New methods for breeding and controlled release of predatory mites
Patent Information
- Authority / Receiving Office
- FR · FR
- Patent Type
- Patents
- Current Assignee / Owner
- BIO BEE SDE ELIYAHU
- Filing Date
- 2019-09-03
- Publication Date
- 2026-07-17
AI Technical Summary
The existing methods for rearing Phytoseiulus persimilis, a predatory mite used for biological control of spider mites, are costly and inefficient as they require rearing on plants, which is complex and expensive.
Rearing Phytoseiulus persimilis by feeding them immobilized Astigmatid mites, such as Carpoglyphus lactis, which are cheaper to produce and can sustain reproduction and development without the need for plant-based food sources.
This method allows for a cost-effective mass production of Phytoseiulus persimilis with enhanced reproduction rates and survival, enabling effective biological control of spider mites without the high costs associated with plant-based rearing.
Abstract
Description
Description Title of the invention: New rearing and release methods control of predatory mites
[0001] — This national application is filed alongside an international application filed on September 3, 2019 in the name of BIO-BEE SDE ELIY AHU LTD relating to a similar invention, for which the EPO has been selected as the Regulatory Authority. international research.
[0002] BACKGROUND OF THE INVENTION Field of invention - The present invention relates to the field of biological control agents for the crop protection, and more particularly new means and processes rearing biological control agents against crop pests.
[0004] Background of the invention
[0005] — The use of arthropods (insects and mites) as control agents (BCA) is a growing field with many advantages over to chemical pest control. BCAs made up of arthropods are able to fight naturally against other species of arthropods which act as pests on the crop.
[0006] = Phytoseiulus is a genus of mites of the Phytoseiidae family. This mite predator is most frequently used to control two-sided spider mites points in greenhouses and outdoor crops produced in environments lenient. One Phytoseiulus mite can consume up to seven adult spider mites or several dozen of their eggs a day. A well-fed female lays approximately 50 eggs in its lifetime, The genus Phytoseiulus contains four known species, to namely: P. persimilis, P. longipes, P. macropilis and P. fragariae (Chant and MeMurtry 2006). All species of the genus Phytoseiulus are considered as type 1 predators, i.e. highly specific towards a diet consisting of spider mites, preferably of the genus Tetranychus (McMurtry and Croft 1997). The species the most frequently used of its kind for the biological control of spider mites is Phytoseiulus persimilis.
[0007] — Adult Phytoseiulus persimilis (P. persimilis) are reddish-orange in color lively, with long legs and a pear-shaped body (about 0.5 mm in length).
[0008] — P. persimilis is considered a specialist against spider mites (mites of the Tetranychidae family) which are phytophagous mites (Helle and Sabelis 1985, Gerson et al. 2003). Gerson et al. 2003 specifically state that "Members of the genus Phytoseiulus live and lay their eggs almost exclusively within the septate colonies of Tetranychus species". It is further noted in Gerson et al. 2003 that “the specificity of P. persimilis for spider mite prey can be a disadvantage if other predators are present on the same plants”. It was discovered that P. persimilis could develop and eventually reproduce by feeding on another phytophagous (plant-eating) mite, Steneotarsonemus pallidus of the family Tarsonemidae (Simmonds, S.P., 1970) From a commercial point of view, a significant disadvantage of producing a predatory mite that feeds exclusively on phytophagous mites, such as spider mites, is that it requires rearing prey mites on plants. , which has a high cost. Walzer and Schausberger, 1999, examined intra- and interspecific predation of adult females and immature stages of the more generalist Neoseiulus californicus and the specialist Phytoseiulus persimilis. Adult females and immature individuals of both predators have been reported to have higher predation rates on larvae than on eggs and protonymphs. Predation on P. persimilis by N. californicus was found to be more severe than vice versa. P. persimilis has been reported to have higher predation rates on conspecifics than heterospecifics and was more prone to cannibalism than N. californicus. Additionally, it has been reported that when given phytoseiid prey, P. persimilis suffered higher mortality than N. californicus. Walzer and Schausberger, 1999 further teach that P. persimilis females were not able to maintain oviposition, regardless of whether the prey was con- or heterospecific. Furthermore, the mortality of immature individuals of P. persimilis was lower when they fed on conspecific versus heterospecific larvae. These authors concluded that for P. persimilis, neither the heterospecific prey nor the conspecific prey provide enough food to sustain reproduction. This is supported by Yao and Chant (1989), who report that P. persimilis did not produce eggs when feeding by cannibalism or immature individuals of Iphyseius degenerans. Only two females in this study laid a single egg when feeding by cannibalism on conspecifics. In summary, P. persimilis was found to be able to grow by feeding on juvenile predatory mites Neoseiulus californicus and Iphyseius degenerans of the family Phytoseiidae. However, it did not lay eggs when feeding on these prey mites. Furthermore, when the predatory mites N. californicus and I. degenerans fed on P. persimilis, they laid eggs (Yao and Chant, 1989). This demonstrates the narrow food range of P. persimilis per contrast to other mites of the same family. P. persimilis could also grow in a cannibalistic fashion, feeding on its own younger stages. When feeding in this way, there were rare cases of oviposition (Walzer and Schausberger, 1999; Yao and Chant, 1989). In all cases where Phytoseiidae mites have been used as prey, the latter has been fed with spider mites, which grow on plants and this therefore involves high costs. It was further found that P. persimilis developed on the larvae of thrips (a phytophagous insect), but did not lay eggs while feeding on this diet (Walzer 2004). This is in contrast to the predatory mite N. califonicus which was able to reproduce by feeding on this prey (Walzer 2004). It should be noted that in this study, a high mortality rate was reported during the development of the juveniles. US Patent 9,781,937 and EP Patent 2612551 disclose a mite composition comprising predatory mite species selected from Mesostigmatid mite species or Prostigmatid mite species and a food source for the species. of predatory mites including species of Astigmatid mites. It is further disclosed in these publications that at least a fraction of the Astigmatid individuals are immobilized and that the immobilized Astigmatid individuals are contacted with a fungus-reducing agent comprising a population of fungus-reducing mites selected from a species mycophagous mite or a species of mite that produces antifungal exudates. US Patent 7,947,269 teaches a mite composition comprising a breeding population of a phytoseiid predatory mite species and a dummy host population comprising at least one species selected from the Carpoglyphidae family. US Patent 8,097,248 discloses a mite composition comprising a breeding population of the phytoseiid predatory mite species Amblyseius swirskii, a dummy host population comprising at least one Astigmatid mite species selected from the group consisting of: i) Carpoglyphidae, ii) Pyroglyphidae and iii) Glyciophagidae. US Patent 8,733,283 discloses a method of rearing predatory mites by providing a prey mite food source which includes dextrose; rearing prey mites Thyreophagus entomophagus feeding on said food source; providing predatory mites which feed on Thyreophagus entomophagus at a starting ratio of predatory mites to prey mites of 1:10 to 1:100, and rearing the predatory mites by feeding them said prey mites, to create a breeding population. US patents 8,733,283 and EP2048941 teach that Phytoseiulus persimilis can be reared by feeding it only spider mites. They report that P. persimilis is an obligate spider mite predator and cannot survive by feeding on other food sources such as pollen. It is emphasized in these publications that survival tends to be poor if prey is in short supply. Patent EP2380436 discloses a composition based on mites comprising a breeding population of a species of phytoseiid predatory mite and a population of at least one species of the order Astigmata characterized in that the population of the species of the 'order Astigmata is not alive. Document WO2007075081 discloses a composition based on mites comprising a breeding population of a species of phytoseiid predatory mite and a population of dummy hosts characterized in that the population of dummy hosts comprises at least one species selected from the Glyciphagidae family. When reference is made to the phytoseiid mite Phytoseiulus persimilis, spider mites (Tetranychus urticae) are said to be the best prey. None of the above patent documents discloses or successfully teaches the rearing of the important predatory mite Phytoseiulus persimilis by feeding it mites of the order Astigmata in any form or at any stage of development. whether it be. On the contrary, all of the above patent documents and scientific publications report that P. persimilis is an obligate spider mite predator and cannot survive by feeding on other food sources. Therefore, an entomologist / acarologist would not consider P. persimilis a typical generalist species of the family Phytoseiidae or subfamily Amblyseiinae but rather a highly specific species. In view of the above, there is a long felt need for effective and efficient mass rearing of Phytoseiulus persimilis for biological control of crop pests. Summary of the invention The present invention relates to the field of insect control and more specifically to a system and method for rearing biological control agents against crop bioaggressors. The object of the present invention is to disclose a population of predatory mites comprising Phytoseiulus predatory individuals, in which at least 10% of the female individuals of the population are able to reproduce by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs., The present invention further aims to disclose the population of predatory mites as defined above, in which at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-spider mite arthropod prey, preferably immobilized non-spider mite arthropod prey, such as than non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the above paragraphs, wherein at least 10% of the female individuals in the population are capable of oviposition by feeding on non-spider mite arthropod prey, preferably immobilized Astigmatid prey with immobilized life cycle stages including immobilized eggs, It is further the object of the present invention to disclose the population of predatory mites as defined in any of the above paragraphs, wherein the population has a daily oviposition rate of at least 0.50, such that > 0.60, > 0.65, > 0.70, > 0.75, = 0.80, > 0.90, > 0.95, > 1.00, > 1.05, > 1.10 , >1.15, >1.20, >1.25, >1.30, >1.35, =1.40, >1.45, >1.50, >1.55, >1.60 , >1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female while feeding on non-mite arthropod prey, preferably immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the paragraphs above, wherein the population has a daily oviposition rate of at least 0.55, such that >0.60, >0.65, >0.70, >0.75, =0.80, >0.90, =0.95, >1.00, >1.05, >1.10 , >1.15, >1.20, >1.25, >1.30, =1.35, =1.40, >1.45, =1.50, >1.55, >1.60 , = 1.65, > 1.70, > 1.75, > 1.80, > 1.85, > 1.90, = 1.95 or > 2.00 eggs / day / female, when uses non-mite arthropod prey as the sole food source. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the paragraphs above, in which the at least 10% of the female individuals are able to complete an on- complete togenetics, when using the non-spider mite arthropod prey as the sole food source. The present invention further aims to disclose the population of predatory mites as defined in any of the above paragraphs, wherein the population is characterized by a survival rate of juveniles and / or females of at least 40%, preferably at least 45%, 50%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% by feeding on the prey not spider mite. The present invention further aims to disclose the population of predatory mites as defined in any of the above paragraphs, wherein the at least 10% of the female individuals in the population are characterized by an ability to produce female offspring in a number of subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7 , 8, 9 or 10 generations. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the paragraphs above, wherein the population is characterized by a daily reproduction rate in the range of about 1, 10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1.30, 1.10 to 1.25, 1.10 to 1.20 when feeding on non-mite arthropod prey, preferably immobilized Astigmatid prey with immobilized stages of the life cycle including immobilized eggs. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the above paragraphs, wherein female individuals exhibit predatory behavior towards individuals of a spider mite species, preferably predatory behavior characterized by a daily oviposition rate of at least 10, preferably at least 15, more preferably at least 19 eggs per female in 5 days. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the above paragraphs, wherein the population exhibits an increased reproductive rate compared to a population of control Phytoseiulus predators of the same species comprising a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey showing immobilized stages of the life cycle including immobilized eggs, less than 10%. It is further the object of the present invention to disclose a population of predatory mites comprising Phytoseiulus predatory individuals, wherein the population is characterized by a daily oviposition rate of at least 0.55 eggs / Day / female, such as >0.60, >0.65, =0.70, >0.75, >0.80, =0.90, >0.95, =1.00, >1.05 , >1.10, >1.15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55 , >1.60, >1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or >2.00 eggs / day / female , while feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably Astigmatid prey immobilized, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs. The present invention further aims to disclose the population of predatory mites as defined in any of the above paragraphs, wherein the population is characterized by a survival rate of juveniles and / or females of at least 40% by feeding on non-mite prey. The present invention further aims to disclose the population of predatory mites as defined in any of the paragraphs above, wherein at least 10% of the female individuals of the population are characterized by an ability to produce female offspring in a number of subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. It is further the object of the present invention to disclose the population of predatory mites as defined in any of the paragraphs above, wherein the population is characterized by a daily reproduction rate in the range of about 1, 10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1.30, 1.10 to 1.25, 1.10 to 1.20. It is further the object of the present invention to disclose the predatory mite population as defined in any of the above paragraphs, wherein at least 15%, at least 20%, at least 25%, at least 30 %, at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80 %, at least 85%, at least 90%, at least 95% or at least 99% of female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably arthropod prey immobilized non-mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including eggs immobilized. It is further the object of the present invention to disclose a population of predatory mites comprising Phytoseiulus predatory individuals, wherein the population is characterized by enhanced reproduction by feeding on non-mite arthropod prey, preferably a non spider mite arthropod prey im- mobilized, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs, compared to a population of control Phytoseiulus predators of the same species comprising a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs, less than 10%. It is further the object of the present invention to disclose the predatory mite population as defined in any of the above paragraphs, wherein enhanced reproduction by feeding on non-spider mite arthropod prey is characterized by at least one of: an increased daily reproductive rate, an increased daily oviposition rate, an increased survival rate, an increased percentage of female individuals reproducing by feeding on said prey, and improved predatory behavior towards a Tetranychidae. The