Expression of the cell surface proteoglycan glypican-5 is developmentally regulated in kidney, limb, and brain.
- Authors
- Saunders, S; Paine-Saunders, S; Lander, A D
- Year
- 1997
- Journal
- Developmental biology
- PMID
- 9331333
- DOI
- 10.1006/dbio.1997.8690
Heparan sulfate is ubiquitous at the cell surface, where it is expressed predominantly on proteoglycans of either the transmembrane syndecan family or the glycosylphosphatidylinositol (GPI)-anchored glypican family, and has been proposed to function as a "coreceptor" for a number of "heparin-binding" growth factors. Although little is known about functional differences between individual members of the glypican gene family, mutations in both the Drosophila gene dally and the human gene for glypican-3 strongly suggest that at least some glypicans do function in cellular growth control and morphogenesis. In particular, deletion of the human glypican-3 gene is responsible for Simpson-Golabi-Behmel syndrome, and its associated pre- and postnatal tissue overgrowth, increased risk of embryonal tumors during early childhood, and numerous visceral and skeletal anomalies. We have identified and characterized, by sequencing of EST clones and products of rapid amplification of cDNA ends (RACE), an mRNA that encodes a 572-amino-acid member of the glypican gene family (glypican-5) that is most related (50% amino acid similarity, 39% identity) to glypican-3. Glypican-5 mRNA is detected as a 3.9- and 4.4-kb transcript in adult and neonatal mouse brain total RNA, and in situ hybridization results localize transcript primarily to restricted regions of the developing central nervous system, limb, and kidney in patterns consistent with a role in the control of cell growth or differentiation. Interestingly, glypican-5 localizes to 13q31-32 of the human genome, deletions of which are associated with human 13q- syndrome, a developmental disorder with a pattern of defects that shows significant overlap with the pattern of glypican-5 expression.
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| Title | Authors | Journal | Year | Link |
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| Blood vessel remodeling in the cerebral cortex induced by binge alcohol intake in mice. | Hasegawa H et al. | β | 2023 | β |
| Chemistry and Function of Glycosaminoglycans in the Nervous System. | Schwartz NB et al. | β | 2023 | β |
| Structural and Functional Impact of Posttranslational Modification of Glypican-3 on Liver Carcinogenesis. | Schepers EJ et al. | β | 2023 | β |
| The Glycosaminoglycan Side Chains and Modular Core Proteins of Heparan Sulphate Proteoglycans and the Varied Ways They Provide Tissue Protection by Regulating Physiological Processes and Cellular Behaviour. | Farrugia BL et al. | β | 2023 | β |
| The Glypican-1/HGF/C-Met and Glypican-1/VEGF/VEGFR2 Ternary Complexes Regulate Hair Follicle Angiogenesis. | Colin-Pierre C et al. | β | 2021 | β |
| An investigation of genetic polymorphisms in heparan sulfate proteoglycan core proteins and key modification enzymes in an Australian Caucasian multiple sclerosis population. | Okolicsanyi RK et al. | β | 2020 | β |
| Heparan Sulfate Proteoglycans Biosynthesis and Post Synthesis Mechanisms Combine Few Enzymes and Few Core Proteins to Generate Extensive Structural and Functional Diversity. | Annaval T et al. | β | 2020 | β |
| Operation spinal cord regeneration: Patterning information residing in extracellular matrix glycosaminoglycans. | Lu A et al. | β | 2020 | β |
| The Role of Glypicans in Cancer Progression and Therapy. | Li N et al. | β | 2020 | β |
| Deletion of Chromosome 13 due to Different Rearrangements and Impact on Phenotype. | Bellucco FT et al. | β | 2019 | β |
| Genomic Regions Associated With Gestation Length Detected Using Whole-Genome Sequence Data Differ Between Dairy and Beef Cattle. | Purfield DC et al. | β | 2019 | β |
| Growth hormone deficiency, aortic dilation, and neurocognitive issues in Feingold syndrome 2. | Muriello M et al. | β | 2019 | β |
