IP Library Granted Patent US 11,985,979
Granted Patent B2
US 11,985,979 · App. 17/050,751 · Granted May 21, 2024

Population genetics approach to biological control of mycotoxin production

Inventor: Ignazio Carbone (Raleigh, NC)
Assignee: NORTH CAROLINA STATE UNIVERSITY
A01N63/34A01N63/30
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Quick Facts
Patent No.
US 11,985,979
App. No.
17/050,751
Granted
May 21, 2024
Kind
B2
Abstract

The invention relates to methods for controlling mycotoxin production in field populations of heterothallic and homothallic filamentous fungi through application of biocontrol compositions comprising selected strains of the heterothallic and homothallic filamentous fungi, the selected strains having a lineage of low mycotoxin production or no mycotoxin production and having opposite mating types (heterothallic) or both mating types (homothallic) (e.g., MAT1-1, MATT-2).

Claims (17)

1. A biocontrol method for reducing mycotoxin production in a field population of one or more heterothallic filamentous fungi, the method comprising:

applying a biocontrol composition to a plant, a plant part and/or a soil, the biocontrol composition comprising an effective amount of propagules of at least two strains of the one or more heterothallic filamentous fungi,

wherein the at least two strains of the one or more heterothallic filamentous fungi comprises four strains, a first strain, a second strain, a third strain and a fourth strain, each strain comprising a lineage of low mycotoxin production or no mycotoxin production,

wherein the first and second strains are from the same species and the third and fourth strains are from the same species, and the first and third strains are each from the same genus/species or a different genus/species, and the second and fourth strains are each from the same genus/species or a different genus/species,

wherein the first and third strains further comprise a MAT1-1 mating type and the second and fourth strains further comprise a MAT1-2 mating type, and

wherein the amount of propagules of the first strain, second strain, third strain and fourth strain is effective to promote mating between compatible mating partners in the field population and the four strains, thereby increasing the ratio of strains having the lineage of no mycotoxin production or low mycotoxin production in the field population of the heterothallic filamentous fungi and reducing mycotoxin production by the field population of the heterothallic filamentous fungi.

2. The biocontrol method of claim 1 , wherein the ratio of the propagules of the first strain to propagules of the second strain in the biocontrol composition is about equal and/or wherein the ratio of propagules of the first, second, third and fourth strains in the biocontrol composition is about equal.

3. The biocontrol method of claim 1 , wherein the one or more heterothallic filamentous fungi is from the genus Fusarium , and/or the genus Aspergillus , optionally wherein the one or more heterothallic filamentous fungi are A. flavus.

4. The biocontrol method claim 1 , wherein at least one of the at least two strains of the one or more heterothallic filamentous fungi is a native strain that is a lineage of low mycotoxin production or no mycotoxin production, optionally wherein the low mycotoxin production is less than 1% of the highest concentration of mycotoxin production in a sample from the field population.

5. The biocontrol method of claim 1 , wherein the mycotoxin is aflatoxin and low aflatoxin production is less than about 10 μg/mL aflatoxin.

6. The biocontrol method of claim 1 , wherein the effective amount of propagules of each strain in the biocontrol composition is about 1×10 4 cfu per ml to about 5×10 10 cfu per ml of the biocontrol composition.

7. The biocontrol method of claim 1 , wherein the first strain and the second strain have high fertility when crossed, wherein the first strain is MAT1-1 mating type and the propagules are sclerotia and the second strain is MAT1-2 mating type and the propagules are conidia, or wherein the first strain is MAT1-1 mating type and the propagules are conidia and the second strain is MAT1-2 mating type and the propagules are sclerotia.

8. The biocontrol method of claim 1 , wherein the mycotoxin is aflatoxin and the aflatoxin production in the field population is reduced to about 1 ppb to about 30 ppb, as measured in a plant sample.

9. The biocontrol method of claim 1 , wherein the first strain and the second strain have high fertility when crossed, wherein the first strain is MAT1-1 mating type and the propagules are sclerotia and the second strain is MAT1-2 mating type and the propagules are conidia or wherein the first strain is MAT1-1 mating type and the propagules are conidia and the second strain is MAT1-2 mating type and the propagules are sclerotia, optionally wherein the first strain and/or the second strain comprise(s) one or more genes associated with mycotoxin production, or the first strain, the second strain, the third strain and/or the fourth strain comprise(s) one or more genes associated with mycotoxin production.

10. The biocontrol method of claim 1 , wherein the ratio of the low mycotoxin producing lineage to a high mycotoxin producing lineage in the field population of heterothallic filamentous fungi is increased as compared to a control.

11. The biocontrol method of claim 1 , wherein the reduction in mycotoxin production is sustained over a period of time from at least about 2 years, optionally about 2 years to about 5 years or more.

12. The biocontrol method of claim 1 , wherein the plant is corn, peanut, cotton, wheat, triticale, barley, oat, rice, sorghum, coffee, grape, and/or a tree nut.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2020
From: CARBONE, IGNAZIO
To: NORTH CAROLINA STATE UNIVERSITY
Reel/Frame 054186/0100 →
Continuity (2)
Provisional Application 62664421 · Apr 30, 2018
Related Publication 20210235706A1 · Aug 5, 2021
Cited By (1)
US 12,507,697