READY-TO-USE FLY NEONATE LARVAE WITH EXTENDED SHELF-LIFE AND METHODS OF PRODUCING SAME
20230114744 · 2023-04-13
Inventors
- Idan ALYAGOR (Rehovot, IL)
- Yoav POLITI (Kibbutz Nachshonim, IL)
- Yuval GILAD (Herzelia, IL)
- Mint BITON (Rishon Lezion, IL)
- Victoria BERKUN (Bat Yam, IL)
Cpc classification
A01K1/0047
HUMAN NECESSITIES
A01K2227/706
HUMAN NECESSITIES
Y02P60/87
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
A23K10/30
HUMAN NECESSITIES
A23K10/16
HUMAN NECESSITIES
A01K67/033
HUMAN NECESSITIES
International classification
A01K67/033
HUMAN NECESSITIES
Abstract
The present invention provides compositions and methods for inducing suspended animation in neonate larvae of beneficial fly, particularly larvae of the Black soldier fly. During the suspended animation, the larvae show extended shelf-life and improved shipment durability. The suspended animation is reversible, and upon exposure to standard rearing conditions the larvae reach comparable maturity to corresponding non-suspended larvae.
Claims
1-63. (canceled)
64. A feed composition for inducing suspended animation state in fly neonate larva comprising at least one insect larva-compatible preservative and at least one gelling agent.
65. The feed composition of claim 64, wherein the feed composition further comprises at least one carbohydrate and at least one protein or at least one source thereof, wherein the protein content is up to 20% w/w based on the dry weight of the feed composition.
66. The feed composition of claim 64, wherein the at least one insect larva-compatible preservative is selected from the group consisting of a food-grade preservative, a cosmetic-grade preservative, and a combination thereof; and the at least one gelling agent is selected from the group consisting of agar, agarose, alginate, carrageenan, gum arabic, gum ghatti, gum tragacanth, gellan gum, xanthan gum, pectin, guar, methylcellulose, carboxy methylcellulose, locust bean gum, and any combination thereof.
67. The feed composition of claim 66, wherein the food-grade or cosmetic-grade preservative is selected from the group consisting of parabens, propionic acid, benzoates, sulfites, nitrates, nitrites, sorbates, salts thereof, and any combination thereof.
68. The feed composition of claim 65, wherein the protein and/or carbohydrate source is selected from the group consisting of at least one plant-derived flour, whole yeast preparation, yeast extract, molasses, and any combination thereof, and/or wherein the at least one carbohydrate is a soluble carbohydrate.
69. The feed composition of claim 65, wherein the feed composition comprises at least one preservative selected from methylparaben, propionic acid, and salts thereof, at least one gelling agent, at least one carbohydrate and at least one protein or a source thereof, wherein the protein content is up to 20% w/w based on the dry weight of the feed composition.
70. The feed composition of claim 64, wherein the feed composition is in a form selected from the group consisting of a premixed dry composition and a ready-to-use composition comprising an aqueous solution.
71. The feed composition of claim 70, wherein the feed composition is in a form of a premixed dry composition and comprises the at least one gelling agent in an amount of from about 1% to about 30% w/w and the at least one insect larva-compatible preservative in an amount of from about 0.2% to about 10% w/w based on the dry weight of the feed composition.
72. The feed composition of claim 70, wherein the feed composition is a ready-to-use composition in a form of semi-solid or solid gel devoid of a liquid phase, wherein the aqueous solution content of the feed composition is from about 35% to about 90% w/w based on the wet weight of the feed composition.
73. The feed composition of claim 64, wherein the feed composition induces reversible suspended animation state on a fly larva consuming the feed composition.
74. The feed composition of any claim 73, wherein the fly larva is of Hermetic illucens (Black soldier fly).
75. A method for inducing a suspended animation state in a fly neonate larva, comprising placing a fly egg and/or neonate larva on a feed composition inducing suspended animation state, wherein the feed composition comprises at least one insect-larva compatible preservative and at least one gelling agent, and wherein the feed composition is in a semi-solid or solid gel form comprising at least 35% w/w aqueous solution based on the wet weight of the feed composition, thereby inducing suspended animation state in the larva.
