Exoskeletons across the Pancrustacea: Comparative Morphology, Physiology, Biochemistry and Genetics.
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A. Sagi | Amir Sagi | Robert Roer | Shai Abehsera | R. Roer | Shai Abehsera
[1] M. McCartney,et al. Identifying exoskeleton proteins in the blue crab from an expressed sequence tag (EST) library. , 2006, Integrative and comparative biology.
[2] J. Willis,et al. Proteomic analysis of cast cuticles from Anopheles gambiae by tandem mass spectrometry. , 2007, Insect biochemistry and molecular biology.
[3] S. Sudo,et al. Bursicon, the insect cuticle-hardening hormone, is a heterodimeric cystine knot protein that activates G protein-coupled receptor LGR2. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[4] M. Sugumaran,et al. Protein cross‐linking by peroxidase: Possible mechanism for sclerotization of insect cuticle , 1987 .
[5] R. Dillaman,et al. The Structure and Calcification of the Crustacean Cuticle , 1984 .
[6] T. Watanabe,et al. Molecular cloning of the crustacean DD4 cDNA encoding a Ca(2+)-binding protein. , 2000, Biochemical and biophysical research communications.
[7] Toshiki Watanabe,et al. A crustacean Ca2+-binding protein with a glutamate-rich sequence promotes CaCO3 crystallization. , 2004, The Biochemical journal.
[8] G. Fraenkel,et al. Calcification, tanning, and the rôle of ecdyson in the formation of the puparium of the facefly, Musca automnalis , 1967 .
[9] D. Wilcockson,et al. Identification and developmental expression of mRNAs encoding putative insect cuticle hardening hormone, bursicon in the green shore crab Carcinus maenas , 2008 .
[10] J. Charles,et al. The regulation of expression of insect cuticle protein genes. , 2010, Insect biochemistry and molecular biology.
[11] H. Nagasawa,et al. Purification and Structural Determination of a Phosphorylated Peptide with Anti-calcification and Chitin-binding Activities in the Exoskeleton of the Crayfish, Procambarus clarkii , 2001, Bioscience, biotechnology, and biochemistry.
[12] M. Pan,et al. The disappearance of moulting fluid in the tobacco hornworm, Manduca sexta , 1983 .
[13] S. Tsuda,et al. Chitin-binding Proteins in Invertebrates and Plants Comprise a Common Chitin-binding Structural Motif* , 2000, The Journal of Biological Chemistry.
[14] T. H. Shafer,et al. Four differentially expressed cDNAs in Callinectes sapidus containing the Rebers-Riddiford consensus sequence. , 2005, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[15] Margarita C. Theodoropoulou,et al. CutProtFam-Pred: detection and classification of putative structural cuticular proteins from sequence alone, based on profile hidden Markov models. , 2014, Insect biochemistry and molecular biology.
[16] K. Halbrook,et al. Glycosidase activity in the post-ecdysial cuticle of the blue crab, Callinectes sapidus. , 2001, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[17] R. Bodnaryk. Amino-acid composition of the calcified puparium of Musca autumnalis and the sclerotized puparium of Musca domestica , 1972 .
[18] Daisuke Kihara,et al. Function Prediction of uncharacterized proteins , 2007, J. Bioinform. Comput. Biol..
[19] T. Tatusova,et al. Solving the Problem: Genome Annotation Standards before the Data Deluge , 2011, Standards in genomic sciences.
[20] N. F. Hadley. Water Relations of Terrestrial Arthropods , 1994 .
[21] L-Glutamate retrieved with the moulting fluid is processed by a glutamine synthetase in the pupal midgut of Calpodes ethlius. , 2000, Journal of insect physiology.
[22] H. Nagasawa,et al. A novel calcium-binding peptide from the cuticle of the crayfish, Procambarus clarkii. , 2004, Biochemical and biophysical research communications.
[23] T. Watanabe,et al. The DD5 gene of the decapod crustacean Penaeus japonicus encodes a putative exoskeletal protein with a novel tandem repeat structure. , 2001, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[24] L. Riddiford,et al. Structure and expression of a Manduca sexta larval cuticle gene homologous to Drosophila cuticle genes. , 1988, Journal of molecular biology.
[25] A. Gilby,et al. The calcified puparium of a fly , 1976 .
[26] H. Nagasawa,et al. Cloning and expression of a cDNA encoding a matrix peptide associated with calcification in the exoskeleton of the crayfish. , 2003, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[27] M. Locke. The Wigglesworth Lecture: Insects for studying fundamental problems in biology. , 2001, Journal of insect physiology.
[28] F. Kafatos,et al. Developmental function of Elf-1: an essential transcription factor during embryogenesis in Drosophila. , 1991, Genes & development.
