[1] 马军. 补喂β-丙氨酸对伊犁马血浆氨基酸和肌肽含量及运动水平的影响[D].乌鲁木齐:新疆农业大学, 2016.
MA J.The effects of β-alanine supplementation on content of amino acids and carnosinein plasma, and sport performance of YiLi horse[D].Urumqi:Xinjiang Agricultural University, 2016.
[2] 王春月, 潘晨, 廖智, 等.β-丙氨酸补充对厚壳贻贝代谢组的影响[J].水产学报, 2021, 45(1):55-67.
WANG C Y, PAN C, LIAO Z, et al. Effects of β-alanine supplementation on the metabolomics of Mytilus coruscus[J]. Journal of Fisheries of China, 2021, 45(1):55-67.
[3] 苏丽, 王娟, 陈小立, 等. 巴柳氮的合成改进[J]. 化学工业与工程, 2005, 22(4): 313-315.
SU L, WANG J, CHEN X L, et al. Improvement on synthesis of balsalazide[J]. Chemical Industry and Engineering, 2005, 22(4): 313-315.
[4] DALWADI M P, KING J R, MINTON N P.Multi-timescale analysis of a metabolic network in synthetic biology:A kinetic model for 3-hydroxypropionic acid production via β-alanine[J].Journal of Mathematical Biology, 2018, 77(1):165-199.
[5] LACMATA S T, KUIATE J R, DING Y M, et al.Enhanced poly(3-hydroxypropionate) production via β-alanine pathway in recombinant Escherichia coli[J].PLoS One, 2017, 12(3):e0173150.
[6] ZHANG B, ZHANG X M, WANG W, et al.Metabolic engineering of Escherichia coli for D-pantothenic acid production[J].Food Chemistry, 2019, 294(322):267-275.
[7] 罗积杏, 薛建萍, 沈寅初. β-氨基丙酸的合成与应用[J]. 氨基酸和生物资源, 2005, 27(1):52-55.
LUO J X, XUE J P, SHEN Y C. Synthesis and application of β-alanine[J]. Amino Acids & Biotic Resources, 2005, 27(1):52-55.
[8] ARTIOLI G G, GUALANO B, SMITH A, et al.Role of β-alanine supplementation on muscle carnosine and exercise performance[J].Medicine and Science in Sports and Exercise, 2010, 42(6):1 162-1 173.
[9] BLANCQUAERT L, EVERAERT I, DERAVE W.β-alanine supplementation, muscle carnosine and exercise performance[J].Current Opinion in Clinical Nutrition and Metabolic Care, 2015, 18(1):63-70.
[10] SONG C W, LEE J,KO Y S, et al.Metabolic engineering of Escherichia coli for the production of 3-aminopropionic acid[J].Metabolic Engineering, 2015, 30(3):121-129.
[11] 张腾辉. L-天冬氨酸-α-脱羧酶的表达、改造及全细胞制备β-丙氨酸[D].无锡:江南大学, 2018.
ZHANG T H.Expression and modification of L-aspartate-α-decarboxylase for the whole-cell transformation of β-alanine[D].Wuxi:Jiangnan University, 2018.
[12] STEUNENBERG P, KÖNST P M, SCOTT E L, et al.Polymerisation of β-alanine through catalytic ester-amide exchange[J].European Polymer Journal, 2013, 49(7):1 773-1 781.
[13] ZOU X Y, GUO L X, HUANG L L, et al.Pathway construction and metabolic engineering for fermentative production of β-alanine in Escherichia coli[J].Applied Microbiology and Biotechnology, 2020, 104(6):2 545-2 559.
[14] 裘娟萍, 沈寅初, 姚燕来, 等.β-丙氨酸的生物合成方法:中国, CN1285730C[P].2006-11-22.
QUE J P, SHEN Y C, YAO Y L, et al.Biosynthesis method of β-alanine:China, CN1285730C[P].2006-11-22.
[15] 马铭泽, 马云峰.β-丙氨酸的生产方法:中国, CN108383742A[P].2018-08-10.
MA M Z, MA Y F.Production method of β-alanine:China, CN108383742A[P].2018-08-10.
[16] 刘志成, 刘洋, 李瑞峰, 等.一种利用固定化酶制备β-丙氨酸的方法:中国, CN112195171[P].2019-07-08.
LIU Z H, LIU Y, LI R F, et al.A method of preparing β-alanine using immobilized enzymes:China, CN112195171[P].2019-07-08.
