WO2012138477A2 - Probiotic bacterial strains and method of use to decrease mortality due to bacterial disease - Google Patents

Probiotic bacterial strains and method of use to decrease mortality due to bacterial disease Download PDF

Info

Publication number
WO2012138477A2
WO2012138477A2 PCT/US2012/029896 US2012029896W WO2012138477A2 WO 2012138477 A2 WO2012138477 A2 WO 2012138477A2 US 2012029896 W US2012029896 W US 2012029896W WO 2012138477 A2 WO2012138477 A2 WO 2012138477A2
Authority
WO
WIPO (PCT)
Prior art keywords
fish
probiotic
psychrophilum
bacterial
mortality
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2012/029896
Other languages
French (fr)
Other versions
WO2012138477A3 (en
Inventor
Kenneth Cain
David BURBANK
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
University of Idaho
Original Assignee
University of Idaho
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by University of Idaho filed Critical University of Idaho
Publication of WO2012138477A2 publication Critical patent/WO2012138477A2/en
Anticipated expiration legal-status Critical
Publication of WO2012138477A3 publication Critical patent/WO2012138477A3/en
Ceased legal-status Critical Current

Links

Classifications

    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K35/00Medicinal preparations containing materials or reaction products thereof with undetermined constitution
    • A61K35/66Microorganisms or materials therefrom
    • A61K35/74Bacteria
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P31/00Antiinfectives, i.e. antibiotics, antiseptics, chemotherapeutics
    • A61P31/04Antibacterial agents
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N1/00Microorganisms; Compositions thereof; Processes of propagating, maintaining or preserving microorganisms or compositions thereof; Processes of preparing or isolating a composition containing a microorganism; Culture media therefor
    • C12N1/20Bacteria; Culture media therefor