[29] S. O. Andersen. Characterization of proteins from arthrodial membranes of the lobster, Homarus americanus. , 1998, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[30] I. Khalaila,et al. A Protein Involved in the Assembly of an Extracellular Calcium Storage Matrix* , 2010, The Journal of Biological Chemistry.
[31] T. Watanabe,et al. Molecular analysis of two genes, DD9A and B, which are expressed during the postmolt stage in the decapod crustacean Penaeus japonicus. , 2000, Comparative Biochemistry and Physiology Part B Comparative Biochemistry.
[32] H. Nagasawa,et al. Structural and Functional Analyses of a Strong Chitin-Binding Protein-1 (SCBP-1) from the Exoskeleton of the Crayfish Procambarus clarkii , 2013, Bioscience, biotechnology, and biochemistry.
[33] Toshiki Watanabe,et al. A crustacean Ca 2 +-binding protein with a glutamate-rich sequence promotes CaCO 3 crystallization , 2004 .
[34] R. Roer,et al. Cuticular proteins from the blue crab alter in vitro calcium carbonate mineralization , 1998 .
[35] Lindsay M Faircloth,et al. Differential expression of eight transcripts and their roles in the cuticle of the blue crab, Callinectes sapidus. , 2007, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[36] C. Cohen,et al. THE ORIGIN, DISTRIBUTION AND FATE OF THE MOLTING FLUID PROTEINS OF THE CECROPIA SILKWORM. , 1970, The Biological bulletin.
[37] C. Wright,et al. Evolution of a family of N-acetylglucosamine binding proteins containing the disulfide-rich domain of wheat germ agglutinin. , 1991, Journal of molecular evolution.
[38] A. Sagi,et al. On the involvement of proteins in the assembly of the crayfish gastrolith extracellular matrix , 2012 .
[39] Y Bouligand,et al. Twisted fibrous arrangements in biological materials and cholesteric mesophases. , 1972, Tissue & cell.
[40] R. Dillaman,et al. Distribution and Characterization of Ion Transporting and Respiratory Filaments in the Gills of Procambarus clarkii. , 1991, The Biological bulletin.
[41] D. Boyle,et al. Knickkopf protein protects and organizes chitin in the newly synthesized insect exoskeleton , 2011, Proceedings of the National Academy of Sciences.
[42] R. Dillaman,et al. Postecdysial Changes in the Protein and Glycoprotein Composition of the Cuticle of the Blue Crab Callinectes sapidus , 1994 .
[43] K. Butler,et al. Effects of exogenous N-acetylhexosaminidase on the structure and mineralization of the post-ecdysial exoskeleton of the blue crab, Callinectes sapidus. , 2001, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[44] S. O. Andersen. Insect cuticular sclerotization: a review. , 2010, Insect biochemistry and molecular biology.
[45] H. Ogawa,et al. Kynurenine 3-hydroxylase activity and follicle development in the silkworm, Bombyx mori , 1975 .
[46] V. Chalifa-Caspi,et al. Correction: Binary Gene Expression Patterning of the Molt Cycle: The Case of Chitin Metabolism , 2015, PloS one.
[47] J. Willis,et al. A conserved domain in arthropod cuticular proteins binds chitin. , 2001, Insect biochemistry and molecular biology.
[48] J. Willis,et al. Developmental expression patterns of cuticular protein genes with the R&R Consensus from Anopheles gambiae. , 2008, Insect biochemistry and molecular biology.
[49] Nanyan Lu,et al. Proteomic and transcriptomic analyses of rigid and membranous cuticles and epidermis from the elytra and hindwings of the red flour beetle, Tribolium castaneum. , 2012, Journal of proteome research.
[50] B. Moussian,et al. Recent advances in understanding mechanisms of insect cuticle differentiation. , 2010, Insect biochemistry and molecular biology.
[51] T. Ventura,et al. Gene Silencing in Crustaceans: From Basic Research to Biotechnologies , 2013, Genes.
[52] I. Khalaila,et al. A gastrolith protein serving a dual role in the formation of an amorphous mineral containing extracellular matrix , 2008, Proceedings of the National Academy of Sciences.
[53] M. Gerdol,et al. Expression of cytoskeletal and molt-related genes is temporally scheduled in the hypodermis of the crayfish Procambarus clarkii during premolt , 2014, Journal of Experimental Biology.
[54] R. Roer. Mechanisms of Resorption and Deposition of Calcium in the Carapace of the Crab Carcinus Maenas , 1980 .
[55] S. O. Andersen. Studies on proteins in post-ecdysial nymphal cuticle of locust, Locusta migratoria, and cockroach, Blaberus craniifer. , 2000, Insect biochemistry and molecular biology.
