XB-ART-55965
BMC Genomics
2019 May 17;201:386. doi: 10.1186/s12864-019-5773-3.
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A deficiency in SUMOylation activity disrupts multiple pathways leading to neural tube and heart defects in Xenopus embryos.
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BACKGROUND: Adenovirus protein, Gam1, triggers the proteolytic destruction of the E1 SUMO-activating enzyme. Microinjection of an empirically determined amount of Gam1 mRNA into one-cell Xenopus embryos can reduce SUMOylation activity to undetectable, but nonlethal, levels, enabling an examination of the role of this post-translational modification during early vertebrate development. RESULTS: We find that SUMOylation-deficient embryos consistently exhibit defects in neural tube and heart development. We have measured differences in gene expression between control and embryos injected with Gam1 mRNA at three developmental stages: early gastrula (immediately following the initiation of zygotic transcription), late gastrula (completion of the formation of the three primary germ layers), and early neurula (appearance of the neural plate). Although changes in gene expression are widespread and can be linked to many biological processes, three pathways, non-canonical Wnt/PCP, snail/twist, and Ets-1, are especially sensitive to the loss of SUMOylation activity and can largely account for the predominant phenotypes of Gam1 embryos. SUMOylation appears to generate different pools of a given transcription factor having different specificities with this post-translational modification involved in the regulation of more complex, as opposed to housekeeping, processes. CONCLUSIONS: We have identified changes in gene expression that underlie the neural tube and heart phenotypes resulting from depressed SUMOylation activity. Notably, these developmental defects correspond to the two most frequently occurring congenital birth defects in humans, strongly suggesting that perturbation of SUMOylation, either globally or of a specific protein, may frequently be the origin of these pathologies.
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none Office of Research University of Notre Dame (US)
Species referenced: Xenopus laevis
Genes referenced: myc sumo1 ube2i
???displayArticle.gses??? GSE116164: NCBI
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References [+] :
Abu-Elmagd, Frizzled-7 is required for Xenopus heart development. 2017, Pubmed , Xenbase
Afouda, GATA transcription factors integrate Wnt signalling during heart development. 2008, Pubmed , Xenbase
Alkuraya, SUMO1 haploinsufficiency leads to cleft lip and palate. 2006, Pubmed
Altmann, Microarray-based analysis of early development in Xenopus laevis. 2001, Pubmed , Xenbase
Andrae, Role of platelet-derived growth factors in physiology and medicine. 2008, Pubmed
Ashburner, Gene ontology: tool for the unification of biology. The Gene Ontology Consortium. 2000, Pubmed
Ataliotis, PDGF signalling is required for gastrulation of Xenopus laevis. 1995, Pubmed , Xenbase
Bax, Cardiac malformations in Pdgfralpha mutant embryos are associated with increased expression of WT1 and Nkx2.5 in the second heart field. 2010, Pubmed
Beaudin, Insights into metabolic mechanisms underlying folate-responsive neural tube defects: a minireview. 2009, Pubmed
Bloomekatz, Platelet-derived growth factor (PDGF) signaling directs cardiomyocyte movement toward the midline during heart tube assembly. 2017, Pubmed
Boggio, A mechanism for inhibiting the SUMO pathway. 2004, Pubmed
Boggio, Targeting SUMO E1 to ubiquitin ligases: a viral strategy to counteract sumoylation. 2007, Pubmed
Cao, SUMOylation of HMGA2: selective destabilization of promyelocytic leukemia protein via proteasome. 2008, Pubmed
Castillo-Lluva, SUMOylation of the GTPase Rac1 is required for optimal cell migration. 2010, Pubmed
Cha, The role of FoxC1 in early Xenopus development. 2007, Pubmed , Xenbase
