Fermentation method
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- GLAXOSMITHKLINE BIOLOGICALS SA
- Filing Date
- 2025-09-05
- Publication Date
- 2026-04-14
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Abstract
Description
[Technical Field]
[0001] The present invention relates to a fermentation method. [Background technology]
[0002] The Bordetella genus is the causative agent of numerous bacterial diseases, such as Bordetella pertussis (also known as Haemophilus pertussis), which causes whooping cough, a potentially severe respiratory illness in children. The clinical course of this disease is characterized by a sudden bout of coughing followed by inspiratory effort, often associated with a characteristic "whooping" sound. In severe cases, oxygen deprivation can cause brain damage; however, the most common complication is secondary pneumonia.
[0003] Although whooping cough is usually thought to be caused by Bordetella pertussis, Bordetella parapertussis can be isolated from patients presenting with typical signs and symptoms of whooping cough. B. parapertussis infection is less common than B. pertussis, with 5-10% of whooping cough cases being associated with B. parapertussis (Mertsola (1985) Eur J Clin Microbiol 4:123; Lautrop (1971) Lancet 1(7711):1195-1198). B. parapertussis is associated with mild clinical symptoms, which, combined with serological cross-reactivity with B. pertussis, makes its diagnosis difficult.
[0004] The first generation of vaccines against Bordetella pertussis were whole-cell vaccines composed of killed and sterilized whole cells. These were introduced in many countries in the 1950s and 1960s and were successful in reducing the incidence of whooping cough. A problem with whole-cell B. pertussis vaccines is the high level of reactogenicity associated with them. Acellular vaccines containing purified B. pertussis proteins have low reactogenicity and have been adopted in vaccination programs in many countries. Acellular vaccines containing pertussis toxin (PT), filamentous hemagglutinin (FHA), and very often pertactin (PRN) are widely used and provide effective protection against the severity of whooping cough.
[0005] Bordetella virulence factors for use in such vaccines are produced by fermenting Bordetella and isolating the virulence factors produced; however, Bordetella species are fastidious microorganisms that are difficult to grow at high concentrations (Doern, Clin. Infect. Dis. 2000, 30:166-173), and furthermore, it is difficult to express Bordetella virulence factors, particularly pertussis toxin (PT), which is the limiting antigen in polyvalent pertussis vaccines. Summary of the Invention
[0006] There remains a need in the art to improve the efficiency of Bordetella fermentation and virulence factor production, particularly PT production, for large-scale manufacturing. The inventors have surprisingly found that a media conditioning step performed prior to inoculation significantly improves several measures of Bordetella fermentation performance at large scale, including increased PT yield, increased biomass, and reduced fermentation time.
[0007] [Summary of the Invention] In a first aspect of the invention there is provided a method for producing a conditioned growth medium comprising the steps of: a) providing a growth medium; b) maintaining the growth medium at a temperature between about 28°C and about 35°C for about 20-35 hours; and c) Optionally, stir and / or aerate the growth medium for approximately 10 hours. -1~about 130h -1 Steps that produce a volumetric oxygen mass transfer coefficient (kLa) of thereby providing a conditioned growth medium.
[0008] More specifically, a first aspect of the invention provides a method for producing a sterile conditioned growth medium, comprising the steps of: a) providing a sterile growth medium; b) maintaining the sterile growth medium at a temperature between about 28°C and about 35°C for about 20 to 35 hours; and c) Optionally, stir and / or aerate the sterile growth medium for approximately 10 hours. -1 ~about 130h -1 Steps that produce a volumetric oxygen mass transfer coefficient (kLa) of thereby providing a sterile conditioned growth medium.
[0009] In a second aspect of the present invention, a) providing a growth medium; b) maintaining the growth medium at a temperature between about 28°C and about 35°C for about 20-35 hours; and c) Stir and / or aerate the growth medium for approximately 10 hours. -1 ~about 130h -1 Steps that produce a volumetric oxygen mass transfer coefficient (kLa) of Provided is a conditioned growth medium produced by a method comprising:
[0010] More specifically, the second aspect of the present invention is a) providing a sterile growth medium; b) maintaining the sterile growth medium at a temperature between about 28°C and about 35°C for about 20 to 35 hours; and c) Stir and / or aerate the sterile growth medium for approximately 10 hours. -1 ~about 130h -1 Steps that produce a volumetric oxygen mass transfer coefficient (kLa) of The present invention provides a sterile conditioned growth medium produced by a method comprising:
[0011] In a third aspect of the present invention there is provided a method of culturing Bordetella species, comprising the steps of: a) inoculating at least one Bordetella cell into the conditioned growth medium of the second aspect to produce a Bordetella culture; and b) maintaining the Bordetella culture under conditions that allow for the production of at least one Bordetella protein and / or an increase in biomass. A method is provided that includes:
[0012] In a fourth aspect of the invention there is provided a method for producing a Bordetella protein comprising the steps of: a) inoculating at least one Bordetella cell into a conditioned growth medium according to the second aspect to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. A method is provided that includes:
[0013] In a fifth aspect of the present invention, a) inoculating at least one Bordetella cell into a conditioned growth medium according to the second aspect to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. The present invention provides an isolated Bordetella protein produced by a method comprising:
[0014] In a sixth aspect of the present invention, a) inoculating at least one Bordetella cell into a conditioned growth medium according to the second aspect to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. An immunogenic composition is provided comprising an isolated Bordetella protein produced by a method comprising: [Brief explanation of the drawings]
[0015] [Figure 1] FIG. 1 shows the evolution of biomass (solid line) and oxygen consumption (dots) during Bordetella fermentation in conditioned (black) and non-conditioned (grey) medium. [Figure 2A-B] Figure 1 shows a surface plot for an experimental design evaluating the effect of acclimation method parameters on four measures of Bordetella fermentation performance: (A) PT content, (B) FHA content, (C) biomass, and (D) fermentation time. The results predict that the optimal acclimation parameters for PT yield and biomass production are 34.6 hours of acclimation at 31.2 °C and a kLa near 90 h. [Figure 2C-D] Figure 1 shows a surface plot for an experimental design evaluating the effect of acclimation method parameters on four measures of Bordetella fermentation performance: (A) PT content, (B) FHA content, (C) biomass, and (D) fermentation time. The results predict that the optimal acclimation parameters for PT yield and biomass production are 34.6 hours of acclimation at 31.2 °C and a kLa near 90 h. [Figure 3] Figure 1 shows validation of conditioning parameters at 1 L bioreactor scale. Right panel: Bordetella fermentations performed with conditioned medium (Methods 2, 3, and 4; see Example 3 for details) produced PT contents 10% higher than fermentations performed with unconditioned medium. Left panel: Biomass content was not significantly affected by temperature or kLa at 1 L bioreactor scale. [Figure 4] Figure 1 shows the effect of acclimation period on PT content and biomass at 1 L bioreactor scale. Top panel: 32 and 56 h of medium conditioning resulted in a 10% or greater increase in PT content during fermentation compared to unconditioned medium. Bottom panel: Increased biomass at 32 and 56 h. [Figure 5]Figure 1 shows validation of optimal conditioning parameters at 20 L bioreactor scale. Fermentations performed with conditioned medium with optimal process parameters (31 °C; 32 h; kLa 90 h) resulted in at least a 10% increase in PT yield when compared to non-conditioned medium (NC) or suboptimal conditioning parameters. [Figure 6] FIG. 1 shows average growth curves with error bars (standard deviation) following fermentation in small-scale vessels (<1 L) using media conditioned in either 800 L fermentation tanks or media preparation tanks. [Figure 7A] Average growth curves with error bars (standard deviation) after fermentation in small-scale vessels (<1 L) using (A) medium conditioned vs. unconditioned for 32 hours in an 800 L fermentation tank, or (B) medium conditioned vs. unconditioned for 32 hours in a media preparation tank. [Figure 7B] Average growth curves with error bars (standard deviation) after fermentation in small-scale vessels (<1 L) using (A) medium conditioned vs. unconditioned for 32 hours in an 800 L fermentation tank, or (B) medium conditioned vs. unconditioned for 32 hours in a media preparation tank. [Figure 8] FIG. 1 shows average growth curves with error bars (standard deviation) after fermentation small scale vessels (<1 L) using media conditioned for 20 or 32 hours in a media preparation tank. DETAILED DESCRIPTION OF THE INVENTION
[0016] The present invention is based on the unexpected observation that adding a media conditioning step prior to inoculation significantly improves several measures of Bordetella fermentation performance, including increased yield of Bordetella proteins, increased biomass, and decreased fermentation time. In particular, the step or method is performed using a sterile growth medium. More specifically, the step or method is an aseptic method. Even more specifically, the step or method is an aseptic method performed using a sterile growth medium. As used herein, the term "aseptic method" refers to methods and conditions that prevent contamination by the exclusion of microorganisms.
