Patent · US10144977B2 · B2 · US
Hyperhalophilic strain and use thereof for the degradation of carbon-containing substrates
- (11) Publication number
- US10144977B2
- (21) Application number
- 15/308,457
- (22) Filing date
- 2015-04-30
- (30) Priority date
- 2014-05-02
- (43) Publication date
- 2018-12-04
- (45) Date of grant
- 2018-12-04
- (51) IPC
- C12N 1/06; C12P 7/62; C08G 63/06
- (52) CPC
- C12R Indexing scheme associated with subclasses C12C - C12Q, relating to microorganisms: 1/00, 1/01, 2001/00, 2001/01
- C12N Microorganisms or enzymes; compositions thereof; propagating, preserving, or maintaining microorganisms; mutation or genetic engineering; culture media: 1/00, 1/06, 1/205
- C12P Fermentation or enzyme-using processes to synthesise a desired chemical compound or composition or to separate optical isomers from a racemic mixture {}: 7/625
- (73) Assignee
- Interoleagineuse D'assistance Et De Developpement (sia) Ste; Institut de Recherche pour le Developpement IRD
- (72) Inventors
- Bernard Ollivier; Wajdi Ben Hania; France Thevenieau; Abdeljabbar Hedi; Marie-Laure Fardeau
- (54) Title
- Hyperhalophilic strain and use thereof for the degradation of carbon-containing substrates
- (57) Abstract
The present invention relates to a novel hyperhalophilic strain and use thereof for the degradation of carbon-containing substrates, in particular making it possible to prepare novel polymers.
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Claims (17)
- A method for degrading a hydrocarbon substrate, the method comprising the step of contacting the hydrocarbon substrate with an isolated hyperhalophilic aerobic strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838 under conditions which cause the hyperhalophilic aerobic strain to degrade the hydrocarbon substrate and to produce polyhydroxyalkanoate (PHA), said hydrocarbon substrate being contained in the culture medium of said hyperhalophilic aerobic strain, wherein said hydrocarbon substrate is selected from the group consisting of a product or coproduct from an oil seed plant or from liquid hydrocarbons: a hydrocarbon selected from the group consisting of a triglyceride, an alkane, an alkene, a polyene, a fatty acid and glycerol, and mixture thereof; an animal oil; and a vegetable oil.
- The method of claim 1, wherein the isolated hyperhalophilic aerobic strain is the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838.
- The method of claim 1, wherein said produced PHA has a weight-average molecular weight above 500,000 g/mol.
- The method of claim 1, wherein the hydrocarbon substrate is a vegetable oil selected from the group consisting of rapeseed oil, sunflower oil, corn oil, linseed oil, olive oil, castor oil, soybean oil, palm oil, palm kernel oil, coconut oil, cottonseed oil, and groundnut oil and their mixtures.
- The method of claim 1, wherein the hydrocarbon substrate comprises a hydrocarbon selected from the group consisting of a 6 to 24 carbon alkane, a 6 to 24 carbon alkene, a 6 to 24 carbon polyene, a 6-24 carbon fatty acid, and glycerol.
- The method of claim 1, further comprising the step of contacting a carbohydrate co-substrate with the hyperhalophilic aerobic strain.
- The method of claim 6, wherein the carbohydrate co-substrate is glucose.
- The method of claim 1, wherein the step of contacting the hydrocarbon substrate with the isolated hyperhalophilic aerobic strain is performed in a culture medium comprising at least one salt selected from the group consisting of NaCl, KCI, CaCl 2, MgCl 2, MgSO 4, and hydrates thereof and their mixtures.
- The method of claim 8, wherein the at least one salt is selected from the group consisting of a NaCl/MgCl 2 mixture with a weight ratio of 15 to 100, and a NaCl/CaCl 2 mixture with a weight ratio of 20 to 100.
- The method of claim 1, wherein the step of contacting the hydrocarbon substrate with the isolated hyperhalophilic aerobic strain is performed under an atmosphere comprising less than 21% by volume of oxygen.
- The method of claim 8, wherein the culture medium comprises nitrogen and carbon in a ratio of 1 to 300.
- The method of claim 8, wherein the culture medium comprises phosphorus and carbon in a ratio of 80 to 800.
- A method for preparing a PHA, the method comprising the steps of: (a) culturing an isolated hyperhalophilic aerobic strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838 in a culture medium comprising a hydrocarbon substrate under conditions which cause the strain to produce the PHA, wherein said hydrocarbon substrate is selected from the group consisting of a product or coproduct from an oil seed plant or from liquid hydrocarbons: a hydrocarbon selected from the group consisting of a triglyceride, an alkane, an alkene, a polyene, a fatty acid and glycerol, and mixture thereofo; an animal oil; and a vegetable oil; (b) lysing the cultured hyperhalophilic aerobic strain to create a cell lysate; and (c) extracting the PHA from the cell lysate.