| A Critical Review of Methods and Results in the Search for Genetic Contributors to Alcohol Sensitivity. | Schuckit MA | β | 2018 | β |
| An intersection network based on combining SNP coassociation and RNA coexpression networks for feed utilization traits in Japanese Black cattle. | Okada D et al. | β | 2018 | β |
| Proteoglycans in brain development and pathogenesis. | Schwartz NB et al. | β | 2018 | β |
| High Expression of Glypican-1 Predicts Dissemination and Poor Prognosis in Glioblastomas. | Saito T et al. | β | 2017 | β |
| Role of Matricellular Proteins in Disorders of the Central Nervous System. | Jayakumar AR et al. | β | 2017 | β |
| Therapeutically targeting glypican-2 via single-domain antibody-based chimeric antigen receptors and immunotoxins in neuroblastoma. | Li N et al. | β | 2017 | β |
| Extracellular matrix structure. | Theocharis AD et al. | β | 2016 | β |
| Glypican-3 induces a mesenchymal to epithelial transition in human breast cancer cells. | Castillo LF et al. | β | 2016 | β |
| Glypican-5 is a tumor suppressor in non-small cell lung cancer cells. | Guo L et al. | β | 2016 | β |
| Heparan Sulfate: Biosynthesis, Structure, and Function. | Li JP et al. | β | 2016 | β |
| Heparin-binding protein is important for vascular leak in sepsis. | Bentzer P et al. | β | 2016 | β |
| The heparanase/heparan sulfate proteoglycan axis: A potential new therapeutic target in sarcomas. | Cassinelli G et al. | β | 2016 | β |
| Diagnostic and prognostic significance of glypicanΒ 5 and glypicanΒ 6 gene expression levels in gastric adenocarcinoma. | Dinccelik-Aslan M et al. | β | 2015 | β |
| Expanding the phenotype of feingold syndrome-2. | Grote LE et al. | β | 2015 | β |
| A novel microdeletion involving the 13q31.3-q32.1 region in a patient with normal intelligence. | Valdes-Miranda JM et al. | β | 2014 | β |
| Chemistry and function of glycosaminoglycans in the nervous system. | Schwartz NB et al. | β | 2014 | β |
| Glypican-3 binds to Frizzled and plays a direct role in the stimulation of canonical Wnt signaling. | Capurro M et al. | β | 2014 | β |
| Golgi protein 73, not Glypican-3, may be a tumor marker complementary to Ξ±-Fetoprotein for hepatocellular carcinoma diagnosis. | Wang Y et al. | β | 2014 | β |
| Short stature, digit anomalies and dysmorphic facial features are associated with the duplication of miR-17β~β92 cluster. | Hemmat M et al. | β | 2014 | β |
| The role of glypicans in Hedgehog signaling. | Filmus J et al. | β | 2014 | β |
| Boning up on glypicans--opportunities for new insights into bone biology. | Dwivedi PP et al. | β | 2013 | β |
| Copy number variation analysis implicates the cell polarity gene glypican 5 as a human spina bifida candidate gene. | Bassuk AG et al. | β | 2013 | β |
| Heparan sulfate-protein binding specificity. | Nugent MA et al. | β | 2013 | β |
| Identification and expression analysis of zebrafish glypicans during embryonic development. | Gupta M et al. | β | 2013 | β |
| Post-axial polydactyly type A2, overgrowth and autistic traits associated with a chromosome 13q31.3 microduplication encompassing miR-17-92 and GPC5. | Kannu P et al. | β | 2013 | β |
| Structural remodeling of proteoglycans upon retinoic acid-induced differentiation of NCCIT cells. | Gasimli L et al. | β | 2013 | β |
| Sugar glues for broken neurons. | Swarup VP et al. | β | 2013 | β |
| The overexpression of glypican-5 promotes cancer cell migration and is associated with shorter overall survival in non-small cell lung cancer. | Li Y et al. | β | 2013 | β |
| Unbiased discovery of glypican as a receptor for LRRTM4 in regulating excitatory synapse development. | de Wit J et al. | β | 2013 | β |
| Immunohistochemical detection of glypican-5 in paraffin-embedded material: an optimized method for a novel research antibody. | Thway K et al. | β | 2012 | β |
| Models for studies of proteoglycans in kidney pathophysiology. | Harvey SJ | β | 2012 | β |
| Tetrasomy 13q31.1qter due to an inverted duplicated neocentric marker chromosome in a fetus with multiple malformations. | Haddad V et al. | β | 2012 | β |