Chen, VEGF amplifies transcription through ETS1 acetylation to enable angiogenesis. 2017, Pubmed
Chu, Wnt proteins can direct planar cell polarity in vertebrate ectoderm. 2016, Pubmed , Xenbase
Chymkowitch, SUMO-regulated transcription: challenging the dogma. 2015, Pubmed
Cui, Xwnt-8b: a maternally expressed Xenopus Wnt gene with a potential role in establishing the dorsoventral axis. 1995, Pubmed , Xenbase
Dallas, Gene expression levels assessed by oligonucleotide microarray analysis and quantitative real-time RT-PCR -- how well do they correlate? 2005, Pubmed
Damm, PDGF-A controls mesoderm cell orientation and radial intercalation during Xenopus gastrulation. 2011, Pubmed , Xenbase
Delaune, Neural induction in Xenopus requires early FGF signalling in addition to BMP inhibition. 2005, Pubmed , Xenbase
Djiane, Role of frizzled 7 in the regulation of convergent extension movements during gastrulation in Xenopus laevis. 2000, Pubmed , Xenbase
Du, Identification of distinct classes and functional domains of Wnts through expression of wild-type and chimeric proteins in Xenopus embryos. 1995, Pubmed , Xenbase
Eifler, Mapping the SUMOylated landscape. 2015, Pubmed
Eifler, SUMOylation-Mediated Regulation of Cell Cycle Progression and Cancer. 2015, Pubmed
El-Rass, Disruption of pdgfra alters endocardial and myocardial fusion during zebrafish cardiac assembly. 2017, Pubmed
Evdokimov, Loss of SUMO1 in mice affects RanGAP1 localization and formation of PML nuclear bodies, but is not lethal as it can be compensated by SUMO2 or SUMO3. 2008, Pubmed
Flotho, Sumoylation: a regulatory protein modification in health and disease. 2013, Pubmed
Garriock, Wnt11-R, a protein closely related to mammalian Wnt11, is required for heart morphogenesis in Xenopus. 2005, Pubmed , Xenbase
Gessert, The multiple phases and faces of wnt signaling during cardiac differentiation and development. 2010, Pubmed
Gray, Diversification of the expression patterns and developmental functions of the dishevelled gene family during chordate evolution. 2009, Pubmed , Xenbase
Hamblet, Dishevelled 2 is essential for cardiac outflow tract development, somite segmentation and neural tube closure. 2002, Pubmed
Hay, SUMO: a history of modification. 2005, Pubmed
Hendriks, Uncovering global SUMOylation signaling networks in a site-specific manner. 2014, Pubmed
Hock, Regulation of the p53 pathway by ubiquitin and related proteins. 2010, Pubmed
Hollenhorst, DNA specificity determinants associate with distinct transcription factor functions. 2009, Pubmed
Hotz, Epithelial to mesenchymal transition: expression of the regulators snail, slug, and twist in pancreatic cancer. 2007, Pubmed
Ji, Regulation of the Ets-1 transcription factor by sumoylation and ubiquitinylation. 2007, Pubmed
Kanakousaki, A differential requirement for SUMOylation in proliferating and non-proliferating cells during Drosophila development. 2012, Pubmed
Kang, Epithelial-mesenchymal transitions: twist in development and metastasis. 2004, Pubmed
Keller, The cellular basis of epiboly: an SEM study of deep-cell rearrangement during gastrulation in Xenopus laevis. 1980, Pubmed , Xenbase
Keller, Regional expression, pattern and timing of convergence and extension during gastrulation of Xenopus laevis. 1988, Pubmed , Xenbase
Keller, Dynamic determinations: patterning the cell behaviours that close the amphibian blastopore. 2008, Pubmed , Xenbase
Kim, Expression of sumoylation deficient Nkx2.5 mutant in Nkx2.5 haploinsufficient mice leads to congenital heart defects. 2011, Pubmed
Kim, Enhanced desumoylation in murine hearts by overexpressed SENP2 leads to congenital heart defects and cardiac dysfunction. 2012, Pubmed
Kubota, Oncogenic Ras abrogates MEK SUMOylation that suppresses the ERK pathway and cell transformation. 2011, Pubmed
Langfelder, WGCNA: an R package for weighted correlation network analysis. 2008, Pubmed
Lee, Post-translational Modifications in Heart Failure: Small Changes, Big Impact. 2016, Pubmed