76. The method of claim 75, wherein the feed composition comprises at least one carbohydrate and at least one protein or at least one source thereof, wherein the protein content is up to 20% w/w based on the dry weight of the feed composition.
77. The method of claim 75, wherein the fly egg and/or neonate larva is of Hermetic illucens (Black soldier fly).
78. The method of claim 75, wherein the neonate larva placed on the feed composition is at the first instar developmental stage, or wherein the neonate larva is placed on the feed composition within a time period selected from the group consisting of right after hatching to about 24 h after hatching and right after hatching to about 12 h after hatching.
79. The method of claim 75, wherein the neonate larva consumes the feed composition.
80. The method of claim 75, wherein the neonate larva remains viable at the suspended animation stage as long as placed on the feed composition.
81. The method of claim 75, wherein upon transmittal of the neonate larva from the feed composition inducing suspended animation state to a common rearing feed, the neonate larva develops normally throughout the remaining larval stages.
82. The method of claim 75, wherein the method comprises placing a plurality of the fly eggs and/or neonate larvae on the feed composition inducing suspended animation.
83. A plurality of neonate larvae produced by the method of claim 75.
84. A system for shipment and storage of beneficial fly larvae, comprising a container, a feed composition inducing suspended animation according to claim 64, and a plurality of neonate fly larvae.
85. The system of claim 84, wherein the system is suitable for storage of the beneficial fly larvae for from about 7 days to about 20 weeks when kept at a temperature of from about 4° C. to about 35° C.
86. The system of claim 84, wherein the feed composition and the plurality of neonate fly larvae are placed within the container, and wherein the container of the system comprises at least one wall enabling gas exchange with the environment.
87. The system of claim 86, wherein the system comprises a container having the feed composition inducing suspended animation placed on the bottom of the container, neonate larvae on top of the feed composition, void volume sufficient to contain oxygen and relatively uniform moisture, and a top wall comprised of at least partially perforated material.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0070]
[0071]
[0072]
[0073]
[0074]
[0075]
[0076]
[0077]
[0078]
DETAILED DESCRIPTION OF THE INVENTION
[0079] The present invention answers the hitherto unmet need of industries involved in mass production of insect larvae, particularly fly larvae for reliable and reproducible systems and methods for maintaining hatched larvae at a viable state for sufficient time. Particularly, the need is for maintaining viable larvae for time periods of from several days to up to couple of months.
[0080] The present invention provides feed compositions, which, when provided to fly larvae shortly after hatching induce in the larvae a suspension animation state. The feed composition inducing suspended animation comprises at least one insect larva-compatible preservative and at least one gelling agent and proteins at a content of up to about 20% w/w based on the dry weight of the composition. The present invention further provides methods for inducing suspended animation state in neonate larvae as well as a system for shipping and storing said larvae, comprising a container and said feeding composition. According to the teaching of the present invention, the suspended animation is reversible upon transferal of the larvae to standard rearing conditions, where the larvae regain normal development.
Definitions
[0081] The term “fly” as used herein refers to a fly of the order Diptera. According to certain embodiments, the fly is Hermetia illucens (Black soldier fly).
[0082] As used herein, the term “neonate larvae” refers to insect larvae, particularly fly larvae, from the time of hatching until first molting.
[0083] As used herein, the term “agar” refers to a gelling agent (also referred to as solidifying agent) composed of agarose (a linear polymer made up of the repeating unit of agarobiose, a disaccharide made up of D-galactose and 3,6-anhydro-L-galactopyranose) and agaropectin (a sulphated galactan mixture).
[0084] The term “instar” as used herein refers to a developmental stage between molts of insects, more particularly of larval forms of holometabolous insects, until reaching sexual maturity. The larvae pass through six instars. Larvae at the first instar (recently emerged from their eggs) are opaque, creamy white, with a reddish-brown head. At the fifth instar full size of the larvae is reached and has a shagreened appearance that is greyish yellow in color. Black soldier fly normally reaches full size 14-21 days after egg emergence, at the fifth instar. The length of the fifth instar larva reach 17-25 mm length, depending on sex, feed source and sub-species. The larva life ends at the sixth instar stage after which it becomes pupa.
