Literature DB >> 10842075

Expression of the vertebrate Slit gene family and their putative receptors, the Robo genes, in the developing murine kidney.

M Piper1, K Georgas, T Yamada, M Little.   

Abstract

The slit (sli) gene, encoding a secreted glycoprotein, has been demonstrated to play a vital role in axonal guidance in Drosophila melanogaster by acting as a signalling ligand for the robo receptor (Rothberg, J.M., Jacobs, J.R., Goodman, C.S., Artavanis-Tsakonas, S., 1990. slit: an extracellular protein necessary for development of midline glia and commissural axon pathways contains both EGF and LRR domains. Genes Dev. 4, 2169-2187; Kidd, T., Bland, K.S., Goodman, C. S., 1999. Slit is the midline repellent for the robo receptor in Drosophila. Cell 96, 785-794). Multiple homologs of both sli and robo have been identified in vertebrates and are thought to play similar roles to their fly counterparts in neural development (Brose, K., Bland, K.S., Wang, K.H., Arnott, D., Henzel, W., Goodman, C.S., Tessier-Lavigne, M., Kidd, T., 1999. Slit proteins bind Robo receptors and have an evolutionarily conserved role in repulsive axon guidance. Cell 96, 795-806). Slit2 has been shown to bind Robo1, mediating both neuronal and axonal guidance in the developing central nervous system (CNS), (Brose et al., 1999; Hu, H., 1999. Chemorepulsion of neuronal migration by Slit2 in the developing mammalian forebrain. Neuron 23, 703-711). Importantly, both gene families display distinct expression patterns outside the CNS (Holmes, G.P., Negus, K., Burridge, L., Raman, S., Algar, E., Yamada, T., Little, M.H., 1998. Distinct but overlapping expression patterns of two vertebrate slit homologs implies functional roles in CNS development and organogenesis. Mech. Dev. 79, 57-72; Yuan, W., Zhou, L., Chen, J.H., Wu, J.Y., Rao, Y., Ornitz, D.M., 1999. The mouse SLIT family: secreted ligands for ROBO expressed in patterns that suggest a role in morphogenesis and axon guidance. Dev. Biol. 212, 290-306). Using in situ hybridization on metanephric explant cultures and urogenital tract sections, the expression patterns of Slit1, 2, 3 and Robo1 and 2 were investigated during murine metanephric development. Slit1 was expressed in the metanephric mesenchyme (MM) surrounding the invading ureteric tree (UT). Slit2 was expressed at the tips of the UT and both Slit2 and Slit3 were expressed at the far proximal end of the comma shaped and S-shaped bodies. Expression of Robo1 was initially diffuse throughout the MM, then upregulated in the pretubular aggregates, and maintained at the distal end of the comma and S-shaped bodies. Robo2 was detected in the induced MM surrounding the arborizing UT tips and later in the proximal end of the S-shaped bodies. Coincident expression of Robo1 with Slit1 in the metanephric mesenchyme and Robo2, Slit2 and Slit3 in the far proximal end of the S-shaped bodies was observed during metanephric development.

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Year:  2000        PMID: 10842075     DOI: 10.1016/s0925-4773(00)00313-0

Source DB:  PubMed          Journal:  Mech Dev        ISSN: 0925-4773            Impact factor:   1.882


  32 in total

1.  Identification of direct negative cross-talk between the SLIT2 and bone morphogenetic protein-Gremlin signaling pathways.

Authors:  Kathleen E Tumelty; Nathan Higginson-Scott; Xueping Fan; Piyush Bajaj; Kelly M Knowlton; Michael Shamashkin; Anthony J Coyle; Weining Lu; Stephen P Berasi
Journal:  J Biol Chem       Date:  2018-01-09       Impact factor: 5.157

2.  Alternatively spliced Robo2 isoforms in zebrafish and rat.

Authors:  Ertugrul Dalkic; Cem Kuscu; Ceren Sucularli; Iraz T Aydin; Kamil C Akcali; Ozlen Konu
Journal:  Dev Genes Evol       Date:  2006-04-20       Impact factor: 0.900

3.  An integrated genome screen identifies the Wnt signaling pathway as a major target of WT1.

Authors:  Marianne K-H Kim; Thomas J McGarry; Pilib O Broin; Jared M Flatow; Aaron A-J Golden; Jonathan D Licht
Journal:  Proc Natl Acad Sci U S A       Date:  2009-06-22       Impact factor: 11.205

Review 4.  The role of Slit-Robo signaling in the regulation of tissue barriers.

Authors:  Ming-Fang Wu; Chen-Yi Liao; Ling-Yi Wang; Jinghua Tsai Chang
Journal:  Tissue Barriers       Date:  2017-06-08

5.  Human placental expression of SLIT/ROBO signaling cues: effects of preeclampsia and hypoxia.

Authors:  Wu-Xiang Liao; Louise C Laurent; Sally Agent; Jennifer Hodges; Dong-Bao Chen
Journal:  Biol Reprod       Date:  2012-04-12       Impact factor: 4.285

6.  Involvement of the SLIT/ROBO pathway in follicle development in the fetal ovary.

Authors:  Rachel E Dickinson; Lynn Hryhorskyj; Hannah Tremewan; Kirsten Hogg; Axel A Thomson; Alan S McNeilly; W Colin Duncan
Journal:  Reproduction       Date:  2009-11-09       Impact factor: 3.906

7.  Inhibitory effects of Robo2 on nephrin: a crosstalk between positive and negative signals regulating podocyte structure.

Authors:  Xueping Fan; Qinggang Li; Anna Pisarek-Horowitz; Hila Milo Rasouly; Xiangling Wang; Ramon G Bonegio; Hang Wang; Margaret McLaughlin; Steve Mangos; Raghu Kalluri; Lawrence B Holzman; Iain A Drummond; Dennis Brown; David J Salant; Weining Lu
Journal:  Cell Rep       Date:  2012-07-12       Impact factor: 9.423

8.  Systematic analysis of a novel human renal glomerulus-enriched gene expression dataset.

Authors:  Maja T Lindenmeyer; Felix Eichinger; Kontheari Sen; Hans-Joachim Anders; Ilka Edenhofer; Deborah Mattinzoli; Matthias Kretzler; Maria P Rastaldi; Clemens D Cohen
Journal:  PLoS One       Date:  2010-07-12       Impact factor: 3.240

9.  Neuropilin 1-Sema signaling regulates crossing of cingulate pioneering axons during development of the corpus callosum.

Authors:  Michael Piper; Céline Plachez; Oressia Zalucki; Thomas Fothergill; Guy Goudreau; Reha Erzurumlu; Chenghua Gu; Linda J Richards
Journal:  Cereb Cortex       Date:  2009-04-08       Impact factor: 5.357

10.  Multiple non-cell-autonomous defects underlie neocortical callosal dysgenesis in Nfib-deficient mice.

Authors:  Michael Piper; Randal X Moldrich; Charlotta Lindwall; Erica Little; Guy Barry; Sharon Mason; Nana Sunn; Nyoman Dana Kurniawan; Richard M Gronostajski; Linda J Richards
Journal:  Neural Dev       Date:  2009-12-04       Impact factor: 3.842

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