- The method of claim 13, wherein the step of lysing the cultured hyperhalophilic aerobic strain to create a cell lysate is performed by a lysis method selected from the group consisting of: contacting the cultured hyperhalophilic aerobic strain with a detergent, sonicating the cultured hyperhalophilic aerobic strain, and sonicating the cultured hyperhalophilic aerobic strain in the presence of a detergent.
- The method of claim 13, wherein the step of extracting the PHA from the cell lysate comprises adding sodium hypochlorite to the cell lysate to precipitate out the PHA and a cell fraction.
- The method of claim 13, wherein the step of extracting the PHA from the cell lysate comprises adding sodium hypochlorite to the cell lysate to precipitate out the PHA and a cell fraction and comprising d) purifying the PHA which comprises adding an organic solvent to the PHA and to the cell fraction, to obtain a liquid fraction comprising the PHA devoid of the cell fraction.
- An isolated and lyophilized hyperhalophilic aerobic strain able to degrade a hydrocarbon substrate and produce PHA, the strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838, in particular said strain is the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838.
Description
The present invention relates to a novel hyperhalophilic strain and the use thereof for the degradation of carbon-containing substrates, in particular making it possible to prepare novel polymers.
Every day, thousands of tonnes of petroleum-derived plastic waste accumulate in the environment, leading to an increasing number of landfill sites for non-biodegradable waste and escalation of the costs of waste disposal.
One solution to this problem is to use biodegradable alternatives to these plastics, one of which is the production of polyhydroxyalkanoates (PHA), a class of high-performance biodegradable polymers.
PHAs can be produced commercially in processes of intracellular storage (reserves) carried out by microorganisms using a suitable substrate (in particular a sugar or an organic acid). However, the cost of the PHAs thus obtained is well above that of the petroleum-derived plastics, in particular because of the strict environmental controls required and the sterile operating conditions required for controlling the production operation.
Moreover, PHAs do not always have the necessary physical characteristics for specific industrial applications, in particular glass transition temperature (Tg) or transparency.
Haloferax is a genus of Archaea belonging to the phylum Euryarchaeota and to the order Halobacteriales. The cells of Haloferax are pleomorphic motile rods or flattened disks, and are strict aerobes. They are hyperhalophilic organisms.
Certain species of Haloferax produce biopolymers. In particular, Haloferax mediterranei produces PHA (Lillo et al. Appl. Environ. Microb. 56:2517-2521, 1990).
Citations (2)
- EP2202316A1
- WO2009156950A2
Record as JSON
{
"publication_number": "US10144977B2",
"country": "US",
"kind": "B2",
"title": "Hyperhalophilic strain and use thereof for the degradation of carbon-containing substrates",
"abstract": "The present invention relates to a novel hyperhalophilic strain and use thereof for the degradation of carbon-containing substrates, in particular making it possible to prepare novel polymers.",
"claims": [
"1. A method for degrading a hydrocarbon substrate, the method comprising the step of contacting the hydrocarbon substrate with an isolated hyperhalophilic aerobic strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838 under conditions which cause the hyperhalophilic aerobic strain to degrade the hydrocarbon substrate and to produce polyhydroxyalkanoate (PHA), said hydrocarbon substrate being contained in the culture medium of said hyperhalophilic aerobic strain, wherein said hydrocarbon substrate is selected from the group consisting of a product or coproduct from an oil seed plant or from liquid hydrocarbons: a hydrocarbon selected from the group consisting of a triglyceride, an alkane, an alkene, a polyene, a fatty acid and glycerol, and mixture thereof; an animal oil; and a vegetable oil.",
"2. The method of claim 1, wherein the isolated hyperhalophilic aerobic strain is the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838.",
"3. The method of claim 1, wherein said produced PHA has a weight-average molecular weight above 500,000 g/mol.",
"4. The method of claim 1, wherein the hydrocarbon substrate is a vegetable oil selected from the group consisting of rapeseed oil, sunflower oil, corn oil, linseed oil, olive oil, castor oil, soybean oil, palm oil, palm kernel oil, coconut oil, cottonseed oil, and groundnut oil and their mixtures.",
"5. The method of claim 1, wherein the hydrocarbon substrate comprises a hydrocarbon selected from the group consisting of a 6 to 24 carbon alkane, a 6 to 24 carbon alkene, a 6 to 24 carbon polyene, a 6-24 carbon fatty acid, and glycerol.",
"6. The method of claim 1, further comprising the step of contacting a carbohydrate co-substrate with the hyperhalophilic aerobic strain.",
"7. The method of claim 6, wherein the carbohydrate co-substrate is glucose.",
"8. The method of claim 1, wherein the step of contacting the hydrocarbon substrate with the isolated hyperhalophilic aerobic strain is performed in a culture medium comprising at least one salt selected from the group consisting of NaCl, KCI, CaCl 2, MgCl 2, MgSO 4, and hydrates thereof and their mixtures.",