[0017] As used herein, the term "conditioning" refers to a method in which a sterile growth medium is treated prior to inoculation with bacteria; in other words, conditioning is performed in the absence of bacteria and the culture medium is sterilized. Conditioning is a method that generally includes aeration and / or agitation of the sterilized growth medium to improve performance in the subsequent fermentation step. In particular, the sterilized growth medium remains sterile during the conditioning method. Thus, preferably, the method of producing the conditioned growth medium of the present invention is an aseptic method. Preferably, the method of the present invention is an aseptic method of producing a sterile conditioned growth medium.
[0018] Accordingly, one aspect of the present invention is a method for producing a conditioned growth medium, comprising the steps of: providing a growth medium; maintaining the growth medium at a temperature between about 28°C and about 35°C for about 20-35 hours; and optionally agitating and / or aerating the growth medium for about 10 hours. -1 ~about 130h -1 The present invention provides a method for producing a conditioned growth medium, comprising the steps of: providing a sterile growth medium; maintaining the sterile growth medium at a temperature between about 28°C and about 35°C for about 20-35 hours; and optionally agitating and / or aerating the sterile growth medium for about 10 hours. -1 ~about 130h -1 and a volumetric oxygen mass transfer coefficient (kLa) of 0.01 to 0.100 kcal, thereby providing a conditioned growth medium. The conditioned growth medium produced by the method from the sterile growth medium is itself sterile, i.e., free of independently replicating living organisms.
[0019] The growth medium can be any medium capable of supporting Bordetella cell growth. In certain embodiments, the growth medium is chemically defined Steiner-Scholte (SS) medium or modified Steiner-Scholte medium (MSS). The composition of Steiner-Scholte medium is described in Cohen and Wheeler, American Journal of Public Health (1946) 36:371-376. A medium is modified Steiner-Scholte medium if it contains essentially the same media components as SS medium in essentially the same concentrations, but contains modifications of between 1 and 5 concentrations of the media components, lacks between 1 and 3 media components, or contains between 1 and 20 additional media components.
[0020] In certain embodiments, the modified Steiner-Sholt medium comprises dimethyl-β-cyclodextrin (e.g., about 1 g / L) and acid casein hydrolysate (e.g., about 10 g / L). In further embodiments, the modified Steiner-Sholt medium comprises L-cysteine (e.g., about 40 mg / L) instead of L-cystine; an increased concentration of sodium L-glutamate (e.g., about 11.84 g / L); a reduced concentration of glutathione (e.g., about 150 mg / L); and / or a reduced concentration of ascorbic acid (e.g., about 400 mg / L). Thus, in some embodiments, the growth medium is modified Steiner-Sholt medium (MSS). In some embodiments, the growth medium is modified Steiner-Sholt medium comprising about 1 g / L dimethyl-β-cyclodextrin and about 10 g / L acid casein hydrolysate. In some embodiments, the growth medium is modified Steiner-Scholt medium containing about 40 mg / L L-cysteine instead of L-cystine, about 11.84 g / L sodium L-glutamate, about 150 mg / L glutathione, and / or about 400 mg / L ascorbic acid (e.g., about 400 mg / L).
[0021] Compounds that affect the production of virulence factors from Bordetella pertussis often act by modulating the bvg (bordetella virulence gene) locus and can therefore be designated bvg modulators (see, e.g., EP 2809343B). Thus, in some embodiments, the growth medium can contain at least one bvg modulator selected from the group consisting of niacin, magnesium salts, sulfates, phosphates, carbonates, sucrose, proline, sodium ions at concentrations greater than 100 mM, antifoaming agents, glutathione, and sulfur-containing amino acids. In certain embodiments, the bvg modulator is niacin. In some embodiments, the growth medium is modified Steiner-Scholt medium containing niacin.
[0022] Acclimation parameters: temperature, duration and kLa In one aspect of the invention, conditioning is achieved by holding the sterile growth medium at a predetermined temperature for a predetermined period of time prior to use in fermentation. In one embodiment, the sterile growth medium is held at a temperature between about 28°C and about 35°C. In another embodiment, the sterile growth medium is held at a temperature between about 29°C and about 33°C or between about 30°C and about 32°C. In certain embodiments, the sterile growth medium is held at about 29, 30, 31, 32, or 33°C. In additional embodiments, the sterile growth medium is held at about 30.0, 30.2, 30.4, 30.6, 30.8, 31.0, 31.2, 31.4, 31.6, 31.8, or 32.0°C.
[0023] In certain embodiments, the sterile growth medium is held at the desired temperature for about 20-35 hours. In other embodiments, the sterile growth medium is held at the desired temperature for about 25-35 hours or about 30-35 hours. In particular embodiments, the sterile growth medium is held at the desired temperature, e.g., about 31°C, for about 29, 30, 31, 32, 33, 34, or 35 hours. In a preferred embodiment, the sterile growth medium is held at about 31°C for about 32 hours.
[0024] In certain embodiments, growth medium conditioning is performed at a scale of at least 10 L, at least 100 L, at least 800 L, or at least 1000 L of growth medium. In particular embodiments, growth medium conditioning is performed at a scale of about 10-100 L, about 100-500 L, about 500-1000 L, about 1000-1500 L, about 1500-2000 L, about 1000 L-2500 L, or about 1500 L-2500 L.
[0025] In some embodiments, the methods of the invention require maintaining a constant kLa of the sterile growth medium throughout the conditioning process. kLa is the volumetric oxygen mass transfer coefficient and is a measure of the rate at which oxygen enters the medium. The higher the kLa, the greater the rate at which oxygen is introduced into the medium. Several factors affect the kLa of a particular growth medium preparation, including medium volume and composition, agitation (e.g., stirring), aeration, pressure, and temperature.
[0026] Oxygen can be introduced into the sterile growth medium by agitation (e.g., stirring) and / or aeration (bubbling compressed air through the culture). If different concentrations of oxygen are present in the air introduced into the medium, the flow rate must be adapted to take this into account. For example, if a 100% oxygen supply is introduced into the medium, the flow rate can be correspondingly lower. If a gas containing less oxygen than air is introduced into the medium, a higher flow rate can be applied. In particular, when aeration is achieved by bubbling compressed air through the culture, the compressed air is sterile filtered through a filter, more particularly a filter with pores small enough to prevent microorganisms or spores from entering the vessel (e.g., bioreactor, fermenter, or media preparation tank) along with the air, preferably with a cutoff value in the range of about 0.2 μm to about 0.45 μm.
