World market and biotechnological production of itaconic acid

被引:70
作者
da Cruz, Juliana Cunha [1 ]
de Castro, Aline Machado [2 ]
Camporese Servulo, Eliana Flavia [1 ]
机构
[1] Univ Fed Rio de Janeiro, Escola Quim, 2030 Ctr Tecnol, BR-21949909 Rio De Janeiro, RJ, Brazil
[2] Petrobras SA, Ctr Pesquisa & Desenvolvimento, Div Biotecnol, Av Horacio Macedo 950, BR-21941915 Rio De Janeiro, RJ, Brazil
关键词
Bio-based chemicals; Bio-based polymers; Fungal fermentative processes; Itaconic acid; Itaconic acid polymers; Itaconic acid trading market; Sustainable materials; IMMOBILIZED ASPERGILLUS-TERREUS; SOLID-STATE FERMENTATION; USTILAGO-MAYDIS; MECHANICAL-PROPERTIES; DECARBOXYLASE; GLUCOSE; NIGER; POLYMERIZATION; METABOLITE; TN484-M1;
D O I
10.1007/s13205-018-1151-0
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
The itaconic acid (IA) world market is expected to exceed 216 million of dollars by 2020 as a result of an increasing demand for bio-based chemicals. The potential of this organic acid produced by fermentation mainly with filamentous fungi relies on the vast industrial applications of polymers derived from it. The applications may be as a superabsorbent polymer for personal care or agriculture, unsaturated polyester resin for the transportation industry, poly(methyl methacrylate) for electronic devices, among many others. However, the existence of other substitutes and the high production cost limit the current IA market. IA manufacturing is done mainly in China and other Asia-Pacific countries. Higher economic feasibility and production worldwide may be achieved with the use of low-cost feedstock of local origin and with the development of applications targeted to specific local markets. Moreover, research on the biological pathway for IA synthesis and the effect of medium composition are important for amplifying the knowledge about the production of that biochemical with great market potential.
引用
收藏
页数:15
相关论文
共 93 条
[1]   Core-shell polymers with improved mechanical properties prepared by microemulsion polymerization [J].
Aguiar, A ;
González-Villegas, S ;
Rabelero, M ;
Mendizábal, E ;
Puig, JE ;
Domínguez, JM ;
Katime, I .
MACROMOLECULES, 1999, 32 (20) :6767-6771
[2]   THE EFFECT OF PH ON THE STABILITY OF CIS-ACONITIC ACID IN DILUTE SOLUTION [J].
AMBLER, JA ;
ROBERTS, EJ .
JOURNAL OF ORGANIC CHEMISTRY, 1948, 13 (03) :399-402
[3]  
Araki T., 1957, JPN J PHYTOPATHOL, V22, P83, DOI [10.3186/jjphytopath.22.83, DOI 10.3186/JJPHYTOPATH.22.83]
[4]  
Bailey A, 2016, RECENT ACTIVITY BIOP
[5]   Synthesis of nanosilver loaded chitosan/poly(acrylamide-co-itaconic acid) based inter-polyelectrolyte complex films for antimicrobial applications [J].
Bajpai, S. K. ;
Jyotishi, Pooja ;
Bajpai, M. .
CARBOHYDRATE POLYMERS, 2016, 154 :223-230
[6]  
Batti M., 1963, Process for the Production of Itaconic Acid, Patent No. [3078217, 3078217A]
[7]   Synthesis of Hydrogels by Polymerization of Itaconic Acid-Choline Chloride Deep Eutectic Solvent [J].
Bednarz, Szczepan ;
Fluder, Maria ;
Galica, Mateusz ;
Bogdal, Dariusz ;
Maciejaszek, Ireneusz .
JOURNAL OF APPLIED POLYMER SCIENCE, 2014, 131 (16)
[8]  
BENTLEY R, 1957, J BIOL CHEM, V226, P703
[9]   Metabolic engineering of Yarrowia lipolytica for itaconic acid production [J].
Blazeck, John ;
Hill, Andrew ;
Jamoussi, Mariam ;
Pan, Anny ;
Miller, Jarrett ;
Alper, Hal S. .
METABOLIC ENGINEERING, 2015, 32 :66-73
[10]   Targeting enzymes to the right compartment: Metabolic engineering for itaconic acid production by Aspergillus niger [J].
Blumhoff, Marzena L. ;
Steiger, Matthias G. ;
Mattanovich, Diethard ;
Sauer, Michael .
METABOLIC ENGINEERING, 2013, 19 :26-32