Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Embryonic division”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 343 records · Page 19Linked to original sources

Early events in mammalian egg activation.

The fertilizing spermatozoon initiates a series of events in the mammalian egg, referred to as 'egg activation'. These biochemical and morphological events include a transient rise in intracellular Ca2+ concentration ([Ca2+]i) that leads to the cortical reaction (CR) and the establishment of the block to polyspermy on the one hand, and to the resumption of meiosis and later embryonic mitotic divisions on the other. The initial increase in [Ca2+]i appears to be critical for the initiation of egg activation. However, another second messenger, protein kinase C (PKC), was also suggested as a possible inducer of some aspects of egg activation. The review focuses on early events during mammalian sperm-egg interaction and discusses possible roles of Ca2+ and PKC in egg activation.

Animals↗

Mitochondrial morphology in human fetal and adult female germ cells.

The aim of this study has been to observe, by electron microscopy, the morphological changes affecting mitochondria and associated organelles in the human female germ cell during oogenesis, maturation and fertilization. In the primordial germ cell (PGC), rounded mitochondria with a pale matrix and small vesicular cristae are disposed near the nucleus and significantly increase in number during PGC migration and settlement in the gonadal ridge, where they differentiate into oogonia. In these early stages of mammalian oogenesis, aggregates of mitochondria are typically clustered around or in close relationship with the nuage. In oocytes at early prophase stage, mitochondria proliferate while aligned along the outer surface of the nuclear membrane, contain a more dense matrix than before, and have lamellar cristae. Oocytes of primordial and primary follicles mostly contain round or irregular mitochondria whose matrix has become very light. These mitochondria show typical parallel, arched cristae, and are clustered near the nucleus with other organelles forming the Balbiani's vitelline body. When follicles grow, the mitochondria of the oocytes become even more numerous and are dispersed in the ooplasm. Both paranuclear accumulation and subsequent dispersion of mitochondria in the cytoplasm are likely to be regulated by microtubules. By ovulation, mitochondria are the most prominent organelles in the ooplasm. They form voluminous aggregates with smooth endoplasmic reticulum (SER) tubules and vesicles. These mitochondrial-SER aggregates (M-SER) and the mitochondrial-vesicle complexes (MV) could be involved in the production of a reservoir of substances or membranes anticipating subsequent fertilization and early embryogenesis. Just after fertilization, the mitochondria of the oocyte undergo a further substantial change in size, shape, and microtopography. In the pronuclear zygote, mitochondria concentrate around the pronuclei. During the first embryonic cleavage divisions, round or oval mitochondria with a dense matrix and few arched cristae are gradually replaced by elongated ones with a less dense matrix and numerous transverse cristae. A progressive reduction in size and number of M-SER aggregates and MV complexes also occurs. In summary, oocyte mitochondria show dynamic morphological changes as they increase in number and populate different cell domains within the oocyte. They form complex relationships with other cell organelles, according to the different energetic -metabolic needs of the cell during differentiation, maturation, and fertilization, and are ultimately inherited by the developing embryo, where they eventually assume a more typical somatic cell form.

Adult↗

Long-term effects on offspring of intrauterine exposure to deficits in nutrition.

The number of cell divisions during embryonic and fetal life makes the embryo/fetus particularly vulnerable to effects resulting from exposure to an adverse intrauterine environment. Exposure to drugs and irradiation at this stage of development are able to cause congenital malformations and various cancers in later life. In-utero exposure to hyperglycaemia is able to lead to future diabetes that is heritable, but not genetic in origin. Fetal malnutrition causing growth restriction is able to lead to an increased risk of developing type 2 diabetes, hypertension and ischaemic heart disease in later life, especially if the growth restriction is followed by catch-up growth postnatally. This review discusses the various mechanisms by which these effects may occur, and presents the difficulties that will have to be faced if their world-wide health burdens are to be reduced.

Animals↗

A complementary DNA for an ascidian embryonic nuclear antigen Hgv2 encodes a protein closely related to the amphibian histone-binding protein N1.

We have isolated and sequenced a cDNA clone encoding an ascidian embryonic nuclear protein, Hgv2. An insert about 2 kb long covered almost the entire length of 2.3-kb Hgv2 mRNA. The amino acid sequence of Hgv2 deduced from the cDNA sequence showed that this protein is related to the amphibian karyophilic histone-binding protein N1, which is thought to be involved in nucleosome assembly. Homology between these two proteins is evident from their extremely similar amino acid compositions and hydropathy profiles. In addition, Hgv2 protein has sequences strikingly similar to the nuclear targeting signal of N1. This is therefore the first report of molecular cloning of a homologue of N1 in non-amphibian species. Putative histone-binding domains of N1 are composed of two acidic residue-rich clusters. Hgv2 polypeptide contains two highly acidic regions, but amino acid sequences of the regions are not conserved. Since Hgv2 protein exists in nuclei of every embryonic cell but disappears from nuclei of metamorphosed juvenile tissues, this protein may function as a nucleosome assembly factor during rapid embryonic cell divisions.