present invention further aims to disclose the population of predatory mites as defined in any of the paragraphs above, in which the predatory individuals come from a species selected from among Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. It is further the object of the present invention to disclose the predatory mite population as defined in any of the above paragraphs, wherein breeding while receiving non-mite prey as food is breeding while receiving as food a species of Astigmatid mite selected from: 1) the Carpoglyphidae such as those of the genus Carpoglyphus, for example Carpoglyphus lactis; ii) Pyroglyphidae such as those of the genus Dermatophagoides, for example Dermatophagoides pteronysinus, Dermatophagoides farinae; of the genus Euroglyphus, for example Euroglyphus longior, Euroglyphus maynei; of the genus Pyroglyphus, for example Pyroglyphus africanus; iii) Glycyphagidae such as those of the subfamily Ctenoglyphinae, such as those of the genus Diamesoglyphus, for example Diamesoglyphus intermedius or of the genus Ctenoglyphus, for example Ctenoglyphus plumiger, Ctenoglyphus canestrinii, Ctenoglyphus palmifer; of the subfamily Glycyphaginae, such as those of the genus Blomia, for example Blomia freemani or of the genus Glycyphagus, for example Glycyphagus ornatus, Glycyphagus bicaudatus, Glycyphagus privatus, Glycyphagus domesticus, or of the genus Lepidoglyphus, for example Lepidoglyphus michaeli, Lepidoglyphus fustifer, Lepidoglyphus destructor, or of the genus Austroglycyphagus, for example Austroglycy- cyphagus geniculatus; of the subfamily Aeroglyphinae, such as those of the genus Aeroglyphus, for example Aeroglyphus robustus; of the subfamily Labidophorinae, such as those of the genus Gohieria, for example Gohieria. fusca; or of the subfamily Nycteriglyphinae such as those of the genus Coproglyphus, for example Coproglyphus stammeri or of the subfamily Chortoglyphidae, such as of the genus Chortoglyphus for example Chortoglyphus arcuatus and more preferably is selected from the subfamily Glycyphaginae, of most preferably is selected from the genus Glycyphagus or the genus Lepidoglyphus most preferably selected from Glycyphagus domesticus or Lepidoglyphus destructor; iv) Acaridae such as those of the genus Tyrophagus, for example Tyrophagus putrescentiae, Tyrophagus tropicus, of the genus Acarus, for example Acarus siro, Acarus farris, Acarus gracilis; of the genus Lardoglyphus, for example Lardoglyphus konoi, of the genus Thyreophagus, such as Thyreophagus entomophagus; of the genus Aleuroglyphus, for example Aleuroglyphus ovatus; v) Suidasiidae such as those of the genus Suidasia, such as Suidasia nesbiti, Suidasia pontifica or Suidasia medanensis. A further object of the present invention is to disclose a mite composition comprising a population of predatory mites as defined in any of the above paragraphs together with a carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having carrier elements comprising harborages for mites. A further object of the present invention is to disclose a composition based on mites as defined above, comprising a food source for Phytoseiulus predatory individuals, in which the food source comprises a non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly a species of Carpoglyphus, exhibiting immobilized stages of the life cycle including immobilized eggs. The present invention further aims to disclose the use of a non-mite arthropod species, preferably an immobilized non-mite arthropod species, such as a non-phytophagous prey, preferably a species of Astigmatid, most preferably of an immobilized Astigmatid species, such as most preferably an immobilized Astigmatid species, particularly a Carpoglyphus species, exhibiting immobilized stages of the life cycle including immobilized eggs, as a source food, preferably as reared prey, for a population of predatory mites of Phytoseiulus predatory individuals as defined in any of the paragraphs above. It is a further object of the present invention to disclose the use as defined in any of the above paragraphs, wherein said use comprises the release of individuals of a non spider mite arthropod species, preferably of an immobilized non-mite arthropod species, such as non-phytophagous prey, preferably of an Astigmatid species, most preferably of an immobilized Astigmatid species, such as most preferably a immobilized Astigmatid species, in particular a Carpoglyphus species, having immobilized life cycle stages including immobilized eggs, preferably the use comprises releasing the non-mite arthropod species using a device comprising an outlet for the mobile stages of the life cycle of the non spider mite arthropod species, preferably an outlet suitable for providing a sustained release of a number of e mobile stages of the life cycle. It is a further object of the present invention to disclose the use as defined in any of the paragraphs above, wherein said use comprises applying individuals of a non-mite arthropod species to a plant target, preferably an immobilized non-mite arthropod species, such as non-phytophagous prey, preferably an Astigmatid species, most preferably an immobilized Astigmatid species, such as most preferably an immobilized Astigmatid species, particularly a Carpoglyphus species, having immobilized life cycle stages comprising immobilized eggs, or a mixture of immobilized life cycle stages comprising eggs and motile stages of l non spider mite arthropod species The present invention further aims to disclose a device for the release of individuals of a species of predatory mite Phytoseiulus, said device comprising a reservoir containing a population of predatory mites as defined in any of the above paragraphs, preferably in a composition as defined in any of the above paragraphs, wherein the device comprises an outlet for the mobile stages of the life cycle of the predatory mite species Phytoseiulus, preferably a release suitable for providing sustained release of a number of mobile life cycle stages. It is further the object of the present invention to disclose the use of a population of predatory mites as defined in any one of paragraphs above, or a composition based on mites as defined in any one of the paragraphs above, preferably in a device as defined in any one of the paragraphs above, for the protection cultures. A further object of the present invention is to disclose a method of rearing Phytoseiulus predatory individuals, said method comprising providing a population of predatory mites as defined in any of the paragraphs above, preferably in a composition as defined in any of the paragraphs above, and allowing the Phytoseiulus predatory individuals to feed on the non-mite arthropod prey. The present invention further aims to disclose a method for obtaining a population of predatory mites as defined in any one of the paragraphs above, said method comprising the steps of: (a) providing a breeding population of a species of predatory mite selected from the genus Phytoseiulus, said breeding population comprising individuals of the species Phytoseiulus preferably together with a suitable food source to Phytoseiulus individuals, said food source comprising a prey species selected from Tetranychidae; (b) providing a preselected non-mite arthropod species, preferably an Astigmatid mite species, most preferably an immobilized Astigmatid mite species having immobilized life cycle stages comprising immobilized eggs; (c) providing the pre-selected non-mite arthropod species to Phytoseiulus individuals as a food source; (d) selection of Phytoseiulus individuals that are able to reproduce while using the preselected non-mite arthropod individuals as a food source; (e) rearing the selected Phytoseiulus individuals by providing them with a food source comprising the pre-selected non-mite arthropod species; (f) optionally, alternately, rearing selected Phytoseiulus individuals in a sequence of: - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the pre-selected species of non-spider mite arthropod; - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the prey species selected from the Tetranychidae. It is a further object of the present invention to disclose the method as defined in any of the above paragraphs, wherein the method further comprises the steps of has. separation of eggs from the pre-selected non-mite arthropod species; b. mixing separated eggs with a carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof and water, so as to coat the vector material with a layer of eggs: vs. freezing the mixture; and d. rearing the Phytoseiulus individuals by providing them with the mixture as a food source. It is further the object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the rearing population provided is a population composed of a number of subpopulations, wherein said subpopulations come from distinct sources, such as distinct production populations and / or isolated natural populations from distinct geographical locations. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein the breeding population provided comprises at least 100 individuals, such as between 200 and 5,000 individuals, preferably between 500 and 1,500 individuals. The present invention further aims to disclose a method for obtaining a population of predatory mites capable of reproducing by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs, said method comprising the steps of : has. providing a breeding population of a species of predatory mite selected from the genus Phytoseiulus, said breeding population comprising individuals of the species Phytoseiulus, reared while being fed a suitable food source to Phytoseiulus individuals, said food source comprising a prey species selected from the species Tetranychidae of the genus Phytoseiulus; b. providing a population of individuals of a preselected non-mite arthropod species, preferably an Astigmatid mite species, most preferably an immobilized Astigmatid mite species having immobilized stages life cycle including immobilized eggs; vs. breeding Phytoseiulus individuals by feeding them the pre-selected non-mite arthropod species as a food source. The present invention further aims to disclose the method as defined in any of the paragraphs above, further comprising the steps of: d. selection of Phytoseiulus individuals that are able to reproduce while using pre-selected non-mite arthropod individuals as a food source; e. rearing the selected Phytoseiulus individuals by providing them with a food source comprising the pre-selected non-mite arthropod species; £ optionally, alternately, rearing selected Phytoseiulus individuals according to a sequence of: - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the pre-selected species of non-spider mite arthropod; - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the prey species selected from the Tetranychidae. A further object of the present invention is to disclose a mite-based composition comprising a population of predatory mites as previously described together with immobilized non-mite arthropod prey, preferably immobilized non-mite arthropod prey comprising eggs. immobilized, such as an immobilized Astigmatid mite species having immobilized life cycle stages comprising frozen eggs, wherein the eggs are coated with a carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having carrier elements comprising harborages for mites, or wherein the carrier material , such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture of these, preferably a vector having vector elements comprising shelters for the mites is coated with the immobilized non-mite arthropod prey. A further object of the present invention is to disclose a device for the release of individuals of a species of predatory mite Phytoseiulus, said device comprising a reservoir containing the composition as defined in any one of the paragraphs below. above, wherein the reservoir includes an outlet for the motile life cycle stages of the predatory mite species Phyroseiulus, preferably an outlet suitable for providing a sustained release of a number of motile life cycle stages of life. A further object of the present invention is to disclose a biological control composition wherein the composition comprises has. a population of predatory mites comprising individuals of at least one species of mite of the genus Phytoseiulus capable of reproducing by feeding on non-mite arthropod prey, preferably on non-teating arthropod prey. immobilized tranych, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting stages immobilized life cycle materials including immobilized eggs; and b. a population of prey mites comprising individuals of non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably d immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, having immobilized life cycle stages including immobilized eggs, and vs. optionally a carrier, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having vector elements including shelters for mites. It is further the object of the present invention to disclose the biological control composition as defined in any of the above paragraphs, wherein at least 10% of the female individuals of the population are able to reproduce by themselves. feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs. A further object of the present invention is to disclose the biological control composition as defined in any of the above paragraphs, wherein at least 15%, at least 20%, at least 25%, at least 30% , at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80% , at least 85%, at least 90%, at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably non-mite arthropod prey. immobilized spider mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, showing stages immobilized life cycle materials including immobilized eggs. The present invention further aims to disclose the biological control composition as defined in any of the above paragraphs, in which at least 10% of female individuals in the population are capable of oviposition by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs. The present invention further aims to disclose the biological control composition as defined in any of the above paragraphs, wherein the population has a daily oviposition rate of at least 0.50, such that > 0.55, = 0.60, > 0.65, > 0.70, = 0.75, > 0.80, = 0.90, > 0.95, > 1.00, > 1, 05, >1.10, >1.15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, = 1, 55, >1.60, >1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female. A further object of the present invention is to disclose the biological control composition as defined in any of the above paragraphs, wherein the population has a daily oviposition rate of at least 0.50, such that >0.55, >0.60, >0.65, >0.70, >0.75, >0.80, =0.90, >0.95, >1.00, =1.05, >1.10, >1.15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female , when the non-mite arthropod prey is used as the sole food source. It is further the object of the present invention to disclose the biological control composition as defined in any of the paragraphs above, in which the at least 10% of the female individuals are able to complete a complete ontogenetic cycle. by feeding on the non-mite arthropod prey, when the non-mite arthropod prey is used as the sole food source. A further object of the present invention is to disclose the biological control composition as defined in any of the above paragraphs, wherein the population is characterized by a juvenile and / or female survival rate of at least least 40%, preferably at least 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% by feeding on non spider mite prey. The present invention further aims to disclose the biological control composition as defined in any of the paragraphs above, wherein the at least 10% of the female individuals of the population are characterized by an ability to produce female offspring in a number of subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. The present invention further aims to disclose the biological control composition as defined in any of the above paragraphs, wherein the population is characterized by a daily reproduction rate in the range of about 1.10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1.30, 1.10 to 1.25, 1.10 to 1.20 when feeding on non-mite prey. It is further the object of the present invention to disclose the biological control composition as defined in any of the paragraphs above, in which the female individuals exhibit a predatory behavior towards the individuals of a species of spider mite, preferably predatory behavior characterized by a daily reproductive rate of at least 10, preferably at least 15, more preferably at least 19 eggs per female in 5 days. It is a further object of the present invention to disclose the biological control composition as defined in any of the above paragraphs, wherein the population exhibits an increased reproductive rate compared to a population of control Phytoseiulus predators of the same species comprising a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey showing immobilized life cycle stages including immobilized eggs, less than 10%. It is further the object of the present invention to disclose a biological control composition comprising Phytoseiulus predatory individuals, wherein the population is characterized by a daily oviposition rate of at least 0.50, such as >0.55 , >0.60, >0.65, >0.70, >0.75, >0.80, >0.90, >0.95, >1.00, >1.05, >1.10 , >1.15, >1.20, >1.25, >1.30, =1.35, >1.40, >1.45, >1.50, >1.55, >1.60 , >1.65, >1.70, >1.75, >1.80, >1.85, =1.90, >1.95 or at least 2.00 eggs / day / female while feeding non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as than immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs. It is further the object of the present invention to disclose the biological control composition as defined in any of the paragraphs above, in which the population is characterized by a survival rate of juveniles and / or females of at least least 40%, preferably at least 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% by feeding on non spider mite prey. The present invention further aims to disclose the biological control composition as defined in any of the paragraphs above, wherein the at least 10% of the female individuals of the population are characterized by an ability to produce female offspring in a number of generations subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. It is a further object of the present invention to disclose the biocontrol composition as defined in any of the paragraphs above, wherein the population is characterized by a daily reproduction rate in the range of about 1.10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1 .35, 1.10 to 1.30, 1.10 to 1.25, 1.10 to 1.20. A further object of the present invention is to disclose the biological control composition as defined in any of the above paragraphs, wherein at least 15%, at least 20%, at least 25%, at least 30% , at least 35%, at least 40%, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80% , at least 85%, at least 90%, at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably non-mite arthropod prey. immobilized spider mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, showing stages immobilized life cycle materials including immobilized eggs. It is further the object of the present invention to disclose a biological control composition comprising Phytoseiulus predatory individuals, wherein the population is characterized by enhanced reproduction by feeding on non-mite arthropod prey, preferably on prey. immobilized non-mite arthropod, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, especially Carpoglyphus prey , showing immobilized life cycle stages including immobilized eggs, compared to a population of control Phytoseiulus predators of the same species including a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey showing immobilized life cycle stages including immobilized eggs, less than 10%. It is a further object of the present invention to disclose the biocontrol composition as defined in any of the above paragraphs, wherein the enhanced reproduction by feeding on non-spider mite arthropod prey is characterized by at least least one of: an increased daily reproductive rate, an increased daily oviposition rate, an increased survival rate, an increased percentage of female individuals reproducing by feeding on said prey, and improved predatory behavior towards a Tetranychidae. The present invention further aims to disclose the biological control composition as defined in any one of the paragraphs above, in which the predatory individuals come from a species selected from Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. It is a further object of the present invention to disclose the biocontrol composition as defined in any of the above paragraphs, wherein breeding while feeding non-mite prey is breeding while feeding a species of Astigmatid mite selected from: 1) the Carpoglyphidae such as those of the genus Carpoglyphus, for example Carpoglyphus lactis; ii) Pyroglyphidae such as those of the genus Dermatophagoides, for example Dermatophagoides pteronysinus, Dermatophagoides farinae; of the genus Euroglyphus, for example Euroglyphus longior, Euroglyphus maynei; of the genus Pyroglyphus, for example Pyroglyphus africanus; iii) Glycyphagidae such as those of the subfamily Ctenoglyphinae, such as those of the genus Diamesoglyphus, for example Diamesoglyphus intermedius or of the genus Ctenoglyphus, for example Ctenoglyphus plumiger, Ctenoglyphus canestrinii, Ctenoglyphus palmifer; of the subfamily Glycyphaginae, such as those of the genus Blomia, for example Blomia freemani or of the genus Glycyphagus, for example Glycyphagus ornatus, Glycyphagus bicaudatus, Glycyphagus privatus, Glycyphagus domesticus, or of the genus Lepidoglyphus, for example Lepidoglyphus michaeli, Lepidoglyphus fustifer, Lepidoglyphus destructor, or of the genus Austroglycyphagus, for example Austroglycyphagus geniculatus; of the subfamily Aeroglyphinae, such as those of the genus Aeroglyphus, for example Aeroglyphus robustus; of the subfamily Labidophorinae, such as those of the genus Gohieria, for example Gohieria. fusca; or of the subfamily Nycteriglyphinae such as those of the genus Coproglyphus, for example Coproglyphus stammeri or of the subfamily Chortoglyphidae, such as of the genus Chortoglyphus for example Chortoglyphus arcuatus and more preferably is selected from the subfamily Glycyphaginae, of most preferably is selected from the genus Glycyphagus or the genus Lepidoglyphus most preferably selected from Glycyphagus domesticus or Lepidoglyphus destructor; iv) Acaridae such as those of the genus Tyrophagus, for example Tyrophagus putrescentiae, Tyrophagus tropicus, of the genus Acarus, for example Acarus siro, Acarus farris, Acarus gracilis; of the genus Lardoglyphus, for example Lardoglyphus konoi, of the genus Thyreophagus, such as Thyreophagus entomophagus; of the genus Aleuroglyphus, for example Aleuroglyphus ovatus; v) Suidasiidae such as those of the genus Suidasia, such as Suidasia nesbiti, Suidasia pontifica or Suidasia medanensis. The present invention further aims to disclose the population of predatory mites Phytoseiulus persimilis as defined in any one of the above paragraphs, or the composition as defined in any one of the above paragraphs. above, or the biological control composition as defined in any of the paragraphs above, wherein the immobilized Astigmatid prey is selected from the group consisting of immobilized mites, non-viable mites, non-viable eggs hatching, non-viable eggs and a combination thereof. The present invention also aims to disclose a breeding composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the order Astigmata. The present invention also aims to provide a breeding composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising individuals of at least one species of mite of the order Astigmata, wherein said population of predatory mites is capable of oviposition for at least 2 generations, further wherein said Astigmata prey is selected from the group consisting of non-viable mites, non-viable eggs and a combination thereof. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein said predatory mite is capable of oviposition for at least 10 generations when reared in being fed on said Astigmata prey individuals. A further object of the present invention is to disclose the breeding composition as defined in any of the above paragraphs, wherein said population of predatory mites exhibits a trait characterized by an increased reproductive rate compared to to a population of control predatory mites not exhibiting said trait. It is further the object of the present invention to disclose the rearing composition as defined in any of the paragraphs above, wherein said population of predatory mites exhibits a daily reproduction rate in the range of about 1 .15 to 1.2. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein said population of predatory mites is characterized by a beige-white color. A further object of the present invention is to disclose the rearing composition as defined in any of the paragraphs above, wherein said composition is free of a fungus reducing agent. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein said species of predatory mite is selected from the group consisting of Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein said species of predatory mite is Phytoseiulus persimilis. The present invention further aims to disclose the breeding composition as defined in any of the above paragraphs, wherein the species of the order Astigmata belongs to a family selected from the group consisting of Carpoglyphidae , Pyroglyphidae, Acaridae and Glycyphagidae. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein the species of the order Astigmata comprises members of the family Carpoglyphidae, such as the genus Carpoglyphus, for example Carpoglyphus lactis, Carpoglyphus munroi; of the Glycyphagidae family such as the Glycyphagus genus, for example Glycyphagus domesticus, of the Lepidoglyphus genus, for example Lepidoglyphus destructor; from the family Pyroglyphidae, such as the genus Dermatophagoides, for example Dermatophagoides farinae, Dermatophagoides pteronisinus, from the family Acaridae, such as the genus Tyrophagus, for example Tyrophagus putrescentiae. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein said Astigmata prey population is in a frozen form. The term in a frozen form in the context of this invention is to be understood as immobilized by freezing. It is a further object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein said Astigmata prey population comprises a mixture comprising non-viable frozen developmental stages of juvenile mites. A further object of the present invention is to disclose the rearing composition as defined in any one of the paragraphs above, in which said composition comprises at least one species of mite of the genus Phytoseiulus and a mixture comprising stages non-viable frozen development of mites juvenile C. lactis and sawdust or other carrier material. A further object of the present invention is to disclose the rearing composition as defined in any of the above paragraphs, wherein said composition comprises P. persimilis and a mixture comprising unfrozen developmental stages viable specimens of juvenile C. lactis mites and sawdust or other carrier material. It is further the object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein said Astigmata prey population comprises non-viable eggs of C. lactis. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein said Astigmata prey population comprises non-viable eggs and non-viable juvenile mites in a ratio 1:1 (w / w). A further object of the present invention is to disclose the rearing composition as defined in any of the paragraphs above, wherein said composition further comprises a carrier such as sawdust, bran or other material vector. It is further the object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein said population of predators reared by being fed said species of mite of the order Astigmata , reproduces at an average rate of at least about 15% per day, particularly in the range of 15% to 25% per day. A further object of the present invention is to disclose the breeding composition as defined in any of the above paragraphs, wherein said Astigmatid individuals are treated with a treatment selected from the group consisting of: heat treatment, such as freezing, heating, cold shock or hot shock treatment; chemical treatment, such as gas or fume treatment; radiation treatment, such as UV, microwave, gamma irradiation or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as by temporary removal of oxygen from the atmosphere or replacement of oxygen with another gas and any combination thereof. The present invention further aims to disclose the breeding composition as defined in any of the paragraphs above, wherein said composition comprises P. persimilis, and a mixture comprising non-viable eggs of C. lactis and sawdust or other carrier material. A further object of the present invention is to disclose the rearing composition as defined in any of the paragraphs above, wherein said composition comprises P. persimilis, and a mixture comprising non-viable C. lactis mites and sawdust or other carrier material. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein said composition comprises a population of predatory mites Phytoseiulus persimilis, and dead C. lactis individuals as a prey mite population, further wherein said Phytoseiulus persimilis predatory mite population has a daily reproduction rate in the range of about 1.15 to 1.2. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein said composition comprises a population of predatory mites Phyroseiulus persimilis and dead individuals of at least a species belonging to the order Astigmata selected from the group consisting of: Carpoglyphus lactis, Lepidoglyphus destructor, Glycifagus domestics, Dermatophagoides farinae and Dermatophagoides pteronisinus. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein said population of prey mites further comprises a species of mite of the family Phytoseiidae . The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein said prey mite species of the family Phytoseiidae is non-viable. A further object of the present invention is to disclose the breeding composition as defined in any of the above paragraphs, wherein said composition is capable of controlling a crop pest. The present invention further aims to disclose the breeding composition as defined in any of the above paragraphs, wherein said crop pest is selected from the group of parasitic mites, in particular members of the family of mites Tetranychidae such as the two-spotted spider mite, more particularly species of spider mites, especially Tetranychus, Panonychus and various other species of mites. It is further the object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein said composition is capable of reducing the numbers of said crop pests by at least minus 50%. A further object of the present invention is to disclose the rearing composition as defined in any of the paragraphs above formulated for the controlled release of said predatory mites on a cultivated plant. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above contained in a reservoir configured for the controlled release of said predatory mites on a cultivated plant. A further object of the present invention is to disclose the rearing composition as defined in any of the above paragraphs wherein said predatory mites are capable of being slowly and continuously released from said reservoir to said culture for a period about three weeks. The present invention further aims to disclose a method of rearing a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, the method comprising: (a) providing a composition such as previously described; and (b) allowing individuals of the predatory mite population to feed on individuals of the Astigmatid population for at least 2 generations. A further object of the present invention is to disclose a method of rearing a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, the method comprising: (a) providing a composition comprising a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising individuals of at least one species of mite of the order Astigmata; (b) allowing individuals of the predatory mite population to feed on individuals of the Astigmatid population for at least 2 generations; wherein said Astigmata prey is selected from the group consisting of non-viable mites, non-viable eggs, and a combination thereof. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the rearing population is maintained within a temperature range of 18 to 30°C, especially at about 95320 It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, in which the rearing population is maintained at a relative humidity of 70 to 90%, in particular of about 85%. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said predatory mite is capable of oviposition for at least 2 generations, preferably for at least 10 generations, reared by feeding on said Astigmata prey individuals. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein said population of predatory mites has a daily reproduction rate in the range of about 1.15 to 1.2. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said population of predatory mites is characterized by a beige-white color. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein said composition is free of a fungus reducing agent. A further object of the present invention is to disclose the method as defined in any one of the paragraphs above, wherein said species of predatory mite is selected from the group consisting of Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein said species of predatory mite is Phytoseiulus persimilis. The present invention further aims to disclose the process as defined in any of the above paragraphs, wherein the species of the order Astigmata belongs to a family selected from the group consisting of Carpoglyphidae, Pyroglyphidae, Acaridae and Glycyphagidae. