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. 2025 Jun 11:awaf212.
doi: 10.1093/brain/awaf212. Online ahead of print.

Loss of DOT1L disrupts neuronal transcription and leads to a neurodevelopmental disorder

Marissa J Maroni  1   2   3 Melissa Barton  2   3   4 Katherine Lynch  2   3 Ashish R Deshwar  5   6   7   8   9 Philip D Campbell  10   11 Josephine Millard  2   11 Rachel Lee  12 Annastelle Cohen  2   3   4 Rili Ahmad  2   3 Alekh Paranjapye  2   3 Víctor Faundes  13 Gabriela M Repetto  14 Caoimhe McKenna  15 Amelle L Shillington  16 Chanika Phornphutkul  17 Hanne B Hove  18 Grazia M S Mancini  19 Rachel Schot  19   20 Tahsin Stefan Barakat  19   20   21 Christopher M Richmond  22   23 Julie Lauzon  24 Ahmed Ibrahim Elsayed Ibrahim  25 Caroline Nava  26   27 Delphine Héron  27 Minke M A van Aalst  19 Slavena Atemin  28 Mila Sleptsova  28   29 Iliyana Aleksandrova  30 Albena Todorova  28   29 Debra L Watkins  31 Mariya A Kozenko  31 Daniel Natera-de Benito  32 Carlos Ortez  32 Berta Estevez-Arias  32   33 François Lecoquierre  34 Kévin Cassinari  34 Anne-Marie Guerrot  34 Jonathan Levy  35   36 Xenia Latypova  35   36 Alain Verloes  35   36 A Micheil Innes  37 Xiao-Ru Yang  37   38 Siddharth Banka  39   40 Katharina Vill  41 Maureen Jacob  42 Michael Kruer  43   44 Peter Skidmore  43   44   45 Carolina I Galaz-Montoya  43   44   46 Somayeh Bakhtiari  43   44 Jessica L Mester  47 Michael Granato  11 Karim-Jean Armache  12 Gregory Costain  6   7   8   9 Erica Korb  2   3
Affiliations

Loss of DOT1L disrupts neuronal transcription and leads to a neurodevelopmental disorder

Marissa J Maroni et al. Brain. .

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.

Keywords: DOT1L; loss-of-function; neurodevelopmental disorders.

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Update of

  • Loss of DOT1L disrupts neuronal transcription, behavior, and leads to a neurodevelopmental disorder.
    Maroni MJ, Barton M, Lynch K, Deshwar AR, Campbell PD, Millard J, Lee R, Cohen A, Ahmad R, Paranjapye A, Faundes V, Repetto GM, McKenna C, Shillington AL, Phornphutkul C, Hove HB, Mancini GMS, Schot R, Barakat TS, Richmond CM, Lauzon J, Ibrahim AIE, Nava C, Héron D, van Aalst MMA, Atemin S, Sleptsova M, Aleksandrova I, Todorova A, Watkins DL, Kozenko MA, Natera-de Benito D, Ortez C, Estevez-Arias B, Lecoquierre F, Cassinari K, Guerrot AM, Levy J, Latypova X, Verloes A, Innes AM, Yang XR, Banka S, Vill K, Jacob M, Kruer M, Skidmore P, Galaz-Montoya CI, Bakhtiari S, Mester JL, Granato M, Armache KJ, Costain G, Korb E. Maroni MJ, et al. medRxiv [Preprint]. 2025 Apr 14:2024.10.31.24314716. doi: 10.1101/2024.10.31.24314716. medRxiv. 2025. Update in: Brain. 2025 Jun 11:awaf212. doi: 10.1093/brain/awaf212. PMID: 39574879 Free PMC article. Updated. Preprint.

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