XB-ART-56719
Dev Growth Differ
2020 Jun 01;625:343-354. doi: 10.1111/dgd.12654.
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Regeneration enhancers: A clue to reactivation of developmental genes.
Suzuki N
,
Ochi H
.
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During tissue and organ regeneration, cells initially detect damage and then alter nuclear transcription in favor of tissue/organ reconstruction. Until recently, studies of tissue regeneration have focused on the identification of relevant genes. These studies show that many developmental genes are reused during regeneration. Concurrently, comparative genomics studies have shown that the total number of genes does not vastly differ among vertebrate taxa. Moreover, functional analyses of developmental genes using various knockout/knockdown techniques demonstrated that the functions of these genes are conserved among vertebrates. Despite these data, the ability to regenerate damaged body parts varies widely between animals. Thus, it is important to determine how regenerative transcriptional programs are triggered and why animals with low regenerative potential fail to express developmental genes after injury. Recently, we discovered relevant enhancers and named them regeneration signal-response enhancers (RSREs) after identifying their activation mechanisms in a Xenopus laevis transgenic system. In this review, we summarize recent studies of injury/regeneration-associated enhancers and then discuss their mechanisms of activation.
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19K06672 Japan Society for the Promotion of Science , 16K07362 Japan Society for the Promotion of Science
Species referenced: Xenopus laevis
Genes referenced: arid3a crebbp lhx1 pax2 wnt6
GO keywords: regeneration
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Figure 1. (a) Extraction of candidate enhancers using evolutionarily conserved noncoding sequences; plot using the comparative genomics alignment tool VISTA; comparison of human (Homo sapiens), mouse (Mus musculus), and frog (Xenopus tropicalis) Pax2 loci; the pink peak indicates the conserved noncoding sequences and the blue peak indicates exons. (b) Extraction of candidate enhancers based on epigenetic profiling of H3K4me1, H3K4me3, and H3K27ac, and the binding of histone acetyltransferase p300; H3K4me1, H3K27ac, and p300 are often associated with enhancers, whereas H3K4me3 and H3K27ac are often present at active promoters. The image was adapted and modified from Prescott et al. (2015) |
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Figure 2. (a) Regenerative mechanisms of the damage response enhancer for Drosophila wing imaginal discs; Wg and Wnt6 expression are upregulated in response to damage via the damage response enhancer in unmatured discs. In contrast, immediately adjacent regulatory elements promote methylation of H3K27me3 across the Wnt gene cluster. This methylation event prevents regeneration of wing imaginal discs. The image was adapted and modified from Harris et al., (2016). (b) Genomic DNA regions surrounding the lepb gene and profiles of H3K27ac in uninjured and regenerating hearts; transgenic analyses showed that H3K27acârich elements have enhancer activity in regenerating zebrafish hearts |
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Figure 3. (a) Extraction of candidate enhancers for Lhx1 using evolutionarily conserved noncoding sequences; the magenta box indicates the noncoding evolutionarily conserved sequence (CNS) between frogs and fish. The blue box indicates the CNS among vertebrates. (b) Identification of regenerationârelated enhancers for frog nephric tubules; nonmosaic founder frogs are generated by injecting reporter DNA and sperm nuclei into unfertilized eggs. Functional enhancers in regenerating tissues can be identified using founder transgenic animals. (c) Mechanisms of activation of regeneration signalâresponse enhancers (RSREs); with the H3K9me3 demethylaseâKdm4 complex, Arid3a binds to RSREs and reduces H3K9me3 levels, thereby promoting the expression of Lhx1 during regeneration of nephric tubules |
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Figure 4. Injury/regenerationâspecific enhancers and developmental enhancers; genes that initiate the developmental cascade may have injury/regenerationâspecific enhancers. In contrast, genes located downstream of the cascade may reuse developmental enhancers for regeneration |
References [+] :
Anderson,
Loss of Dnmt1 catalytic activity reveals multiple roles for DNA methylation during pancreas development and regeneration.
