A Caenorhabditis elegans Wild Type Defies the Temperature–Size Rule Owing to a Single Nucleotide Polymorphism in tra-3
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R. Plasterk | A. Petrescu | Laurentiu Spiridon | M. Tijsterman | J. Riksen | E. Hazendonk | J. Kammenga | J. Bakker | A. Doroszuk
[1] Z. Prokop,et al. Environmental influence on the genetic correlations between life-history traits in Caenorhabditis elegans , 2007, Heredity.
[2] Jingyuan Fu,et al. Mapping Determinants of Gene Expression Plasticity by Genetical Genomics in C. elegans , 2006, PLoS genetics.
[3] S. Morley,et al. From cells to colonies: at what levels of body organization does the ‘temperature‐size rule’ apply? , 2006, Evolution & development.
[4] T. Mackay,et al. Quantitative trait loci for thermotolerance phenotypes in Drosophila melanogaster , 2006, Heredity.
[5] N. Tuteja,et al. Cold, salinity and drought stresses: an overview. , 2005, Archives of biochemistry and biophysics.
[6] Takaaki Hirotsu,et al. MBR-1, a Novel Helix-Turn-Helix Transcription Factor, Is Required for Pruning Excessive Neurites in Caenorhabditis elegans , 2005, Current Biology.
[7] Pierre Baldi,et al. SCRATCH: a protein structure and structural feature prediction server , 2005, Nucleic Acids Res..
[8] W. Blanckenhorn,et al. Effects of temperature on cell size and number in the yellow dung fly Scathophaga stercoraria , 2005 .
[9] L. Dixon. Use of recombinant inbred strains to map genes of aging , 2005, Genetica.
[10] M. Benton,et al. The evolution of large size: how does Cope's Rule work? , 2005, Trends in ecology & evolution.
[11] M. Czarnoleski,et al. Can Optimal Resource Allocation Models Explain Why Ectotherms Grow Larger in Cold?1 , 2004, Integrative and comparative biology.
[12] M. Angilletta,et al. Temperature, Growth Rate, and Body Size in Ectotherms: Fitting Pieces of a Life-History Puzzle1 , 2004, Integrative and comparative biology.
[13] R. Schnellmann,et al. The role of calpain in oncotic cell death. , 2004, Annual review of pharmacology and toxicology.
[14] D. Montagnes,et al. Protists decrease in size linearly with temperature: ca. 2.5% °C−1 , 2003, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[15] A. Dunham,et al. The Temperature‐Size Rule in Ectotherms: Simple Evolutionary Explanations May Not Be General , 2003, The American Naturalist.
[16] L. Rieseberg,et al. The genetic architecture necessary for transgressive segregation is common in both natural and domesticated populations. , 2003, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[17] S. Cohen,et al. Genetic screen for small body size mutants in C. elegans reveals many TGFβ pathway components , 2003, Genesis.
[18] Y. Ohshima,et al. Cyclic GMP-dependent protein kinase EGL-4 controls body size and lifespan in C. elegans , 2003, Development.
[19] Julie Clark,et al. Protists decrease in size linearly with temperature: ca. 2.5% degrees C-1 , 2003 .
[20] H. Horvitz,et al. NOVEL NEMATODE AMBER SUPPRESSORS , 2003 .
[21] A. Farrell,et al. Effects of temperature on intracellular Ca2+ in trout atrial myocytes. , 2002, The Journal of experimental biology.
[22] A. Leroi,et al. Increased or decreased levels of Caenorhabditis elegans lon-3, a gene encoding a collagen, cause reciprocal changes in body length. , 2002, Genetics.
[23] M. Ikura,et al. How calpain is activated by calcium , 2002, Nature Structural Biology.
[24] Z. Jia,et al. A Ca2+ Switch Aligns the Active Site of Calpain , 2002, Cell.
[25] V. French,et al. Temperature modulates epidermal cell size in Drosophila melanogaster. , 2002, Journal of insect physiology.
[26] F. Speleman,et al. Accurate normalization of real-time quantitative RT-PCR data by geometric averaging of multiple internal control genes , 2002, Genome Biology.
[27] L Raeymaekers,et al. The Sarco-Endoplasmic Reticulum Ca2+ ATPase Is Required for Development and Muscle Function in Caenorhabditis elegans * , 2001, The Journal of Biological Chemistry.
[28] James H. Brown,et al. Effects of Size and Temperature on Metabolic Rate , 2001, Science.
[29] J. Kammenga,et al. Switching life-history sensitivities to stress in soil invertebrates , 2001 .
[30] M. Gertsenstein,et al. Placental cell fates are regulated in vivo by HIF-mediated hypoxia responses. , 2000, Genes & development.
[31] Heather Knight,et al. Imaging spatial and cellular characteristics of low temperature calcium signature after cold acclimation in Arabidopsis. , 2000, Journal of experimental botany.
[32] S. Goto,et al. Expression of Drosophila homologue of senescence marker protein-30 during cold acclimation. , 2000, Journal of insect physiology.
[33] M. Sternberg,et al. Enhanced genome annotation using structural profiles in the program 3D-PSSM. , 2000, Journal of molecular biology.
[34] P. Kuwabara,et al. Proteolysis in Caenorhabditis elegans sex determination: cleavage of TRA-2A by TRA-3. , 2000, Genes & development.
