-
2
-
-
33845676574
-
Cell physiology of pancreatic ducts
-
Johnson LR, editor. New York: Academic Press
-
Argent BE, Gray MA, Steward MC, et al. Cell physiology of pancreatic ducts. In: Johnson LR, editor. Physiology of the gastrointestinal tract, 4th ed. New York: Academic Press; 2006. pp. 1371-1396.
-
(2006)
Physiology of the Gastrointestinal Tract, 4th Ed.
, pp. 1371-1396
-
-
Argent, B.E.1
Gray, M.A.2
Steward, M.C.3
-
3
-
-
14644421996
-
Mechanisms of bicarbonate secretion in the pancreatic duct
-
DOI 10.1146/annurev.physiol.67.031103.153247
-
Steward MC, Ishiguro H, Case RM. Mechanisms of bicarbonate secretion in the pancreatic duct. Annu Rev Physiol 2005; 67:377-409. (Pubitemid 40404495)
-
(2005)
Annual Review of Physiology
, vol.67
, pp. 377-409
-
-
Steward, M.C.1
Ishiguro, H.2
Case, R.M.3
-
4
-
-
59849111516
-
Pancreatic duct secretion: Experimental methods, ion transport mechanisms and regulation
-
Garcia M, Hernandez-Lorenzo P, Roman JIS, et al. Pancreatic duct secretion: experimental methods, ion transport mechanisms and regulation. J Physiol Biochem 2008; 64:243-257.
-
(2008)
J Physiol Biochem
, vol.64
, pp. 243-257
-
-
Garcia, M.1
Hernandez-Lorenzo, P.2
Roman, J.I.S.3
-
5
-
-
84856849647
-
Physiology of duct cell secretion
-
Beger HG, Buchler M, Kozarek R, et al., editors. Malden, Massachusetts: Blackwell
-
Lee MG, Muallem S. Physiology of duct cell secretion. In: Beger HG, Buchler M, Kozarek R, et al., editors. The pancreas: an integrated textbook of basic science, medicine, and surgery, 2nd ed. Malden, Massachusetts: Blackwell; 2008. pp. 78-90.
-
(2008)
The Pancreas: An Integrated Textbook of Basic Science, Medicine, and Surgery, 2nd Ed.
, pp. 78-90
-
-
Lee, M.G.1
Muallem, S.2
-
6
-
-
33846160522
-
- exchanger activity and cAMP-stimulated bicarbonate secretion in pancreatic duct
-
- exchanger activity and cAMP-stimulated bicarbonate secretion in pancreatic duct. Am J Physiol 2007; 292:G447-G455.
-
(2007)
Am J Physiol
, vol.292
-
-
Ishiguro, H.1
Namkung, W.2
Yamamoto, A.3
-
7
-
-
42049099655
-
The solute carrier 26 family of proteins in epithelial ion transport
-
Dorwart MR, Shcheynikov N, Yang DK, et al. The solute carrier 26 family of proteins in epithelial ion transport. Physiology 2008; 23:104-114.
-
(2008)
Physiology
, vol.23
, pp. 104-114
-
-
Dorwart, M.R.1
Shcheynikov, N.2
Yang, D.K.3
-
8
-
-
65749086885
-
Diverse transport modes by the solute carrier 26 family of anion transporters
-
Ohana E, Yang DK, Shcheynikov N, et al. Diverse transport modes by the solute carrier 26 family of anion transporters. J Physiol 2009; 587:2179-2185.
-
(2009)
J Physiol
, vol.587
, pp. 2179-2185
-
-
Ohana, E.1
Yang, D.K.2
Shcheynikov, N.3
-
10
-
-
55949101122
-
Controversies in the role of SLC26 anion exchangers in pancreatic ductal bicarbonate secretion
-
An analysis of the discrepancies between two SLC26A6 knockout studies [6,9] and their implications
-
Hegyi P, Rakonczay Z, Farkas K, et al. Controversies in the role of SLC26 anion exchangers in pancreatic ductal bicarbonate secretion. Pancreas 2008; 37:232-234. An analysis of the discrepancies between two SLC26A6 knockout studies [6,9] and their implications.
