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Jitrapakdee S, Walker ME, Wallace JC (1996). "Identification of novel alternatively spliced pyruvate carboxylase mRNAs with divergent 5'-untranslated regions which are expressed in a tissue-specific manner". Biochem. Biophys. Res. Commun.223 (3): 695–700. PMID8687459. doi:10.1006/bbrc.1996.0958.
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St Maurice M, Reinhardt L, Surinya KH, Attwood PV, Wallace JC, Cleland WW, Rayment I (2007). "Domain architecture of pyruvate carboxylase, a biotin-dependent multifunctional enzyme". Science317 (5841): 1076–9. PMID17717183. doi:10.1126/science.1144504.
Rothman DL, Magnusson I, Katz LD, Shulman RG, Shulman GI (1991). "Quantitation of hepatic glycogenolysis and gluconeogenesis in fasting humans with 13C NMR". Science254 (5031): 573–6. PMID1948033. doi:10.1126/science.1948033.
Salto R, Sola M, Olicer F J, Vargas A M (1996). "Effects of starvation, diabetes, and carbon tetrachloride intoxication on rat kidney cortex and liver pyruvate carboxylase levels". Arch. Physiol. Biochem.104 (7): 845–850. PMID9127680. doi:10.1076/apab.104.7.845.13111.
Liu YQ, Han J, Epstein PN, Long YS (2005). "Enhanced rat β-cell proliferation in 60% pancreatectomized islets by increased glucose metabolic flux through pyruvate carboxylase pathway". Am. J. Physiol. Endocrinol. Metab288 (3): E471–E478. PMID15507531. doi:10.1152/ajpendo.00427.2004.
Laybutt DR, Glandt M, Xu G, Ahn YB, Trivedi N, Bonner-Weir S, Weir GC (2003). "Critical reduction in β-cell mass results in two distinct outcomes over time. Adaption with impaired glucose tolerance or decompensated diabetes". J. Biol. Chem.278 (5): 2997–3005. PMID12438314. doi:10.1074/jbc.M210581200.
Poitout V, Robertson R P (2002). "Secondary ß-cell failure in type 2 diabetes-a convergence of glucotoxicity and lipotoxicity". Endocrinology143 (2): 339–342. PMID11796484. doi:10.1210/en.143.2.339.
Boucher A, Lu D, Burgess SC, Telamaque-Potts S, Jensen M V, Mulder H, Wang M Y, Unger R H, Sherry A D, Newgard C B (2004). "Biochemical mechanism of lipid-induced impairment of glucose-stimulated insulin secretion and reversal with a malate analogue". J. Biol. Chem.279 (26): 27263–27271. PMID15073188. doi:10.1074/jbc.M401167200.
Jitrapakdee S, Nezic MG, Cassady AI, Khew-Goodall Y, Wallace JC (a 2002). "Molecular cloning and domain structure of chicken pyruvate carboxylase". Biochem. Biophys. Res. Commun.295 (2): 387–93. PMID12150961. doi:10.1016/S0006-291X(02)00651-4.
Jitrapakdee S, Walker ME, Wallace JC (1996). "Identification of novel alternatively spliced pyruvate carboxylase mRNAs with divergent 5'-untranslated regions which are expressed in a tissue-specific manner". Biochem. Biophys. Res. Commun.223 (3): 695–700. PMID8687459. doi:10.1006/bbrc.1996.0958.
Kondo S, Nakajima Y, Sugio S, Yong-Biao J, Sueda S, Kondo H (2004). "Structure of the biotin carboxylase subunit of pyruvate carboxylase from Aquifex aeolicus at 2.2 A resolution". Acta Crystallogr. D Biol. Crystallogr.60 (Pt 3): 486–92. PMID14993673. doi:10.1107/S0907444904000423.
St Maurice M, Reinhardt L, Surinya KH, Attwood PV, Wallace JC, Cleland WW, Rayment I (2007). "Domain architecture of pyruvate carboxylase, a biotin-dependent multifunctional enzyme". Science317 (5841): 1076–9. PMID17717183. doi:10.1126/science.1144504.
Rothman DL, Magnusson I, Katz LD, Shulman RG, Shulman GI (1991). "Quantitation of hepatic glycogenolysis and gluconeogenesis in fasting humans with 13C NMR". Science254 (5031): 573–6. PMID1948033. doi:10.1126/science.1948033.
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Salto R, Sola M, Olicer F J, Vargas A M (1996). "Effects of starvation, diabetes, and carbon tetrachloride intoxication on rat kidney cortex and liver pyruvate carboxylase levels". Arch. Physiol. Biochem.104 (7): 845–850. PMID9127680. doi:10.1076/apab.104.7.845.13111.
Liu YQ, Han J, Epstein PN, Long YS (2005). "Enhanced rat β-cell proliferation in 60% pancreatectomized islets by increased glucose metabolic flux through pyruvate carboxylase pathway". Am. J. Physiol. Endocrinol. Metab288 (3): E471–E478. PMID15507531. doi:10.1152/ajpendo.00427.2004.
Laybutt DR, Glandt M, Xu G, Ahn YB, Trivedi N, Bonner-Weir S, Weir GC (2003). "Critical reduction in β-cell mass results in two distinct outcomes over time. Adaption with impaired glucose tolerance or decompensated diabetes". J. Biol. Chem.278 (5): 2997–3005. PMID12438314. doi:10.1074/jbc.M210581200.
Poitout V, Robertson R P (2002). "Secondary ß-cell failure in type 2 diabetes-a convergence of glucotoxicity and lipotoxicity". Endocrinology143 (2): 339–342. PMID11796484. doi:10.1210/en.143.2.339.
Boucher A, Lu D, Burgess SC, Telamaque-Potts S, Jensen M V, Mulder H, Wang M Y, Unger R H, Sherry A D, Newgard C B (2004). "Biochemical mechanism of lipid-induced impairment of glucose-stimulated insulin secretion and reversal with a malate analogue". J. Biol. Chem.279 (26): 27263–27271. PMID15073188. doi:10.1074/jbc.M401167200.
Iizuka K, Nakajima H, Namba M, Miyagawa J, Mijazaki J, Hanafusa T, Matsuzawa Y (2002). "Metabolic consequences of long-term exposure of pancreatic β-cells to free fatty acid with special reference to glucose insensitivity". Biochim. Biophys. Acta1586 (1): 23–31. PMID11781146.