Squash hybrid SV3451YG and parents thereof
09736999 · 2017-08-22
Assignee
Inventors
Cpc classification
International classification
Abstract
The invention provides seed and plants of squash hybrid SV3451YG and the parent lines thereof. The invention thus relates to the plants, seeds and tissue cultures of squash hybrid SV3451YG and the parent lines thereof, and to methods for producing a squash plant produced by crossing such plants with themselves or with another squash plant, such as a plant of another genotype. The invention further relates to seeds and plants produced by such crossing. The invention further relates to parts of such plants, including the fruit and gametes of such plants.
Claims
1. A squash plant comprising at least a first set of the chromosomes of squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597 and ATCC Accession Number PTA-121434, respectively.
2. A squash seed comprising at least a first set of the chromosomes of squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597 and ATCC Accession Number PTA-121434, respectively.
3. The plant of claim 1, which is an inbred.
4. The plant of claim 1, which is a hybrid.
5. The seed of claim 2, which is an inbred.
6. The seed of claim 2, which is a hybrid.
7. The plant of claim 4, wherein the hybrid plant is squash hybrid SV3451YG, a sample of seed of said hybrid SV3451YG having been deposited under ATCC Accession Number PTA-121514.
8. The seed of claim 6, defined as a seed of squash hybrid SV3451YG, a sample of seed of said hybrid SV3451YG having been deposited under ATCC Accession Number PTA-121514.
9. The seed of claim 2, defined as a seed of line ZGN-EH10211 or line ZGN-EH09032.
10. A plant part of the plant of claim 1, said plant part comprising at least a first set of the chromosomes of squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597 and ATCC Accession Number PTA-121434, respectively.
11. The plant part of claim 10, further defined as a leaf, an ovule, pollen, a fruit, or a cell.
12. A squash plant having all the physiological and morphological characteristics of the squash plant of claim 7.
13. A tissue culture of regenerable cells of the plant of claim 1, said cells comprising at least a first set of the chromosomes of squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597 and ATCC Accession Number PTA-121434, respectively.
14. The tissue culture according to claim 13, comprising cells or protoplasts from a plant part selected from the group consisting of embryos, meristems, cotyledons, pollen, leaves, anthers, roots, root tips, pistil, flower, seed and stalks.
15. A squash plant regenerated from the tissue culture of claim 13.
16. A method of vegetatively propagating the squash plant of claim 1, said method comprising the steps of: (a) collecting tissue capable of being propagated from the plant according to claim 1; (b) cultivating said tissue to obtain proliferated shoots; and (c) rooting said proliferated shoots to obtain rooted plantlets.
17. The method of claim 16, further comprising growing at least a first squash plant from said rooted plantlets.
18. A method of introducing a desired trait into a squash line, said method comprising: (a) utilizing as a recurrent parent a plant of either squash line ZGN-EH10211 or squash line ZGN-EH09032, by crossing a plant of squash line ZGN-EH10211 or squash line ZGN-EH09032 with a second donor squash plant that comprises a desired trait to produce F1 progeny, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597, and ATCC Accession Number PTA-121434, respectively; (b) selecting an F1 progeny that comprises the desired trait; (c) backcrossing the selected F1 progeny with a plant of the same squash line used as the recurrent parent in step (a), to produce backcross progeny; (d) selecting backcross progeny comprising the desired trait; and (e) repeating steps (c) and (d) three or more times to produce selected fourth or higher backcross progeny that comprise the desired trait, and otherwise comprises all of the physiological and morphological characteristics of the recurrent parent squash line used in step (a).
19. A method of producing a squash plant comprising an added trait, the method comprising introducing a transgene conferring the trait into a plant of squash hybrid SV3451YG, squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of said hybrid and lines having been deposited under ATCC Accession Number PTA-121514, ATCC Accession Number PTA-121597, and ATCC Accession Number PTA-121434, respectively.
20. A plant of squash hybrid SV3451YG, squash line ZGN-EH10211 or squash line ZGN-EH09032, further comprising a transgene wherein the plant otherwise comprises essentially all of the morphological and physiological characteristics of squash hybrid SV3451YG, squash line ZGN-EH10211 or squash line ZGN-EH09032.
21. The plant of claim 20, wherein the transgene confers a trait selected from the group consisting of male sterility, herbicide tolerance, insect resistance, pest resistance, disease resistance, modified fatty acid metabolism, environmental stress tolerance, modified carbohydrate metabolism and modified protein metabolism.
22. A plant produced by introducing a single locus conversion into a plant of squash line ZGN-EH10211 or squash line ZGN-EH09032, wherein the converted plant comprises the single locus conversion and otherwise comprises all of the morphological and physiological characteristics of squash line ZGN-EH10211 or squash line ZGN-EH09032, a sample of seed of squash line ZGN-EH10211 or squash line ZGN-EH09032 having been deposited under ATCC Accession Number PTA-121597 and ATCC Accession Number PTA-121434, respectively.
23. The plant of claim 22, wherein the single locus conversion confers a trait selected from the group consisting of male sterility, herbicide tolerance, insect resistance, pest resistance, disease resistance, modified fatty acid metabolism, environmental stress tolerance, modified carbohydrate metabolism and modified protein metabolism.
24. A method for producing a seed of a squash plant derived from at least one of squash hybrid SV3451YG, squash line ZGN-EH10211 or squash line ZGN-EH09032, said method comprising the steps of: (a) crossing a squash plant of hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032 with itself or a second squash plant; a sample of seed of said hybrid and lines having been deposited under ATCC Accession Number PTA-121514, ATCC Accession Number PTA-121597, and ATCC Accession Number PTA-121434, respectively; and (b) allowing seed of a hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash plant to form.
25. The method of claim 24, further comprising the steps of: (c) selfing a plant grown from said hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash seed to yield additional hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash seed; (d) growing said additional hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash seed of step (c) to yield additional hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash plants; and (e) repeating the crossing and growing steps of (c) and (d) to generate at least a first further hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash plant.
26. The method of claim 24, wherein the second squash plant is of an inbred squash line.
27. The method of claim 24, comprising crossing line ZGN-EH10211 with line ZGN-EH09032, a sample of seed of said lines having been deposited under ATCC Accession Number PTA-121597, and ATCC Accession Number PTA-121434, respectively.
28. The method of claim 25, further comprising: (f) crossing the further hybrid SV3451YG, line ZGN-EH10211 or line ZGN-EH09032-derived squash plant with a second squash plant to produce seed of a hybrid progeny plant.
29. A plant part of the plant of claim 7, wherein the plant part comprises a cell of squash hybrid SV3451YG.
30. The plant part of claim 29, further defined as a leaf, a flower, a fruit, an ovule, pollen, or a cell.
31. A method of producing a squash seed, said method comprising crossing the plant of claim 1 with itself or a second squash plant and allowing seed to form.
32. A method of producing a squash fruit, said method comprising: (a) obtaining the plant according to claim 1, wherein the plant has been cultivated to maturity; and (b) collecting a squash from the plant.
Description
DETAILED DESCRIPTION OF THE INVENTION
(1) The invention provides methods and compositions relating to plants, seeds and derivatives of squash hybrid SV3451YG, squash line ZGN-EH10211 and squash ZGN-EH09032.