-
(2008)
Pancreas
, vol.37
, pp. 232-234
-
-
Hegyi, P.1
Rakonczay, Z.2
Farkas, K.3
-
11
-
-
0036845685
-
Membrane potential and bicarbonate secretion in isolated interlobular ducts from guinea-pig pancreas
-
DOI 10.1085/jgp.20028631
-
Ishiguro H, StewardMC, Sohma Y, et al. Membrane potential and bicarbonate secretion in isolated interlobular ducts from guinea-pig pancreas. J Gen Physiol 2002; 120:617-628. (Pubitemid 35332583)
-
(2002)
Journal of General Physiology
, vol.120
, Issue.5
, pp. 617-628
-
-
Ishiguro, H.1
Steward, M.C.2
Sohma, Y.3
Kubota, T.4
Kitagawa, M.5
Kondo, T.6
Case, R.M.7
Hayakawa, T.8
Naruse, S.9
-
14
-
-
67049158773
-
- secretion by guinea pig interlobular pancreatic duct
-
- exchange in microperfused guinea-pig ducts revealing evidence of the electrogenicity and probable 1 : 2 stoichiometry of SLC26A6 in this species
-
- exchange in microperfused guinea-pig ducts revealing evidence of the electrogenicity and probable 1 : 2 stoichiometry of SLC26A6 in this species.
-
(2009)
Am J Physiol
, vol.296
-
-
Stewart, A.K.1
Yamamoto, A.2
Nakakuki, M.3
-
15
-
-
2342449944
-
Gating of CFTR by the STAS domain of SLC26 transporters
-
Ko SBH, Zeng WZ, DorwartMR, et al. Gating of CFTR by the STAS domain of SLC26 transporters. Nat Cell Biol 2004; 6:343-350.
-
(2004)
Nat Cell Biol
, vol.6
, pp. 343-350
-
-
Ko, S.B.H.1
Zeng, W.Z.2
Dorwart, M.R.3
-
16
-
-
2342591364
-
Basolateral anion transport mechanisms underlying fluid secretion by mouse, rat and guinea-pig pancreatic ducts
-
DOI 10.1113/jphysiol.2004.061762
-
Fernández-Salazar MP, Pascua P, Calvo JJ, et al. Basolateral anion transport mechanisms underlying fluid secretion by mouse, rat and guinea-pig pancreatic ducts. J Physiol 2004; 556:415-428. (Pubitemid 38578997)
-
(2004)
Journal of Physiology
, vol.556
, Issue.2
, pp. 415-428
-
-
Fernandez-Salazar, M.P.1
Pascua, P.2
Calvo, J.J.3
Lopez, M.A.4
Case, R.M.5
Steward, M.C.6
San Roman, J.I.7
-
17
-
-
60549083963
-
Mechanism of direct bicarbonate transport by the CFTR anion channel
-
- casting doubt on previous claims that it might be variable and regulated
-
- casting doubt on previous claims that it might be variable and regulated.
-
(2009)
J Cystic Fibrosis
, vol.8
, pp. 115-121
-
-
Tang, L.1
Fatehi, M.2
Linsdell, P.3
-
20
-
-
42149185064
-
Molecular physiology of bestrophins: Multifunctional membrane proteins linked to Best disease and other retinopathies
-
Hartzell HC, Qu ZQ, Yu K, et al. Molecular physiology of bestrophins: multifunctional membrane proteins linked to Best disease and other retinopathies. Physiol Rev 2008; 88:639-672.
-
(2008)
Physiol Rev
, vol.88
, pp. 639-672
-
-
Hartzell, H.C.1
Qu, Z.Q.2
Yu, K.3
-
21
-
-
65749096671
-
Bestrophin expression and function in the human pancreatic duct cell line, CFPAC-1
-
The above article provided the first evidence that the CaCCs in pancreatic duct cells may be members of the bestrophin family
-
Marsey LL, Winpenny JP. Bestrophin expression and function in the human pancreatic duct cell line, CFPAC-1. J Physiol 2009; 587:2211-2224. The above article provided the first evidence that the CaCCs in pancreatic duct cells may be members of the bestrophin family.