[0027] kLa can be measured using methods known in the art, for example, as described in Example 1 of U.S. Patent Application Publication No. 2008 / 0193475. The method involves setting up a bioreactor at the conditions of medium volume, temperature, pressure, agitation, and aeration for which kLa is to be measured, venting by replacing the air with nitrogen gas, re-gassing by restoring air aeration, and measuring the rate at which pO2 returns to its steady-state level.
[0028] kLa is calculated by plotting the logarithm (100-pO2%) against time. The angle coefficient of the linear portion of the graph corresponds to -kLa. Typically, only data between 20% and 80% pO2 are considered.
[0029] The kLa of a medium conditioning step or method is affected by many factors, including the agitation rate and aeration flow rate of the medium. A constant kLa can be maintained, for example, while decreasing the agitation rate and increasing the aeration rate of the medium, or vice versa. In some embodiments, both the agitation rate and aeration rate of the growth medium are constant during medium conditioning. In one embodiment, the growth medium is continuously agitated throughout the conditioning period. In another embodiment, the growth medium is continuously aerated throughout the conditioning period. In another embodiment, both agitation and aeration are performed continuously throughout the conditioning period.
[0030] The growth medium adaptation can be performed for approximately 10 to 200 hours. -1 , 10~150h -1 , 10~100h -1 , 10~80h -1 , 10~50h -1 , 10~40h -1 , 10~30h -1 , 20~150h -1 , 20~100h -1 , 20~50h -1 , 20~60h -1 , 20~80h -1 , 20~30h -1 , 20~40h -1 , 30~60h -1 , 60~80h -1, 60~150h -1 Or 60 to 200 hours -1 In certain embodiments, growth medium conditioning is performed for about 10 h. -1 ~about 130h -1 , about 60h -1 ~about 130h -1 , or about 90 hours -1 In a preferred embodiment, the kLa of the growth medium is about 90 h -1 is held in
[0031] 10-30 hours for a volume of 10-30 liters -1 A kLa of 1000 kcal / min is achieved, for example, by using an air flow or aeration rate of 1 to 5 liters / min and an agitation rate of 200 to 400 rpm (revolutions per minute), for example, an aeration rate of 2 to 4 liters / min and an agitation rate of 250 to 350 rpm.
[0032] 30-60 hours for volumes of 30-250 liters -1 A kLa of 1000 kcal / min can be achieved, for example, by using an airflow rate of 15-25 liters / min and an agitation rate of 150-250 rpm, for example, by using an airflow rate of 20-25 liters / min and an agitation rate of 200-250 rpm, for example, by using an airflow rate of 15-20 liters / min and an agitation rate of 200-250 rpm.
[0033] In certain embodiments, the incubation time is about 31° C. for about 32 hours, about 90 hours, or about 12 hours. -1 Condition the growth medium with 100 kcal of 1000 kJ / ml.
[0034] The present invention further provides a conditioned growth medium produced by the method of the present invention. The conditioned growth medium is sterile. By "sterile" is meant, for example, that the growth medium is free or essentially free of bacterial cells prior to inoculation with Bordetella cells.
[0035] Thus, in one aspect, the present invention provides a method for producing a medicament for the treatment of a pulmonary arthritis, comprising: a) providing a sterile growth medium; b) maintaining the sterile growth medium at a temperature between about 28°C and about 35°C for about 20 to 35 hours; and c) Stir and / or aerate the sterile growth medium for approximately 10 hours. -1 ~about 130h -1 Steps that produce a volumetric oxygen mass transfer coefficient (kLa) of The present invention provides a conditioned growth medium produced by a method, particularly a sterile method, comprising:
[0036] In particular, in step c), the sterile growth medium is continuously stirred and / or aerated during step b). In some embodiments, in step c), the sterile growth medium is continuously stirred during step b). In other embodiments, in step c), the sterile growth medium is continuously aerated during step b). In some embodiments, in step c), the sterile growth medium is continuously stirred and aerated during step b).
[0037] Bordetella Fermentation Method In one aspect, the present invention provides a method of culturing Bordetella species, the method comprising the steps of inoculating a conditioned growth medium produced as described herein with at least one Bordetella cell to produce a Bordetella culture; and maintaining the Bordetella culture under conditions that allow for production of at least one Bordetella protein and / or increased biomass. In particular, the conditioned growth medium is sterilized prior to inoculation with the at least one Bordetella cell.
[0038] In another aspect of the invention there is provided a method for producing a Bordetella protein, comprising the steps of: a) inoculating at least one Bordetella cell into a conditioned growth medium produced as described herein to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. A method is provided that includes:
[0039] Preferably, the method for producing a Bordetella protein comprises: a) inoculating at least one Bordetella cell into a sterile conditioned growth medium produced as described herein to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. Includes.
[0040] In a further aspect of the invention, a) inoculating at least one Bordetella cell into a conditioned growth medium produced as described herein to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. The present invention provides an isolated Bordetella protein produced by a method comprising:
[0041] Preferably, the isolated Bordetella protein is a) inoculating at least one Bordetella cell into a sterile conditioned growth medium produced as described herein to produce a Bordetella culture: b) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and c) isolating said at least one Bordetella protein from the culture. The method is produced by a method comprising:
[0042] In some embodiments, the Bordetella species is Bordetella pertussis or Bordetella parapertussis. In one embodiment, the at least one Bordetella protein is selected from the group consisting of pertussis toxin (PT), filamentous hemagglutinin (FHA), pertactin (PRN; also known as 69K), and adenylate cyclase (AC). In preferred embodiments, the at least one Bordetella protein is pertussis toxin, e.g., genetically detoxified pertussis toxin (PTg). In some embodiments, the pertussis toxin is genetically detoxified pertussis toxin in which two catalytic residues of the S1 subunit (Arg9 and Glu129) have been mutated to Lys9 and Gly129 (referred to as the PT-9K / 129G mutant).
[0043] Biomass can be analyzed by measuring optical density (OD), e.g., optical density at 650 nm (OD 650 The optical density can be quantified by determining the optical density (also referred to as the optical density (OD)). In one embodiment, the bacterial density reaches at least 10, at least 15, at least 20, at least 30, at least 40, at least 50, at least 60, or at least 70 OD units measured at 650 nm at the end of fermentation. Optical density can also be expressed in absorbance units (AU). The end of fermentation is defined as the point in the culture when dissolved oxygen (pO2) reaches a minimum and begins to rise.
[0044] In another embodiment, the invention provides an immunogenic composition comprising an isolated Bordetella protein produced by the method of the invention. The immunogenic composition of the invention may further comprise one or more pharmaceutically acceptable excipients, adjuvants and / or additional antigens.
[0045] Conditioned growth medium prepared according to the methods of the present invention offers certain advantages in the fermentation of Bordetella cultures. For example, the methods of the present invention can produce at least one Bordetella protein in a yield that is at least 5%, 10%, 15%, 20%, 25%, or 30% higher than the yield resulting from the same method performed with non-conditioned growth medium. In certain embodiments, the yield of PT is increased by at least 10%, and the yield of filamentous hemagglutinin is unchanged or higher, compared to the yield produced from the same method performed with non-conditioned growth medium. The non-conditioned growth medium used for comparison is growth medium that has not been treated or conditioned by the methods of the present invention, e.g., freshly prepared growth medium. Those skilled in the art will understand that the conditioned and non-conditioned growth media used for comparison are of the same type, i.e., allowing for like-for-like comparison.