(2) Squash hybrid SV3451YG is a dark green zucchini hybrid with strong vigor, good production in cold seasons, and resistance to several important viral pathogens.
A. ORIGIN AND BREEDING HISTORY OF SQUASH HYBRID SV3451YG
(3) The parents of hybrid SV3451YG are ZGN-EH10211 and ZGN-EH09032. The parent lines are uniform and stable, as is a hybrid produced therefrom. A small percentage of variants can occur within commercially acceptable limits for almost any characteristic during the course of repeated multiplication. However no variants are expected.
B. PHYSIOLOGICAL AND MORPHOLOGICAL CHARACTERISTICS OF SQUASH HYBRID SV3451YG, SQUASH LINE ZGN-EH10211 AND SQUASH ZGN-EH09032
(4) In accordance with one aspect of the present invention, there is provided a plant having the physiological and morphological characteristics of squash hybrid SV3451YG and the parent lines thereof. A description of the physiological and morphological characteristics of such plants is presented in Tables 1-3.
(5) TABLE-US-00001 TABLE 1 Physiological and Morphological Characteristics of Hybrid SV3451YG Comparison Variety Fordhook CHARACTERISTIC SV3451YG (ZGN 47-111*HP 111) 1. Species Pepo Pepo 2. Kind/Use squash squash 3. Type summer (vegetable marrow) summer 4. Cotyledon length 38.6 mm 39.5 mm width 28.8 mm 29.6 mm apex rounded rounded veining plainly visible prominent color medium green medium green color (RHS Color Chart) 143A 143A Seedling shape of cotyledons narrow elliptic (Bianchini) elliptic intensity of green color of medium (Cora) medium cotyledons cross section of concave concave cotyledons 5. Mature Plant growth habit bush bush plant type pilose prickly 6. Main Stem cross-section shape round round diameter at mid-point of 30.1 mm 36.7 mm 1.sup.st internode average length 44.5 cm 26.5 cm average number of 25.1 25.6 internodes Stem color completely green (Becky) completely green intensity of green color very dark (Goldrush) dark mottling absent (Cinderella) absent tendrils well developed (Baby Bear, well developed Greyzini) Plant growth habit bush (Greyzini) bush branching absent (Goldi) absent bush varieties only: semi-erect (Arlesa) erect to semi-erect attitude of petiole (excluding lower external leaves) 7. Leaves blade shape reniform reniform blade form deep lobed deep lobed margin denticulate denticulate margin edges frilled frilled average width 37.6 cm 36.3 cm average length 29 cm 29.0 cm leaf surface smooth blistered dorsal surface pubescence soft hairy soft hairy vental surface pubescence soft hairy soft hairy color dark green dark green color (RHS Color Chart) 139A 139A leaf blotching blotched with gray blotched with gray leaf blade: size medium (Ambassador) medium leaf blade: incisions deep (Civac) medium leaf blade: intensity of dark (Everest) dark green color of upper surface leaf blade: silvery patches present (Civac) present leaf blade: relative area medium (Ambassador) medium covered by silvery patches average petiole length 39.2 cm 38.3 cm petiole length medium (Goldi) long petiole: number of few (Opaline) absent or very few prickles 8. Flower pistillate flower: average 12.4 cm 13.4 cm diameter pistillate flower: ovary drum-like drum-like pistillate flower: average 1.6 cm 2.3 cm pedicel length pistillate flower: margin curved curved shape pistillate flower: margin frilled frilled edges pistillate flower: average 1.1 mm 1.0 mm sepal width pistillate flower: average 5.6 mm 3.8 mm sepal length pistillate flower: color orange orange pistillate flower: color 23A 23A (RHS Color Chart) staminate flower: average 19.9 mm 15.7 mm sepal length staminate flower: average 2.5 mm 1.9 mm sepal width staminate flower: average 202.7 mm 16.4 mm pedicel length staminate flower: color orange orange staminate flower: color 23A 24A female flower: ring at present (Aurore) present inner side of corolla female flower: color of green (Aurore, Early White green ring at inner side of Bush Scallop, President) corolla female flower: intensity of strong (Aristocrat, Diamant) weak green color of ring at inner side of corolla (varieties with green ring at inner side of corolla) male flower: ring at inner present (Goldi) present side of corolla male flower: color of ring green (Austral, Belor, Goldi) green at inner side of corolla male flower: intensity of strong (Goldi) strong green color of ring at inner side of corolla 9. Fruit market maturity: average 15.3 cm 16.1 cm length market maturity: average 2.5 cm 2.9 cm width - stem end at market maturity: 1.4 cm 1.2 cm average width - blossom end market maturity: average 129 gm 165.8 gm weight market maturity: shape zucchini zucchini according to variety type market maturity: apex rounded rounded market maturity: base taper pointed rounded market maturity: ribs none inconspicuous market maturity: fruit smooth smooth surface market maturity: warts none none market maturity: blossom raised acron slightly extended scar button young fruit: ratio length/ medium (Cora) medium maximum diameter (zucchini type varieties) young fruit: general shape cylindrical (Ambassador, cylindrical (zucchini and rounded Ibis) zucchini type varieties) young fruit: main color of green (Elite, Opal, Romano) green skin (excluding color of ribs or grooves) young fruit: intensity of very dark (Carnaval, dark green color of skin Corsair) (excluding color of ribs or grooves; only varieties with green color of skin) general shape cylindrical cylindrical length (zucchini type medium (Cora) medium varieties) maximum diameter small (Goldi) small (zucchini type varieties) ratio length/maximum medium (Cora) medium diameter (zucchini type varieties) blossom end (zucchini and pointed rounded neck type varieties) grooves present present depth of grooves medium (Delicata, Table shallow Queen) ribs absent absent main color of skin green (Ambassador, Baby green (excluding color of dots, Bear) patches, stripes and bands) intensity of green color of very dark (Baby Bear, very dark skin (only varieties with Sardane) green color of skin) stripes in grooves absent (Baby Bear, Jack Be absent Little) dots present (Gold Rush, Table absent Queen) size of main dots very small (Badger Cross) secondary green color absent (Grey Zucchini, between ribs (excluding Small Sugar) dots) warts on skin absent absent size of flower scar very small (Jack Be Little) medium length of peduncle medium (Cinderella) long color of peduncle green (Ambassador) green intensity of green color of dark (Gold Rush) dark peduncle mottling of peduncle present (Elite) present ripe fruit: main color of dark green green skin (excluding color of mottles, patches, stripes and bands) ripe fruit: secondary color orange orange of skin (excluding color of mottles, patches, stripes and bands) ripe fruit: color of flesh yellow (Sunburst, Vegetable yellow Spaghetti) ripe fruit: lignified rind present (Elite, Little Gem, present Scallopini, Yellow Summer Crookneck) ripe fruit: structure of fibrous (Vegetable fibrous flesh Spaghetti)) 10. Rind average thickness at 2 mm 2.2 mm medial main or ground color orange gray-green main or ground color 163B N189A (RHS Color Chart) color of blotches orange gray-orange color of blotches 22A N163C 11. Flesh average blossom end 36.8 mm 31.7 mm thickness average medial thickness 34.3 mm 39.5 mm average stem end 29.5 mm 37.7 mm thickness texture (fine, granular, fine fine lumpy or stringy) texture (soft, firm or firm firm brittle) texture (dry, moist or juicy moist juicy) flavor slightly sweet slightly sweet quality good good color yellow green white green color (RHS Color Chart) 150D a54D 12. Seed Cavity average length 30.1 cm 31.3 cm average width 5 cm 6.1 cm location conforms to fruit shape conforms to fruit shape placental tissue abundant moderately abundant center core prominent inconspicuous 13. Fruit Stalks average length 2.9 cm 3.5 cm average diameter 2.2 cm 2.2 cm cross-section shape irregular irregular twisting not twisted not twisted tapering tapered tapered straightness slightly curved slightly curved texture hard hard furrows shallow deep surface smooth smooth attachment end expanded expanded detaches with difficulty with difficulty color dark green dark green color (RHS Color Chart) 143A 137B 14. Seeds average length 14.7 mm 13.4 mm average width 8.5 mm 8.5 mm average thickness 3.2 mm 3.4 mm face surface smooth smooth color cream cream color (RHS Color Chart) 155B 155A luster glossy glossy margin curved curved margin edge rounded rounded separation from pulp difficult easy average grams per 100 15 gm 14.0 gm seeds average number of seeds 213.2 133.8 per fruit seed coat normal normal size medium (Diamant) medium shape elliptic (Elite) elliptic hull present (Baby Bear, Elite) present appearance of hull fully developed (Elite) fully developed color of hull cream (De Nice á Fruit cream Rond) For NL Technical Questionnaire: Special Conditions for the Examination of the Variety fruit type: zucchini fruit: patches, stripes or present (Elite, Greyzini) bands in ripe stage (if zucchini type) *These are typical values. Values may vary due to environment. Other values that are substantially equivalent are also within the scope of the invention.
