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Early restriction of the human antibody repertoire.

Diversification of the antibody repertoire in mammals results from a series of apparently random somatically propagated gene rearrangement and mutational events. Nevertheless, it is well known that the adult repertoire of antibody specificities is acquired in a developmentally programmed fashion. As previously shown, rearrangement of the gene segments encoding the heavy-chain variable regions (VH) of mouse antibodies is also developmentally ordered: the number of VH gene segments rearranged in B lymphocytes of fetal mice is small but increased progressively after birth. In this report, human fetal B-lineage cells were also shown to rearrange a highly restricted set of VH gene segments. In a sample of heavy-chain transcripts from a 130-day human fetus the most frequently expressed human VH element proved to be closely related to the VH element most frequently expressed in murine fetal B-lineage cells. These observations are important in understanding the development of immunocompetence.

Adult

Gametogenic processes and their relationship to normal and abnormal conceptus development.

The relationship between gametogenesis and conceptus development has been described in relation to recent experiments concerning selected aspects of the cellular and molecular basis of differentiation of female and male gametes. Evidence suggests that a variety of hormonal and nonhormonal mechanisms or combinations thereof have evolved and control distinct stages of oocyte maturation process. Analyses of the meiotic maturation process with particular emphasis on amphibians, indicate that distinct cytoplasmic factors are produced or activated in response to a hormonal stimulus which initiates germinal vesicle breakdown and reinitiates the meiotic maturation process. Evidence suggests that certain cytoplasmic factors originate in the nucleus and (or) cytoplasm and that considerable cytoplasmic maturation proceeds in the absence of the nucleus, or as a result of nuclear-cytoplasmic interactions. Cytoplasmic factor(s) or activities affect many aspects of oocyte function and structure, including the cell membrane, chromosomes, nucleus and meiotic spindle. Ions also play a crucial role in gamete differentiation either alone or in combination with hormones or these cytoplasmic factors. The relevance of these findings to oocyte maturation and fertilization, activation and embryonic development is discussed. In many cases, similar types of biological activities exist in widely separated species and (or) are effective in widely different species. The importance of synchronization of normal gametes to the development of the embryos is discussed. It is proposed, and the evidence suggests, that hormones, ions and cytoplasmic factors play a fundamental and variable role in the differentiation and function of "fully" mature oocytes of many species including mammals. Significantly, the data suggest that a "fully" mature oocyte occurs as a result of the expression of an underlying developmental program. Variations in these substances or the processes involved in their formation or actions appear to be relevant to understanding a wide variety of developmental abnormalities as well as to assessing the normality or abnormality of in vivo or in vitro maturation and differentiation.

Animals

A conserved partner-switching system controls terminal differentiation in multicellular cyanobacteria.

UNLABELLED: Canonical partner-switching systems (PSSs) regulate sigma factor activity through reversible phosphorylation, but their established roles have been largely limited to stress responses and sporulation in Firmicutes. Whether this regulatory mechanism also controls developmental cell fate decisions in other bacterial phyla has remained unknown. Here, we identify a canonical PSS that governs heterocyst differentiation in the multicellular cyanobacterium Anabaena sp. PCC 7120. This system comprises the anti-sigma factor All2284 (NfsS) and the anti-anti-sigma factor All2283 (NfsR). Structural predictions and biochemical assays showed that NfsS phosphorylates NfsR on a conserved serine residue, whereas bacterial two-hybrid and co-purification assays demonstrated that NfsS binds the developmental sigma factors SigC and SigE. Deletion of nfsR abolished heterocyst formation and diazotrophic growth, and transcriptomic analysis revealed broad failure to induce late heterocyst genes, including nitrogen fixation functions such as nifHDK and fdxH. Phylum-wide comparative genomics further showed that PSS genes and putative functional clusters are strongly enriched in filamentous and heterocyst-forming taxa, indicating an association between the expansion of these signaling modules and the emergence of multicellularity and developmental specialization. Together, these findings establish a PSS as a direct regulator of terminal cell differentiation in a gram-negative bacterium and reveal partner switching as a conserved regulatory principle linking environmental signaling to developmental fate in a major bacterial phylum. IMPORTANCE: While partner-switching systems are classically associated with stress responses and sporulation control in Firmicutes, whether this regulatory logic governs developmental decisions in other bacterial phyla has remained unknown. Here, we establish that a related partner-switching mechanism operates in a distinct bacterial lineage, the cyanobacteria, where it controls a major developmental transition involving terminal cell differentiation. Specifically, we show that a phosphorylation-dependent checkpoint involving the anti-sigma factor NfsS and the anti-anti-sigma factor NfsR directly regulates heterocyst formation. Disruption of this switch abolishes cell differentiation and diazotrophic growth, revealing that this system is an obligate gatekeeper for terminal differentiation. Conceptually, these findings substantially extend the known functional repertoire of partner-switching circuits: rather than controlling stress adaptation or spore dormancy, this module has been co-opted to govern a complex, multicellular developmental program in an organism that underpins global carbon and nitrogen cycles. This work, therefore, establishes a new paradigm for phosphorylation-based control of developmental sigma factors and provides a tractable model for dissecting how conserved signaling modules are rewired to drive lineage-specific innovations across the bacterial domain.

cell differentiation

Developmental changes in K+-selective channel activity during differentiation of the Purkinje neuron in culture.

