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Biomedical subjects

A D Ealy

Publications and source records attributed to A D Ealy.

At least 19 recordsLinked to original sources

Genetic and environmental determinants of interferon-tau secretion by in vivo- and in vitro-derived bovine blastocysts.

Several experiments were conducted to assess the effects of genotype and various culture media on interferon-tau secretion by in vitro-derived bovine blastocysts and to compare these values with interferon released by blastocysts flushed from superovulated cows. In experiment 1, oocytes were inseminated with semen from three different bulls. While paternal genotype had no effect on cleavage rate, the size or hatching ability of blastocysts, it was a significant determinant of the embryo's ability to develop to the blastocyst stage and of subsequent interferon-tau secretion. In the second experiment, embryos were cultured in synthetic oviductal fluid containing either polyvinyl alcohol, bovine serum albumin or fetal bovine serum. While there was no effect of supplement on the percentage of embryos developing to the blastocyst stage, blastocysts which formed in medium with polyvinyl alcohol had significantly fewer cells, were older at blastocyst formation and produced significantly more interferon-tau. In the third experiment, embryos were cultured to the blastocyst stage in either TCM199 alone or in co-culture with buffalo rat liver, bovine oviductal or bovine uterine epithelial cells. Culture with oviductal or buffalo rat liver cells increased blastocyst cell number, although secretion of interferon-tau was not affected. In the final experiment, bovine blastocysts were flushed from superovulated cows on Day 7 following insemination. Overall, secretion of interferon-tau by in vivo-produced blastocysts did not differ from that of age-matched blastocysts produced in vitro.

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Responsiveness of early embryos to environmental insults: potential protective roles of HSP70 and glutathione.

Early embryos are not as passive as previously thought. In the bovine, embryos as early as the 2-cell stage can respond to environmental insults at both the cellular and molecular level by altering expression of specific genes and synthesis of proteins. Moreover, sex related differences exist in how early embryos respond to otherwise hostile environments. As aggressive as early embryos may be to tolerate environment insults, the majority will fail to continue in development. Reduced developmental potential of embryos exposed to elevated temperatures is likely due to direct effects on the early embryo. However, as embryos proceed in development they acquire the ability to better withstand environmental insults. Developmental acquisition of tolerance to environmental stress may be contingent upon acquisition of protective biochemical mechanisms or simply due to increased cell numbers. Correlative evidence has suggested a potential role of heat shock protein 70 and glutathione for protection of embryos in face of elevated temperature. Of these two possibilities, HSP70 appears least likely to play a significant role in developmental acquisition of thermotolerance. Bovine embryos as early as the 2-cell stage, are able to mount a heat shock response; a developmental stage that is most sensitive to elevated temperatures. A more likely candidate for conferring increased resistance of early embryos to elevated temperature is glutathione.

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Polymorphic forms of expressed bovine interferon-tau genes: relative transcript abundance during early placental development, promoter sequences of genes and biological activity of protein products.

Multiple interferon (IFN)-tau genes exist in cattle, but it has remained unclear how many are expressed, the extent of their variation, and whether different genes exhibit similar patterns of expression and code for proteins with similar biological activities. A total of 118 complementary DNA (cDNA) were bi-directionally sequenced from reverse-transcribed bovine (bo) conceptus RNA over the period from blastocyst formation until day 25 of pregnancy. Fourteen different cDNAs, encoding eight different IFN-tau, were confirmed unique. All showed high sequence conservation (>98% nucleotide identity; >96% amino acid identity). The cDNA fell into three, recently evolved, phylogenetic groups (tau1, 2, and 3). Mean concentrations of IFN-tau messenger RNA were greater at day 17 and day 19 than at day 14 and day 25, with different genes showing comparable expression patterns, although there appeared to be a major bias in expression of two genes (for boIFN-tau1c and tau3a) in blastocysts. Genes representing members of the three boIFN-tau groups were cloned. Their promoter regions were conserved over regions considered important for transcriptional activation. Recombinant protein generated in Escherichia coli from representative genes in the three groups had similar but not identical antiviral activities. In summary, many IFN-tau genes, which are probably under similar transcriptional control, are expressed in bovine trophoblast during the peri-implantation period of development.