[0085] The term “larva ambient temperature” refers to the temperature felt by the larva. It is to be explicitly understood that the term may refer to the temperature within a container in which the larva is placed and/or to the ambient temperature in which the container is placed or the ambient temperature around a surface on which the larvae are placed. As used herein, the term “ready-to-use” with reference to the feed composition of the invention refers to said composition comprising an aqueous solution. According to certain embodiments, the aqueous solution is water. According to certain exemplary embodiments, the ready-to-use feed composition inducing suspended animation of the invention is in a form of a solid or semi-solid gel.
[0086] As used herein, the term “about” is to be understood as within a range of normal tolerance in the art, for example within 2 standard deviations of the mean. About can be understood as within 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, 0.5%, 0.1%, 0.05%, or 0.01% of the stated value. All values provided herein are understood to be modified by the term about.
[0087] According to certain currently exemplary embodiments, the systems and method of the present invention are used for maintaining viable larvae of Hermetia illucens (Black soldier fly).
[0088] Black soldier flies (BSFs) are used in the industry as an alternative protein source for feed food and for waste reduction. Unfortunately, BSFs suffer from variation in egg production and their eggs/neonates cannot be stored for more than a few days (eggs hatch 3-4 days after laying, neonates must eat about 24 hours after hatching). BSFs are also very sensitive to cold conditions throughout the early stages of their life-cycle. Therefore, exposing BSF eggs or neonate larvae to low temperatures may be fatal. Currently, there is no satisfactory ability to produce BSFs in a central production plant and ship them to remote end-users, for example at the waste decomposition facility or at the protein factory.
[0089] The present invention is based in part of the unexpected discovery that a feed composition comprising agar, at least one paraben, low protein content and sufficient moisture confers suspended animation state in larvae of the black soldier fly when placed on the feed composition several hours after the larvae hatched from the eggs.
[0090] Suspended animation is a temporary slowing or stopping of biological function causing a developmental arrest, which may be short- or long-term, so that the physiological capabilities are preserved. As used herein, the term refers to a prolonged first/second instar larval stage, from a typical duration of about 1-4 days to about at least 7 days, at least 14 days, at least 21 days, or at least 28 days and up to about 140 days. Each possibility represents a separate embodiment of the present invention.
[0091] According to one aspect, the present invention provides a feed composition for inducing suspended animation state in fly neonate larvae, comprising at least one insect larva-compatible preservative and at least one gelling agent. According to certain embodiments, the insect larva-compatible preservative is a food-grade or a cosmetic-grade preservative.
[0092] According to certain embodiments, the feed composition comprises at least one carbohydrate and at least one protein or a source thereof, wherein the protein content is up to 20% w/w based on the dry weight of the composition.
[0093] According to certain embodiments, the protein content is up to 15%, up to 16%, up to 17%, up to 18%, or up to 19% w/w based on the dry weight of the composition.
[0094] According to certain embodiments, the protein content is between 5%-20% w/w based on the dry weight of the composition. According to certain exemplary embodiments, the protein content is about 8% w/w based on the dry weight of the composition.
[0095] According to certain embodiments the carbohydrate to protein ratio is from about 18:1 to 1:1. According to some embodiments the carbohydrate to protein ratio is from about 15:1 to 1:1. According to some embodiments the carbohydrate to protein ratio is from about 10:1 to 1:1.
[0096] The protein content of the feed composition of the invention is lower compared to the protein content found in common feed compositions known to be suitable for feeding fly larvae, including chick feed, Gainesville House Fly Diet and the like. Without wishing to be bound by any specific theory or mechanism of action, the low protein and the high carbohydrate to protein ratio may contribute to the ability of the feed composition of the invention to induce suspended animation.
[0097] Any food grade preservative as well as a cosmetic preservative that are compatible with insect larvae, particularly fly larvae and specifically BSF larvae, not having fatal effect on fly larvae, can be used according to the teachings of the present invention.