[0046] In another embodiment, the fermentation time, defined as the time from inoculation to the point at which pO2 levels reach a minimum and begin to rise, is at least 10% shorter than the fermentation time of the same method performed in non-conditioned growth medium.
[0047] In another embodiment, the Bordetella fermentation method of the invention produces at the end of fermentation a biomass that is at least 10% higher than the biomass produced by the same method performed using a non-conditioned growth medium.
[0048] In another embodiment, the Bordetella fermentation method of the present invention further comprises purifying one or more Bordetella proteins from the Bordetella culture.
[0049] In certain embodiments, the present invention provides an aseptic method for producing a conditioned growth medium, comprising the steps of providing a sterile modified Steiner-Scholt growth medium; maintaining the sterile growth medium at a temperature of between about 30-32°C for about 31-33 hours; and agitating and / or aerating the sterile growth medium for about 90 hours. -1More specifically, the method includes the steps of providing a sterile modified Steiner-Scholt growth medium; maintaining the sterile growth medium at a temperature between about 30-32°C for about 31-33 hours; and agitating and aerating the sterile growth medium for about 90 hours. -1 to generate a volumetric oxygen mass transfer coefficient (kLa) of 0.1 to 0.25, thereby providing a conditioned growth medium.
[0050] In certain embodiments, the present invention provides a sterile method for producing a conditioned growth medium, comprising the steps of providing a sterile modified Steiner-Scholt growth medium comprising about 1 g / L dimethyl-β-cyclodextrin, about 10 g / L acid casein hydrolysate, about 40 mg / L L-cysteine instead of L-cystine, about 11.84 g / L sodium L-glutamate, about 150 mg / L glutathione, and about 400 mg / L ascorbic acid; maintaining the sterile growth medium at a temperature of about 31° C. for about 32 hours; and agitating and / or aerating the sterile growth medium to maintain the conditioned growth medium for about 90 hours. -1 More specifically, the method includes the steps of providing a sterile modified Steiner-Scholt growth medium containing about 1 g / L dimethyl-β-cyclodextrin, about 10 g / L acid casein hydrolysate, about 40 mg / L L-cysteine instead of L-cystine, about 11.84 g / L sodium L-glutamate, about 150 mg / L glutathione, and about 400 mg / L ascorbic acid; maintaining the sterile growth medium at a temperature of about 31° C. for about 32 hours; and agitating and aerating the sterile growth medium to produce a conditioned growth medium for about 90 hours. -1 to produce a volumetric oxygen mass transfer coefficient (kLa) of 0.01 to 0.100 kcal, thereby producing a conditioned growth medium.
[0051] Specific Embodiments Embodiment 1. A method of producing a conditioned growth medium, comprising the steps of: (i) providing a growth medium; (ii) maintaining the growth medium at a temperature between about 28 and about 35°C for about 20 to 35 hours; and (iii) optionally agitating and / or aerating the growth medium for about 10 hours. -1 ~about 130h -1 thereby providing a conditioned growth medium. Embodiment 2. The method of embodiment 1, wherein step b) is carried out at a temperature between about 29°C and about 33°C, about 30°C and about 32°C, or about 31°C. Embodiment 3. The method of embodiment 1 or 2, wherein step b) is carried out for about 25-35 hours, about 30-35 hours, or about 32 hours. Embodiment 4. The method of any one of embodiments 1 to 3, wherein step c) comprises continuously stirring the growth medium during step b). Embodiment 5. Stirring is performed for about 60 hours. -1 ~about 130h -1 Or about 90 hours -1 5. The method of embodiment 4, wherein the stirring speed is such that a volumetric oxygen mass transfer coefficient (kLa) of Embodiment 6. The method of any one of embodiments 1 to 5, wherein step c) comprises continuously aerating the growth medium during step b). Embodiment 7. Ventilation for about 60 hours -1 ~about 130h -1 Or about 90 hours -1 7. The method of embodiment 6, wherein the flow rate is such that the volumetric oxygen mass transfer coefficient (kLa) is Embodiment 8. The method of any one of embodiments 1 to 7, wherein step c) comprises continuously stirring and aerating the growth medium during step b). Embodiment 9. Stirring and aeration for about 60 hours -1 ~about 130h -1 Or about 90 hours -1 9. The method of embodiment 8, wherein the agitation speed and flow rate result in a volumetric oxygen mass transfer coefficient (kLa) of Embodiment 10. The method of any one of embodiments 1 to 9, carried out at a scale of at least 10 L, at least 100 L, or at least 1000 L of growth medium. Embodiment 11. A conditioned growth medium produced by the method of any one of embodiments 1 to 10. Embodiment 12. A method of culturing Bordetella species, comprising: (i) inoculating at least one Bordetella cell into a conditioned growth medium of embodiment 11 to produce a Bordetella culture; and (ii) maintaining the Bordetella culture under conditions that allow for production of at least one Bordetella protein and / or increased biomass. Embodiment 13. A method for producing a Bordetella protein, comprising: (i) inoculating at least one Bordetella cell into a conditioned growth medium of embodiment 11 to produce a Bordetella culture; (ii) maintaining the Bordetella culture under conditions that allow production of at least one Bordetella protein; and (iii) isolating the at least one Bordetella protein from the culture. Embodiment 14. The method of embodiment 12 or 13, wherein the at least one Bordetella protein is selected from the group consisting of pertussis toxin, filamentous hemagglutinin, pertactin, and adenylate cyclase. Embodiment 15. The method of any of embodiments 12 to 14, wherein at least one Bordetella protein is produced in a yield that is at least 10% greater than the yield produced from the same method performed in a non-conditioned growth medium. Embodiment 16 The method of any one of embodiments 12 to 15, wherein at least one Bordetella protein is pertussis toxin, such as genetically detoxified pertussis toxin. Embodiment 17. The method of any of embodiments 12 to 16, wherein at least one Bordetella protein is a genetically detoxified pertussis toxin, in which the two catalytic residues of the S1 subunit (Arg9 and Glu129) are mutated to Lys9 and Gly129. Embodiment 18. The method of embodiment 16, wherein the yield of filamentous hemagglutinin is unchanged from or higher than the yield produced from the same method performed in non-conditioned growth medium. Embodiment 19. The method of any of embodiments 12 to 18, wherein the fermentation time is at least 10% shorter than the fermentation time of the same method performed in a non-conditioned growth medium. Embodiment 20. The method of any of embodiments 12 to 19, wherein the Bordetella culture has a biomass at the end of fermentation that is at least 10% higher than the biomass produced by the same method performed in a non-conditioned growth medium. Embodiment 21 The method of any one of embodiments 12 to 20, further comprising purifying one or more Bordetella proteins from the Bordetella culture. Embodiment 22. The method of any one of embodiments 1 to 10, wherein the growth medium is sterilized. Embodiment 23. An isolated Bordetella protein produced by the method of any of embodiments 12 to 22. Embodiment 24. An immunogenic composition comprising the isolated Bordetella protein of embodiment 23.
