Formulations and methods for treating photosynthetic organisms and enhancing qualities and quantities of yields with glycan composite formulations
Glycan Composites and methods for rendering glycan composites for the treatment of photosynthetic organisms, including the steps of formulating branched glycan deglycosylates into coordination complex compositions resulting in water-borne availability; stability during storage; applying a suitable volume of the resulting mixture to one or more photosynthetic organisms; delivery to photosynthetic organisms; metabolically based growth of crops; enhanced qualities and increased quantities of crops; and systems and compositions for the same.
1. A method of enhancing the respiratory growth of a photosynthetic organism, comprising applying to said organism an effective amount of a formulation comprising a glycan composite comprising one or more branched glycan deglycosylates and one or more transition metal 2+ coordination complexes.
2. The method of claim 1 , wherein said glycan deglycosylate is selected from the group consisting of O-linked glycans and N-linked glycans with Gly m-n , where m=1-8 and n=1-8.
3. The method of claim 1 , wherein said one or more transition metal 2+ coordination complexes comprise both metals 2+ components and one or more anionic components.
4. The method of claim 3 , wherein said anionic component of the transition metal 2+ coordination complex in said glycan composite is selected from the group consisting of polydentate alkylamide chelants, respiration accelerators, aconitates, citrates, fumarates, glutarates, malates, oxaloacetates, succinates, acids, salts, esters and derivatives thereof.
5. The method of claim 1 , wherein said branched glycan deglycosylate has a mannopyranosyl-terminal ligand.
6. The method of claim 1 , wherein said branched glycan deglycosylate is selected from the group consisting of O-linked-Glycans, Man n , Gal m Man n , Gal m Man n , Glc m Man n , Gal j Glc m Man n , and polymannosyl core structures; j=1-8, m=1-8, n=1-8; derivatives and combinations thereof.
7. The method of claim 1 , wherein said branched glycan deglycosylate is selected from one or more of the group consisting of N-linked-glycans, Man n N-glycans, Man 3 N-glycans, Man n GlcNAc 2 , Man 4-7 GlcNAc 1-2 , Man 1-24 GalNAc 1-2 , Man 1-3 GlcNAc 1-2 , Man 8-15 GlcNAc 1-2 , derivatives and combinations thereof, wherein n is 1 to 24.
8. The method of claim 6 , wherein said O-linked-glycan in said glycan composite is selected from the group consisting of aryl-, acyl-, alkyl(Gly) n , alkyl(Glc) n , alkyl(Man) n , methyl(Man) n , methyl-D-Man n , methyl-D-Glc n Man 2 Gal, Man 2 Gal 2 , ManGal 2 , Man 3 , Man 3 Gal, Man 2 Glc, and combinations thereof, wherein n=1 to 8.
9. The method of claim 1 , wherein said branched glycan deglycosylate is:
10. The method of claim 1 , wherein said one or more transition metal 2+ coordination complexes comprise both manganese, Mn 2+ , and calcium, Ca 2+ , and wherein said one or more transition metal 2+ of said transition metal 2+ coordination complexes comprises one or more D-Block transition metals 2+ selected from the group consisting of Fe 2+ , Co 2+ , Ni 2+ and Zn 2+ .
11. The method of claim 1 , wherein said glycan composite further comprises one or more preservatives.
12. The method of claim 1 , wherein said branched glycan deglycosylates are selected from one or more of invertase enzymes, denatured invertases, partially hydrolyzed invertases, and invertase deglycosylates; and blends, thereof.
13. The method of claim 1 , wherein the glycan composite formulation comprises one or more Ca 2+ -Mn 2+ -transition metal 2+ coordination complexes and one or more GlcNAc 1-3 Glycan deglycosylates.
14. A method of enhancing the respiratory growth of a photosynthetic organism that produces sap nectar, comprising applying to said sap nectar produced by said photosynthetic organism an effective amount of a formulation comprising a glycan composite comprising one or more branched glycan deglycosylates and one or more transition metal 2+ coordination complexes.
15. The method of claim 1 , wherein said photosynthetic organism is a flowering plant.
16. The method of claim 12 , wherein said partially hydrolyzed invertases are deglycosylated by citric acids.
17. The method of claim 1 , wherein said photosynthetic organism produces photosynthates, and wherein said glycan composite is applied to said photosynthetic organism to endogenously enhance flavor.
18. The method of claim 4 wherein said respiration accelerators are applied in conjunction with O 2 -generators selected from the group consisting of H 2 O 2 , CaO 2 and MgO 2 .
19. A method of claim 1 wherein the application of said glycan composite to said photosynthetic organism is in an amount effective to enhance the hydrostatic pressure of a photosynthetic organism.