Definitions

  • This invention pertains to the field of protection of fish from disease caused by bacteria.
  • the invention pertains to the protection of fish from disease caused by bacteria by administering to the fish one or more probiotic organisms.
  • the invention pertains to the field of the use of probiotic organisms to protect fish from disease caused by bacteria such as
  • Flavobacterivan psychrophilum and F. columnare Flavobacterivan psychrophilum and F. columnare.
  • probiotics to increase disease resistance and improve the overall health of terrestrial animals has long been established. However, their use and effectiveness in aquaculture environments has only recently been recognized.
  • Flavobacterium psychrophilum is the causative agent of coldwater disease (CWD) as well as rainbow trout fry syndrome (RTFS) . While all salmonids are susceptible to F. psychrophilum, rainbow trout Oncorhynchus mykiss are
  • psychrophilum would be useful as a potential method to reduce the use of traditional antibiotics in combatting this and other microorganisms.
  • probiotics While many definitions have been established to describe probiotics, several characteristics, including survival and colonization of the gastrointestinal tract are noted as important characteristics of probiotic selection.
  • an effective probiotic should not directly cause mortality in the animal that it is intended to be used in.
  • probiotics for use in aquatic animals include non-pathogenicity to both the host and humans, resistance to bile salts, pH tolerance, antagonism towards the pathogen of interest, the ability to adhere to and colonize the intestine of the host, strong growth characteristics, and autochthonous to the host or its environment.
  • Figure 1 is a graph showing % survival plotted against days post challenge for mock infected fish (O) and for fish exposed to pathogenic Flavobacterium psychrophilum and then fed a feed containing candidate probiotic strain C6-8 ( ⁇ ), LR2-1 ( ⁇ ), or 7-1.20 (V). Positive control ( ⁇ ) . * indicates significantly different from positive control (p ⁇ 0.05) .
  • Figure 2 is a graph showing % survival plotted against days post challenge for mock infected fish ( ) and for fish exposed to pathogenic Flavobacterium psychrophilum and then fed a feed containing candidate probiotic strain C6-6 ( ⁇ ), CS3-5 (X), 5-3.5 ( ⁇ ), 5-3.3 (O) , or 5-6.12 (A). Positive control ( ⁇ ) . * indicates significantly different from positive control (p ⁇ 0.05).
  • the invention is an isolated strain of bacteria selected from the group consisting of C6-6 Enterobacter sp. and C6-8 Enterobacter sp. Each of these two bacterial strains was deposited at the Agricultural Research Service Culture Collection (USDA, ARS, 1815 North University Street, Peoria, 111., 61064) on March 23, 2011. The deposits were made under the terms of the Budapest Treaty. w C6-6" has been assigned Accession number NRRL No. B-50481 and "C6-8" has been assigned Accession number NRRL No. B-50482.
  • the deposited bacterial strains are useful, individually or in combination with each other or with one or more other bacterial strains, as a probiotic for the treatment and prophylaxis or prevention of infectious diseases, such as coldwater disease, in salmonids.
  • the invention is a method for protecting fish, such as decreasing mortality, from a
  • bacterial disease such as coldwater disease caused by
  • Flavobacterium psychrophilum bacteria a fish that is susceptible to a bacterial disease such as coldwater disease is administered either or both of C6-6 or C6-8 in an amount sufficient to decrease mortality of fish due to bacterial diseases, such as coldwater disease caused by Flavobacterium psychrophilum.
  • Fish that are suitable for the method of the invention include any fresh or saltwater fish that is
  • Flavobacterium psychrophilum Such fish include salmonids, such as salmon and trout species.
  • salmonids such as salmon and trout species.
  • suitable fish for the method of invention include salmonids (Oncorhynchus sp. and Salmo sp.) , American, European, and Japanese eels (Anguilla sp.) , tilapia (Oreochromis sp.) , striped bass and hybrid-striped bass (Morone chrysops. and M.
  • Species affected specifically by CWD include all salmonids .
  • the pathogen has also been reported in non- salmonid species, such as eel Anguilla sp., sea lamprey
  • the bacterial strains of the present application may be administered to the fish in various ways-
  • the strains may be introduced into the gastrointestinal tract, such as by diet supplementation. Spraying or top dressing the feed with the strains may be utilized to include the strains into the diet.
  • strains may be introduced into susceptible fish by immersion of the fish into water containing high levels of the strains.
  • the strains may be introduced into fish by injection or gastric gavage. These latter methods are less preferred because such protocols require individual handling of fish and, therefore, they are less suitable for most aquaculture applications method of utilization of probiotics.
  • the probiotic bacteria may be added at a concentration between 10 3 to 10 10 bacterial cells per gram of feed. If desired, concentrations lower than 10 3 bacterial cells per gram of feed or higher than 10 10 bacterial cells per gram of feed may be utilized. Either of strain C6-6 or strain C6-8 may be
  • strains C6-6 and C6-8 may be introduced in combination into the fish in accordance with the method of the present application.
  • either or both strains may be introduced into the fish together with other bacterial species, if desired.
  • Such other bacterial species may or may not provide additional benefits to the fish, such as increased resistance to bacterial disease such as coldwater disease.
  • the invention is further illustrated in the following non-limiting examples. It is noted that the examples utilize Flavohacterium psychrophilum as an illustration of an infectious agent that causes a disease that results in mortality in fish and for which the rate of mortality is significantly reduced by the administration to fish of one or both of the probiotic organisms of the present application. Because it is understood by those of skill in the art that the probiotics disclosed herein are not closely related to F.
  • Each homogenized gut sample was plated (200 ul) in triplicate on tryptic soy agar (TSA) and tryptone yeast extract and salts (TYES) agar plates and incubated for 5 to 7 days at 15 °C. After incubation, each differentiated colony that grew was subcultured onto culture plates
  • Example 1 The 234 isolates of Example 1 that showed growth following storage were screened against F. psychrophilum in vitro based on methods described in Gram and Melchlorsen, Journal of Applied Bacteriology, 80:589-595 (1996).
  • 10 ml of TYES broth was inoculated with a known virulent strain of F. psychrophilum (CSF 259-93) , while the isolate to be screened was inoculated two days prior to screening in 10 ml of its respective broth media. Aliquots (2 ml) of each isolate and a 2 ml aliquot of F. psychrophilum were adjusted to an optical density (OD) of 0.1 at 625 nm in 15 ml centrifuge tube. The TYES inoculated with F.
  • OD optical density
  • psychrophilum 150 ⁇ was spread evenly on a TYES agar plate and allowed to absorb. The plates were divided in half and two vertical lines of 3 holes per plate were punched into the media using a 6 mm biopsy punch, deep enough to accommodate 100 ⁇ in each well.
  • Candidate probiotics those showing inhibition toward F. psychrophilum, were grown to log phase in 20 ml of their respective media at 15 "C and subsequently harvested by centrifugation at 1600 x g for 15 minutes at 15 °C. The supernatant was poured off and the pellet was re-suspended with IX PBS to obtain an OD of approximately 0.20 ( ⁇ 0.02) at 525 run. Subsamples were taken to determine CFU ml -1 using the drop plate method of Example 3, resulting in actual
  • Example 5 Of the 16 candidate probiotics of Example 5 that did not produce overt symptoms or mortality, six candidates were eliminated for various reasons from further evaluation as a probiotic. The remaining ten candidate probiotics were evaluated for their ability in vivo to decrease mortality due to F. psychrophilum infection during four separate challenges.
  • the swab was then used to streak TS and/or TYES agar plates for isolation of any bacteria present in the intestine.
  • psyc rophilum at 1.6 x 10 6 CFU fish -1 or lx PBS for the mock infected fish following the bacterial challenge procedures described in LaFrentz et al.. Journal of Fish Diseases 25:703- 713 (2002) .
  • the positive control and mock infected groups were administered their respective feeds previously with each treatment group receiving one candidate probiotic through feed during the 28 day challenge.
  • Example 6.1 Prior to separating fish into treatment and control groups, five fish (withheld from feed for 24 hours) were removed and sacrificed to test for the existence of C6-6 as disclosed in Example 6.1. The fish were then separated into a positive control group (F. psychrophilum injection and no treatment) , a mock infected group (1x PBS injection and no treatment) , and two treatment groups (F. psychrophilum injection and probiotic treatment) , each containing 8 fish. All fish were fed a standard trout diet until seven days prior to challenge. During this seven day period, one treatment group was fed C6-6 through oil dressed feed while the other C6-6 treatment group and the mock infected group received a standard trout diet without additives .
  • F. psychrophilum injection and no treatment a positive control group
  • a mock infected group (1x PBS injection and no treatment
  • F. psychrophilum injection and probiotic treatment F. psychrophilum injection and probiotic treatment
  • the fish serving as the positive control group were fed a standard trout diet with the addition of menhaden oil . After this seven day period, fish were withheld from feed for 24 hours, separated into three groups of 16 fish each and challenged subcutaneously with 50 pL of F. psychrophilum at 7 x 10 6 CFU fish -1 or lx PBS for the mock infected fish as described by LaFrentz et al . , (2002) .
  • Three days post infection with F. psychrophilum the treatment group fed C6-6 prior to challenge and the mock infected group were administered a standard trout diet without the addition of menhaden oil while the positive control was fed a standard trout diet with the addition of menhaden oil.
  • the second treatment group was then administered C6-6 through oil laden feed for the duration of the 28 day challenge period.
  • the third challenge utilized a positive control group (F. psychrophilum injection and no treatment) containing 85 fish, a mock infected group (lx PBS injection and no treatment) containing 80 fish, and three treatment groups (F. psychrophilum injection and probiotic candidate treatment) containing 85 fish each.
  • a positive control group F. psychrophilum injection and no treatment
  • a mock infected group lx PBS injection and no treatment
  • three treatment groups F. psychrophilum injection and probiotic candidate treatment
  • Example 6.1 existence of any candidate probiotic strains being evaluated as disclosed in Example 6.1. All fish were fed a standard trout diet until 10 days prior to challenge. During this 10 day period, the treatment groups were fed one candidate probiotic through oil dressed feed with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control was fed a standard trout diet with the addition of menhaden oil during this time. After this 10 day period, fish were withheld from feed for 24 hours, separated into triplicate 25 fish groups and challenged with F. psychrophilum using 25 ⁇ L subcutaneous injections at 3 x 10 s CFO fish -1 or lx PBS for the mock infected fish as described by LaFrentz et al., (2002).
  • the fourth challenge utilized a positive control group ( . psychrophzlum injection and no treatment) containing 85 fish, a mock infected group (lx PBS injection and no treatment) containing 80 fish, and five treatment groups (F. psychr philum injection and probiotic treatment) containing 85 fish each.
  • a positive control group . psychrophzlum injection and no treatment
  • a mock infected group lx PBS injection and no treatment
  • F. psychr philum injection and probiotic treatment containing 85 fish each.
  • Five fish were removed and sacrificed from the control and treatment groups to test for the existence of any candidate probiotic strains being evaluated as described in Example 6.1. All fish were fed a standard trout diet until 10 days prior to challenge. During this 10 day period, the treatment groups were fed one candidate probiotic through oil dressed feed with the mock infected group administered a standard trout diet without the addition of menhaden oil.
  • the positive control was fed a standard trout diet with the addition of menhaden oil during this time. After this 10 day period, fish were withheld from feed for 24 hours, separated into triplicate 25 fish groups and challenged with F. psychrophilum using 25 ⁇ subcutaneous injections at 3 x 10 6 CFU fish -1 or lx PBS for the mock infected fish as described by LaFrentz et al., (2002) . Twenty- our hours post challenge, feeding of the candidate probiotics resumed for the treatment groups with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control continued to be fed a standard trout diet with the addition of menhaden oil during this time. The five remaining fish from each group were withheld from feed for an additional 4 ⁇ hours and sacrificed to test for the presence of the candidate probiotic strains which were fed during the 10 day period.
  • Example 2 The in vitro tests described above in Example 2 were repeated utilizing probiotic strain C6-6 in order to determine whether this strain would inhibit the growth of a pathogen other than F. psychrophilum.
  • 10 ml of TYES broth was inoculated with F. columnare, the causative agent of Columnaris Disease.
  • Columnaris Disease is an
  • the TYES inoculated with F. columnare (150 ⁇ ) was spread evenly on a TYES agar plate and allowed to absorb. The plates were divided in half and two vertical lines of 3 holes per plate were punched into the media using a 6 mm biopsy punch, deep enough to accommodate 100 ⁇ in each well .

