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Correlation between spontaneous feeding behavior and neuropeptide Y profile in the third ventricular cerebrospinal fluid of goats.

Feeding behavior is regulated by neural signals in the hypothalamus, but secretory activities of these signals in vivo and their relationship with spontaneous feeding remain to be solved. In the present study, we investigated the correlation between neuropeptide Y (NPY) and somatostatin (SRIF) profiles in cerebrospinal fluid (CSF) and spontaneous feeding behavior in goats. CSF samples were collected every 15 min for 8 h from the third ventricle and feeding behavior was observed throughout the experimental period. The spontaneous feeding behavior, the mean duration of which was 58 min, occurred with an interval of 146 min. NPY in the CSF fluctuated in an episodic fashion with a 145 min interval. Each NPY episode was followed by spontaneous feeding with a time lag of 24 min. SRIF levels in CSF changed more frequently in a pulsatile manner and were related to neither NPY profiles nor feeding behavior. These results suggest that NPY, but not SRIF, is a physiological signal to drive feeding in goats.

Animals↗

Motor control of the appetitive phase of feeding behavior in Aplysia.

The appetitive phase of feeding behavior, in the gastropod, Aplysia, consists of head lifting, head waving, orientation of the head to food, and locomotion. We have initiated studies of the neural control of head waving using three methods: (i) anatomical description of the nerves innervating muscles that are involved in head movement, (ii) electrical stimulation of nerves in a semi-intact preparation, and (iii) recording from nerves in free-moving animals. The muscles controlling head movements, located in the dorsal and lateral neck region, are innervated primarily by pleural nerve 1 and pedal nerves 2, 3, and 5. Electrical stimulation of these nerves caused both longitudinal and lateral contractions of the neck muscles, the largest contractions being in the area where the nerve first enters the muscle. Extracellular recordings from pleural nerve 1 and pedal nerves, in free-moving animals, showed an increase in extracellular activity during head lifting, at the onset of appetitive feeding behavior. Directionally specific inhibition and excitation in neural activity occurred in pleural nerve 1 and pedal nerve 5 during leftward and rightward movements of the head (head waving). Cobalt and nickel backfills of pleural nerve 1 and pedal nerve 5 revealed cell bodies in the cerebral, pedal, and pleural ganglia. The neurons are therefore putative motor neurons for the neck muscles involved in appetitive behavior. This evidence suggests that appetitive control of feeding may involve the coordinated activity of several different ganglia.

Animals↗

Effects of feed composition and stage of lactation on the short-term feeding behavior of dairy cows.

Twenty Holstein-Friesian cows were assigned to one of four feeding groups throughout lactation in a full change-over experiment using two total mixed diets. The low concentrate total mixed diet contained 100 g of concentrate/kg of fresh matter, and the high concentrate total mixed diet contained 300 g of concentrate/kg of fresh matter. The remainder of the total mixed diet was grass silage. The two changeover groups switched total mixed diets at 153 d of lactation; the other two treatment groups remained on their assigned diets throughout lactation. For analysis of short-term feeding behavior, four periods of 3 wk each were identified. The midpoints of these periods were -102, -18, 18, and 102 d from the changeover. The concentrate content of the total mixed diet significantly affected dry matter intake and all short-term feeding behavior variables. Cows that consumed the high concentrate total mixed diet had fewer but longer visits to the feeders and ate more feed per visit than did cows consuming the low concentrate total mixed diet. With one exception, no significant effect of stage of lactation was detected for any of the short-term feeding behavior variables. Despite a highly significant decline in dry matter intake as lactation progressed for cows consuming the high concentrate total mixed diet, there were no interactions between total mixed diet and stage of lactation for any of the short-term feeding behavior variables. Large differences in feeding behavior were detected between cows consuming the same total mixed diet. These last two findings suggest that the use of short-term feeding behavior variables to predict daily intake is unlikely to be successful.

Animal Feed↗

The evolution of neural circuits controlling feeding behavior in frogs.

Our approach to understanding motor systems is a phylogenetic, 'outside-in' approach, the goal of which is to identify behavioral transitions during phylogenesis and elucidate their neurological basis. In this paper, we review the results of recent behavioral, biomechanical and neurological studies on frog feeding behavior. These studies show that highly protrusible tongues have evolved numerous times independently among frogs, and that the biomechanics and neuromuscular control of feeding behavior have been transformed repeatedly during frog evolution. Many of the independent lineages possess unique biomechanical mechanisms for protracting their tongues and unique neural mechanisms for coordinating feeding behavior. In frogs, there has been considerable evolution at the interface between reticular central pattern generators (CPGs) associated with feeding and sensory feedback circuits that modulate feeding motor output. In particular, the roles of hypoglossal and glossopharyngeal sensory feedback appear to have been relatively plastic in their evolution. Prey-type dependence of hypoglossal sensory feedback in Rana suggests that the interaction between descending visual control and sensory feedback also may be evolutionarily plastic. Comparative studies have found that motor systems sometimes evolve conservatively across morphological and behavioral transitions (i.e., the shoulder in birds) or, alternatively, they may be subject to considerably more evolutionary change than is reflected in morphological characteristics (i.e., feeding in cichlids). We hypothesize that the CPG circuits for feeding behavior in the reticular formation may evolve conservatively because they are highly integrated, multifunctional networks which cannot be optimized for one function without compromising others. In contrast, the interfaces between the CPG, sensory feedback and descending control should be less constrained. When changes in motor patterns occur during evolution, it is likely that sensory feedback or descending control may be involved.