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein the species of the order Astigmata includes members of the family Carpoglyphidae, such as the genus Carpoglyphus , for example Carpoglyphus lactis, Carpoglyphus munroi; of the Glycyphagidae family such as the Glycyphagus genus, for example Glycyphagus domesticus, of the Lepidoglyphus genus, for example Lepidoglyphus destructor; from the family Pyroglyphidae, such as the genus Dermatophagoides, for example Dermatophagoides farinae, Dermatophagoides pteronisinus, from the family Acaridae, such as the genus Tyrophagus, for example Tyrophagus putrescentiae. The present invention further aims to disclose the method as defined in any of the above paragraphs, wherein said Astigmata prey population is in a frozen form. The present invention further aims to disclose the method as defined in any of the above paragraphs, wherein said Astigmata prey population comprises a mixture comprising developmental stages frozen non-viable juvenile mites. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said composition comprises at least one species of mite of the genus Phytoseiulus and a mixture comprising frozen development stages non-viable juvenile C. lactis mites and sawdust or other carrier material. It is a further object of the present invention to disclose the process as defined in any of the paragraphs above, wherein said composition comprises P. persimilis and a mixture comprising non-viable frozen developmental stages of juvenile mites C. lactis and sawdust or other carrier material. It is a further object of the present invention to disclose the method as defined in any of the above paragraphs, wherein said Astigmata prey population comprises non-viable eggs of C. lactis. It is further the object of the present invention to disclose the method as defined in any of the above paragraphs, wherein said Astigmata prey population comprises non-viable eggs and non-viable juvenile mites in a 1:1 ratio (p / p). It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein said composition further comprises a carrier such as sawdust, bran or other carrier material. It is further the object of the present invention to disclose the method as defined in any one of the above paragraphs, wherein said population of predators reared by being fed said species of mite of the order Astigmata, reproduces at an average rate of at least about 15% per day, particularly in the range of 15% to 25% per day. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said Astigmatid individuals are treated with a treatment selected from the group consisting of: a heat treatment, such as freezing, heating, cold shock or hot shock treatment; chemical treatment, such as gas or fume treatment; radiation treatment, such as UV, microwave, gamma irradiation or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as by temporarily removing oxygen from the atmosphere or replacing oxygen with another gas and any combination thereof. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said composition comprises P. persimilis, and a mixture comprising non-viable eggs of C. lactis and sawdust or other carrier material. A further object of the present invention is to disclose the method as defined in any of the above paragraphs, wherein said composition comprises P. persimilis, and a mixture comprising non-viable C. lactis mites and sawdust or other vector material. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein said composition comprises a population of predatory mites Phyroseiulus persimilis, and dead C. lactis individuals as population of prey mites, further wherein said population of predatory mites Phytoseiulus persimilis has a daily reproduction rate in the range of about 1.15 to 1.2. A further object of the present invention is to disclose the method as defined in any one of the paragraphs above, wherein said composition comprises a population of predatory mites Phyroseiulus persimilis and dead individuals of at least one species belonging to the order Astigmata selected from the group consisting of: Carpoglyphus lactis, Lepidoglyphus destructor, Glycifagus domestics, Dermatophagoides farinae and Dermatophagoides pteronisinus. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said population of prey mites further comprises a species of mite of the family Phytoseiidae. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said species of prey mite of the family Phytoseiidae is non-viable. A further object of the present invention is to disclose a method of controlling a pest of crops, the method comprising the application of a composition as defined in any one of the paragraphs above to a crop in the field. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein said crop pest is selected from the group of parasitic mites, in particular members of the family of mites of Tetranychidae such as the two-spotted spider mite, especially spider mite species, especially Tetranychus, Panonychus and various other species of mites. A further object of the present invention is to disclose the use of the composition as defined in any one of the above paragraphs for the control of a crop pest. The present invention further aims to disclose the use as defined in any of the paragraphs above, wherein the crop pest is selected from a range of parasitic mites, in particular members of the family Tetranychidae mites such as the two-spotted spider mite, more particularly spider mite species, especially Tetranychus, Panonychus and various other species of mites. The object of the present invention is further to disclose the use as defined in any one of the paragraphs above, in which the crop is selected from the group consisting of crops produced under glasshouse, field crops , vegetables, ornamental plants, fruit trees, hops, cotton and strawberries. The present invention further aims to disclose a biological control agent (BCA) for the control of crop pests comprising a mixture of (a) at least one species of predatory mite of the genus Phytoseiulus to which it is administered the composition described above, (b) optionally, individuals of prey mites comprising at least one species of the order Astigmata, said Astigmata individuals are selected from the group consisting of non-viable mites, non-living eggs and a combination of these; and (c) optionally a carrier material. It is further the object of the present invention to disclose BCA as defined in any of the above paragraphs, wherein said population of predatory mites is characterized by a beige-white color. The present invention further aims to disclose a reservoir containing the composition described above, said reservoir configured to be suspended on a cultivated plant, said reservoir comprises an outlet from which said predatory mites are slowly and continuously released into said culture over a period of approximately three weeks. A further object of the present invention is to disclose the reservoir as defined in any one of the above paragraphs, wherein said reservoir is selected from the group consisting of a sachet, a packet, a small bag, a pocket, a big bag, a bottle and a bag. The present invention further aims to disclose the reservoir as defined in any of the paragraphs above, wherein said prey mites are in a frozen form. The present invention further aims to disclose the reservoir as defined in any of the above paragraphs, wherein said prey mites are frozen Astigmatid mite eggs. The present invention further aims to disclose the reservoir as defined in any of the paragraphs above, wherein said prey mites are frozen eggs of Carpoglyphus lactis. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, in which at least a part of the Astigmata prey population is immobilized. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, in which the Astigmata prey population is immobilized. It is a further object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein the Astigmata prey population comprises dead eggs and mites at least partially immobilized. It is a further object of the present invention to disclose the rearing composition as defined in any of the paragraphs above, wherein the Astigmata prey population comprises eggs and dead mites. It is a further object of the present invention to disclose the rearing composition as defined in any of the above paragraphs, wherein the Astigmata prey population comprises eggs and immobilized juvenile mites in a ratio of 1 :1 (p / p). A further object of the present invention is to disclose the rearing composition as defined in any one of the paragraphs above, in which the mites are immobilized by an immobilization treatment selected from the group consisting of: a treatment thermal, such as freezing, heating, cold shock or hot shock treatment; chemical treatment, such as gas or fume treatment; radiation treatment, such as UV, microwave, gamma irradiation or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as by temporary removal of oxygen from the atmosphere or replacement of oxygen with another gas and any combination thereof. A further object of the present invention is to disclose the rearing composition as defined in any one of the above paragraphs, wherein the composition comprises P. persimilis, and a mixture comprising C. lactis im - mobilized and sawdust or other carrier material. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein the immobilized C. lactis mites are dead mites. A further object of the present invention is to disclose the rearing composition as defined in any of the paragraphs above, wherein the composition comprises a population of predatory mites Phytoseiulus persimilis, and individuals C. dead lactis as a population of prey mites, further wherein the population of predatory mites Phytoseiulus persimilis is capable of oviposition for at least 2 generations, preferably for at least 10 generations. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein the composition comprises a population of predatory mites Phytoseiulus persimilis and dead individuals of at least one species belonging to the order Astigmata selected from the group consisting of: Carpoglyphus lactis, Lepidoglyphus destructor, Glycifagus domestics, Dermatophagoides farinae and Dermatophagoides pteronisinus. A further object of the present invention is to disclose the rearing composition as defined in any one of the above paragraphs, wherein the population of prey mites further comprises a species of mite of the family Phytoseiidae. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein the prey mite species Phytoseiidae is of the genus Amblyseius, for example Amblyseius swirskii . The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein the prey mite species is Amblyseius swirskii. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, wherein the composition comprises a population of predatory mites Physoseiulus persimilis and a population of mites prey including the mite species Amblyseius swirskii. The present invention further aims to disclose the rearing composition as defined in any of the above paragraphs, in which the Amblyseius swirskii mites are at least partially immobilized. The present invention also aims to disclose a breeding composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the family Phytoseiidae. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, wherein the prey mite species is of the genus Amblyseius, for example Amblyseius swirskii. The present invention further aims to disclose the rearing composition as defined in any of the paragraphs above, in which the prey mite is immobilized. The present invention further aims to disclose the method as defined in any of the above paragraphs, wherein at least a portion of the Astigmata prey population is immobilized. The present invention further aims to disclose the method as defined in any of the above paragraphs, wherein the Astigmata prey population is immobilized. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the Astigmata prey population comprises a mixture comprising dead frozen developmental stages of juvenile mites. It is a further object of the present invention to disclose the process as defined in any of the paragraphs above, wherein the composition comprises P. persimilis, and a mixture comprising dead frozen developmental stages of juvenile mites C. / actis and sawdust or other carrier material. It is a further object of the present invention to disclose the method as defined in any of the above paragraphs, wherein the Astigmata prey population comprises at least partially immobilized eggs and mites. It is a further object of the present invention to disclose the method as defined in any of the above paragraphs, wherein the Astigmata prey population comprises eggs and dead mites. It is further the object of the present invention to disclose the method as defined in any of the above paragraphs, wherein the Astigmata prey population comprises eggs and immobilized juvenile mites in a 1:1 ratio (w / p). A further object of the present invention is to disclose the method as defined in any one of the paragraphs above, in which the mites are immobilized by an immobilization treatment selected from the group consisting of: a heat treatment , such as freezing, heating, shock treatment from cold or shock from heat; chemical treatment, such as gas or fume treatment; radiation treatment, such as UV, microwave, gamma irradiation or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as by temporary removal of oxygen from the atmosphere or replacement of oxygen with another gas and any combination thereof. A further object of the present invention is to disclose the method as defined in any of the paragraphs above, wherein the composition comprises P. persimilis, and a mixture comprising immobilized C. lactis and sawdust or another vector material. The present invention further aims to disclose the method as defined in any of the above paragraphs, wherein the immobilized C. lactis mites are dead mites. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the composition comprises a population of predatory mites Phytoseiulus persimilis, and dead C. lactis individuals as population of prey mites, further wherein the population of predatory mites Phytoseiulus persimilis is capable of oviposition for at least 2 generations, preferably for at least 10 generations. The present invention further aims to disclose the method as defined in any of the paragraphs above, wherein the composition comprises a population of predatory mites Phytoseiulus persimilis and dead individuals of at least one species belonging to the order Astigmata selected from the group consisting of: Carpoglyphus lactis, Lepidoglyphus destructor, Glycifagus domestics, Dermatophagoides farinae and Dermatophagoides pteronisinus. It is further the object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the population of prey mites further comprises a species of mite from the family Phytoseiidae. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the species of prey mite is of the genus Arnblyseius, for example Amblyseius swirskii. A further object of the present invention is to disclose the method as defined in any of the above paragraphs, wherein the prey mite species is Amblyseius swirskii. A further object of the present invention is to disclose the method as defined in any of the paragraphs above, wherein the composition comprises a population of predatory mites Phytoseiulus persimilis and a population of prey mites comprising the species of Amblyseius swirskii mite. The present invention further aims to disclose the process as defined in any of the paragraphs above, in which the Amblyseius swirskii mites are at least partially immobilized. A further object of the present invention is to disclose a method for rearing a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, the method comprising: (a) providing a composition according to claim 26; and (b) allowing individuals of the predatory mite population to feed on individuals of the family Phytoseiidae population. The present invention also aims to disclose the process as defined above, in which the species of predatory mite is selected from the group consisting of Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the predatory mite species is Phytoseiulus persimilis. It is further the object of the present invention to disclose the method as defined in any of the paragraphs above, wherein the species of prey mite is of the genus Amblyseius, for example Amblyseius swirskii. It is a further object of the present invention to disclose the method as defined in any of the paragraphs above, in which the prey mite is immobilized. A further object of the present invention is to disclose a biological control product for the control of crop pests comprising a mixture of (a) individuals of predatory mites Phyroseiulus persimilis to which the composition as defined in any of the above paragraphs, (b) prey mite individuals comprising at least one species of the order Astigmata, and (c) optionally carrier material. The present invention further aims to disclose the biological control product as defined above, in which the species of the order Astigmata comprises members of the family Carpoglyphidae, such as the genus Carpoglyphus, by example Carpoglyphus lactis, Carpoglyphus munroi; of the Glycyphagidae family such as the Glycyphagus genus, for example Glycyphagus domesticus, of the Lepidoglyphus genus, for example Lepidoglyphus destructor; of the Pyro family glyphidae such as the genus Dermatophagoides, for example Dermatophagoides farinae, Dermatophagoides pteronisinus, of the family Acaridae, such as the genus Tyrophagus, for example Tyrophagus putrescentiae. A further object of the present invention is to disclose a biological control product for the control of crop pests comprising a mixture of (a) individuals of predatory mites Phytoseiulus persimilis to which the composition as defined in any of the above paragraphs, (b) prey mite individuals comprising at least one species of the family Phytoseiidae, and (c) optionally carrier material. A further object of the present invention is to disclose a biological control product for the control of crop pests comprising individuals of predatory mites of the genus Phytoseiulus to which the composition as defined in any one of paragraphs above. The present invention further aims to disclose the composition as defined in any of the paragraphs above, formulated for the controlled release of predatory mites on a crop plant. The present invention further aims to disclose a reservoir containing the composition as defined in any of the paragraphs above, the reservoir configured to be suspended on a cultivated plant, the reservoir comprises an outlet from which the predatory mites are slowly and continuously released into the crop over a period of about three weeks. The present invention further aims to disclose the reservoir as defined above, wherein the reservoir is selected from the group consisting of a sachet, a packet, a small bag, a pocket, of a big bag and a bag. It is a further object of the present invention to disclose the reservoir as defined in any of the paragraphs above, wherein the prey mites are frozen Astigmatid mite eggs. The present invention further aims to disclose the reservoir as defined in any of the paragraphs above, wherein the prey mites are frozen eggs of Carpoglyphus lactis. Brief description of the drawings In order to understand the invention and see how it may be practiced in practice, a plurality of embodiments are adapted to be described now, by way of non-limiting example only, with reference to the accompanying drawings; wherein : [Fig. 1] is a photographic illustration of different developmental stages of P. persimilis reared while being fed dead or dead Carpoglyphus lactis (C. lactis) mites. immobilized: [fig.2] is a photographic illustration of a reared P. persimilis being fed dead or immobilized Carpoglyphus lactis (C. lactis) mites, as an embodiment of the present invention; [fig.3] is a graphic representation describing the daily multiplication rate of a population of P. persimilis, feeding on a mixture of dead C. lactis eggs and dead mobile stages during a 14-week period ; [fig.4] is a graphical representation of the percentage of P. persimilis showing signs of feeding, as manifested by their body shape and color; [fig.5] is a graphic representation of the survival of P. persimilis juveniles raised while being fed Astigmatid prey individuals from different families; [fig.6] graphically illustrates the differences between the daily reproductive rate of P. persimilis population sources (P+ and P-) raised while being fed C. lactis as prey; the P+ population has been genetically improved and selected for improved adaptation to C. lactis as prey; the P- population is the control population of commercially available P. persimilis; [fig.7] is a graphical representation of the ability of the P. persimilis predatory mites of the present invention to locate spider mite prey; [Fig. 8] is a graphical representation of the ability to control a spider mite population by treatment with a population of P. persimilis raised while being fed non-mite prey, compared to treatment with a commercial population of P. persimilis raised traditionally, as measured by the number of predators and spider mites found each week of sampling under the different treatments ([fig.8A]) and by the spider mite control index observed three weeks after predator introduction at each treatment ([fig.8B]); [fig.9] graphically illustrates the release rate of mites as a function of the number of days since the experimental installation; [fig.10] graphically illustrates the numbers of P. persimilis (Pp) and spider mites of plants exposed to the slow release system of the present invention, compared to control plants; [fig.11] presents combinations of the percentage of females capable of reproducing by feeding on the non-mite arthropod prey (P) combined with the values of the daily oviposition rate (O), as particularly considered for use in the various aspects of the present invention; [fig.12] presents combinations of the percentage of females able to reproduce by feeding on the non-mite arthropod prey (P) combined with the values of the percentage of juvenile survival (J), as particularly considered for use in various aspects of the present invention; [fig.13] presents combinations of the percentage of females able to reproduce by feeding on the non-mite arthropod prey (P) combined with the values of the percentage of female survival (F), as particularly considered for use in various aspects of the present invention; [fig.14] presents combinations of the percentage of females able to reproduce by feeding on the non-mite arthropod prey (P) combined with the lambda values of the daily reproduction rate (R), as particularly considered for a use in the various aspects of the present invention; [fig.15] shows combinations of Phytoseiulus species with (groups of) Astigmatid mites specifically contemplated for use in embodiments of various aspects of the present invention; [Fig. 16] presents combinations of combinations of species Phytoseiulus x (groups of) Astigmatid mites (indicated by the reference numbers PA1-PA270 of [fig.15]) with the percentage of females able to reproduce by feeding on non spider mite arthropod prey (P) x female percent survival values (F) (indicated by reference numbers PF1-PF330 [fig.13]); and [Fig. 17] presents other combinations of the combinations of the species Phytoseiulus X (groups of) Astigmatid mites (indicated by the reference numbers PA1-PA270 of the [fig. 15]) with the percentage of females able to reproduce in se feeding on non spider mite arthropod prey (P) x oviposition rate values (indicated by reference numbers PO1-PO638 from [fig.13]). DETAILED DESCRIPTION OF THE INVENTION The two-spotted spider mite, Tetranychus urticae Koch, is the main parasitic spider mite of ornamental plants and vegetable crops grown in greenhouses. Furthermore, this ubiquitous spider mite is a serious pest of many ornamental plants in domestic landscapes and is of considerable importance as a pest of food and fiber crops throughout the world (van de Vrie et al., 1972 ). The predatory phytoseiid mite Phyrtoseiulus persimilis is the main species used to control two-spotted spider mites in greenhouses as well as in field crops. Phytoseiulus persimilis is a predatory mite that feeds especially on spider mites. Spider mites are vegetarian mites (phytophagous mites) and therefore require rearing on plants, which is undesirable since it involves complex operations and high rearing costs. The present invention provides for the first time an alternative method of rearing P. persimilis and other mite species of the genus Phytoseiulus. The present invention shows, contrary to traditional thought, that species mites of the genus Phytoseiulus, e.g. P. persimilis, could expand their food range, and could be reared by being fed other prey, which is cheaper to produce and therefore much more desirable. Substitute prey mites are mainly astigmatic mites which feed on stored products and are therefore significantly cheaper to produce. According to one embodiment, the present invention provides a system and a method for using mites (especially dead or immobilized mites) of the species Carpoglyphus lactis (Cl) or another astigmatic mite as a replacement food for species of mites of the genus Phytoseiulus, such as Phytoseiulus persimilis. It is shown by the present invention that species of mites of the genus Phytoseiulus, especially Phytoseiulus persimilis, can complete their life cycle and reproduce when they feed on dead mites belonging to the order Astigmata (in within the class Arachnida). The present invention aims to develop a system for the production of species of mites of the genus Phyroseiulus, for example Phytoseiulus persimilis, by providing them with a diet comprising astigmatic mites. The system is based on the following components: 1. The predator — specifically Phyroseiulus persimilis and more generally mites of the genus Phytoseiulus. 2. The prey — a species of mite, possibly Carpoglyphus lactis, Glyciphagus domesticus, Lepidoglyphus destructor, Dermatophagoides farinae, Dermatophagoides pteronisinus or another astigmatic mite, or other species of mites such as Amblyseius swirskii. 3. The rearing system — the specific facility in which the mites are reared, including rearing environments, how the mite prey is presented to the predator, the developmental stage of the prey, and other factors. The following rearing methods are within the scope of the present invention: 1. The predator is reared by being fed a mixture of live prey mites. 2. The predator receives a mixture of immobilized prey mites by means of freezing or other means such as irradiation. 3. A certain stage of development of the prey mite is extracted from the population of prey mites, and then served alive or dead as food to the predator. It is noted that in all of the optional rearing methods above, the prey mite could be either the astigmatic mites mentioned above or other species. As for the biological control end product, the following is within the scope of the present invention: 1. A mixture that contains both the predator and the prey mites, or the predator and the specific stages of prey mites used to feed the predator. 2. Another possibility is to extract only the predators, so that the final product contains only the predators. In one aspect, the present invention provides a population of predatory mites comprising Phytoseiulus predatory individuals. In the population, at least 10% of female individuals are able to reproduce by feeding on non-mite arthropod prey. In the present invention, at least 10% shall be interpreted as meaning at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45% , at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99%. In the present invention, at least 99% includes that substantially all female individuals are able to reproduce by feeding on non-mite arthropod prey. At least 99% also includes that 100% of female individuals are able to reproduce by feeding on non-mite arthropod prey. In a further aspect, the present invention provides a predatory mite population comprising Phyroseiulus predatory individuals, wherein the population is characterized by a daily oviposition rate of at least 0.55, such as >0.60, = 0.65, >0.70, >0.75, =0.80, >0.90, =0.95, >1.00, >1.05, >1.10, >1.15, > 1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, > 1.70, >1.75, >1.80, >1.85, =1.90, >1.95 or >2.00 eggs / day / female while feeding on non-mite arthropod prey. This aspect of the invention includes embodiments in which the percentage of female individuals capable of reproducing by feeding on non-mite arthropod prey is unspecified (is unspecified). According to yet a further aspect, the invention relates to a biological control composition in which the composition comprises: has. a population of predatory mites comprising individuals of at least one species of mite of the genus Phytoseiulus capable of reproducing by feeding on non-spider mite arthropod prey, preferably immobilized non-spider mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized stages of the life comprising immobilized eggs; and b. a population of prey mites comprising individuals of non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, exhibiting immobilized stages of the life comprising immobilized eggs, and vs. optionally a carrier, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having vector elements including shelters for mites. A non-mite arthropod prey according to the present invention is a prey selected from arthropods other than spider mites. Arthropod non-mite prey may be non-phytophagous prey, preferably Astigmatid prey. In the present invention most preferably, immobilized Astigmatid prey is used as the non-mite arthropod prey, particularly immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs. A further aspect of the invention relates to a biological control composition comprising Phytoseiulus predatory individuals, wherein the population is characterized by a daily oviposition rate of at least 0.50, such as >0.55, > 0.60, >0.65, >0.70, >0.75, >0.80, =0.90, >0.95, >1.00, =1.05, >1.10, > 1.15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, > 1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female while feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs. In a further aspect, the invention relates to a biological control composition comprising Phytoseiulus predatory individuals, wherein the population is characterized by enhanced reproduction by feeding on non-mite arthropod prey, preferably arthropod prey. non-immobilized spider mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, showing immobilized life history stages including immobilized eggs, compared to a control Phytoseiulus predator population of the same species that was not exposed to non-mite arthropod prey and / or including a fraction of female individuals capable of reproducing by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs, less than 10%. According to certain embodiments of the various aspects of the invention, the female individuals capable of reproducing by feeding on the non-mite arthropod prey are female individuals capable of oviposition by feeding on a non-mite arthropod prey, preferably immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs. As will be understood by those skilled in the art, the ability to oviposit relates to the ability to lay or produce eggs. Determination of oviposition rates is within the skill in the art. The oviposition ability of females is preferably determined after they have been fed non-mite prey for at least 4 days, such as after 5 days or after 6 days. The daily oviposition rate of a population of predatory mites according to various aspects of the invention may be at least 0.50, such as = 0.55, > 0.60, > 0.65, > 0 .70, >0.75, >0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1.15, >1.20, = 1 .25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, >1.70, >1 .75, > 1.80, > 1.85, > 1.90, > 1.95 or at least 2.00 eggs / day / female. In certain embodiments, the daily oviposition rate is at least 1 egg per day and per female, in particular at least 1.4 eggs / day / female, more particularly between 1.4 and 2 eggs / day / female. In the main aspects of the present invention, a daily oviposition rate of at least 1 egg per day and per female, in particular of at least 1.4 eggs / day / female, more particularly between 1.4 and 2 eggs / day / female, is achieved when non-mite arthropod prey is used as the sole food source for predatory Phyroseiulus individuals. According to other aspects of the present invention, a daily oviposition rate of at least 1 egg per day and per female, in particular of at least 1.4 eggs / day / female, more particularly between 1. 