Landscapes

  • Health & Medical Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Organic Chemistry (AREA)
  • General Health & Medical Sciences (AREA)
  • Medicinal Chemistry (AREA)
  • Microbiology (AREA)
  • Wood Science & Technology (AREA)
  • Zoology (AREA)
  • Genetics & Genomics (AREA)
  • Bioinformatics & Cheminformatics (AREA)
  • Biotechnology (AREA)
  • Public Health (AREA)
  • Veterinary Medicine (AREA)
  • Pharmacology & Pharmacy (AREA)
  • Animal Behavior & Ethology (AREA)
  • Epidemiology (AREA)
  • Mycology (AREA)
  • General Engineering & Computer Science (AREA)
  • Biochemistry (AREA)
  • Tropical Medicine & Parasitology (AREA)
  • Virology (AREA)
  • Molecular Biology (AREA)
  • Biomedical Technology (AREA)
  • Nuclear Medicine, Radiotherapy & Molecular Imaging (AREA)
  • General Chemical & Material Sciences (AREA)
  • Oncology (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Communicable Diseases (AREA)
  • Fodder In General (AREA)
  • Feed For Specific Animals (AREA)
  • Farming Of Fish And Shellfish (AREA)
  • Medicines Containing Material From Animals Or Micro-Organisms (AREA)

Abstract

Two novel strains of bacteria, C6--6 and C6-8, deposited in accordance with the Bndapest Treaty, protect fish, such as by reducing mortality, against disease caused by bacteria, such as coldwater disease caused by Flavobacterivm psychrophuilum.