The cerebellar Purkinje neuron cultured from 20 d rat embryos is electrically inexcitable when immature, and acquires excitable membrane properties according to a programmed developmental sequence, thus providing a useful model for investigating mechanisms of CNS neuronal development. Using conventional patch-clamp techniques, we have characterized the the predominant classes of active K+-selective channels at a range of ages encompassing the entire developmental process from 5 to 29 d in vitro (DIV), and have shown pharmacologically that these channels are important contributors to the patterns of spontaneous activity generated by the Purkinje neurons. The 4 predominant classes of K+ channels that are active during steady-state depolarizing voltage commands are identified by unit conductances as the 27, 44, 70, and 100 pS channels, and show differences in several properties, including voltage dependence, sensitivity to tetraethylammonium chloride (TEA), mean open time, and time of appearance during development. Intracellular current-clamp recordings show that physiological maturation of the Purkinje neuron entails increases in the firing rate, the diversity of spike events that comprise spontaneous activity, and the sensitivity of spontaneous activity to disruption by the K+ channel blocker TEA. This increase in sensitivity to TEA correlates with the new expression of activity of the larger-conductance TEA-sensitive classes of K+ channel (70 and 100 pS types). These data show that developmental regulation of the activity of K+-selective channels contributes significantly to the ionic mechanisms that underlie the developmental transitions in spontaneous activity patterns in the Purkinje neuron.

Animals

Variations of cervical vertebrae after expression of a Hox-1.1 transgene in mice.

To understand the function of murine homeobox genes, a genetic analysis is mandatory. We generated gain-of-function mutants by introducing genomic sequences of the Hox-1.1 gene under the control of a chicken beta-actin promoter into mice. Our previous data had shown that these transgenic mice are nonviable after birth and are born with craniofacial abnormalities. In a subsequent detailed analysis of severely affected animals, malformations of the basioccipital bone, the atlas, and the axis were observed. Manifestation of an additional vertebra, a proatlas, occurred at the craniocervical transition. The dominant interference of the Hox-1.1 transgene with developmental programs seems to occur around day 9 of gestation, the time of neural crest migration and somite differentiation. We discuss the resulting phenotype with respect to a developmental control function of Hox-1.1.

Animals

Steroid hormones as mediators of neural plasticity.

Steroid and thyroid hormone receptors are expressed in the developing brain and persist throughout adult life. They mediate a variety of effects on the brain, ranging from developmental effects of thyroid hormone and the process of sexual differentiation to the cyclic changes during reproductive cycles in adult female animals. This review summarizes data from the author's laboratory on three topics: (1) actions of extradiol and progesterone on the ventromedial nucleus of the hypothalamus in adult female and male rats, showing both the cyclicity and the consequences of brain sexual differentiation; (2) actions of estradiol on the cholinergic neurons of the basal forebrain of the female and male rat, reflecting the plasticity of the adult cholinergic system as well as sex differences which are developmentally programmed; and (3) diverse actions of estrogens, thyroid hormone and glucocorticoids on the morphology of hippocampal neurons. The review concludes by discussing the interactions between "organizational" (i.e. developmental) effects and the "activational" effects of steroids on the mature nervous system in relation to the environmental control of brain gene expression.

Animals

The developmental capacity of mouse oocytes that matured spontaneously in vitro is normal.

The aim of this project was to compare the developmental capacities of mouse oocytes matured in vivo and in vitro. The frequencies of fertilization, preimplantation development, and birth of live offspring after transfer of morulae to uteri of pseudopregnant foster mothers were compared after germinal vesicle stage oocytes underwent spontaneous maturation in vitro, and after gonadotropin-induced maturation in vivo and ovulation. Both groups of matured ova were fertilized in vitro, and preimplantation development was carried out in vitro. Equivalent developmental capacities were observed for all comparisons between the two groups of oocytes. The acquisition of normal developmental capacity depended on the presence of serum in the oocyte maturation medium. The expansion (mucification) of the cumulus oophorus was not required for fertilization or normal development. The frequency of fertilization was lower in oocytes that matured while denuded of cumulus cells. However, when fertilization did occur in these oocytes, a normal percentage developed to live offspring. It is concluded that a normal developmental program occurs during spontaneous maturation of mouse oocytes, and that the presence of cumulus cells during spontaneous maturation may affect the oocyte's fertilizability rather than its subsequent developmental capacity.

