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Early adversity and alcohol availability persistently modify serotonin and hypothalamic-pituitary-adrenal-axis metabolism and related behavior: what experimental research on rodents and primates can tell us.

Early experiences have profound influences on individual developmental trajectories. For example alcohol exposure during central nervous system development relates to a number of pathological consequences in adulthood. An increased risk of developing psychiatric disorders, like major depression and impulse-control-related pathologies is associated with alcohol exposure during fetal life and/or during adolescence. Additionally, adverse life experiences occurring early in development may exacerbate these consequences, while impinging on the same neural systems affected by precocious alcohol exposure. Conversely, a protective and/or stimulating environment may mitigate these alcohol-related negative outcomes. Experimental research in animal models constitutes a primary source of information in understanding both functional and dysfunctional human adaptations to these events. In this review, a selection of rodent and primate studies shows that developmental ethanol exposure on the one hand, and environmental treatments aimed at modifying the mother-offspring interaction on the other hand, independently modulate similar neuro-endocrine systems. In particular, we discuss the effects that the above-mentioned independent variables exert on the hypothalamic-pituitary-adrenal (HPA)-axis and on brain serotonergic pathways. Experimental evidence indicates that pathological adaptations of these systems are valuable predictors of human neuro-behavioral abnormalities like depression, impaired impulse control and alcohol abuse. Finally, a working hypothesis is proposed, which combines primate and rodent studies aimed: (i) at studying functional and pathological individual development following early ethanol consumption, and (ii) at heading towards a better definition of potential intervention strategies.

Animals↗

Effects of ovarian hormones on cognitive function in nonhuman primates.

Several studies have suggested that estrogen benefits verbal memory and lowers the risk of Alzheimer's disease in women, and improves cognitive function in animal models. However, the negative outcome of the Women's Health Initiative Memory Study has challenged the rationale for using estrogen as a protective agent against age-related cognitive decline. In view of the limitations of the Women's Health Initiative Memory Study, it is clear that our understanding of estrogen effects would greatly benefit from further interactions between clinical and basic science. Animal models of menopause can provide crucial information regarding the consequences of estrogen loss and replacement on several systems, including cognition. In this paper, I review the evidence that nonhuman primates, who share numerous cognitive and physiological characteristics with humans, can substantially contribute to our understanding of estrogen influences on the brain and cognition. Studies in young adult females suggest that some aspects of cognition fluctuate with the menstrual cycle, but that ovariectomy and estrogen replacement have only modest effects on cognitive function. In contrast, data in aged, naturally or surgically menopausal monkeys indicate that estrogen modulates a broad range of cognitive domains. Neurobiological data are consistent with the cognitive findings and demonstrate an array of morphological and physiological changes in brain areas important for cognition following ovariectomy and/or estrogen replacement. It is concluded that nonhuman primates, by providing a bridge between rodent and human data, constitute invaluable models to further our understanding of hormonal actions on the brain and cognition and to develop effective hormonal interventions against brain and cognitive aging.

Adult↗

Flow cytometric sorting of non-human primate sperm nuclei.

Pre-determination of the sex of offspring has implications for management and conservation of captive wildlife species, particularly those with single sex-dominated social structures. Our goal is to adapt flow cytometry technology to sort spermatozoa of non-human primate species for use with assisted reproductive technologies. The objectives of this study were to: (i) determine the difference in DNA content between X- and Y-bearing spermatozoa (ii) sort sperm nuclei into X- and Y-enriched samples; and (iii) assess the accuracy of sorting. Spermatozoa were collected from two common marmosets (Callithrix jacchus), seven hamadryas baboons (Papio hamadryas) and two common chimpanzees (Pan troglodytes). Human spermatozoa from one male were used as a control. Sperm nuclei were stained (Hoechst 33342), incubated and analyzed using a high-speed cell sorter. Flow cytometric reanalysis of sorted samples (sort reanalysis, 10,000 events/sample) and fluorescence in situ hybridization (FISH; 500 sperm nuclei/sample) were used to evaluate accuracy of sorting. Based on fluorescence intensity of X- and Y-bearing sperm nuclei, the difference in DNA content between X and Y populations was 4.09 +/- 0.03, 4.20 +/- 0.03, 3.30 +/- 0.01, and 2.97 +/- 0.05%, for marmoset, baboon, chimpanzee and human, respectively. Sort reanalysis and FISH results were similar; combined data revealed high levels of purity for X- and Y-enriched samples (94 +/- 0.9 and 93 +/- 0.8%, 94 +/- 0.7 and 94 +/- 0.5%, 91 +/- 0.9 and 97 +/- 0.6%, 94 +/- 0.6 and 94 +/- 0.9%, for marmoset, baboon, chimpanzee and human, respectively). These data indicate the potential for high-purity sorting of spermatozoa from non-human primates.

