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R K Carder

Publications and source records attributed to R K Carder.

10 recordsLinked to original sources

Electrocorticographic coherence patterns.

The availability of implantable subdural electrode arrays has made systematic studies of electrocorticographic (ECoG) coherence possible. Studies of coherence patterns recorded directly from human cortex are reviewed along with the presentation of original human clinical data, which reveal reliable and characteristic patterns of coherence. A data-driven technique for discriminating between reliable and unreliable coherence and phase values is described and used to reveal the relationship between coherence and cortical anatomy, such as in the region of the central sulcus, where low phase coherence declines and high phase-shifted coherence increases. Analysis of coherence magnitude and phase makes it possible to determine which signals likely arise from the cortical surface, and which arise from the depths of a sulcus. Alterations in coherence patterns caused by tumors or epilepsy are described and may be used to identify normal and pathological functional relationships between distant cortical areas. Some electrophysiologic/pathologic correlations indicate at least two types of epileptic abnormality, implying a sequence in breakdown of epileptic tissue. The relationship between coherence patterns and behavior and cognition is introduced and compared to similar studies of single-unit binding in animals.

Aphasia↗

Immunocytochemical characterization of AMPA-selective glutamate receptor subunits: laminar and compartmental distribution in macaque striate cortex.

Subunit proteins that comprise functional AMPA receptors were localized by immunocytochemical methods in the adult macaque primary visual cortex (V1). GluR1, GluR2/3/4c, and GluR4 immunoreactivity consisted of rich plexuses of punctate profiles scattered throughout the neuropil, in radial arrays, and outlining the membrane of somata and proximal dendrites. Cytoplasmic immunoreactivity was limited. GluR2/3/4c immunostaining was more prominent along the somata surface and exhibited greater levels of cytoplasmic immunoreactivity than GluR1 and GluR4 immunostaining. The density of AMPA subunit immunoreactive elements also varied across layers and compartments of macaque V1. Immunoreactivity for GluR1, GluR2/3/4c, and GluR4 was densest in three bands that corresponded to layers IVA, IVC, and VI. Immunostaining for each subunit was also unevenly distributed within many of the layers. In layers II-III, patches of intense immunostaining coincided with cytochrome oxidase (CO)-rich blobs. In layer IVA, intense subunit staining formed a conspicuous honeycomb pattern. In layer IVC, subunit staining formed a radial lattice. GluR2/3/4c subunit immunostaining was also preferentially distributed within the CO-rich blobs of layers V-VI. These findings demonstrate that AMPA subunit immunoreactivity is densely concentrated in layers and compartments receiving direct geniculocortical innervation. This distribution, which differs from that of excitatory synapses, suggests that the density of AMPA receptors is unevenly distributed at synaptic and possibly extrasynaptic sites within macaque visual circuits.

Animals↗

Neuronal characterization, compartmental distribution, and activity-dependent regulation of glutamate immunoreactivity in adult monkey striate cortex.

Monospecific antibodies to glutamate were used to characterize the organization of excitatory neurons and the plasticity of glutamate expression in the macaque striate cortex. Somata and processes immunoreactive for glutamate were densely and unevenly distributed in layers II-III, IVA, IVC. In tangential sections through layers II and III, patches of intense glutamate immunostaining were observed and were found to coincide with regions of the cytochrome oxidase (CO)-rich puffs. By contrast, clusters of intense immunostaining were surrounded by the lightly immunostained but intensely CO-stained lattice in layer IVA. Similarly, in layer IVC, focal aggregates of intense glutamate immunoreactivity were interspersed among regions of light immunostaining but intense CO staining. Glutamate immunoreactivity was also intense in layer VI but was much lighter in layers I, IVB, and V. Throughout the striate cortex, neurons resembling pyramidal cells and spiny stellate cells and processes that included dendrites and axons were immunostained. None of the glutamate-positive neurons was GABA immunoreactive. Following monocular deprivation of adult monkeys by intravitreal injections of TTX into one eye, glutamate immunoreactivity in layers IVC was distributed in alternating intensely and lightly stained stripes. The stripes of reduced immunostaining, which contained an abnormally low concentration of glutamate neurons and pale neuropil, corresponded to columns dominated by the TTX-injected eye. Similar stripes of alternating intense and light immunoreactivity were seen in layers II-III, where they corresponded to rows of puffs at the centers of intact-eye and deprived-eye columns, respectively. These findings demonstrate that glutamate-immunoreactive neurons and terminals in monkey striate cortex are densely concentrated in layers receiving direct geniculocortical innervation. In addition, the glutamate neurons and terminals form discrete units, which in layers II and III coincide precisely with regions receiving geniculocortical terminations but in layers IVA are segregated from these terminations. The findings also indicate that glutamate immunoreactivity is regulated by visually driven activity, and suggest that monocular deprivation in adulthood leads to a reduction in the major excitatory neurotransmitter in visual cortex as well as previously indicated reductions in GABA, the major inhibitory neurotransmitter.