4 and 2 eggs / day / female, is achieved when non-mite arthropod prey is used as a food source for predatory Phytoseiulus individuals alternately with a diet of spider mites. In the present invention the term "at least" in the context of numerical values is considered equivalent to the meaning of the mathematical sign ">". The person skilled in the art will understand that, being an average value for (the female part of) the population, the oviposition rate or the egg production rate can have a fractional value that does not correspond to whole eggs. Those skilled in the art will also understand that a population of mites having a daily oviposition rate of at least 0.50 eggs / day / female is capable of producing 0.5 eggs / day / female or more. Thus defined differently, a population of predatory mites with a daily oviposition rate of > 0.55, > 0.60, > 0.65, > 0.70, > 0.75, >0.80, >0.90, >0.95, >1.00, =1.05, >1.10, =1.15, >1.20, =>1.25, =1.30 , = 1.35, > 1.40, > 1.45, > 1.50, > 1.55, > 1.60, > 1.65, > 1.70, > 1.75, > 1.80 , = 1.85, > 1.90, > 1.95 or > 2.00 eggs / day / female is able to produce respectively 0.55, 0.60, 0.65, 0.70, 0.75, 0.80, 0.90, 0.95, 1.00, 1.05, 1.10, 1.15, 1.20, 1.25, 1.30, 1.35, 1.40, 1, 45, 1.50, 1.55, 1.60, 1.65, 1.70, 1.75, 1.80, 1.85, 1.90, 1.95, 2.00 eggs / day / female . Again, if more eggs than the listed numbers are produced, the eggs are produced in the listed number. The daily oviposition rate of a population of predatory mites according to other embodiments of the various aspects of the invention may be at least 0.50, such as >0.55, >0.60, >0.65, >0.70, >0.75, >0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1.15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female, when using arthropod prey not spider mite as the sole food source or as an alternative when feeding on the non-mite arthropod prey. Also in this case, defined differently, a population of predatory mites with a daily oviposition rate of >0.55, >0.60, >0.65, >0.70, >0.75, >0, 80, >0.90, >0.95, >1.00, >1.05, >1.10, >1.15, >1.20, >1.25, >1.30, >1, 35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, >1.70, >1.75, >1.80, >1, 85, > 1.90, > 1.95 or > 2.00 eggs / day / female is able to produce respectively 0.55, 0.60, 0.65, 0.70, 0.75, 0, 80, 0.90, 0.95, 1.00, 1.05, 1.10, 1.15, 1.20, 1.25, 1.30, 1.35, 1.40, 1.45, 1.50, 1.55, 1.60, 1.65, 1.70, 1.75, 1.80, 1.85, 1.90, 1.95, 2.00 eggs / day / female when l non-mite arthropod prey is used as the sole food source. When non-mite prey is used as the sole food source, no other foods are presented to individuals of the predatory mite population. As stated above, if more eggs than the indicated numbers are produced, the eggs are produced in the indicated number. The ability to reproduce by feeding on non-mite arthropod prey according to certain embodiments of various aspects of the invention most preferably includes the ability to complete a full ontogenetic cycle, when using the prey non spider mite arthropod as sole food source. Ontogenic cycle completion, as will be understood by those skilled in the art, is the ability of individuals to develop from the earliest stage of the life cycle to an earliest stage of the next life cycle in a second generation. , i.e. for predatory mites the development from an egg (parent) to an egg (offspring) in a following generation or differently defined the development of an egg into a sexually mature female individual producing a certain number of eggs . Those skilled in the art will know and understand that for many species of predatory mites, including Phytoseiulus species, copulation with a male individual is required for egg production in females. If a population is able to complete the ontogenetic cycle by feeding on a certain food source, it can in theory perpetuate itself over multiple generations by feeding on this food source. The ability to reproduce by feeding on non-mite arthropod prey according to certain embodiments of various aspects of the invention is characterized by the ability of female individuals to produce female offspring in a number of subsequent generations. The number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. The person skilled in the art will understand that in the case where the number of subsequent generations is at least 2, a complete ontogenetic cycle is completed, since the female descendants of the female have produced (female) descendants. Thus the number of subsequent generations is preferably at least 2, such that at least one ontogenetic cycle is completed. The ability to reproduce by feeding on non-mite arthropod prey according to certain embodiments of various aspects of the invention may also include a juvenile and / or female survival rate of at least 40%, feeding on non-mite prey used as the sole food source. As will be understood by those skilled in the art, juvenile survival rate is the percentage of juvenile life cycle stages that are able to develop to the adult stage. Juvenile survival rates in the context of the present invention are determined as the percentage of post-embryo (post-egg) stages that reach adulthood. Juvenile survival rate is determined using non-mite prey, preferably immobilized Astigmatid prey with immobilized life cycle stages including immobilized eggs, as the sole food source. Juvenile survival is determined over a period between 3 and 7 days, such as over a period of 2, 3, 4, 5, 6 or 7 days, most preferably over a period of 3 days. Female survival rate is the rate of mature females that survive being fed the non-mite prey, preferably immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs, when used in as the only source of food. Female survival is determined over a 7-day period. At least 40% for juvenile survival rate can be between 40% and 95%, such as 45% to 90%, 50% to 90%, 55 to 90%, 60% to 90%, 65% to 90% , 70%-90%, 75%-90%, 45%-85%, 50%-85%, 55-85%, 60%-85%, 65%-85%, 70%-85%, 75% at 85%. At least 40% for female survival rate can be at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95%, at least 99%. At least 40% and all higher percentages mentioned include substantially all and 100%. In certain embodiments, the survival rate of juveniles and / or females is at least 60%, in particular at least 80% and up to 100%. In the main aspects of the present invention, a juvenile and / or female survival rate of at least 60%, in particular at least 80% and up to 100%, is achieved when using the non-mite arthropod prey as the sole food source for predatory Phyroseiulus individuals. According to other aspects of the present invention, a juvenile and / or female survival rate of at least 60%, in particular at least 80% and up to 100%, is achieved when using non-mite arthropod prey as a food source for predatory Phytoseiulus individuals alternated with a diet of spider mites. The ability to reproduce by feeding on non-mite arthropod prey according to certain embodiments of various aspects of the invention may also be characterized by a daily multiplication (or reproduction) rate λ in the range of about 1 .10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, from 1.10 to 1.30, from 1.10 to 1.25, from 1.10 to 1.20. Those skilled in the art will understand that for values of λ greater than 1.0 the population increases, there is therefore reproduction. Those skilled in the art will further appreciate that due to starvation in a population, also under circumstances where the values of λ for a given population are somewhat less than 1.0, individuals in the population may reproduce (at a level that does not compensate for the level of starvation). The daily multiplication rate according to the preferred embodiments relates to the daily multiplication rates when the non-mite arthropod prey is used as the sole food source. Although daily multiplication (or reproduction) rates greater than 1.0 have been observed by the inventors of the present invention for existing populations of Phyroseiulus, these existing populations of Phytoseiulus do not show multiplication rates (or reproduction) daily of 1.10 or more. In certain embodiments, the daily multiplication (or reproduction) rate λ is at least 1.15, in particular at least 1.2, more particularly from 1.2 to 1.4. In the main aspects of the present invention, a daily multiplication (or reproduction) rate λ of at least 1.15, in particular of at least 1.2, more particularly of 1.2 to 1.4 , is achieved when non-mite arthropod prey is used as the sole food source for predatory Phytoseiulus individuals. According to other aspects of the present invention, a daily multiplication (or reproduction) rate λ of at least 1.15, in particular of at least 1.2, more particularly of 1.2 to 1.4, is achieved when using the prey ar- non-mite thropod as a food source for predatory Phytoseiulus individuals alternating with a diet of spider mites. In general, in the context of the present invention, life cycle stage parameters, such as oviposition and survival rates, ontogenetic cycle completion and population growth rates of predatory mites can be determined at 22 degrees Celsius and 85% relative humidity, while the food (non-mite arthropod prey) is non-limiting (presented ad libidum). According to preferred embodiments of the predatory mite population of the invention, predatory individuals exhibit predatory behavior towards individuals of a spider mite species. Preferably the female individuals have a predatory behavior towards the spider mite individuals. If in the population at least 10% of the female individuals are able to reproduce by feeding on a non spider mite arthropod prey, most preferably these at least 10% of the female individuals have a predatory behavior towards the individuals of a species of spider mite. By maintaining predatory behavior towards individuals of a spider mite species, predatory mite individuals can be used as biological control agents against the spider mite species on which they prey. According to preferred embodiments, the predatory behavior toward individuals of a spider mite species may be a daily oviposition rate of at least 10, preferably at least 15, more preferably at least 19 eggs per female in 5 days. According to certain embodiments of the present invention, the predatory behavior described above towards individuals of a spider mite species is achieved when the non-mite arthropod prey is used as the sole food source for the individuals. bred Phytoseiulus predators. According to other aspects of the present invention the predatory behavior described above towards individuals of a spider mite species is achieved when the non-mite arthropod prey is used as a food source for the spider mite species. Phytoseiulus predators reared alternately with a diet of spider mites. According to one embodiment of the various aspects of the invention, the invention provides a breeding composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phyroseiulus, and a population of prey mites comprising individuals of at least one species of mite of the genus of the order Astigmata, wherein said population of predatory mites is capable of oviposition for at least 2 generations, further wherein said Astigmata prey is selected from the group consisting of immobilized mites, preferably non-viable mites, non-hatching (immobilized) eggs, preferably non-viable eggs and a combination thereof. It is within the scope of the present invention that the predatory mite is capable of oviposition for at least 10 generations and preferably longer, having Astigmata individuals as prey. It is further within the scope that the population of predatory mites exhibits a trait characterized by an increased reproductive rate, particularly when Astigmatid mites are used as a food source, compared to a population of control predatory mites, of the same species, not displaying the trait mentioned above. It is further within the scope that the predatory mite population of the present invention exhibits a daily reproductive rate in the range of about 1.15 to 1.2, particularly when Astigmatid mites are used as as a power source. It is further within the scope of the present invention that the population of predatory mites is characterized by a beige-white color, when said predatory mite Phytoseiulus is reared by being fed said prey Astigmata as a food source. It is within the scope of the present invention that the predators would look different than the common product containing P. persimilis mites reared by being fed spider mites (white mites in the case of the present invention instead of the usual orange ). According to another embodiment, the present invention shows for the first time that a population of P. persimilis has grown and reproduced successfully by feeding on dead Carpoglyphus lactis for at least six months (about 25 generations). . It is pointed out that P. persimilis is surprisingly reported here as completing its life cycle and reproducing by feeding either on non-phytophagous prey (prey that does not require feeding on living plants) or on a prey that does not consume phytophagous mites. The present invention provides a mite composition which contains a population of farmed mites Phytoseiulus persimilis, and a population of dummy host mites comprising at least one species of the order Astigmata or the family Phytoseiidae. . Until now, species of mites in the genus Phytoseiulus, such as the important predatory mite Phyroseiulus persimilis, were bred by being fed their natural diet of phytophagous mites which involves high costs and significant resources (such as supply of appropriate plants in sufficient abundance under greenhouse conditions). The present invention solves the serious problem of rearing the main spider mite control predator, Phytoseiulus persimilis, by rearing it in a manner profitable and efficient based on a non-phytophagous substitution diet. Accordingly, the invention provides a mite-based composition comprising: a breeding population of species of mites of the genus Phyroseiulus, for example of the species of predatory mites Phytoseiulus persimilis, a population of at least one species of the order Astigmata or of the family Phytoseiidae, and optionally a vector. According to one embodiment of the various aspects, the present invention provides a breeding composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the order Astigmata. According to another embodiment of the various aspects, the present invention provides a method of rearing a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, the method comprising: (a) providing a composition comprising a population of predatory mites comprising at least one species of mite of the genus Phyroseiulus, and a population of prey mites comprising at least one species of the order Astigmata; and (b) allowing individuals of the predatory mite population to feed on individuals of the Astigmatid population. According to another embodiment of the various aspects, the present invention provides a rearing composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the Phytoseiidae family. According to another embodiment of the various aspects, the present invention provides a method of rearing a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, the method comprising: (a) providing a composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the family Phytoseiidae; and (b) allowing individuals of the predatory mite population to feed on individuals of the family Phytoseiidae population. In some embodiments of the various aspects, the prey population, namely species of the order Astigmata or species of the family Phytoseiidae, is immobilized and / or non-living. It is further within the scope of the various aspects that the predatory mite Phytoseiulus persimilis is capable of reproducing for at least 2 generations, preferably at least 10 generations, more preferably for at least 15 or more generations. , by feeding on the Astigmata or Phytoseiid population mentioned above, especially an immobilized population. The composition of the present invention provides a considerable number of advantages over previous combinations. In one aspect, the food used to feed the prey during predator production will no longer be plants or phytophagous mites, but mites that live on stored products, thus providing a substantial economy. In another aspect, the present invention provides a rearing composition comprising: a population of predatory mites comprising at least one species of mite of the genus Phytoseiulus, and a population of prey mites comprising at least one species of the family Phytoseiidae. According to certain additional embodiments of various aspects of the present invention, the predatory mite species is selected from the group consisting of Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. According to further embodiments of the present invention, the predatory mite species is Phytoseiulus persimilis. According to still further embodiments of the various aspects of the present invention, the prey mite species is of the genus Amblyseius, for example Amblyseius swirskii. According to further embodiments of various aspects of the present invention, the rearing composition comprises immobilized prey mites. According to other aspects of the present invention, the prey mites are immobilized or dead mites. In other aspects, the present invention provides a method of controlling a crop pest, the method comprising applying a composition as defined in any of the paragraphs above to a crop in the field. According to other aspects, the present invention provides a use of the composition as defined in any of the paragraphs above for the control of a crop pest. According to other aspects, the present invention provides a biocontrol product for the control of crop pests comprising a mixture of (a) individuals of the predatory mite Phytoseiulus persimilis to which the composition as defined in the any of the above paragraphs, (b) prey mite individuals comprising at least one species of the order Astigmata, and (c) optionally a carrier material. According to other aspects, the present invention provides a biocontrol product for the control of crop pests comprising a mixture of (a) individuals of the predatory mite Phytoseiulus persimilis which have been administered the composition described above, and ( b) individuals of prey mites comprising at least one species of the family Phytoseiidae, and (c) optionally carrier material. The present invention further provides a slow release system (eg sachet) for mites, especially for species of mites of the genus Phytoseiulus, in particular Phytoseiulus persimilis (P. persimilis) configured for application to a crop. A central aspect of the innovative solution is that the predatory mites can reproduce inside the system for several generations, while a certain proportion of the predatory mites continuously leave the system and reach the crop to control the pests. This provides a continuous supply of mites to the crop without the need for repeated application by the farmer. Embodiments of the slow release system provided by the present invention are based on the following: 1. Individuals of predatory mites — P. persimilis or other species of mites of the genus Phytoseiulus. 