea urchin embryos were used to test the worldwide used pesticide Roundup that contains glyphosate as the active herbicide agent; it was shown to activate the DNA-damage checkpoint of the first cell cycle of development. The model therefore allows considerable increase in risk evaluation of new products in the field of cancer and offers a tool for the discovery of molecular markers for early diagnostic in cancer biology. Prevention and early diagnosis are two decisive elements of human cancer therapy.


Subject(s)
Cell Cycle/physiology , DNA Damage , Embryo, Nonmammalian/physiology , Neoplasms/physiopathology , Sea Urchins/embryology , Animals , Biological Evolution , Cell Cycle/genetics , Embryo, Nonmammalian/cytology , Female , Male , Models, Biological , Neoplasms/genetics , Reproduction , Sea Urchins/genetics
13.
Dev Biol ; 300(1): 293-307, 2006 Dec 01.
Article in English | MEDLINE | ID: mdl-16959243

ABSTRACT

Sea urchin eggs and early cleavage stage embryos provide an example of regulated gene expression at the level of translation. The availability of the sea urchin genome offers the opportunity to investigate the "translational control" toolkit of this model system. The annotation of the genome reveals that most of the factors implicated in translational control are encoded by nonredundant genes in echinoderm, an advantage for future functional studies. In this paper, we focus on translation factors that have been shown or suggested to play crucial role in cell cycle and development of sea urchin embryos. Addressing the cap-binding translational control, three closely related eIF4E genes (class I, II, III) are present, whereas its repressor 4E-BP and its activator eIF4G are both encoded by one gene. Analysis of the class III eIF4E proteins in various phyla shows an echinoderm-specific amino acid substitution. Furthermore, an interaction site between eIF4G and poly(A)-binding protein is uncovered in the sea urchin eIF4G proteins and is conserved in metazoan evolution. In silico screening of the sea urchin genome has uncovered potential new regulators of eIF4E sharing the common eIF4E recognition motif. Taking together, these data provide new insights regarding the strong requirement of cap-dependent translation following fertilization. The genome analysis gives insights on the complexity of eEF1B structure and motifs of functional relevance, involved in the translational control of gene expression at the level of elongation. Finally, because deregulation of translation process can lead to diseases and tumor formation in humans, the sea urchin orthologs of human genes implicated in human diseases and signaling pathways regulating translation were also discussed.


Subject(s)
Genome , Protein Biosynthesis , Sea Urchins/genetics , Amino Acid Sequence , Animals , Cell Cycle/genetics , Cell Differentiation/genetics , Conserved Sequence , Gene Expression Regulation , Molecular Sequence Data , Peptide Chain Elongation, Translational , Peptide Chain Initiation, Translational , Proteins/genetics , Reverse Transcriptase Polymerase Chain Reaction , Sequence Alignment , Sequence Homology, Amino Acid
14.
FEBS Lett ; 580(11): 2755-60, 2006 May 15.
Article in English | MEDLINE | ID: mdl-16647708

ABSTRACT

The elongation factor eEF1B involved in protein translation was found to contain two isoforms of the eEF1Bdelta subunit in sea urchin eggs. The eEF1Bdelta2 isoform differs from eEF1Bdelta1 by a specific insert of 26 amino acids. Both isoforms are co-expressed in the cell and likely originate from a unique gene. The feature appears universal in metazoans as judged from in silico analysis in EST-databanks. The eEF1B components were co-immunoprecipitated by specific eEF1Bdelta2 antibodies. Quantification of the proteins in immunoprecipitates and on immunoblots demonstrates that eEF1Bdelta1 and eEF1Bdelta2 proteins are present in two subsets of eEF1B complex. We discuss and propose a model for the different subsets of eEF1B complex concomitantly present in the cell.


Subject(s)
Peptide Elongation Factor 1/chemistry , Peptide Elongation Factor 1/metabolism , Sea Urchins/metabolism , Animals , Gene Expression Regulation, Developmental , Isoenzymes/chemistry , Isoenzymes/genetics , Isoenzymes/metabolism , Molecular Weight , Multiprotein Complexes/chemistry , Multiprotein Complexes/genetics , Multiprotein Complexes/metabolism , Peptide Elongation Factor 1/genetics , Protein Binding , Protein Subunits/chemistry , Protein Subunits/genetics , Protein Subunits/metabolism , Sea Urchins/embryology , Sea Urchins/genetics , Time Factors
15.
Biochim Biophys Acta ; 1759(1-2): 13-31, 2006.
Article in English | MEDLINE | ID: mdl-16624425

ABSTRACT

Translational regulation of gene expression in eukaryotes can rapidly and accurately control cell activity in response to stimuli or when rapidly dividing. There is increasing evidence for a key role of the elongation step in this process. Elongation factor-1 (eEF1), which is responsible for aminoacyl-tRNA transfer on the ribosome, is comprised of two entities: a G-protein named eEF1A and a nucleotide exchange factor, eEF1B. The multifunctional nature of eEF1A, as well as its oncogenic potential, is currently the subject of a number of studies. Until recently, less work has been done on eEF1B. This review describes the macromolecular complexity of eEF1B, its multiple phosphorylation sites and numerous cellular partners, which lead us to suggest an essential role for the factor in the control of gene expression, particularly during the cell cycle.