-
(2009)
J Physiol
, vol.587
, pp. 2211-2224
-
-
Marsey, L.L.1
Winpenny, J.P.2
-
23
-
-
37349084579
-
CFTR gene transfer to human cystic fibrosis pancreatic duct cells using a Sendai virus vector
-
DOI 10.1002/jcp.21220
-
Rakonczay Z, Hegyi P, Hasegawa M, et al. CFTR gene transfer to human cystic fibrosis pancreatic duct cells using a Sendai virus vector. J Cellular Physiol 2008; 214:442-455. Successful induction of CFTR and restoration of Cl-/HCO3- exchange in CFPAC-1 cells with clinical implications for pancreatic insufficiency in cystic fibrosis. (Pubitemid 350309001)
-
(2008)
Journal of Cellular Physiology
, vol.214
, Issue.2
, pp. 442-455
-
-
Rakonczay Jr., Z.1
Hegyi, P.2
Hasegawa, M.3
Inoue, M.4
You, J.5
Iida, A.6
Ignath, I.7
Alton, E.W.F.W.8
Griesenbach, U.9
Ovari, G.10
Vag, J.11
Da Paula, A.C.12
Crawford, R.M.13
Varga, G.14
Amaral, M.D.15
Mehta, A.16
Lonovics, J.17
Argent, B.E.18
Gray, M.A.19
-
25
-
-
0038718908
-
Phosphorylation-induced modulation on pNBC1 function: Distinct roles for the amino- And carboxy-termini
-
DOI 10.1113/jphysiol.2003.042226
-
Gross E, Fedotoff O, Pushkin A, et al. Phosphorylation-induced modulation of pNBC1 function: distinct roles for the amino- and carboxy-termini. J Physiol 2003; 549:673-682. (Pubitemid 36889761)
-
(2003)
Journal of Physiology
, vol.549
, Issue.3
, pp. 673-682
-
-
Gross, E.1
Fedotoff, O.2
Pushkin, A.3
Abuladze, N.4
Newman, D.5
Kurtz, I.6
-
26
-
-
58549083986
-
- cotransporter pNBC1 in human embryonic kidney (HEK293) cells
-
- cotransporter pNBC1 in human embryonic kidney (HEK293) cells. BMC Cell Biol 2008; 9:70.
-
(2008)
BMC Cell Biol
, vol.9
, pp. 70
-
-
Bachmann, O.1
Franke, K.2
Yu, H.Y.3
-
28
-
-
61749090806
-
- secretion by stimulating the transporters pNBC1 and CFTR in the murine pancreatic duct
-
2+-activated secretion and with effects on both apical and basolateral transporters
-
2+-activated secretion and with effects on both apical and basolateral transporters.
-
(2009)
J Clin Invest
, vol.119
, pp. 193-202
-
-
Yang, D.K.1
Shcheynikov, N.2
Zeng, W.Z.3
-
29
-
-
34249859626
-
Dynamic regulation of cystic fibrosis transmembrane conductance regulator by competitive interactions of molecular adaptors
-
DOI 10.1074/jbc.M610857200
-
Lee JH, Richter W, Namkung W, et al. Dynamic regulation of cystic fibrosis transmembrane conductance regulator by competitive interactions of molecular adaptors. J Biol Chem 2007; 282:10414-10422. (Pubitemid 47093434)
-
(2007)
Journal of Biological Chemistry
, vol.282
, Issue.14
, pp. 10414-10422
-
-
Ji, H.L.1
Richter, W.2
Namkung, W.3
Kyung, H.K.4
Kim, E.5
Conti, M.6
Min, G.L.7
-
30
-
-
65549152318
-
Mechanistic insight into control of CFTR by AMPK
-
Heterologous expression studies showing that AMP generated by local phosphodiesterase activity may have an inhibitory effect on CFTR activity
-
Kongsuphol P, Cassidy D, Hieke B, et al. Mechanistic insight into control of CFTR by AMPK. J Biol Chem 2009; 284:5645-5653. Heterologous expression studies showing that AMP generated by local phosphodiesterase activity may have an inhibitory effect on CFTR activity.
