Literature DB >> 29289333

Understanding Neurodevelopmental Disorders: The Promise of Regulatory Variation in the 3'UTRome.

Kai A Wanke1, Paolo Devanna2, Sonja C Vernes3.   

Abstract

Neurodevelopmental disorders have a strong genetic component, but despite widespread efforts, the specific genetic factors underlying these disorders remain undefined for a large proportion of affected individuals. Given the accessibility of exome sequencing, this problem has thus far been addressed from a protein-centric standpoint; however, protein-coding regions only make up ∼1% to 2% of the human genome. With the advent of whole genome sequencing we are in the midst of a paradigm shift as it is now possible to interrogate the entire sequence of the human genome (coding and noncoding) to fill in the missing heritability of complex disorders. These new technologies bring new challenges, as the number of noncoding variants identified per individual can be overwhelming, making it prudent to focus on noncoding regions of known function, for which the effects of variation can be predicted and directly tested to assess pathogenicity. The 3'UTRome is a region of the noncoding genome that perfectly fulfills these criteria and is of high interest when searching for pathogenic variation related to complex neurodevelopmental disorders. Herein, we review the regulatory roles of the 3'UTRome as binding sites for microRNAs or RNA binding proteins, or during alternative polyadenylation. We detail existing evidence that these regions contribute to neurodevelopmental disorders and outline strategies for identification and validation of novel putatively pathogenic variation in these regions. This evidence suggests that studying the 3'UTRome will lead to the identification of new risk factors, new candidate disease genes, and a better understanding of the molecular mechanisms contributing to neurodevelopmental disorders.
Copyright © 2017 Society of Biological Psychiatry. Published by Elsevier Inc. All rights reserved.

Entities:  

Keywords:  3′ Untranslated region; 3′UTR; Neurodevelopmental disorder; Neuropsychiatric disorders; Noncoding variation; RBP; RNA-binding proteins; miRNAs

Mesh:

Substances:

Year:  2017        PMID: 29289333     DOI: 10.1016/j.biopsych.2017.11.006

Source DB:  PubMed          Journal:  Biol Psychiatry        ISSN: 0006-3223            Impact factor:   13.382


  16 in total

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2.  The Long Non-coding RNA-ORLNC1 Regulates Bone Mass by Directing Mesenchymal Stem Cell Fate.

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Review 3.  Biology of RNA Surveillance in Development and Disease.

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4.  Genetic Variation in ATXN3 (Ataxin-3) 3'UTR: Insights into the Downstream Regulatory Elements of the Causative Gene of Machado-Joseph Disease/Spinocerebellar Ataxia Type 3.

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5.  scMAPA: Identification of cell-type-specific alternative polyadenylation in complex tissues.

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6.  Non-coding region variants upstream of MEF2C cause severe developmental disorder through three distinct loss-of-function mechanisms.

Authors:  Caroline F Wright; Nicholas M Quaife; Laura Ramos-Hernández; Petr Danecek; Matteo P Ferla; Kaitlin E Samocha; Joanna Kaplanis; Eugene J Gardner; Ruth Y Eberhardt; Katherine R Chao; Konrad J Karczewski; Joannella Morales; Giuseppe Gallone; Meena Balasubramanian; Siddharth Banka; Lianne Gompertz; Bronwyn Kerr; Amelia Kirby; Sally A Lynch; Jenny E V Morton; Hailey Pinz; Francis H Sansbury; Helen Stewart; Britton D Zuccarelli; Stuart A Cook; Jenny C Taylor; Jane Juusola; Kyle Retterer; Helen V Firth; Matthew E Hurles; Enrique Lara-Pezzi; Paul J R Barton; Nicola Whiffin
Journal:  Am J Hum Genet       Date:  2021-05-21       Impact factor: 11.025

Review 7.  Alternative polyadenylation analysis in animals and plants: newly developed strategies for profiling, processing and validation.

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8.  Genome-wide investigation of an ID cohort reveals de novo 3'UTR variants affecting gene expression.

Authors:  Paolo Devanna; Maartje van de Vorst; Rolph Pfundt; Christian Gilissen; Sonja C Vernes
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9.  The human ATF1 rs11169571 polymorphism associated with risk of nasopharyngeal carcinoma in Southern Chinese populations.

Authors:  Shutang Peng; Guo-Liang Huang; Nansong Xu; Yan Lu; Liuyan Zeng; Xin Li; Shengqun Luo; Xiaoming Lyu; Qiang Jiang; Tong Li; Zhiwei He
Journal:  Cancer Med       Date:  2019-03-23       Impact factor: 4.452

10.  Choice of Alternative Polyadenylation Sites, Mediated by the RNA-Binding Protein Elavl3, Plays a Role in Differentiation of Inhibitory Neuronal Progenitors.

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Journal:  Front Cell Neurosci       Date:  2019-01-10       Impact factor: 5.505

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