[56] J. Willis,et al. Structural cuticular proteins from arthropods: annotation, nomenclature, and sequence characteristics in the genomics era. , 2010, Insect biochemistry and molecular biology.
[57] S. O. Andersen,et al. Characterization and cDNA cloning of three major proteins from pharate pupal cuticle of Manduca sexta. , 2003, Insect biochemistry and molecular biology.
[58] R. Dillaman,et al. Early pattern of calcification in the dorsal carapace of the blue crab, Callinectes sapidus , 2005, Journal of morphology.
[59] R. Beeman,et al. Two major cuticular proteins are required for assembly of horizontal laminae and vertical pore canals in rigid cuticle of Tribolium castaneum. , 2014, Insect biochemistry and molecular biology.
[60] A. Elizur,et al. Differential expression profiling of components associated with exoskeletal hardening in crustaceans , 2008, BMC Genomics.
[61] R. Leschen,et al. Cuticular Calcium in Beetles (Coleoptera: Tenebrionidae: Phrenapetinae) , 1994 .
[62] J. Tomich,et al. Formation of Rigid, Non-Flight Forewings (Elytra) of a Beetle Requires Two Major Cuticular Proteins , 2012, PLoS genetics.
[63] S. Modla,et al. Post-Ecdysial Change in the Permeability of the Exoskeleton of the Blue Crab, Callinectes sapidus , 2009 .
[64] Wei-Jun Yang,et al. Chitin-binding proteins of Artemia diapause cysts participate in formation of the embryonic cuticle layer of cyst shells. , 2013, The Biochemical journal.
[65] A. Bejsovec,et al. Genetic control of cuticle formation during embryonic development of Drosophila melanogaster. , 2002, Genetics.
[66] S. O. Andersen. Exoskeletal proteins from the crab, Cancer pagurus. , 1999, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[67] J. Willis,et al. 5 – Cuticular Proteins , 2012 .
[68] L. Tjoelker,et al. Structural and Functional Definition of the Human Chitinase Chitin-binding Domain* , 2000, The Journal of Biological Chemistry.
[69] T. H. Shafer,et al. Purification of a soluble glycoprotein from the uncalcified ecdysial cuticle of the blue crab Callinectes sapidus and its possible role in initial mineralization , 2004, Journal of Experimental Biology.
[70] S. M. Newman,et al. A comparison of cuticle deposition during the pre- and posteclosion stages of the adult weevil, Anthonomus grandis Boheman (Coleoptera : Curculionidae) , 1992 .
[71] R. Roer,et al. Postecdysial cuticle alteration in the blue crab, Callinectes sapidus: Synchronous changes in glycoproteins and mineral nucleation , 1995 .
[72] B. Moussian. The apical plasma membrane of chitin‐synthesizing epithelia , 2012, Insect science.
[73] R. Dillaman,et al. Quercitin-dependent ATPase activity in the hypodermal tissue of Callinectes sapidus during the moult cycle , 1995 .
[74] H. Merzendorfer,et al. Chitin metabolism in insects: structure, function and regulation of chitin synthases and chitinases , 2003, Journal of Experimental Biology.
[75] S. Modla,et al. The Crustacean Integument , 2013 .
[76] R. Beeman,et al. Genes encoding proteins with peritrophin A-type chitin-binding domains in Tribolium castaneum are grouped into three distinct families based on phylogeny, expression and function. , 2010, Insect biochemistry and molecular biology.
[77] S. O. Andersen. Amino acid sequence studies on endocuticular proteins from the desert locust, Schistocerca gregaria. , 1998, Insect biochemistry and molecular biology.
[78] J. Willis,et al. Temporal and spatial expression of cuticular proteins of Anopheles gambiae implicated in insecticide resistance or differentiation of M/S incipient species , 2014, Parasites & Vectors.
[79] P. Compère. Fine structure and morphogenesis of the sclerite epicuticle in the Atlantic shore crab Carcinus maenas. , 1995, Tissue & cell.
[80] K. Kramer,et al. Mechanical properties of mineralized and sclerotized puparial cuticles of the flies Musca autumnalis and M. domestica , 1987 .
[81] A. Elizur,et al. Moult cycle specific differential gene expression profiling of the crab Portunus pelagicus , 2011, BMC Genomics.
[82] Toshiki Watanabe,et al. Identification of a novel cuticular protein in the kuruma prawn Penaeus japonicus , 2006, Fisheries Science.
[83] R. Dillaman,et al. Lectin binding by crustacean cuticle: the cuticle of Callinectes sapidus throughout the molt cycle, and the intermolt cuticle of Procambarus clarkii and Ocypode quadrata , 1994 .