Animals↗

Organization and plasticity of GABA neurons and receptors in monkey visual cortex.

The GABA neurons of monkey area 17 are a morphologically and chemically heterogeneous population of interneurons that are normally distributed most densely within the geniculocortical recipient zones of the visual cortex. In adult monkeys deprived of visual input from one eye, the levels of immunoreactivity for GABA and GAD within neurons of these geniculocortical zones is reduced. Similar changes are seen in the levels of proteins that make up the GABAA receptor sub-type. The effects of monocular deprivation on other substances suggest that specific types of GABA neurons, such as those in which the tachykinin neuropeptide family and parvalbumin coexist with GABA, are greatly influenced by changes in visual input. That some proteins remain normal within deprived-eye neurons and that other proteins are increased indicates the changes in the GABA cells of the cortex are not the result of a general reduction in protein synthesis. Comparisons of what is known about the morphological and synaptic features of GABA cells in area 17 and the characteristics of cells affected by monocular deprivation suggests that certain classes, such as the clutch cell, may be preferential targets of deprivation. Such a selective loss of certain GABA neurons would have broad implications for the possible physiological plasticity of cortical cells, for if ongoing studies determine that specific receptive field properties are affected by monocular deprivation in adults, the correlation of functional properties and classes of GABA cells would be possible.

Animals↗

Dopamine released from mesencephalic transplants restores modulation of striatal acetylcholine release after neonatal 6-hydroxydopamine: an in vitro analysis.

After chemical lesions which destroy the nigrostriatal dopamine pathway, transplants rich in dopamine neurons innervate the striatum and, with appropriate stimulation, drive host motor behaviors normally mediated by dopamine. We wished to determine whether dopamine released from the transplant also reinstated dopaminergic inhibition of striatal acetylcholine release. Three-day-old rat pups received bilateral intraventricular injections of 6-hydroxydopamine. Three days later cell suspensions prepared form embryonic ventral mesencephalon were injected unilaterally into the striatum. Tail pinch and amphetamine were able to elicit contralateral turning in many of these animals. Only those animals which rotated greater than or equal to 5 turns/min were included for further analysis. Subsequent assays indicated that 6-hydroxydopamine had depleted striatal dopamine to 4% of control and that the transplant had increased dopamine levels to 11% of control. Superfused striatal slices were stimulated (8 Hz, 1 min) and then exposed to amphetamine (10 microM, 3 min). The slice released dopamine, as measured by HPLC, and acetylcholine, as measured by tritium efflux after preincubation with [3H]choline. Moreover, the release of acetylcholine was inhibited by endogenous dopamine as indicated by the ability of sulpiride (1 microM) to increase tritium efflux. Striatal slices prepared from lesioned animals showed a reduction in dopamine overflow in response to both electrical stimulation (0.6% of control) and amphetamine (1% of control), and a decrease in the ability of sulpiride to increase electrically evoked acetylcholine overflow (12% of control). Transplantation partially restored the dopaminergic response to electrical stimulation (21% of control), and amphetamine (15% of control) and fully restored the sulpiride-induced increase in acetylcholine overflow (98% of control).(ABSTRACT TRUNCATED AT 250 WORDS)

Acetylcholine↗

Development of dopamine innervation and turning behavior in dopamine-depleted infant rats receiving unilateral nigral transplants.

Three-day-old rats were bilaterally dopamine-depleted with 6-hydroxydopamine and 3 days later cell suspensions derived from the dopamine-rich ventral mesencephalic area were injected into the right rostral striatum. The transplants rapidly developed a substantial innervation of one striatum, so that by 15 days after transplantation (21 days of age) animals rotated away from the reinnervated side in response to amphetamine. The amount of turning correlated with the extent of innervation of the striatum as determined by tyrosine hydroxylase immunocytochemistry. By 25 days post-transplantation (31 days of age), animals turned in response to stress as well as amphetamine, although this later-developing phenomenon was not associated with any significant change in the extent of dopamine innervation. A second group of animals was bilaterally dopamine-depleted at 3 days of age, but transplantation with nigral cell suspensions was delayed until maturity. Partial reinnervation of the rostral striatum occurred with this delayed transplant paradigm, and turning to both amphetamine and stress commenced at 15 days post-transplantation. In contrast to animals receiving transplants shortly after lesioning, these animals began to turn spontaneously at about 20 days post-transplantation. The serotonin hyperinnervation that occurs following dopamine depletion in infancy was not altered by dopamine transplants made at either time. Results from both groups of transplant animals suggest that dopamine-rich transplants can provide substantial innervation that exerts some functional control over the striatum. This occurs despite the fact that neonatally dopamine-depleted rats, unlike adult-lesioned animals, survive quite well in the absence of striatal dopamine. However, the degree of incorporation into existing circuitry, and the types of regulation that result, may vary considerably depending on the age at which the tissue is transplanted.