Amino Acid Sequence↗

Effects of antisperm antibodies on early cleavage of fertilized ova.

Early cleavage of zygotes was abnormal after oocytes were fertilized with sperm cells from one of 64 infertile couples studied in our human in vitro fertilization and embryo development procedure. The abnormal cleavage, which did not affect fertilization, was not due to polyspermy or parthenogenetic activation of oocytes, but to antisperm antibodies present on the sperm cells. These antibodies did not react with zona-intact or zona-free human oocytes, although they reacted with the acrosomal (strongly) and tail (weakly) regions of human sperm. The antibodies recognized a double band comprising two glycoproteins of 14 +/- 3 and 18 +/- 3 kDa and a protein band of 22 +/- 3 kDa on the Western blot of lithium diiodosalicylate-solubilized human sperm extract. Antisera were raised in rabbits against the double band (14 +/- 3- and 18 +/- 3-kDa antigens) and the 22 +/- 3-kDa protein. Passive transfer of affinity-purified human or rabbit immunoglobulins directed against the double band (14 +/- 3- and 18 +/- 3-kDa antigens), but not those directed against the 22 +/- 3-kDa protein, caused a significant inhibition of early cleavage of oocytes without affecting pronuclear formation in mice. These results suggest that the sperm surface antigens of 14 +/- 3 and 18 +/- 3 kDa may provide an extranuclear signal to oocytes to divide in mice and humans. These antigens may also find clinical applications in the management of immunoinfertility and in the development of an antisperm contraceptive vaccine for humans.

Animals↗

Compensatory development in preimplantation mouse embryos derived from delayed mating.

Rodent embryos resulting from delayed mating grow relatively faster than those resulting from normal mating. To evaluate this phenomenon quantitatively, in the present study we compared the number of cells at the preimplantation stage of mouse embryos derived from normal mating and those derived from delayed mating (3 and 6 h after ovulation). The mean cell numbers (45.4 and 43.0 for delayed mating at 3 and 6 h postovulation, respectively) of embryos at 77 h postcoitus (hpc) in the delayed mating groups were greater than that (38.4) of the normal mating group. Further, when the mean cell numbers (38.8 and 38.5) in the delayed mating groups were counted at 74 hpc, they were almost equal to that of the normal mating group at 77 hpc. The study demonstrated that preimplantation mouse embryos derived from delayed mating progress more rapidly than their normally mated counterparts. However, a 3-h advance in development seems to be the limit of this increased rate of growth, even when the time interval from ovulation to mating is longer than 3 h. The mechanism(s) of this interesting compensatory phenomenon should be investigated.

Animals↗

Absence of colony stimulating factor-1 in osteopetrotic (csfmop/csfmop) mice disrupts estrous cycles and ovulation.

Colony stimulating factor-1 (CSF-1) is a hematopoietic growth factor required for the recruitment, proliferation, and differentiation of mononuclear phagocytes. In addition, CSF-1 is expressed in the female reproductive tract coincident with CSF-1 receptor localization on preovulatory oocytes, ovarian and uterine macrophages, decidual cells, and trophoblast. A role for CSF-1 in female reproduction was confirmed by studies on CSF-1-deficient, osteopetrotic (csfmop/csfmop) mice, which suffer from low pregnancy rates and smaller litter sizes compared to wild-type mice. The present study was designed to determine the exact causes of the preimplantation fertility defects in these mutant mice. Female csfmop/csfmop mice have extended estrous cycles compared to wild-type females, and s.c. administration of CSF-1 from birth restores estrous cyclicity. These mice fail to display the characteristic proestrous surge in circulating estradiol-17beta. However, concentrations of this hormone are normal during the remainder of the cycle. Furthermore, csfmop/csfmop females have significantly lower ovulation rates than wild-type mice, but the implantation rates of fertilized oocytes are normal. Serum pregnancy concentrations of progesterone are also normal in csfmop/csfmop females, in line with the relatively normal progression of pregnancy in these mice. Thus, the major effect of CSF-1 on female reproductive function is on the frequency and rate of ovulation, indicating a major role for this growth factor in regulating follicular development and ovulation.

Animals↗

Formation of ovarian follicles during fetal development in sheep.