Animals

Alterations of cell-surface carbohydrates during differentiation and development.

Expression of many cell-surface carbohydrates is controlled temporally and spatially by developmental programs. This subject is reviewed from 5 viewpoints: structural changes revealed by chemical analysis, cell-surface markers useful for cell identification and separation, core proteins carrying the developmentally regulated carbohydrate chain, glycosyltransferases responsible for the change and the biological meaning of the phenomenon. The differentiation systems covered are mainly early mammalian embryogenesis and the differentiation of blood and nerve cells.

Animals

Complex and diversified regulatory programs control the expression of vertebrate collagen genes.

The collagens represent a family of structurally related but genetically distinct proteins whose function is essential to maintaining the integrity of vertebrate organs. In addition to their supportive roles, collagens influence a variety of developmental programs and physiological processes. Transcription of collagen genes is controlled by a series of complex interactions between cis-acting regulatory elements and trans-acting nuclear factors that have positive or negative effects on gene expression. Collagen synthesis relies on the timely utilization of diversified regulatory programs that employ tissue and cell-type specific promoters and enhancers. Some of these programs lead to the production of structurally variant chains in different tissues, while others shut down synthesis of a specific collagen type during cell differentiation. Still others control collagen expression in distinct cell lineages. The number, complexity, and variety of the mechanisms leading to the diversified expression of the collagen genes illustrate the unique contribution of this family of proteins to multicellular organogenesis.

Animals

Spore type-specific gene expression profiles underlying development and leaf infection processes of Colletotrichum graminicola.

Colletotrichum graminicola causes significant losses of the staple crop maize worldwide. The fungus produces two distinct asexual spore types, oval and falcate conidia, which show unique processes in development and plant interaction. Based on genome resequencing of our laboratory strain (CgM2/M1.001), we investigated the gene expression profiles of oval and falcate conidia during development and early leaf infection using RNA-seq. Our results reveal specific gene expression profiles between the two spore types, indicating fundamental differences in their developmental programs that reflect different modes of infection. We identified expression patterns discriminating both conidia types from mycelium and spore type-specific ones for genes encoding transcription factors, conserved fungal developmental genes, transporters, genes of secondary metabolite clusters, and pathogenicity-related functions, including effectors and carbohydrate-active enzymes (CAZymes). Our study shows that despite the identical genomic basis, oval and falcate conidia show unique transcriptomes across vegetative development and early plant interaction. Taking together, these results provide new insights into the molecular mechanisms determining the biology of C. graminicola and its interaction with the plant host.

Colletotrichum graminicola

Characterization of genes which are transiently expressed during the preaggregative phase of development of Dictyostelium discoideum.

We have identified and characterized three genes, the I genes (I for induced), which are induced during the preaggregative phase of the developmental program of Dictyostelium discoideum. None of these genes are expressed in cells growing vegetatively on bacteria or in axenic broth, and their induction during early development is due to transcriptional activation. Developmental expression of I6, I8, and I11 occurs even in the absence of protein synthesis. Their induction is very rapid and occurs essentially at the onset of development. The expression is transient, peaking between 2 and 4 hr followed by a rapid loss of expression. These characteristics suggest that the induction of I6, I8, and I11 is a primary result of the initiation of development, and thus they represent the first such genes isolated. Although their expression behavior shares these characteristics, examination of their expression under various conditions of development and in a variety of aggregation-deficient mutant strains reveals that the details of the regulation and developmental control of these three genes are distinct.

Cyclic AMP

Developmental coaching of the Down syndrome infant.

Proprioceptive input appropriate to the developmental level of the Down Syndrome infant, and kinesthetic and proprioceptive leading of the infant enhance joint stability and prompt the infant to participate in a fuller repertoire of exploratory movement at a relatively early developmental age. Comparison of performances of the Down Syndrome population at the Ray Graham-Fairwood School with that of other Down Syndrome infants in the literature suggested that our intervention program, developmental coaching, had made a difference. A retrospective study was undertaken to document the progress made. Of the 40 infants studied, 95 percent achieved certain hand skills criteria by 10 months of age; 92.5 percent achieved prewalking mobility by 10 months of age; and 40 percent achieved free walking by 18 months of age.

Activities of Daily Living

Cellular regulation of fetal hemoglobin production.

In this paper, we put together several observations from studies in erythroid cultures that suggest that the major regulatory events determining Hb F and Hb A formation in the red cells are taken at the level of erythroid stem cells. We outlined the evidence that suggests that the program of Hb F expression changes during the differentiation of the primitive progenitors, known as burst-forming units, and we raised several possibilities on how this differentiation-dependent change in developmental programs could be accomplished. Although many questions remain still unanswered, the work done so far suggests that the mechanisms of regulation of Hb F at the cellular level can be successfully probed with existing methodologies. Delineation of the cellular mechanism of Hb F regulation is required in order to find out whether the therapeutic manipulation of Hb F in the patient with Cooley's anemia is possible or not.