Amino Acid Sequence↗

Caprine pregnancy-associated glycoproteins (PAG): their cloning, expression, and evolutionary relationship to other PAG.

Pregnancy-associated glycoproteins (PAG) are structurally related to aspartic proteinases and belong to an extensive, rapidly evolving family of recently duplicated genes expressed in the placentas of artiodactyl species. The aim of the present study was to clone PAG from the goat, study their temporal and cell-specific expression, and determine their phylogenetic relationship to PAG from other species. RT-PCR was used to generate PAG cDNA from pooled placental RNA obtained between days 45 and 115 of pregnancy. A total of 11 cDNA, which differed by > 5% from each other, were selected for complete bidirectional sequencing from 60 clones analyzed. A group of nine (caPAG1, caPAG3-7(var), caPAG9-11), which displayed > 80% sequence identity with each other, were expressed after day 45 of pregnancy and were localized to trophoblast binucleate cells. These PAG demonstrated an unusually high ratio of nonsynonymous (amino acid changing) to synonymous nucleotide differences. CaPAG2, by contrast, was detectable only in early pregnancy (days 18 and 19) and expressed throughout trophectoderm. It was of more ancient origin than the PAG1 group, but more recent than caPAG8. The latter was expressed at all stages examined (days 18 to 115). The data confirm that many PAG genes, with different patterns of temporal and spatial expression, are transcribed in the placenta of the goat. The data also suggest that the recently duplicated PAG genes are being selected for rapid diversification of function.

Amino Acid Sequence↗

A classification for the interferon-tau.

An attempt has been made to provide a rational organization for the many interferon-tau (IFN-tau) sequences entered in GenBank based on phylogenetic analysis and common amino acid substitutions, which might form the basis for a universal nomenclature scheme. Over the 13 years since these genes were first discovered, large numbers of cDNA and gene sequences have been reported, and there is reason to suspect that representatives of all the major ovine and bovine forms have now been described. The data are consistent with the presence of many genes and also allelic variants in sheep and cattle analogous to what has been observed for the IFN-alpha in the human. Future variants should be easily accommodated into the scheme outlined here. A flexible system of nomenclature, based on that used for HuIFN, is needed to provide a common base for comparison between research done in different laboratories and to assign relative biologic potencies to these molecules.

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Differences in lymphocyte-regulatory activity among variants of ovine IFN-tau.

Interferon-tau (IFN-tau) is secreted from trophectoderm of the ruminant preimplantation conceptus and functions during pregnancy to prevent luteolysis. In addition, IFN-tau can inhibit proliferation of peripheral blood lymphocytes (PBL) and other cells. Several distinct ovine IFN-tau (OvIFN-tau) gene variants exist; three of these (IFN-tau4, IFN-tau6d, IFN-tau11) differ in their ability to prevent luteolysis (IFN-tau4 > IFN-tau6d > IFN-tau11), inhibit growth of Daudi cells (IFN-tau4 > IFN-tau6d > IFN-tau11), and induce an antiviral state (IFN-tau4 > IFN-tau6d = IFN-tau11). The present objective was to compare variants for differences in ability to inhibit proliferation of phytohemagglutinin-stimulated PBL. At equal concentrations, IFN-tau4 was more inhibitory than IFN-tau6d, IFN-tau11, or an IFN-omega control. Similar differences in potency were seen when IFN-tau variants were tested at equal antiviral concentrations. Thus, the sheep trophectoderm secretes variants of IFN-tau that differ in ability to regulate lymphocyte function. The nature of the effect of the trophectoderm on endometrial lymphocytes may depend on the relative amount of each variant produced.

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Bovine blastocyst-derived trophectoderm and endoderm cell cultures: interferon tau and transferrin expression as respective in vitro markers.