2009, Pubmed
Anderson, Loss of Dnmt1 catalytic activity reveals multiple roles for DNA methylation during pancreas development and regeneration. 2009, Pubmed
Andersson, An atlas of active enhancers across human cell types and tissues. 2014, Pubmed
Bao, Inhibition of H3K27me3 Histone Demethylase Activity Prevents the Proliferative Regeneration of Zebrafish Lateral Line Neuromasts. 2017, Pubmed
Barnes, A twist of insight - the role of Twist-family bHLH factors in development. 2009, Pubmed
Becker, H3K9me3-Dependent Heterochromatin: Barrier to Cell Fate Changes. 2016, Pubmed
Bely, Evolution of animal regeneration: re-emergence of a field. 2010, Pubmed
Bely, Evolutionary loss of animal regeneration: pattern and process. 2010, Pubmed
Ben-Yair, H3K27me3-mediated silencing of structural genes is required for zebrafish heart regeneration. 2019, Pubmed
Brockes, Comparative aspects of animal regeneration. 2008, Pubmed
Buenrostro, Transposition of native chromatin for fast and sensitive epigenomic profiling of open chromatin, DNA-binding proteins and nucleosome position. 2013, Pubmed
Caine, Regeneration of functional pronephric proximal tubules after partial nephrectomy in Xenopus laevis. 2013, Pubmed , Xenbase
Calo, Modification of enhancer chromatin: what, how, and why? 2013, Pubmed
Chen, H3K9 methylation is a barrier during somatic cell reprogramming into iPSCs. 2013, Pubmed
Cho, Enhancers. 2012, Pubmed
Clevers, Stem cell signaling. An integral program for tissue renewal and regeneration: Wnt signaling and stem cell control. 2014, Pubmed
Curado, Conditional targeted cell ablation in zebrafish: a new tool for regeneration studies. 2007, Pubmed
da Silva, The newt ortholog of CD59 is implicated in proximodistal identity during amphibian limb regeneration. 2002, Pubmed
Del Rio-Tsonis, Regulation of lens regeneration by fibroblast growth factor receptor 1. 1998, Pubmed
Desgrange, Nephron Patterning: Lessons from Xenopus, Zebrafish, and Mouse Studies. 2015, Pubmed , Xenbase
Diep, Identification of adult nephron progenitors capable of kidney regeneration in zebrafish. 2011, Pubmed
Elewa, Reading and editing the Pleurodeles waltl genome reveals novel features of tetrapod regeneration. 2017, Pubmed
ENCODE Project Consortium, An integrated encyclopedia of DNA elements in the human genome. 2012, Pubmed
ENCODE Project Consortium, The ENCODE (ENCyclopedia Of DNA Elements) Project. 2004, Pubmed
Finelli, Epigenetic regulation of sensory axon regeneration after spinal cord injury. 2013, Pubmed
Fischle, Molecular basis for the discrimination of repressive methyl-lysine marks in histone H3 by Polycomb and HP1 chromodomains. 2003, Pubmed
Fishilevich, GeneHancer: genome-wide integration of enhancers and target genes in GeneCards. 2017, Pubmed
Fletcher, hAG-2 and hAG-3, human homologues of genes involved in differentiation, are associated with oestrogen receptor-positive breast tumours and interact with metastasis gene C4.4a and dystroglycan. 2003, Pubmed , Xenbase
Freese, Wnt signaling in development and disease. 2010, Pubmed
Gaub, The histone acetyltransferase p300 promotes intrinsic axonal regeneration. 2011, Pubmed
Goldman, Resolving Heart Regeneration by Replacement Histone Profiling. 2017, Pubmed
Goto, Functional cooperation of lens-specific and nonspecific elements in the delta 1-crystallin enhancer. 1990, Pubmed
Grajevskaja, Analysis of a conditional gene trap reveals that tbx5a is required for heart regeneration in zebrafish. 2018, Pubmed
Haas, Advances in Decoding Axolotl Limb Regeneration. 2017, Pubmed
Harris, Localized epigenetic silencing of a damage-activated WNT enhancer limits regeneration in mature Drosophila imaginal discs. 2016, Pubmed
Harris, Neomycin-induced hair cell death and rapid regeneration in the lateral line of zebrafish (Danio rerio). 2003, Pubmed
