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Biomedical subjects

G Umberger

Publications and source records attributed to G Umberger.

3 recordsLinked to original sources

An automated movement assessment panel for upper limb motor functions in rhesus monkeys and humans.

As part of our studies of age-associated changes in motor functions, we have designed an automated movement assessment panel (MAP) to evaluate upper limb and hand movements. Here we describe two versions of the MAP, one for human testing and one for nonhuman primates, and methods for conducting parallel tests in rhesus monkeys and human volunteers. The results are reported from a battery of tests on young adult rhesus monkeys (n = 10, 5-8 years old), young adult human subjects (n = 10, 18-22 years old) and ten aged human subjects (n = 10, 66-68 years old) to demonstrate the capability of the MAP in quantifying arm and hand movement times. The performance times on the two simplest tasks tested were consistent from trial to trial, demonstrating that a stable behavioral baseline could be established for evaluating changes in motor functions over time and assessing treatments for improving motor functions. Motor learning was seen in the more complex movement tasks tested, indicating their usefulness in analyzing this behavior. Finally, age-associated changes in performance times were robustly delineated by the four tasks evaluated in the human subjects.

Adolescent↗

Food restriction reduces brain damage and improves behavioral outcome following excitotoxic and metabolic insults.

Food restriction (FR) in rodents is known to extend life span, reduce the incidence of age-related tumors, and suppress oxidative damage to proteins, lipids, and DNA in several organ systems. Excitotoxicity and mitochondrial impairment are believed to play major roles in the neuronal degeneration and death that occurs in the brains of patients suffering from both acute brain insults such as stroke and seizures, and chronic neurodegenerative conditions such as Alzheimer's, Parkinson's, and Huntington's diseases. We now report that FR (alternate-day feeding regimen for 2-4 months) in adult rats results in resistance of hippocampal neurons to excitotoxin-induced degeneration, and of striatal neurons to degeneration induced by the mitochondrial toxins 3-nitropropionic acid and malonate. FR greatly increased the resistance of rats to kainate-induced deficits in performance in water-maze learning and memory tasks, and to 3-nitropropionic acid-induced impairment of motor function. These findings suggest that FR not only extends life span, but increases resistance of the brain to insults that involve metabolic compromise and excitotoxicity.

Animals↗