Animals

Chromosomal organization of the heavy chain variable region gene segments comprising the human fetal antibody repertoire.

The adult repertoire of antibody specificities is acquired in a developmentally programmed fashion that, in mouse and man, parallels the ordered rearrangement of a limited number of germ-line heavy chain variable region (VH) gene segments during development. It has been hypothesized that this developmental bias is a consequence of gene organization. In the mouse, rearrangement of VH gene segments proximal to the heavy chain joining region (JH) locus precedes rearrangement of genes located more distal to the JH locus. Similarly, in man, two VH elements located proximal to JH are expressed during fetal development. To test further this hypothesis in man, we have determined in a single individual the positions of an additional eight distinct VH elements known to comprise a significant fraction of the human developmental repertoire. These developmentally expressed VH elements were found to be dispersed over a region of 890 kilobases of the VH locus and were interspersed with other VH elements that are not known to be developmentally expressed. Thus, the ordered developmental expression of VH gene segments in man must involve mechanisms beyond physical proximity to the JH locus. Further, these results support the notion that fetal expression of VH gene segments is a regulated process and suggest that this regulation is important in the acquisition of immunocompetence.

Base Sequence

Increasing team skills: an evaluation of program effectiveness.

The need for health professionals with caring values and good communication skills is well established. To develop these skills requires building self-esteem, as is supported by the work of Carl Rogers, Maslow, and Jourard, and the development of communication skills, as is supported by Carkhuff. A six-hour developmental program was evaluated using alternate forms of the highly validated Personal Skills Map. The differences in participants' scores showed increases in self-esteem, comfort, and management skills (p less than .00), while aggression (p = .05) and deference (p less than .00) decreased. A longitudinal follow-up of participants showed that 65% continued to use the assessment tool six months to one year later. The program appears to be well suited for service settings, continuing education, and academic settings, and meets the need of a high tech, high touch era of change.

Allied Health Personnel

The KIDS chart. A simple, reliable infant development screening tool.

We describe a screening tool for infant development, the Kansas Infant Development Screen (KIDS). Validity data showed a very high correlation between developmental and chronologic age in 111 normal infants (r = .986). Among 96 infants and young children with delayed development, the results from use of the KIDS chart were compared with those obtained from a detailed evaluation using the Michigan Developmental Programming for Infants and Young Children, and the correlation was again high (r = .979). Interobserver reliability between use and observers in five different pediatric settings showed high correlations (r = .997). This seems to be a sensitive and reliable developmental screen. It is simple, requires only a few minutes to administer, and is helpful in following up children with both normal and delayed development. It portrays the infant's developmental level in a format that is readily understood by both professional and lay people.

Child Development

Neuronal cell cultures: a tool for investigations in developmental neurobiology.

The aim of this review is to describe environmental requirements for survival of neuronal cells in culture, and secondly to survey the complex interplay between hormones, neurotrophic factors, transport- and extracellular matrix- proteins, which characterize the developmental program of differentiating neurons. An overall reconsideration of the literature in this vast field is above the limits of the present paper; since progress and refinement in the techniques of neuronal cell cultures have paralleled the advancement in Developmental Neurobiology, we will run instead through the main steps which form the conceptual framework of neuronal cell cultures.

Animals

The developmental fate of fission yeast cells is determined by the pattern of inheritance of parental and grandparental DNA strands.

A key feature for development consists of producing sister cells that differ in their potential for cellular differentiation. Following two cell divisions, a haploid Schizosaccharomyces pombe cell produces one cell in four 'granddaughters' with a changed mating cell type, implying nonequivalence of sister cells in each of two consecutive cell divisions. The observed pattern of switching is analogous to the mammalian 'stem cell' lineage by which a cell produces one daughter like itself while the other daughter is advanced in its developmental program. It is tested here whether sisters differ because of unequal distribution of cytoplasmic and/or nuclear components to them or due to inheriting a specific parental DNA chain at the mating type locus. Only the DNA strand-segregation model predicts that those cells engineered to contain an inverted tandem duplication of the mating type locus should produce equivalent sisters. Consequently, two 'cousins' in four related granddaughter cells should switch. The results verified the prediction, thus establishing that all cells otherwise fully possess the potential to switch. Therefore, the program of cell type change in S.pombe cell lineages is determined by the pattern of DNA strand inheritance at the mating type locus. A specific DNA sequence present at the mating type locus is postulated to be the cause of developmental asymmetry between sister cells. A general model for cellular differentiation is proposed in which the act of DNA replication itself is hypothesized to produce developmentally nonequivalent sister genomes.

DNA, Fungal