66. Das RK, Brar SK, Verma M (2015) A fermentative approach towards optimizing directed
biosynthesis of fumaric acid by Rhizopus oryzae 1526 utilizing apple industry waste biomass.
Fungal Biol 119:1279–1290. https://doi.org/10.1016/j.funbio.2015.10.001
67. Jiang Y, Liu K, Zhang H et al (2017) Gluconic acid production from potato waste by
Gluconobacter oxidans using sequential hydrolysis and fermentation. ACS Sustain Chem Eng
5:6116–6123. https://doi.org/10.1021/acssuschemeng.7b00992
68. Motte JC, Van Huynh N, Decleire M et al (1990) Monitoring and purification of gluconic
galactonic acids produced during fermentation of whey hydrolysate by Gluconobacter oxydans.
J Chromatogr A 507:321–326. https://doi.org/10.1016/S0021-9673(01)84209-6
69. Srirangan K, Akawi L, Liu X et al (2013) Manipulating the sleeping beauty mutase operon for
the production of 1-propanol in engineered Escherichia coli. Biotechnol Biofuel 6:1–14
70. Li W, Chen G, Gu L et al (2014) Genome shuffling of Aspergillus Niger for improving
Transglycosylation activity. Appl Biochem Biotechnol 172:50–61. https://doi.org/10.1007/
s12010-013-0421-x
71. Biot-pelletier D, Martin VJJ (2014) Evolutionary engineering by genome shuffling. Appl
Microbiol Biotechnol 98:3877–3887. https://doi.org/10.1007/s00253-014-5616-8
72. Demeke MM, Dietz H, Li Y et al (2013) Development of a D-xylose fermenting and inhibitor
tolerant industrial Saccharomyces cerevisiae strain with high performance in lignocellulose
hydrolysates using metabolic and evolutionary engineering. Biotechnol Biofuels:1–24
73. Bustamante D, Segarra S, Montesinos A et al (2019) Improved raoultella planticola strains for
the production of 2,3-Butanediol from glycerol. Fermentation 5:1–10. https://doi.org/10.3390/
fermentation5010011
74. Zambanini T, Buescher JM, Meurer G et al (2016) Malic acid production from glycerol with
Ustilago trichophora. Chem Ing Tech 88:1245. https://doi.org/10.1002/cite.201650311
75. Andersen MR, Salazar MP, Schaap PJ et al (2011) Comparative genomics of citric-acidproducing Aspergillus Niger ATCC 1015 versus enzyme-producing. Genome Res
21:885–897. https://doi.org/10.1101/gr.112169.110.Freely
76. Niu J, Arentshorst M, Nair PDS et al (2016) Identification of a classical mutant in the industrial
host Aspergillus niger by systems genetics : LaeA is required for citric acid production and
regulates the formation of some secondary metabolites. G3 Genes Genomes Genet 6:193–204.
https://doi.org/10.1534/g3.115.024067
77. Gonzalez-garcia RA, Mccubbin T, Navone L et al Microbial propionic acid production.
Fermentation 3:1–20. https://doi.org/10.3390/fermentation3020021
78. Jiang L, Cui H, Zhu L et al (2014) Enhanced propionic acid production from whey lactose with
immobilized Propionibacterium acidipropionici and the role of trehalose synthesis. Green Chem
17:250. https://doi.org/10.1039/c4gc01256a
79. Mienda BS, Salleh FM (2017) Bio-succinic acid production: Escherichia coli strains design
from genome-scale perspectives. Bioengineering 4:418–430. https://doi.org/10.3934/bioeng.
2017.4.418
80. Zhao M, Lu X, Zong H et al (2018) Itaconic acid production in microorganisms. Biotechnol Lett
40:455–464. https://doi.org/10.1007/s10529-017-2500-5
81. Vuoristo KS, Mars AE, Sangra JV et al (2014) Metabolic engineering of itaconate production in
Escherichia coli. Appl Microbiol Biotechnol 99:1–8. https://doi.org/10.1007/s00253-014-6092x
82. Ke X, Li P, Zhou Q et al (2006) Removal of heavy metals from a contaminated soil using
tartaric acid. J Environ Sci 18:727–733
83. Mishra S, Chowdhary P, Bharagava RN (2018) Conventional methods for the removal of
industrial pollutants, their merits and demerits. In: Emerging and eco-friendly approaches for
waste management. Springer, Singapore
84. Yang JY, Yang XE, He ZL et al (2006) Effects of pH, organic acids, and inorganic ions on lead
desorption from soils. Environ Pollut 143:9–15. https://doi.org/10.1016/j.envpol.2005.11.010
86
D. Vishnu et al.
biosynthesis of fumaric acid by Rhizopus oryzae 1526 utilizing apple industry waste biomass.
