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Structural brain imaging evidence for multiple pathological processes at different stages of brain development in schizophrenia.

The underlying neurobiology of emerging psychotic disorders is not well understood. While there is evidence from structural imaging and other studies supporting the popular notion that schizophrenia arises as a consequence of an "early neurodevelopmental" lesion, more recent findings challenge this notion. Evidence, including our own data, suggests that dynamic brain changes occur during the earliest stages of a psychotic illness, including around the time of transition to illness. In this article we review the available longitudinal and relevant cross-sectional structural neuroimaging studies focusing on both the very early neurodevelopmental markers (pre- or perinatal origin) and the later markers (late neurodevelopmental) around the period of transition to illness. Based on our review of recent findings, we suggest that the onset of psychosis is a time of active brain changes, wherein, for a proportion of individuals, (i) an early (pre- and perinatal) neurodevelopmental lesion renders the brain vulnerable to anomalous late (particularly postpubertal) neurodevelopmental processes, as indicated by evidence for accelerated loss of gray matter and aberrant connectivity particularly in prefrontal regions; and (ii) these anomalous neurodevelopmental processes interact with other causative factors associated with the onset of psychosis (e.g., substance use, stress, and dysregulation of the hypothalamic-pituitary-adrenal axis function), which together have neuroprogressive sequelae involving medial temporal and orbital prefrontal regions, as suggested by imaging studies around transition to active illness. However, the pathological processes underlying such progressive changes during "late neurodevelopment" remain unclear but may reflect anomalies of synaptic plasticity, abnormal brain maturation, the adverse effects of stress, or other environmental factors. In this context, the features of schizophrenia, including the neuropsychological deficits and behavioral manifestations, can be understood as direct effects of these multiple pathological processes at various neurodevelopmental stages, including genetic and nongenetic etiological factors.

Brain↗

Insulin receptors from guinea pig liver and brain: structural and functional studies.

We studied the structural and functional characteristics of insulin receptors from guinea pig liver and brain. Binding to crude membrane preparations of liver and brain was time, temperature, and pH dependent. Maximal specific binding to liver crude membrane preparations was 16.4 +/- 0.5%, and that to brain crude membrane preparations was 10.4 +/- 1.8%. Specificity studies demonstrated typical affinities for insulin receptors with chicken insulin greater than porcine insulin greater than human proinsulin greater than desoctapeptide insulin in both liver and brain. Antiinsulin receptor antiserum inhibited binding of [125I]insulin to both liver and brain crude membrane preparations. Electrophoresis performed under reducing conditions after affinity cross-linking of liver and brain insulin receptors with [125I]insulin revealed labeled proteins (alpha-subunit) with apparent mol wt of 136,000 in liver and 121,000 in brain. Treatment of liver and brain receptors with both endoglycosidase H and endoglycosidase F increased the electrophoretic mobility of the alpha-subunit. [125I]Insulin cross-linked receptors from both liver and brain adsorbed to and eluted from wheat germ agglutinin columns in a similar manner, as demonstrated by binding and sodium dodecyl sulfate-polyacrylamide gel electrophoresis. In solubilized lectin-purified receptor preparations from liver and brain, insulin stimulated the phosphorylation of the beta-subunit and exogenous substrates. When the delta-kinase activity, as measured by exogenous substrate phosphorylation, of the brain and liver preparations was normalized to the maximal bound to free ratio of the preparations, the delta-kinase activity was about 4-fold greater in brain than in liver. These studies suggest that the differences between brain and liver insulin receptor alpha-subunits previously demonstrated in rats are also present in guinea pigs.

Acetylglucosaminidase↗

Neuronal, non-neuronal and hybrid forms of enolase in brain: structural, immunological and functional comparisons.

Three forms of the glycolytic enzyme, enolase [2-phospho-D-glycerate hydrolase (E.C. No. 4.2.1.11)] have been prepared from rat whole brain extract. The most acidic enolase form is neuron specific enolase (NSE) which had previously been designated neuron specific protein (NSP). The least acidic form designated non-neuronal enolase (NNE) has been purified and compared structurally, immunologically and functionally to NSE. NNE is a dimer of 86,500 M.W. consistint of two very similar subunits. The data establish that NNE is larger than NSE which has been shown to be composed of two apparently identical 39,000 molecular weight subunits (78,000). NNE is less acidic than NSE having a pI of 5.9 compared to the value of 4.7 for NSE. Structural and immunological analysis establishes that the NNE subunit is distinct from the NSE subunit, and are therfore products of two separate genes. The structural designation of NSE is (gammagamma) and that of NNE (alpha' alpha'). NSE is strictly localized in neurons indicating that the gene coding for the gamma subunit is only expressed in neuronal cells. The intermediate brain enolase form has been partially purified; structural and immunological evidence indicate that it is a hybrid molecule consisting of one NNE subunit and one NSE subunit (alpha'gamma).

Amino Acid Sequence↗

No-bridge of Drosophila melanogaster: portrait of a structural brain mutant of the central complex.

