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Exposure of mouse cumulus cell nuclei to porcine ooplasmic extract eliminates TATA box protein binding to chromatin, but has no effect on DNA methylation.

PURPOSE: The low cloning efficiency with SCNT is due to incomplete or partial reprogramming of the donor somatic cell nuclei after microinjection into the enucleated oocyte. A possible solution may be to initiate nuclear reprogramming prior to SCNT. METHODS: Pre-exposure of donor somatic cell nuclei to a novel porcine ooplasmic extract prior to microinjection could possibly extend the duration of exposure to ooplamic nuclear reprogramming factors. The effects of the porcine ooplamic extract on two major markers of nuclear preprogramming: (1) TATA box protein binding to chromation and (2) DNA methylation was investigated. RESULTS: The results showed that pre-exposure of mouse cumulus cell nuclei to porcine ooplamic extract drastically reduced TATA box protein binding to chromatin, but had no effect on DNA methylation. CONCLUSIONS: Pre-exposure to the porcine ooplasmic extract had some limited effects on nuclear reprogramming. Whether this can lead to enhanced cloning efficiency needs to be further investigated.

Animals↗

DDD pacing mode survival in patients with a dual-chamber pacemaker.

Dual-chamber (DDD) pacing mode survival was assessed by reviewing 486 consecutive initial transvenous DDD pacemaker implantations between December 1981 and December 1988 inclusive, with a mean follow-up time of 33 months. The patients' mean age was 71.4 years and 55% were male; 38% had dominant sinoatrial and 62% had dominant atrioventricular (AV) node disease. Nineteen patients (4%) underwent secondary operative intervention for lead dislodgement (n = 11), lead or pulse generator malfunction (n = 6) or infection (n = 2). During follow-up, 87 patients (18%) had their device permanently reprogrammed out of the DDD mode and 10 others (2%) required temporary reprogramming out of this mode; 12 patients who required device reprogramming were managed in other dual-chamber or atrial pacing modes. Reasons for reprogramming included atrial fibrillation (n = 48; 10%); loss of atrial sensing (n = 26; 5%); recurrent "endless loop" tachycardia (n = 5; 1%); lead dislodgement without repositioning (n = 4; 1%); pulse generator malfunction (n = 1; 1%) and other (n = 5; 1%). The occurrence of atrial fibrillation was associated with dominant sinoatrial disease and a prior history of atrial fibrillation; 19% of atrial sensing loss was attributable to early or faulty pacemaker technology. The DDD mode survival rate at 1, 2, 3, 4 and 5 years was, respectively, 90%, 88%, 84%, 79% and 78%.(ABSTRACT TRUNCATED AT 250 WORDS)

Aged↗

Igf-2r expression regulated by epigenetic modification and the locus of gene imprinting disrupted in cloned cattle.

Epigenetic reprogramming has a crucial role in establishing nuclear totipotency in normal development and in cloned animals. Insulin-like growth factor-2 receptor (Igf-2r) is a tissue-specifically and species-dependently imprinted gene, regulated by epigenetic modifications. The diversity of Igf-2r imprinting suggests that the success of animal cloning may be species-dependent. To determine the relation between epigenetic modifications and Igf-2r expression in cattle, and explore whether this gene was correctly imprinted and reprogrammed after nuclear transfer, we quantified Igf-2r mRNA in a cattle cell line after treated with an inhibitor of DNA methylation transferase or an inhibitor of histone deacetylase, and confirmed that DNA methylation and histone acetylation could regulate this gene expression. CpG island searching showed that there is a conservative imprinting control region (ICR) within the second intron of Igf-2r in cattle, analogous to mice and sheep, regulating this gene imprinting. DNA methylation analysis in sperm and blood cells showed that DNA methylation at Igf-2r ICR2 was reprogrammed in normal cattle. The methylation at Igf-2r ICR2 showed significant variation in tissues, such as blood, liver, brain, heart and heart. It suggested that Igf-2r imprinting was tissue-specifically regulated. In cloned cattle, DNA methylation at Igf-2r ICR2 was markedly altered in comparison with normal fetus, while patterns of DNA methylation at Igf-2r 3'-UTR (3-terminal untranslated region) were similar to normal fetus, it indicated that 3'-UTR was not significantly altered by cloning procedures, but DNA methylation at the locus of gene imprinting was disrupted and not completely reprogrammed after nuclear transfer.

