Literature DB >> 14514671

Identification of a surface for binding to the GDNF-GFR alpha 1 complex in the first cadherin-like domain of RET.

Svend Kjaer1, Carlos F Ibáñez.   

Abstract

The RET receptor tyrosine kinase is activated by binding to a ligand complex formed by a member of the glial cell line-derived neurotrophic factor (GDNF) family of neurotrophic factors bound to its cognate GDNF-family receptor-alpha (GFR alpha) glycosylphosphatidylinositol-linked co-receptor. Molecular modeling studies of the extracellular domain of RET (RETECD) have revealed the existence of four cadherin-like domains (CLD1-4) followed by a cysteine-rich domain. Cross-linking experiments have indicated that the RETECD makes direct contacts with both the GDNF ligand and GFR alpha 1 molecule in the complex, although it has low or no detectable affinity for either component alone. We have exploited sequence and functional divergences between the ectodomains of mammalian and amphibian RET molecules to map binding determinants in the human RETECD responsible for its interaction with the GDNF-GFR alpha 1 complex by homologue-scanning mutagenesis. We found that Xenopus RETECD was unable to bind to GDNF-GFR alpha-1 or neurturin (NTN)-GFR alpha-2 complexes of mammalian origin. However, a chimeric molecule containing CLD1, -2, and -3 from human RETECD, but neither domain alone, had similar binding activity as compared with wild type human RETECD, suggesting the existence of an extended ligand binding surface within the three N-terminal cadherin-like domains of human RETECD. Subsequent loss-of-function experiments at higher resolution identified three small subsets of residues, mapping on the same face of the molecular model of RET CLD1, that were required for the interaction of human RETECD with the GDNF-GFR alpha 1 complex. Additional experiments demonstrated that N-linked glycosylation of human RETECD was not required for ligand binding. Based on these observations, we propose a model for the assembly and architecture of the GDNF-GFR alpha 1-RET complex.

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Year:  2003        PMID: 14514671     DOI: 10.1074/jbc.M309772200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  15 in total

1.  Exon 5 of the RET proto-oncogene: a newly detected risk exon for familial medullary thyroid carcinoma, a novel germ-line mutation Gly321Arg.

Authors:  S Dvorakova; E Vaclavikova; J Duskova; P Vlcek; A Ryska; B Bendlova
Journal:  J Endocrinol Invest       Date:  2005-11       Impact factor: 4.256

Review 2.  Multiple endocrine neoplasia syndromes, children, Hirschsprung's disease and RET.

Authors:  S W Moore; M G Zaahl
Journal:  Pediatr Surg Int       Date:  2008-03-26       Impact factor: 1.827

Review 3.  Structure and physiology of the RET receptor tyrosine kinase.

Authors:  Carlos F Ibáñez
Journal:  Cold Spring Harb Perspect Biol       Date:  2013-02-01       Impact factor: 10.005

4.  The structure of the glial cell line-derived neurotrophic factor-coreceptor complex: insights into RET signaling and heparin binding.

Authors:  Vimal Parkash; Veli-Matti Leppänen; Heidi Virtanen; Jaana M Jurvansuu; Maxim M Bespalov; Yulia A Sidorova; Pia Runeberg-Roos; Mart Saarma; Adrian Goldman
Journal:  J Biol Chem       Date:  2008-10-08       Impact factor: 5.157

5.  Structure and biophysical characterization of the human full-length neurturin-GFRa2 complex: A role for heparan sulfate in signaling.

Authors:  Jenny Sandmark; Göran Dahl; Linda Öster; Bingze Xu; Patrik Johansson; Tomas Akerud; Anna Aagaard; Pia Davidsson; Janna M Bigalke; Maria Sörhede Winzell; G Jonah Rainey; Robert G Roth
Journal:  J Biol Chem       Date:  2018-02-02       Impact factor: 5.157

6.  The structure of GFRalpha1 domain 3 reveals new insights into GDNF binding and RET activation.

Authors:  Veli-Matti Leppänen; Maxim M Bespalov; Pia Runeberg-Roos; Ulo Puurand; Andres Merits; Mart Saarma; Adrian Goldman
Journal:  EMBO J       Date:  2004-03-25       Impact factor: 11.598

7.  Mammal-restricted elements predispose human RET to folding impairment by HSCR mutations.

Authors:  Svend Kjaer; Sarah Hanrahan; Nick Totty; Neil Q McDonald
Journal:  Nat Struct Mol Biol       Date:  2010-05-16       Impact factor: 15.369

Review 8.  Molecular basis of medullary thyroid carcinoma: the role of RET polymorphisms.

Authors:  Lucieli Ceolin; Débora R Siqueira; Mírian Romitti; Carla V Ferreira; Ana Luiza Maia
Journal:  Int J Mol Sci       Date:  2011-12-27       Impact factor: 5.923

9.  A two-site flexible clamp mechanism for RET-GDNF-GFRα1 assembly reveals both conformational adaptation and strict geometric spacing.

Authors:  Sarah E Adams; Andrew G Purkiss; Phillip P Knowles; Andrea Nans; David C Briggs; Annabel Borg; Christopher P Earl; Kerry M Goodman; Agata Nawrotek; Aaron J Borg; Pauline B McIntosh; Francesca M Houghton; Svend Kjær; Neil Q McDonald
Journal:  Structure       Date:  2021-01-22       Impact factor: 5.006

10.  Exon Skipping in the RET Gene Encodes Novel Isoforms That Differentially Regulate RET Protein Signal Transduction.

Authors:  Nicole A Gabreski; Janki K Vaghasia; Silvia S Novakova; Neil Q McDonald; Brian A Pierchala
Journal:  J Biol Chem       Date:  2016-05-23       Impact factor: 5.157

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