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Ryait, H.

Publications and source records attributed to Ryait, H..

3 recordsLinked to original sources

Ecological Suboptimality in Naturalistic Foraging: Amplified Deviation from Optimality in a Mouse Model of Alzheimer Disease

Adaptive decision-making extends beyond selecting among discrete alternatives. It requires the dynamic organization of actions as costs, opportunities, and goals evolve over time. Foraging captures this complexity in an evolutionarily conserved behavior that integrates spatial, temporal, and reward-related information across successive actions. These demands make foraging an ecologically grounded framework for investigating Alzheimer disease, in which spatial cognition, temporal organization, cost evaluation, and behavioral flexibility are frequently disrupted. We examined foraging-related action selection in control C57BL/6J mice and APPNL-G-F knock-in mice using a controlled task in which travel distance, food texture, and pellet size altered the costs and benefits of available strategies. Bayesian multinomial modeling showed that control mice flexibly redistributed their behavior across conditions, whereas APPNL-G-F mice showed impaired cost integration, increased withdrawal, and reduced behavioral flexibility rather than a generalized performance impairment. Comparison with a classical reward-rate-maximization benchmark revealed substantial suboptimality in both groups. Control mice achieved 53% of the predicted optimal reward rate, whereas APPNL-G-F mice achieved 45%. These systematic departures suggest that behavior was shaped by cognitive, motivational, or contextual constraints not represented in the normative model, with Alzheimer-disease-relevant dysfunction associated with greater suboptimality. Group differences were greatest when optimal behavior was highly sensitive to competing costs. By preserving the distribution of behavior across strategies, this study establishes foraging-related action selection as a sensitive framework for detecting disease-associated disruptions that may be obscured by conventional measures of choice or overall task performance.

neuroscience↗

Vision and touch used for catching small balls with a power grip and large balls with a precision grip supports dual visuomotor channel theory

The dual visuomotor channel theory of grasping posits that distinct neural pathways mediate hand shaping in response to a targets extrinsic (e.g., location) and intrinsic (e.g., size and shape) properties. To evaluate this theory, we examined grasp behavior in human participants as they caught balls of four diameters (2.5-9 cm) thrown toward them. Hand shaping during catching was compared with that observed during the pickup of stationary balls and the interception of rolling balls. Kinematic measures included digit opposition distance (thumb pad to index finger pad) and prehension span (digit pad to palm distance), obtained using electromagnetic sensors, 3D video capture, and frame-by-frame video analysis. Participants displayed significantly greater hand opening when catching thrown balls than when interacting with static or rolling balls. Nonetheless, the maximum pregrasp aperture (MPA), contact grasp aperture (CGA), and terminal grasp aperture (TGA) scaled proportionally with ball size across all conditions. Ball size further influenced grasp type: small thrown balls were caught with power grips, while larger balls were caught with precision grips. In contrast, precision grips were used consistently when picking up stationary balls or grasping intercepting rolling ones. In the catching condition, grasp type and the trajectory of digit closure were also affected by the location of ball to hand contact. These findings support the dual visuomotor channel theory by demonstrating that anticipatory hand opening reflects target location, whereas grip selection reflects target size. Moreover, the modulation of grasp type and digit closure by tactile contact suggests that somatosensory input may operate within a dual-channel framework analogous to that of vision.

neuroscience↗

Gaze audits food items for bite points during human withdraw-to-eat movements

Food handling and eating are central to the skill of primate hand movements, and their analysis can provide insights into the evolutionary origins of hand use and its generalization to other behaviors, such as tool use. Vision contributes differently to the reach, grasp, and withdraw-to-eat components of hand use when eating, suggesting that these component movements are controlled by different visuomotor networks with distinct evolutionary histories. This study examines the role of gaze in mediating the withdraw-to-eat movement in human participants eating various food items, including candy, donuts, carrots, bananas, and apples, or pantomiming the eating movements for some of these items. Eye-tracking and frame-by-frame video analyses are used to describe gaze, gaze duration, gaze disengagement, eye blinking, and hand preference in eating each food item. The results show that gaze first identifies points on a food item that the dominant hand can grasp and then identifies points on the food item that the mouth can bite. The hand and finger shaping movements of both the initial grasp and subsequent food handling aid in exposing targets on the food for grasping and biting. The comparison of real and pantomime eating suggests that only real food items possess the affordances that elicit gaze patterns associated with identifying online targets for grasps and bites. The findings are discussed in relation to idea that gaze has a feature-detector-like role linking food cues to the skilled movements of hand shaping to grasp a food item and then to orient a food item to the mouth for biting.

animal behavior and cognition↗