Animals↗

Nucleus transfer in mammals: how the oocyte cytoplasm modifies the transferred nucleus.

Successful development of clones depends on the reprogramming of transferred nuclei in enucleated oocytes. Thus far, oocytes are the only cells that can convert nuclei, which are already differentiated, into undifferentiated stages resembling pronuclei in freshly fertilized zygotes and that can then complete development of the reconstructed embryos. However, we still don't know exactly how the enucleated oocyte (cytoplast) secures this reprogramming. Oocytes exhibit a number of cytoplasmic activities that may be involved reprogramming. We discuss how these activities may be involved in reprogramming of transferred nuclei.

Animals↗

Epigenetic marking correlates with developmental potential in cloned bovine preimplantation embryos.

During differentiation, somatic nuclei acquire highly specialized DNA and chromatin modifications, which are thought to result in cellular memory of the differentiated state. Upon somatic nuclear transfer into oocytes, the donor nucleus may have to undergo reprogramming of these epigenetic marks in order to achieve totipotency. This may involve changes in epigenetic features similar to those that occur in normal embryos during early development. However, there is accumulating evidence that epigenetic reprogramming is severely deficient in cloned embryos. Several reports reveal inefficient demethylation and inappropriate reestablishment of DNA methylation in quantitative and qualitative patterns on somatic nuclear transfer. Here we examine histone H3 lysine 9 (H3-K9) methylation and acetylation in normal embryos and in those created by somatic nuclear transfer. We find that H3-K9 methylation is reprogrammed in parallel with DNA methylation in normal embryos. However, the majority of cloned embryos exhibit H3-K9 hypermethylation associated with DNA hypermethylation, suggesting a genome-wide failure of reprogramming. Strikingly, the precise epigenotype in cloned embryos depends on the donor cell type, and the proportion of embryos with normal epigenotypes correlates closely with the proportion developing to the blastocyst stage. These results suggest a mechanistic link between DNA and histone methylation in the mammalian embryo and reveal an association between epigenetic marks and developmental potential of cloned embryos.

Animals↗

Erasure of methylation imprint at the promoter and CTCF-binding site upstream of H19 in human testicular germ cell tumors of adolescents indicate their fetal germ cell origin.

Genome-wide epigenetic modification plays a crucial role in regulating genome functions at critical stages of development. In particular, DNA methylation is known to be reprogrammed on a genome-wide level in germ cells and in preimplantation embryos, although it is relatively stable in somatic cells. In this reprogramming process, the genome becomes demethylated, and methylated de novo during later stages of development. Reprogramming of DNA methylation in male germ cells has not been fully investigated. Testicular germ cell tumors (TGCTs) possess a pluripotential nature and display protean histology from germ cells to embryonal and somatic cell differentiation. These properties make TGCT a unique model for studying germ cell development and gametogenesis in respect of DNA reprogramming. In order to obtain an insight into the epigenetic dynamics of TGCTs, we conducted a comprehensive analysis of differential methylated regions (DMRs) on H19 and IGF2 in TGCTs compared with testicular malignant lymphomas. In the present study, we show that methylation imprint at the promoter and CTCF-binding site upstream of H19 was completely erased in both seiminomatous and non-seminomatous TGCTs, whereas differential methylation was observed in testicular lymphomas. The erasure of methylation imprint was also observed in TGCTs with malignant transformation. We found biallelic unmethylation at the promoter and the CTCF-binding site upstream of H19 is required, but not sufficient for the biallelic expression of H19 in TGCTs. These data suggest that factors other than methylation contribute to transcriptional regulation of imprinted genes in TGCTs. The present data have shown that TGCTs carry distinctive epigenetic profiles at the core-imprinting domain of H19/IGF2 from other neoplasms of somatic cell origin. The data also suggest that both seminomatous and non-seminomatous TGCTs carry methylation profiles similar to fetal germ cells, but not adult germ cells, indicating the origin of TGCTs as fetal germ cells.

Adolescent↗

Inheritable histone H4 acetylation of somatic chromatins in cloned embryos.

