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Complex Three-Dimensional Rearing Environments Amplify Compensatory Plasticity Following Early Blindness
Deepa L Ramamurthy1, Mackenzie Englund2, Tanner J Kovacs2
1Center for Neuroscience, University of California, Davis, California 95618 deepar@ucr.edu.
Eneuro
|July 7, 2026
Summary
Early blindness in opossums leads to brain plasticity. Enriched environments amplify these changes, showing that sensory experience, not just deprivation, drives neural reorganization and adaptive behaviors.
Area of Science:
- Neuroscience
- Sensory processing
- Developmental plasticity
Background:
- The neocortex adapts to sensory loss, especially early in life.
- It's debated whether this reorganization stems from deprivation or spared-sense use.
Purpose of the Study:
- Investigate how rearing environments affect neural responses in the primary somatosensory cortex (S1) after early visual loss.
- Determine if sensory deprivation or experience with spared senses drives cortical plasticity.
Main Methods:
- Opossums (Monodelphis domestica) underwent bilateral enucleation in early development.
- Animals were reared in enriched or standard environments.
- Neural responses in S1 and behavioral adaptations were assessed in adulthood.
Main Results:
- Enriched rearing promoted adaptive exploration and gap crossing in both sighted and early blind opossums.
- Enriched rearing increased S1 neural response selectivity to whisker touch.
- Receptive field alterations in S1 were amplified in enriched early blind animals, driven by tactile experience.
Conclusions:
- Environmental complexity amplifies cortical reorganization following early sensory loss.
- Experience using spared senses, rather than deprivation alone, drives neural and behavioral plasticity.
- Rearing environment critically shapes functional outcomes after early sensory impairment.
Related Concept Videos
Neuroplasticity
Neuroplasticity reflects the brain's remarkable capacity to adapt and evolve, responding dynamically to learning, experiences, or injury by reorganizing its neural circuitry. This reorganization involves creating new neural connections and refining old ones through a series of biological processes that contribute to the brain's lifelong development and adaptability.
Depth Perception and Spatial Vision
Depth perception is the ability to perceive objects three-dimensionally. It relies on two types of cues: binocular and monocular. Binocular cues depend on the combination of images from both eyes and how the eyes work together. Since the eyes are in slightly different positions, each eye captures a slightly different image. This disparity between images, known as binocular disparity, helps the brain interpret depth. When the brain compares these images, it determines the distance to an object.
Visual Agnosia
Visual agnosia is a condition characterized by the inability to recognize visually presented objects despite having normal vision. For instance, a person with visual agnosia can describe the shape and color of an object but cannot identify or name it. This impairment does not affect their visual field, acuity, color vision, brightness discrimination, language, or memory. An example of this condition in a social setting is someone at a dinner party asking for "that silver thing with a round end"...
Vision
Vision is the result of light being detected and transduced into neural signals by the retina of the eye. This information is then further analyzed and interpreted by the brain. First, light enters the front of the eye and is focused by the cornea and lens onto the retina—a thin sheet of neural tissue lining the back of the eye. Because of refraction through the convex lens of the eye, images are projected onto the retina upside-down and reversed.