[0098] According to certain embodiments, the preservative is selected from the group consisting of a paraben, a benzoate, a propionic acid or a salt thereof (a propionate), a sulfite, a nitrate, a nitrite, a sorbate and any combination thereof. Each possibility represents a separate embodiment of the present invention.
[0099] Food grade or cosmetic grade parabens and/or propionic acid and/or salts thereof are currently preferred exemplary embodiments of the invention.
[0100] According to certain embodiments, the at least one preservative is methylparaben.
[0101] According to certain embodiments, the at least one preservative is propionic acid.
[0102] According to certain exemplary embodiments, the feed composition comprises a combination of the preservatives methylparaben and propionic acid.
[0103] Parabens, alkyl-esters of p-hydroxybenzoic acid, mainly including methylparaben (MP), ethylparaben (EP), and propylparaben (PP), have been widely used as preservatives in foods, pharmaceuticals, cosmetics, and industrial products because of their broad antimicrobial spectra with relatively low toxicity, good stability, and non-volatility.
[0104] Studies investigated the effect of parabens on Drosophila melanogaster as an invertebrate model organism found that individual MP had toxic effects on the fecundity and development of fruit flies, and combination of MP and EP had the potential additive toxicity on lifespan and pre-adult development period for D. melanogaster (Chen Q. et al., 2016. Journal of Insect Science 16(1): 15;1-8). Zha et al. investigated the effect of MP as an anti-fungi agent added to the nutrition of reared larvae, and showed a decreased acceptance of diet containing high concentrations of MP in Budworm and Painted Lady Butterfly larvae (Zha C. and Cohen A C., 2014. Entomology, Ornithology & Herpetology 3(1):120).
[0105] According to certain embodiments, the paraben is selected from the group consisting of methylparaben, propylparaben, ethylparaben, butylparaben, heptylparaben, isobutylparaben, isopropylparaben, benzylparaben, salts thereof and any combination thereof. Each possibility represents a separate embodiment of the present invention. According to certain exemplary embodiments, the paraben is methylparaben and/or salts thereof.
[0106] The feed composition of the invention can be provided as a premixed dry composition which needs to be hydrated with an aqueous solution, particularly water, before use, or as a ready-to-use composition comprising the aqueous solution.
[0107] According to certain embodiments, the content of the at least one insect larva-compatible preservative in the dry premixed feed composition is from about 0.2% to about 10% w/w based on the total dry weight of the composition. According to certain embodiment, the content of the preservative or of a combination of preservatives is from about 0.5% to 8.5% w/w based on the total dry weight of the composition. According to some embodiment, the content of the preservative or of a combination of preservatives is from about 1% to 5% w/w based on the total dry weight of the composition.
[0108] According to certain embodiments, the preservative or a combination of preservatives is added to the feed composition formulated as ready-to-use at an amount of from about 0.01% to about 10% out of the total weight of the composition. According to certain embodiments, the preservative or a combination of preservatives is added to the feed composition formulated as ready-to-use at an amount of from about 0.01% to about 6.5% out of the total weight of the composition. According to some embodiments, the amount of the preservative or combination of preservatives is from 0.10% to 3% w/w based on the total weight of the composition. According to certain exemplary embodiments, the preservative or a combination of preservatives is added to the feed composition at an amount of from about 0.10% to about 0.15% w/w out of the total weight of the composition.
[0109] When the feed composition of the invention is in a dry form, the dry premix is hydrated with an aqueous solution before use. According to certain embodiments, hydration is formed with an aqueous solution at a temperature of from about 70° C. to about 100° C. The temperature of the aqueous solution would depend on the gelling agent, as to obtain a semi-solid or solid gel form of the hydrated feed composition. According to certain embodiments, the dry composition is hydrated with the aqueous condition under boiling conditions at temperature of 90° C. −100° C.
[0110] Parabens are poorly soluble in aqueous solution. Accordingly, when the preservative or combination of preservatives comprises paraben, particularly methylparaben, the dry feed composition is devoid of the paraben. According to these embodiments, the dry premix is hydrated with an aqueous solution at a temperature of from about 70° C. to about 100° C., typically about 100° C.; then the obtained solution is cooled to below 70° C.; and the paraben, typically dissolved in organic solvent is added to the cooled solution.
