Literature DB >> 27880868

Origin and evolution of the metazoan non-coding regulatory genome.

Federico Gaiti1, Andrew D Calcino2, Miloš Tanurdžić3, Bernard M Degnan4.   

Abstract

Animals rely on genomic regulatory systems to direct the dynamic spatiotemporal and cell-type specific gene expression that is essential for the development and maintenance of a multicellular lifestyle. Although it is widely appreciated that these systems ultimately evolved from genomic regulatory mechanisms present in single-celled stem metazoans, it remains unclear how this occurred. Here, we focus on the contribution of the non-coding portion of the genome to the evolution of animal gene regulation, specifically on recent insights from non-bilaterian metazoan lineages, and unicellular and colonial holozoan sister taxa. High-throughput next-generation sequencing, largely in bilaterian model species, has led to the discovery of tens of thousands of non-coding RNA genes (ncRNAs), including short, long and circular forms, and uncovered the central roles they play in development. Based on the analysis of non-bilaterian metazoan, unicellular holozoan and fungal genomes, the evolution of some ncRNAs, such as Piwi-interacting RNAs, correlates with the emergence of metazoan multicellularity, while others, including microRNAs, long non-coding RNAs and circular RNAs, appear to be more ancient. Analysis of non-coding regulatory DNA and histone post-translational modifications have revealed that some cis-regulatory mechanisms, such as those associated with proximal promoters, are present in non-animal holozoans, while others appear to be metazoan innovations, most notably distal enhancers. In contrast, the cohesin-CTCF system for regulating higher-order chromatin structure and enhancer-promoter long-range interactions appears to be restricted to bilaterians. Taken together, most bilaterian non-coding regulatory mechanisms appear to have originated before the divergence of crown metazoans. However, differential expansion of non-coding RNA and cis-regulatory DNA repertoires in bilaterians may account for their increased regulatory and morphological complexity relative to non-bilaterians.
Copyright © 2017 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Cis-regulation; Complexity; Enhancers; Evolution; Gene regulation; Holozoans; Metazoans; Multicellularity; Non-coding RNAs

Mesh:

Year:  2016        PMID: 27880868     DOI: 10.1016/j.ydbio.2016.11.013

Source DB:  PubMed          Journal:  Dev Biol        ISSN: 0012-1606            Impact factor:   3.582


  17 in total

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Authors:  Federico Gaiti; Bernard M Degnan; Miloš Tanurdžić
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5.  Landscape of histone modifications in a sponge reveals the origin of animal cis-regulatory complexity.

Authors:  Federico Gaiti; Katia Jindrich; Selene L Fernandez-Valverde; Kathrein E Roper; Bernard M Degnan; Miloš Tanurdžić
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Authors:  Luigi Donato; Concetta Scimone; Carmela Rinaldi; Rosalia D'Angelo; Antonina Sidoti
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Authors:  Daniil Nikitin; Nikita Kolosov; Anastasiia Murzina; Karina Pats; Anton Zamyatin; Victor Tkachev; Maxim Sorokin; Philippe Kopylov; Anton Buzdin
Journal:  Cells       Date:  2019-10-08       Impact factor: 6.600

10.  Dynamics of genomic innovation in the unicellular ancestry of animals.

Authors:  Xavier Grau-Bové; Guifré Torruella; Stuart Donachie; Hiroshi Suga; Guy Leonard; Thomas A Richards; Iñaki Ruiz-Trillo
Journal:  Elife       Date:  2017-07-20       Impact factor: 8.140

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