[0052] Embodiment 25. An aseptic method for producing a conditioned growth medium, comprising the steps of: (i) providing a sterile growth medium; (ii) maintaining the sterile growth medium at a temperature between about 28°C and about 35°C for about 20-35 hours; and (iii) agitating and / or aerating the sterile growth medium to maintain the conditioned growth medium for about 10 hours. -1 ~about 130h -1 2. The method of claim 1, wherein the conditioned growth medium is conditioned to a volumetric oxygen mass transfer coefficient (kL a ) of 0.1 to 1.0 kcal. Embodiment 26. The aseptic method of embodiment 25, wherein step b) is carried out at a temperature between about 29°C and about 33°C, about 30°C and about 32°C, or about 31°C. Embodiment 27. The aseptic method of embodiment 25 or 26, wherein step b) is carried out for about 25 to 35 hours, about 30 to 35 hours, or about 32 hours. Embodiment 28. The aseptic method of embodiment 25, 26 or 27, wherein step c) comprises continuously stirring the sterile growth medium during step b). Embodiment 29. Stirring is performed for about 60 hours. -1 ~about 130h -1 Or about 90 hours -1 29. The method of embodiment 28, wherein the agitation speed is such that a volumetric oxygen mass transfer coefficient (kLa) of Embodiment 30. The aseptic method of any of embodiments 25 to 29, wherein step c) comprises continuously aerating the sterile growth medium during step b). Embodiment 31. Ventilation for about 60 hours -1 ~about 130h -1 Or about 90 hours -1 31. The method of embodiment 30, wherein the flow rate is such that the volumetric oxygen mass transfer coefficient (kLa) is Embodiment 32. The aseptic method of any of embodiments 25 to 31, wherein step c) comprises continuously stirring and aerating the sterile growth medium during step b). Embodiment 33. Stirring and aeration for about 60 hours -1 ~about 130h -1 Or about 90 hours -1 33. The method of claim 32, wherein the agitation speed and flow rate result in a volumetric oxygen mass transfer coefficient (kLa) of Embodiment 34. The aseptic method of any of embodiments 25 to 33, carried out at a scale of at least 10 L, at least 100 L, or at least 1000 L of sterile growth medium. Embodiment 35. A conditioned growth medium produced by the sterile method of any of embodiments 25 to 34. Embodiment 36. A method of culturing Bordetella species, comprising: (i) inoculating at least one Bordetella cell into a conditioned growth medium of embodiment 35 to produce a Bordetella culture; and (ii) maintaining the Bordetella culture under conditions that allow production of at least one Bordetella protein and / or increased biomass. Embodiment 37. A method for producing a Bordetella protein, comprising: (i) inoculating at least one Bordetella cell into the conditioned growth medium of embodiment 35 to produce a Bordetella culture; (ii) maintaining the Bordetella culture under conditions that allow the production of at least one Bordetella protein; and (iii) isolating the at least one Bordetella protein from the culture. Embodiment 38 The method of embodiment 36 or 37, wherein the at least one Bordetella protein is selected from the group consisting of pertussis toxin, filamentous hemagglutinin, pertactin, and adenylate cyclase. Embodiment 39. The method of embodiment 36, 37 or 38, wherein at least one Bordetella protein is produced in a yield that is at least 10% higher than the yield produced from the same method performed in a non-conditioned growth medium. Embodiment 40 The method of any of embodiments 36 to 39, wherein at least one Bordetella protein is pertussis toxin, e.g., genetically detoxified pertussis toxin. Embodiment 41. The method of any of embodiments 36 to 40, wherein at least one Bordetella protein is a genetically detoxified pertussis toxin, in which the two catalytic residues of the S1 subunit (Arg9 and Glu129) are mutated to Lys9 and Gly129. Embodiment 42. The sterile method of embodiment 40 or 41, wherein the yield of filamentous hemagglutinin is unchanged from or higher than the yield produced from the same method performed in non-conditioned growth medium. Embodiment 43. The method of any of embodiments 36 to 42, wherein the fermentation time is at least 10% shorter than the fermentation time of the same method performed in a non-conditioned growth medium. Embodiment 44. The method of any of embodiments 36 to 43, wherein the Bordetella culture has, at the end of fermentation, a biomass that is at least 10% higher than the biomass produced by the same method performed in a non-conditioned growth medium. Embodiment 45 The method of any one of embodiments 36 to 44, further comprising purifying one or more Bordetella proteins from the Bordetella culture.
[0053] Embodiment 46. The method of any preceding embodiment, wherein the growth medium is a modified Steiner-Scholt medium (MSS), optionally containing niacin. Embodiment 47. The method of embodiment 46, wherein the growth medium is a modified Steiner-Scholt medium containing about 1 g / L dimethyl-β-cyclodextrin and about 10 g / L acid casein hydrolysate. Embodiment 48. The method of embodiment 46 or 47, wherein the growth medium is a modified Steiner-Scholt medium that contains, instead of L-cystine, about 40 mg / L L-cysteine; about 11.84 g / L L-Na glutamate; about 150 mg / L glutathione; and / or about 400 mg / L ascorbic acid (e.g., about 400 mg / L). Embodiment 49. An aseptic method for producing a sterile conditioned growth medium, comprising: (a) providing a sterile growth medium; (b) maintaining the sterile growth medium at a temperature between about 29°C and about 33°C, about 30°C and about 32°C, or about 31°C for about 25-35 hours, about 30-35 hours, or about 32 hours; and (c) continuously stirring and / or aerating the sterile growth medium during step b) to maintain the sterile growth medium for about 60 hours. -1 ~about 130h -1 , or about 90 hours -1 2. The method of claim 1, wherein the growth medium is a modified Steiner-Scholt medium (MSS), optionally containing niacin, and the growth medium is a modified Steiner-Scholt medium (MSS), optionally containing niacin.
[0054] general Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this disclosure belongs. The singular terms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise. Similarly, the word "or" is intended to include "and" unless the context clearly dictates otherwise.
[0055] Additionally, numerical limitations given with respect to concentrations or levels of substances, e.g., solution component concentrations or ratios thereof, and reaction conditions, e.g., temperature, pressure, and cycle time, are intended to be approximate. As used herein, the term "about" is intended to mean the amount ±10%. Unless the context requires otherwise, when used in expressing a range of values (e.g., "between X and Y" or "between about X and about Y"), the term "between" is intended to encompass the endpoints of the range (i.e., including X and Y).
[0056] The term "comprise" means "include." Thus, unless the context requires otherwise, the term "comprises" and variations such as "comprise" and "comprising" are understood to imply the inclusion of a stated compound or composition (e.g., nucleic acid, polypeptide, antigen) or step, or group of compounds or steps, but not the exclusion of any other compound, composition, step, or group thereof. The term "consisting of" means "including, but not limited to." The term "consisting essentially of" means that a composition or method may include additional components and / or steps, but only if the additional components and / or steps do not materially alter the basic and novel characteristics of the claimed composition or method. The abbreviation "eg" is derived from the Latin "exempli gratia" and is used herein to indicate a non-limiting example. Thus, the abbreviation "eg" is synonymous with the term "for example."
[0057] The invention is further described by reference to the following non-limiting examples and figures.
[0058] [Example] [Example 1] Demonstration of the effects of medium conditioning on a laboratory scale Preliminary observations indicated that yield variation in commercial-scale Bordetella fermentation processes may be due to differences in growth medium conditioning before inoculation. To explore the cause of this variation, the effect of growth medium conditioning before inoculation was investigated using a laboratory-scale model.