Continuous cultures of bovine trophectoderm (CT-1 and CT-5) and bovine endoderm (CE-1 and CE-2) were initiated and maintained on STO feeder cells. CT-1 and CT-5 were derived from the culture of intact, 10- to 11-day in vitro-produced blastocysts. CE-1 and CE-2 were derived from the culture of immunodissected inner cell masses of 7- to 8-day in vitro-produced blastocysts. The cultures were routinely passaged by physical dissociation. Although morphologically distinct, the trophectoderm and endoderm both grew as cell sheets of polarized epithelium (dome formations) composed of approximately cuboidal cells. Both cell types, particularly the endoderm, grew on top of the feeder cells for the most part. Trophectoderm cultures grew faster, relative to endoderm, in large, rapidly extending colonies of initially flat cells with little or no visible lipid. The endoderm, in contrast, grew more slowly as tightly knit colonies with numerous lipid vacuoles in the cells at the colony centers. Ultrastructure analysis revealed that both cell types were connected by desmosomes and tight junctional areas, although these were more extensive in the trophectoderm. Endoderm was particularly rich in rough endoplasmic reticulum and Golgi apparatus indicative of cells engaged in high protein production and secretion. Interferon tau expression was specific to trophectoderm cultures, as demonstrated by reverse transcription-polymerase chain reaction, Western blot, and antiviral activity; and this property may act as a marker for this cell type. Serum protein production specific to endoderm cultures was demonstrated by Western blot; this attribute may be a useful marker for this cell type. This simple coculture method for the in vitro propagation of bovine trophectoderm and endoderm provides a system for assessing their biology in vitro.

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Single daily intramuscular injections of low quantities of recombinant ovine interferon-tau extends luteal life-span in Angora goats.

The objective of this study was to determine whether single, daily intramuscular injections of low amounts of ovine interferon-tau (ovIFN-tau) would extend luteal life-span in nonpregnant Angora goats. Female goats were assigned randomly to receive a single daily injection of 1) PBS (control; n = 11), 2) 125 microg/d ovIFN-tau (n = 11), or 3) 500 microg/d ovIFN-tau (n = 11) from d 14 to 20 after estrus. Luteal life-span was defined as the number of days from the synchronized estrus until serum progesterone (P4) declined (< 0.5 ng/mL) and was of normal duration in controls (19.4 +/- 0.3 d) but was increased (P < 0.05) in goats receiving 125 microg/d (23.2 +/- 1.3 d) and 500 microg/d (25.5 +/- 1.2 d) ovIFN-tau. Injection of either ovIFN-tau dose caused an initial decrease (P < 0.05) in serum P4 concentrations relative to controls but did not differ from controls thereafter. Rectal temperatures increased (P < 0.05) following ovIFN-tau treatment until d 18 for goats given the lower dose and throughout the treatment period for those given 500 microg/d. In summary, injections of as little as 125 microg/d of ovIFN-tau extended luteal life-span in goats. This dose caused a transient reduction in serum P4 concentrations and induced hyperthermia.

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Trophoblast interferons.

The mechanisms responsible for prevention of corpus luteum regression during early pregnancy are diverse and appear to have arisen in concert with the evolutionary divergence of placental structure. That used by the sub-order Ruminantia is unique and involves the production of a Type I interferon (IFN), IFN-tau (tau). Although IFN-tau resembles other Type I IFNs (such as IFN-alpha, -beta, and -omega) in structure as well as in many of its biological properties, it is not virally inducible and is instead produced constitutively by embryonic trophectoderm during the period immediately prior to implantation. The transcription factor Ets-2 is a component of the regulatory mechanism involved in transcription of IFN-tau. These genes probably arose as the result of a duplication of an IFN-omega gene, 36 million years ago, at about the time the Ruminantia sub-order emerged. They have duplicated extensively since then and there may be 10 or more genes in some present-day species. The expression of different IFN-tau is unequal and they differ in biological potency. The rapid evolution of IFN-tau genes possibly reflects the placenta as a site of considerable genetic experimentation.

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The cross-species antiviral activities of different IFN-tau subtypes on bovine, murine, and human cells: contradictory evidence for therapeutic potential.