Hayashi, Yap1, transcription regulator in the Hippo signaling pathway, is required for Xenopus limb bud regeneration. 2014, Pubmed , Xenbase
Hayashi, Epigenetic modification maintains intrinsic limb-cell identity in Xenopus limb bud regeneration. 2015, Pubmed , Xenbase
Heintzman, Distinct and predictive chromatin signatures of transcriptional promoters and enhancers in the human genome. 2007, Pubmed
Hellsten, The genome of the Western clawed frog Xenopus tropicalis. 2010, Pubmed , Xenbase
Ho, TGF-beta signaling is required for multiple processes during Xenopus tail regeneration. 2008, Pubmed , Xenbase
Huang, C/EBP transcription factors mediate epicardial activation during heart development and injury. 2012, Pubmed
Iismaa, Comparative regenerative mechanisms across different mammalian tissues. 2018, Pubmed
Ivanova, Agr genes, missing in amniotes, are involved in the body appendages regeneration in frog tadpoles. 2013, Pubmed , Xenbase
Jankowski, Sox11 transcription factor modulates peripheral nerve regeneration in adult mice. 2009, Pubmed
Jones, Xenopus: a prince among models for pronephric kidney development. 2005, Pubmed , Xenbase
Kang, Modulation of tissue repair by regeneration enhancer elements. 2016, Pubmed
Kroeger, Using zebrafish to study podocyte genesis during kidney development and regeneration. 2014, Pubmed
Kroll, Transgenic Xenopus embryos from sperm nuclear transplantations reveal FGF signaling requirements during gastrulation. 1996, Pubmed , Xenbase
Kumar, Molecular basis for the nerve dependence of limb regeneration in an adult vertebrate. 2007, Pubmed
Kumar, An orphan gene is necessary for preaxial digit formation during salamander limb development. 2015, Pubmed
Lee, Fgf signaling instructs position-dependent growth rate during zebrafish fin regeneration. 2005, Pubmed
Lévesque, Transforming growth factor: beta signaling is essential for limb regeneration in axolotls. 2007, Pubmed
Lewis, Inhibition of PRC2 activity by a gain-of-function H3 mutation found in pediatric glioblastoma. 2013, Pubmed
Li, DNA methylation in mammals. 2014, Pubmed
Liao, Heart regeneration in adult Xenopus tropicalis after apical resection. 2017, Pubmed , Xenbase
Lienkamp, Using Xenopus to study genetic kidney diseases. 2016, Pubmed , Xenbase
Lin, Requirement for Wnt and FGF signaling in Xenopus tadpole tail regeneration. 2008, Pubmed , Xenbase
Loughner, Organization, evolution and functions of the human and mouse Ly6/uPAR family genes. 2016, Pubmed
Maddaluno, Fibroblast growth factors: key players in regeneration and tissue repair. 2017, Pubmed
Maeshima, Regenerative medicine for the kidney: renotropic factors, renal stem/progenitor cells, and stem cell therapy. 2014, Pubmed
Matoba, Embryonic development following somatic cell nuclear transfer impeded by persisting histone methylation. 2014, Pubmed
Matsuo, Binding of a factor to an enhancer element responsible for the tissue-specific expression of the chicken alpha A-crystallin gene. 1991, Pubmed
McEwen, Early evolution of conserved regulatory sequences associated with development in vertebrates. 2009, Pubmed
Mead, A far-upstream (-70 kb) enhancer mediates Sox9 auto-regulation in somatic tissues during development and adult regeneration. 2013, Pubmed
Mito, Genome-scale profiling of histone H3.3 replacement patterns. 2005, Pubmed
Mito, Histone replacement marks the boundaries of cis-regulatory domains. 2007, Pubmed
Monaghan, Experimentally induced metamorphosis in axolotls reduces regenerative rate and fidelity. 2014, Pubmed
Muñoz, Regeneration of Xenopus laevis spinal cord requires Sox2/3 expressing cells. 2015, Pubmed , Xenbase
Muñoz, Bone regeneration after traumatic skull injury in Xenopus tropicalis. 2018, Pubmed , Xenbase
Nowoshilow, The axolotl genome and the evolution of key tissue formation regulators. 2018, Pubmed , Xenbase
