Swe MT, Pongchaidecha A, Chatsudthipong V, Chattipakorn N, Lungkaphin A (June 2019). “Molecular signaling mechanisms of renal gluconeogenesis in nondiabetic and diabetic conditions”. 《Journal of Cellular Physiology》 234 (6): 8134–8151. doi:10.1002/jcp.27598. PMID30370538. S2CID53097552.
de Figueiredo LF, Schuster S, Kaleta C, Fell DA (January 2009). “Can sugars be produced from fatty acids? A test case for pathway analysis tools”. 《Bioinformatics》 25 (1): 152–8. doi:10.1093/bioinformatics/btn621. PMID19117076.
Liu F, Thatcher JD, Barral JM, Epstein HF (June 1995). “Bifunctional glyoxylate cycle protein of Caenorhabditis elegans: a developmentally regulated protein of intestine and muscle”. 《Developmental Biology》 169 (2): 399–414. doi:10.1006/dbio.1995.1156. PMID7781887.
Mithieux G, Rajas F, Gautier-Stein A (October 2004). “A novel role for glucose 6-phosphatase in the small intestine in the control of glucose homeostasis”. 《The Journal of Biological Chemistry》 279 (43): 44231–4. doi:10.1074/jbc.R400011200. PMID15302872.
Chakravarty K, Cassuto H, Reshef L, Hanson RW (2005). “Factors that control the tissue-specific transcription of the gene for phosphoenolpyruvate carboxykinase-C”. 《Critical Reviews in Biochemistry and Molecular Biology》 40 (3): 129–54. doi:10.1080/10409230590935479. PMID15917397. S2CID633399.
Christos Chinopoulos (2020), From Glucose to Lactate and Transiting Intermediates Through Mitochondria, Bypassing Pyruvate Kinase: Considerations for Cells Exhibiting Dimeric PKM2 or Otherwise Inhibited Kinase Activity, https://www.frontiersin.org/articles/10.3389/fphys.2020.543564/full
Swe MT, Pongchaidecha A, Chatsudthipong V, Chattipakorn N, Lungkaphin A (June 2019). “Molecular signaling mechanisms of renal gluconeogenesis in nondiabetic and diabetic conditions”. 《Journal of Cellular Physiology》 234 (6): 8134–8151. doi:10.1002/jcp.27598. PMID30370538. S2CID53097552.
de Figueiredo LF, Schuster S, Kaleta C, Fell DA (January 2009). “Can sugars be produced from fatty acids? A test case for pathway analysis tools”. 《Bioinformatics》 25 (1): 152–8. doi:10.1093/bioinformatics/btn621. PMID19117076.
Liu F, Thatcher JD, Barral JM, Epstein HF (June 1995). “Bifunctional glyoxylate cycle protein of Caenorhabditis elegans: a developmentally regulated protein of intestine and muscle”. 《Developmental Biology》 169 (2): 399–414. doi:10.1006/dbio.1995.1156. PMID7781887.
Mithieux G, Rajas F, Gautier-Stein A (October 2004). “A novel role for glucose 6-phosphatase in the small intestine in the control of glucose homeostasis”. 《The Journal of Biological Chemistry》 279 (43): 44231–4. doi:10.1074/jbc.R400011200. PMID15302872.
Chakravarty K, Cassuto H, Reshef L, Hanson RW (2005). “Factors that control the tissue-specific transcription of the gene for phosphoenolpyruvate carboxykinase-C”. 《Critical Reviews in Biochemistry and Molecular Biology》 40 (3): 129–54. doi:10.1080/10409230590935479. PMID15917397. S2CID633399.
Swe MT, Pongchaidecha A, Chatsudthipong V, Chattipakorn N, Lungkaphin A (June 2019). “Molecular signaling mechanisms of renal gluconeogenesis in nondiabetic and diabetic conditions”. 《Journal of Cellular Physiology》 234 (6): 8134–8151. doi:10.1002/jcp.27598. PMID30370538. S2CID53097552.
Chakravarty K, Cassuto H, Reshef L, Hanson RW (2005). “Factors that control the tissue-specific transcription of the gene for phosphoenolpyruvate carboxykinase-C”. 《Critical Reviews in Biochemistry and Molecular Biology》 40 (3): 129–54. doi:10.1080/10409230590935479. PMID15917397. S2CID633399.