Animals↗

The serum level of xenoantibodies, and hDAF or alphaGAL expression on pig cells, modulate in vitro the protection given by hDAF to primate complement-mediated damage.

The ability of human complement regulatory molecules to prevent xenograft rejection following pig-to-primate xenotransplantation is limited. We assayed the efficacy of transgenic human decay accelerating factor (hDAF) expressed on porcine cells to inhibit the in vitro complement activity of primate sera. We measured the cytotoxic activity of baboon or human sera against peripheral blood lymphocytes (PBLs) from hDAF or nontransgenic pigs using a flow cytometry complement-mediated cytotoxicity assay (FCCA). We also analyzed the anti-Galalpha1-3Gal (alphaGal) antibody titer of the baboon sera by ELISA and the expression of hDAF and alphaGal on the PBL surface by immunofluorescence. Transgenic hDAF expression was capable of protecting pig cells against injury produced by both baboon and human serum. However, the hDAF molecule was more efficient against human than baboon sera. The humoral cytotoxicity capacity correlated with the level of both IgG and IgM anti-alphaGal antibodies. In addition, inhibition of complement-mediated cytotoxicity of hDAF pig cells correlated with the expression of hDAF and alphaGal molecules on target cells. These results confirm in vitro the protective role of hDAF in pig cells to heterologus complement mediated damage, but they also suggest that protection decreases in the presence of high levels of anti-porcine antibodies in serum, low expression of hDAF, or high expression of alphaGal on pig cells.

Animals↗

Comparing capsid assembly of primate lentiviruses and hepatitis B virus using cell-free systems.

Many viruses that assemble their capsids in the eukaryotic cytoplasm require a threshold concentration of capsid protein to achieve capsid assembly. Strategies for achieving this include maintaining high levels of capsid protein synthesis and targeting to specific sites to raise the effective concentration of capsid polypeptides. To understand how different viruses achieve the threshold capsid protein concentration required for assembly, we used cell-free systems to compare capsid assembly of hepatitis B virus (HBV) and three primate lentiviruses. Capsid formation of these diverse viruses in a common eukaryotic extract was dependent on capsid protein concentration. HBV capsid assembly was also dependent on the presence of intact membrane surfaces. Surprisingly, not all of the primate lentiviral capsid proteins examined required myristoylation and intact membranes for assembly, even though all contain a myristoylation signal. These findings reveal significant diversity in how different capsid proteins assemble in the same cellular extract.

Amino Acid Sequence↗

Hormonal influences on sexually differentiated behavior in nonhuman primates.

Sexually dimorphic behavior in nonhuman primates results from behavioral predispositions organized by prenatal androgens. The rhesus monkey has been the primary primate model for understanding the hormonal organization of sexually dimorphic behavior. Historically, female fetuses have received high prenatal androgen doses to investigate the masculinizing and defeminizing effects of androgens. Such treatments masculinized juvenile and adult copulatory behavior and defeminized female-typical sexual initiation to adult estrogen treatment. Testosterone and the nonaromatizable androgen, 5alpha-dihydrotestosterone, produced similar effects suggesting that estrogenic metabolites of androgens are not critical for masculinization and defeminization in rhesus monkeys. Long duration androgen treatments masculinized both behavior and genitalia suggesting that socializing responses to the females' male-like appearance may have produced the behavioral changes. Treatments limited to 35 days early or late in gestation differentially affected behavioral and genital masculinization demonstrating direct organizing actions of prenatal androgens. Recent studies exposed fetal females to smaller doses of androgens and interfered with endogenous androgens using the anti-androgen flutamide. Low dose androgen treatment only significantly masculinized infant vocalizations and produced no behavioral defeminization. Females receiving late gestation flutamide showed masculinized infant vocalizations and defeminized interest in infants. Both late androgen and flutamide treatment hypermasculinized some male juvenile behaviors. Early flutamide treatment blocked full male genital masculinization, but did not alter their juvenile or adult behavior. The role of neuroendocrine feedback mechanisms in the flutamide effects is discussed. Sexually differentiated behavior ultimately reflects both hormonally organized behavioral predispositions and the social experience that converts these predispositions into behavior.

