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R Hagey

Showing results (71-80 of 103) with videos related to

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Gastroenterology|August 1, 1988
Inhibition of Na+/H+ exchange in the rat is associated with decreased ursodeoxycholate hypercholeresis, decreased secretion of unconjugated urodeoxycholate, and increased ursodeoxycholate glucuronidationJ R Lake, E L Renner, B F Scharschmidt, et al.
Steroids|May 24, 2011
Biliary bile acids in birds of the Cotingidae family: taurine-conjugated (24R,25R)-3α,7α,24-trihydroxy-5β-cholestan-27-oic acid and two epimers (25R and 25S) of 3α,7α-dihydroxy-5β-cholestan-27-oic acidLee R Hagey, Takashi Iida, Shoujiro Ogawa, et al.
Steroids|September 19, 2012
A novel varanic acid epimer--(24R,25S)-3α,7α,12α,24-tetrahydroxy-5β-cholestan-27-oic acid--is a major biliary bile acid in two varanid lizards and the Gila monsterLee R Hagey, Shoujiro Ogawa, Narimi Kato, et al.
Steroids|May 28, 2013
An efficient synthesis of 7α,12α-dihydroxy-4-cholesten-3-one and its biological precursor 7α-hydroxy-4-cholesten-3-one: Key intermediates in bile acid biosynthesisShoujiro Ogawa, Biao Zhou, Yusuke Kimoto, et al.
Journal of Lipid Research|June 10, 2006
Two loci on chromosome 9 control bile acid composition: evidence that a strong candidate gene, Cyp8b1, is not the culpritEphraim Sehayek, Lee R Hagey, Yee-Yan Fung, et al.
Journal of Lipid Research|September 6, 2007
Isolation and chemical synthesis of a major, novel biliary bile acid in the common wombat (Vombatus ursinus): 15alpha-hydroxylithocholic acidGenta Kakiyama, Hideyuki Tamegai, Takashi Iida, et al.
Hepatology (Baltimore, Md.)|August 1, 1997
Effect of side chain length on biotransformation, hepatic transport, and choleretic properties of chenodeoxycholyl homologues in the rodent: studies with dinorchenodeoxycholic acid, norchenodeoxycholic acid, and chenodeoxycholic acidH Z Yeh, C D Schteingart, L R Hagey, et al.
Steroids|December 3, 2013
N-Methyltaurine N-acyl amidated bile acids and deoxycholic acid in the bile of angelfish (Pomacanthidae): a novel bile acid profile in Perciform fishRika Satoh Née Okihara, Tetsuya Saito, Hiroaki Ogata, et al.
Lipids|April 25, 2016
Two Major Bile Acids in the Hornbills, (24R,25S)-3α,7α,24-Trihydroxy-5β-cholestan-27-oyl Taurine and Its 12α-Hydroxy DerivativeRika Satoh, Hiroaki Ogata, Tetsuya Saito, et al.
Journal of Pediatric Gastroenterology and Nutrition|October 29, 2008
Altered bile acid metabolism in childhood functional constipation: inactivation of secretory bile acids by sulfation in a subset of patientsAlan F Hofmann, Vera Loening-Baucke, Joel E Lavine, et al.
Pageof 11

Showing results (71-80 of 103) with videos related to

Sort By:
Pageof 11
Gastroenterology|August 1, 1988
Inhibition of Na+/H+ exchange in the rat is associated with decreased ursodeoxycholate hypercholeresis, decreased secretion of unconjugated urodeoxycholate, and increased ursodeoxycholate glucuronidationJ R Lake, E L Renner, B F Scharschmidt, et al.
Steroids|May 24, 2011
Biliary bile acids in birds of the Cotingidae family: taurine-conjugated (24R,25R)-3α,7α,24-trihydroxy-5β-cholestan-27-oic acid and two epimers (25R and 25S) of 3α,7α-dihydroxy-5β-cholestan-27-oic acidLee R Hagey, Takashi Iida, Shoujiro Ogawa, et al.
Steroids|September 19, 2012
A novel varanic acid epimer--(24R,25S)-3α,7α,12α,24-tetrahydroxy-5β-cholestan-27-oic acid--is a major biliary bile acid in two varanid lizards and the Gila monsterLee R Hagey, Shoujiro Ogawa, Narimi Kato, et al.
Steroids|May 28, 2013
An efficient synthesis of 7α,12α-dihydroxy-4-cholesten-3-one and its biological precursor 7α-hydroxy-4-cholesten-3-one: Key intermediates in bile acid biosynthesisShoujiro Ogawa, Biao Zhou, Yusuke Kimoto, et al.
Journal of Lipid Research|June 10, 2006
Two loci on chromosome 9 control bile acid composition: evidence that a strong candidate gene, Cyp8b1, is not the culpritEphraim Sehayek, Lee R Hagey, Yee-Yan Fung, et al.
Journal of Lipid Research|September 6, 2007
Isolation and chemical synthesis of a major, novel biliary bile acid in the common wombat (Vombatus ursinus): 15alpha-hydroxylithocholic acidGenta Kakiyama, Hideyuki Tamegai, Takashi Iida, et al.
Hepatology (Baltimore, Md.)|August 1, 1997
Effect of side chain length on biotransformation, hepatic transport, and choleretic properties of chenodeoxycholyl homologues in the rodent: studies with dinorchenodeoxycholic acid, norchenodeoxycholic acid, and chenodeoxycholic acidH Z Yeh, C D Schteingart, L R Hagey, et al.
Steroids|December 3, 2013
N-Methyltaurine N-acyl amidated bile acids and deoxycholic acid in the bile of angelfish (Pomacanthidae): a novel bile acid profile in Perciform fishRika Satoh Née Okihara, Tetsuya Saito, Hiroaki Ogata, et al.
Lipids|April 25, 2016
Two Major Bile Acids in the Hornbills, (24R,25S)-3α,7α,24-Trihydroxy-5β-cholestan-27-oyl Taurine and Its 12α-Hydroxy DerivativeRika Satoh, Hiroaki Ogata, Tetsuya Saito, et al.
Journal of Pediatric Gastroenterology and Nutrition|October 29, 2008
Altered bile acid metabolism in childhood functional constipation: inactivation of secretory bile acids by sulfation in a subset of patientsAlan F Hofmann, Vera Loening-Baucke, Joel E Lavine, et al.
Pageof 11