Animals↗

Neuron activity in and adjacent to the dorsal amygdala of monkey during operant feeding behavior.

Neuronal activity of the dorsal amygdala, the substantia innominata and the ventral putamen during bar press operant behavior was analyzed to investigate neuronal responses in various affective situations. Of 1507 neurons recorded, 431 responded to some stimuli and were classified into 6 functional categories: 64 (4.2%) indiscriminately and transiently responded to various stimuli; 98 (6.5%) responded to various objects depending on their significance, whether rewarding or punishing; 44 (2.9%) clearly responded only to certain food or objects associated with potables, but not to both; 16 (1.1%) responded to both food and objects associated with potables; 35 (2.3%) responded primarily at the sight of certain nonfood; 66 (4.4%) responded primarily in the ingestion phase. Relations between function and topography are discussed. The results suggest that the dorsal AM and adjacent areas might be important in recognizing the biological significance of objects and in procuring food.

Amygdala↗

Functional coupling between transient declines in blood glucose and feeding behavior: temporal relationships.

To assess the strength and time course of the functional coupling between transient declines in blood glucose and meal initiation, access to food was prevented throughout declines followed by restoration of access to food when glucose returned to baseline. Neither preventing access to nor the absence of food affected the time course of the decline in blood glucose and the latency to food seeking behavior. When access to food was restored six to eight minutes after the blood glucose returned to baseline, no food seeking behavior or feeding occurred until after a second decline in glucose had occurred about one hour later. However, when access to food was restored before glucose returned toward baseline, feeding began within two minutes. Blood glucose did not decrease following presentation of novel foods and feeding occurred rapidly without a prior decline in blood glucose. Therefore, transient declines in blood glucose strongly signalled food seeking and meal initiation but this functional coupling was of short duration (approximately 12 min) and persisted less than six minutes after the blood glucose had returned to baseline. The transient decline in blood glucose appears to be an endogenous, glucose dependent cue for food seeking and meal initiation.

Animals↗

The effect of neonatal handling on adult feeding behavior is not an anxiety-like behavior.

Brief periods of handling during the neonatal period have been shown to have profound and long-lasting physiological consequences. Previous studies performed in our laboratory have demonstrated that handling the pups during the neonatal period leads to increased sweet food ingestion in adult life. The objective of this study is to verify if this effect could be explained by the enhanced anxiety levels in these animals. Litters were divided in: (1) intact; (2) handled (10 min in an incubator/day) and (3) handled + tactile stimulation (10 min/day). Procedures were performed on days 1-10 after birth. When adults, rats were tested in the elevated plus maze apparatus, light dark exploration test and open field test. They were also tested for sweet food ingestion, being injected with 2 mg/kg diazepam or vehicle 60 min before the test. Handling and handling + tactile stimulation do not alter performance in the plus maze test, but handled rats presented more crossings in the light/dark exploration test and open field (two-way ANOVA). Females also spent more % time in the open arms in the plus maze and more time in the lit compartment in the light/dark test, presenting more crossings in both tests. Both treated rats (handled and handled + tactile stimulation groups) consumed more sweet food than intact ones (two-way ANOVA). When diazepam was injected prior to the measurement of sweet food ingestion, there was no effect of the drug. We suggest that handling during the neonatal period leads to plastic alterations in the central nervous system of these animals, causing an increased ingestion of palatable food in adult life, and this alteration does not express an anxiety-like behavior.

Analysis of Variance↗

Neocortex and feeding behavior in the rat.

Consummatory behavior and weight-regulation capacity were measured in 12 normal rats and in 43 rats that survived complete (C), sequential unilateral (U), anterolateral (A), or posterior (P) neocortical ablations. Groups C and A displayed aphagia and adipsia followed by a sequence of recovery stages gualitatively identical to, but shorter than, recovery typically seen following lateral hypothalamic lesions. After recovery, Group C displayed long-term effects of finickiness and pradial drinking. These effects as well as a measure of recovery of body-weight-regulation capacity were significantly intercorrelated with lesion size, and body-weight set point remained significantly lower than normal. Group U was relatively unaffected by the first unilateral ablation and showed, relative the second ablation but displayed the long-term effects. Group P, though significantly affected by the lesion, did not display the pattern or intensity of effects described for the other bilaterally ablated groups.

Animals↗