Androgen Antagonists↗

The immunoglobulin lambda variable light-chain region in primates has been shaped by multiple, independent, small-scale and large-scale insertion/deletion events.

We analyzed genomes of nonhuman primates to determine the ancestral state of a 9.1-kb insertion/deletion polymorphism, located on human chromosome 22. The 9.1-kb+ allele was found in 16 chimpanzees, 3 bonobos, and 2 Bornean orangutans; however, 9 chimpanzees and 6 Sumatran orangutans showed neither the 9.1-kb+ nor the 9.1-kb- allele, but a novel allele, termed 9.1-kbnull. A clone from a chimpanzee BAC library carrying the 9.1-kbnull allele was sequenced: the BAC DNA aligns with the human chromosome 22 reference sequence except for a 75-kb region, suggesting that the 9.1-kbnull allele originated from a deletion. Furthermore, the 9.1-kb+ chromosomes of chimpanzees and bonobos contain a 1030-nucleotide sequence, absent in humans, that may result from a retro-transposition insertion in their common ancestor. Our results provide additional evidence that human chromosome 22 has undergone multiple small-scale and large-scale insertions and deletions since sharing a common ancestor with other primates.

Animals↗

Structural evolution of the BRCA1 genomic region in primates.

Segmental duplications account for up to 6% of the human genome, and the resulting low-copy repeats (LCRs) are known to be associated with more than 20 genomic disorders. Many such duplication events coincided with the burgeoning of the Alu repeat family during the last 50 million years of primate evolution, and it has been suggested that the two phenomena might be causally related. In tracing the evolution of the BRCA1 17q21 region through the primate clade, we discovered the occurrence over the last 40 million years of a complex set of about eight large gene-conversion-mediated rearrangements in the approximately 4 Mb surrounding the BRCA1 gene. These have resulted in the presence of large and probably recombinogenic LCRs across the region, the creation of the NBR2 gene, the duplication of the BRCA1/NBR1 promoter, the bisection of the highly conserved ARF2 gene, and multiple copies of the KIAA0563 gene. The junctions lie within AluS repeats, members of an Alu subfamily which experienced massive expansion during the time that the rearrangements occurred. We present a detailed history of this region over a critical 40 million-year period of genomic upheaval, including circumstantial evidence for a causal link between Alu family expansion and the rearrangement-mediated destruction and creation of transcription units.

ADP-Ribosylation Factors↗

Molecular genetic analyses of human endogenous retroviral elements belonging to the HERV-P family in primates, human tissues, and cancer cells.

Human endogenous retroviral sequences family P (HERV-P) proviral sequences have been located within the human genome. Here, we identify and analyze novel putative structural genes of HERV-P in primates, human tissues, and cancer cells with an aim toward better understanding their evolutionary relationships and transcriptional potential. The expression pattern of HERV-P structural genes indicates that they are actively amplified in human tissues and widely expressed in cancer cells, suggesting a potential role in carcinogenesis. Phylogenetic analyses suggest that the HERV-P family may be divided into two distinct categories that arose during primate evolution via active gene duplication. Taken together, our data provide a better understanding of the dynamic evolutionary features and potential functional roles of the HERV-P gene family.

Animals↗

The impact of early adverse care on HPA axis development: nonhuman primate models.

This review presents supporting evidence that early disruptions in mother-infant relationship in primates, including infant maltreatment, are important risk factors for the development of psychopathology and pathophysiology during childhood and adolescence. Current research in this field is trying to identify important aspects of early adverse experiences such as the timing, frequency, duration, "perceived" intensity of the stressful or traumatic events, the role of social support (e.g., nurturing caregiver) in buffering the deleterious outcomes of early adversity, as well as the role of sex and genetic factors on individual variability in vulnerability. The use of nonhuman primate models of early adverse caregiving is helping to put the pieces of the puzzle together to fully understand the causes and consequences of similar experiences in humans. These models are essential to characterize the time course of biobehavioral alterations throughout development, using prospective, longitudinal studies performed under controlled experimental conditions and using invasive approaches that are unrealistic and unethical when studying human populations.

Animals↗

Natural hybridization in primates: one evolutionary mechanism.

