IP Library Granted Patent US 10,865,422
Granted Patent B2
US 10,865,422 · App. 16/421,599 · Granted Dec 15, 2020

Plants with enhanced photosynthesis and methods of manufacture thereof

Inventors: Danny J. Schnell (Belchertown, MA); Mine O. Canakci (Granby, MA); Bibin Paulose (Amherst, MA); Michelle DaCosta Inguagiato (Wilbraham, MA)
Assignee: THE UNIVERSITY OF MASSACHUSETTS
C12N15/8269C07K14/405C12N15/8245C12N15/8247C12N15/8261C12N15/8271C12N15/8273Y02A40/146
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Quick Facts
Patent No.
US 10,865,422
App. No.
16/421,599
Granted
Dec 15, 2020
Kind
B2
Abstract

A transgenic plant having enhanced photosynthesis is disclosed. The transgenic plant is transformed with a transgenic polynucleotide encoding a heterologous bicarbonate transporter. The bicarbonate transporter can be from an algae or a cyanobacterial species. The transgenic polynucleotide comprises a nucleic acid sequence encoding the bicarbonate transporter under the control of a functional plant promoter and optionally includes a chloroplast envelope targeting peptide heterologous to the bicarbonate transporter. Methods of making the transgenic plant and transgenic polynucleotide are disclosed.

Claims (30)

1. A transgenic plant transformed with a recombinant DNA construct comprising a plant-expressible transcription regulatory sequence operatively linked to a polynucleotide encoding an algal CCP1 or CCP2 polypeptide comprising an amino acid sequence that is at least 75% identical to SEQ ID NO: 6,

wherein the transgenic plant has:

(i) a CO 2 assimilation rate higher than a plant of the same species not transformed with the recombinant DNA construct; and

(ii) a reduced transpiration rate lower than a plant of the same species not transformed with the recombinant DNA construct.

2. The transgenic plant of claim 1 , wherein the algae is a Chlamydomonas species.

3. The transgenic plant of claim 1 , wherein the amino acid sequence is at least 85% identical to SEQ ID NO: 6.

4. The transgenic plant of claim 1 , wherein the amino acid sequence is at least 90% identical to SEQ ID NO: 6.

5. The transgenic plant of claim 1 , wherein the amino acid sequence is at least 95% identical to SEQ ID NO: 6.

6. The transgenic plant of claim 1 , wherein the amino acid sequence comprises SEQ ID NO: 6.

7. The transgenic plant of claim 1 , wherein the transgenic plant comprises one or more of Borago officinalis, Brassica campestris, Brassica napus, Brassica rapa, Camelina species, Cannabis sativa, Carthamus tinctorius, Cocos nucifera, Crambe abyssinica, Cuphea species, Elaeis guinensis, Elaeis oleifera, Glycine max, Gossypium hirsutum, Gossypium barbadense, Gossypium herbaceum, Helianthus annuus, Linum usitatissimum, Oenothera biennis, Olea europaea, Oryza sativa, Ricinus communis, Sesamum indicum, Triticum species, Zea mays , walnut or almond.

8. The transgenic plant of claim 7 , wherein the transgenic plant is Camelina sativa.

9. The transgenic plant of claim 1 , wherein:

(i) the CO 2 assimilation rate of the transgenic plant is at least 5% higher than a plant of the same species not transformed with the recombinant DNA construct; and

(ii) the reduced transpiration rate of the transgenic plant is at least 5% lower than a plant of the same species not transformed with the recombinant DNA construct.

10. A method of producing a transgenic plant having enhanced photosynthesis, the method comprising:

transforming a plant cell with a recombinant polynucleotide comprising a nucleic acid sequence encoding an algal CCP1 or CCP2 polypeptide, comprising an amino acid sequence that is at least 75% identical to SEQ ID NO: 6, operatively linked to a plant-expressible promoter, wherein the nucleic acid sequence encoding the algal CCP1 or CCP2 polypeptide is further operatively linked to a transcription terminator;

growing a transgenic plant from the plant cell until the transgenic plant produces seed; and

selecting seeds from the transgenic plant in which the transgenic plant has:

(i) a CO2 assimilation rate higher than a plant of the same species not transformed with the recombinant DNA construct; and

(ii) a reduced transpiration rate lower than a plant of the same species not transformed with the recombinant DNA construct.

11. The method of claim 10 , wherein the algae is a Chlamydomonas species.

12. The method of claim 10 , wherein the amino acid sequence is at least 85% identical to SEQ ID NO: 6.

13. The method of claim 10 , wherein the amino acid sequence is at least 90% identical to SEQ ID NO: 6.

14. The method of claim 10 , wherein the amino acid sequence is at least 95% identical to SEQ ID NO: 6.

15. The method of claim 10 , wherein the amino acid sequence comprises SEQ ID NO: 6.

16. The method of claim 10 , wherein the transgenic plant comprises one or more of Borago officinalis, Brassica campestris, Brassica napus, Brassica rapa, Camelina species, Cannabis sativa, Carthamus tinctorius, Cocos nucifera, Crambe abyssinica, Cuphea species, Elaeis guinensis, Elaeis oleifera, Glycine max, Gossypium hirsutum, Gossypium barbadense, Gossypium herbaceum, Helianthus annuus, Linum usitatissimum, Oenothera biennis, Olea europaea, Oryza sativa, Ricinus communis, Sesamum indicum, Triticum species, Zea mays , walnut or almond.

17. The method of claim 16 , wherein the transgenic plant is Camelina sativa.

18. The method of claim 10 , wherein:

(i) the CO2 assimilation rate of the transgenic plant is at least 5% higher than a plant of the same species not transformed with the recombinant DNA construct; and

(ii) the reduced transpiration rate of the transgenic plant is at least 5% lower than a plant of the same species not transformed with the recombinant DNA construct.

Assignments (1)
CONFIRMATORY LICENSE Recorded Nov 20, 2023
From: UNIVERSITY OF MASSACHUSETTS
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 065616/0060 →
Continuity (3)
Continuation 15109349
Provisional Application 61922141 · Dec 31, 2013
Related Publication 20190367938A1 · Dec 5, 2019