[17] 李海, 王夏燕, 沈泽璇, 等.一种β-丙氨酸的制备方法:中国, CN110343052A[P].2019-08-13.
LI H, WANG X Y, SHEN Z X, et al.A method for the preparation of β-alanine:China, CN110343052A[P].2019-08-13.
[18] 曾伟, 滕坤, 杜大鹏, 等.一种β-丙氨酸的连续化生产工艺:中国, CN111333525A[P].2020-04-15.
ZENG W, TENG K, DU D P, et al.A continuous production process of β-alanine:China, CN111333525A[P].2020-04-15.
[19] 梁璐怡, 金少军, 徐建妙, 等. 一株能转化β-氨基丙腈生产β-氨基丙酸的菌株G20的分离与鉴定[J]. 食品与发酵工业, 2008, 34(4):11-15, 20.
LIANG L Y, JIN S J, XU J M, et al. Isolation and identification of a bacterial strain G20 capable of β-aminopropionitrile bioconversion into β-alanine[J]. Food and Fermentation Industries, 2008, 34(4):11-15, 20.
[20] 姚培圆, 吴洽庆, 袁京, 等.酶催化高浓度β-氨基丙腈水解制备β-丙氨酸的方法:中国, CN104195193A[P].2014-09-10.
YAO P Y, WU Q Q, YUAN J, et al.Method for preparing β-alanine by enzymatically catalyzing high-concentration β-aminopropionitrile hydrolysis:China, CN104195193A.2014-09-10.
[21] SHEN Y, ZHAO L Z, LI Y R, et al.Synthesis of β-alanine from L-aspartate using L-aspartate-α-decarboxylase from Corynebacterium glutamicum[J].Biotechnology Letters, 2014, 36(8):1 681-1 686.
[22] ZHANG T H, ZHANG R Z, XU M J, et al.Glu56Ser mutation improves the enzymatic activity and catalytic stability of Bacillus subtilis L-aspartate-α-decarboxylase for an efficient β-alanine production[J].Process Biochemistry, 2018, 70:117-123.
[23] 伊星昊, 张德峰, 付玉荣.结核分枝杆菌panD蛋白功能预测及生物信息学分析[J].中国病原生物学杂志, 2017, 12(6):500-504.
YI X H, ZHANG D F, FU Y R.Bioinformatic analysis and prediction of the structure and function of the panD protein from Mycobacterium tuberculosis[J].Journal of Pathogen Biology, 2017, 12(6):500-504.
[24] ROCK C O, CRONAN J E Jr.Improved purification of acyl carrier protein[J].Analytical Biochemistry, 1980, 102(2):362-364.
[25] KÖNST P M, FRANSSEN M C, SCOTT E L, et al.A study on the applicability of L-aspartate-α-decarboxylase in the biobased production of nitrogen containing chemicals[J].Green Chemistry, 2019, 11(10):1 646.
[26] 张潇潇. 钝齿棒杆菌L-天冬氨酸-α-脱羧酶基因的克隆与表达[D].杭州:浙江工业大学, 2008.
ZHANG X X.Cloning and expression of L-aspartate-α-decarboxylase gene in Corynebacterium Crenatum[D].Hangzhou:Zhejiang University of Technology, 2008.
[27] 陈夏林. L-天冬氨酸-α-脱羧酶基因的功能鉴定及酶学性质研究[D].无锡:江南大学, 2017.
CHEN X L.Identification of L-aspertate-α-decarboxylase encoding genes and analysis of enzyme function[D].Wuxi:Jiangnan University, 2017.
[28] 范雪萍, 冯志彬, 房美芳, 等.特基拉芽孢杆菌L-天冬氨酸-α-脱羧酶的异源表达及高密度发酵[J].食品科学, 2018, 39(2):144-150.
FAN X P, FENG Z B, FANG M F,et al.Heterologous expression of the Bacillus tequilensis L-aspartate-α-decarboxylase in Escherichia coli and its high cell density fermentation[J].Food Science, 2018, 39(2):144-150.
[29] WANG L, PIAO X Y, CUI S M, et al.Enhanced production of β-alanine through co-expressing two different subtypes of L-aspartate-α-decarboxylase[J].Journal of Industrial Microbiology and Biotechnology, 2020, 47(6):465-474.
