IP Library Granted Patent US 12,534,700
Granted Patent B2
US 12,534,700 · App. 17/840,935 · Granted Jan 27, 2026

Beneficial microbes for delivery of effector peptides or proteins and use thereof

Inventor: Zhongmin Wei (Kirkland, WA)
Assignee: PI AGSCIENCES, INC.
C12N1/20C07K14/27C07K14/32C12N1/14
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Quick Facts
Patent No.
US 12,534,700
App. No.
17/840,935
Granted
Jan 27, 2026
Kind
B2
Abstract

Disclosed are recombinant host cells comprising a promoter-effective nucleic acid molecule operably coupled to a nucleic acid molecule that encodes a plant effector protein or polypeptide that induces an active plant response including, among others, growth enhancement, disease resistance, pest or insect resistance, and stress resistance. Use of these recombinant host cells for modulating plant biochemical signaling, imparting disease resistance to plants, enhancing plant growth, imparting tolerance to biotic stress, imparting tolerance and resistance to abiotic stress, imparting desiccation resistance to cuttings removed from ornamental plants, imparting post-harvest disease or post-harvest desiccation resistance to a fruit or vegetable, or enhancing the longevity of fruit or vegetable ripeness are also disclosed.

Claims (128)

1 . A recombinant host cell comprising a transgene that comprises a promoter-effective nucleic acid molecule operably coupled to a nucleic acid molecule that encodes a plant effector polypeptide, wherein the recombinant host cell is a microbe having an endogenous gene that imparts a first benefit to a plant grown in the presence of the recombinant microbe and the plant effector polypeptide imparts a second benefit to the plant grown in the presence of the recombinant microbe, wherein said first benefit and said second benefit are distinct, and wherein the encoded plant effector polypeptide is 12 to 50 amino acids in length and comprises the amino acid sequence of:

L-X-X-L-L-L-X-(F/L)-(I/L)-X-X-X-L  (SEQ ID NO: 34), wherein

X at position 2 is selected from M, A, D, isoD, E, γ-glutamate, Q, N, S, and G;

X at position 3 is optional and, when present, is selected from D, isoD, E, γ-glutamate, Q, N, S, and G;

X at position 7 is selected from M, A, D, isoD, E, γ-glutamate, Q, N, S, and G;

X at position 10 is selected from M, A, D, isoD, E, γ-glutamate, Q, N, S, and G;

X at position 11 is selected from M, A, D, isoD, E, γ-glutamate, Q, N, S, and G; and

X at position 12 is selected from M, A, D, isoD, E, γ-glutamate, Q, N, S, and G.

2 . The recombinant host cell according to claim 1 , wherein the microbe is a bacterium.

3 . The recombinant host cell according to claim 2 , wherein the bacterium is selected from the group of Pseudomonas, Sphingomonas, Bacillus, Streptomyces, Rhizobium, Frankia , and Azospirillum.

4 . The recombinant host cell according to claim 2 , wherein the bacterium is selected from the group of Agrobacterium radiobacter, Azotobacter chroococcum, Burkholderia cepacia, Delfitia acidovorans, Paenobacillus macerans, Pantoea agglomerans , and Serratia entomophilia.

5 . The recombinant host cell according to claim 1 , wherein the microbe is a fungus.

6 . The recombinant host cell according to claim 5 , wherein the fungus is selected from the group of Rhodotorula, Aspergillus and Trichoderma.

7 . The recombinant host cell according to claim 1 , wherein the transgene is stably integrated into the genome of the microbe.

8 . The recombinant host cell according to claim 1 , wherein the transgene is present in an expression vector.

9 . The recombinant host cell according to claim 8 , wherein the expression vector is a phage, plasmid, viral, or retroviral vector.

10 . The recombinant host cell according to claim 8 , wherein the expression vector comprises an origin of replication operable in the recombinant host cell.

11 . The recombinant host cell according to claim 1 , wherein the recombinant microbe is epiphytic or endophytic.

12 . The recombinant host cell according to claim 1 , wherein the first benefit comprises providing nutrition to a plant, producing plant hormone analogs that stimulate growth or reduce stress signaling, or competing with pathogenic organisms.