Ochi, Co-accumulation of cis-regulatory and coding mutations during the pseudogenization of the Xenopus laevis homoeologs six6.L and six6.S. 2017, Pubmed , Xenbase
Ochi, Asymmetrically reduced expression of hand1 homeologs involving a single nucleotide substitution in a cis-regulatory element. 2017, Pubmed , Xenbase
Ochi, Evolution of a tissue-specific silencer underlies divergence in the expression of pax2 and pax8 paralogues. 2012, Pubmed , Xenbase
Ogino, Convergence of a head-field selector Otx2 and Notch signaling: a mechanism for lens specification. 2008, Pubmed , Xenbase
Ogino, Comparative genomics-based identification and analysis of cis-regulatory elements. 2012, Pubmed , Xenbase
Ong, Enhancer function: new insights into the regulation of tissue-specific gene expression. 2011, Pubmed
Poliakov, GenomeVISTA--an integrated software package for whole-genome alignment and visualization. 2014, Pubmed
Poss, Advances in understanding tissue regenerative capacity and mechanisms in animals. 2010, Pubmed
Prescott, Enhancer divergence and cis-regulatory evolution in the human and chimp neural crest. 2015, Pubmed
Raciti, Organization of the pronephric kidney revealed by large-scale gene expression mapping. 2008, Pubmed , Xenbase
Raivich, The AP-1 transcription factor c-Jun is required for efficient axonal regeneration. 2004, Pubmed
Rodriguez, Regeneration enhancers: Starting a journey to unravel regulatory events in tissue regeneration. 2020, Pubmed , Xenbase
Sabo, Genome-wide identification of DNaseI hypersensitive sites using active chromatin sequence libraries. 2004, Pubmed
Sasaki, Possible involvement of SINEs in mammalian-specific brain formation. 2008, Pubmed
Schindler, Hand2 elevates cardiomyocyte production during zebrafish heart development and regeneration. 2014, Pubmed
Schubiger, Regeneration and transdetermination: the role of wingless and its regulation. 2010, Pubmed
Session, Genome evolution in the allotetraploid frog Xenopus laevis. 2016, Pubmed , Xenbase
Seto, Erasers of histone acetylation: the histone deacetylase enzymes. 2014, Pubmed
Smith-Bolton, Regenerative growth in Drosophila imaginal discs is regulated by Wingless and Myc. 2009, Pubmed
Stewart, A histone demethylase is necessary for regeneration in zebrafish. 2009, Pubmed
Struebing, Differential Expression of Sox11 and Bdnf mRNA Isoforms in the Injured and Regenerating Nervous Systems. 2017, Pubmed
Suzuki, Identification of distal enhancers for Six2 expression in pronephros. 2015, Pubmed , Xenbase
Suzuki, Arid3a regulates nephric tubule regeneration via evolutionarily conserved regeneration signal-response enhancers. 2019, Pubmed , Xenbase
Suzuki, Regeneration enhancers: A clue to reactivation of developmental genes. 2020, Pubmed , Xenbase
Tanaka, The cellular basis for animal regeneration. 2011, Pubmed , Xenbase
Tanaka, The Molecular and Cellular Choreography of Appendage Regeneration. 2016, Pubmed
Tseng, HDAC activity is required during Xenopus tail regeneration. 2011, Pubmed , Xenbase
Vieira, BRG1-SWI/SNF-dependent regulation of the Wt1 transcriptional landscape mediates epicardial activity during heart development and disease. 2017, Pubmed
Visel, Genomic views of distant-acting enhancers. 2009, Pubmed
Visel, ChIP-seq accurately predicts tissue-specific activity of enhancers. 2009, Pubmed
Whitehead, fgf20 is essential for initiating zebrafish fin regeneration. 2005, Pubmed
Yakushiji, Correlation between Shh expression and DNA methylation status of the limb-specific Shh enhancer region during limb regeneration in amphibians. 2007, Pubmed , Xenbase
Yang, Tissue Regeneration Enhancer Elements: A Way to Unlock Endogenous Healing Power. 2019, Pubmed
Yokoyama, Wnt/beta-catenin signaling has an essential role in the initiation of limb regeneration. 2007, Pubmed , Xenbase
Yu, The Hippo pathway: regulators and regulations. 2013, Pubmed
Yun, Changes in Regenerative Capacity through Lifespan. 2015, Pubmed