SPINK1/PSTI polymorphisms act as disease modifiers in familial and idiopathic chronic pancreatitis.
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M. Barmada | J. Neoptolemos | D. Whitcomb | R. Pfützer | W. Furey | A. Brunskill | P. Hart | R. Finch
[1] D. Whitcomb,et al. Motivations and concerns of patients with access to genetic testing for hereditary pancreatitis. , 2001 .
[2] Olfert Landt,et al. Mutations in the gene encoding the serine protease inhibitor, Kazal type 1 are associated with chronic pancreatitis , 2000, Nature Genetics.
[3] D. Whitcomb. Genetic predispositions to acute and chronic pancreatitis. , 2000, The Medical clinics of North America.
[4] D. Whitcomb,et al. Genetic testing. Counseling, laboratory, and regulatory issues and the EUROPAC protocol for ethical research in multicenter studies of inherited pancreatic diseases. , 2000, The Medical clinics of North America.
[5] M. Manns,et al. Mutations of the activation peptide of cationic trypsinogen may lead to chronic pancreatitis by facilitated activation of trypsinogen to trypsin , 2000 .
[6] M. Knowles,et al. Molecular pathogenesis of chronic pancreatitis associated with abnormal CFTR genotypes , 2000 .
[7] A. Bird,et al. Confirmation of the assignment of the Sanjad-Sakati (congenital hypoparathyroidism) syndrome (OMIM 241410) locus to chromosome lq42-43 , 2000, Journal of medical genetics.
[8] D. Whitcomb,et al. Trypsinogen mutations in chronic pancreatitis. , 1999, Gastroenterology.
[9] A. Andriulli,et al. The A16V signal peptide cleavage site mutation in the cationic trypsinogen gene and chronic pancreatitis. , 1999, Gastroenterology.
[10] M. Sahin-Tóth. Hereditary Pancreatitis-associated Mutation Asn21 → Ile Stabilizes Rat Trypsinogen in Vitro * , 1999, The Journal of Biological Chemistry.
[11] D. Whitcomb. Hereditary pancreatitis: new insights into acute and chronic pancreatitis , 1999, Gut.
[12] A. Curtis,et al. Mutations of the cationic trypsinogen gene in patients with chronic pancreatitis , 1999, The Lancet.
[13] H. Witt,et al. A signal peptide cleavage site mutation in the cationic trypsinogen gene is strongly associated with chronic pancreatitis. , 1999, Gastroenterology.
[14] D. Whitcomb,et al. Early trypsinogen activation in acute pancreatitis , 1999, Gastroenterology.
[15] M. Knowles,et al. Relation between mutations of the cystic fibrosis gene and idiopathic pancreatitis. , 1998, The New England journal of medicine.
[16] M. Schwarz,et al. Mutations of the cystic fibrosis gene in patients with chronic pancreatitis. , 1998, The New England journal of medicine.
[17] J R O'Connell,et al. PedCheck: a program for identification of genotype incompatibilities in linkage analysis. , 1998, American journal of human genetics.
[18] Daniel L. Koller,et al. Heterogeneity in hereditary pancreatitis. , 1998, American journal of medical genetics.
[19] É. Várallyay,et al. Two mutations in rat trypsin confer resistance against autolysis. , 1998, Biochemical and biophysical research communications.
[20] M. Gorry,et al. Mutations in the cationic trypsinogen gene are associated with recurrent acute and chronic pancreatitis. , 1997, Gastroenterology.
[21] Thomas L. Madden,et al. PowerBLAST: a new network BLAST application for interactive or automated sequence analysis and annotation. , 1997, Genome research.
[22] M. Gorry,et al. Hereditary pancreatitis is caused by a mutation in the cationic trypsinogen gene , 1996, Nature Genetics.
[23] L Kruglyak,et al. Parametric and nonparametric linkage analysis: a unified multipoint approach. , 1996, American journal of human genetics.
[24] J. O’Connell,et al. The VITESSE algorithm for rapid exact multilocus linkage analysis via genotype set–recoding and fuzzy inheritance , 1995, Nature Genetics.
[25] J C Fontecilla-Camps,et al. Crystal structure of human trypsin 1: unexpected phosphorylation of Tyr151. , 1995, Journal of molecular biology.
[26] Tadataka Yamada,et al. Textbook of Gastroenterology , 1995 .
[27] D Schomburg,et al. Three-dimensional structure of a recombinant variant of human pancreatic secretory trypsin inhibitor (Kazal type). , 1992, Journal of molecular biology.
[28] M. Carson. RIBBONS 2.0 , 1991 .
[29] D. Schomburg,et al. Three-dimensional structure of the complexes between bovine chymotrypsinogen A and two recombinant variants of human pancreatic secretory trypsin inhibitor (Kazal-type). , 1991, Journal of molecular biology.
[30] J. Zou,et al. Improved methods for building protein models in electron density maps and the location of errors in these models. , 1991, Acta crystallographica. Section A, Foundations of crystallography.
[31] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[32] N. Tomita,et al. On the cDNA's for two types of rat pancreatic secretory trypsin inhibitor. , 1989, Biochemical and biophysical research communications.
[33] Y. Nakamura,et al. Molecular cloning and nucleotide sequence of human pancreatic secretory trypsin inhibitor (PSTI) cDNA. , 1985, Biochemical and biophysical research communications.
[34] M Bolognesi,et al. Three-dimensional structure of the complex between pancreatic secretory trypsin inhibitor (Kazal type) and trypsinogen at 1.8 A resolution. Structure solution, crystallographic refinement and preliminary structural interpretation. , 1982, Journal of molecular biology.
[35] C. Figarella,et al. The Two Human Trypsinogens , 1975 .
[36] S. Antonarakis. Recommendations for a nomenclature system for human gene mutations , 1998 .
[37] V. Go. The Pancreas : biology, pathobiology, and disease , 1993 .
[38] N. Adham,et al. A possible zymogen self-destruct mechanism preventing pancreatic autodigestion , 1988, International journal of pancreatology : official journal of the International Association of Pancreatology.