[35] A. C. James,et al. Cellular basis of wing size variation in Drosophila melanogaster: a comparison of latitudinal clines on two continents , 2000, Heredity.
[36] A. Kamping,et al. LATITUDINAL VARIATION FOR TWO ENZYME LOCI AND AN INVERSION POLYMORPHISM IN DROSOPHILA MELANOGASTER FROM CENTRAL AND SOUTH AMERICA , 2000, Evolution; international journal of organic evolution.
[37] P. Kuwabara,et al. Direct protein-protein interaction between the intracellular domain of TRA-2 and the transcription factor TRA-1A modulates feminizing activity in C. elegans. , 2000, Genes & development.
[38] M Ouali,et al. Cascaded multiple classifiers for secondary structure prediction , 2000, Protein science : a publication of the Protein Society.
[39] A. Sali,et al. Modeling of loops in protein structures , 2000, Protein science : a publication of the Protein Society.
[40] D Siegmund,et al. Statistical methods for mapping quantitative trait loci from a dense set of markers. , 1999, Genetics.
[41] A. Viarengo,et al. The SR Ca2+ ATPase of the Antarctic scallop Adamussium colbecki: cold adaptation and heavy metal effects , 1999, Polar Biology.
[42] V. French,et al. Body size and cell size in Drosophila: the developmental response to temperature. , 1998, Journal of insect physiology.
[43] A. C. James,et al. LATITUDINAL VARIATION OF WING:THORAX SIZE RATIO AND WING‐ASPECT RATIO IN DROSOPHILA MELANOGASTER , 1998, Evolution; international journal of organic evolution.
[44] L. Meis. Control of heat production by the Ca2+-ATPase of rabbit and trout sarcoplasmic reticulum , 1998 .
[45] L. de Meis,et al. Control of heat production by the Ca 2 1-ATPase of rabbit and trout sarcoplasmic reticulum , 1998 .
[46] Geoffrey J. Barton,et al. JPred : a consensus secondary structure prediction server , 1999 .
[47] R. Sibly,et al. Why are organisms usually bigger in colder environments? Making sense of a life history puzzle. , 1997, Trends in ecology & evolution.
[48] Yann Guermeur,et al. Combinaison de classifieurs statistiques : application à la prédiction de la structure secondaire des protéines , 1997 .
[49] V. French,et al. Thermal evolution of ectotherm body size: why get big in the cold? , 1996 .
[50] J. Hodgkin,et al. The tra‐3 sex determination gene of Caenorhabditis elegans encodes a member of the calpain regulatory protease family. , 1996, The EMBO journal.
[51] W. Voorhies. BERGMANN SIZE CLINES: A SIMPLE EXPLANATION FOR THEIR OCCURRENCE IN ECTOTHERMS , 1996 .
[52] M. T.,et al. Adult Size in Ectotherms: Temperature Effects on Growth and Differentiation , 1996 .
[53] J. Fleming,et al. Basic culture methods. , 1995, Methods in cell biology.
[54] R. Doerge,et al. Empirical threshold values for quantitative trait mapping. , 1994, Genetics.
[55] E. Charnov,et al. Reaction norms for age and size at maturity in response to temperature: A puzzle for life historians. , 1994 .
[56] V. French,et al. EVOLUTION AND DEVELOPMENT OF BODY SIZE AND CELL SIZE IN DROSOPHILA MELANOGASTER IN RESPONSE TO TEMPERATURE , 1994, Evolution; international journal of organic evolution.
[57] D. Atkinson. Temperature and organism size-A biological law for ectotherms? Advances in Ecological Research 25: 1 , 1994 .
[58] Z B Zeng,et al. Theoretical basis for separation of multiple linked gene effects in mapping quantitative trait loci. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[59] V. Ambros,et al. Efficient gene transfer in C.elegans: extrachromosomal maintenance and integration of transforming sequences. , 1991, The EMBO journal.
[60] J. Hodgkin,et al. More is not better: brood size and population growth in a self-fertilizing nematode , 1991, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[61] J. Baguñá,et al. Quantitative cellular analysis of growth and reproduction in freshwater planarians (Turbellaria; Tricladida). I. A cellular description of the intact organism , 1991 .
[62] J. Thompson,et al. Effect of temperature on receptor-activated changes in [Ca2+]i and their determination using fluorescent probes. , 1991, The Journal of biological chemistry.
[63] P. Cullen,et al. Thapsigargin, a tumor promoter, discharges intracellular Ca2+ stores by specific inhibition of the endoplasmic reticulum Ca2(+)-ATPase. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[64] F. Corpet. Multiple sequence alignment with hierarchical clustering. , 1988, Nucleic acids research.
[65] James L. McClelland. Explorations In Parallel Distributed Processing , 1988 .
[66] J. Hodgkin. More sex-determination mutants of Caenorhabditis elegans. , 1980, Genetics.
[67] R. Edgar,et al. Genetic and Phenotypic Characterization of Roller Mutants of CAENORHABDITIS ELEGANS. , 1980, Genetics.
[68] J. Sulston,et al. Post-embryonic cell lineages of the nematode, Caenorhabditis elegans. , 1977, Developmental biology.
[69] L Byerly,et al. The life cycle of the nematode Caenorhabditis elegans. II. A simplified method for mutant characterization. , 1976, Developmental biology.
[70] L. Byerly,et al. The life cycle of the nematode Caenorhabditis elegans. I. Wild-type growth and reproduction. , 1976, Developmental biology.