[0111] According to certain embodiments, the content of the at least one gelling agent in the dry premixed feed composition is from about 1% to about 30% w/w based on the total dry weight of the composition. According to certain embodiments, the content of the at least one gelling agent in the dry premixed feed composition is from about 1% to about 20% w/w based on the total dry weight of the composition. According to some embodiments, the content of the at least one gelling agent in the dry premixed feed composition is from about 1% to about 10% w/w based on the total dry weight of the composition.
[0112] According to certain embodiments, the gelling agent is added to the feed composition formulated as ready-to-use at an amount of from about 0.1% to about 5% out of the total weight of the wet composition. According to certain embodiments, the gelling agent is added to the feed composition formulated as ready-to-use at an amount of from about 0.1% to about 3% out of the total weight of the wet composition. According to certain embodiments, the amount of the gelling agent is from about 0.3% to about 1.5% w/w based on the total weight of the composition. According to certain exemplary embodiments, the amount of the gelling agent is about 0.5% w/w based on the total weight of the wet composition.
[0113] Gelling agents that can be used for obtaining a semi-solid or solid culture medium are known in the art. According to certain embodiments, the gelling agent is selected from the group consisting of agar, agarose, alginate, carrageenan, gum arabic, gum ghatti, gum tragacanth, gellan gum, xanthan gum, pectin, guar, methylcellulose, carboxy methylcellulose and locust bean gum. Each possibility represents a separate embodiment of the present invention. According to certain exemplary embodiments, the gelling agent is agar.
[0114] According to certain embodiments, the source for carbohydrates and proteins is selected from the group consisting of plant-derived flour, whole yeast preparation, yeast extract, molasses and any combination thereof.
[0115] According to certain embodiments, the at least one carbohydrate is a soluble carbohydrate. According to certain embodiments, the at least one soluble carbohydrate is selected from the group consisting of molasses, sucrose, brown sugar, starch, honey, fructose and any combination thereof. Each possibility represents a separate embodiment of the present invention. According to certain embodiments, the soluble carbohydrate is molasses. According to certain embodiments, the soluble carbohydrate is brown sugar.
[0116] Molasses are typically made from sugarcane or sugar beets. Molasses may contain different amount of sugar due to the age of the plant and extraction method. Molasses made from other sources can also be used with the compositions and methods of the present invention. According to some embodiments, the feed composition inducing suspended animation contains molasses. Various molasses types can be used in the feed composition, as is known to a person skilled in the art, including, but not limited to, sulphured molasses, unsulphured molasses, light molasses, dark molasses or blackstrap molasses. According to certain exemplary embodiments, the molasses used according to the teachings of the present invention is unsulfured sugarcane molasses. According to certain embodiments, the at least one molasses type serving as a carbohydrate and protein source is added to the feed composition formulated as a dry premixed composition or as a ready-to-use composition at a content of from about 5% to about 20% out of the total dry or wet weight of the feed composition. According to certain embodiments, the amount of the at least one molasses is from about 7.5% to about 15% w/w out of the total dry or wet weight of the feed composition.
[0117] According to certain embodiments, the plant-derived flour is obtained from a plant selected from the group consisting of corn, wheat, rye, acorn, oat, almond, amaranth, banana, bean, crown rice, buckwheat, cassava, chestnut, chuno, coconut, coffee, cornmeal, glutinous rice, hemp, mesquite, nut, peas meal or pea, peanut, potato starch, rice, sorghum, tapioca, teff, soybean, arrowroot, taro, cattails, acorns, manioc, quinoa, and other grinded grains, roots, beans, nuts or seeds, and any combination thereof. Each possibility represents a separate embodiment of the present invention.
[0118] According to some embodiments, the feed composition comprises corn flour. According to certain embodiments, the feed composition comprises wheat flour. According to certain embodiments, the at least one flour is added to the feed composition formulated as a ready-to-use composition at a content of from about 1% to about 20% w/w based on the total wet weight of the composition. According to certain embodiments, the content of the at least one flour is from about 1% to about 10% w/w based on the total wet weight of the composition. According to certain exemplary embodiments, the content of the at least one flour is from about 2.5% to about 7.5% w/w based on the total wet weight of the composition.