Lee, Controlling hematopoiesis through sumoylation-dependent regulation of a GATA factor. 2009, Pubmed
Liu, NF-κB repression by PIAS3 mediated RelA SUMOylation. 2012, Pubmed
Lomelí, Emerging roles of the SUMO pathway in development. 2011, Pubmed , Xenbase
Long, Pc2-mediated sumoylation of Smad-interacting protein 1 attenuates transcriptional repression of E-cadherin. 2005, Pubmed
Luehders, The small leucine-rich repeat secreted protein Asporin induces eyes in Xenopus embryos through the IGF signalling pathway. 2015, Pubmed , Xenbase
Ma, Identification of small ubiquitin-like modifier substrates with diverse functions using the Xenopus egg extract system. 2014, Pubmed , Xenbase
Ma, Claudin-4 controls the proliferation, apoptosis, migration and in vivo growth of MCF-7 breast cancer cells. 2015, Pubmed
Macrì, Hmga2 is required for neural crest cell specification in Xenopus laevis. 2016, Pubmed , Xenbase
Makhnevych, Global map of SUMO function revealed by protein-protein interaction and genetic networks. 2009, Pubmed
Malik, Small ubiquitin-like modifier (SUMO)-mediated repression of the Xenopus Oocyte 5 S rRNA genes. 2014, Pubmed , Xenbase
Medina, Xenopus frizzled 7 can act in canonical and non-canonical Wnt signaling pathways: implications on early patterning and morphogenesis. 2000, Pubmed , Xenbase
Mendler, The Ubiquitin-Like SUMO System and Heart Function: From Development to Disease. 2016, Pubmed
Milanini-Mongiat, Identification of two Sp1 phosphorylation sites for p42/p44 mitogen-activated protein kinases: their implication in vascular endothelial growth factor gene transcription. 2002, Pubmed
Moncho-Amor, DUSP1/MKP1 promotes angiogenesis, invasion and metastasis in non-small-cell lung cancer. 2011, Pubmed
Monzen, A crucial role of a high mobility group protein HMGA2 in cardiogenesis. 2008, Pubmed , Xenbase
Moreno-Ayala, PIAS-like protein Zimp7 is required for the restriction of the zebrafish organizer and mesoderm development. 2015, Pubmed
Nacerddine, The SUMO pathway is essential for nuclear integrity and chromosome segregation in mice. 2005, Pubmed
Nagel, Guidance of mesoderm cell migration in the Xenopus gastrula requires PDGF signaling. 2004, Pubmed , Xenbase
Neilsen, Identification of ANKRD11 as a p53 coactivator. 2008, Pubmed
Nentwich, Downstream of FGF during mesoderm formation in Xenopus: the roles of Elk-1 and Egr-1. 2009, Pubmed , Xenbase
Nie, Dual developmental role of transcriptional regulator Ets1 in Xenopus cardiac neural crest vs. heart mesoderm. 2015, Pubmed , Xenbase
Nie, Genetic and proteomic evidence for roles of Drosophila SUMO in cell cycle control, Ras signaling, and early pattern formation. 2009, Pubmed
Nowak, Ubc9 regulates mitosis and cell survival during zebrafish development. 2006, Pubmed
Ossipova, Planar polarization of Vangl2 in the vertebrate neural plate is controlled by Wnt and Myosin II signaling. 2015, Pubmed , Xenbase
Ossipova, The involvement of PCP proteins in radial cell intercalations during Xenopus embryonic development. 2015, Pubmed , Xenbase
Pandur, Wnt-11 activation of a non-canonical Wnt signalling pathway is required for cardiogenesis. 2002, Pubmed , Xenbase
Penzo-Mendèz, Activation of Gbetagamma signaling downstream of Wnt-11/Xfz7 regulates Cdc42 activity during Xenopus gastrulation. 2003, Pubmed , Xenbase
Pera, Neural and head induction by insulin-like growth factor signals. 2001, Pubmed , Xenbase
Pires, NF-kappaB Is Involved in the Regulation of EMT Genes in Breast Cancer Cells. 2017, Pubmed
Polusani, Cell coupling mediated by connexin 26 selectively contributes to reduced adhesivity and increased migration. 2016, Pubmed
Ramsbottom, Vangl2-regulated polarisation of second heart field-derived cells is required for outflow tract lengthening during cardiac development. 2014, Pubmed
Rao, An updated overview on Wnt signaling pathways: a prelude for more. 2010, Pubmed
Santiago, Ets-1 stimulates platelet-derived growth factor A-chain gene transcription and vascular smooth muscle cell growth via cooperative interactions with Sp1. 2004, Pubmed