Subject(s)
Peptide Elongation Factor 1/chemistry , Peptide Elongation Factor 1/physiology , Animals , Gene Expression Regulation , Humans , Multiprotein Complexes , Peptide Elongation Factor 1/genetics , Phosphorylation , Phylogeny
16.
J Cell Biochem ; 99(1): 126-32, 2006 Sep 01.
Article in English | MEDLINE | ID: mdl-16598776

ABSTRACT

The 4E-binding proteins (4E-BPs) regulate the cap-dependent eukaryotic initiation factor 4E (eIF4E). The level of 4E-BP protein is regulated during early development of sea urchin embryos. Fertilization leads to the rapid disappearance of the protein that reappears later in development. We show that two important cellular stresses, hypoxia and bleomycin prolonged checkpoint mobilization provoked the overexpression of the protein 4E-BP in developing sea urchin embryos. Hypoxia resulted after 1 h in a reversible gradual increase in the protein 4E-BP level. At 20 h, the protein 4E-BP had reached the level existing in the unfertilized eggs. Bleomycin used as a DNA-damaging agent for checkpoint activation, provoked cell cycle inhibition and after prolonged exposure (20 h), induced the expression of the protein 4E-BP. The effect of bleomycin on 4E-BP protein overexpression was dose-dependent between 0.4 and 1.2 mM. The role of the overexpression of the protein 4E-BP is discussed in relation with cellular stress responses.


Subject(s)
Bleomycin/pharmacology , DNA Damage/physiology , Hypoxia/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Peptide Initiation Factors/metabolism , Animals , Cell Cycle/drug effects , Cell Cycle/physiology , Embryo, Nonmammalian/drug effects , Embryo, Nonmammalian/metabolism , Embryonic Development/drug effects , Female , Ovum/drug effects , Ovum/metabolism , Sea Urchins/embryology
17.
Biochimie ; 87(9-10): 805-11, 2005.
Article in English | MEDLINE | ID: mdl-15951098

ABSTRACT

Translation is now recognized as an important process in the regulation of gene expression. During the cell cycle, translation is tightly regulated. Protein synthesis is necessary for entry into and progression through mitosis and conversely, modifications of translational activity are observed during the cell cycle. This review focuses on translational control during mitosis (or M-phase) and the role of CDK1/cyclin B, the universal cell cycle regulator implicated in the G2/M transition, in protein synthesis regulation.


Subject(s)
CDC2 Protein Kinase/metabolism , Cyclin B/metabolism , Mitosis/genetics , Protein Biosynthesis , RNA, Messenger/metabolism , Cell Cycle/genetics , Cyclin B1 , G2 Phase/genetics , G2 Phase/physiology , Gene Expression Regulation , Mitosis/physiology , Phosphorylation , Polyadenylation
18.
J Cell Sci ; 118(Pt 7): 1385-94, 2005 Apr 01.
Article in English | MEDLINE | ID: mdl-15769855

ABSTRACT

The eukaryotic initiation factor 4E (eIF4E)-binding proteins (4E-BPs) inhibit translation initiation by binding eIF4E and preventing recruitment of the translation machinery to mRNA. We have previously shown that fertilization of sea urchin eggs triggers eIF4E-4E-BP complex dissociation and 4E-BP degradation. Here, we show that microinjection of eIF4E-binding motif peptide into unfertilized eggs delays the onset of the first mitosis triggered by fertilization, demonstrating that dissociation of the eIF4E-4E-BP complex is functionally important for the first mitotic division in sea urchin embryos. We also show by gel filtration analyses that eIF4E is present in unfertilized eggs as an 80 kDa molecular mass complex containing 4E-BP and a new 4E-BP of 40 kDa. Fertilization triggers the dissociation of eIF4E from these two 4E-BPs and triggers the rapid recruitment of eIF4E into a high-molecular-mass complex. Release of eIF4E from the two 4E-BPs is correlated with a decrease in the total level of both 4E-BPs following fertilization. Abundance of the two 4E-BPs has been monitored during embryonic development. The level of the two proteins remains very low during the rapid cleavage stage of early development and increases 8 hours after fertilization. These results demonstrate that these two 4E-BPs are down- and upregulated during the embryonic development of sea urchins. Consequently, these data suggest that eIF4E availability to other partners represents an important determinant of the early development of sea urchin embryos.