(6) TABLE-US-00002 TABLE 2 Physiological and Morphological Characteristics of Line ZGN-EH10211 Comparison Variety Fordhook CHARACTERISTIC ZGN-EH10211 (ZGN 47-111*HP 111) 1. Species Pepo Pepo 2. Kind/Use squash squash 3. Type summer (vegetable marrow) summer 4. Cotyledon length 33.3 mm 39.5 mm width 24.8 mm 29.6 mm apex tapered rounded veining prominent prominent color medium green medium green color (RHS Color Chart) 143A 143A Seedling shape of cotyledons narrow elliptic (Bianchini) elliptic intensity of green color of medium (Cora) medium cotyledons cross section of concave concave cotyledons 5. Mature Plant growth habit bush bush plant type pilose prickly 6. Main Stem cross-section shape angled round diameter at mid-point of 23.5 mm 36.7 mm 1.sup.st internode average length 37.6 cm 26.5 cm average number of 17.6 25.6 internodes Stem color completely green (Becky) completely green intensity of green color dark (Greyzini) dark mottling absent (Cinderella) absent tendrils well developed (Baby Bear, well developed Greyzini) Plant growth habit bush (Greyzini) bush branching absent (Goldi) absent bush varieties only: erect to semi-erect (Sardane) erect to semi-erect attitude of petiole (excluding lower external leaves) 7. Leaves blade shape reniform reniform blade form deep lobed deep lobed margin denticulate denticulate margin edges frilled frilled average width 37.2 cm 36.3 cm average length 26.6 cm 29.0 cm leaf surface blistered blistered dorsal surface pubescence soft hairy soft hairy vental surface pubescence soft hairy soft hairy color dark green dark green color (RHS Color Chart) 139A 139A leaf blotching blotched with gray blotched with gray leaf blade: size medium (Ambassador) medium leaf blade: incisions medium (Jackpot) medium leaf blade: intensity of dark (Everest) dark green color of upper surface leaf blade: silvery patches present (Civac) present leaf blade: relative area medium (Ambassador) medium covered by silvery patches average petiole length 36.6 cm 38.3 cm petiole length medium (Goldi) long petiole: number of few (Opaline) absent or very few prickles 8. Flower pistillate flower: average 12.5 cm 13.4 cm diameter pistillate flower: ovary drum-like drum-like pistillate flower: average 1.3 cm 2.3 cm pedicel length pistillate flower: margin curved curved shape pistillate flower: margin frilled frilled edges pistillate flower: average 1.2 mm 1.0 mm sepal width pistillate flower: average 4.8 mm 3.8 mm sepal length pistillate flower: color orange orange pistillate flower: color 24A 23A (RHS Color Chart) staminate flower: average 17 mm 15.7 mm sepal length staminate flower: average 2.5 mm 1.9 mm sepal width staminate flower: average 231.4 mm 16.4 mm pedicel length staminate flower: color orange orange staminate flower: color N25C 24A female flower: ring at present (Aurore) present inner side of corolla female flower: color of green (Aurore, Early White green ring at inner side of Bush Scallop, President) corolla female flower: intensity of strong (Aristocrat, Diamant) weak green color of ring at inner side of corolla (varieties with green ring at inner side of corolla) male flower: ring at inner present (Goldi) present side of corolla male flower: color of ring yellow and green (Alice, green at inner side of corolla Carmina, Green Gem, Ibis) male flower: intensity of medium (Verdi) strong green color of ring at inner side of corolla 9. Fruit market maturity: average 16.7 cm 16.1 cm length market maturity: average 2.4 cm 2.9 cm width - stem end at market maturity: .7 cm 1.2 cm average width - blossom end market maturity: average 184.7 gm 165.8 gm weight market maturity: shape zucchini zucchini according to variety type market maturity: apex tapered pointed rounded market maturity: base flattened rounded market maturity: ribs none inconspicuous market maturity: fruit smooth smooth surface market maturity: warts none none market maturity: blossom raised acron slightly extended scar button young fruit: ratio length/maximum medium (Cora) medium diameter (zucchini type varieties) young fruit: general shape cylindrical (Ambassador, cylindrical (zucchini and rounded Ibis) zucchini type varieties) young fruit: main color of green (Elite, Opal, Romano) green skin (excluding color of ribs or grooves) young fruit: intensity of dark (Arlesa, Sandra, Zefira) dark green color of skin (excluding color of ribs or grooves; only varieties with green color of skin) general shape cylindrical cylindrical length (zucchini type medium (Cora) medium varieties) maximum diameter medium (Opal) small (zucchini type varieties) ratio length/maximum medium (Cora) medium diameter (zucchini type varieties) blossom end (zucchini and pointed rounded neck type varieties) grooves absent present main color of skin green (Ambassador, Baby green (excluding color of dots, Bear) patches, stripes and bands) intensity of green color of dark (Cora) very dark skin (only varieties with green color of skin) stripes in grooves absent (Baby Bear, Jack Be absent Little) dots absent (Sunburst) absent warts on skin absent absent size of flower scar small (Goldi) medium length of peduncle medium (Cinderella) long color of peduncle green (Ambassador) green intensity of green color of dark (Gold Rush) dark peduncle mottling of peduncle present (Elite) present ripe fruit: main color of dark green green skin (excluding color of mottles, patches, stripes and bands) ripe fruit: color of flesh yellow (Sunburst, Vegetable yellow Spaghetti) ripe fruit: lignified rind present (Elite, Little Gem, present Scallopini, Yellow Summer Crookneck) ripe fruit: structure of fibrous (Vegetable fibrous flesh Spaghetti)) 10. Rind average thickness at 2.5 mm 2.2 mm medial toughness hard hard overall color pattern regular irregular main or ground color gray-green gray-green main or ground color N189A N189A (RHS Color Chart) color of blotches orange gray-orange color of blotches N25B N163C 11. Flesh average blossom end 42.9 mm 31.7 mm thickness average medial thickness 41.3 mm 39.5 mm average stem end 35.4 mm 37.7 mm thickness texture (fine, granular, fine fine lumpy or stringy) texture (soft, firm or firm firm brittle) texture (dry, moist or moist moist juicy) flavor sweet slightly sweet quality excellent good color yellow white green color (RHS Color Chart) 4D 154D 12. Seed Cavity average length 22.6 cm 31.3 cm average width 5.2 cm 6.1 cm location conforms to fruit shape conforms to fruit shape placental tissue abundant moderately abundant center core inconspicuous inconspicuous 13. Fruit Stalks average length 2.4 cm 3.5 cm average diameter 1.6 cm 2.2 cm cross-section shape irregular irregular twisting not twisted not twisted tapering tapered tapered straightness curved slightly curved texture hard hard furrows deep deep surface rough smooth attachment end expanded expanded detaches easily with difficulty color dark green dark green color (RHS Color Chart) 139A 137B 14. Seeds average length 14 mm 13.4 mm average width 7.4 mm 8.5 mm average thickness 3.3 mm 3.4 mm face surface smooth smooth color cream cream color (RHS Color Chart) 155A 155A luster glossy glossy margin curved curved margin edge rounded rounded separation from pulp moderately easy easy average grams per 100 12 gm 14.0 gm seeds average number of seeds 179.9 133.8 per fruit seed coat normal normal size medium (Diamant) medium shape elliptic (Elite) elliptic hull present (Baby Bear, Elite) present appearance of hull fully developed (Elite) fully developed color of hull cream (De Nice à Fruit cream Rond) For NL Technical Questionnaire: Special Conditions for the Examination of the Variety fruit type: zucchini fruit: patches, stripes or absent (Ambassador, bands in ripe stage (if Black Jack) zucchini type) *These are typical values. Values may vary due to environment. Other values that are substantially equivalent are also within the scope of the invention.
