Liu L, Iwata K, Kita A, Kawarabayasi Y, Yohda M, Miki K (May 2002). "Crystal structure of aspartate racemase from Pyrococcus horikoshii OT3 and its implications for molecular mechanism of PLP-independent racemization". Journal of Molecular Biology. 319 (2): 479–89. doi:10.1016/S0022-2836(02)00296-6. PMID12051922.
Cao DD, Zhang CP, Zhou K, Jiang YL, Tan XF, Xie J, et al. (July 2019). "Structural insights into the catalysis and substrate specificity of cyanobacterial aspartate racemase McyF". Biochemical and Biophysical Research Communications. 514 (4): 1108–1114. doi:10.1016/j.bbrc.2019.05.063. PMID31101340.
Fischer C, Ahn YC, Vederas JC (December 2019). "Catalytic mechanism and properties of pyridoxal 5'-phosphate independent racemases: how enzymes alter mismatched acidity and basicity". Natural Product Reports. 36 (12): 1687–1705. doi:10.1039/c9np00017h. PMID30994146.
Markovetz AJ, Cook WJ, Larson AD (August 1966). "Bacterial metabolism of d-aspartate involving racemization and decarboxylation". Canadian Journal of Microbiology. 12 (4): 745–51. doi:10.1139/m66-101. PMID5969337.
Ohide H, Miyoshi Y, Maruyama R, Hamase K, Konno R (November 2011). "D-Amino acid metabolism in mammals: biosynthesis, degradation and analytical aspects of the metabolic study". Journal of Chromatography. B, Analytical Technologies in the Biomedical and Life Sciences. 879 (29): 3162–8. doi:10.1016/j.jchromb.2011.06.028. PMID21757409.
Uda K, Abe K, Dehara Y, Mizobata K, Sogawa N, Akagi Y, et al. (February 2016). "Distribution and evolution of the serine/aspartate racemase family in invertebrates". Amino Acids. 48 (2): 387–402. doi:10.1007/s00726-015-2092-0. PMID26352274. S2CID17216091.
Uda K, Abe K, Dehara Y, Mizobata K, Edashige Y, Nishimura R, et al. (October 2017). "Triple serine loop region regulates the aspartate racemase activity of the serine/aspartate racemase family". Amino Acids. 49 (10): 1743–1754. doi:10.1007/s00726-017-2472-8. PMID28744579. S2CID3707632.
Uda K, Ishizuka N, Edashige Y, Kikuchi A, Radkov AD, Moe LA (June 2019). "Cloning and characterization of a novel aspartate/glutamate racemase from the acorn worm Saccoglossus kowalevskii". Comparative Biochemistry and Physiology. Part B, Biochemistry & Molecular Biology. 232: 87–92. doi:10.1016/j.cbpb.2019.03.006. PMID30902582.
Liu L, Iwata K, Kita A, Kawarabayasi Y, Yohda M, Miki K (May 2002). "Crystal structure of aspartate racemase from Pyrococcus horikoshii OT3 and its implications for molecular mechanism of PLP-independent racemization". Journal of Molecular Biology. 319 (2): 479–89. doi:10.1016/S0022-2836(02)00296-6. PMID12051922.
Cao DD, Zhang CP, Zhou K, Jiang YL, Tan XF, Xie J, et al. (July 2019). "Structural insights into the catalysis and substrate specificity of cyanobacterial aspartate racemase McyF". Biochemical and Biophysical Research Communications. 514 (4): 1108–1114. doi:10.1016/j.bbrc.2019.05.063. PMID31101340.
Fischer C, Ahn YC, Vederas JC (December 2019). "Catalytic mechanism and properties of pyridoxal 5'-phosphate independent racemases: how enzymes alter mismatched acidity and basicity". Natural Product Reports. 36 (12): 1687–1705. doi:10.1039/c9np00017h. PMID30994146.
Markovetz AJ, Cook WJ, Larson AD (August 1966). "Bacterial metabolism of d-aspartate involving racemization and decarboxylation". Canadian Journal of Microbiology. 12 (4): 745–51. doi:10.1139/m66-101. PMID5969337.
Ohide H, Miyoshi Y, Maruyama R, Hamase K, Konno R (November 2011). "D-Amino acid metabolism in mammals: biosynthesis, degradation and analytical aspects of the metabolic study". Journal of Chromatography. B, Analytical Technologies in the Biomedical and Life Sciences. 879 (29): 3162–8. doi:10.1016/j.jchromb.2011.06.028. PMID21757409.
Uda K, Abe K, Dehara Y, Mizobata K, Sogawa N, Akagi Y, et al. (February 2016). "Distribution and evolution of the serine/aspartate racemase family in invertebrates". Amino Acids. 48 (2): 387–402. doi:10.1007/s00726-015-2092-0. PMID26352274. S2CID17216091.
Uda K, Abe K, Dehara Y, Mizobata K, Edashige Y, Nishimura R, et al. (October 2017). "Triple serine loop region regulates the aspartate racemase activity of the serine/aspartate racemase family". Amino Acids. 49 (10): 1743–1754. doi:10.1007/s00726-017-2472-8. PMID28744579. S2CID3707632.
Uda K, Ishizuka N, Edashige Y, Kikuchi A, Radkov AD, Moe LA (June 2019). "Cloning and characterization of a novel aspartate/glutamate racemase from the acorn worm Saccoglossus kowalevskii". Comparative Biochemistry and Physiology. Part B, Biochemistry & Molecular Biology. 232: 87–92. doi:10.1016/j.cbpb.2019.03.006. PMID30902582.
Uda K, Abe K, Dehara Y, Mizobata K, Sogawa N, Akagi Y, et al. (February 2016). "Distribution and evolution of the serine/aspartate racemase family in invertebrates". Amino Acids. 48 (2): 387–402. doi:10.1007/s00726-015-2092-0. PMID26352274. S2CID17216091.
Uda K, Abe K, Dehara Y, Mizobata K, Edashige Y, Nishimura R, et al. (October 2017). "Triple serine loop region regulates the aspartate racemase activity of the serine/aspartate racemase family". Amino Acids. 49 (10): 1743–1754. doi:10.1007/s00726-017-2472-8. PMID28744579. S2CID3707632.