[0059] laboratory scale model A laboratory-scale model was developed to replicate the three-step commercial process: 1) pre-culture train, 2) medium conditioning, and 3) fermentation. The pre-culture train step refers to a pre-culture step used to accumulate sufficient biomass to inoculate the fermentation step. Because medium conditioning is a sterile process step performed in the absence of bacteria, medium conditioning can be performed independently of the pre-culture train step, e.g., before, after, or in parallel. For the preculture, 10 ml of fresh medium (MSS; derived from the medium of Stainer and Scholte. J. Gen. Microbial. 63:211-220 (1971) by adding 1 g / L dimethyl-β-cyclodextrin and 10 g / L acid casein hydrolysate, substituting 40 mg / L L-cysteine for 40 mg / L L-cystine, and using a high concentration of sodium L-glutathione (11.84 g / L), reducing glutathione (150 mg / L) and ascorbic acid (400 mg / L)) was added to a first shake flask preculture. 9 CFU of Bordetella pertussis was inoculated and incubated at 35°C with agitation at 150 rpm for 24 hours. The first preculture was used to inoculate a second shake flask preculture containing 1000 ml of fresh medium (MSS). The second preculture was incubated at 35°C with agitation at 150 rpm for 24 hours. Aliquots of the preculture train were then used to inoculate conditioned growth medium for fermentation, as described below.
[0060] Medium conditioning was performed in parallel with the preculture train. 1 L of sterile growth medium (same type as used for preculture) was aseptically transferred into a 1 L bioreactor (BioBlock platform (4 x 1 L bioreactors), Eppendorf) and incubated at 35 °C for 40 h with a sparged air flow rate of 20 L per hour and an agitation rate of 430 rpm (60 h -1 As a control, unconditioned growth medium was kept at 4°C without further treatment. Conditioned and unconditioned medium were prepared four times using the same procedure (Preparation 1, Preparation 2, Preparation 3, Preparation 4).
[0061] The fermentation step consisted of inoculating the Bordetella inoculum from the preculture train into conditioned and unconditioned media and culturing them under standard conditions (35°C, at least 90 h). -1 This was done on a small scale by incubating the culture in a small-scale fermentation vessel (<1 L) at 100 kJ / min (kLa).
[0062] Fermentation performance measurement Fermentation performance, as indicated by biomass, PT yield, and fermentation time, was evaluated at least three times per preparation. In-line measurements of biomass, dissolved oxygen tension (pO2), and pH were recorded throughout the fermentation. The start of fermentation was defined as the time when the Bordetella preculture train was added to the fermentation vessel. The end of fermentation was defined as the time point when dissolved oxygen (pO2) reached a minimum and began to return toward 100%. The inflection point in pO2 indicates exhaustion of the carbon source in the culture and the transition of cells from growth phase to stationary phase. Therefore, fermentation time is the time between the start of fermentation and the end of fermentation.
[0063] At the end of fermentation, the supernatant was collected by centrifugation (14000 g, 10 min at room temperature), filtered (0.22 μm filter mesh), and stored at −20° C. for further analysis. Pertussis toxin (PT) levels at the end of fermentation were assayed by ELISA using standard methods.
[0064] result The results are summarized in Table 1 as the mean percent change relative to unconditioned medium [conditioned / unconditioned-1 (%)]. For all four replicates (preparations 1-4), pertussis toxin levels at the end of fermentation increased by at least 10% in conditioned medium compared to unconditioned medium. For three of the preparations (preparations 2-3), there was a corresponding increase in biomass at the end of fermentation in conditioned medium versus unconditioned medium. Finally, a trend toward decreased fermentation time was observed when cultures were grown in conditioned medium compared to unconditioned medium.
[0065] [Table 1]
[0066] The growth kinetics of preparation 2 is shown in Figure 1 as a representative example of four preparations. Bordetella cell growth (biomass) in conditioned medium (solid black line) and unconditioned medium (solid gray line) was similar for the first 15-20 hours of culture. Thereafter, the rate of cell growth was greater in conditioned medium than in unconditioned medium. Dissolved oxygen declined as biomass increased, with a more rapid decrease observed in conditioned medium fermentations. At the end of fermentation, indicated by a rapid re-increase in dissolved oxygen, biomass was significantly higher in conditioned medium fermentation conditions compared to unconditioned fermentation conditions.
[0067] The results of the initial small-scale study showed that prior medium conditioning had a positive effect on Bordetella cell growth and PT production. In particular, a significant increase in biomass and PT content at the end of fermentation was observed for fermentations performed with conditioned medium. A tendency for shorter fermentation times was also observed in conditioned medium. The results of the laboratory-scale model confirmed the observations made at the commercial scale and showed that the conditioning effect was independent of the scale of fermentation. No significant effect of medium conditioning on the medium pH during cell growth was observed (data not shown).
[0068] Without being bound by the underlying theory, the observed media conditioning effect may be related to biochemical modifications, such as oxidation of one or more media components, that occur during the media conditioning process, which improves cell growth and virulence factor productivity during the fermentation step.
[0069] [Example 2] Identification of method parameters affecting medium conditioning To better define the acclimation parameters that result in improved Bordetella fermentation performance, a design of experiments (DoE) study was performed.
[0070] method The effects of three acclimation method parameters on subsequent fermentation performance were evaluated in a central composite design with three levels per parameter (minimum / median / maximum), as shown in Table 2. The method parameters were acclimation temperature, acclimation duration, and oxygen mass transfer capacity coefficient (kLa), which is a factor of aeration flow rate and agitation rate.
[0071] [Table 2]
[0072] The DoE was conducted in 60 trials carried out over a 6-week period (see Table 3). Each week, 3 x 1 L acclimation bioreactors were filled with 1 L of freshly prepared sterile growth medium as described in Example 1 and acclimated at three pairs of different kLa-temperatures. During acclimation, each acclimation bioreactor was sampled at three different time points (3 hours, 23 hours, and 43 hours) to examine the effect of acclimation period. The medium samples collected at 3 hours and 23 hours were immediately stored at 4°C to stabilize the samples. After the final sample was collected, 9 samples of medium from the three bioreactors were transferred to small-scale fermentation vessels (<1 L) and inoculated with a Bordetella preculture train prepared as described in Example 1 to evaluate growth and antigen production.
[0073] Fermentation performance indicators were assessed by measuring PT and FHA content (ELISA), biomass content (growth curve and final optical density) and fermentation time (measured as described in Example 1).
[0074] result The results are shown in Table 3 and Figure 2. Fermentation performance indicators were affected differently by changes in acclimation method parameters. The longer the period of medium acclimation, the better the obtained biomass and PT content. FHA content was not affected by increasing acclimation period. The acclimation temperature affected PT production but not growth performance (biomass). Finally, variation in kLa affected biomass but not PT production.
[0075] The DoE results predict a design space for acclimation parameter values associated with increased PT (at least 10%) compared to unconditioned medium (Figure 2A-D). The model also indicates that the optimal acclimation parameters for PT yield and biomass production are at a temperature of 31.2 °C and approximately 90 h. -1 This predicts a 34.6 hour acclimation time.
[0076] [Table 3] JPEG2026004314000005.jpg105152
[0077] [Example 3] Validation of acclimation parameters at 1 liter bioreactor scale To validate the media conditioning design space for the 10% PT yield increase identified in Example 2, the media conditioning and fermentation process was performed at 1 L bioreactor scale using conditioning parameters within the predicted design space.
[0078] method A platform of 4 x 1 L bioreactors (BioBlock, Eppendorf) was used for media conditioning prior to inoculation. This platform allows for the conditioning of four media preparations in parallel and the serial evaluation of their fermentation performance. For the conditioning step, 1 L of sterile growth medium (see Examples 1 and 2) was aseptically transferred to each bioreactor and subjected to the process parameters described in the experimental design (below). If the experimental design required unconditioned medium, one of the four bioreactors was emptied during the conditioning step to allow for later transfer of unconditioned medium (see below).