2. Food source for predatory mites — fake prey or host, eg frozen eggs of Carpoglyphus lactis (C. lactis) or another astigmatic mite. 3. Predatory mites are combined with their dummy host in the same physical location. This is done by the following substitution approaches: has. Supplying the predatory mites with their dummy host in a reservoir such as a sachet, packet, small bag, pouch, large bag or bag configured to hang over the crop plant, from which the mites would be slowly released and continuously in culture for a period of approximately three weeks. b. Application of a mixture containing the predatory mites, a vector and the dummy host as a food source, directly on the leaves of the crop. From this mixture, the predatory mites would be slowly released into the crop over a period of about three weeks. It is noted that such slow release systems for predatory mites are highly desirable for P. persimilis since until now P. persimilis was known to be a specialist (natural enemy) of spider mites and was therefore given a diet spider mites. However, spider mites are not suitable for use in this type of mite release systems for crop protection for the following reasons: * Spider mites are pests themselves, and if applied live can damage the crop. » Spider mites cannot reproduce without receiving plant material, therefore they cannot reproduce in a pouch. * Without receiving a food source, live spider mites die quickly. stiff and stunted (e.g. within a few days). “If served dead, spider mites quickly stunt and lose their nutritional value. * Spider mites are expensive to produce. The present invention provides an unexpected technological solution for the above problem, which was not solved until now. The solution is based on the use of non-hatching (immobilized), especially frozen eggs, of C. lactis or other Astigmatid mite species as a dummy host for P. persimilis. Unlike spider mites, non-hatched eggs (e.g. due to immobilization by freezing) of Astigmatids, especially C. lactis, maintain their nutritional value for about three weeks. This innovative solution allows the sustained release of P. persimilis predatory mites from a reservoir or a mixture combining the predatory mite with its dummy host, applied directly to the crop plant for pest control. As used herein the term "approximately" means + 10% of the quantity or measure or value defined. The term “controlled release” hereafter refers to slow release, sustained release, rapid release, designed for release in a prolonged controlled mode or manner. In the context of the present invention, it refers to the release of predatory mites onto the crop plant gradually over a specified period of time, for example during the day or over the course of a week. The term "slow release system" or a "device" or a "reservoir" hereafter refers to a sachet-type release system, for example a sachet, a packet, a small bag, a pouch, a large bag , bottle or bag or other device or means for delivering the composition or formulation of the present invention. In the context of the present invention, such a composition may comprise (i) Phytoseiulus predatory mites, (ii) Phytoseiulus predatory mites with a dummy host (life cycle stages of dead Astigmatid mites or other arthropod prey not spider mite) (iii) non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as Astigmatid prey immobilized, particularly Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs, and (iv) optionally a vector. It is further included within the scope of the present invention that such a system or reservoir refers to an apparatus, unit, device, compartment, element, band or housing for the slow release of insects or of baby predatory mites available or known in the art, which gradually releases the beneficial predatory insects or mites. Having knowledge of such systems, the person skilled in the art will understand that such a progressive release is opposed to an immediate release. It is also within the scope of the present invention that the Phytoseiulus predatory mite delivery system may be of any suitable type. In general, the mite release system may comprise a reservoir suitable for containing individuals of the predatory mite Phytoseiulus (eg P. persimilis) and individuals of the dummy host mite (eg dead C. lactis eggs). . The reservoir includes an opening and / or means for generating an exit opening for the motile stages of the predatory mite Phytoseiulus. Delivery systems of this type are known to those skilled in the art and various products are commercially available on the market, for example sachet type delivery systems and other suitable types of delivery systems which are included within the scope of the present invention. According to certain aspects of the invention, a use of a non-spider mite arthropod species comprises applying individuals of a non-spider mite arthropod species to a target crop, preferably a spider mite species. immobilized non-mite arthropod, such as non-phytophagous prey, preferably of an Astigmatid species, most preferably of an immobilized Astigmatid species, such as an immobilized Astigmatid species, in particular of a species of Carpoglyphus, having immobilized life cycle stages including immobilized eggs (e.g. a mixture of dead life cycle stages, including dead eggs). In another embodiment, a mixture of eggs and motile stages is applied to a crop plant to be infested with predatory Phytoseiulus mites. The purpose of applying the prey directly to the plant is to support the establishment of a population of P. persimilis or another natural enemy on the plant when the spider mite prey (the natural host of the species predator Phyroseiulus) is rare. According to specific embodiments, prey motile stage release devices as disclosed in the application are used. The term "breeding composition" as used herein generally refers to a composition suitable for breeding, preserving, rearing, maintaining or propagating a species of mite by breeding. gendered. A breeding composition includes a breeding population of mite species, particularly Phytoseiulus species. A cultured population may include sexually mature adults of both sexes, and / or individuals of both sexes of other life stages, e.g. eggs, larvae and / or pupae, which can develop into sexually mature adults. Alternatively, the breeding population may comprise one or more fertilized females. In essence, a breeding population is capable of increasing the number of its individuals by means of sexual reproduction. More specifically, the term "rearing composition" refers to a composition suitable for the commercial rearing of mites. It is recognized here that mass rearing systems for predatory mites are highly dependent on the availability of suitable prey for the predators. Therefore, there is a continuing need to improve rearing systems for both predatory mites and mites suitable as cultured prey. To solve this problem, the present invention provides a composition or system specifically adapted to effectively and efficiently rear mite species of the genus Phytoseiulus, especially Phytoseiulus persimilis, a highly important predatory mite used for biological control. against crop pests (mites). For the first time, Phytoseiulus persimilis is shown to complete its life cycle and reproduce, i.e. for at least 2 generations, by being reared by being fed Astigmatid mite species or Phytoseiidae prey mite species , for example Amblyseius swirskii. The term "carrier" hereinafter refers to an inactive or inert substance or particle or vehicle. In a preferred embodiment the rearing composition of the present invention comprises a vector for individuals of the mite species. The vector can be any solid material which is suitable for providing a vector surface to the mite individuals. Examples of suitable carriers are plant materials such as bran (e.g. wheat), sawdust (e.g. fine sawdust), maize grits, vermiculite, Poaceae husks, such as millet husks or rice balls, etc. According to other aspects of the invention, a carrier material may include sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a vector having vector elements comprising shelters for mites. The term "Phytoseiulus" as used below refers to a genus of mites in the family Phytoseiidae. This genus of predatory mites is most frequently used to control two-spotted spider mites in greenhouses and outdoor crops. It is within the scope of the present invention that the genus Phyroseiulus contains the following species: Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis, Phytoseiulus roberisi and Mesoseiulus longipes (for example see https: / / www.benemite.com / mlongipes.htm). Predatory mites Phytoseiulus are known to be specialists vis-à-vis spider mites (mites of the family Tetranychidae) which are phytophagous mites. The term “Phytoseiulus persimilis” or “P. persimilis” as used below refers to a population of predatory mites including Phytoseiulus persimilis (P. persimilis). Phytoseiulus is a genus of mites in the family Phytoseiidae. This predatory mite is the most frequently used predatory mite to control two-spotted spider mites in greenhouses and outdoor crops grown in mild environments. P. persimilis is typically used for spider mite control and management. They are voracious predators of most parasitic spider mites (Tetranychus species). A few of the species they affect include: the two-spotted mite Tetranychus urticae, the carmine mite T. cinnabarinus, and the Pacific mite T. pacificus. Unlike Neoseiulus californicus (Order: Mesostigmata, Family: Phytoseiidae, Subfamily: Amblyseiinae) which may not eat for relatively long periods, Phytoseiulus persimilis must have fresh food. Furthermore, according to existing knowledge Phyroseiulus persimilis are not as flexible in terms of diet as other predatory mite species available for spider mite control, since they are known to feed only on specific Tetranychus species. , but not all of them. The present invention discloses for the first time the successful reproduction of P. persimilis feeding on a non-mite arthropod prey, in particular selected from the order Astigmata and from the immobilized Phytoseiidae. Based on the surprising discovery that Phytoseiulus species, contrary to general belief in the art, can reproduce by feeding on non-spider mite arthropod prey, new systems of rearing Phytoseiulus species may be developed. Such rearing systems of the present invention are much more cost effective than rearing P. persimilis based on its traditional diet of phytophagous mites. The term "dummy host" hereafter generally refers to an unnatural host or a host other than the target host for the predatory mite, which biological control professionals can rear more easily than the target host in a laboratory. In the context of the present invention, a dummy host or prey refers to organisms unlikely to be attacked by a natural enemy or a predatory mite in its natural habitat, but which is used artificially to support its development and / or its reproduction. Usually this is a species that is easier and cheaper to breed. Examples within the scope of the present invention include storage mites (such as Astigmatid mites) for predatory mites (such as Phytoseiulus species of mites), mite eggs for insects and predatory mites. In other aspects, the term dummy host is used when a biological control agent is forced to feed on an insect or mite that it would not feed on in nature. This can allow higher production rates. The present invention demonstrates for the first time that commercially available species of Phytoseiulus mites can be mass-reared using Astigmatid mites (Acari: Astigmata) as dummy prey. The term "juvenile mite" or "juvenile mites" hereinafter refers to stages of development of the life cycle of mites or stages of development of mites or an instar including egg, larva, and protonymph individuals. and deutonymph (third instar). The term "individual" or "individuals" or "individuals of mites" refers in the context of the present invention to stages of development of mites including, but not limited to, eggs, stages of juvenile mites such as a larva, and protonymph and deutonymph (third instar) individuals. The term "mobile stages" hereinafter refers to developmental stages of the mites including larva, protonymph, deutonymph (third instar) and adult stages. The term “immobilized” used hereafter generally means that the prey non-mite arthropod individuals, preferably Astigmatid individuals, have been subjected to an immobilization treatment. An immobilization treatment should be interpreted as meaning a treatment that impairs the mobility that an individual prey exhibits in any of its life cycle stages (including immobile stages, i.e. eggs and any mobile stage of development). Mobility is the ability to move spontaneously and independently. As one skilled in the art is aware, the stages of the life cycle of mites which are mobile are larvae, nymphs and adults. Thus treatments that impair mobility in any of these stages should be considered immobilization treatment. In addition, treatments that prevent individuals from developing from a non-motile stage of the life cycle, such as from the egg stage to a mobile stage of the life cycle, should also be considered immobilization treatment. According to a preferred embodiment the immobilized mite individuals include eggs, larvae, nymphs or adults, preferably live stages including eggs, most preferably eggs combined with juvenile live stages. According to another preferred embodiment, the prey individuals are permanently immobilized. Treatment that renders prey individuals, preferably Astigmatid mites, “non-viable” (i.e. resulting in death) can be considered permanent immobilization treatment. According to certain embodiments of the present invention the immobilized, preferably non-viable, mite individuals are produced by or exposed to a treatment including, but not limited to, heat treatment, such as freezing, freeze-drying, - treatment, heating, cold shock treatment or hot shock treatment; chemical treatment, such as gas or fume treatment; radiation treatment, such as UV, microwave, gamma irradiation or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as by temporary removal of oxygen from the atmosphere or replacement of oxygen with another gas and any combination thereof. WO2013 / 103294 further discloses immobilized Astigmatid mites and methods for obtaining them. As the non-mite prey, non-hatching eggs of Astigmatid mites (e.g., immobilized by freezing or radiation treatment), more preferably in combination with live stages of immobilized juvenile Astigmatid, especially non- viable, are most preferred in the context of the present invention. The term "not viable" as used herein generally means not able to live, grow, develop or function. According to the main aspects of the present invention it refers to mites dead or not alive or not alive or immobilized (i.e. any stage or phase of development of the mites) or to eggs of mites. In a specific embodiment of the present invention, non-viable Astigmata mites and / or eggs are used as prey for predatory mites of the genus Phytoseiulus. According to a specific embodiment, the composition of the present invention comprises eggs and / or mites and / or larvae of C. lactis, immobilized by freezing, used as prey for predatory mites of the genus Phytoseiulus. According to one aspect of the invention, the eggs and / or the mites and / or the larvae may be non-viable or dead. The term "Astigmatid" or "Astigmata" or "astigmatic mites" or "Astigmatina" as used herein refers to an order of mites within Subclass: Acari. Astigmatina are a “cohort” of mites. Astigmatina belongs to the Sarcoptiformes, which contain the “biting” Acariformes. The order Astigmata contains superfamilies with thousands of