A viable cloned animal indicates that epigenetic status of the differentiated cell nucleus is reprogrammed to an embryonic totipotent state. However, molecular events regarding epigenetic reprogramming of the somatic chromatin are poorly understood. Here we provide new insight that somatic chromatins are refractory to reprogramming of histone acetylation during early development. A low level of acetylated histone H4-lysine 5 (AcH4K5) of the somatic chromatin was sustained at the pronuclear stage. Unlike in vitro fertilized (IVF) embryos, the AcH4K5 level remarkably reduced at the 8-cell stage in cloned bovine embryos. The AcH4K5 status of somatic chromatins transmitted to cloned and even recloned embryos. Differences of AcH4K5 signal intensity were more distinguishable in the metaphase chromosomes between IVF and cloned embryos. Two imprinted genes, Ndn and Xist, were aberrantly expressed in cloned embryos as compared with IVF embryos, which is partly associated with the AcH4K5 signal intensity. Our findings suggest that abnormal epigenetic reprogramming in cloned embryos may be because of a memory mechanism, the epigenetic status itself of somatic chromatins.

Acetylation↗

Planning and executing simple movements: contributions of relative-time and overall-duration specification.

In 3 experiments, the authors used a precuing protocol to examine the nature and cost of programming and the subsequent reprogramming of a movement's relative time and overall duration. Initial programming followed a fixed-order specification; knowledge of the necessary relative time was required before information regarding overall duration could be used in a manner that expedited response planning. In the case of reprogramming, however, when a modification had to be made in either the relative time or overall duration of the anticipated and already-prepared response, performers chose to completely reprogram the entire response. Complete reprogramming occurred even when the performer had correctly prepared the higher order relative-time component and only had to modify the overall duration of the movement. The data indicate that organizing movement timing before movement initiation is accomplished in a fundamentally different manner depending on whether the movement is being initially compiled or modified.

Adult↗

Planning and preparing expected and unexpected movements: reexamining the relationships of arm, direction, and extent of movement.

Using variations of the movement precue method, this study sought to define the operational characteristics of motoric decisions that govern the planning and preparation of arm, direction, and extent of movement. Experiment 1 examined how these parameters are programmed when the precue method does not confound motoric and nonmotoric decision processes. Experiment 2 examined how an already planned and prepared response is modified (reprogrammed) when an unexpected response must be executed in its place. The collective results of both experiments demonstrated that (a) these parameters were planned and prepared in a specific order; knowledge about direction was necessary for the programming of arm or extent; (b) arm and extent were reprogrammed independently from direction but changes in direction caused all parameters to be reprogrammed, and (c) programming and reprogramming processes operated in a parallel mode when two or more parameters were involved. The results also showed that these parameters were organized within a hierarchical structure. The present findings were discussed in relation to those reported in previous precue studies and existing models of response programming.

Journal Article↗

Matters of scale: positive allometry and the evolution of male dimorphisms.

The developmental independence of alternative phenotypes is key to evolutionary theories of phenotypic plasticity and the origins of diversity. Male dimorphisms associated with alternative reproductive tactics are widely cited examples of such facultative expression of divergent fitness optima. Current models for the evolution of male dimorphisms invoke a size-dependent threshold at which the phenotype is reprogrammed. We use predictions derived from allometric modeling to test for the existence of reprogramming thresholds in two species of beetle, Onthophagus taurus and Onthophagus binodis, and the European earwig Forficula auricularia. We also compare the allometry of a number of morphological traits to determine whether minor males suppress their secondary sexual traits. The intercept of the horn allometry was suppressed, but there was no evidence of reprogramming of horn growth in either beetle species. There was reprogramming in the earwig. In the beetles, the horn length in all males can be explained largely in terms of exponential horn growth following an extraordinarily steep power function. The asymptote in O. taurus can be explained by exponential growth meeting the constraint of resource exhaustion. These findings question the currently held view that beetle horn dimorphisms showcase the importance of developmental independence in the evolution of diversity.

Animals↗

A novel method for somatic cell nuclear transfer to mouse embryonic stem cells.