[0119] According to certain embodiments, the at least one flour is added to the feed composition formulated as a dry premixed composition at a content of from about 10% to about 95% w/w based on the dry weight of the composition. According to certain embodiments, the content of the at least one flour is from about 20% to about 80% w/w based on the dry weight of the composition. According to certain exemplary embodiments, the content of the at least one flour is from about 50% to about 70% w/w based on the dry weight of the composition.
[0120] According to some embodiments, the feed composition comprises yeast. Any yeast approved for human consumption can be used according to the teachings of the present invention. According to certain currently exemplary embodiments, the yeast is Saccharomyces cerevisiae. According to certain embodiments, the yeast is Saccharomyces pastorianus. According to other embodiments, the yeast is compressed yeast. According to certain embodiments, the yeast is selected from the group consisting of cream yeast, instant yeast, rapid-rise yeast, deactivated dry yeast and any combination thereof. Each possibility represents a different embodiment of the present invention. According to certain exemplary embodiments, the yeast is deactivated dry yeast.
[0121] According to certain embodiments, dry yeast content in the feed composition formulated as a ready-to-use composition is from about 0.5% to about 10% w/w based on the total wet weight of the composition. According to certain exemplary embodiments, the dry yeast content is from about 0.5% to about 5% w/w based on the total wet weight of the composition. According to certain exemplary embodiments, the dry yeast content is from about 0.5% to about 2% w/w based on the total wet weight of the composition.
[0122] According to certain embodiments, dry yeast content in the feed composition formulated as a dry premixed composition is from about 1% to about 40% w/w based on the dry weight of the composition. According to certain exemplary embodiments, the dry yeast content is from about 5% to about 30% w/w based on the total wet weight of the composition. According to certain exemplary embodiments, the dry yeast content is from about 5% to about 15% w/w based on the dry weight of the composition. According to certain exemplary embodiments, the carbohydrate and protein source comprises a combination of at least one molasses type, corn meal, and yeast extract. According to certain exemplary embodiments, the content of the carbohydrate and protein source in the feed composition formulated as a ready-to-use composition is from about 8% to about 65% out of the total wet weight of the feed composition. According to certain exemplary embodiments, the content of the carbohydrate and protein source in the feed composition formulated as a dry premixed composition is from about 50% to about 99% out of the total wet weight of the feed composition.
[0123] According to certain embodiments, the feed composition formulated as a ready-to-use composition comprises high content of aqueous solution, wherein the feed composition is devoid of a liquid phase. According to certain exemplary embodiments, the aqueous solution is water. According to certain embodiments, the feed composition comprises aqueous solution at a concentration of at least 35%, at least 40%, at least 45%, at least 50%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85% or at least 90% w/w based on the total wet weight of the composition.
[0124] According to another aspect, the present invention provides a method for inducing a suspended animation state in a fly neonate larva, comprising placing fly egg and/or larva on a feed composition inducing suspended animation, the composition comprising insect larva-compatible preservative and at least one gelling agent.
[0125] The feed composition inducing suspended animation is as described hereinabove.
[0126] According to certain embodiments, the method comprises placing a plurality of eggs and/or neonate larvae on the feed composition. According to these embodiments, the larvae are placed at a density of from about 50 to about 5000 larvae per cm.sup.2 of feed composition. According to certain embodiments, the larvae are placed at a density of from about 100 to about 3000 larvae per cm.sup.2 of feed composition. According to certain exemplary embodiments, the larvae are placed at a density of from about 500 to about 2000 larvae per cm.sup.2 of feed composition. According to certain embodiments, the plurality of eggs is placed at a density as to reach larvae density of from about 50 to about 5000 larvae per cm.sup.2 of feed composition. According to certain exemplary embodiments, the eggs are placed at a density as to reach larvae density of from about 100 to about 3000 larvae per cm.sup.2 of feed composition. According to certain exemplary embodiments, the eggs are placed at a density as to reach larvae density of from about 500 to about 1500 2000 larvae per cm.sup.2 of feed composition.