The role and importance of natural hybridization in the evolutionary histories of animal taxa is still debated. This results largely from a history of zoological investigations that assumed, rather than documented, a limited evolutionary role for this process. However, it is now becoming apparent that, just as for plants, the creative effects of reticulate evolution are widespread in animal taxa as well. This conclusion is supported by the documentation of numerous instances of the formation of new taxa and the genetic enrichment through introgressive hybridization. In the present review, we use primates as a paradigm for how natural hybridization can affect the evolution of species complexes and remains a footprint on genomes. Findings for a number of groups, including basal (e.g. lemurs) and derived (e.g. Old World apes) lineages, demonstrate that introgression and hybrid speciation have caused a reticulate pattern that is still detectable in the, often mosaic, genomes of primates. For example, results from genetic analyses of our own species demonstrate the process of past introgressive hybridization with the progenitors of our sister taxa (i.e. chimpanzees and gorillas) and most likely also our extinct, close relatives in the hominid lineage.

Animals↗

Head-cocking and visual perception in primates.

To examine the phyletic distribution and ontogeny of 'head-cocking' (rotating the cranium about the longitudinal body axis while orienting in a fixed direction) in primates, I conducted observations on 229 individuals of 40 different species. Head-cocking in primates typically occurs during visual inspection of objects. The response is primarily characteristic of diminutive species that lack ocular dominance columns in the visual striate cortex (e.g. marmosets, squirrel monkeys), and is most frequently observed during infancy.

Animals↗

Conserved quartets near 5' intron junctions in primate nuclear pre-mRNA.

Analysis of a 1000 nucleotide span around 664 primate 5' exon/intron junctions revealed frequent recurrences of G-rich runs downstream of the 5' splice sites. In particular, AGGG, GGGA, GGGG, GGGT and TGGG are frequent at this site. Some C-rich quarters are frequent upstream of the 5' splice site. Similar behaviour of these G- and C-rich quartets is indicated for the 587 rodent introns and for a combined eukaryotic file containing 1688 introns. (A)GGG(A) is also frequent in the introns 60 nucleotides upstream of the 3' splice site, and (A)CCC(A) is frequently found in the exons downstream of the 3' site. The same consistent behaviour of the 3' splice sites is obtained as for the 5' sites, for the primates, rodents and combined eukaryotic file. These results suggest that in addition to the well-conserved 5' and 3' splice sequences, exon as well as intron sequences may play a role in nuclear pre-mRNA splicing.

Animals↗

Distribution of TT virus (TTV), TTV-like minivirus, and related viruses in humans and nonhuman primates.

TT virus (TTV) and TTV-like minivirus (TLMV) are small DNA viruses with single-stranded, closed circular, antisense genomes infecting man. Despite their extreme sequence heterogeneity (>50%), a highly conserved region in the untranslated region (UTR) allows both viruses to be amplified by polymerase chain reaction (PCR). TTV/TLMV infection was detected in 88 of 100 human plasma samples; amplified sequences were differentiated into TTV and TLMV by analysis of melting profiles, showing that both viruses were similarly prevalent. PCR with UTR primers also detected frequent infection with TTV/TLMV-related viruses in a wide range of apes (chimpanzees, gorillas, orangutans, gibbons) and African monkey species (mangabeys, drills, mandrills). These findings support the hypothesis for the co-evolution of TTV-like viruses with their hosts over the period of primate speciation, potentially analogous to the evolution of primate herpesviruses.

Animals↗

A model for tool-use traditions in primates: implications for the coevolution of culture and cognition.

Inspired by the demonstration that tool-use variants among wild chimpanzees and orangutans qualify as traditions (or cultures), we developed a formal model to predict the incidence of these acquired specializations among wild primates and to examine the evolution of their underlying abilities. We assumed that the acquisition of the skill by an individual in a social unit is crucially controlled by three main factors, namely probability of innovation, probability of socially biased learning, and the prevailing social conditions (sociability, or number of potential experts at close proximity). The model reconfirms the restriction of customary tool use in wild primates to the most intelligent radiation, great apes; the greater incidence of tool use in more sociable populations of orangutans and chimpanzees; and tendencies toward tool manufacture among the most sociable monkeys. However, it also indicates that sociable gregariousness is far more likely to produce the maintenance of invented skills in a population than solitary life, where the mother is the only accessible expert. We therefore used the model to explore the evolution of the three key parameters. The most likely evolutionary scenario is that where complex skills contribute to fitness, sociability and/or the capacity for socially biased learning increase, whereas innovative abilities (i.e., intelligence) follow indirectly. We suggest that the evolution of high intelligence will often be a byproduct of selection on abilities for socially biased learning that are needed to acquire important skills, and hence that high intelligence should be most common in sociable rather than solitary organisms. Evidence for increased sociability during hominin evolution is consistent with this new hypothesis.

