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M Mishkin

Publications and source records attributed to M Mishkin.

149 records · Page 9Linked to original sources

Aged monkeys exhibit behavioral deficits indicative of widespread cerebral dysfunction.

To determine whether the decline of behavioral abilities with aging in monkeys is selective or widespread, we examined 18 monkeys ranging from 3 to 34 years of age on a wide variety of tests with the ultimate goal of correlating behavioral deficits with age-related changes in the brain. In our initial study we found impaired visual recognition ability in the aged monkeys (43). In the present study, we assessed the same animals on tests of spatial memory, visual habit formation, visuospatial orientation, visually guided reaching, motor skill learning, and reaction time, these categories having been chosen to test the integrity of different cerebral systems. There were three major findings. First, age-related impairments were observed in nearly all test categories, though often not on easy versions of the tests, suggesting that the deficits observed were in the specific abilities measured and not an artifact of lowered motivation or other general disability. Second, the behavioral decline began in the late teens for certain spatial abilities but did not affect other abilities until the late 20's, suggesting that although the cerebral dysfunction eventually becomes widespread, the cerebral systems underlying spatial abilities are compromised by aging earlier than others. Finally, the finding of correlations between scores of aged animals primarily within test categories as opposed to across categories suggests that different animals have different patterns of cerebral involvement.

Aging↗

A role for the corpus callosum in visual area V4 of the macaque.

The classically defined receptive fields of V4 cells are confined almost entirely to the contralateral visual field. However, these receptive fields are often surrounded by large, silent suppressive regions, and stimulating the surrounds can cause a complete suppression of response to a simultaneously presented stimulus within the receptive field. We investigated whether the suppressive surrounds might extend across the midline into the ipsilateral visual field and, if so, whether the surrounds were dependent on the corpus callosum, which has a widespread distribution in V4. We found that the surrounds of more than half of the cells tested in the central visual field representation of V4 crossed into the ipsilateral visual field, with some extending up to at least 16 deg from the vertical meridian. Much of this suppression from the ipsilateral field was mediated by the corpus callosum, as section of the callosum dramatically reduced both the strength and extent of the surrounds. There remained, however, some residual suppression that was not further reduced by addition of an anterior commissure lesion. Because the residual ipsilateral suppression was similar in magnitude and extent to that found following section of the optic tract contralateral to the V4 recording, we concluded that it was retinal in origin. Using the same techniques employed in V4, we also mapped the ipsilateral extent of surrounds in the foveal representation of V1 in an intact monkey. Results were very similar to those in V4 following commissural or contralateral tract sections. The findings suggest that V4 is a central site for long-range interactions both within and across the two visual hemifields. Taken with previous work, the results are consistent with the notion that the large suppressive surrounds of V4 neurons contribute to the neural mechanisms of color constancy and figure-ground separation.

Animals↗

Functional development of the corticocortical pathway for motion analysis in the macaque monkey: a 14C-2-deoxyglucose study.

The corticocortical pathway for motion analysis transmits visual information from striate cortex (V1) via V2, V3d, superior temporal sulcal areas MT, MST, and FST to motion-sensitive areas in the floor and upper bank of the anterior part of the superior temporal sulcus (AST). We studied the functional development of this pathway by applying the 14C-2-deoxyglucose method to rhesus monkeys (Macaca mulatta) ranging in age from 2 d to 3-4 years. A comparison of local cerebral glucose utilization (LCGU) in an intact and a visually deafferented hemisphere in each animal across the age range revealed that this pathway, immature at birth, reaches adult-like levels at 3 months of age. This developmental time course is reflected both in absolute LCGU and in the interhemispheric LCGU differences in all the areas of the pathway. At all ages, the interhemispheric difference in LCGU is largest in V1 and gradually declines along the pathway until a minimum is reached in AST. This decline likely reflects an increasing proportion of nonvisual inputs to the higher-order areas of the pathway. Measurements like those above taken in areas of inferior parietal cortex indicate that they mature at the same rate as those in the motion analysis pathway. However, comparison with findings on the functional development of the temporal areas of the occipitotemporal pathway for object vision (Bachevalier et al., 1991) suggests that areas along the motion analysis pathway and those in parietal cortex mature about 1 month earlier.

Age Factors↗