Description

PROBIOTIC BACTERIAL STRAINS AND METHOD OF USE TO DECREASE MORTALITY IN FISH DUE TO BACTERIAL DISEASE
Field of the Invention
This invention pertains to the field of protection of fish from disease caused by bacteria. In one embodiment, the invention pertains to the protection of fish from disease caused by bacteria by administering to the fish one or more probiotic organisms. In a particular embodiment, the invention pertains to the field of the use of probiotic organisms to protect fish from disease caused by bacteria such as
Flavobacterivan psychrophilum and F. columnare.
Background of the Invention
The use of probiotics to increase disease resistance and improve the overall health of terrestrial animals has long been established. However, their use and effectiveness in aquaculture environments has only recently been recognized.
Flavobacterium psychrophilum is the causative agent of coldwater disease (CWD) as well as rainbow trout fry syndrome (RTFS) . While all salmonids are susceptible to F. psychrophilum, rainbow trout Oncorhynchus mykiss are
especially affected, as observed through economic loss to aquaculture operations . Currently, no commercial vaccine exists for F. psychrophilum, leaving antibiotics as the primary form of treatment. While new antibiotic treatments such as florfenicol have recently been approved for control of CWD, there is continued concern over antibiotic use due to the potential development of bacterial resistance. Consequently, the use of a probiotic to decrease morbidity and mortality due to infectious disease, such as that caused by F.
psychrophilum, would be useful as a potential method to reduce the use of traditional antibiotics in combatting this and other microorganisms.
While the mechanisms allowing a particular probiotic to improve health are not always clear, the observed probiotic modes of action have been shown to include the production of inhibitory compounds, competitive exclusion, improvement of the immune response, and possible enhancement of water
quality. While many definitions have been established to describe probiotics, several characteristics, including survival and colonization of the gastrointestinal tract are noted as important characteristics of probiotic selection.
Additionally, an effective probiotic should not directly cause mortality in the animal that it is intended to be used in.
Other desirable characteristics of effective probiotics for use in aquatic animals include non-pathogenicity to both the host and humans, resistance to bile salts, pH tolerance, antagonism towards the pathogen of interest, the ability to adhere to and colonize the intestine of the host, strong growth characteristics, and autochthonous to the host or its environment.
Brief Description of the Drawings
Figure 1 is a graph showing % survival plotted against days post challenge for mock infected fish (O) and for fish exposed to pathogenic Flavobacterium psychrophilum and then fed a feed containing candidate probiotic strain C6-8 (●), LR2-1 (♦), or 7-1.20 (V). Positive control (□) . * indicates significantly different from positive control (p < 0.05) .
Figure 2 is a graph showing % survival plotted against days post challenge for mock infected fish ( ) and for fish exposed to pathogenic Flavobacterium psychrophilum and then fed a feed containing candidate probiotic strain C6-6 (■), CS3-5 (X), 5-3.5 (▼), 5-3.3 (O) , or 5-6.12 (A). Positive control (□) . * indicates significantly different from positive control (p < 0.05). Detailed Description of the Invention
In one embodiment, the invention is an isolated strain of bacteria selected from the group consisting of C6-6 Enterobacter sp. and C6-8 Enterobacter sp. Each of these two bacterial strains was deposited at the Agricultural Research Service Culture Collection (USDA, ARS, 1815 North University Street, Peoria, 111., 61064) on March 23, 2011. The deposits were made under the terms of the Budapest Treaty. wC6-6" has been assigned Accession number NRRL No. B-50481 and "C6-8" has been assigned Accession number NRRL No. B-50482.
The deposited bacterial strains are useful, individually or in combination with each other or with one or more other bacterial strains, as a probiotic for the treatment and prophylaxis or prevention of infectious diseases, such as coldwater disease, in salmonids.
These two strains of bacteria were selected from a total of 318 isolates that were collected from rainbow trout. Of these 318 isolates obtained, 84 could not be re-grown from frozen stock and were eliminated from further testing. The remaining 234 isolates were screened against F. psychrophilvm in vitro. Of these 234 isolates, 24 exhibited inhibitory activity against F. psychrophilum. Each of these 24 isolates was tested and was found to be able to survive a 1.5 hour exposure to 10% rainbow trout bile. Of the 24 isolates evaluated, eight were observed to cause direct mortality when injected into fish and were therefore eliminated from further consideration as a probiotic. Of the remaining 16 isolates, 8 were found to be unsuitable for use as a probiotic for various other reasons, leaving 8 from the original 318 isolates. As discussed in more detail below, the remaining eight candidate probiotic bacteria were tested in in vivo tests for their ability to decrease mortality in fish due to F. psychrophilum. After a 28 day challenge, two of the candidate bacterial strains, referred to herein as >xC6-6" and "C6-8" were shown to significantly decrease mortality in fish due to F. psychrophilum infection.
In another embodiment, the invention is a method for protecting fish, such as decreasing mortality, from a
bacterial disease, such as coldwater disease caused by
Flavobacterium psychrophilum bacteria. In accordance with this embodiment of the invention, a fish that is susceptible to a bacterial disease such as coldwater disease is administered either or both of C6-6 or C6-8 in an amount sufficient to decrease mortality of fish due to bacterial diseases, such as coldwater disease caused by Flavobacterium psychrophilum.
Fish that are suitable for the method of the invention include any fresh or saltwater fish that is
susceptible to disease caused by a bacterium such as
Flavobacterium psychrophilum. Such fish include salmonids, such as salmon and trout species. Examples of suitable fish for the method of invention include salmonids (Oncorhynchus sp. and Salmo sp.) , American, European, and Japanese eels (Anguilla sp.) , tilapia (Oreochromis sp.) , striped bass and hybrid-striped bass (Morone chrysops. and M. saxatilis) , flounders (Seriola sp.) , seabream (Sparus sp.) , sea perch (Lates calcarifer) , the estuarine grouper (Epinephelus taurine), walleye (Stitzostedion vitreum) , channel catfish (Ictalurus punctutus) , centrachids (such as largemouth bass, Micropterus salmoides) , brown bullheads (Nebulosus sp.) , fat head minnows (Pimephales promelas) , golden shiners
(Netemigonus crysoleucas) , goldfish (Carassius auratus) , carp (Cyprinus carpio) , and aquarium fish species such as black mollies {Poecilia sphenops) and platies (Xiphophor s
maculatus) . Species affected specifically by CWD include all salmonids . The pathogen has also been reported in non- salmonid species, such as eel Anguilla sp., sea lamprey
Petromyzon marinus, carp Cyprinus carpio, tench Tinea tinea, crucian carp Carassius carassius, goldfish C. auratus, ayu Plecoglossus altlvelis, pale chub Zacco platypus, perch Perca fluviatilis, and roach Rutilus rutilus.
The bacterial strains of the present application may be administered to the fish in various ways- For example, the strains may be introduced into the gastrointestinal tract, such as by diet supplementation. Spraying or top dressing the feed with the strains may be utilized to include the strains into the diet.
Alternatively, or in addition to feed
supplementation, strains may be introduced into susceptible fish by immersion of the fish into water containing high levels of the strains. In a less preferred method, the strains may be introduced into fish by injection or gastric gavage. These latter methods are less preferred because such protocols require individual handling of fish and, therefore, they are less suitable for most aquaculture applications method of utilization of probiotics.
The amount of bacterial organisms that are delivered to the fish is an amount that is effective to provide
protection, such as decreasing mortality, against disease, such as that caused by Flavobacterium psychrophilum. For example, if the bacterial strains are introduced into fish by diet supplementation, the probiotic bacteria may be added at a concentration between 103 to 1010 bacterial cells per gram of feed. If desired, concentrations lower than 103 bacterial cells per gram of feed or higher than 1010 bacterial cells per gram of feed may be utilized. Either of strain C6-6 or strain C6-8 may be
introduced into the fish or both strains C6-6 and C6-8 may be introduced in combination into the fish in accordance with the method of the present application. In accordance with the method of the application, either or both strains may be introduced into the fish together with other bacterial species, if desired. Such other bacterial species may or may not provide additional benefits to the fish, such as increased resistance to bacterial disease such as coldwater disease.
The invention is further illustrated in the following non-limiting examples. It is noted that the examples utilize Flavohacterium psychrophilum as an illustration of an infectious agent that causes a disease that results in mortality in fish and for which the rate of mortality is significantly reduced by the administration to fish of one or both of the probiotic organisms of the present application. Because it is understood by those of skill in the art that the probiotics disclosed herein are not closely related to F.
