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bioRxiv · 10.1101/2024.10.14.618073

Tau load in select brainstem neurons predicts the severity and nature of balance deficits in the absence of cell death

Abstract

Patients with tauopathies present with profoundly different clinical symptoms1, even within the same disorder2. A central hypothesis in the field, well-supported by biomarker studies3,4 and post-mortem pathology5-7, is that clinical heterogeneity reflects differential degeneration of vulnerable neuronal populations responsible for specific neurological functions. Recent work has revealed mechanisms underlying susceptibility of particular cell types8-10, but relating tau load to disrupted behavior -- es- pecially before cell death -- requires a targeted circuit-level approach. Here we studied two distinct balance behaviors in larval zebrafish11 expressing a human 0N/4R-tau allele12 in select populations of evolutionarily-conserved and well-characterized brainstem vestibular circuits13,14. We observed that human tau load predicted the severity of circuit-specific deficits in posture and navigation in the ab- sence of cell death. Targeting expression to either mid- or hindbrain balance neurons recapitulated these particular deficits in posture and navigation. By parametrically linking tau load in specific neu- rons to early behavioral deficits, our work moves beyond cell type to close the gap between pathological and neurological conceptions of tauopathy.

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BibTeXRIS

Zhu, Y., Gelnaw, H., Leary, P., Raghuraman, R., Kamath, N., Kraja, A., Liu, J., Bai, Q., Higashijima, S.-i., Burton, E. A., Schoppik, D.. 2024-10-14. Tau load in select brainstem neurons predicts the severity and nature of balance deficits in the absence of cell death. https://doi.org/10.1101/2024.10.14.618073

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