| Filtering the genes and sorting the glomerular filter: a new piece in the puzzle? | Kleta R et al. | β | 2011 | β |
| Glypican-5 stimulates rhabdomyosarcoma cell proliferation by activating Hedgehog signaling. | Li F et al. | β | 2011 | β |
| Glypican Gene GPC5 Participates in the Behavioral Response to Ethanol: Evidence from Humans, Mice, and Fruit Flies. | Joslyn G et al. | β | 2011 | β |
| The structural role of N-linked glycans on human glypican-1. | Svensson G et al. | β | 2011 | β |
| Altering Glypican-1 levels modulates canonical Wnt signaling during trigeminal placode development. | Shiau CE et al. | β | 2010 | β |
| An interstitial duplication of chromosome 13q31.3q32.1 further delineates the critical region for postaxial polydactyly type A2. | van der Zwaag PA et al. | β | 2010 | β |
| IFN-beta pharmacogenomics in multiple sclerosis. | Vandenbroeck K et al. | β | 2010 | β |
| Roles of heparan sulfate in mammalian brain development current views based on the findings from Ext1 conditional knockout studies. | Yamaguchi Y et al. | β | 2010 | β |
| Submicroscopic genomic alterations in Silver-Russell syndrome and Silver-Russell-like patients. | Bruce S et al. | β | 2010 | β |
| Glypican-1 controls brain size through regulation of fibroblast growth factor signaling in early neurogenesis. | Jen YH et al. | β | 2009 | β |
| Phenotype and 244k array-CGH characterization of chromosome 13q deletions: an update of the phenotypic map of 13q21.1-qter. | Kirchhoff M et al. | β | 2009 | β |
| Twelve new patients with 13q deletion syndrome: genotype-phenotype analyses in progress. | QuΓ©lin C et al. | β | 2009 | β |
| Alpha-fetoprotein and other tumour-associated antigens for immunotherapy of hepatocellular cancer. | Evdokimova VN et al. | β | 2008 | β |
| Glypican-3 is overexpressed in lung squamous cell carcinoma, but not in adenocarcinoma. | Aviel-Ronen S et al. | β | 2008 | β |
| Glypicans. | Filmus J et al. | β | 2008 | β |
| Heparan sulfate proteoglycans: a GAGgle of skeletal-hematopoietic regulators. | Rodgers KD et al. | β | 2008 | β |
| Glypican-3: from the mutations of Simpson-Golabi-Behmel genetic syndrome to a tumor marker for hepatocellular carcinoma. | Jakubovic BD et al. | β | 2007 | β |
| Glypicans are differentially expressed during patterning and neurogenesis of early mouse brain. | Luxardi G et al. | β | 2007 | β |
| Role for amplification and expression of glypican-5 in rhabdomyosarcoma. | Williamson D et al. | β | 2007 | β |
| Comparative analysis of gene expression profiles in intact and damaged regions of human osteoarthritic cartilage. | Sato T et al. | β | 2006 | β |
| The biosynthesis and catabolism of galactosaminoglycans. | Prabhakar V et al. | β | 2006 | β |
| Use of the SST-REX method for the identification of genes expressed at the condensation stage of chondrogenic cell line ATDC5. | Noguchi A et al. | β | 2006 | β |
| Clinical and molecular studies on two further families with Simpson-Golabi-Behmel syndrome. | RodrΓguez-Criado G et al. | β | 2005 | β |
| Glypican-3 as a serum marker for hepatocellular carcinoma. | Capurro M et al. | β | 2005 | β |
| Glypican-3 promotes the growth of hepatocellular carcinoma by stimulating canonical Wnt signaling. | Capurro MI et al. | β | 2005 | β |
| Molecular mechanisms of optic axon guidance. | Inatani M | β | 2005 | β |
| Mosaic monosomy of a neocentric ring chromosome maps brachyphalangy and growth hormone deficiency to 13q31.1-13q32.3. | Amor DJ et al. | β | 2005 | β |
| Heparan sulfate proteoglycans: coordinators of multiple signaling pathways during chondrogenesis. | Kirn-Safran CB et al. | β | 2004 | β |
| Heparan sulfate proteoglycans in glomerular inflammation. | Rops AL et al. | β | 2004 | β |
| Hepatocyte growth factor-mediated renal epithelial branching morphogenesis is regulated by glypican-4 expression. | Karihaloo A et al. | β | 2004 | β |
| Central nervous system lesions that can and those that cannot be repaired with the help of olfactory bulb ensheathing cell transplants. | Nieto-Sampedro M | β | 2003 | β |