Subject(s)
Carrier Proteins/metabolism , Eukaryotic Initiation Factor-4E/metabolism , Sea Urchins/embryology , Sea Urchins/metabolism , Animals , Carrier Proteins/pharmacology , Embryo, Nonmammalian/metabolism , Embryonic Development/physiology , Eukaryotic Initiation Factor-4E/antagonists & inhibitors , Fertilization/physiology , Molecular Weight , RNA, Messenger/drug effects , RNA, Messenger/metabolism , Sea Urchins/cytology , Up-Regulation/physiology
19.
Toxicol Appl Pharmacol ; 203(1): 1-8, 2005 Feb 15.
Article in English | MEDLINE | ID: mdl-15694458

ABSTRACT

Widely spread chemicals used for human benefits may exert adverse effects on health or the environment, the identification of which are a major challenge. The early development of the sea urchin constitutes an appropriate model for the identification of undesirable cellular and molecular targets of pollutants. The widespread glyphosate-based pesticide affected sea urchin development by impeding the hatching process at millimolar range concentration of glyphosate. Glyphosate, the active herbicide ingredient of Roundup, by itself delayed hatching as judged from the comparable effect of different commercial glyphosate-based pesticides and from the effect of pure glyphosate addition to a threshold concentration of Roundup. The surfactant polyoxyethylene amine (POEA), the major component of commercial Roundup, was found to be highly toxic to the embryos when tested alone and therefore could contribute to the inhibition of hatching. Hatching, a landmark of early development, is a transcription-dependent process. Correlatively, the herbicide inhibited the global transcription, which follows fertilization at the 16-cell stage. Transcription inhibition was dose-dependent in the millimolar glyphosate range concentration. A 1257-bp fragment of the hatching enzyme transcript from Sphaerechinus granularis was cloned and sequenced; its transcription was delayed by 2 h in the pesticide-treated embryos. Because transcription is a fundamental basic biological process, the pesticide may be of health concern by inhalation near herbicide spraying at a concentration 25 times the adverse transcription concentration in the sprayed microdroplets.


Subject(s)
Glycine/analogs & derivatives , Glycine/toxicity , Herbicides/toxicity , Sea Urchins/drug effects , Transcription, Genetic/drug effects , Animals , Cloning, Molecular , Embryo, Nonmammalian/drug effects , Embryo, Nonmammalian/enzymology , Gene Expression Regulation, Developmental/drug effects , Gene Expression Regulation, Enzymologic/drug effects , Metalloendopeptidases/biosynthesis , Metalloendopeptidases/genetics , Metalloendopeptidases/metabolism , Models, Animal , RNA/biosynthesis , Reverse Transcriptase Polymerase Chain Reaction , Sea Urchins/embryology , Sea Urchins/enzymology , Glyphosate
20.
Toxicol Sci ; 82(2): 436-42, 2004 Dec.
Article in English | MEDLINE | ID: mdl-15375296

ABSTRACT

A glyphosate containing pesticide impedes at 10 mM glyphosate the G2/M transition as judged from analysis of the first cell cycle of sea urchin development. We show that formulated glyphosate prevented dephosphorylation of Tyr 15 of the cell cycle regulator CDK1/cyclin B in vivo, the end point target of the G2/M cell cycle checkpoint. Formulated glyphosate had no direct effect on the dual specific cdc25 phosphatase activity responsible for Tyr 15 dephosphorylation. At a concentration that efficiently impeded the cell cycle, formulated glyphosate inhibited the synthesis of DNA occurring in S phase of the cell cycle. The extent of the inhibition of DNA synthesis by formulated glyphosate was correlated with the effect on the cell cycle. We conclude that formulated glyphosate's effect on the cell cycle is exerted at the level of the DNA-response checkpoint of S phase. The resulting inhibition of CDK1/cyclin B Tyr 15 dephosphorylation leads to prevention of the G2/M transition and cell cycle progression.


Subject(s)
Cell Cycle/drug effects , Cell Division/drug effects , DNA/physiology , G2 Phase/drug effects , Glycine/analogs & derivatives , Glycine/toxicity , Herbicides/toxicity , Animals , Blotting, Western , CDC2 Protein Kinase/metabolism , Chemistry, Pharmaceutical , Cyclin B/metabolism , DNA/biosynthesis , DNA/drug effects , DNA/genetics , Depression, Chemical , Embryo, Nonmammalian , Ovum/drug effects , Phosphoric Monoester Hydrolases/analysis , Phosphoric Monoester Hydrolases/metabolism , Sea Urchins , Glyphosate
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