[0127] According to certain embodiments, reaching the desired larvae density comprises placing the fly eggs at about 10% higher density compared to said desired larvae density. For example, reaching a larvae density of 5,000 larvae per cm.sup.2 of feed composition comprises placing eggs at a density of 5,500 eggs per cm.sup.2 of feed composition. According to certain embodiments, the larva induced to suspended animation state remains viable for at least one week while placed on the feed composition inducing suspended animation. According to certain embodiments, the suspended-animation induced larva remains viable for at least 14 days while placed on the feed composition inducing suspended animation. According to certain embodiments, the suspended animation induced larva remains viable for at least three weeks while placed on the feed composition inducing suspended animation. According to certain embodiments, the suspended animation induced larva remains viable for at least 4 weeks while placed on the feed composition inducing suspended animation. According to certain embodiments, the suspended animation induced larva remains viable for at least 8 weeks while placed on the feed composition inducing suspended animation. According to certain embodiments, the suspended animation induced larva remains viable for at least 10 weeks, at least 11 weeks, at least 12 weeks, at least 15 weeks or at least 20 weeks while placed on the feed composition inducing suspended animation. Each possibility represents a separate embodiment of the present invention.
[0128] According to certain embodiments, neonate larva, particularly fly neonate larva, BSF larva being an exemplary embodiment, feeding of the feed composition inducing suspended animation, remains viable for at least 7 days, at least 10 days, at least 15 days, at least 20 days, at least 25 days or at least 30 days, at least 40 days, at least 45 days, at least 50 days, at least 55 days, at least 60 days, at least 65 days, at least 70 days, at least 75 days, at least 80 days, at least 85 days, at least 90 days, at least 95 days, at least 100 days, least 110 days, least 120 days, least 130 days, or up to about least 140 days. Each possibility represents a separate embodiment of the present invention. According to further embodiments, the neonate larva feeding of the suspended animation feed remains viable and at the first instar developmental stages.
[0129] According to certain embodiments, fly neonate larvae feeding of the feed composition inducing suspended animation are less susceptible to varying weather conditions. According to certain exemplary embodiments, the fly neonate larvae feeding of the feed composition show increased resistance to ambient cold temperatures. According to certain embodiments, the larvae ambient temperature is from about 4° C. to about 35° C. It is to be understood that as defined hereinabove, the larva or larvae ambient temperature refers to the temperature of the environment of the larvae, which can be the air temperate when the larvae are placed on an open surface, the temperature measured within a container in which the larvae are placed or the temperature of an incubator within the larvae are placed wither on an open surface or within a container.
[0130] According to certain embodiments, the larvae ambient temperature is constant during the entire period of the suspended animation state induced by the feed composition of the invention. According to certain embodiments, the larvae ambient temperature is from about 10° C. to about 30° C. According to certain exemplary embodiments, the larvae ambient temperature is from about 22° C. to 30° C.
[0131] According to certain embodiments, the larvae ambient temperature is varied during the period of the suspended animation state induced by the feed composition of the invention. According to these embodiments, the larvae ambient temperature is from about 20° C. to about 30° C. at a first growing period of from about 0 days after hatching to about 2 days, from about 0 days after hatching to about 4 days or from 0 days after hatching to about 7 days after hatching; and from about 4° C. to about 30° C. thereafter at a second growing period until the larvae reach the desired size.
[0132] According to another aspect, the present invention provides a system for shipment and/or storage of beneficial fly larvae, comprising a container; feed composition inducing suspended animation comprising at least one insect larva-compatible preservative and at least one gelling agent; and a plurality of neonate larva.
[0133] The composition inducing suspended animation is as described hereinabove.
[0134] According to certain embodiments, the system is suitable for storage of the beneficial fly larvae in a viable state for from about 7 days to about 20 weeks. According to certain embodiments, the system is suitable for storage of the beneficial fly larvae in a viable state for from about 14 days to about 16 weeks, from about 21 days to about 12 weeks or from about 30 days to about 10 weeks. Each possibility represents a separate embodiment of the present invention.