(7) TABLE-US-00003 TABLE 3 Physiological and Morphological Characteristics of ZGN-EH09032 Comparison Variety Fordhook CHARACTERISTIC ZGN-EH09032 (ZGN 47-111*HP 111) 1. Species Pepo Pepo 2. Kind/Use squash squash 3. Type summer (vegetable marrow) summer 4. Cotyledon length 36.5 mm 39.5 mm width 26.3 mm 29.6 mm apex tapered rounded veining plainly visible prominent color medium green medium green color (RHS Color Chart) 143A 143A Seedling shape of cotyledons narrow elliptic (Bianchini) elliptic intensity of green color of medium (Cora) medium cotyledons cross section of concave concave cotyledons 5. Mature Plant growth habit bush bush plant type prickly prickly 6. Main Stem cross-section shape round round diameter at mid-point of 27.2 mm 36.7 mm 1.sup.st internode average length 31.6 cm 26.5 cm average number of 25 25.6 internodes Stem color completely green (Becky) completely green intensity of green color dark (Greyzini) dark mottling absent (Cinderella) absent tendrils absent to rudimentary well developed (Goldrush, Sylvana) Plant growth habit bush (Greyzini) bush branching absent (Goldi) absent bush varieties only: semi-erect (Arlesa) erect to semi-erect attitude of petiole (excluding lower external leaves) 7. Leaves blade shape reniform reniform blade form deep lobed deep lobed margin dentate denticulate margin edges frilled frilled average width 34.3 cm 36.3 cm average length 27.6 cm 29.0 cm leaf surface smooth blistered dorsal surface pubescence soft hairy soft hairy vental surface pubescence soft hairy soft hairy color dark green dark green color (RHS Color Chart) 147A 139A leaf blotching blotched with gray blotched with gray leaf blade: size medium (Ambassador) medium leaf blade: incisions deep (Civac) medium leaf blade: intensity of dark (Everest) dark green color of upper surface leaf blade: silvery patches present (Civac) present leaf blade: relative area small (Aziz) medium covered by silvery patches average petiole length 37.4 cm 38.3 cm petiole length medium (Goldi) long petiole: number of absent or very few (Kojac) absent or very few prickles 8. Flower pistillate flower: average 10.6 cm 13.4 cm diameter pistillate flower: ovary drum-like drum-like pistillate flower: average 10.6 cm 2.3 cm pedicel length pistillate flower: margin curved curved shape pistillate flower: margin frilled frilled edges pistillate flower: average 1.2 mm 1.0 mm sepal width pistillate flower: average 4.8 mm 3.8 mm sepal length pistillate flower: color orange orange pistillate flower: color 24A 23A (RHS Color Chart) staminate flower: average 19.6 mm 15.7 mm sepal length staminate flower: average 2.8 mm 1.9 mm sepal width staminate flower: average 128 mm 16.4 mm pedicel length staminate flower: color orange orange staminate flower: color 25A 24A female flower: color at present (Aurore) present inner side of corolla female flower: color of green (Aurore, Early White green ring at inner side of Bush Scallop, President) corolla female flower: intensity of strong (Aristocrat, Diamant) weak green color of ring at inner side of corolla (varieties with green ring at inner side of corolla) male flower: ring at inner present (Goldi) present side of corolla male flower: color of ring green (Austral, Belor, Goldi) green at inner side of corolla male flower: intensity of strong (Goldi) strong green color of ring at inner side of corolla 9. Fruit market maturity: average 16.2 cm 16.1 cm length market maturity: average 2.6 cm 2.9 cm width - stem end at market maturity: 1.2 cm 1.2 cm average width - blossom end market maturity: average 150 gm 165.8 gm weight market maturity: shape zucchini zucchini according to variety type market maturity: apex rounded rounded market maturity: base rounded rounded market maturity: ribs prominent inconspicuous market maturity: rib shallow shallow furrow depth market maturity: rib narrow medium wide furrow width market maturity: fruit smooth smooth surface market maturity: warts none none market maturity: blossom slightly extended slightly extended scar button young fruit: ratio length/maximum large (Carlotta) medium diameter (zucchini type varieties) young fruit: general shape cylindrical (Ambassador, cylindrical (zucchini and rounded Ibis) zucchini type varieties) young fruit: main color of green (Elite, Opal, Romano) green skin (excluding color of ribs or grooves) young fruit: intensity of very dark (Carnaval, dark green color of skin Corsair) (excluding color of ribs or grooves; only varieties with green color of skin) general shape cylindrical cylindrical length (zucchini type medium (Cora) medium varieties) maximum diameter small (Goldi) small (zucchini type varieties) ratio length/maximum medium (Cora) medium diameter (zucchini type varieties) blossom end (zucchini and rounded rounded neck type varieties) grooves absent present ribs absent absent main color of skin green (Ambassador, Baby green (excluding color of dots, Bear) patches, stripes and bands) intensity of green color of very dark (Baby Bear, very dark skin (only varieties with Sardane) green color of skin) stripes in grooves absent (Baby Bear, Jack Be absent Little) dots absent (Sunburst) absent warts on skin absent absent size of flower scar small (Goldi) medium length of peduncle long (Tivoli) long color of peduncle green (Ambassador) green intensity of green color of dark (Gold Rush) dark peduncle mottling of peduncle present (Elite) present ripe fruit: main color of green green skin (excluding color of mottles, patches, stripes and bands) ripe fruit: intensity of dark main color of skin ripe fruit: secondary color orange orange of skin (excluding color of mottles, patches, stripes and bands) ripe fruit: green hue (only absent (Jedida) absent white and cream) ripe fruit: color of flesh yellow (Sunburst, Vegetable yellow Spaghetti) ripe fruit: lignified rind present (Elite, Little Gem, present Scallopini, Yellow Summer Crookneck) ripe fruit: structure of fibrous (Vegetable fibrous flesh Spaghetti)) 10. Rind average thickness at 2 mm 2.2 mm medial toughness hard hard overall color pattern irregular irregular main or ground color gray-green gray-green main or ground color N189A N189A (RHS Color Chart) color of blotches gray-orange gray-orange color of blotches N163C N163C 11. Flesh average blossom end 38.3 mm 31.7 mm thickness average medial thickness 33.3 mm 39.5 mm average stem end 33 mm 37.7 mm thickness texture (fine, granular, granular fine lumpy or