"9. The method of claim 8, wherein the at least one salt is selected from the group consisting of a NaCl/MgCl 2 mixture with a weight ratio of 15 to 100, and a NaCl/CaCl 2 mixture with a weight ratio of 20 to 100.",
"10. The method of claim 1, wherein the step of contacting the hydrocarbon substrate with the isolated hyperhalophilic aerobic strain is performed under an atmosphere comprising less than 21% by volume of oxygen.",
"11. The method of claim 8, wherein the culture medium comprises nitrogen and carbon in a ratio of 1 to 300.",
"12. The method of claim 8, wherein the culture medium comprises phosphorus and carbon in a ratio of 80 to 800.",
"13. A method for preparing a PHA, the method comprising the steps of: (a) culturing an isolated hyperhalophilic aerobic strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838 in a culture medium comprising a hydrocarbon substrate under conditions which cause the strain to produce the PHA, wherein said hydrocarbon substrate is selected from the group consisting of a product or coproduct from an oil seed plant or from liquid hydrocarbons: a hydrocarbon selected from the group consisting of a triglyceride, an alkane, an alkene, a polyene, a fatty acid and glycerol, and mixture thereofo; an animal oil; and a vegetable oil; (b) lysing the cultured hyperhalophilic aerobic strain to create a cell lysate; and (c) extracting the PHA from the cell lysate.",
"14. The method of claim 13, wherein the step of lysing the cultured hyperhalophilic aerobic strain to create a cell lysate is performed by a lysis method selected from the group consisting of: contacting the cultured hyperhalophilic aerobic strain with a detergent, sonicating the cultured hyperhalophilic aerobic strain, and sonicating the cultured hyperhalophilic aerobic strain in the presence of a detergent.",
"15. The method of claim 13, wherein the step of extracting the PHA from the cell lysate comprises adding sodium hypochlorite to the cell lysate to precipitate out the PHA and a cell fraction.",
"16. The method of claim 13, wherein the step of extracting the PHA from the cell lysate comprises adding sodium hypochlorite to the cell lysate to precipitate out the PHA and a cell fraction and comprising d) purifying the PHA which comprises adding an organic solvent to the PHA and to the cell fraction, to obtain a liquid fraction comprising the PHA devoid of the cell fraction.",
"17. An isolated and lyophilized hyperhalophilic aerobic strain able to degrade a hydrocarbon substrate and produce PHA, the strain comprising a genome having at least 90% DNA-DNA hybridization with the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838, in particular said strain is the S3S1 hyperhalophilic aerobic strain deposited on Feb. 21, 2014 at the National Collection of Microorganisms Cultures (CNCM) under accession number CNCM I-4838."
],
"description_excerpt": "The present invention relates to a novel hyperhalophilic strain and the use thereof for the degradation of carbon-containing substrates, in particular making it possible to prepare novel polymers.\n\nEvery day, thousands of tonnes of petroleum-derived plastic waste accumulate in the environment, leading to an increasing number of landfill sites for non-biodegradable waste and escalation of the costs of waste disposal.\n\nOne solution to this problem is to use biodegradable alternatives to these plastics, one of which is the production of polyhydroxyalkanoates (PHA), a class of high-performance biodegradable polymers.\n\nPHAs can be produced commercially in processes of intracellular storage (reserves) carried out by microorganisms using a suitable substrate (in particular a sugar or an organic acid). However, the cost of the PHAs thus obtained is well above that of the petroleum-derived plastics, in particular because of the strict environmental controls required and the sterile operating conditions required for controlling the production operation.\n\nMoreover, PHAs do not always have the necessary physical characteristics for specific industrial applications, in particular glass transition temperature (Tg) or transparency.\n\nHaloferax is a genus of Archaea belonging to the phylum Euryarchaeota and to the order Halobacteriales. The cells of Haloferax are pleomorphic motile rods or flattened disks, and are strict aerobes. They are hyperhalophilic organisms.\n\nCertain species of Haloferax produce biopolymers. In particular, Haloferax mediterranei produces PHA (Lillo et al. Appl. Environ. Microb. 56:2517-2521, 1990).",
"cpc": [
"C12R 1/00",
"C12N 1/00",
"C12N 1/06",
"C12N 1/205",
"C12P 7/625",
"C12R 1/01",
"C12R 2001/00",
"C12R 2001/01"
],
"ipc": [
"C12N 1/06",
"C12P 7/62",
"C08G 63/06"
],
"assignees": [
"Interoleagineuse D'assistance Et De Developpement (sia) Ste",
"Institut de Recherche pour le Developpement IRD"
],
"inventors": [
"Bernard Ollivier",
"Wajdi Ben Hania",
"France Thevenieau",
"Abdeljabbar Hedi",
"Marie-Laure Fardeau"
],
"filing_date": "2015-04-30",
"publication_date": "2018-12-04",
"grant_date": "2018-12-04",
"priority_date": "2014-05-02",
"application_number": "US-201515308457-A",
"family_id": "50774803",
"cited_by_count": 2,
"citations": [
"EP2202316A1",
"WO2009156950A2"
]
}
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