[0135] Any container at any shape can be used with the system of the present invention as long as the container allows for gas exchange between the container and its surrounding environment while limiting the humidity evaporation from the feed composition. According to certain embodiments, the container comprises at least one wall comprised of at least partly perforated material.
[0136] According to certain exemplary embodiments, the system comprises a container comprising a flat bottom intact wall, and a wall comprised of at least partially perforated material at the top of the container. According to these embodiments, the system comprises a container comprising the feed composition inducing suspended animation at the bottom of the container, neonate larvae and/or eggs on top of the feed, void volume sufficient to contain oxygen and relatively uniform moisture, and a top wall comprised of at least partially perforated material.
[0137] The following examples are presented in order to more fully illustrate some embodiments of the invention. They should, in no way be construed, however, as limiting the broad scope of the invention. One skilled in the art can readily devise many variations and modifications of the principles disclosed herein without departing from the scope of the invention.
EXAMPLES
Example 1
Feed Composition Inducing Suspended Animation
[0138] The ingredients of an exemplary feed composition inducing suspended animation state include agar, corn flour, dry yeast, molasses, methylparaben, propionic acid and water.
[0139] The composition was prepared as follows: 1. Agar (about 0.5% w/w), corn flour (6.5% w/w) and 95% of the water (final water content of about 83% w/w) were combined and boiled for 10 min. In another exemplary composition the final water composition was about 42% w/w (such as in
[0140] 2. Molasses (about 9% w/w) was added and the composition was stirred for 5 min.
[0141] 3. Yeasts (dry yeast, about 1% w/w) were added.
[0142] 4. The temperature of the composition was reduced to 65° C. and the rest of the water was added.
[0143] 5. Methylparaben (about 0.1-0.15% w/w) and propionic acid (in a liquid form, about 0.4% w/w) were added.
[0144] The composition was then dispensed into growing boxes with lid that enables gas exchange and prevents larval exit (5×5×10 cm plastic bottle with high density cellulose acetate lid). Total protein content in the composition was about 8% from the dry matter.
Example 2
Inducing suspended animation in larvae of black soldier fly (BSF)
[0145] BSF embryos were collected right after egg lying and up to 12 h after egg laying. The embryos were incubated at 30° C. and >80% humidity. Up to 4-8 h after hatching, the neonates (small larvae) were counted (25,000 per experiment) and moved into a bottle containing 40 ml feed composition inducing suspended animation prepared as described in Example 1 hereinabove. The bottles were placed in an incubator/heating plate set to 22-25° C. 65% humidity. Another sample with similar number of neonates served as a control, and were initially grown on a solid composition comprising plant flour mix based on soy flour with about 40-50% protein (from dry matter), for 4 days and then moved to grow on chickfeed. The control larvae were grown at 30° C. and 65% humidity
[0146] After 4 days (for larvae grown on regular feed) or 14 days (for larvae grown on feed composition inducing suspended animation), the larva as well as the remains of feed were transferred into a box with 0.5 kg wet chick-feed (18.5% protein, Tadmir Israel) for 5-7 days and kept at 28° C., 60% humidity. Thereafter, the larva as well as the remains of feed were transferred into a bigger box with 6kg wet chick-feed (18.5% protein, Tadmir Israel) added in two rounds of feed. After 8-10 days, when the larvae have reached 5 instar stage, the larvae were harvested and counted. The control larvae underwent same procedure except the first 0.5 kg feed.
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[0150] The foregoing description of the specific embodiments will so fully reveal the general nature of the invention that others can, by applying current knowledge, readily modify and/or adapt for various applications such specific embodiments without undue experimentation and without departing from the generic concept, and, therefore, such adaptations and modifications should and are intended to be comprehended within the meaning and range of equivalents of the disclosed embodiments. It is to be understood that the phraseology or terminology employed herein is for the purpose of description and not of limitation. The means, materials, and steps for carrying out various disclosed functions may take a variety of alternative forms without departing from the invention.