[30] YU X J, HUANG C Y, XU X D, et al.Protein engineering of a pyridoxaL-5'-phosphate-dependent L-aspartate-α-decarboxylase from Tribolium castaneum for β-alanine production[J].Molecules, 2020, 25(6):1 280.
[31] 莫芹, 李由然, 石贵阳.细菌L-天冬氨酸-α-脱羧酶的分子机制及分子改造研究进展[J].微生物学通报, 2018, 45(7):1 546-1 554.
MO Q, LI Y R, SHI G Y.Advances in molecular mechanism and modification of bacterial L-aspartate-α-decarboxylase[J].Microbiology China, 2018, 45(7):1 546-1 554.
[32] KWON A R, LEE B I, HAN B W, et al. Crystallization and preliminary X-ray crystallographic analysis of aspartate L-decarboxylase from Helicobacter pylori[J]. Acta Crystallographica. Section D, Biological Crystallography, 2002, 58(Pt 5):861-863.
[33] MO Q,LI Y R, WANG J H, et al.Identification of mutations restricting autocatalytic activation of bacterial L-aspartate-α-decarboxylase[J].Amino Acids, 2018, 50(10):1 433-1 440.
[34] PEI W L, ZHANG J L, DENG S Y, et al.Molecular engineering of L-aspartate-α-decarboxylase for improved activity and catalytic stability[J].Applied Microbiology and Biotechnology, 2017, 101(15):6 015-6 021.
[35] MO Q, MAO A, LI Y R, et al.Substrate inactivation of bacterial L-aspartate-α-decarboxylase from Corynebacterium jeikeium K411 and improvement of molecular stability by saturation mutagenesis[J].World Journal of Microbiology and Biotechnology, 2019, 35(4):62-68.
[36] 陈虹. L-天冬氨酸-α-脱羧酶的蛋白质工程改造及其在β-丙氨酸生产中的应用[D].杭州:浙江工业大学, 2019.
CHEN H.Protein engineering of a L-aspartate-α-decarboxylase and its application in the β-alanine production[D].Hangzhou:Zhejiang University of Technology, 2019.
[37] ZIERT C Z.Metabolic engineering of Corynebacterium glutamicum for the production of L-aspartate and its derivatives β-alanine and derivatives[J].Bioresource Technology, 2014, 32(5):79-83.DOI:http://pub.uni-bielefeld.de/publication/2691217.
[38] 孟娇. 大肠杆菌高得率合成琥珀酸的系统代谢工程研究[D].天津:天津大学, 2016.
MENG J.The research of high-yield succinate production by systematically regulating multiple metabolic pathways in Escherichia coli[D].Tianjin:Tianjin University, 2016.
[39] 梁姗姗. 代谢工程改造大肠杆菌合成β-丙氨酸[D].无锡:江南大学, 2017.
LIANG S S.Metabolic engineering of Escherichia coli for the production of β-alanine[D].Wuxi:Jiangnan University, 2017.
[40] ZHOU L, DENG C, CUI W J, et al.Efficient L-alanine production by a thermo-regulated switch in Escherichia coli[J].Applied Biochemistry & Biotechnology, 2016, 178(2):234-337.
[41] PIAO X Y,WANG L,LIN B X, et al.Metabolic engineering of Escherichia coli for production of L-aspartate and its derivative β-alanine with high stoichiometric yield[J].Metabolic Engineering, 2019, 54(4):244-254.
[42] KO Y S,KIM J W,CHAE T U, et al.A novel biosynthetic pathway for the production of acrylic acid through β-alanine route in Escherichia coli[J].ACS Synthetic Biology, 2020, 9(5):1 150-1 159.
[43] 饶德明. 谷氨酸棒杆菌碳四途径合成5-氨基乙酰丙酸研究[D].天津:天津科技大学, 2016.
RAO D M.Study on Corynebacterium glutamicum producing 5-aminolevulinic acid via C4 pathway[D].Tianjin:Tianjin University of Science and Technology, 2016.
[44] QIAN Y Y, LIU J, SONG W, et al.Production of β-Alanine from fumaric acid using a dual-enzyme cascade[J].ChemCatChem, 2018, 10(21):4 984-4 991.
[45] XU J Z, YANG H K, ZHANG W G.NADPH metabolism:A survey of its theoretical characteristics and manipulation strategies in amino acid biosynthesis[J].Critical Reviews In Biotechnology, 2018, 38(7):1 061-1 076.