38. Dibenedetto A, Ventura M, Lobefaro F, de Giglio E, Distaso M, Nocito F (2018) Selective
aerobic
oxidation
of
5-(hydroxymethyl)
furfural
to
2,5-diformylfuran
or
2-formyl-5-furancarboxylic acid in water using MgOÁ CeO2 mixed oxides as catalysts.
Chemsuschem 11(8):1305–1315
39. Dibenedetto A, Ventura M, Lobefaro F, de Giglio E, Altomare A, Cometa S, Nocito F (2018)
Tunable mixed oxides based on CeO 2 for the selective aerobic oxidation of 5(hydroxymethyl) furfural to FDCA in water. Green Chem 20(17):3921–3926
40. Dibenedetto A, Ventura M, Williamson D, Lobefaro F, Jones MD, Mattia D, Nocito F,
Aresta M (2018) Sustainable synthesis of oxalic (and succinic) acid via aerobic oxidation of
C6 polyols by using M@ CNT/NCNT (M = Fe, V) based catalysts in mild conditions.
Chemsuschem 11(6):1073–1081
41. Omoruyi U, Page S, Hallett J, Miller PW (2016) Homogeneous catalyzed reactions of
levulinic acid: to c-valerolactone and beyond. Chemsuschem 9(16):2037–2047
42. Dutta S, Iris KM, Tsang DC, Ng YH, Ok YS, Sherwood J, Clark JH (2019) Green synthesis
of gamma-valerolactone (GVL) through hydrogenation of biomass-derived levulinic acid
using non-noble metal catalysts: a critical review. Chem Eng J 372:992–1006
43. Anbarasan P, Baer ZC, Sreekumar S, Gross E, Binder JB, Blanch HW, Clark DS, Toste FD
(2012) Integration of chemical catalysis with extractive fermentation to produce fuels. Nature
491:235–239
44. Hilpmann G, Steudler S, Ayubi MM, Pospiech A, Walther T, Bley T, Lange R (2019)
Combining chemical and biological catalysis for the conversion of hemicelluloses: hydrolytic
hydrogenation of xylan to xylitol. Catal Lett 149(1):69–76
45. Aresta M, Dibenedetto A (2007) Utilisation of CO 2 as a chemical feedstock: opportunities and
challenges. Dalton Trans 2975
46. Aresta M, Dibenedetto A, Angelini A (2013) The changing paradigm in CO 2 utilization.
J CO 2 Utiliz 3:65–73
47. Subashchandrabose SR, Ramakrishnan B, Megharaj M, Venkateswarlu K, Naidu R (2013)
Mixotrophic cyanobacteria and microalgae as distinctive biological agents for organic
pollutant degradation. Environ Int 51:59–72
48. Yelton AP, Acinas SG, Sunagawa S, Bork P, Pedrós-Alió C, Chisholm SW (2016) Global
genetic capacity for mixotrophy in marine picocyanobacterial. ISME J 10:2946–2957
49. https://www.marketsandmarkets.com/Market-Reports/pha-market-395.html
50. https://www.transparencymarketresearch.com/2-3-butanediol-market.html
51. Han MW, Hyun JL (2017) Toward solar biodiesel production from CO 2 using engineered
cyanobacteria. FEMS Microbiol Lett 364:9
52. Gao Z, Zhao H, Li Z, Tan X, Lu X (2012) Photosynthetic production of ethanol from carbon
dioxide in genetically engineered cyanobacteria. Energy Environ Sci 5:9857–9865
53. Angermayr SA, van der Woude AD, Correddu D (2014) Exploring metabolic engineering
design principles for the photosynthetic production of lactic acid by Synechocystis sp. PCC6803. Biotechnol Biofuels 7:99
54. Wang Y, Sun T, Gao X (2016) Biosynthesis of platform chemical 3-hydroxypropionic acid
(3-HP) directly from CO 2 in cyanobacterium Synechocystis sp. PCC 6803. Metab Eng
34:60–70
55. Kusakabe T, Tatsuke T, Tsuruno K (2013) Engineering a synthetic pathway in cyanobacteria
for isopropanol production directly from carbon dioxide and light. Metab Eng 20:101–108
56. Hirokawa Y, Maki Y, Tatsuke T (2016) Cyanobacterial production of 1,3-propanediol
directly from carbon dioxide using a synthetic metabolic pathway. Metab Eng 34:97–103
57. Lan EI, Ro SY, Liao JC (2013) Oxygen-tolerant coenzyme A-acylating aldehyde
dehydrogenase facilitates efficient photosynthetic n-butanol biosynthesis in cyanobacteria.