Nuclear reprogramming by somatic cell nuclear transfer (SCNT) provides a practical approach for generating autologous pluripotent cells from adult somatic cells. It has been shown that murine somatic cells can also be reprogrammed to a pluripotent-like state by fusion with embryonic stem (ES) cells. Typically, the first step in SCNT involves enucleation of the recipient cell. However, recent evidence suggests that enucleated diploid ES cells may lack reprogramming capabilities. Here we have developed methods whereby larger tetraploid ES cells are first generated by fusion of two mouse ES cell lines transfected with plasmids carrying different antibiotic-resistance cassettes, followed by double antibiotic selection. Tetraploid ES cells grown on tissue culture disks or wells can be efficiently enucleated (up to 99%) using a combination of cytochalasin B treatment and centrifugation, with cytoplasts generated from these cells larger than those obtained from normal diploid ES cells. Also, we show that the enucleation rate is dependent on centrifugation time and cell ploidy. Further, we demonstrate that normal diploid ES cells can be fused to tetraploid ES cells to form heterokaryons, and that selective differential centrifugation conditions can be applied where the tetraploid nucleus is removed while the diploid donor nucleus is retained. This technology opens new avenues for generating autologous, diploid pluripotent cells, and provides a dynamic model for studying nuclear reprogramming in ES cells.

Animals↗

Effects of enucleation and caffeine on maturation-promoting factor (MPF) and mitogen-activated protein kinase (MAPK) activities in ovine oocytes used as recipient cytoplasts for nuclear transfer.

In general, oocytes arrested at metaphase of the second meiotic division (MII) are used as recipient cytoplasts for nuclear transfer (NT) procedures. MII oocytes contain high levels of maturation-promoting factor (MPF) and mitogen-activated protein kinase (MAPK), which cause nuclear envelope breakdown (NEBD) and premature chromosome condensation (PCC) in the transferred nucleus and have been implicated in nuclear reprogramming. However, the occurrence of NEBD and the extent of PCC are variable between individual oocytes and species and are dependent on donor cell type and cell cycle stage. Enucleation, which removes oocyte cytoplasm, may reduce MPF and MAPK activities and reduce reprogramming; conversely, increasing kinase activities may increase reprogramming. We compared the effects of enucleation of ovine oocytes at anaphase/telophase of the first meiotic division (AI-TI) and at MII. MPF and MAPK activities were maximal at MII; blind enucleation at AI-TI was more efficient than at MII and removed a smaller volume of cytoplasm. Neither protocol significantly affected the activity of either kinase and the fate of the donor nucleus; however, enucleation per se significantly reduced the occurrence of NEBD in NT embryos. Treatment with 10 mM caffeine significantly increased the activities of both kinases and the occurrence of NEBD but did not affect the frequency of development to the blastocyst stage; however, a significant increase in total cell numbers was observed. The results show that caffeine can increase MPF and MAPK activities in ovine oocytes and that this may contribute to an increased reprogramming in NT embryos.

Animals↗

Role of calcium in lipopolysaccharide-stimulated tumor necrosis factor and interleukin-1 signal transduction in naive and endotoxin-tolerant murine macrophages.

OBJECTIVE: Dysregulated macrophage cytokine production may predispose to organ failure during sepsis. Macrophages pretreated in vitro with low-dose endotoxin (LPSp) become "tolerant" to subsequent lipopolysaccharide (LPS) activation (LPSa), characterized by inhibition of tumor necrosis factor (TNF) and augmentation of interleukin-1 (IL-1). To understand cytokine dysregulation we examined the Ca2+ dependence of TNF and IL-1 signal transduction to LPSa and whether it was altered by LPSp. METHODS: Murine peritoneal exudate macrophages received +/- 100 ng/mL of LPSp for 24 hours. Cultures were pretreated for 2 hours with specific signal transduction inhibitors (verapamil, a Ca2+ channel inhibitor; TMB-8, an inhibitor of intracellular Ca2+ release; U73122, an inhibitor of phospholipase C; or W7, a calmodulin inhibitor) before 24 hours LPSa-stimulation. TNF and IL-1 mRNA were estimated 6 hours after LPSa by using reverse transcriptase polymerase chain reaction. Supernatant TNF and IL-1 were measured by bioassay. RESULTS: Treatment with verapamil, TMB-8, U73122, or W7 markedly inhibited TNF release by LPSa, but had little effect on IL-1 release. Reprogramming by LPSp did not alter the Ca2+ signal transduction pathways for either cytokine. U73122 and verapamil did prevent the augmentation of IL-1 release seen after LPSp. TNF message was present after LPSa despite reprogrammed inhibition of TNF protein by LPSp. Signal transduction inhibitors that blocked Ca2+ altered TNF and IL-1 message in reprogrammed macrophages in a pattern similar to their effects on naive cells. CONCLUSIONS: Intracellular Ca2+ is required for TNF protein release by naive macrophages and TNF mRNA transcription of both naive and LPSp reprogrammed cells, however LPSa-stimulated IL-1 release in peritoneal macrophages does not require Ca2+ dependent signaling pathways.

