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Loss of DOT1L function disrupts neuronal transcription, animal behavior, and leads to a novel neurodevelopmental disorder

Maroni, M. J.; Barton, M.; Lynch, K.; Deshwar, A. R.; Campbell, P.; Millard, J.; Lee, R.; Cohen, A.; Paranjapye, A.; Faundes, V.; Repetto, G. M.; McKenna, C.; Shillington, A. L.; Phornphutkul, C.; Mancini, G. M.; Schot, R.; Barakat, T. S.; Richmond, C.; Lauzon, J.; Ibrahim, A. I. E.; Natera-de Benito, D.; Ortez, C.; Estevez-Arias, B.; Lecoquierre, F.; Cassinari, K.; Guerrot, A.-M.; Levy, J.; Latypova, X.; Verloes, A.; Innes, A. M.; Yang, X.-R.; Banka, S.; Vill, K.; Jacob, M.; Kruer, M.; Skidmore, P.; Galaz-Montoya, C. I.; Bakhtiari, S.; Mester, J. L.; Granato, M.; Armache, K.-J.; Costain, G.;

2024-11-02 genetic and genomic medicine
10.1101/2024.10.31.24314716 medRxiv
Show abstract

Individuals with monoallelic gain-of-function variants in the histone lysine methyltransferase DOT1L display global developmental delay and varying congenital anomalies. However, the impact of monoallelic loss of DOT1L remains unclear. Here, we sought to define the effects of partial DOT1L loss by applying bulk and single-nucleus RNA-sequencing, ChIP-sequencing, imaging, multielectrode array recordings, and behavioral analysis of zebrafish and multiple mouse models. We present a cohort of 16 individuals (12 females, 4 males) with neurodevelopmental disorders and monoallelic DOT1L variants, including a frameshift deletion, an in-frame deletion, a nonsense, and missense variants clustered in the catalytic domain. We demonstrate that specific variants cause loss of methyltransferase activity. In primary cortical neurons, Dot1l knockdown disrupts transcription of synaptic genes, neuron branching, expression of a synaptic protein, and neuronal activity. Further in the cortex of heterozygous Dot1l mice, Dot1l loss causes sex-specific transcriptional responses and H3K79me2 depletion, including within down-regulated genes. Lastly using both zebrafish and mouse models, we found behavioral disruptions that include developmental deficits and sex-specific social behavioral changes. Overall, we define how DOT1L loss leads to neurological dysfunction by demonstrating that partial Dot1l loss impacts neuronal transcription, neuron morphology, and behavior across multiple models and systems.

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