Animals↗

The neuronal organization of the outer plexiform layer of the primate retina.

In the primate retina at the level of the first synapse in the visual system, the outer plexiform layer, processes from 15 different types of neurons have so far been described. These are the synaptic spherules of rods, the pedicles of three spectral types of cones, dendrites and axons of two types of horizontal cell, dendrites of seven types of bipolar cell, processes of interplexiform cells, and the outwardly coursing dendritic extensions of biplexiform ganglion cells. The interconnections of these neurons as studied by electron microscopy and Golgi-EM are presented in a summary diagram (Fig. 27). Basal processes from cone pedicles contact the cone pedicles, and rod spherules forming gap junctions. The dendrites of both types of horizontal cell (hI and hII) connect only to cone pedicles and form lateral elements of triads at the ribbon synaptic complex. The HI axon terminals end as lateral elements at rod spherules while the axons of HII horizontal cells connect with cones in a manner similar to their dendrites. Interplexiform cells (ipc) do not contact either rod or cone synaptic endings. Rod bipolar cell (rb) dendrites end as central elements at the ribbon synaptic complex of rod spherules. The dendrites of flat midget (fm), flat top (fb), and giant bistratified bipolar (gb) cells all form basal junctions with cone pedicles. Ending as central elements of triads at cone pedicles are the dendrites of invaginating midget (im), diffuse invaginating cone (ib), and blue-cone (bb) bipolar cells. Biplexiform ganglion cells (bgc) connect to rods as central elements opposite the synaptic ribbon in the spherules. As compared to an earlier summary diagram of the outer plexiform layer (Kolb, 1970), the primate retina is now known not to be as simply organized as was once thought. Although our knowledge of the types of neurons contributing processes to this first synaptic layer, and the nature of their connections with other neurons has been broadened, especially within the past few years, this summary diagram is not intended to represent the complete or final "picture." Undoubtedly, future investigations along the lines of research outlined here will provide additional details to this wiring diagram so that we may better understand the processing of visual information by neurons in the retina.

Animals↗

Structural changes in the normally aging cerebral cortex of primates.

During normal aging humans exhibit some cognitive decline, but it is difficult to determine the underlying causes of this decline, because information about cognitive status is rarely available and preservation of the brain is usually inadequate for detailed cytological examination. One solution to this problem is to use a nonhuman primate model, such as the rhesus monkey, which exhibits age-related cognitive decline similar to humans, and can be cognitively tested before the brains are preserved for detailed examination. It is now known that cognitive decline in human and nonhuman primates is not due to loss of cortical neurons and there is no correlation between the frequency of senile plaques and cognitive status. Indeed apart from layer 1, neurons of cerebral cortex show few signs of aging, although there may be some loss of synapses throughout cortex. In contrast, both microglia and astrocytes come to contain phagocytosed material, but its origin is unknown. There is also loss of white matter, which is accompanied by some breakdown of myelin sheaths and alterations in oligodendrocytes. It is suggested that the myelin changes alter conduction velocities along axons. This would alter timing in neuronal circuits, contributing to cognitive decline.

Aging↗

Identifying corollary discharges for movement in the primate brain.

The brain keeps track of the movements it makes so as to process sensory input accurately and coordinate complex movements gracefully. In this chapter we review the brain's strategies for keeping track of fast, saccadic eye movements. One way it does this is by monitoring copies of saccadic motor commands, or corollary discharges. It has been difficult to identify corollary discharge signals in the primate brain, although in some studies the influence of corollary discharge, for example on visual processing, has been found. We propose four criteria for identifying corollary discharge signals in primate brain based on our experiences studying a pathway from superior colliculus, in the brainstem, through mediodorsal thalamus to frontal eye field, in the prefrontal cortex. First, the signals must originate from a brain structure involved in generating movements. Second, they must begin just prior to movements and represent spatial attributes of the movements. Third, eliminating the signals should not impair movements in simple tasks not requiring corollary discharge. Fourth, eliminating the signals should, however, disrupt movements in tasks that require corollary discharge, such as a double-step task in which the monkey must keep track of one saccade in order to correctly generate another. Applying these criteria to the pathway from superior colliculus to frontal eye field, we concluded that it does indeed convey corollary discharge signals. The extent to which cerebral cortex actually uses these signals, particularly in the realm of sensory perception, remains unknown pending further studies. Moreover, many other ascending pathways from brainstem to cortex remain to be explored in behaving monkeys, and some of these, too, may carry corollary discharge signals.

Animals↗