stringy) texture (soft, firm or firm firm brittle) texture (dry, moist or juicy moist juicy) flavor sweet slightly sweet quality excellent good color whitish-cream white green color (RHS Color Chart) 154A 154D 12. Seed Cavity average length 29.3 cm 31.3 cm average width 4.6 cm 6.1 cm location conforms to fruit shape conforms to fruit shape placental tissue moderately abundant moderately abundant center core prominent inconspicuous 13. Fruit Stalks average length 3.7 cm 3.5 cm average diameter 1.9 cm 2.2 cm cross-section shape round irregular twisting not twisted not twisted tapering tapered tapered straightness straight slightly curved texture spongy hard furrows deep deep surface smooth smooth attachment end expanded expanded detaches with difficulty with difficulty color dark green dark green color (RHS Color Chart) 147A 137B 14. Seeds average length 13.2 mm 13.4 mm average width 8.6 mm 8.5 mm average thickness 2.6 mm 3.4 mm face surface smooth smooth color cream cream color (RHS Color Chart) 155A 155A luster glossy glossy margin curved curved margin edge rounded rounded separation from pulp difficult easy average grams per 100 13 gm 14.0 gm seeds average number of seeds 63 133.8 per fruit seed coat normal normal size medium (Diamant) medium shape elliptic (Elite) elliptic hull present (Baby Bear, Elite) present appearance of hull fully developed (Elite) fully developed color of hull cream (De Nice à Fruit cream Rond) For NL Technical Questionnaire: Special Conditions for the Examination of the Variety fruit type: zucchini fruit: patches, stripes or absent (Ambassador, bands in ripe stage (if Black Jack) zucchini type) *These are typical values. Values may vary due to environment. Other values that are substantially equivalent are also within the scope of the invention.
C. BREEDING SQUASH PLANTS
(8) One aspect of the current invention concerns methods for producing seed of squash hybrid SV3451YG involving crossing squash lines ZGN-EH10211 and ZGN-EH09032. Alternatively, in other embodiments of the invention, hybrid SV3451YG, line ZGN-EH10211, or ZGN-EH09032 may be crossed with itself or with any second plant. Such methods can be used for propagation of hybrid SV3451YG and/or the squash lines ZGN-EH10211 and ZGN-EH09032, or can be used to produce plants that are derived from hybrid SV3451YG and/or the squash lines ZGN-EH10211 and ZGN-EH09032. Plants derived from hybrid SV3451YG and/or the squash lines ZGN-EH10211 and ZGN-EH09032 may be used, in certain embodiments, for the development of new squash varieties.
(9) The development of new varieties using one or more starting varieties is well known in the art. In accordance with the invention, novel varieties may be created by crossing hybrid SV3451YG followed by multiple generations of breeding according to such well known methods. New varieties may be created by crossing with any second plant. In selecting such a second plant to cross for the purpose of developing novel lines, it may be desired to choose those plants which either themselves exhibit one or more selected desirable characteristics or which exhibit the desired characteristic(s) when in hybrid combination. Once initial crosses have been made, inbreeding and selection take place to produce new varieties. For development of a uniform line, often five or more generations of selfing and selection are involved.
(10) Uniform lines of new varieties may also be developed by way of double-haploids. This technique allows the creation of true breeding lines without the need for multiple generations of selfing and selection. In this manner true breeding lines can be produced in as little as one generation. Haploid embryos may be produced from microspores, pollen, anther cultures, or ovary cultures. The haploid embryos may then be doubled autonomously, or by chemical treatments (e.g. colchicine treatment). Alternatively, haploid embryos may be grown into haploid plants and treated to induce chromosome doubling. In either case, fertile homozygous plants are obtained. In accordance with the invention, any of such techniques may be used in connection with a plant of the invention and progeny thereof to achieve a homozygous line.
(11) Backcrossing can also be used to improve an inbred plant. Backcrossing transfers a specific desirable trait from one inbred or non-inbred source to an inbred that lacks that trait. This can be accomplished, for example, by first crossing a superior inbred (A) (recurrent parent) to a donor inbred (non-recurrent parent), which carries the appropriate locus or loci for the trait in question. The progeny of this cross are then mated back to the superior recurrent parent (A) followed by selection in the resultant progeny for the desired trait to be transferred from the non-recurrent parent. After five or more backcross generations with selection for the desired trait, the progeny have the characteristic being transferred, but are like the superior parent for most or almost all other loci. The last backcross generation would be selfed to give pure breeding progeny for the trait being transferred.
(12) The plants of the present invention are particularly well suited for the development of new lines based on the elite nature of the genetic background of the plants. In selecting a second plant to cross with SV3451YG and/or squash lines ZGN-EH10211 and ZGN-EH09032 for the purpose of developing novel squash lines, it will typically be preferred to choose those plants which either themselves exhibit one or more selected desirable characteristics or which exhibit the desired characteristic(s) when in hybrid combination. Examples of desirable traits may include, in specific embodiments, high seed yield, high seed germination, seedling vigor, high fruit yield, disease tolerance or resistance, and adaptability for soil and climate conditions. Consumer-driven traits, such as a fruit shape, color, texture, and taste are other examples of traits that may be incorporated into new lines of squash plants developed by this invention.
D. PERFORMANCE CHARACTERISTICS
(13) As described above, hybrid SV3451YG exhibits desirable traits, as conferred by squash lines ZGN-EH10211 and ZGN-EH09032. The performance characteristics of hybrid SV3451YG and squash lines ZGN-EH10211 and ZGN-EH09032 were the subject of an objective analysis of the performance traits relative to other varieties. The results of the analysis are presented below.
