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Summary Expression Gene Literature (14) GO Terms (0) Nucleotides (9) Proteins (2) Interactants (76) Wiki
ECB-GENEPAGE-23064959

Papers associated with LOC100891068



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An ancient, highly conserved family of cysteine-rich protein domains revealed by cloning type I and type II murine macrophage scavenger receptors., Freeman M, Ashkenas J, Rees DJ, Kingsley DM, Copeland NG, Jenkins NA, Krieger M., Proc Natl Acad Sci U S A. November 1, 1990; 87 (22): 8810-4.


A novel member of an ancient superfamily: sponge (Geodia cydonium, Porifera) putative protein that features scavenger receptor cysteine-rich repeats., Pancer Z, Munkner J, Muller I, Muller WE., Gene. July 9, 1997; 193 (2): 211-8.


Expression of a src-type protein tyrosine kinase gene, AcSrc1, in the sea urchin embryo., Onodera H, Kobari K, Sakuma M, Sato M, Suyemitsu T, Yamasu K., Dev Growth Differ. February 1, 1999; 41 (1): 19-28.


Major components of a sea urchin block to polyspermy are structurally and functionally conserved., Wong JL, Wessel GM., Evol Dev. January 1, 2004; 6 (3): 134-53.


Unique system of photoreceptors in sea urchin tube feet., Ullrich-Lüter EM, Dupont S, Arboleda E, Hausen H, Arnone MI., Proc Natl Acad Sci U S A. May 17, 2011; 108 (20): 8367-72.


Rapid adaptation to food availability by a dopamine-mediated morphogenetic response., Adams DK, Sewell MA, Angerer RC, Angerer LM., Nat Commun. December 20, 2011; 2 592.        


Genomic clustering and homology between HET-S and the NWD2 STAND protein in various fungal genomes., Daskalov A, Paoletti M, Ness F, Saupe SJ., PLoS One. January 1, 2012; 7 (4): e34854.                    


[Expression of transmitter receptor genes in early development of sea urchin Paracentrotus lividus]., Nikishin DA, Semenova MN, Shmukler IuB., Ontogenez. January 1, 2012; 43 (3): 212-6.


Discovery of sea urchin NGFFFamide receptor unites a bilaterian neuropeptide family., Semmens DC, Beets I, Rowe ML, Blowes LM, Oliveri P, Elphick MR., Open Biol. April 1, 2015; 5 (4): 150030.      


Hemichordate genomes and deuterostome origins., Simakov O, Kawashima T, Marlétaz F, Jenkins J, Koyanagi R, Mitros T, Hisata K, Bredeson J, Shoguchi E, Gyoja F, Yue JX, Chen YC, Freeman RM, Sasaki A, Hikosaka-Katayama T, Sato A, Fujie M, Baughman KW, Levine J, Gonzalez P, Cameron C, Fritzenwanker JH, Pani AM, Goto H, Kanda M, Arakaki N, Yamasaki S, Qu J, Cree A, Ding Y, Dinh HH, Dugan S, Holder M, Jhangiani SN, Kovar CL, Lee SL, Lewis LR, Morton D, Nazareth LV, Okwuonu G, Santibanez J, Chen R, Richards S, Muzny DM, Gillis A, Peshkin L, Wu M, Humphreys T, Su YH, Putnam NH, Schmutz J, Fujiyama A, Yu JK, Tagawa K, Worley KC, Gibbs RA, Kirschner MW, Lowe CJ, Satoh N, Rokhsar DS, Gerhart J., Nature. November 26, 2015; 527 (7579): 459-65.                          


Urbilaterian origin of paralogous GnRH and corazonin neuropeptide signalling pathways., Tian S, Zandawala M, Beets I, Baytemur E, Slade SE, Scrivens JH, Elphick MR., Sci Rep. June 28, 2016; 6 28788.      


Integration of nicotinic acid adenine dinucleotide phosphate (NAADP)-dependent calcium signalling., Guse AH, Diercks BP., J Physiol. July 1, 2018; 596 (14): 2735-2743.


Potential use of compounds from sea cucumbers as MDM2 and CXCR4 inhibitors to control cancer cell growth., Wargasetia TL, Permana S, Widodo N., Exp Ther Med. October 1, 2018; 16 (4): 2985-2991.          


Putative chemosensory receptors are differentially expressed in the sensory organs of male and female crown-of-thorns starfish, Acanthaster planci., Roberts RE, Powell D, Wang T, Hall MH, Motti CA, Cummins SF., BMC Genomics. November 29, 2018; 19 (1): 853.            

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