psychrophilum and that the beneficial effects of probiotics in combatting the deleterious effects of an infectious disease do not pertain to a specific relationship between any particular pathogenic microorganism and the probiotic microorganism, one of skill in the art would understand that the description herein pertaining to F. psychrophilum and coldwater disease is merely illustrative and that the probiotics disclosed herein would confer beneficial results with regards to infectious diseases other than coldwater disease.
In the following examples, statistical analyses were performed as follows. Survival curves for pathogenicity tests were generated and compared to control tanks using the log- rank (Mantel-Cox) test (Peto and Peto, Journal of the Royal Statistical Society A, 135 part 2:185-207 (1972)) with differences considered significant at p-value < 0.05. All statistical analyses of data were completed using GraphPad Prism® 5-02 software (GraphPad Software Inc., La Jolla, CA) . Following the 28 day challenge, mean cumulative percent mortality was analyzed using a one way analysis of variance (ANOVA) with pairwise comparisons made using a Tukey' s post test. Differences were considered significant at p-values < 0.05. Survival curves were generated to analyze mortality rate by the Kaplan-Meier method (Kaplan and Meier, Journal of the American Statistical Association, 53:457-481 (1958) and compared to control tanks using the log-rank (Mantel-Cox) test with differences considered significant at p-value < 0.05. All statistical analyses of data were completed using GraphPad Prism 5.02 software. Example 1 - Fish collection and bacterial isolation from GI tract
Twenty nine rainbow trout were collected from the University of Idaho Aquaculture Research Institute (Moscow, Idaho) , two commercial trout fish hatcheries, and Spring Valley Reservoir (Troy, Idaho) . Bacteria from the GI tract were removed and cultured based on methods described in
Spanggaard et al, Aquaculture, 182:1-15 (2000). Briefly, fish were euthanized using an overdose of tricaine methanesulfonate (MS-222*, Argent Chemical Laboratories, Inc., Redmond, WA) . After aseptically removing the mid and hind portions of the intestine (up to the pyloric caeca) , the intestinal contents were expelled by squeezing and washing with IX sterile phosphate-buffered saline (PBS) and placed into a STOMACHER* bag (Seward Laboratory Systems Inc., Port St. Lucie, FL) . The intestinal contents were then homogenized for 30 seconds with 2 ml of sterile IX PBS. Each homogenized gut sample was plated (200 ul) in triplicate on tryptic soy agar (TSA) and tryptone yeast extract and salts (TYES) agar plates and incubated for 5 to 7 days at 15 °C. After incubation, each differentiated colony that grew was subcultured onto culture plates
containing the appropriate media for isolation (TSA or TYES) - Once isolation was achieved, single colonies were picked using a sterile swab and swirled in 2 ml cryovials containing 1 ml of sterile 20% glycerol. The isolates were then stored in duplicate at -80 °C for further screening.
A total of 318 isolates were collected from the fish sampled. Of the 318 isolates obtained, 84 could not be re- grown from frozen stock and were eliminated from further testing.
Example 2 - In vitro screening against F. psychrophilum
The 234 isolates of Example 1 that showed growth following storage were screened against F. psychrophilum in vitro based on methods described in Gram and Melchlorsen, Journal of Applied Bacteriology, 80:589-595 (1996). Four days prior to screening, 10 ml of TYES broth was inoculated with a known virulent strain of F. psychrophilum (CSF 259-93) , while the isolate to be screened was inoculated two days prior to screening in 10 ml of its respective broth media. Aliquots (2 ml) of each isolate and a 2 ml aliquot of F. psychrophilum were adjusted to an optical density (OD) of 0.1 at 625 nm in 15 ml centrifuge tube. The TYES inoculated with F.
psychrophilum (150 μΐ) was spread evenly on a TYES agar plate and allowed to absorb. The plates were divided in half and two vertical lines of 3 holes per plate were punched into the media using a 6 mm biopsy punch, deep enough to accommodate 100 μΐ in each well.
For each GI tract isolate to be screened, 500 μΐ was placed into 1.5 ml Eppendorf tubes and centrifuged at 3684 x g at 4 "C for 5 minutes. In the first well (well A), 100 μΐ of sterile broth media was added. Isolate supernatant (100 μΐ) was added to well B and the isolate in its respective broth media (100 μΐ) was added to well C. The plates were then incubated at 15 °C for 24 to 48 hours. Once the F.
psychrophilum lawn had grown, the zones of inhibition were measured, subtracting the diameter of the punched well.
Of the 234 isolates that were screened, 24 exhibited inhibitory activity against F. psychrophilum using both the supernatant (well B) as well as the broth culture (well C) . In general, the supernatant did not show greater inhibition against F. psychrophilum than did the broth culture.
Example 3 - Identification of bacterial isolates
Bacterial isolates with inhibitory activity against F. psychrophilum were sent to the Washington Animal Disease Diagnostic Laboratory (WADDL) at Washington State University for a tentative identification using API® 20E and API® 20NE strips (BioMerieux, Marcy-l'Etoile, France) . Of the 24 isolates sent to the WADDL, one (LR1-5) was unable to be identified by API 20E or API 20NE strips. The putative identification of the remaining 23 isolates is provided in Table 1.
Figure imgf000012_0001
Example 4 - Bacterial colonization of intestine
In vitro intestinal screening methods were adapted from Nikoskelainen et al, Applied and Environmental
Microbiology, 67:2430-2435 (2001) and Cai et al, Journal of General and Applied Microbiology, 44:311-316 (1998). Isolates from frozen stock were inoculated into their respective broth media and allowed to grow for 48 hours at 15 °C. The optical density of each isolate was adjusted to 0.1 OD at 625 nm to achieve a concentration of approximately 107 colony-forming units (CFU) ml-1. Duplicate 500 μl aliquots of each suspension were then centrifuged at 3684 x g at 4 °C for 5 minutes with one pellet re-suspended in IX PBS and the other in IX PBS which contained 10% fish bile. Fish bile was collected by aseptically puncturing the gall bladders of rainbow trout and stored at -20 °C until use. Each sample was incubated at 15 °C for 1.5 hours and subsequently serially diluted and plated on their respective media using the drop plate method described in Chen, Journal of Microbiological Methods, 55:475-479
(2003) . The bacterial colonies which grew on the plates were then enumerated after a period of 48 hours. Of the isolates screened, all 24 were able to survive a 1.5 hour exposure to 10% rainbow trout bile. Example 5 - Test for pathogenicity of candidate probiotics in fish
Candidate probiotics, those showing inhibition toward F. psychrophilum, were grown to log phase in 20 ml of their respective media at 15 "C and subsequently harvested by centrifugation at 1600 x g for 15 minutes at 15 °C. The supernatant was poured off and the pellet was re-suspended with IX PBS to obtain an OD of approximately 0.20 (±0.02) at 525 run. Subsamples were taken to determine CFU ml-1 using the drop plate method of Example 3, resulting in actual
concentrations between 106 and 107 CFU ml-1. Duplicate tanks of 10 fish weighing approximately 5 grams each were injected intraperitoneally (IP) with 25 μΐ of each candidate probiotic bacteria resulting in doses between 2.5 x 10* and 2.5 x 10s CFU fish-1. Two control tanks containing 10 fish each received IP injections of 25 μΐ IX PBS. Re-isolation of the probiotic from the kidney, liver and spleen was attempted by inoculation of organ tissues onto TYES agar from all mortalities as well as a subset of fish from each tank after a period of 28 days. Any probiotic producing mortality was eliminated from further consideration and testing.
Of the 24 isolates evaluated, eight were observed to cause direct mortality when injected into fish. Bacterial isolation from the kidney, liver or spleen was achieved for six of the eight isolates . No overt disease symptoms or mortalities were observed following injection of any of the other 16 candidate probiotics tested. Any candidate probiotic producing mortality was eliminated from further consideration and testing.
Example 6 - Effectiveness at reducing mortality due to F.
psychrophilurn
Of the 16 candidate probiotics of Example 5 that did not produce overt symptoms or mortality, six candidates were eliminated for various reasons from further evaluation as a probiotic. The remaining ten candidate probiotics were evaluated for their ability in vivo to decrease mortality due to F. psychrophilum infection during four separate challenges.
Example 6.1
For the first challenge, three candidate probiotic strains; C6-6, CSl-1, and 5-3.6, were evaluated.
This first trial utilized a positive control group
(F. psychrophilum injection and no treatment), a mock infected group (lx PBS injection and no treatment) , and three treatment groups IF. psychrophilum injection and probiotic treatment), with each group containing 80 fish. Prior to challenge, five fish (withheld from feed for 24 hours) were removed and sacrificed from each group to test for the existence of any candidate probiotic strains. The removed fish were euthanized using an overdose of tricaine methane sulfonate (MS-222*) . After aseptically removing the mid and hind portions of the intestine (up to the pyloric caeca) , the intestine was opened using a scalpel and swabbed using a sterile cotton swab. The swab was then used to streak TS and/or TYES agar plates for isolation of any bacteria present in the intestine. The three treatment groups and two control groups, now containing 75 fish each, were then separated into triplicate 25 fish groups and injection challenged subcutaneously with 25 μΐ· of F.
