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Summary Anatomy Item Literature (186) Expression Attributions Wiki
XB-ANAT-3415

Papers associated with parachordal

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Xenopus development from late gastrulation to feeding tadpole in simulated microgravity., Olson WM., Int J Dev Biol. January 1, 2010; 54 (1): 167-74.  


The Mre11/Rad50/Nbs1 complex functions in resection-based DNA end joining in Xenopus laevis., Taylor EM., Nucleic Acids Res. January 1, 2010; 38 (2): 441-54.        


Exogenously expressed human Ku70 stabilizes Ku80 in Xenopus oocytes and induces heterologous DNA-PK catalytic activity., Kanungo J., Mol Cell Biochem. May 1, 2010; 338 (1-2): 291-8.


FMR1/FXR1 and the miRNA pathway are required for eye and neural crest development., Gessert S., Dev Biol. May 1, 2010; 341 (1): 222-35.                                                              


Claudin-like protein 24 interacts with the VEGFR-2 and VEGFR-3 pathways and regulates lymphatic vessel development., Saharinen P., Genes Dev. May 1, 2010; 24 (9): 875-80.    


Regulation of the voltage-insensitive step of HERG activation by extracellular pH., Zhou Q., Am J Physiol Heart Circ Physiol. June 1, 2010; 298 (6): H1710-8.


Proton block of the CLC-5 Cl-/H+ exchanger., Picollo A., J Gen Physiol. June 1, 2010; 135 (6): 653-9.        


Kinetic mechanism of the Rtt109-Vps75 histone acetyltransferase-chaperone complex., Albaugh BN., Biochemistry. August 3, 2010; 49 (30): 6375-85.


Structure and mechanism of proton transport through the transmembrane tetrameric M2 protein bundle of the influenza A virus., Acharya R., Proc Natl Acad Sci U S A. August 24, 2010; 107 (34): 15075-80.


A regulatory calcium-binding site at the subunit interface of CLC-K kidney chloride channels., Gradogna A., J Gen Physiol. September 1, 2010; 136 (3): 311-23.              


Role of synectin in lymphatic development in zebrafish and frogs., Hermans K., Blood. October 28, 2010; 116 (17): 3356-66.


A pH-dependent conformational ensemble mediates proton transport through the influenza A/M2 protein., Polishchuk AL., Biochemistry. November 30, 2010; 49 (47): 10061-71.


Deceleration of the E1P-E2P transition and ion transport by mutation of potentially salt bridge-forming residues Lys-791 and Glu-820 in gastric H+/K+-ATPase., Dürr KL., J Biol Chem. December 10, 2010; 285 (50): 39366-79.


Analysis of the expression of retinoic acid metabolising genes during Xenopus laevis organogenesis., Lynch J., Gene Expr Patterns. January 1, 2011; 11 (1-2): 112-7.                              


Trapping and dissociation of propafenone derivatives in HERG channels., Windisch A., Br J Pharmacol. April 1, 2011; 162 (7): 1542-52.


Transcription factor COUP-TFII is indispensable for venous and lymphatic development in zebrafish and Xenopus laevis., Aranguren XL., Biochem Biophys Res Commun. June 24, 2011; 410 (1): 121-6.        


hnRNP K post-transcriptionally co-regulates multiple cytoskeletal genes needed for axonogenesis., Liu Y., Development. July 1, 2011; 138 (14): 3079-90.                


Forced gating motions by a substituted titratable side chain at the bundle crossing of a potassium channel., Khurana A., J Biol Chem. October 21, 2011; 286 (42): 36686-93.


A new type of lectin discovered in a fish, flathead (Platycephalus indicus), suggests an alternative functional role for mammalian plasma kallikrein., Tsutsui S., Glycobiology. December 1, 2011; 21 (12): 1580-7.            


High-resolution whole-mount in situ hybridization using Quantum Dot nanocrystals., Ioannou A., J Biomed Biotechnol. January 1, 2012; 2012 627602.        


Protein kinase C mediated pH(i)-regulation of ROMK1 channels via a phosphatidylinositol-4,5-bisphosphate-dependent mechanism., Huang PT., J Mol Model. July 1, 2012; 18 (7): 2929-41.


A unique alkaline pH-regulated and fatty acid-activated tandem pore domain potassium channel (K₂P) from a marine sponge., Wells GD., J Exp Biol. July 15, 2012; 215 (Pt 14): 2435-44.


Targeting protein for xenopus kinesin-like protein 2 (TPX2) regulates γ-histone 2AX (γ-H2AX) levels upon ionizing radiation., Neumayer G., J Biol Chem. December 7, 2012; 287 (50): 42206-22.


Budding yeast greatwall and endosulfines control activity and spatial regulation of PP2A(Cdc55) for timely mitotic progression., Juanes MA., PLoS Genet. January 1, 2013; 9 (7): e1003575.              


Phosphorylation of rat aquaporin-4 at Ser(111) is not required for channel gating., Assentoft M., Glia. July 1, 2013; 61 (7): 1101-12.


Significant modulation of the hepatic proteome induced by exposure to low temperature in Xenopus laevis., Nagasawa K., Biol Open. August 21, 2013; 2 (10): 1057-69.                  


Gloeobacter rhodopsin, limitation of proton pumping at high electrochemical load., Vogt A., Biophys J. November 5, 2013; 105 (9): 2055-63.


Carbohydrate metabolism during vertebrate appendage regeneration: what is its role? How is it regulated?: A postulation that regenerating vertebrate appendages facilitate glycolytic and pentose phosphate pathways to fuel macromolecule biosynthesis., Love NR., Bioessays. January 1, 2014; 36 (1): 27-33.    


Functional characterization of zebrafish K2P18.1 (TRESK) two-pore-domain K+ channels., Rahm AK., Naunyn Schmiedebergs Arch Pharmacol. March 1, 2014; 387 (3): 291-300.


Planar polarization of Vangl2 in the vertebrate neural plate is controlled by Wnt and Myosin II signaling., Ossipova O., Biol Open. April 24, 2015; 4 (6): 722-30.                        


The role of folate metabolism in orofacial development and clefting., Wahl SE., Dev Biol. September 1, 2015; 405 (1): 108-22.                                  


Control of vertebrate core planar cell polarity protein localization and dynamics by Prickle 2., Butler MT., Development. October 1, 2015; 142 (19): 3429-39.


The involvement of PCP proteins in radial cell intercalations during Xenopus embryonic development., Ossipova O., Dev Biol. December 15, 2015; 408 (2): 316-27.                              


Sequence and timing of early cranial skeletal development in Xenopus laevis., Lukas P., J Morphol. January 1, 2018; 279 (1): 62-74.            


RNA helicase Mov10 is essential for gastrulation and central nervous system development., Skariah G., Dev Dyn. April 1, 2018; 247 (4): 660-671.              


Normal development in Xenopus laevis: A complementary staging table for the skull based on cartilage and bone., MacKenzie EM., Dev Dyn. August 1, 2022; 251 (8): 1340-1356.          

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