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8                                       食品科学技术学报摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇 摇     摇 2019 年 3 月


         medium containing corn steep liquor [ J ]. Applied  [33] 摇 ZHANG T, GE C, DENG L, et al. C4鄄dicarboxylic
         Micro鄄biology and Biotechnology, 2014, 98(4):1539 -  acid production by overexpressing the reductive TCA
         1546.                                             pathway[ J]. FEMS Microbiology Letters, 2015, 362
   [23] 摇 ZAMBANINI T, KLEINEBERG W, SARIKAYA E,           (9):1 - 7.
         et al. Enhanced malic acid production from glycerol with  [34] 摇 NEGORO H, KOTAKA A, MATSUMURA K, et al.
         high鄄cell density Ustilago trichophora TZ1 cultivations  Enhancement of malate鄄production and increase in sensi鄄
         [J]. Biotechnology for Biofuels, 2016, 9(1):135.  tivity to dimethyl succinate by mutation of the VID24
   [24]摇 SUN J, ALPER H S. Metabolic engineering of strains:  gene in Saccharomyces cerevisiae [ J ].  Journal of
         from industrial鄄scale to lab鄄scale chemical production  Bioscience & Bioengineering, 2016, 121 (6):665 -
         [J]. Journal of Industrial Microbiology & Biotechnology,  671.
         2015, 42(3):423 - 436.                      [35]摇 BROWN S H, BASHKIROVA L, BERKA R, et al.
   [25]摇 CAO Y J, CAO Y G, LIN X Z. Metabolically engi鄄    Metabolic engineering of Aspergillus oryzae NRRL 3488
         neered Escherichia coli for biotechnological production of  for increased production of L鄄malic acid [ J]. Applied
         four鄄carbon 1, 4鄄dicarboxylic acids [ J ]. Journal of  Microbiology and Biotechnology, 2013, 97(20):8903 -
         Industrial Microbiology & Biotechnology, 2011, 38(6):  8912.
         649 - 656.                                  [36]摇 MOON S Y, HONG S H, KIM T Y, et al. Metabolic
   [26]摇 KNUF C, NOOKAEW I, REMMERS I, et al. Physio鄄      engineering of Escherichia coli for the production of malic
         logical characterization of the high malic acid鄄producing  acid[ J]. Biochemical Engineering Journal, 2008, 40
         Aspergillus oryzae strain 2103a鄄68[ J]. Applied Micro鄄  (2):312 - 320.
         biology & Biotechnology, 2014, 98(8):3517.  [37]摇 SHIGEO A, AKIRA F, ICHIRO T K. Method of produ鄄
              姚           '       '  姚
   [27] 摇 PRESECKI A V, ZELIC B, VASIC鄄RACKI D. Compari鄄   cing L鄄malic acid by fermentation:US635360A [P/ OL].
         son of the L鄄malic acid production by isolated fumarase  (1962 - 11 - 13)[2018 - 11 - 28]. http:椅www. free鄄
         and fumarase in permeabilized baker蒺s yeast cells[ J].  patentsonline. com/ 3063910. html.
         Enzyme & Microbial Technology, 2007, 41(5):605 -  [38]摇 B魪LAFI鄄BAK魷 K, NEMEST魷ThY N, GUBICZA L. A
         612.                                              study on applications of membrane techniques in biocon鄄
   [28]摇 KWON Y D, KWON O H, LEE H S, et al. The effect    version of fumaric acid to L鄄malic acid[ J]. Desalina鄄
         of NADP鄄dependent malic enzyme expression and anae鄄  tion, 2004, 162(1):301 - 306.
         robic C4 metabolism in Escherichia coli compared with  [39]摇 LIU G L. Malic acid production using a biological elec鄄
         other anaplerotic enzymes [ J ]. Journal of Applied  trodialysis with bipolar membrane[J]. Journal of Mem鄄
         Microbiology, 2010, 103(6):2340 - 2345.           brane Science, 2017, 523(6):122 - 128.
   [29]摇 XIA J, XU J X, HU L, et al. Enhanced poly(L鄄malic  [40]摇 ZHANG B H. Metabolic engineering for fumaric and
         acid) production from pretreated cane molasses by  malic acids production[D]. Ann Arbor: The Ohio State
         Aureobasidium pullulans in fed鄄batch fermentation[ J].  University, 2012.
         Preparative Biochemistry, 2016, 46(8):798 - 802.  [41]摇 JAGER G, BUCHS J. Biocatalytic conversion of ligno鄄
   [30]摇 SAUER M, PORRO D, MATTANOVICH D, et al.           cellulose to platform chemicals[J]. Biotechnology Jour鄄
         Microbial production of organic acids: expanding the  nal, 2012, 7(9):1122 - 1136.
         markets[J]. Trends in Biotechnology, 2008, 26(2):  [42]摇 PALMQVIST E, HAHN鄄H魧GERDAL B. Fermentation
         100 - 108.                                        of lignocellulosic hydrolysates I: inhibition and detoxifi鄄
   [31]摇 CHEN Y, NIELSEN J. Advances in metabolic pathway  cation[ J]. Bioresource Technology, 2000, 74 ( 1 ):
         and strain engineering paving the way for sustainable  17 - 24.
         production of chemical building blocks [ J ]. Current  [43]摇 ALLEN S A, CLARK W, MCCAFFERY J M, et al.
         Opinion in Biotechnology, 2013, 24(6):965 - 972.  Furfural induces reactive oxygen species accumulation
   [32]摇 YIN X, Li J H, SHIN H D, et al. Metabolic engineer鄄  and cellular damage in Saccharomyces cerevisiae [ J].
         ing in the biotechnological production of organic acids in  Biotechnology for Biofuels, 2010, 3(1):2.
         the tricarboxylic acid cycle of microorganisms: advances  [44]摇 KIM S K, JIN Y S, CHOI I G, et al. Enhanced toler鄄
         and prospects[ J]. Biotechnology Advances, 2015, 33  ance of Saccharomyces cerevisiae to multiple lignocellu鄄
         (6):830 - 841.                                    lose鄄derived inhibitors through modulation of spermidine
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