psyc rophilum at 1.6 x 106 CFU fish-1 or lx PBS for the mock infected fish following the bacterial challenge procedures described in LaFrentz et al.. Journal of Fish Diseases 25:703- 713 (2002) . At 72 hours post challenge, the positive control and mock infected groups were administered their respective feeds previously with each treatment group receiving one candidate probiotic through feed during the 28 day challenge.
While multiple bacterial species were isolated from the GI tract of the fish sacrificed prior to the introduction of candidate probiotics, none of these bacteria were
identified as any of the candidate probiotic strains of interest. After day 28 of the challenge, mortality was observed in all groups with the exception of the mock infected fish and those treated with C6-6 which had 100% survival.
Highest mortality was observed in groups treated with 5-3.6 (28%), CSl-1 (21.5%), and the positive controls (8%),
respectively. Groups treated with candidate probiotics 5-3.6 and CSl-1 observed significantly higher (P < 0.05) levels of mortality when compared to those treated with C6-6, and compared to positive control and mock infected groups . Example 6.2
For the second challenge, only candidate strain C6-6 was evaluated.
Prior to separating fish into treatment and control groups, five fish (withheld from feed for 24 hours) were removed and sacrificed to test for the existence of C6-6 as disclosed in Example 6.1. The fish were then separated into a positive control group (F. psychrophilum injection and no treatment) , a mock infected group (1x PBS injection and no treatment) , and two treatment groups (F. psychrophilum injection and probiotic treatment) , each containing 8 fish. All fish were fed a standard trout diet until seven days prior to challenge. During this seven day period, one treatment group was fed C6-6 through oil dressed feed while the other C6-6 treatment group and the mock infected group received a standard trout diet without additives . The fish serving as the positive control group were fed a standard trout diet with the addition of menhaden oil . After this seven day period, fish were withheld from feed for 24 hours, separated into three groups of 16 fish each and challenged subcutaneously with 50 pL of F. psychrophilum at 7 x 106 CFU fish-1 or lx PBS for the mock infected fish as described by LaFrentz et al . , (2002) . Three days post infection with F. psychrophilum, the treatment group fed C6-6 prior to challenge and the mock infected group were administered a standard trout diet without the addition of menhaden oil while the positive control was fed a standard trout diet with the addition of menhaden oil. The second treatment group was then administered C6-6 through oil laden feed for the duration of the 28 day challenge period.
While multiple bacterial species were isolated from the GI tract of the fish sacrificed prior to the introduction of candidate probiotics, none of these bacteria were identified as any of the candidate probiotic strains of interest. After day 28 of the challenge, mortality was observed in all groups with the highest mortality (56%) being observed in the group fed C6-6 after injection with F.
psychrophilum. In contrast, the group fed C6-6 prior to injection showed a reduction in mortality.
Example 6.3
For the third challenge, three candidate strains, C6-8 (NRRL B-50482) , LR2-1, and 7-1.20, were evaluated.
The third challenge utilized a positive control group (F. psychrophilum injection and no treatment) containing 85 fish, a mock infected group (lx PBS injection and no treatment) containing 80 fish, and three treatment groups (F. psychrophilum injection and probiotic candidate treatment) containing 85 fish each. Prior to challenge, five fish
(withheld from feed for 24 hours) were removed and sacrificed from the control and treatment groups to test for the
existence of any candidate probiotic strains being evaluated as disclosed in Example 6.1. All fish were fed a standard trout diet until 10 days prior to challenge. During this 10 day period, the treatment groups were fed one candidate probiotic through oil dressed feed with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control was fed a standard trout diet with the addition of menhaden oil during this time. After this 10 day period, fish were withheld from feed for 24 hours, separated into triplicate 25 fish groups and challenged with F. psychrophilum using 25 μL subcutaneous injections at 3 x 10s CFO fish-1 or lx PBS for the mock infected fish as described by LaFrentz et al., (2002). Twenty-four hours post infection, feeding of the candidate probiotics resumed for the treatment groups with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control continued to be fed a standard trout diet with the addition of menhaden oil during this time. The five remaining fish from each group were withheld from feed for an additional 48 hours and sacrificed to test for the presence of the candidate probiotic strains which were fed during the 10 day period.
While multiple bacterial species were isolated from the GI tract of the fish sacrificed prior to the introduction of candidate probiotics, none of these bacteria were
identified as any of the candidate probiotic strains of interest. After day 28 of the challenge, mortality was observed in all groups with the exception of the mock infected group, as shown in Figure 1, with the highest mortality being observed in the positive controls. Fish which were treated with candidate probiotic C6-8 resulted in significantly lower (P < 0.05) cumulative percent mortality (44%) when compared to the positive control group (67%) . Overall, fish fed C6-8 had a 34% decrease in mortality compared to the positive controls.
Example 6.
For the fourth challenge, five candidate strains, C6-6 (NRRL B-50481), 5-6.12, CS3-5, 5-3.3 and 5-3.5, were evaluated.
The fourth challenge utilized a positive control group ( . psychrophzlum injection and no treatment) containing 85 fish, a mock infected group (lx PBS injection and no treatment) containing 80 fish, and five treatment groups (F. psychr philum injection and probiotic treatment) containing 85 fish each. Prior to challenge, five fish (withheld from feed for 24 hours) were removed and sacrificed from the control and treatment groups to test for the existence of any candidate probiotic strains being evaluated as described in Example 6.1. All fish were fed a standard trout diet until 10 days prior to challenge. During this 10 day period, the treatment groups were fed one candidate probiotic through oil dressed feed with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control was fed a standard trout diet with the addition of menhaden oil during this time. After this 10 day period, fish were withheld from feed for 24 hours, separated into triplicate 25 fish groups and challenged with F. psychrophilum using 25 μΙ< subcutaneous injections at 3 x 106 CFU fish-1 or lx PBS for the mock infected fish as described by LaFrentz et al., (2002) . Twenty- our hours post challenge, feeding of the candidate probiotics resumed for the treatment groups with the mock infected group administered a standard trout diet without the addition of menhaden oil. The positive control continued to be fed a standard trout diet with the addition of menhaden oil during this time. The five remaining fish from each group were withheld from feed for an additional 4Θ hours and sacrificed to test for the presence of the candidate probiotic strains which were fed during the 10 day period.
While multiple bacterial species were isolated from the GI tract of the fish sacrificed prior to the introduction of candidate probiotics, none of these bacteria were
identified as any of the candidate probiotic strains of interest. After day 28 of the challenge, mortality was observed in all groups with the exception of the mock infected group, as shown in Figure 2. Highest mortality was observed in tanks treated with 5-6.12 (48%), as well as the positive controls (48%) . Fish which were treated with candidate probiotics C6-6 resulted in significantly lower (P < 0.05) cumulative percent mortality (26%) when compared to the positive control group (48%) . Overall, fish fed C6-6 exhibited a 46% decrease in mortality compared to the positive controls .
Example 7 - In vitro screening of strain C6-6 against
additional pathogens
The in vitro tests described above in Example 2 were repeated utilizing probiotic strain C6-6 in order to determine whether this strain would inhibit the growth of a pathogen other than F. psychrophilum. Four days prior to testing, 10 ml of TYES broth was inoculated with F. columnare, the causative agent of Columnaris Disease. Columnaris Disease is an
important disease in a wide variety of economically important fish species, including tilapia, carp, catfish, trout, flounder, and eels.
The TYES inoculated with F. columnare (150 μΐ) was spread evenly on a TYES agar plate and allowed to absorb. The plates were divided in half and two vertical lines of 3 holes per plate were punched into the media using a 6 mm biopsy punch, deep enough to accommodate 100 μΐ in each well .
500 μΐ of the broth was placed into 1.5 ml Eppendorf tubes and centrifuged at 3684 x g at 4 °C for 5 minutes. In the first well (well A) , 100 μΐ of sterile broth media was added. Supernatant (100 μΐ) containing the pathogen was added to well B and broth media (100 μΐ) containing the pathogen was added to well C. The plates were then incubated at 15 °C for 24 to 48 hours. Once the F. columnare lawn had grown, the zones of inhibition were measured, subtracting the diameter of the punched well .
The above procedure was performed in parallel utilizing F. psychrophilum for comparison. The tests showed that the zone of inhibition produced by C6-6 against F.
columnare was comparable to and, in fact slightly greater than, that produced by strain C6-6 against F. psychrophilum. Additionally, further modifications, uses, and applications of the invention described herein will be apparent to those skilled in the art. It is intended that modifications be encompassed in the above description and the following claims.