Animals↗

Trans-splicing of a mutated glycosylasparaginase mRNA sequence by a group I ribozyme deficient in hydrolysis.

RNA reprogramming represents a new concept in correcting genetic defects at the RNA level. However, for the technique to be useful for therapy, the level of reprogramming must be appropriate. To improve the efficiency of group I ribozyme-mediated RNA reprogramming, when using the Tetrahymena ribozyme, regions complementary to the target RNA have previously been extended in length and accessible sites in the target RNAs have been identified. As an alternative to the Tetrahymena model ribozyme, the DiGIR2 group I ribozyme, derived from a mobile group I intron in rDNA of the myxomycete Didymium iridis, represents a new and attractive tool in RNA reprogramming. We reported recently that the deletion of a structural element within the P9 domain of DiGIR2 turns off hydrolysis at the 3' splice site (side reaction) without affecting self-splicing [Haugen, P., Andreassen, M., Birgisdottir, A.B. & Johansen, S.D. (2004) Eur. J. Biochem. 271, 1015-1024]. Here we analyze the potential of the modified ribozyme, deficient in hydrolysis at the 3' splice site, for application in group I ribozyme-mediated trans-splicing of RNA. The improved ribozyme catalyses both cis-splicing and trans-splicing in vitro of a human glycosylasparaginase mRNA sequence with the same efficiency as the original DiGIR2 ribozyme, but without detectable levels of the unwanted hydrolysis.

Aspartylglucosylaminase↗

Clinical experience with a new multiprogrammable dual chamber pacemaker.

We evaluated the clinical performance of a new dual chamber pacemaker, ELA Chorus, in 35 patients. This device incorporates linear rate adaptive AV delay (AVDR), rate smoothing, fallback, impedance telemetry, pacemaker mediated tachycardia (PMT) recognition and reprogramming software, intracardiac electrogram displays, autothreshold testing, diagnostic data, battery depletion curves, and laptop computer programming. Mean patient age was 68 years; 18 patients had AV block, six had sinus node dysfunction (one with AV block), nine had carotid sinus hypersensitivity (three with AV block), and two had vagally mediated syncope. At hospital discharge, programming was DDD with a mean low rate of 60 (50-70) beats/min, mean high rate of 126 (120-154) beats/min; AVDR was ON in 21 patients, rate smoothing ON in six patients, fallback ON in six patients, and PMT reprogramming algorithm ON in 27 patients. Pacemaker follow-up involved 500 clinic visits over 14.3 months (1-36). Three patients developed atrial fibrillation, reprogrammed to DDI mode (two patients) or fallback (one patient). Fallback was used 617 times. PMT occurred 427 times in six patients; the PMT algorithm reprogrammed AV delay and postventricular atrial refractory period (PVARP) automatically, a function unique to the Chorus. Intracardiac electrograms and autothreshold testing improved follow-up efficiency. This new dual chamber pacemaker enhances programming flexibility and improves diagnostic accuracy at follow-up.

Aged↗

Architectural defects in pronuclei of mouse nuclear transplant embryos.