| GPC5 is a possible target for the 13q31-q32 amplification detected in lymphoma cell lines. | Yu W et al. | β | 2003 | β |
| Heparan sulfate core proteins in cell-cell signaling. | Kramer KL et al. | β | 2003 | β |
| Localisation of specific heparan sulfate proteoglycans during the proliferative phase of brain development. | Ford-Perriss M et al. | β | 2003 | β |
| CNS Schwann-like glia and functional restoration of damaged spinal cord. | Nieto-Sampedro M | β | 2002 | β |
| Mutation screening of two candidate genes from 13q32 in families affected with Bipolar disorder: human peptide transporter (SLC15A1) and human glypican5 (GPC5). | Maheshwari M et al. | β | 2002 | β |
| Syndecan-3 is a selective regulator of chondrocyte proliferation. | Kirsch T et al. | β | 2002 | β |
| The contribution of in vivo manipulation of gene expression to the understanding of the function of glypicans. | Filmus J | β | 2002 | β |
| The role of glypicans in mammalian development. | Song HH et al. | β | 2002 | β |
| A 4-Mb BAC/PAC contig and complete genomic structure of the GPC5/GPC6 gene cluster on chromosome 13q32. | Veugelers M et al. | β | 2001 | β |
| Biochemical characterization of integral membrane heparan sulfate proteoglycans in Sertoli cells from immature rat testis. | Brucato S et al. | β | 2001 | β |
| Cell-surface heparan sulfate is involved in the repulsive guidance activities of Slit2 protein. | Hu H | β | 2001 | β |
| Developmental roles of the glypicans. | De Cat B et al. | β | 2001 | β |
| Glypicans: proteoglycans with a surprise. | Filmus J et al. | β | 2001 | β |
| Heparan sulfate proteoglycans in the nervous system: their diverse roles in neurogenesis, axon guidance, and synaptogenesis. | Yamaguchi Y | β | 2001 | β |
| Simpson Golabi Behmel syndrome: progress toward understanding the molecular basis for overgrowth, malformation, and cancer predisposition. | DeBaun MR et al. | β | 2001 | β |
| Syndecan-4 deficiency increases susceptibility to kappa-carrageenan-induced renal damage. | Ishiguro K et al. | β | 2001 | β |
| Extracellular matrix cell adhesion peptides: functional applications in orthopedic materials. | LeBaron RG et al. | β | 2000 | β |
| Glypican-4 is an FGF2-binding heparan sulfate proteoglycan expressed in neural precursor cells. | Hagihara K et al. | β | 2000 | β |
| Heparan sulfate proteoglycans on the cell surface: versatile coordinators of cellular functions. | Tumova S et al. | β | 2000 | β |
| Kidney morphogenesis: cellular and molecular regulation. | Kuure S et al. | β | 2000 | β |
| Nervous system proteoglycans as modulators of neurite outgrowth. | Bovolenta P et al. | β | 2000 | β |
| Proteoglycans in the developing brain: new conceptual insights for old proteins. | Bandtlow CE et al. | β | 2000 | β |
| Glypican-3-deficient mice exhibit developmental overgrowth and some of the abnormalities typical of Simpson-Golabi-Behmel syndrome. | Cano-Gauci DF et al. | β | 1999 | β |
| Glypican-6, a new member of the glypican family of cell surface heparan sulfate proteoglycans. | Veugelers M et al. | β | 1999 | β |
| GPC6, a novel member of the glypican gene family, encodes a product structurally related to GPC4 and is colocalized with GPC5 on human chromosome 13. | Paine-Saunders S et al. | β | 1999 | β |
| Expression of the heparan sulfate proteoglycan glypican-1 in the developing rodent. | Litwack ED et al. | β | 1998 | β |
| Heparan sulfate proteoglycans as adhesive and anti-invasive molecules. Syndecans and glypican have distinct functions. | Liu W et al. | β | 1998 | β |
| OCI-5/GPC3, a glypican encoded by a gene that is mutated in the Simpson-Golabi-Behmel overgrowth syndrome, induces apoptosis in a cell line-specific manner. | Gonzalez AD et al. | β | 1998 | β |
| The cell-surface heparan sulfate proteoglycan glypican-1 regulates growth factor action in pancreatic carcinoma cells and is overexpressed in human pancreatic cancer. | Kleeff J et al. | β | 1998 | β |