[0079] When the predetermined period of medium conditioning was reached, conditioning was stopped. For a given trial, one liter (1 L) of unconditioned medium (prepared as in Examples 1 and 2) was aseptically transferred to one of four bioreactors. The following conditions were used to calibrate 100% dissolved oxygen (DO) levels in each bioreactor: temperature (35°C), atmospheric pressure, air flow rate (2 L sparged air per minute), and agitation rate (300 rpm or revolutions per minute). 300 μL of antifoaming agent (simethicone 15%) was aseptically added to each bioreactor.
[0080] Inoculation was achieved by adding 150 mL of Bordetella pertussis inoculum (prepared in parallel with the adaptation step, as described in Examples 1 and 2). The temperature (35°C) was maintained at a constant level during fermentation. Foaming control during fermentation was achieved by adding an antifoaming agent (simethicone 1.5%). The level of dissolved oxygen was set at 35% to complement the head pressure applied in larger-scale fermentations and was controlled by increasing agitation if DO fell below 35%. The minimum agitation speed was set at 300 rpm, and the maximum agitation speed was set at 1100 rpm. pH was controlled at 7.2 by adding 50% (w / v or weight / volume) acetic acid.
[0081] At the end of the fermentation (as defined in Example 1), biomass yield was determined by measuring the optical density and the total amount of acetic acid added by pH control (the latter as an orthogonal method to assess biomass content). Pertussis toxin (PT) production in the culture supernatant was determined by ELISA using standard methods.
[0082] Experimental design In Example 2, we calculated a design space that resulted in at least a 10% increase in PT yield. In this experiment, we compared the fermentation performance (fermentation time, biomass, PT, and FHA yield) of conditioned medium with that of unconditioned medium (Method 1 in Table 4) under three different method parameter sets (Methods 2 to 4 in Table 4) within the calculated PT design space. Methods 2 and 3 were each 90 h -1 or 60 hours -1 The optimal operating parameters for PT yield (31°C for 32 hours) were tested at kLa values of 1000 kJ / kg. Method 4 was performed at an acclimation temperature of 35°C and 60 hours. -1 The operating parameters were tested at kLa. One experiment was performed.
[0083] [Table 4]
[0084] result As shown in Figure 3, fermentations performed with conditioned medium (methods 2, 3, and 4) produced PT contents that were over 10% higher than fermentations performed with unconditioned medium (right panel). Biomass content was not significantly affected by temperature or kLa at the 1 L bioreactor scale (left panel). These results validated the design space for a 10% PT yield increase identified in the experimental design study (Example 2).
[0085] [Example 4] Effect of acclimation period at 1 liter bioreactor scale To examine the effect of a wider range of acclimation periods, the mice were incubated at 31°C for 90 h. -1Example 3 was repeated with kLa values of 0.01 and acclimation periods of <3, 32 or 56 hours (Table 5). Experiments were performed in duplicate.
[0086] [Table 5]
[0087] result As shown in Figure 4, 32 and 56 h of medium conditioning resulted in a ≥10% increase in PT content compared to unconditioned medium (top panel). Biomass also increased at 32 and 56 h (bottom panel). The effect of increasing acclimation duration on PT content and biomass plateaued around 32 h.
[0088] [Example 5] Verification of optimal acclimation parameters at 20 L bioreactor scale Optimal media conditioning parameters were also validated in Bordetella fermentations carried out at a 20 L bioreactor scale.
[0089] method A 20 L fermentor (Biolafitte™) was used for media conditioning prior to inoculation. 10 L of sterile growth medium prepared as in Example 1 was aseptically transferred to the 20 L bioreactor and subjected to the conditioning process parameters summarized in Table 6.
[0090] [Table 6]
[0091] Preculture trains were prepared as described in Example 1, except that the first and second precultures were prepared in duplicate (2 x 30 mL first precultures; 2 x 1000 mL second precultures). After growth at 35°C (+ / - 1°C) and 150 rpm for 24 hours (+ / - 1 hour), the two disposable shake flasks from the second preculture were pooled. The pooled preculture was used to inoculate the fermentor immediately after stopping the second preculture.
[0092] Once the predetermined period of the acclimation step was reached, the acclimation was stopped and the following conditions were used to calibrate the 100% dissolved oxygen (DO) level: temperature (35°C), head pressure (0.4 bar), air flow rate (14.6 L sparged air per minute), and agitation rate (50 rpm or revolutions per minute) before inoculation. 3 mL of antifoam agent (Simethicone 15%) was aseptically added to each bioreactor.
[0093] Inoculation was achieved by adding 1.5 L of pooled preculture. Temperature (35°C) and head pressure (0.4 bar) were maintained at constant levels during fermentation. Foaming control during fermentation was achieved by adding an antifoaming agent (simethicone 1.5%). The level of dissolved oxygen was set at 25% and controlled by increasing agitation if DO dropped below 25%. The minimum agitation speed was set at 50 rpm, and the maximum agitation speed was set at 1000 rpm. pH was controlled at 7.2 by adding 50% (w / v or weight / volume) acetic acid.
[0094] Experimental design Optimal method parameters (31°C, 32h, 90h -1 An experiment was designed to compare the fermentation performance of media conditioned under kLa with media conditioned with only one parameter different from the optimum.
[0095] In week 1, the effects of optimal parameters (trial 2) versus unconditioned medium (trial 1) were examined. In weeks 2 and 3, the effect of low conditioned kLa (trial 3 - low aeration and trial 5 - low agitation rate) was compared with optimal operating conditions (trials 4 and 6). In weeks 4 and 5, the effects of low temperature (trial 7: 23°C) and short duration (trial 9: 3 hours) were compared with optimal operating parameters (trials 8 and 10), respectively.
[0096] result As shown in Figure 5 and Table 7, fermentations performed in conditioned medium with optimal process parameters give PT yields of more than 10% when compared to: - Unconditioned medium (1st week) - Medium conditioned at low kLa (approximately 10 h-1) to achieve low aeration flow rates (week 2) - Medium conditioned at low kLa (approximately 10 h-1) with low agitation speed (week 3) - Medium conditioned at low temperature (23°C) (week 4) - Short-term (3 hour) conditioned medium (week 5)
[0097] These data confirm the optimal operating parameters for medium conditioning for PT yield at the 20 L fermentation scale. No negative effects were observed on biomass yield, FHA yield, and fermentation time. While the small-scale studies described in Examples 1-4 did not find an effect of low kLa on PT yield, surprisingly, a negative effect of low kLa was observed at the 20 L fermentation scale. Therefore, duration, temperature, and kLa are all considered to be important factors for producing an acclimation effect at the 20 L fermentation scale.
[0098] [Table 7]
[0099] [Example 6] Large-scale validation of optimal acclimation parameters The medium conditioning parameters were performed at large scale and validated in Bordetella fermentations performed in small-scale fermenters (<1 L).
[0100] method An 800 L fermentor and a 2400 L media preparation tank were used for large-scale media conditioning prior to inoculation. Sterile growth medium prepared as in Example 1 was aseptically transferred to the fermentor (800 L) or media preparation tank (2400 L) and subjected to the following media preparation process parameters (Table 7). Due to differences between the vessels, such as aeration sparge design and agitation system, the K values achieved in the media preparation tank were lower than those obtained in the fermentor.
[0101] [Table 7-2]
[0102] Five samples of sterile conditioned medium were collected in Novaseptum sampling bags at different time points and immediately stored at 4°C.
[0103] Each of the five samples was transferred to a small-scale fermentation vessel (<1 L) and inoculated with a Bordetella preculture train prepared as described in Example 1 to assess growth and antigen production.