Reprogramming somatic nuclear function by transplantation of nuclei into recipient oocytes is associated with a morphological remodeling of the somatic nucleus. Successful cloning of animals by nuclear transplantation (NT) demonstrates that reprogramming somatic cell function is possible. However, low pregnancy rates and high frequencies of lethal abnormalities in animals born suggest that reprogramming is rarely complete. To address this issue, we tested the hypothesis that nuclear transplantation leads to nuclear remodeling deficiencies. We report the identification of several markers of morphological remodeling, or lack thereof, of mouse cumulus cell nuclei after transplantation into oocytes. Notably, nuclear transplant mouse embryos exhibit nuclear assembly of the differentiated cell-specific A-type lamins at the one-cell stage, as a result of misregulation of lamin A gene expression. The transplanted nuclei also display enhanced concentration of the nuclear matrix-associated protein NuMA as a result of translation from maternal mRNA and de novo transcription. The A-kinase anchoring protein 95 (AKAP95), a marker of the nuclear envelope-chromatin interface, is of somatic origin. Furthermore, greater resistance of AKAP95 and DNA to in situ extractions of one-cell stage NT embryos with non-ionic detergent, DNase, RNase and NaCl reflects an enhanced proportion of heterochromatin in these embryos. Passage through first embryonic mitosis does not rescue the defects detected in one-cell stage embryos. We propose that somatic nuclear reprogramming deficiencies by NT might emanate from, at least in part, failure to remodel the somatic nucleus morphologically into a functional embryonic nucleus.

Animals↗

Controlled modulation of inflammatory, stress and apoptotic responses in macrophages.

An outstanding question of current immunology is to define the mechanisms by which microbial products influence the immunopathologic host response elements in the early stages of infection. Macrophages are now well recognized to have a critical role in both innate and acquired immunity. In order to adjust promptly to continuous changes in microenvironment and maintain the immunologic balance, macrophages adequately respond by activating one of the numerous immunologic programs. However, sustained macrophage activation and excessive production of inflammatory mediators can perpetuate the numerous pathological processes and contribute to induction of stress response and even apoptosis. Therefore, selective modulation of macrophage activity represents an important strategy for prevention and treatment of inappropriate inflammatory responses in order to minimize the unwanted side-effects of the immunity. Macrophages can be selectively reprogrammed for a specific phenotype of immune response, e.g. cytokine or nitric oxide (NO), by relatively short-term exposure of the cells to substimulatory concentrations of different microbial components, including LPS. These LPS-dependent reprogramming effects are mediated by IFN-gamma-independent autocrine cytokine regulatory mechanisms that also controlled at the transcriptional level. Furthermore, LPS reprogrammed macrophages exhibit differential capacity to resist experimentally induced apoptosis and to produce heat shock proteins. Complete analysis of, and appreciation for, the immunoregulatory mechanisms implicated in LPS-dependent reprogramming of immune responses in macrophages can be expected to increase our understanding of the host innate response, as well as allow investigators to utilize emerging immunologic technologies in effective treatment of infections and chronic inflammatory diseases.

Animals↗

Experience with a programmable valve shunt system.

OBJECT: The goal of this study was to clarify the efficacy of the Codman Hakim programmable valve. Clinical data obtained in 179 patients with hydrocephalus or other intracranial fluid-accumulating diseases were analyzed. METHODS: Shunt placement operations were effective in 168 patients, approximately one half (50.6%) of whose devices required reprogramming of opening pressure postoperatively. This was a significantly larger number of shunts than the authors had thought would need reprogramming. Extremely narrowed ventricles observed on computerized tomography scans, as well as clinical symptoms related to inadequate or excessive cerebrospinal fluid drainage, improved in patients after shunt reprogramming. Shunt reprogramming frequently was necessary in patients with posthemorrhagic acute hydrocephalus; the programmable valve proved particularly beneficial for such patients. Subdural effusion and arachnoid cyst also proved to be good indications for use of the valve. Twelve patients (7%) suffered complications postoperatively. The most common complication was valve obstruction, which occurred in five patients, most of whom had brain tumors. CONCLUSIONS: The programmable valve was beneficial for the treatment of hydrocephalus and other intracranial fluid-accumulating diseases. It is important to be careful in selecting patients for treatment with the programmable valve, because complications involving the valve seem more likely in brain tumor cases. The valve proved to be poorly resistant to magnetic fields; therefore, it is essential to confirm opening pressure after every magnetic resonance imaging examination. The authors recommend that an identification system for patients be developed so that medical personnel will be aware of the presence of the valve and the previous setting of opening pressure.

Adolescent↗