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Visscher, K.

Publications and source records attributed to Visscher, K..

2 recordsLinked to original sources

Increased attentive use leads to more idiosyncratic functional connections

Experience is thought to modify neural connections to adapt the network to be more optimal for the environment. Given the brains complexity, multiple network changes could each move the system toward optimality. Standard methods ignore this multiplicity and examine each connection independently; these studies have often shown considerable inter-individual variability and modest effects (1). Here, we take a different strategy, determining how a whole-brain connection pattern differs from the typical pattern, that is, how idiosyncratic the pattern is. We examined how the idiosyncrasy of whole brain connection patterns varies with frequency of the use of that part of cortex for attention-demanding tasks, focusing on central versus peripheral vision in healthy individuals (where individuals use central vision more frequently for attention-demanding tasks). We found that the whole-brain pattern of functional connections to the cortical representations of central vision is idiosyncratic, whereas patterns of connections to representations of peripheral vision were very similar person-to-person. In a second set of analyses, we examined the brains of people with central vision loss who use a portion of peripheral vision (called the preferred retinal locus) more frequently for attention-demanding tasks in their daily lives. The cortical representation of the preferred retinal locus exhibits more idiosyncratic connections, compared to a control brain region, or compared to the same brain region in matched control participants with healthy vision. These results are consistent with the hypothesis that increased attentive use of a brain area results in idiosyncratic patterns of whole brain connections. Significance StatementWe found that increased attentive use of a brain region results in more idiosyncratic patterns of connections of that region to the rest of the brain. Our findings support the view that V1 retains the capacity for plasticity well beyond the critical period and that these adaptations are idiosyncratic to the individuals experiences. This approach suggests that tailoring personalized rehabilitation plans for individuals with retinal diseases may be more effective than a one size fits all approach. More generally, it offers a promising framework for investigating brain plasticity in both typical and clinical populations, especially in the context of sensory loss and compensatory adaptation.

neuroscience↗

Examining oculomotor behavior in central vision loss with a gaze-contingent display

Patients with central vision loss due to macular degeneration (MD) must rely on their peripheral vision for tasks normally performed by the fovea. Many patients develop a preferred retinal locus (PRL), an eccentric retinal location used as a substitute for the damaged fovea in tasks such as face recognition, navigation, and reading. However, the mechanisms underlying PRL development remain elusive, and no single hypothesis fully explains its characteristics. Investigations into PRL development are hindered by oculomotor assessments, which often focus on fixation ability while neglecting other eye movement characteristics and potentially conflating different behaviors over time. In previous work, we introduced a series of oculomotor metrics in cases of simulated central vision loss, demonstrating that complex profiles of eye movement behavior can be extracted from a simple visual task. Here we present longitudinal data from 10 patients with MD as evidence of the feasibility of using these metrics to characterize different profiles of eye movements following central vision loss. Consistent with findings in healthy individuals using artificial scotoma, the metrics reveal substantial individual differences in behavior, both at baseline and after visual training. Overall, patients exhibit significantly higher saccadic re-referencing than controls, despite larger inter-individual differences. These metrics provide a detailed evaluation of oculomotor behavior in patients with central vision loss and offer a valuable tool for assessing progress in training protocols.

neuroscience↗