It is claimed that interferon-tau (IFN-tau) has broad cross-species reactivity and less cytotoxicity than other type I IFN when used at high concentration either in vitro or in living animals. It can also amelioriate the development of experimental allergic encephalomyelitis (EAE) without the usual side effects of IFN therapy in mice autoimmunized with myelin basic protein. For these reasons, IFN-tau may have therapeutic potential in humans. Here, the antiviral (AV) activities of eight different recombinant IFN-tau were compared with those of several bovine, human, and murine type I IFN on bovine MDBK cells, murine L929 cells, and human WISH cells. The data show that only one of the IFN-tau, OvIFN-tau4, has broad cross-species reactivity. It was comparable in this respect to HuIFN-omega1 and HuIFN-alpha1. The other IFN-tau, including the variant form (OvIFN-tau1mod) tested by others in cytotoxicity experiments and for its ability to protect mice against EAE, had relatively weak AV activity on mouse and human cells. It is possibly because this particular bioengineered form of IFN-tau binds the common type I receptor of these two species with such low affinity that it lacks cytotoxic effects. The basis for its potent anti-EAE activity is unclear, but it seems possible that it does not involve the type I IFN receptor.

Amino Acid Sequence↗

Identification of the expressed forms of ovine interferon-tau in the periimplantation conceptus: sequence relationships and comparative biological activities.

Interferon-tau (IFN-tau) is secreted from trophectoderm of periimplantation ruminant conceptuses and is a critical component of pregnancy recognition. Multiple genes encode IFN-tau. The objectives of this study were to identify expressed forms of ovine IFN-tau and to compare their biological activities. Sequences analyzed after cloning 36 reverse transcription-polymerase chain reaction products of ovine conceptus RNA provided seven new cDNA that were similar in sequence to previously cloned forms (p3, p6, and p8 cDNA). Phylogenetic analysis of amino acid sequence for all new and previously reported forms showed that ovine IFN-tau forms can be divided into three main groups. Equivalent amounts of mRNA for p3, p6, and p8 forms were detected in conceptuses following RNase protection. Recombinant p3 and p8 protein had similar antiviral activity on ovine and bovine cells whereas p6 protein was less active. The p3 form was the most potent of the three in its ability to extend estrous cycle length in nonpregnant ewes. In summary, there appeared to be three main groups of ovine IFN-tau, each containing several variant forms. Antiviral activity was not particularly well correlated with ability to prevent luteolysis, suggesting that distinct intracellular mechanisms are used to exert the various actions of IFN-tau.

Amino Acid Sequence↗

Control of interferon-tau gene expression by Ets-2.

Expression of the multiple interferon-tau (IFN-tau) genes is restricted to embryonic trophectoderm of ruminant ungulate species for a few days in early pregnancy. The promoter regions of these genes are highly conserved. A proximal (bp -91 to -69) sequence has been implicated in controlling trophoblast-specific expression. Here it was used as a target for yeast one-hybrid screening of a day 13 conceptus cDNA library. Two transcription factors of the Ets family, Ets-2 and GABPalpha, were identified, consistent with the observation that active ovine IFN-tau genes contain a single 10-bp Ets motif (core: GGAA) in the proximal segment, whereas three known inactive ovine genes contain a mutated core motif (TGAA). Cotransfection of a promoter- (-126 to +50) luciferase reporter construct from an active gene (bovineIFN-tau1; boIFNT1) and an Ets-2 expression plasmid in human JAr cells provided up to a 30-fold increase in reporter expression, whereas promoters from inactive genes were not transactivated. GABPalpha alone was ineffective and had only a approximately 2-fold positive effect when coexpressed with its partner GABPbeta. Other Ets-related transcription factors, which were not detected in the genetic screen, also provided a range of lesser transactivation effects. Coexpression of Ets-2 and activated Ras failed to transactivate the IFNT promoter greater than Ets-2 alone in JAr cells. The presence of Ets-2 in nuclei of embryonic trophectoderm was confirmed immunocytochemically. Together, these data suggest that Ets-2 plays a role in the transient expression of the nonvirally inducible IFNT genes.

Amino Acid Sequence↗

Different ovine interferon-tau genes are not expressed identically and their protein products display different activities.