Claims

Claims
1. An isolated bacterial strain selected from the group consisting of C6-6, which has been designated Accession No. B-50481, and C6-8, which has been designated Accession No. B-50482.
2. The isolated bacterial strain which is C6-6.
3. The isolated bacterial strain which is C6-8.
4. A method for reducing mortality in ish due to disease caused by a bacterium comprising administering to said fish either or both of strain C6-6, which has been designated Accession No. B-50481, and C6-8, which has been designated Accession No. B-50482, in an amount effective to reduce mortality due to disease caused by the bacterium.
5. The method of claim 4 wherein the
administration is by feed supplementation.
6. The method of claim 4 wherein the bacterium is Flavobacterium psychrophilwn. 7. The method of claim 4 wherein the strain is C6-
6.
8. The method of claim 4 wherein the strain is C6-
8.
9. A feed for fish comprising either or both of bacterial strain C6-6, which has been designated Accession No. B-50481, and C6-8, which has been designated Accession No. B- 50482.
10. The fish feed of claim 9 which comprises bacterial strain C6-6.
11. The fish feed of claim 9 which comprises bacterial strain C6-8.
12. The fish feed of claim 9 which comprises bacterial strain C6-6 and bacterial strain C6-8.
PCT/US2012/029896 2011-04-05 2012-03-21 Probiotic bacterial strains and method of use to decrease mortality due to bacterial disease Ceased WO2012138477A2 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US201161516626P 2011-04-05 2011-04-05
US61/516,626 2011-04-05