Energy Environ Sci 6:2672–2681
58. Shen CR, Liao JC (2012) Photosynthetic production of 2-methyl-1-butanol from CO 2 in
cyanobacterium Synechococcus elongatus PCC7942 and characterization of the native
acetohydroxyacid synthase. Energy Environ Sci 5:9574–9583
216
11 Enhancing Nature
aerobic
oxidation
of
5-(hydroxymethyl)
furfural
to
2,5-diformylfuran
or
2-formyl-5-furancarboxylic acid in water using MgOÁ CeO2 mixed oxides as catalysts.
Chemsuschem 11(8):1305–1315
39. Dibenedetto A, Ventura M, Lobefaro F, de Giglio E, Altomare A, Cometa S, Nocito F (2018)
Tunable mixed oxides based on CeO 2 for the selective aerobic oxidation of 5(hydroxymethyl) furfural to FDCA in water. Green Chem 20(17):3921–3926
40. Dibenedetto A, Ventura M, Williamson D, Lobefaro F, Jones MD, Mattia D, Nocito F,
Aresta M (2018) Sustainable synthesis of oxalic (and succinic) acid via aerobic oxidation of
C6 polyols by using M@ CNT/NCNT (M = Fe, V) based catalysts in mild conditions.
Chemsuschem 11(6):1073–1081
41. Omoruyi U, Page S, Hallett J, Miller PW (2016) Homogeneous catalyzed reactions of
levulinic acid: to c-valerolactone and beyond. Chemsuschem 9(16):2037–2047
42. Dutta S, Iris KM, Tsang DC, Ng YH, Ok YS, Sherwood J, Clark JH (2019) Green synthesis
of gamma-valerolactone (GVL) through hydrogenation of biomass-derived levulinic acid
using non-noble metal catalysts: a critical review. Chem Eng J 372:992–1006
43. Anbarasan P, Baer ZC, Sreekumar S, Gross E, Binder JB, Blanch HW, Clark DS, Toste FD
(2012) Integration of chemical catalysis with extractive fermentation to produce fuels. Nature
491:235–239
44. Hilpmann G, Steudler S, Ayubi MM, Pospiech A, Walther T, Bley T, Lange R (2019)
Combining chemical and biological catalysis for the conversion of hemicelluloses: hydrolytic
hydrogenation of xylan to xylitol. Catal Lett 149(1):69–76
45. Aresta M, Dibenedetto A (2007) Utilisation of CO 2 as a chemical feedstock: opportunities and
challenges. Dalton Trans 2975
46. Aresta M, Dibenedetto A, Angelini A (2013) The changing paradigm in CO 2 utilization.
J CO 2 Utiliz 3:65–73
47. Subashchandrabose SR, Ramakrishnan B, Megharaj M, Venkateswarlu K, Naidu R (2013)
Mixotrophic cyanobacteria and microalgae as distinctive biological agents for organic
pollutant degradation. Environ Int 51:59–72
48. Yelton AP, Acinas SG, Sunagawa S, Bork P, Pedrós-Alió C, Chisholm SW (2016) Global
genetic capacity for mixotrophy in marine picocyanobacterial. ISME J 10:2946–2957
49. https://www.marketsandmarkets.com/Market-Reports/pha-market-395.html
50. https://www.transparencymarketresearch.com/2-3-butanediol-market.html
51. Han MW, Hyun JL (2017) Toward solar biodiesel production from CO 2 using engineered
cyanobacteria. FEMS Microbiol Lett 364:9
52. Gao Z, Zhao H, Li Z, Tan X, Lu X (2012) Photosynthetic production of ethanol from carbon
dioxide in genetically engineered cyanobacteria. Energy Environ Sci 5:9857–9865
53. Angermayr SA, van der Woude AD, Correddu D (2014) Exploring metabolic engineering
design principles for the photosynthetic production of lactic acid by Synechocystis sp. PCC6803. Biotechnol Biofuels 7:99
54. Wang Y, Sun T, Gao X (2016) Biosynthesis of platform chemical 3-hydroxypropionic acid
(3-HP) directly from CO 2 in cyanobacterium Synechocystis sp. PCC 6803. Metab Eng
34:60–70
55. Kusakabe T, Tatsuke T, Tsuruno K (2013) Engineering a synthetic pathway in cyanobacteria
for isopropanol production directly from carbon dioxide and light. Metab Eng 20:101–108
56. Hirokawa Y, Maki Y, Tatsuke T (2016) Cyanobacterial production of 1,3-propanediol
directly from carbon dioxide using a synthetic metabolic pathway. Metab Eng 34:97–103
57. Lan EI, Ro SY, Liao JC (2013) Oxygen-tolerant coenzyme A-acylating aldehyde
dehydrogenase facilitates efficient photosynthetic n-butanol biosynthesis in cyanobacteria.
Energy Environ Sci 6:2672–2681
58. Shen CR, Liao JC (2012) Photosynthetic production of 2-methyl-1-butanol from CO 2 in
cyanobacterium Synechococcus elongatus PCC7942 and characterization of the native
acetohydroxyacid synthase. Energy Environ Sci 5:9574–9583
216
11 Enhancing Nature