13 . The recombinant host cell according to claim 1 , wherein the second benefit comprises disease resistance, growth enhancement, tolerance and resistance to biotic stressors, tolerance to abiotic stress, desiccation resistance for cuttings removed from ornamental plants, post-harvest disease resistance or desiccation resistance to fruit or vegetables harvested from plants, and/or improved longevity of fruit or vegetable ripeness for fruit or vegetables harvested from plants.

14 . A composition comprising a plurality of recombinant host cells according to claim 1 .

15 . The composition according to claim 14 , wherein the composition is in the form of a dry powder.

16 . The composition according to claim 14 , wherein the composition is in the form of an aqueous solution or suspension.

17 . A mixture comprising one or more plant seeds and a composition according to claim 14 .

18 . A method for treating plant seeds comprising:

providing one or more plant seeds; and

applying to the provided one or more plant seeds a recombinant host cell according to claim 1 .

19 . The method according to claim 18 , wherein said applying comprises either:

mixing a dry powder comprises the recombinant host cells with the one or more plants seeds; or

soaking or spraying the one or more plant seeds with an aqueous solution or suspension comprising the recombinant host cells.

20 . A method for treating plants comprising:

providing one or more plants; and

applying to the provided one or more plants a recombinant host cell according to claim 1 .

21 . The method according to claim 20 , wherein said applying comprises either:

spraying the one or more plants with an aqueous solution or suspension comprising the recombinant host cells; or

dusting the one or more plants with a dry powder comprising the recombinant host cells.

22 . A method for treating plants comprising:

applying to a locus where plants are being grown or are expected to be grown a recombinant host cell according to claim 1 ; and

growing one or more plants at the locus where the recombinant host cell is applied.

23 . The method according to claim 22 , wherein the recombinant host cell is applied prior to planting seeds or one or more seedlings at the locus.

24 . The method according to claim 22 , wherein the recombinant host cell is applied after planting seeds or one or more seedlings at the locus.

25 . The method according to claim 22 , wherein the recombinant host cell is applied to the locus while plants are being grown at the locus.

26 . A method of imparting disease resistance to plants comprising:

applying an effective amount of a recombinant host cell according to claim 1 to a plant or plant seed or the locus where the plant is growing or is expected to grow, wherein said applying is effective to impart disease resistance to the plant.

27 . The method according to claim 26 , wherein the disease is a viral disease, a bacterial disease, or a fungal disease.

28 . A method of enhancing plant growth comprising:

applying an effective amount of a recombinant host cell according to claim 1 to a plant or plant seed or the locus where the plant is growing or is expected to grow, wherein said applying is effective to enhance plant growth.

29 . The method according to claim 28 , wherein the enhanced growth comprises improved plant vigor, increased plant weight, increased biomass, increased number of flowers per plant, higher grain and/or fruit yield, more tillers or side shoots, larger leaves, increased shoot growth, increased protein content, increased oil content, increased starch content, increased pigment content, increased chlorophyll content, and combinations thereof.

30 . A method of increasing a plant's tolerance to biotic stress comprising:

applying an effective amount of a recombinant host cell according to claim 1 to a plant or plant seed or the locus where the plant is growing or is expected to grow, wherein said applying is effective to increase the plant's tolerance to biotic stress factors selected from the group consisting of insects, arachnids, nematodes, weeds, and combinations thereof.

31 . A method of increasing a plant's tolerance to abiotic stress comprising:

applying an effective amount of a recombinant host cell according to one of claim 1 to a plant or plant seed or the locus where the plant is growing or is expected to grow, wherein said applying is effective to increase the plant's tolerance to abiotic stress factors selected from the group consisting of salt stress, water stress, ozone stress, heavy metal stress, cold stress, heat stress, nutritional stress, and combinations thereof.

32 . A method of modulating plant biochemical signaling comprising:

applying an effective amount of a recombinant host cell claim 1 to a plant or plant seed or the locus where the plant is growing or is expected to grow, wherein said applying is effective to modulate plant biochemical signaling.