-
(2009)
J Biol Chem
, vol.284
, pp. 5645-5653
-
-
Kongsuphol, P.1
Cassidy, D.2
Hieke, B.3
-
31
-
-
65649117700
-
Differential roles of NHERF1, NHERF2, and PDZK1 in regulating CFTR-mediated intestinal anion secretion in mice
-
- secretion in mouse duodenum revealing how different signalling proteins link to CFTR via specific scaffolding proteins
-
- secretion in mouse duodenum revealing how different signalling proteins link to CFTR via specific scaffolding proteins.
-
(2009)
J Clin Invest
, vol.119
, pp. 540-550
-
-
Singh, A.K.1
Riederer, B.2
Krabbenhoft, A.3
-
32
-
-
0035930581
-
A transport metabolon: Functional interaction of carbonic anhydrase II and chloride/bicarbonate exchangers
-
Sterling D, Reithmeier RAF, Casey JR. A transport metabolon. Functional interaction of carbonic anhydrase II and chloride/bicarbonate exchangers. J Biol Chem 2001; 276:47886-47894. (Pubitemid 37370685)
-
(2001)
Journal of Biological Chemistry
, vol.276
, Issue.51
, pp. 47886-47894
-
-
Sterling, D.1
Reithmeier, R.A.F.2
Casey, J.R.3
-
33
-
-
34447515854
-
Expression and subcellular localization of a 35-kDa carbonic anhydrase IV in a human pancreatic ductal cell line (Capan-1)
-
DOI 10.1369/jhc.6A7112.2007
-
Fanjul M, Alvarez L, Hollande E. Expression and subcellular localization of a 35-kDa carbonic anhydrase IV in a human pancreatic ductal cell line (Capan-1). J Histochem Cytochem 2007; 55:783-794. (Pubitemid 47068269)
-
(2007)
Journal of Histochemistry and Cytochemistry
, vol.55
, Issue.8
, pp. 783-794
-
-
Fanjul, M.1
Alvarez, L.2
Hollande, E.3
-
35
-
-
23044434059
-
Metabolon disruption: A mechanism that regulates bicarbonate transport
-
Alvarez BV, Vilas GL, Casey JR. Metabolon disruption: a mechanism that regulates bicarbonate transport. EMBO J 2005; 24:2499-2511.
-
(2005)
EMBO J
, vol.24
, pp. 2499-2511
-
-
Alvarez, B.V.1
Vilas, G.L.2
Casey, J.R.3
-
36
-
-
34247392736
-
Regulation of anion exchanger Slc26a6 by protein kinase C
-
DOI 10.1152/ajpcell.00447.2006
-
Hassan HA, Mentone S, Karniski LP, et al. Regulation of anion exchanger Slc26a6 by protein kinase C. Am J Physiol 2007; 292:C1485-C1492. (Pubitemid 46631718)
-
(2007)
American Journal of Physiology - Cell Physiology
, vol.292
, Issue.4
-
-
Hassan, H.A.1
Mentone, S.2
Karniski, L.P.3
Rajendran, V.M.4
Aronson, P.S.5
-
38
-
-
33847756026
-
Evidence against a direct interaction between intracellular carbonic anhydrase II and pure C-terminal domains of SLC4 bicarbonate transporters
-
Piermarini PM, Kim EY, Boron WF. Evidence against a direct interaction between intracellular carbonic anhydrase II and pure C-terminal domains of SLC4 bicarbonate transporters. J Biol Chem 2007; 282:1409-1421.
-
(2007)
J Biol Chem
, vol.282
, pp. 1409-1421
-
-
Piermarini, P.M.1
Kim, E.Y.2
Boron, W.F.3
-
39
-
-
48449099104
-
Purinergic receptors in the endocrine and exocrine pancreas
-
A comprehensive review of purinergic regulation in both endocrine and exocrine pancreas
-
Novak I. Purinergic receptors in the endocrine and exocrine pancreas. Purinergic Signal 2008; 4:237-253. A comprehensive review of purinergic regulation in both endocrine and exocrine pancreas.