Publications (2)

Publication Number Publication Date
WO2012138477A2 true WO2012138477A2 (en) 2012-10-11
WO2012138477A3 WO2012138477A3 (en) 2014-05-01

Family

ID=46966291

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2012/029896 Ceased WO2012138477A2 (en) 2011-04-05 2012-03-21 Probiotic bacterial strains and method of use to decrease mortality due to bacterial disease

Country Status (2)

Country Link
US (1) US8518413B2 (en)
WO (1) WO2012138477A2 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016147121A1 (en) 2015-03-16 2016-09-22 Ecole Polytechnique Federale De Lausanne (Epfl) Archaebacteria in bioactive animal feed, method of making the composition and methods employing the composition

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CL2014002394A1 (en) * 2014-09-10 2014-11-21 Univ Chile Method to produce native probiotics with immunostimulated activity and its use in prophylaxis against flavobacteriosis in salmonids
WO2021113852A2 (en) * 2019-12-06 2021-06-10 Nas Bioventures Llc Manufacturing or onsite installation of compositions with methods, systems to address ecological and economical concerns of the aquaculture industry
US20240180975A1 (en) * 2020-04-15 2024-06-06 Institut Pasteur Bacterial strains for use as probiotics, compositions thereof, deposited strains and method to identify probiotic bacterial strains

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DK189788D0 (en) * 1988-04-07 1988-04-07 Wolf Watz Hans VACCINE
US6881412B1 (en) 2001-12-12 2005-04-19 The United States Of America As Represented By The Secretary Of The Agriculture Modified live Flavobacterium columnare against columnaris disease in fish
CA2508825A1 (en) 2002-12-18 2004-07-01 Techno Network Shikoku Co., Ltd. Vaccine for fish cold-water disease
EP1713902A4 (en) 2004-02-12 2008-01-09 Univ Queensland LIVELY WEAKEN SALMONELLES FOR USE AS VACCINES
US7067122B1 (en) 2004-06-02 2006-06-27 The United States Of America As Represented By The Secretary Of Agriculture Modified live Edwardsiella tarda vaccine for aquatic animals

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2016147121A1 (en) 2015-03-16 2016-09-22 Ecole Polytechnique Federale De Lausanne (Epfl) Archaebacteria in bioactive animal feed, method of making the composition and methods employing the composition

Also Published As

Publication number Publication date
US8518413B2 (en) 2013-08-27
US20120258138A1 (en) 2012-10-11
WO2012138477A3 (en) 2014-05-01

Similar Documents

Publication Publication Date Title
Di et al. Evaluation of the potential probiotic Bacillus subtilis isolated from two ancient sturgeons on growth performance, serum immunity and disease resistance of Acipenser dabryanus
Irianto et al. Probiotics in aquaculture
Merrifield et al. Probiotic modulation of the gut microbiota of fish
Ringø et al. Prebiotics in finfish: an update
Chi et al. Effects of three strains of intestinal autochthonous bacteria and their extracellular products on the immune response and disease resistance of common carp, Cyprinus carpio
Hoseinifar et al. Modulation of innate immune response, mucosal parameters and disease resistance in rainbow trout (Oncorhynchus mykiss) upon synbiotic feeding
Taoka et al. Use of live and dead probiotic cells in tilapia Oreochromis niloticus
Swain et al. Inhibitory activity of probiotics Streptococcus phocae PI80 and Enterococcus faecium MC13 against vibriosis in shrimp Penaeus monodon
WO2020163398A9 (en) Probiotic compositions comprising lactobacillus reuteri strains and methods of use
MX2013012607A (en) Bacillus bacteria for use in treating and preventing infection in aquatic animals.
Alishahi et al. Effects of two probiotics, Lactobacillus plantarum and Lactobacillus bulgaricus on growth performance and intestinal lactic acid bacteria of Cyprinus carpio.
Johansson et al. Bacterial population changes in the ceca of young chickens infected with Eimeria tenella
US8518413B2 (en) Probiotic bacterial strains for use to decrease mortality in fish due to bacterial disease
Daly et al. Characterization of attenuated Renibacterium salmoninarum strains and their use as live vaccines
Lauzon et al. Prevalence and application of lactic acid bacteria in aquatic environments
Abd El-Galil et al. First isolation of Vibrio alginolyticus from ornamental bird wrasse fish (Gomphosus caeruleus) of the Red Sea in Egypt
EP2912198B1 (en) Immunogenic composition against aeromonas hydrophila
Mirbakhsh et al. Screening and evaluation of indigenous bacteria from the Persian Gulf as a probiotic and biocontrol agent against Vibrio harveyi in Litopenaeus vannamei post larvae.
US7067122B1 (en) Modified live Edwardsiella tarda vaccine for aquatic animals
KR20170001379A (en) Inactivated vaccine composition against atypical Aeromonas salmonicida in rockfish
Nikapitiya Marine bacteria as probiotics and their applications in aquaculture
Dosta et al. Bacteria with probiotic capabilities isolated from the digestive tract of the ornamental fish Pterophyllum scalare
WO2023177618A1 (en) Pseudomonas chlororaphis species and its use in the control of fish diseases caused by bacteria and fungi
Ibrahim et al. Antibacterial activity of doxycycline against Aeromonas hydrophila in experimentally challenged African catfish (Clarias gariepinus)
JP5240811B2 (en) Japanese red sea bream sliding bacteriosis vaccine, Japanese red sea bream sliding bacteriosis vaccine composition and method for preventing red sea bream sliding bacteriosis

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 12768053

Country of ref document: EP

Kind code of ref document: A2

122 Ep: pct application non-entry in european phase

Ref document number: 12768053

Country of ref document: EP

Kind code of ref document: A2