33 . The method according to claim 32 , where the plant biochemical signaling is selected from the group consisting of induction of nitric oxide production, peroxide production, or a secondary metabolite; agonistic modulation of the ethylene signaling pathway and induction of ethylene-responsive gene expression; agonistic modulation of the salicylic acid signaling pathway and induction of salicylic acid-responsive gene expression; agonistic modulation of the abscisic acid pathway and induction of abscisic acid-responsive gene expression; agonistic modulation of the gibberellin signaling pathway and induction of gibberellin-responsive gene expression; antagonistic modulation of jasmonic acid signaling and inhibiting expression of jasmonic acid-responsive genes; inducing protease inhibitor expression; inducing reactive oxygen species production in plant tissues; inducing immune-related and antimicrobial peptide production; and inducing expansin gene expression and production.

34 . A recombinant host cell comprising a transgene that comprises a promoter-effective nucleic acid molecule operably coupled to a nucleic acid molecule that encodes a plant effector polypeptide, wherein the recombinant host cell is a microbe having an endogenous gene that imparts a first benefit to a plant grown in the presence of the recombinant microbe and the plant effector polypeptide imparts a second benefit to the plant grown in the presence of the recombinant microbe, wherein said first benefit and said second benefit are distinct, and wherein the encoded plant effector polypeptide has the amino acid sequence consisting essentially of:

Peptide

Peptide Amino

Sequence

Name

Acid Sequence

Identifier

P5

SAGSEQQLDLLLMFIMMMLQQ

(SEQ ID NO: 38)

P5a

SAGSEQQLDQLLLMFIMMMLQQ

(SEQ ID NO: 39)

P5-21

SEEQLELLLAFIAAALQQEE

(SEQ ID NO: 40)

P5-25

SEEEEQLDQLLLAFIAAALQQ

(SEQ ID NO: 41)

P5-2

SAGSEQQLDLLLMFIAAALQQ

(SEQ ID NO: 50)

P5-3

SAGSEQQLDLLLAFIAAALQQ

(SEQ ID NO: 51)

P5-4

SAGSEQQLELLLAFIAAALQQ

(SEQ ID NO: 52)

P5-5

QLELLLAFIAAALQQ

(SEQ ID NO: 53)

P5-8

SEEEEELDLLLAFIAAALQQ

(SEQ ID NO: 54)

P5-14

SEEEEELDLLLAFIAAALGG

(SEQ ID NO: 55)

P5-19

SELELLLAFIAAALEEEEE

(SEQ ID NO: 56)

P5-23

SEEEEELDQLLLAFIAAALQQ

(SEQ ID NO: 57)

P5-26

SEEQLDLLLAFIAAALQEE

(SEQ ID NO: 58)

P5-28

SEEQLDQLLLAFIAAALEE

(SEQ ID NO: 59)

P5-29

SEEELDLLLMFIMMMLEE

(SEQ ID NO: 60)

P5-30

SEEELDQLLLMFIMMMLEE

(SEQ ID NO: 61)

P5-31

SEEEQLDLLLMFIMMMLEE

(SEQ ID NO: 62)

P5-32

SEEEQLDQLLLMFIMMMLEE

(SEQ ID NO: 63)

P5-33

SEEEQLDLLLMFIMMMLQEE

(SEQ ID NO: 64)

P5-34

SEEEQLDQLLLMFIMMMLQEE

(SEQ ID NO: 65)

P5-35

SAGSEQQEDLLLMFIMMMLQQ

(SEQ ID NO: 66)

P5-36

SAGSEQQLDELLMFIMMMLQQ

(SEQ ID NO: 67).

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNEE ADDRESS PREVIOUSLY RECORDED AT REEL: 73971 FRAME: 29. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Mar 5, 2026
From: PLANT HEALTH CARE, INC.
To: PI AGSCIENCES, INC.
Reel/Frame 075041/0760 →
CHANGE OF NAME Recorded Dec 19, 2025
From: PLANT HEALTH CARE, INC.
To: PI AGSCIENCES, INC.
Reel/Frame 073971/0029 →
Continuity (3)
Division 15476257 · Mar 31, 2017
Provisional Application 62319150 · Apr 6, 2016
Related Publication 20230203432A1 · Jun 29, 2023
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