-
(2008)
Purinergic Signal
, vol.4
, pp. 237-253
-
-
Novak, I.1
-
40
-
-
51149095045
-
Purinergic receptors and calcium signalling in human pancreatic duct cell lines
-
7 receptors in human duct cells lines PANC-1 and CFPAC-1 suggesting that these are good experimental models
-
7 receptors in human duct cells lines PANC-1 and CFPAC-1 suggesting that these are good experimental models.
-
(2008)
Cellular Physiol Biochem
, vol.22
, pp. 157-168
-
-
Hansen, M.R.1
Krabbe, S.2
Novak, I.3
-
41
-
-
42049109548
-
Adenosine receptors in rat and human pancreatic ducts stimulate chloride transport
-
2A adenosine receptors in rat duct cells and human duct cell lines
-
2A adenosine receptors in rat duct cells and human duct cell lines.
-
(2008)
Pflugers Arch
, vol.456
, pp. 437-447
-
-
Novak, I.1
Hede, S.E.2
Hansen, M.R.3
-
42
-
-
62549086974
-
2 receptors
-
2 receptors acting via different signalling pathways can have opposite effects on CFTR activity
-
2 receptors acting via different signalling pathways can have opposite effects on CFTR activity.
-
(2009)
Pflugers Arch
, vol.457
, pp. 1373-1380
-
-
Faria, D.1
Schreiber, R.2
Kunzelmann, K.3
-
44
-
-
49649092896
-
Protease-activated receptor-2 increases exocytosis via multiple signal transduction pathways in pancreatic duct epithelial cells
-
Details of the signalling pathways controlling the secretion of mucins by pancreatic duct cells in response to basolateral trypsin
-
Kim MH, Choi BH, Jung SR, et al. Protease-activated receptor-2 increases exocytosis via multiple signal transduction pathways in pancreatic duct epithelial cells. J Biol Chem 2008; 283:18711-18720. Details of the signalling pathways controlling the secretion of mucins by pancreatic duct cells in response to basolateral trypsin.
-
(2008)
J Biol Chem
, vol.283
, pp. 18711-18720
-
-
Kim, M.H.1
Choi, B.H.2
Jung, S.R.3
-
45
-
-
0032896792
-
Trypsin activates pancreatic duct epithelial cell ion channels through proteinase-activated receptor-2
-
Nguyen TD, Moody MW, Steinhoff M, et al. Trypsin activates pancreatic duct epithelial cell ion channels through proteinase-activated receptor-2. J Clin Invest 1999; 103:261-269. (Pubitemid 29053144)
-
(1999)
Journal of Clinical Investigation
, vol.103
, Issue.2
, pp. 261-269
-
-
Nguyen, T.D.1
Moody, M.W.2
Steinhoff, M.3
Okolo, C.4
Koh, D.-S.5
Bunnett, N.W.6
-
46
-
-
48149090717
-
Cystic fibrosis: Impaired bicarbonate secretion and mucoviscidosis
-
Quinton PM. Cystic fibrosis: impaired bicarbonate secretion and mucoviscidosis. Lancet 2008; 372:415-417.
-
(2008)
Lancet
, vol.372
, pp. 415-417
-
-
Quinton, P.M.1
-
47
-
-
48249140989
-
Effects of bile acids on pancreatic ductal bicarbonate secretion in guinea pig
-
Evidence for a stimulatory effect of low concentrations of unconjugated bile acids on ductal secretion
-
Venglovecz V, Rakonczay Z, Ozsvari B, et al. Effects of bile acids on pancreatic ductal bicarbonate secretion in guinea pig. Gut 2008; 57:1102-1112. Evidence for a stimulatory effect of low concentrations of unconjugated bile acids on ductal secretion.
-
(2008)
Gut
, vol.57
, pp. 1102-1112
-
-
Venglovecz, V.1
Rakonczay, Z.2
Ozsvari, B.3
-
48
-
-
48249124906
-
Pancreatitis: The neglected duct
-
Lee MG, Muallem S. Pancreatitis: the neglected duct. Gut 2008; 57:1037-21039.
-
(2008)
Gut
, vol.57
, pp. 1037-21039
-
-
Lee, M.G.1
Muallem, S.2
|