[0104] Fermentation performance indicators were assessed by measuring PT and FHA content (ELISA), biomass content (growth curve and final optical density) and fermentation time (measured as described in Example 1).
[0105] result As shown in Figure 6, the effect of medium conditioning on growth performance during the subsequent fermentation step was comparable regardless of the type of vessel used to perform the conditioning step, however, in both cases there was a clear positive effect on fermentation using pre-conditioned medium (Figures 7(A) and (B)).
[0106] Compared to the unconditioned medium (control), bacterial growth was faster, which meant that the overall fermentation time could be reduced by about 8% on average. With the conditioned medium, the final biomass achieved was higher than in the control (about 9% higher at the beginning of the stationary phase). Interestingly, the growth performance of the conditioned medium over 20 and 32 hours was comparable (Figure 8).
[0107] Fermentation with conditioned medium improved the yield of both PT and FHA. Specifically, PT productivity increased by 7% after 20 hours of conditioning and by 15% after 32 hours of conditioning compared to the control. Similarly, FHA productivity increased by 9% after 20 hours of conditioning and by 15% after 32 hours of conditioning compared to the control.
[0108] [Table 8]
[0109] These data confirm the positive effect of using a cell-free medium conditioning step at large scale (up to 2400 L) before using the conditioned medium for bacterial fermentation.
Claims
1. A sterile method for acclimatizing growth media, a) Provide a sterile growth medium; b) Maintaining the sterile growth medium at a temperature between 28 and 35°C for 20 to 35 hours; and c) Stir and / or aerate the sterile growth medium for 10 hours. -1 ~130h -1 To produce an oxygen mass transfer capacity coefficient (kLa) This includes, thereby providing the conditioned growth medium, Aseptic methods are methods performed in the absence of bacteria, and The culture medium is sterile, and The growth medium is a medium that can support the growth of Bordetella cells. method.
2. Step b) is performed at a temperature between 29°C and 33°C, between 30°C and 32°C, or approximately 31°C; and / or Step b) is performed for 25-35 hours, 30-35 hours, or approximately 32 hours. The method according to claim 1.
3. The sterile growth medium is continuously stirred in step c) throughout the period of step b), Stirring for 60 hours -1 ~130h -1 or approximately 90 hours -1 The stirring speed that produces the oxygen mass transfer capacity coefficient (kLa); and / or The sterile growth medium is continuously aerated in step c) throughout the period of step b), Ventilation, 60h -1 ~130h -1 or approximately 90 hours -1 The flow velocity that produces the oxygen mass transfer capacity coefficient (kLa); and / or Step c) includes continuously stirring and aerating the sterile growth medium throughout the period of step b), Stirring and aeration are for 60 h -1 to 130 h -1 or about 90 h -1 The stirring speed and flow rate that produce the oxygen mass transfer coefficient (kLa) of The method according to claim 1.
4. The method according to claim 1, carried out on a scale of at least 10 L, at least 100 L, at least 800 L, or at least 1000 L of sterile growth medium.
5. The method according to any one of claims 1 to 4, wherein the growth medium is a modified Steiner-Scholt medium containing niacin.
6. The growth medium is a modified Steiner-Scholt medium containing approximately 1 g / L of dimethyl-β-cyclodextrin and approximately 10 g / L of acidic casein hydrolysate; and / or The growth medium is a modified Steiner-Scholt medium containing approximately 40 mg / L of L-cysteine instead of L-cystine; approximately 11.84 g / L of sodium L-glutamate; approximately 150 mg / L of glutathione; and / or approximately 400 mg / L of ascorbic acid. The method according to claim 5.
7. A method for culturing Bordetella species, a) Producing a Bordetella culture by inoculating at least one type of Bordetella cell into a sterile conditioned growth medium, wherein the sterile conditioned growth medium is produced by the method described in any one of claims 1 to 6; and b) Maintaining Bordetella cultures under conditions that enable the production of at least one Bordetella protein and / or increase in biomass. Methods that include...
8. A method for producing Bordetella protein, a) Producing a Bordetella culture by inoculating at least one type of Bordetella cell into a sterile conditioned growth medium, wherein the sterile conditioned growth medium is produced by the method described in any one of claims 1 to 6; b) Maintaining Bordetella cultures under conditions that enable the production of at least one Bordetella protein; and c) Isolating at least one of the Bordetella proteins from the culture. Methods that include...
9. At least one Bordetella protein is selected from the group consisting of pertussis toxin, filamentous hemagglutinin, partactin, and adenylyl cyclase; and / or At least one Bordetella protein is produced in a yield at least 10% higher than the yield produced by the same method in unadapted growth medium. The method according to claim 7 or 8.
10. At least one Bordetella protein is pertussis toxin; and / or At least one Bordetella protein is a filamentous hemagglutinin, or further contains filamentous hemagglutinins, The yield of filamentous hemagglutinin is no different from, or higher than, the yield produced by the same method using unadapted growth medium. The method according to claim 7 or 8.
11. A sterile conditioned growth medium produced by a method for producing a conditioned growth medium for culturing Bordetella pertussis species and / or for producing Bordetella pertussis protein, The method is, a. To provide a sterile growth medium; b. Maintain the sterile growth medium at a temperature between approximately 28 and 35°C for approximately 20 to 35 hours; and c. Stir and / or aerate the sterile growth medium for approximately 10 hours. -1 ~About 130h -1 To produce an oxygen mass transfer capacity coefficient (kLa) Includes, This provides a conditioned growth medium for culturing Bordetella pertussis species and / or for producing Bordetella pertussis proteins. The growth medium is modified Steiner-Scholt (MSS) medium. Sterile conditioned growth medium.
12. Step b) is performed at a temperature between approximately 29°C and approximately 33°C, between approximately 30°C and approximately 32°C, or approximately 31°C; and / or Step b) is performed for approximately 25-35 hours, approximately 30-35 hours, or approximately 32 hours. The sterile conditioned growth medium according to claim 11.
13. Step c) is the sterile conditioned growth medium according to claim 12, wherein step c) has at least one of the following conditions: The sterile growth medium is continuously stirred throughout the period of step b). Stirring for approximately 60 hours -1 ~About 130h -1 or approximately 90 hours -1 The stirring speed that produces the oxygen mass transfer capacity coefficient (kLa); and / or The sterile growth medium is continuously aerated throughout the period of step b).
14. The sterile conditioned growth medium according to claim 12 or 13, wherein the growth medium further comprises niacin.
15. Step c) is the sterile conditioned growth medium according to any one of claims 11 to 14, wherein step c) has at least one of the following conditions: The sterile growth medium is continuously stirred throughout the period of step b). Stirring for approximately 60 hours -1 ~About 130h -1 or approximately 90 hours -1 The stirring speed that produces the oxygen mass transfer capacity coefficient (kLa); and / or The sterile growth medium is continuously aerated throughout the period of step b).
16. The sterile conditioned growth medium according to any one of claims 11 to 15, wherein the method is carried out on a scale of at least 10 L, at least 100 L, at least 800 L, or at least 1000 L of sterile growth medium.
17. The growth medium is a modified Steiner-Scholt medium containing approximately 1 g / L of dimethyl-β-cyclodextrin and approximately 10 g / L of acidic casein hydrolysate; and / or The growth medium is a modified Steiner-Scholt medium containing approximately 40 mg / L of L-cysteine instead of L-cystine; approximately 11.84 g / L of sodium L-glutamate; approximately 150 mg / L of glutathione; and / or approximately 400 mg / L of ascorbic acid. A sterile conditioned growth medium according to any one of claims 11 to 16.