Interferon tau (IFN-tau) proteins are secreted by the ovine conceptus for a few days before definitive attachment of the trophoblast to the uterine epithelium and act to prolong luteal life span. Multiple genes encode for IFN-tau in sheep, but it remains unclear which genes are expressed during early pregnancy and whether the proteins encoded by these genes are equipotent. Three distinct ovine (ov) IFN-tau gene variants, p3, p6, and s4, were examined to determine whether they differed in gene expression and whether the proteins displayed different biological activities. By using RNase protection assays, full-length protected fragments were detected for p3 and p6 in approximately similar proportions in conceptuses flushed from the uterus at Days 12-13, Days 15-16, and Days 18-19 of pregnancy, but the amount of full-length protected s4 transcripts was 10% to 20% of that for p3 and p6. Partially protected probe fragments were also evident, presumably from probe hybridization to related ovIFN-tau transcripts. Recombinant proteins were generated and exhibited 34.2 (p3), 8.4 (p6), and 11.9 (s4) units (x 10(-7)) of activity per milligram of protein when tested on Madin-Darby bovine kidney cells. Antiproliferative activity on human Daudi cells varied considerably between the interferons, with p3 being 2000-fold more potent than s4. The interferons were injected into the uterine lumen of ewes from 10 to 18 days postestrus. The functional life span of the corpus luteum (CL) was increased (p = 0.02) by either 300 microg/day p3 (31.7 +/- 7.8 days) or 300 microg/day p6 (25.5 +/- 4.2 days), but not by 300 microg/day s4 (19.2 +/- 2.9 days), when compared to controls (15.8 +/- 0.6 days). Injection of 1 mg/day s4 did, however, increase (p = 0.02) CL life span (23.5 +/- 4.1 days). These data suggest that IFN-tau genes are not equally expressed in trophectoderm and that ovIFN-tau genes encode for proteins with significantly different biological potency.

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Loss of the signature six carboxyl amino acid tail from ovine interferon-tau does not affect biological activity.

Interferon-tau (IFN-tau) is a type I IFN that is secreted from conceptuses of Bovidae (sheep, cattle, and related ruminant ungulates) for a few days during early pregnancy. It acts to prolong the life span of the corpus luteum. All secreted forms of IFN-tau, like the related IFN-omega, are 172 amino acids in length and differ from IFN-alpha and -beta by the presence of six additional amino acids at their carboxyl termini. The aim of this study was to determine whether this carboxyl tail was important for biological activity of IFN-tau, particularly for its antiluteolytic function in ewes. Full-length ovine IFN-tau (p3) and a mutated form truncated by six amino acids at its carboxyl terminal (p3Trn6, 166 amino acids) were produced in Escherichia coli. Both proteins had similar antiviral activities (2.12 +/- 0.92 x 10(8) IU/mg for p3; 1.96 +/- 0.58 x 10(8) IU/mg for p3Trn6) when tested on Madin-Darby bovine kidney (MDBK) cells. Antiproliferative activity, as measured on human Daudi cells by determining the protein concentration required to inhibit growth by 50%, was slightly higher (p < 0.05) for p3Trn6 (7.36 +/- 0.46 pM) than for p3 (13.99 +/- 0.85 pM). Most importantly, p3 and p3Trn6 were equally capable of prolonging the life span of the corpus luteum of nonpregnant ewes when the proteins were administered at doses of either 60 or 300 microg/day into the uterine lumen through indwelling uterine cannulae from Day 10 to Day 18 postestrus. Therefore, the carboxyl-terminal amino acid extension for IFN-tau does not appear to serve a functional role in the action of these proteins.

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Ontogeny of temperature-regulated heat shock protein 70 synthesis in preimplantation bovine embryos.