The mutant no-bridge (nobKS49) has its name from a structural defect in the protocerebral bridge of the central complex. This rod-shaped neuropil in nobKS49 has a large gap at the sagittal midplane, with some of the missing material accumulated more laterally. Mutant nob flies have a reduced maximal and average walking speed. Leg coordination is disturbed during turning but not while walking straight. Motivation for walking is low and steps are small due to slow forward swinging of the legs. Flies spontaneously may pass into an autistic (and possibly spastic) state in which they can move their legs and even perform cleaning movements but do not walk or fly. They spontaneously recover if left undisturbed. Gynandromorph experiments place the focus of the walking defects into the head. Mutant flies have a reduced tendency to escape when mechanically stimulated. In a brightly lit arena they do not avoid a black square above the horizon and they are negatively phototactic. In tethered flight optomotor responses are normal but the amplitude of spontaneous torque modulations as well as the number of torque spikes are reduced. If a single black bar is slowly rotated around the fly, the normal response pattern is observed. It vanishes, however, at moderately fast angular velocity at which the wild type still is fully responsible. The behavioral defects support the notion that the protocerebral bridge is part of a higher center for the regulation of behavior.

Animals↗

Multimodality imaging of brain structures for stereotactic surgery.

An image analysis system was developed for stereotactic neurosurgery that allows the simultaneous display of brain images from different imaging devices obtained in different orientations. The system is based on a stereotactic frame and a microcomputer and features an easy user interface together with point registration and region of interest analysis in three-dimensional space. A dynamic multi-image environment allows for simultaneous display of magnetic resonance, computed tomography, digital subtraction angiography, and positron emission tomography images in multiple windows, adjusted for common coordinates with reference to stereotactic frame fiducial markers. Linkages between images allow information interchange between different modalities and different views: Points and regions defined in one image can be transferred to others, and cursor coordinates in one image can be calculated and dynamically projected in other images. Phantom studies show that the system distortions are minor and that the system is suitable for clinical use. The system provides exceptional advantages over previous imaging procedures for stereotactic surgery.

Angiography, Digital Subtraction↗

Phospholipid and glycolipid synthesis in brain structures of Brattleboro rats.

The incorporation of labeled precursors in phospholipids and glycolipids was studied in discrete brain areas of rats with innate vasopressin deficiency (Brattleboro, DI) and intact Long Evans animals (LE). Tracer incorporation was found to be reduced in septal, hypothalamic and hippocampal phospholipids, but enhanced in the glycolipid fraction isolated from the hypothalamus and hippocampus of Brattleboro rats. The results indicate that inherited vasopressin deficit seems to be associated with altered lipid synthesis in some brain areas of the Brattleboro rat, suggesting a probability for impaired translation of chemical signals.

Acetates↗

[Isoniazid distribution and biogenic amine metabolism in brain structures].

The effect of isoniazid (200 mg/kg) on metabolism of biogenic amines in different parts of the brain was studied in acute experiments on white rats. Isoniazid was detected in all test organs one hour after the administration, with metabolism of biogenic amines changed. The level of biogenic amines is related not only to the drug distribution pattern but also to the specificity of its participation in the biochemical processes, restricting the synthesis of monoamines.

Animals↗

A controlled study of brain structure in monozygotic twins concordant and discordant for schizophrenia.

BACKGROUND: We examined monozygotic twins concordant and discordant for schizophrenia to clarify the role of genetic and environmental factors in determining brain abnormalities. METHODS: Magnetic resonance imaging brain scans were obtained from 14 monozygotic twin pairs concordant and 10 monozygotic pairs discordant for schizophrenia, as well as 17 pairs of monozygotic control twins. Twenty-two discordant sibling-pairs and 56 pairs of unrelated control subjects were included to assess the extent of genetic control over these structures. RESULTS: Within-pair similarities for whole brain volume increased as pair members were more closely related genetically (monozygotic twins > siblings > unrelated control subjects). Schizophrenic twins, whether from concordant or discordant pairs, had smaller whole brain volumes than control twins. The probands of discordant pairs showed more abnormalities in hippocampal, third and lateral ventricular volumes than concordant twins. CONCLUSIONS: Whole brain volume is under high genetic control and smaller whole brain volume is a reflection of the genetic liability to develop schizophrenia. The variation in hippocampal and ventricular volumes within discordant monozygotic pairs indicates a role for environmental factors in determining these volume abnormalities in schizophrenia. Such factors may also underlie the more extensive morphometric deviations in patients from monozygotic discordant twins than in their counterparts from concordant twins.

Adolescent↗

Effects of chronic variate stress on feeding behavior and on monoamine levels in different rat brain structures.

Chronic variate stress was seen to decrease the ingestion of sweet food when compared to control rats. Brain monoamines are known to be involved in the control of food intake, serotonin appears to be involved in the mechanisms of satiety, and dopamine in mediating appetite or approach behaviors triggered by incentive stimuli associated with rewards. The effect of chronic variate stress on cerebral levels of monoamines was also studied in rats. Increased levels of DOPAC were observed in the frontal cortex and in the hippocampus and an increased 5-HIAA/5-HT ratio was also observed in this latter structure. In the hypothalamus, levels of HVA and DOPAC were decreased, as well as the DOPAC/DA ratio, while no difference was found in amygdala. During the treatment, there were no differences in the consumption of water and regular food between stressed and control animals. An increase in the adrenal weight was observed at the end of the treatment. The results suggest that emotional changes, such as exposure to stress situations can influence feeding behavior, chronic variate stress causes decreased ingestion of sweet food and decreased dopaminergic neurotransmission in hypothalamus. Increased dopamine metabolite levels in the cortex and hippocampus were also observed and some of these modifications may be related to alterations in feeding behavior.

Animals↗