Session, Genome evolution in the allotetraploid frog Xenopus laevis. 2016, Pubmed , Xenbase
Sharrocks, The ETS-domain transcription factor family. 2001, Pubmed
Shook, Large, long range tensile forces drive convergence during Xenopus blastopore closure and body axis elongation. 2018, Pubmed , Xenbase
Smith, Xwnt11 and the regulation of gastrulation in Xenopus. 2000, Pubmed , Xenbase
Soriano, The PDGF alpha receptor is required for neural crest cell development and for normal patterning of the somites. 1997, Pubmed
Spengler, Sumoylation inhibits cleavage of Sp1 N-terminal negative regulatory domain and inhibits Sp1-dependent transcription. 2006, Pubmed
Tan, Regulation of transcription factor Twist expression by the DNA architectural protein high mobility group A2 during epithelial-to-mesenchymal transition. 2012, Pubmed
Tanegashima, WGEF activates Rho in the Wnt-PCP pathway and controls convergent extension in Xenopus gastrulation. 2008, Pubmed , Xenbase
Tao, Maternal wnt11 activates the canonical wnt signaling pathway required for axis formation in Xenopus embryos. 2005, Pubmed , Xenbase
Terada, Sumoylation controls retinal progenitor proliferation by repressing cell cycle exit in Xenopus laevis. 2010, Pubmed , Xenbase
Thuault, HMGA2 and Smads co-regulate SNAIL1 expression during induction of epithelial-to-mesenchymal transition. 2008, Pubmed
Tootle, Post-translational modifications influence transcription factor activity: a view from the ETS superfamily. 2005, Pubmed
Torres, Activities of the Wnt-1 class of secreted signaling factors are antagonized by the Wnt-5A class and by a dominant negative cadherin in early Xenopus development. 1996, Pubmed , Xenbase
Ueno, Planar cell polarity genes and neural tube closure. 2003, Pubmed , Xenbase
Ungar, Wnt4 affects morphogenesis when misexpressed in the zebrafish embryo. 1995, Pubmed , Xenbase
Vandewalle, SIP1/ZEB2 induces EMT by repressing genes of different epithelial cell-cell junctions. 2005, Pubmed
VanDusen, Twist factor regulation of non-cardiomyocyte cell lineages in the developing heart. 2012, Pubmed
van Vliet, Tissue specific requirements for WNT11 in developing outflow tract and dorsal mesenchymal protrusion. 2017, Pubmed
Wallingford, Planar cell polarity, ciliogenesis and neural tube defects. 2006, Pubmed
Wallingford, Neural tube closure requires Dishevelled-dependent convergent extension of the midline. 2002, Pubmed , Xenbase
Wang, Defective sumoylation pathway directs congenital heart disease. 2011, Pubmed
Wang, SUMO2 is essential while SUMO3 is dispensable for mouse embryonic development. 2014, Pubmed
Wang, The Role of Snail in EMT and Tumorigenesis. 2013, Pubmed
Wen, Planar cell polarity pathway genes and risk for spina bifida. 2010, Pubmed , Xenbase
Wohlschlegel, Global analysis of protein sumoylation in Saccharomyces cerevisiae. 2004, Pubmed
Wu, High mobility group nucleosomal binding domain 2 (HMGN2) SUMOylation by the SUMO E3 ligase PIAS1 decreases the binding affinity to nucleosome core particles. 2014, Pubmed
Yu, Frizzled 2 and frizzled 7 function redundantly in convergent extension and closure of the ventricular septum and palate: evidence for a network of interacting genes. 2012, Pubmed
Yukita, XSUMO-1 is required for normal mesoderm induction and axis elongation during early Xenopus development. 2007, Pubmed , Xenbase
Zallen, Planar polarity and tissue morphogenesis. 2007, Pubmed
Zhang, Sumo-1 function is dispensable in normal mouse development. 2008, Pubmed
Zhang, Different thresholds of Wnt-Frizzled 7 signaling coordinate proliferation, morphogenesis and fate of endoderm progenitor cells. 2013, Pubmed , Xenbase
Zhao, GPS-SUMO: a tool for the prediction of sumoylation sites and SUMO-interaction motifs. 2014, Pubmed
Zhou, Modulation of morphogenesis by noncanonical Wnt signaling requires ATF/CREB family-mediated transcriptional activation of TGFbeta2. 2007, Pubmed