(14) TABLE-US-00004 TABLE 4 Performance Data for Hybrid SV3451YG Plot ASRT3 Shape Color Uniformity Ease of harvest Blossom Scar Vigor Growth Habit Spines Grams/plant 1042 Competitor 1 5 7 5 2 3 2 2 4 167 1073 Competitor 1 5 6 5 2 3 3 3 4 143 1101 Competitor 1 5 5 6 2 3 3 5 5 121 1129 Competitor 1 4 6 5 1 3 2 3 4 108 1157 Competitor 1 5 5 5 3 2 3 4 5 131 1041 Competitor 2 3 6 3 1 3 3 3 3 157 1072 Competitor 2 4 5 3 1 3 2 4 4 175 1100 Competitor 2 4 5 3 1 3 2 4 4 161 1128 Competitor 2 5 4 5 1 3 3 4 5 125 1156 Competitor 2 6 4 6 3 3 3 5 5 146 1168 Competitor 2 6 6 4 6 3 2 2 3 167 1065 SV3451YG 5 5 4 1 3 4 3 5 166 1066 SV3451YG 4 5 3 1 3 3 2 4 166 1093 SV3451YG 3 8 2 1 3 3 3 5 216 1094 SV3451YG 5 5 4 1 3 2 2 3 200 1121 SV3451YG 4 5 4 1 3 3 2 4 170 1122 SV3451YG 4 4 5 2 3 3 2 5 165 1149 SV3451YG 6 6 6 5 3 3 2 5 163 1150 SV3451YG 5 6 5 2 3 3 4 5 166 1163 SV3451YG 5 7 5 5 3 3 3 3 205 1164 SV3451YG 4 6 6 4 3 3 2 4 203 Hybrid performance data from field trials in Los Mochis, Mexico, Dec-January 2013-2014, 14 harvest dates, 15 plants per plot. Subjective quality ratings (1-9 scale) for phenotypic traits, where 1 represents the ideal, 5 is typical for the market class, and 9 is unacceptable to professional farmers. Grams of marketable fruits per plant were estimated based on average fruit weights in each size class and size classification at each harvest date.
E. FURTHER EMBODIMENTS OF THE INVENTION
(15) In certain aspects of the invention, plants described herein are provided modified to include at least a first desired heritable trait. Such plants may, in one embodiment, be developed by a plant breeding technique called backcrossing, wherein essentially all of the physiological and morphological characteristics of a variety are recovered in addition to a genetic locus transferred into the plant via the backcrossing technique. The term single locus converted plant as used herein refers to those squash plants which are developed by a plant breeding technique called backcrossing, wherein essentially all of the physiological and morphological characteristics of a variety are recovered in addition to the single locus transferred into the variety via the backcrossing technique. By essentially all of the physiological and morphological characteristics, it is meant that the characteristics of a plant are recovered that are otherwise present when compared in the same environment, other than an occasional variant trait that might arise during backcrossing or direct introduction of a transgene.
(16) Backcrossing methods can be used with the present invention to improve or introduce a characteristic into the present variety. The parental squash plant which contributes the locus for the desired characteristic is termed the nonrecurrent or donor parent. This terminology refers to the fact that the nonrecurrent parent is used one time in the backcross protocol and therefore does not recur. The parental squash plant to which the locus or loci from the nonrecurrent parent are transferred is known as the recurrent parent as it is used for several rounds in the backcrossing protocol.
(17) In a typical backcross protocol, the original variety of interest (recurrent parent) is crossed to a second variety (nonrecurrent parent) that carries the single locus of interest to be transferred. The resulting progeny from this cross are then crossed again to the recurrent parent and the process is repeated until a squash plant is obtained wherein essentially all of the physiological and morphological characteristics of the recurrent parent are recovered in the converted plant, in addition to the single transferred locus from the nonrecurrent parent.
(18) The selection of a suitable recurrent parent is an important step for a successful backcrossing procedure. The goal of a backcross protocol is to alter or substitute a single trait or characteristic in the original variety. To accomplish this, a single locus of the recurrent variety is modified or substituted with the desired locus from the nonrecurrent parent, while retaining essentially all of the rest of the desired genetic, and therefore the desired physiological and morphological constitution of the original variety. The choice of the particular nonrecurrent parent will depend on the purpose of the backcross; one of the major purposes is to add some commercially desirable trait to the plant. The exact backcrossing protocol will depend on the characteristic or trait being altered and the genetic distance between the recurrent and nonrecurrent parents. Although backcrossing methods are simplified when the characteristic being transferred is a dominant allele, a recessive allele, or an additive allele (between recessive and dominant), may also be transferred. In this instance it may be necessary to introduce a test of the progeny to determine if the desired characteristic has been successfully transferred.
(19) In one embodiment, progeny squash plants of a backcross in which a plant described herein is the recurrent parent comprise (i) the desired trait from the non-recurrent parent and (ii) all of the physiological and morphological characteristics of squash the recurrent parent as determined at the 5% significance level when grown in the same environmental conditions.
(20) New varieties can also be developed from more than two parents. The technique, known as modified backcrossing, uses different recurrent parents during the backcrossing. Modified backcrossing may be used to replace the original recurrent parent with a variety having certain more desirable characteristics or multiple parents may be used to obtain different desirable characteristics from each.
(21) With the development of molecular markers associated with particular traits, it is possible to add additional traits into an established germ line, such as represented here, with the end result being substantially the same base germplasm with the addition of a new trait or traits. Molecular breeding, as described in Moose and Mumm, 2008 (Plant Physiology, 147: 969-977), for example, and elsewhere, provides a mechanism for integrating single or multiple traits or QTL into an elite line. This molecular breeding-facilitated movement of a trait or traits into an elite line may encompass incorporation of a particular genomic fragment associated with a particular trait of interest into the elite line by the mechanism of identification of the integrated genomic fragment with the use of flanking or associated marker assays. In the embodiment represented here, one, two, three or four genomic loci, for example, may be integrated into an elite line via this methodology. When this elite line containing the additional loci is further crossed with another parental elite line to produce hybrid offspring, it is possible to then incorporate at least eight separate additional loci into the hybrid. These additional loci may confer, for example, such traits as a disease resistance or a fruit quality trait. In one embodiment, each locus may confer a separate trait. In another embodiment, loci may need to be homozygous and exist in each parent line to confer a trait in the hybrid. In yet another embodiment, multiple loci may be combined to confer a single robust phenotype of a desired trait.
(22) Many single locus traits have been identified that are not regularly selected for in the development of a new inbred but that can be improved by backcrossing techniques. Single locus traits may or may not be transgenic; examples of these traits include, but are not limited to, herbicide resistance, resistance to bacterial, fungal, or viral disease, insect resistance, modified fatty acid or carbohydrate metabolism, and altered nutritional quality. These comprise genes generally inherited through the nucleus.
(23) Direct selection may be applied where the single locus acts as a dominant trait. For this selection process, the progeny of the initial cross are assayed for viral resistance and/or the presence of the corresponding gene prior to the backcrossing. Selection eliminates any plants that do not have the desired gene and resistance trait, and only those plants that have the trait are used in the subsequent backcross. This process is then repeated for all additional backcross generations.