Fungal Biol 119:1279–1290. https://doi.org/10.1016/j.funbio.2015.10.001
67. Jiang Y, Liu K, Zhang H et al (2017) Gluconic acid production from potato waste by
Gluconobacter oxidans using sequential hydrolysis and fermentation. ACS Sustain Chem Eng
5:6116–6123. https://doi.org/10.1021/acssuschemeng.7b00992
68. Motte JC, Van Huynh N, Decleire M et al (1990) Monitoring and purification of gluconic
galactonic acids produced during fermentation of whey hydrolysate by Gluconobacter oxydans.
J Chromatogr A 507:321–326. https://doi.org/10.1016/S0021-9673(01)84209-6
69. Srirangan K, Akawi L, Liu X et al (2013) Manipulating the sleeping beauty mutase operon for
the production of 1-propanol in engineered Escherichia coli. Biotechnol Biofuel 6:1–14
70. Li W, Chen G, Gu L et al (2014) Genome shuffling of Aspergillus Niger for improving
Transglycosylation activity. Appl Biochem Biotechnol 172:50–61. https://doi.org/10.1007/
s12010-013-0421-x
71. Biot-pelletier D, Martin VJJ (2014) Evolutionary engineering by genome shuffling. Appl
Microbiol Biotechnol 98:3877–3887. https://doi.org/10.1007/s00253-014-5616-8
72. Demeke MM, Dietz H, Li Y et al (2013) Development of a D-xylose fermenting and inhibitor
tolerant industrial Saccharomyces cerevisiae strain with high performance in lignocellulose
hydrolysates using metabolic and evolutionary engineering. Biotechnol Biofuels:1–24
73. Bustamante D, Segarra S, Montesinos A et al (2019) Improved raoultella planticola strains for
the production of 2,3-Butanediol from glycerol. Fermentation 5:1–10. https://doi.org/10.3390/
fermentation5010011
74. Zambanini T, Buescher JM, Meurer G et al (2016) Malic acid production from glycerol with
Ustilago trichophora. Chem Ing Tech 88:1245. https://doi.org/10.1002/cite.201650311
75. Andersen MR, Salazar MP, Schaap PJ et al (2011) Comparative genomics of citric-acidproducing Aspergillus Niger ATCC 1015 versus enzyme-producing. Genome Res
21:885–897. https://doi.org/10.1101/gr.112169.110.Freely
76. Niu J, Arentshorst M, Nair PDS et al (2016) Identification of a classical mutant in the industrial
host Aspergillus niger by systems genetics : LaeA is required for citric acid production and
regulates the formation of some secondary metabolites. G3 Genes Genomes Genet 6:193–204.
https://doi.org/10.1534/g3.115.024067
77. Gonzalez-garcia RA, Mccubbin T, Navone L et al Microbial propionic acid production.
Fermentation 3:1–20. https://doi.org/10.3390/fermentation3020021
78. Jiang L, Cui H, Zhu L et al (2014) Enhanced propionic acid production from whey lactose with
immobilized Propionibacterium acidipropionici and the role of trehalose synthesis. Green Chem
17:250. https://doi.org/10.1039/c4gc01256a
79. Mienda BS, Salleh FM (2017) Bio-succinic acid production: Escherichia coli strains design
from genome-scale perspectives. Bioengineering 4:418–430. https://doi.org/10.3934/bioeng.
2017.4.418
80. Zhao M, Lu X, Zong H et al (2018) Itaconic acid production in microorganisms. Biotechnol Lett
40:455–464. https://doi.org/10.1007/s10529-017-2500-5
81. Vuoristo KS, Mars AE, Sangra JV et al (2014) Metabolic engineering of itaconate production in
Escherichia coli. Appl Microbiol Biotechnol 99:1–8. https://doi.org/10.1007/s00253-014-6092x
82. Ke X, Li P, Zhou Q et al (2006) Removal of heavy metals from a contaminated soil using
tartaric acid. J Environ Sci 18:727–733
83. Mishra S, Chowdhary P, Bharagava RN (2018) Conventional methods for the removal of
industrial pollutants, their merits and demerits. In: Emerging and eco-friendly approaches for
waste management. Springer, Singapore
84. Yang JY, Yang XE, He ZL et al (2006) Effects of pH, organic acids, and inorganic ions on lead
desorption from soils. Environ Pollut 143:9–15. https://doi.org/10.1016/j.envpol.2005.11.010
86
D. Vishnu et al.