The origin of follicle (i.e., pregranulosa) cells that become the somatic component of primordial follicles is obscure. In addition, information regarding the structural changes that accompany the concomitant regression of ovigerous cords and the appearance of primordial follicles is lacking. In the present study, ovine ovaries collected at frequent time intervals between Day 38 and Day 100 of fetal life were examined by light and electron microscopy. To gain new information regarding the origin of follicular cells, incorporation of 5-bromo-2'-deoxyuridine was used to identify proliferating cells at selected stages of development. Based on the location and identity of proliferating cells, apoptotic cells, and sequential changes in histoarchitecture, we hypothesize 1) that most (i.e., >95%) of the granulosal cells in newly formed primordial follicles originate from the ovarian surface epithelium; 2) that the sequential events leading to follicle formation take place entirely within ovigerous cords, with the first follicles forming at the interface of the cortex and medulla; and 3) that the loss (i.e., >75%) of germ cells, but not of somatic cells, within the ovigerous cords is a means by which each surviving oocyte gains additional pregranulosal cells before follicle formation. Conceptual models detailing the chronology of developmental events involved in the formation of primordial follicles in sheep are discussed.

Animals↗

Determinants of fetal and neonatal growth.

Cellular proliferation and differentiation in the fetus and newborn are influenced by many factors. Increasingly, peptide growth factors are thought to play an important role in cell-to-cell communication during fetal life, promoting cellular proliferation, differentiation, and migration within tissues. Each growth factor may play various roles depending on the time in gestation, the type of receptor expressed by the target tissue, and the presence or absence of other permissive or inhibitory growth factors. In addition, growth factor production is regulated by nutritional factors, encouraging or inhibiting growth depending on the energy and oxygen supply. Although the consequences of fetal exposure to tobacco, caffeine, and other drugs on growth have been well documented, the effect of low-grade maternal immune system activation is less well understood. Postnatally, adequate standards for the growth of premature infants are lacking. Each of these areas is discussed in light of recent publications.

Caffeine↗

Transcription factors important for starting the cell cycle in yeast.

Unlike early embryonic cleavage divisions in certain animals, cell-cycle progression in yeast and probably also in all metazoan somatic cells requires the periodic transcriptional activation of certain key genes. Thus far, the only clear examples are genes that encode a class of unstable 'cyclin' proteins, which bind and activate the cdc2/Cdc28 protein kinase: the G1-specific cyclins encoded by CLN1 and CLN2, a B-type cyclin implicated in DNA replication encoded by CLB5; and four B-type cyclins involved in mitosis encoded by CLB1, 2, 3, 4. CLN1, CLN2, and CLB5 are transcribed in late G1, as cells undergo Start. A transcription factor composed of Swi4 and Swi6 proteins (called SBF) activates CLN1 and CLN2 transcription via a positive feedback loop in which Cln proteins activate their own transcription. A different but related transcription factor called MBF seems responsible for the late G1-specific transcription of most DNA replication genes including CLB5. We have purified MBF and shown that it contains Swi6 and a 110-120 kDa protein distinct from Swi4 (p120) that contacts DNA. Thus, we propose that SBF and MBF share a common regulatory subunit (Swi6) but recognize their promoter elements via distinct DNA binding subunits.

Base Sequence↗

Cell cycle and cancer: genetic analysis of the role of cyclin-dependent kinases.

Most human tumors harbor mutations that misregulate the early phases of the cell cycle. Here, we summarize genetic evidence, mostly obtained in our laboratory using strains of gene-targeted mice, that provides direct experimental support for a role of Cdk4 in tumor development. Moreover, these genetic studies challenge some well-established concepts regarding the role of Cdks during the early phases of the cell cycle. For instance, they have illustrated that Cdk4 and Cdk6 are not essential for cell division during embryonic development except in the hematopoietic system. More surprisingly, mice lacking Cdk2 survive for over 2 years without detectable abnormalities except in their germ cells, indicating that Cdk2 is essential for meiosis but dispensable for the normal mitotic cell cycle. Cdk2 is also dispensable for cell cycle inhibition and tumor suppression by the Cip/Kip inhibitors, p21(Cip1) and p27(Kip1). These observations have important implications not only to understand cell cycle regulation, but also to validate Cdks as potential targets for the development of therapeutic strategies to block proliferation of tumor cells.

Animals↗

Related to ubiquitin 1 and 2 are redundant and essential and regulate vegetative growth, auxin signaling, and ethylene production in Arabidopsis.