(24) Selection of squash plants for breeding is not necessarily dependent on the phenotype of a plant and instead can be based on genetic investigations. For example, one can utilize a suitable genetic marker which is closely genetically linked to a trait of interest. One of these markers can be used to identify the presence or absence of a trait in the offspring of a particular cross, and can be used in selection of progeny for continued breeding. This technique is commonly referred to as marker assisted selection. Any other type of genetic marker or other assay which is able to identify the relative presence or absence of a trait of interest in a plant can also be useful for breeding purposes. Procedures for marker assisted selection are well known in the art. Such methods will be of particular utility in the case of recessive traits and variable phenotypes, or where conventional assays may be more expensive, time consuming or otherwise disadvantageous. Types of genetic markers which could be used in accordance with the invention include, but are not necessarily limited to, Simple Sequence Length Polymorphisms (SSLPs) (Williams et al., Nucleic Acids Res., 1 8:6531-6535, 1990), Randomly Amplified Polymorphic DNAs (RAPDs), DNA Amplification Fingerprinting (DAF), Sequence Characterized Amplified Regions (SCARs), Arbitrary Primed Polymerase Chain Reaction (AP-PCR), Amplified Fragment Length Polymorphisms (AFLPs) (EP 534 858, specifically incorporated herein by reference in its entirety), and Single Nucleotide Polymorphisms (SNPs) (Wang et al., Science, 280:1077-1082, 1998).
F. PLANTS DERIVED BY GENETIC ENGINEERING
(25) Many useful traits that can be introduced by backcrossing, as well as directly into a plant, are those which are introduced by genetic transformation techniques. Genetic transformation may therefore be used to insert a selected transgene into a plant of the invention or may, alternatively, be used for the preparation of transgenes which can be introduced by backcrossing. Methods for the transformation of plants that are well known to those of skill in the art and applicable to many crop species include, but are not limited to, electroporation, microprojectile bombardment, Agrobacterium-mediated transformation and direct DNA uptake by protoplasts.
(26) To effect transformation by electroporation, one may employ either friable tissues, such as a suspension culture of cells or embryogenic callus or alternatively one may transform immature embryos or other organized tissue directly. In this technique, one would partially degrade the cell walls of the chosen cells by exposing them to pectin-degrading enzymes (pectolyases) or mechanically wound tissues in a controlled manner.
(27) An efficient method for delivering transforming DNA segments to plant cells is microprojectile bombardment. In this method, particles are coated with nucleic acids and delivered into cells by a propelling force. Exemplary particles include those comprised of tungsten, platinum, and preferably, gold. For the bombardment, cells in suspension are concentrated on filters or solid culture medium. Alternatively, immature embryos or other target cells may be arranged on solid culture medium. The cells to be bombarded are positioned at an appropriate distance below the macroprojectile stopping plate.
(28) An illustrative embodiment of a method for delivering DNA into plant cells by acceleration is the Biolistics Particle Delivery System, which can be used to propel particles coated with DNA or cells through a screen, such as a stainless steel or Nytex screen, onto a surface covered with target cells. The screen disperses the particles so that they are not delivered to the recipient cells in large aggregates. Microprojectile bombardment techniques are widely applicable, and may be used to transform virtually any plant species.
(29) Agrobacterium-mediated transfer is another widely applicable system for introducing gene loci into plant cells. An advantage of the technique is that DNA can be introduced into whole plant tissues, thereby bypassing the need for regeneration of an intact plant from a protoplast. Modern Agrobacterium transformation vectors are capable of replication in E. coli as well as Agrobacterium, allowing for convenient manipulations (Klee et al., Bio-Technology, 3(7):637-642, 1985). Moreover, recent technological advances in vectors for Agrobacterium-mediated gene transfer have improved the arrangement of genes and restriction sites in the vectors to facilitate the construction of vectors capable of expressing various polypeptide coding genes. The vectors described have convenient multi-linker regions flanked by a promoter and a polyadenylation site for direct expression of inserted polypeptide coding genes. Additionally, Agrobacterium containing both armed and disarmed Ti genes can be used for transformation.
(30) In those plant strains where Agrobacterium-mediated transformation is efficient, it is the method of choice because of the facile and defined nature of the gene locus transfer. The use of Agrobacterium-mediated plant integrating vectors to introduce DNA into plant cells is well known in the art (Fraley et al., Bio/Technology, 3:629-635, 1985; U.S. Pat. No. 5,563,055).
(31) Transformation of plant protoplasts also can be achieved using methods based on calcium phosphate precipitation, polyethylene glycol treatment, electroporation, and combinations of these treatments (see, e.g., Potrykus et al., Mol. Gen. Genet., 199:183-188, 1985; Omirulleh et al., Plant Mol. Biol., 21(3):415-428, 1993; Fromm et al., Nature, 312:791-793, 1986; Uchimiya et al., Mol. Gen. Genet., 204:204, 1986; Marcotte et al., Nature, 335:454, 1988). Transformation of plants and expression of foreign genetic elements is exemplified in Choi et al. (Plant Cell Rep., 13: 344-348, 1994), and Ellul et al. (Theor. Appl. Genet., 107:462-469, 2003).
(32) A number of promoters have utility for plant gene expression for any gene of interest including but not limited to selectable markers, scoreable markers, genes for pest tolerance, disease resistance, nutritional enhancements and any other gene of agronomic interest. Examples of constitutive promoters useful for plant gene expression include, but are not limited to, the cauliflower mosaic virus (CaMV) P-35S promoter, which confers constitutive, high-level expression in most plant tissues (see, e.g., Odel et al., Nature, 313:810, 1985), including in monocots (see, e.g., Dekeyser et al., Plant Cell, 2:591, 1990; Terada and Shimamoto, Mol. Gen. Genet., 220:389, 1990); a tandemly duplicated version of the CaMV 35S promoter, the enhanced 35S promoter (P-e35S); 1 the nopaline synthase promoter (An et al., Plant Physiol., 88:547, 1988); the octopine synthase promoter (Fromm et al., Plant Cell, 1:977, 1989); and the figwort mosaic virus (P-FMV) promoter as described in U.S. Pat. No. 5,378,619 and an enhanced version of the FMV promoter (P-eFMV) where the promoter sequence of P-FMV is duplicated in tandem; the cauliflower mosaic virus 19S promoter; a sugarcane bacilliform virus promoter; a commelina yellow mottle virus promoter; and other plant DNA virus promoters known to express in plant cells.
(33) A variety of plant gene promoters that are regulated in response to environmental, hormonal, chemical, and/or developmental signals can also be used for expression of an operably linked gene in plant cells, including promoters regulated by (1) heat (Callis et al., Plant Physiol., 88:965, 1988), (2) light (e.g., pea rbcS-3A promoter, Kuhlemeier et al., Plant Cell, 1:471, 1989; maize rbcS promoter, Schaffner and Sheen, Plant Cell, 3:997, 1991; or chlorophyll a/b-binding protein promoter, Simpson et al., EMBO J., 4:2723, 1985), (3) hormones, such as abscisic acid (Marcotte et al., Plant Cell, 1:969, 1989), (4) wounding (e.g., wunl, Siebertz et al., Plant Cell, 1:961, 1989); or (5) chemicals such as methyl jasmonate, salicylic acid, or Safener. It may also be advantageous to employ organ-specific promoters (e.g., Roshal et al., EMBO J., 6:1155, 1987; Schernthaner et al., EMBO J., 7:1249, 1988; Bustos et al., Plant Cell, 1:839, 1989).
