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Teri Seeberger

Publications and source records attributed to Teri Seeberger.

2 recordsLinked to original sources

Non-visual information does not drive saccade gain adaptation in monkeys.

Recent experiments have characterized the dependence of saccade gain adaptation on the characteristics of the visual error following inaccurate saccades. We currently know little about the potential role of non-visual information in driving saccade adaptation. The brain could use non-visual signals from the saccade burst generator or extraocular muscle (EOM) proprioceptors to determine if the eye had rotated the appropriate distance to aim at a target. Both saccade-related burst signals and EOM proprioceptive information reach the posterior vermis of the cerebellum, a brain area strongly implicated in saccade adaptation. In the experiment described here we determined if non-visual information has a significant affect on saccade adaptation. We made monkey saccades hypometric with intra-saccade target movements and then tested the recovery of saccade gain toward normal under three conditions: (1) when the target was continuously visible, (2) when the target extinguished for 1000 ms beginning during the saccade, and (3) when the monkey remained in the dark. In the first condition both visual and non-visual indications of hypometria were available. In the second, only non-visual information was available. In the third, the monkey made no visually guided saccades and very few spontaneous saccades in the dark so neither visual nor non-visual information could drive adaptation. We found that, though it was hypometric, saccade size during recovery changed the same small amount when monkeys made saccades to extinguishing targets or remained in the dark. Saccade size changed significantly (approximately 5x) more during recovery when the monkey tracked continuously visible targets. Thus non-visual information has no influence on adaptation and visual post-saccade error is the only known driver of saccade adaptation.

Adaptation, Physiological↗

Targeted genomic deletion of the lens-specific intermediate filament protein CP49.

PURPOSE: To deduce the function of the lens-specific cytoskeletal structure, the beaded filament, by blocking expression of the fiber cell-specific beaded filament protein CP49. METHODS: The first exon of the mouse CP49 gene was deleted by using targeted genomic deletion techniques. Gene deletion was assessed through Southern blot analysis and PCR. Translation and protein expression were characterized by Northern and Western blot analysis of both CP49 and its assembly partner filensin. The architecture of knockout lenses was compared with that of wild-type lenses at the histologic level by light microscopy. Lens clarity was assessed in situ by direct ophthalmic examination and slit lamp microscopy. RESULTS: Transcription and translation of CP49 were successfully negated in knockout animals. Lenses homozygous for the CP49 deletion showed no obvious changes in lens architecture at the light microscope level. Filensin levels were sharply reduced, although filensin mRNA levels appeared unchanged. Direct examination of lenses showed no obvious loss of lens clarity, but slit lamp examination revealed the emergence of opacification in even the youngest animals. The opacification worsened with age. CONCLUSIONS: The absence of CP49 causes a subtle loss of optical clarity in the ocular lens, a loss that worsens with age. However, CP49 is not essential for the assumption or maintenance of overall fiber cell shape or long-range order of fiber cells. CP49 appears to regulate the protein levels of its assembly partner filensin, suggesting a mechanism for the regulation of beaded filament protein stoichiometry.

Aging↗