Development of the preimplantation embryo is very susceptible to disruption by heat shock. As embryos proceed through development, they acquire resistance to heat shock, perhaps because they become transcriptionally active and can respond to environmental changes by undergoing transcriptionally-regulated cellular adaptation. Objectives were to determine the ontogeny of heat shock protein 70 (HSP70) synthesis in preimplantation bovine embryos and to ascertain whether heat-induced increases in HSP70 in embryos are caused by environmental alterations in gene expression. Exposure of bovine embryos to heat shock induced synthesis of a 68 kDa form of HSP70 called HSP68 as early as the two-cell stage of development. Induction of HSP68 was alpha-amanitin independent at the two-cell stage but was blocked by alpha-amanitin as early as the early four-cell stage. Therefore, heat-induced synthesis of HSP68 is regulated at the level of transcription at a time before the major round of embryonic genome activation is considered to occur. Two other constitutive HSP70 molecules were identified called heat shock cognates (HSC) 71 and 70; both proteins were synthesized during all stages of development from the two-cell to hatched blastocyst stages. However, heat-induced synthesis of HSC71 and HSC70 was not evident until the expanded blastocyst stage. In conclusion, environmental signals can activate gene expression before the major round of embryonic genome activation occurs in bovine embryos. Moreover, differences in thermal sensitivity of early embryos to heat shock is not caused by an inability to synthesize HSP70, suggesting that other mechanisms are involved in developmental acquisition of thermotolerance.

Amanitins↗

Evidence that glutathione is involved in thermotolerance of preimplantation murine embryos.

Experiments were conducted to determine whether or not glutathione (GSH) is involved in thermotolerance responses of murine morulae. In the first experiment, morulae were exposed to either homeothermic temperature (37 degrees C), mild heat shock (40 degrees C for 1 h), severe heat shock (43 degrees C for 2 h), or a mild heat shock followed by severe heat shock (to induce thermotolerance). Exposure to mild heat shock did not affect viability and development, but severe heat shock reduced viability (i.e., live/dead staining) and the proportion of morulae that developed to blastocysts. This effect of 43 degrees C was reduced if embryos were first exposed to a mild heat shock of 40 degrees C. In the presence of DL-buthionine-[S,R]-sulfoximine (BSO), an inhibitor of GSH synthesis, the ability of 40 degrees C to confer thermotolerance was reduced. BSO decreased embryonic GSH content but did not decrease overall protein synthesis. In another experiment, administration of S-adenosyl-L-methionine, an inducer of GSH synthesis, decreased the deleterious effects of heat shock of 43 degrees C for 2 h on viability and percentage of embryos that became blastocysts. Addition of 5 microM GSH or GSH ester reduced the effect of 42 degrees C for 2 h on viability but not on continued development. The results suggest a role for GSH-dependent mechanisms in the processes by which murine embryos limit deleterious effects of heat shock.

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Developmental changes in sensitivity of bovine embryos to heat shock and use of antioxidants as thermoprotectants.

Experiments were conducted with in vitro-produced bovine embryos to determine whether 1) increased culture temperatures (i.e., heat shock) adversely affected embryonic development, 2) embryos become more resistant to heat shock as they advance in development, and 3) selective antioxidant molecules alleviate heat shock effects on embryonic development. Development of 2-cell embryos to > or = 16-cell stage on d 5 after in vitro fertilization was not affected by a heat shock of 40 degrees C for 3 h, but 41 or 42 degrees C for 3 h decreased (P = .004) development. In a separate experiment, development of 2-cell embryos was decreased (P = .01) by exposure to 41 degrees C for 3 h but not for 1 h. In contrast, development of morulae to blastocysts was not affected by heat shock of 41 degrees C for 1 or 3 h. Medium supplementation with 50 nM glutathione or 50 mM taurine before heat shock did not reduce the effects of heat shock (41 degrees C for 3 h) on 2-cell embryos. Likewise, addition of glutathione ester, a more membrane-permeable analog of glutathione, did not protect 2-cell embryos from heat shock. In conclusion, early bovine embryos are susceptible to disruption in development caused by heat shock. As embryos progress in development, they acquire resistance to heat shock. Glutathione, taurine, and glutathione ester were not effective in alleviating the effects of heat shock on development of 2-cell embryos. Consequently, molecules have yet to be identified that can protect early-stage bovine embryos from the adverse effects of heat shock.

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