Age Factors↗

Behavioral and anatomical correlates of immunologically induced rejection of nigral xenografts.

Cell suspensions derived from the ventral mesencephalon of CD-1 mice were unilaterally transplanted into the striatum of neonatal Sprague-Dawley rats that had been bilaterally dopamine depleted. Thirty-eight percent of the grafts survived. Tyrosine-hydroxylase-immunoreactive neurons within the transplant innervated the host striatum with a dense fiber plexus. The grafts appeared to exert some degree of functional control over motor behavior in that these animals made contralateral rotations in response to amphetamine and tail pinch. In order to provide additional evidence that the motor behavior is associated with the transplant itself, the graft was removed. This was achieved by using a mouse skin graft to provoke an immunological response against the transplanted neural tissue. The immunological response resulted in the specific loss of the transplant with little or no damage to the surrounding neural tissue. The amount of rotation observed after tail pinch and amphetamine injection was severely affected by neural graft rejection. The loss of turning was associated most directly with the loss of tyrosine hydroxylase immunoreactivity within the transplant rather than with the massive reduction of tyrosine-hydroxylase-positive fibers in the ipsilateral host striatum. These data suggest that dopamine cells in mouse nigral grafts play an essential role in eliciting rotational behavior in neonatally dopamine depleted rats. They also show the value of skin grafting as a technique for specifically removing neural xenografts.

Animals↗

Amphetamine- and stress-induced turning after nigral transplants in neonatally dopamine-depleted rats.

Neonatally dopamine-depleted rats fail to show the deficits seen in similarly lesioned adults, and no longer appear to require dopamine. Nevertheless, unilateral nigral transplants provided extensive reinnervation and were capable of modifying motor patterns. Both amphetamine and external stressors elicited contraversive turning. This raises the question of whether extrinsic dopamine innervation supplements or overrides alternative compensatory mechanisms in the neonate.

Amphetamines↗

Neurochemical compartmentation of monkey and human visual cortex: similarities and variations in calbindin immunoreactivity across species.

The compartmental organization of visual cortical neurons was examined across species of primates by directly comparing the pattern of immunoreactivity for the 28-kD vitamin D-dependent calcium-binding protein (calbindin) in area 17 of squirrel monkeys, macaques, and neurologically normal adult humans. Area 17 of macaques and squirrel monkeys was similar in that somata and processes intensely immunoreactive for calbindin were present in the same layers (II-III, IVB, and V) and in both species formed a well-stained matrix that surrounded the CO-rich puffs in layer III. These intensely calbindin-immunoreactive neurons were identified as subpopulations of GABA-immunoreactive neurons. Among the most obvious differences in the two monkey species was the distribution of calbindin-positive elements outside of layer III: a dense immunostained matrix surrounded the puffs in layers II, IVB, V, and VI of squirrel monkeys but the immunostained neurons adopted no regular pattern outside layer III in macaques. In addition, although somata lightly immunoreactive for calbindin were present in both species, they were much more abundant in squirrel monkeys than macaques. The pattern of calbindin immunostaining in human area 17 resembled that of macaques in forming an intense matrix that surrounded puffs only in layer III, yet also resembled that of squirrel monkeys by including large numbers of light immunoreactive somata. These lightly immunostained somata included a very dense population forming a prominent band in layer IVA of human visual cortex. We conclude that for layer III of primary visual cortex, a similar pattern of neuronal chemistry exists across species of primates which is related to this layer's compartmental organization. Yet for other layers, the expression of calbindin immunoreactivity varies from one species to the next, perhaps reflecting variations in other neuronal properties.

Aged↗

Regulation of calcium-binding protein immunoreactivity in GABA neurons of macaque primary visual cortex.

Monocular deprivation produces an imbalance in visual drive from the two eyes, which in adult macaque V1 leads to marked changes in the neurochemistry of GABA interneurons. Such changes were further examined by studying immunoreactivity for calbindin, calretinin, and parvalbumin, three calcium-binding proteins that mark distinct subpopulations of GABA neurons, in macaques that had been monocularly deprived by intravitreal injection of tetrodotoxin. Deprivation for 5 d or longer produced a reversal in the normal pattern of calbindin immunostaining in layer III, from one in which intense neuronal immunostaining surrounded the cytochrome oxidase-rich puffs to one in which it occupied the puffs. Over the same period, calbindin immunostaining in other layers was reduced across the entire width of deprived-eye columns or extended into flanking regions of normal-eye columns. In contrast, reduction in parvalbumin immunostaining occurred only in deprived-eye columns and included only terminals with short periods of deprivation (up to 17 d) but both terminals and somata with longer periods. No change in calretinin immunoreactivity was observed. These findings demonstrate that GABA neurons of macaque V1 vary in their response to monocular deprivation according to their neurochemistry and position, suggesting that the weight of inputs from the two eyes and the intrinsic characteristics of each GABA population determine how a neuron responds to a change in visual input.

Animals↗