| Literature DB >> 32318554 |
Camila Utsunomia1, Qun Ren2, Manfred Zinn1.
Abstract
By the end of 1980s, for the first time polyhydroxyalkanoate (Entities:
Keywords: 4-hydroxybutyric acid; biobased; biopolyester; biopolymer; drug delivery; implants; medicine; tissue engineering
Year: 2020 PMID: 32318554 PMCID: PMC7147479 DOI: 10.3389/fbioe.2020.00257
Source DB: PubMed Journal: Front Bioeng Biotechnol ISSN: 2296-4185
FIGURE 1Chemical structures of poly(4-hydroxybutyrate) (P4HB), P3HB, polyglycolide (PGA), polylactide (PLA), and polycaprolactone (PCL).
Key players in the commercialization of PHAs today.
| Kaneka (Japan) | Plant oil | P(3HB- | Estimated production capacity of 12’000 kilotons in 2020 | 1 |
| Tepha Inc. (United States) | Not reported | P4HB (TephaFLEX®) and copolymers (TephaELAST®) | Not reported | 2 |
| Danimer Scientific (United States) | Canola oil | mcl-PHA (NodaxTM) | Commercial plant (estimated to operate at 10’000 tons per year) | 3 |
| Tianjin Green Biosciences Co., Ltd., (China) | Not reported | P(3HB- | 10’000 tons per year | |
| PHB Industrial S/A (Brazil) | Sugar from sugarcane | P3HB (BioCycle®) | 50 tons per year | 5 |
| Bio-on (Italy) | Molasses and by-products of sugar beet production | P3HB (Minerv-PHATM) | Demonstration plant | |
| Mango Materials (United States) | Raw biogas (methane, carbon dioxide, and hydrogen sulfide) | P3HB | Pilot facility (250 kg per year). Short-term goal: 100 kg per week |
Comparison of properties of P4HB with other thermoplastic polyesters [adapted from Martin and Williams (2003)].
| P4HB | 60 | −51 | 50 | 70 | 1′000 |
| PGA | 225 | 35 | 70 | 6′900 | <3 |
| PLLA | 175 | 65 | 28–50 | 1′200–2′700 | 6 |
| PDLLA | ∗ | 50–53 | 29–35 | 1′900–2′400 | 6 |
| PCL | 57 | −62 | 16 | 400 | 80 |
| P3HB | 180 | 1 | 36 | 2′500 | 3 |
FIGURE 2Metabolic pathway heterologously expressed in recombinant bacteria (e.g., E. coli and H. bluephagenesis) for the synthesis of P4HB and copolymers from related and unrelated C sources. The deletion of endogenous sad and gabD both encoding succinate semialdehyde dehydrogenase reinforces the carbon flux toward 4HB-CoA. PhaA, 3-ketothiolase; PhaB, acetoacetyl-CoA reductase; OgdA, 2-oxo-glutarate dehydrogenase; SucD, succinate semialdehyde dehydrogenase; 4HbD, 4-hydroxybutyrate dehydrogenase; OrfZ, 4HB-CoA transferase; PhaC: PHA synthase.
Patented methods for the production of PHAs containing 4HB.
| WO2018233703 | Gene cassette for fine control of composition ratio of 4-hydroxybutanoic acid in copolymer and application thereof | |
| WO2014058655 | Polyhydroxyalkanoate copolymer compositions (3HB- | |
| US6689589 | Biological systems for manufacture of polyhydroxyalkanoate polymers containing 4-hydroxyacids | |
| US6117658 | Methods of making polyhydroxyalkanoates comprising 4-hydroxybutyrate monomers units | |
| WO1998039453 | Methods for the biosynthesis of polyesters | |
| WO1997007153 | Methods for controlling microbial polyester structure by the addition of polyethylene glycol (PEG) |
Patents for downstream processing of PHA.
| US20190127727A1 | Application of high-voltage pulsed electric field to the waste sludge during the extraction step to destroy the microorganisms and release the PHAs | |
| WO2005052175A2 | Process for recovering PHAs from cellular biomass using non-halogenated compounds | |
| WO2006031492A1 | Single solvent polymer extraction methods | |
| US2005287654A1 | Process for the solvent-based extraction of polyhydroxyalkanoates from biomass | |
| US2001006802A1 | Methods for separation and purifying polyhydroxyalkanoates | |
| US6087471 | High temperature PHA extraction using PHA-poor solvents | |
| US5894062 | Process for the recovery of polyhydroxyalkanoic acid | |
| WO9846782A1 | Methods of PHA extraction and recovery using non-halogenated solvents | |
| US5821299 | Solvent extraction of polyhydroxy-alkanoates from biomass facilitated by the use of marginal nonsolvent | |
| US5849854 | Process for recovering polyhydroxyalkanotes using air classification | |
| WO9707230A1 | Solvent extraction of polyhydroxy-alkanoates from biomass | |
| US4101533 | Cyclic carbonic acid esters as solvents for poly-(β)-hydroxybutyric acid | |
| US3044942 | Process for preparing poly-β-hydroxybutyric acid |
FIGURE 3P4HB morphological change along a polymer degradation assay using a solution of sulfuric acid in methanol as catalyst for 16 h. Adapted from Boesel et al. (2014).
Molecular weights of P4HB after degradation by acidic methanolysis. Adapted from Boesel et al. (2014).
| 872’134 | 292’365 | 89’267 | 49’481 | 30’245 | 16’791 | 9’940 | 6’006 | |
| 2’500’000 | 917’588 | 167’885 | 92’945 | 54’780 | 29’791 | 17’446 | 9’441 | |
Examples of patents on the applications of P4HB and copolymers thereof.
| WO2015006737A1 | Absorbable implants for plastic surgery | |
| WO2012142100A1 | Biodegradable coextruded multilayer films | |
| WO2008070428A2 | Medical devices containing oriented films of poly-4-hydroxybutyrate and copolymers | |
| WO2007092418A3 | Polymeric, degradable drug-eluting stents and coatings comprising copolymers or homopolymers of 4-hydroxybutyrate | |
| WO2006081517A2 | Embolization of poly-4-hydroxybutyrate particles | |
| WO2004101002A2 | P(4HB) fiber useful in devices such as medical textile, tube, general surgical mesh, hernia mesh, pericardial patch, anti-adhesion patch | |
| WO2001015671A2 | Drug delivery devices or bandages | |
| WO2001019422A1 | Polyhydroxyalkanoate compositions for soft tissue repair, augmentation, and viscosupplementation |