(34) Exemplary nucleic acids which may be introduced to plants of this invention include, for example, DNA sequences or genes from another species, or even genes or sequences which originate with or are present in the same species, but are incorporated into recipient cells by genetic engineering methods rather than classical reproduction or breeding techniques. However, the term “exogenous” is also intended to refer to genes that are not normally present in the cell being transformed, or perhaps simply not present in the form, structure, etc., as found in the transforming DNA segment or gene, or genes which are normally present and that one desires to express in a manner that differs from the natural expression pattern, e.g., to over-express. Thus, the term “exogenous” gene or DNA is intended to refer to any gene or DNA segment that is introduced into a recipient cell, regardless of whether a similar gene may already be present in such a cell. The type of DNA included in the exogenous DNA can include DNA which is already present in the plant cell, DNA from another plant, DNA from a different organism, or a DNA generated externally, such as a DNA sequence containing an antisense message of a gene, or a DNA sequence encoding a synthetic or modified version of a gene.
(35) Many hundreds if not thousands of different genes are known and could potentially be introduced into a squash plant according to the invention. Non-limiting examples of particular genes and corresponding phenotypes one may choose to introduce into a squash plant include one or more genes for insect tolerance, such as a Bacillus thuringiensis (B.t.) gene, pest tolerance such as genes for fungal disease control, herbicide tolerance such as genes conferring glyphosate tolerance, and genes for quality improvements such as yield, nutritional enhancements, environmental or stress tolerances, or any desirable changes in plant physiology, growth, development, morphology or plant product(s). For example, structural genes would include any gene that confers insect tolerance including but not limited to a Bacillus insect control protein gene as described in WO 99/31248, herein incorporated by reference in its entirety, U.S. Pat. No. 5,689,052, herein incorporated by reference in its entirety, U.S. Pat. Nos. 5,500,365 and 5,880,275, herein incorporated by reference in their entirety. In another embodiment, the structural gene can confer tolerance to the herbicide glyphosate as conferred by genes including, but not limited to Agrobacterium strain CP4 glyphosate resistant EPSPS gene (aroA:CP4) as described in U.S. Pat. No. 5,633,435, herein incorporated by reference in its entirety, or glyphosate oxidoreductase gene (GOX) as described in U.S. Pat. No. 5,463,175, herein incorporated by reference in its entirety.
(36) Alternatively, the DNA coding sequences can affect these phenotypes by encoding a non-translatable RNA molecule that causes the targeted inhibition of expression of an endogenous gene, for example via antisense- or cosuppression-mediated mechanisms (see, for example, Bird et al., Biotech. Gen. Engin. Rev., 9:207, 1991). The RNA could also be a catalytic RNA molecule (i.e., a ribozyme) engineered to cleave a desired endogenous mRNA product (see for example, Gibson and Shillito, Mol. Biotech., 7:125, 1997). Thus, any gene which produces a protein or mRNA which expresses a phenotype or morphology change of interest is useful for the practice of the present invention.
G. DEFINITIONS
(37) In the description and tables herein, a number of terms are used. In order to provide a clear and consistent understanding of the specification and claims, the following definitions are provided:
(38) Allele: Any of one or more alternative forms of a gene locus, all of which alleles relate to one trait or characteristic. In a diploid cell or organism, the two alleles of a given gene occupy corresponding loci on a pair of homologous chromosomes.
(39) Backcrossing: A process in which a breeder repeatedly crosses hybrid progeny, for example a first generation hybrid (F.sub.1), back to one of the parents of the hybrid progeny. Backcrossing can be used to introduce one or more single locus conversions from one genetic background into another.
(40) Crossing: The mating of two parent plants.
(41) Cross-pollination: Fertilization by the union of two gametes from different plants.
(42) Diploid: A cell or organism having two sets of chromosomes.
(43) Emasculate: The removal of plant male sex organs or the inactivation of the organs with a cytoplasmic or nuclear genetic factor or a chemical agent conferring male sterility.
(44) Enzymes: Molecules which can act as catalysts in biological reactions.
(45) F.sub.1 Hybrid: The first generation progeny of the cross of two nonisogenic plants.
(46) Genotype: The genetic constitution of a cell or organism.
(47) Haploid: A cell or organism having one set of the two sets of chromosomes in a diploid.
(48) Linkage: A phenomenon wherein alleles on the same chromosome tend to segregate together more often than expected by chance if their transmission was independent.
(49) Marker: A readily detectable phenotype, preferably inherited in codominant fashion (both alleles at a locus in a diploid heterozygote are readily detectable), with no environmental variance component, i.e., heritability of 1.
(50) Phenotype: The detectable characteristics of a cell or organism, which characteristics are the manifestation of gene expression.
(51) Quantitative Trait Loci (QTL): Quantitative trait loci (QTL) refer to genetic loci that control to some degree numerically representable traits that are usually continuously distributed.
(52) Resistance: As used herein, the terms “resistance” and “tolerance” are used interchangeably to describe plants that show no symptoms to a specified biotic pest, pathogen, abiotic influence or environmental condition. These terms are also used to describe plants showing some symptoms but that are still able to produce marketable product with an acceptable yield. Some plants that are referred to as resistant or tolerant are only so in the sense that they may still produce a crop, even though the plants are stunted and the yield is reduced.
(53) Regeneration: The development of a plant from tissue culture.
(54) Royal Horticultural Society (RHS) color chart value: The RHS color chart is a standardized reference which allows accurate identification of any color. A color's designation on the chart describes its hue, brightness and saturation. A color is precisely named by the RHS color chart by identifying the group name, sheet number and letter, e.g., Yellow-Orange Group 19A or Red Group 41B.
(55) Self-pollination: The transfer of pollen from the anther to the stigma of the same plant.
(56) Single Locus Converted (Conversion) Plant: Plants which are developed by a plant breeding technique called backcrossing, wherein essentially all of the physiological and morphological characteristics of a squash variety are recovered in addition to the characteristics of the single locus transferred into the variety via the backcrossing technique and/or by genetic transformation.
(57) Substantially Equivalent: A characteristic that, when compared, does not show a statistically significant difference (e.g., p=0.05) from the mean.
(58) Tissue Culture: A composition comprising isolated cells of the same or a different type or a collection of such cells organized into parts of a plant.
(59) Transgene: A genetic locus comprising a sequence which has been introduced into the genome of a squash plant by transformation.
H. DEPOSIT INFORMATION
(60) A deposit of squash hybrid SV3451YG and the inbred squash lines ZGN-EH10211 and ZGN-EH09032, disclosed above and recited in the claims, has been made with the American Type Culture Collection (ATCC), 10801 University Blvd., Manassas, Va. 20110-2209. The dates of deposit were Aug. 26, 2014, Sep. 12, 2014, and Jul. 30, 2014, respectively. The accession numbers for those deposited seeds of squash hybrid SV3451YG and the inbred squash lines ZGN-EH10211 and ZGN-EH09032 are ATCC Accession No. PTA-121514, ATCC Accession No. PTA-121597 and ATCC Accession No. PTA-121434, respectively. Upon issuance of a patent, all restrictions upon the deposits will be removed, and the deposits are intended to meet all of the requirements of 37 C.F.R. §1.801-1.809. The deposits will be maintained in the depository for a period of 30 years, or 5 years after the last request, or for the effective life of the patent, whichever is longer, and will be replaced if necessary during that period.
(61) Although the foregoing invention has been described in some detail by way of illustration and example for purposes of clarity and understanding, it will be obvious that certain changes and modifications may be practiced within the scope of the invention, as limited only by the scope of the appended claims.
(62) All references cited herein are hereby expressly incorporated herein by reference.