Related to Ubiquitin (RUB)/Nedd8 is a ubiquitin-like protein that covalently attaches to cullins, a subunit of the SCF (for Skp, Cdc53p/Cul1, and F-box protein) complex, an E3 ubiquitin ligase, and has been shown to be required for robust function of the complex. The effects of reducing protein levels for two Rub proteins, RUB1 and RUB2, were characterized in Arabidopsis thaliana. T-DNA insertional null lines homozygous at a single RUB-encoding locus were analyzed and found to have a wild-type phenotype. A double mutant was never recovered. More than one-quarter of the progeny from the self-fertilization of plants with a single functional RUB-encoding gene died as embryos at the two-cell stage. Outcrosses demonstrated reduced inheritance of the null allele from both the male and female parent. Hemigglutinin-tagged forms of RUB1 and RUB2 conjugate to the same cullin protein, CUL1, and produce the same conjugation pattern. To further understand the function of the RUB proteins, a construct designed to produce a double-stranded RUB1 mRNA was introduced into plants, and three lines with reduced levels of RUB1- and RUB2-encoding mRNA and RUB1/2 protein content were analyzed in detail. Mature plants were severely dwarfed, seedlings were insensitive to auxin in root assays, and dark-grown seedlings had a partial triple-response phenotype that was suppressed when seedlings were grown on ethylene perception or synthesis inhibitors. The dsrub lines produced threefold to fivefold more ethylene than the wild type. This study illustrates that RUB1 and RUB2 are genetically and biochemically redundant and demonstrates that RUB1/2 proteins are essential for early embryonic cell divisions and that they regulate diverse processes.

Arabidopsis↗

A model for regulation of the cell cycle incorporating cyclin A, cyclin B and their complexes.

A mathematical model for the cell cycle is proposed that incorporates the known biochemical reactions involving both cyclin A and cyclin B, the interactions of these cyclins with cdc2 and cdk2, and the controlling effects of cdc25 and weel. The model also postulates the existence of an as yet unknown phosphatase involved in the formation of maturation promoting factor. The model produces solutions that agree qualitatively with a wide variety of experimentally observed cell-cycle behaviour. Conditions under which the model could explain the initial rapid divisions of embryonic cells and the transition to the slower somatic cell cycle are also discussed.

Animals↗

Differential localization by in situ hybridization of distinct keratin mRNA species during intestinal epithelial cell development and differentiation.

The distribution of the major keratin mRNAs expressed during terminal differentiation and fetal development of the rat intestinal epithelium has been examined by in situ hybridization. We have obtained and characterized a partial cDNA clone encoding human keratin 20 whose sequence spans from the coil la region through the 3' poly(A) tail. Sequence data and immunoblot analysis demonstrated that keratin 20 is the human homologue of the rat keratin 21, suggesting the existence of a single type I keratin specifically expressed by differentiated intestinal epithelial cells. Four cRNA probes, specific for keratins 8, 18, 19, and 20 respectively, were prepared and found to specifically hybridize with their respective mRNA species from total intestinal RNA preparations. Analysis of frozen tissue sections by in situ hybridization revealed that, in the adult intestine, keratin 18 and 19 mRNAs are restricted to the region of the crypts, keratin 8 mRNA is found along the entire crypt-villus axis, and keratin 20 mRNA is expressed only by the differentiated villus cells. This pattern is established late during fetal rat intestinal development: in the undifferentiated stratified epithelium present at 16 days gestation (16dg) mRNAs coding for keratins 8, 18, and 19 are expressed by all epithelial cells and keratin 20 mRNA is absent. Upon completion of villus formation at 20dg (2 days before birth) keratin 18 and 19 mRNAs become strictly confined to cells at the base of the nascent villi and we observed the appearance of keratin 20 mRNA which, like keratin 8 mRNA, is expressed by the entire epithelium. These results strongly suggest that transcriptional regulation of keratin genes in the intestinal epithelium occurs at the level of both immature and terminally differentiated epithelial cells, and is tightly regulated during both fetal development and crypt-to-villus differentiation of the intestinal epithelium.

Amino Acid Sequence↗

[Morphology and histogenesis of the colliculi rostrales in cattle].

Based upon macroscopic and light microscopic examinations the development of the superior colliculus of bovine embryos and fetuses with crown-rump lengths (CRL) ranging from 0.8 to 90.0 cm was studied. Macroscopically, the mesencephalon can be recognized for the first time at 0.8 cm CRL, whereas the superior colliculus can be clearly differentiated in embryos of 4.5 cm CRL. The macroscopic features of this brain area have reached adult conditions at 80.0 cm CRL. The light microscopic examination reflected the beginning of layer formation at 0.8 cm CRL, which is induced by the proliferating activity of the ventricular zone. Up to 3.4 cm CRL the primordium of the tectum opticum exhibits still a trilaminate pattern (ventricular-intermediate- and marginal zone), but at 4.5 cm CRL, the formation of the specific tectal layers is marked by the origin of the stratum profundum and intermedium. With the appearance of the tenth layer named stratum opticum at 8.0 cm CRL the laminar pattern corresponds to the characteristics of adult animals.

Animals↗