genera. Non-limiting examples of such superfamilies and families, within the scope of the present invention, may include: Suborder: Acaridia LSuperfamilies: Schizoglyphoidea: example families include: Schizoglyphidae Histiostomatoidea: examples of families include: Histiostomatidae, Guano-lichidae Canestrinioidea: examples of families include: Chetochelacaridae, Lophonotacaridae, Canestriniidae, Heterocoptidae Hemisarcoptoidea: examples of families include: Chaetodactylidae, Hyadesiidae, Carpoglyphidae, Algophagidae, Hemisarcoptidae, Winterschmidtiidae Glycyphagoidea: examples of families include: Euglycyphagidae, Chorto-glyphidae, Pedetropodidae, Echimyopodidae, Aeroglyphidae, Rosensteiniidae, Glycy- phagidae Acaroidea: examples of families include: Sapracaridae, Suidasiidae, Lardo-glyphidae, Glycacaridae, Gaudiellidae Acaridae: examples of families include: Hypoderoidea, Hypoderidae Suborder: Psoroptidia Superfamilies; Pterolichoidea: example families include: Oconnoriidae, Ptiloxenidae Pterolichidae: example families include: Cheylabididae, Ochrolichidae, Gabuciniidae, Falculiferidae, Eustathiidae, Crypturoptidae, Thoracosathesidae, Rectijanuidae, Ascouracaridae, Syringobiidae, Kiwilichidae, Kramerellidae Freyanoidea: examples of families include: Freyanidae, Vexillariidae, Caudiferidae Analgoidea: examples of families include: Heteropsoridae, Analgidae, Xolalgidae, Avenzoariidae, Pteronyssidae, Proctophyllodidae, Psoroptoididae, Trouessartiidae, Alloptidae, Thysanocercidae, Dermationidae, Epidermoptidae, Apionacaridae, Dermoglyphidae, Laminosioptidae, Knemidokoptidae, Cytoditidae Pyroglyphoidea: examples of families include: Pyroglyphidae, Turbinoptidae Psoroptoidea: Examples of families include: Psoroptidae, Galagalgidae, Lobalgidae, Myocoptidae, Rhyncoptidae, Audycoptidae, Listrophoridae, Chirodiscidae, Atopomelidae, Chirorhynchobiidae, Gastronyssidae, Lemurnyssidae, Pneumocoptidae, Sarcoptidae. The invention further features Astigmatid species suitable as non-mite arthropod prey in embodiments of the various aspects of the invention. According to many embodiments of the various aspects of the invention, the selection of non-mite arthropod prey from an Astigmatid species is most preferred. When used as a food source for Phytoseiulus species, Astigmatid individuals are most preferably used in an immobilized form, particularly an immobilized form having immobilized life cycle stages including eggs. im- mobilized (not in hatching phase). Immobilization by freezing is particularly suitable and is the most preferred method of immobilization for Astigmatid individuals. Immobilization by radiation therapy is a highly favorable alternative immobilization method. A preferable species of Astigmatid mite used by the biological control system of the present invention as a dummy host population for the predatory mite Phytoseiulus, e.g., P. persimilis, is a species of mite in the family Carpoglyphidae. , more preferably Carpoglyphus lactis (C. lactis). Carpoglyphidae is a family of mites in the order Astigmatina, containing four genera: Carpoglyphus, Coproglyphus, Dichotomiopus and Pullea. Carpoglyphus lactis (Acarus lactis), most preferably used by the present invention as a rearing diet for P. persimilis, belongs to the genus Carpoglyphus. Carpoglyphus lactis is recognized here as a stored product mite, infesting stored foodstuffs rich in saccharides including dried fruits, wine, beer, dairy products, jams and honey. Since C. lactis is able to feed on stored products, it is highly desirable and cost-effective to administer P. persimilis this species of mite, as demonstrated for the first time by the present invention. When used as a food source for Phytoseiulus species, Carpoglyphus lactis individuals are most preferably used in immobilized form, particularly in immobilized form having immobilized life cycle stages including immobilized eggs (not in hatching phase) (and / or immobilized mites). Immobilization by freezing is particularly suitable and is the most preferred method of immobilization for Carpoglyphus lactis. In another embodiment of the various aspects of the present invention, the predatory mite Phytoseiulus, for example P. persimilis, can complete its life cycle and reproduce when it feeds on immobilized mites and / or eggs, in particular non-viable species Carpoglyphus lactis and / or Dermatophagoides farinae both belonging to the order Astigmata. The term "trait" hereinafter refers to a characteristic or phenotype. A phenotypic trait can refer to the appearance or other detectable characteristic of an individual, resulting from the interaction of its genome, proteome and / or metabolome with the environment. For example, in the context of the present invention, an increased reproductive rate as described herein is a phenotypic trait characterizing the predatory mites of the composition of the present invention. According to another embodiment of the present invention, a trait can also arise from the interaction between the mite and its associated microorganisms. A trait can be inherited in a dominant or recessive way, or in a partially or incompletely dominant way. A trait can be monogenic (i.e. determined by a single locus) or polygenic (i.e. determined by more than one locus) or can also result from the interaction of one or more genes with the environment. A dominant trait results in full phenotypic manifestation in the heterozygous or homozygous state; traditionally, a recessive trait manifests itself only when it is present in a homozygous state. The term "genetic linkage" is understood within the scope of the invention to refer to an association of characters inherited due to the location of genes in close proximity on the same chromosome, measured by the percentage of recombination between the loci ( centi-Morgan, cM). As used herein, the term "population" refers to a plurality of individuals. In some embodiments the term includes a genetically heterogeneous collection of mites sharing a common genetic derivation. In the context of the present invention, two distinct populations of a species of Phytoseiulus, for example populations of P. persimilis are herein disclosed. A population, denoted by P+, reproduced and selected by being fed non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, having immobilized life cycle stages including immobilized eggs. In certain aspects of the invention, the P+ population is characterized by enhanced reproduction by feeding on the non-mite arthropod prey, defined here by parameters such as daily reproductive rate, daily oviposition rate, survival of females and / or juveniles and the percentage of female individuals able to reproduce by feeding on non-mite arthropod prey. The second population (denoted by P-) is a population reared by being fed on its natural host, arthropod spider mite prey, or spider mites as the sole food source. The P- population is also referred to as the traditional or commercially available Phytoseiulus or P. persimilis population, or traditionally bred population or unselected population or control population, a population of Phytoseiulus comprising a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs, less than 10% or a population of a Phytoseiulus that was available until the present invention. As used herein, the term "genetic marker" or "mo- lecular" or "biomarker" refers to an element in an individual's genome, for example, a nucleotide or polynucleotide sequence that is associated with one or more loci or traits of interest. In some embodiments, a genetic marker is polymorphic in a population of interest, or the locus occupied by the polymorphism, depending on the context. Genetic markers or molecular markers include, for example, single nucleotide polymorphisms (SNPs), indels (i.e. deletion insertions), microsatellites (SSRs), restriction fragment length polymorphisms (RFLPs), polymorphisms of DNA revealed by random amplification (RAFD), cleaved amplified polymorphic sequence markers (CAPS), DArT (Diversity Arrays Technology) markers, and amplified fragment length polymorphisms (AFLP) or combinations thereof this, among many other examples such as the actual DNA sequence. Genetic markers can, for example, be used to locate genetic loci containing alleles on a chromosome that contribute to variability in phenotypic traits. The expression "genetic marker" or "molecular marker" or "biomarker" can also refer to a polynucleotide sequence complementary to or corresponding to a genomic sequence, such as a sequence of a nucleic acid used as a probe or primer. A genetic marker can be physically located in a position on a chromosome that is inside or outside the genetic locus with which it is associated (i.e., is intragenic or extragenic, respectively). As used herein, the term "germplasm" refers to the total genotypes of a population or other group of individuals (e.g., species). The terms "hybrid" and "hybrid progeny" as used herein refer to an individual produced from genetically different parents (eg, a genetically heterozygous or predominantly heterozygous individual). The term "allele(s)" as used herein means any one or more substitution forms or variants of a gene or genetic unit at a particular locus, all of the alleles relating to a trait or a feature at a specific locus. In a diploid cell of an organism, the alleles of a given gene are located at a specific location, or locus (plural loci) on a chromosome. One allele is present on each chromosome of the pair of homologous chromosomes. A diploid plant species may comprise a large number of different alleles at a particular locus. Such substitution forms or variant alleles may be the result of single nucleotide polymorphisms, insertions, indels, inversions, translocations or deletions, or the consequence of gene regulation caused by, for example, chemical or structural modification, transcriptional regulation or post-translational modification / regulation. An allele associated with a qualitative trait may comprise substitution forms or variants of various genetic units including those which are identical or associated with a single gene or with multiple genes or their products or even with a gene that is disturbing or controlled by a genetic factor. contributing to the phenotype represented by the locus. As used herein, the term "locus" means a location or locations or a specific region or site on a chromosome where, for example, a gene or genetic marker element or factor is found. In specific embodiments, such a genetic element contributes to a trait. As used herein, the term "breeding" and grammatical variants thereof, refers to any process which generates a descendant individual. Reproduction can be sexual or asexual, or any combination thereof. Non-limiting examples of types of reproduction include crossbreeding, introgression, selfing, backcrossing, generation of double haploid derivatives, and combinations thereof. The term "genetic determinant" as used herein refers to genetic determinants such as genes, alleles, QTLs or traits. Introgression of a genetic determinant means the incorporation of genes, alleles, QTLs or traits into a line in which essentially all the desired morphological and physiological characteristics of the line are recovered, in addition to the genetically introgressed determinant. Such a method is often used in the development of cultivars, in which one or a few genetic determinants are transferred into a desired genetic background, preferably using backcrossing. The term “genotype” refers to the genetic makeup of a cell or organism. An individual's genotype includes the specific alleles, for one or more genetic marker loci, present in an individual's haplotype. As known in the art, a genotype may relate to a single locus or multiple loci, whether the loci are related or unrelated and / or linked or unlinked. In some embodiments, an individual's genotype relates to one or more genes that are related in that the one or more of the genes are involved in the expression of a phenotype of interest. Thus, in some embodiments a genotype comprises a summary of one or more alleles present in an individual at one or more genetic loci. In some embodiments, a genotype is expressed in terms of a haplotype. According to another embodiment of the present invention, the predatory mite Phy- toseiulus, for example P. persimilis, can complete its life cycle and reproduce (i.e. including development and oviposition) for at least 3 generations, when it feeds on live juvenile mites of the species Amblyseius swirskii which ap- belong to the family Phytoseiidae. It is further within the scope of the present invention to disclose a population of Phytoseiulus predatory mites, for example P. persimilis species of mites, bred by feeding on dead or immobilized mite species selected from the group comprising Carpoglyphus lactis, Dermatophagoides farinae, Lepidogyphus destructor, Glyciphagus domesticus, Dermatophagoides pteronisinus, Amblyseius swirskii, and any combination thereof. According to another embodiment, the predatory mite feeds on the above prey mites, has developed and reproduced for at least two generations. According to another embodiment of the present invention, P. persimilis or another Phytoseiulus predatory mite can grow on immobilized individuals, in particular by freezing, of the following species belonging to the order Astigmata: Carpoglyphus lactis, Lepidoglyphus destructor, Glycifagus domesticus and Dermatophagoides pteronisinus. It is further within the scope that the mites used as prey are immobilized by an immobilization treatment selected from the group consisting of: heat treatment, such as freezing, heating, shock treatment by cold or shock from heat; chemical treatment, such as gas or fume treatment; radiation treatment, such as gamma, UV, microwave or X-ray treatment; mechanical treatment, such as vigorous shaking, or agitation, application of shear forces, collision; gas pressure treatment, such as ultrasonic treatment, pressure changes, pressure drops; electrical treatment, such as electrocution; immobilization with an adhesive; immobilization by starvation, as induced by deprivation of water or food; immobilization by suffocation or anoxic treatment, such as temporary removal of oxygen from the atmosphere or replacement of oxygen with another gas. Those skilled in the art will understand how these treatments can lead to the immobilization of Astigmatid individuals or other mites of the Phytoseiidae family and that the immobilization treatment should be such that the mite individuals remain prey (source of food) suitable for individuals of predatory mites. It is further within the scope that the term "immobilized mites" may also mean dead or non-living mites. Reference is now made to Figure 1 presenting photographically different stages of development of P. persimilis reared by being fed dead or immobilized C. lactis. The figure shows an adult female (Figure 1A) and a juvenile that has just hatched from the egg (Figure 1B). As can be seen in this figure, all stages are characterized by a pale whitish color typical of this diet, in contrast to the normal orange color obtained when feeding P. persimilis spider mites, their traditional diet. In other words, the predators of the present invention, fed on C. lactis, took on a beige-white color instead of the typical orange color. Also, the predator's dorsal shield is darker than the cuticle around it. This figure demonstrates that P. persimilis can grow and reproduce by feeding on dead or immobilized C. lactis mites. As explained above, C. lactis (Acari: Astigmata) are significantly more cost effective to produce than the traditional P. persimilis diet, which is the phytophagous spider mite. Reference is now made to Figure 2 showing photographically reared P. persimilis being fed dead or immobilized C. lactis. As can be seen, the predator has a unique appearance, where it turns beige-white instead of the typical orange (when fed the traditional spider mite diet) and the predator's back shield is darker than the cuticle around it. Two-spotted spider mites are known here to feed on many plant species and are a major pest of vegetables, ornamentals, fruit trees, hops, cotton, and strawberries (van de Vrie et al, 1972). By now, it can be assumed that most of the major spider mite problems in greenhouses will involve the two-spotted spider mite. The larva, protonymph, deutonymph and adult feed mainly on the inner surfaces of the leaves. It is within the scope of the present invention to provide a composition for controlling parasitic mites, in particular members of the class Acari, of the family Tetranychidae such as the two-spotted spider mite, more particularly spider mite species, especially the genera Tetranychus, Panonychus and various other species of mites. According to certain embodiments of the present invention, the crop is selected from the group consisting of greenhouse crops and field crops. Non-limiting examples of crop types within the scope of the present invention include vegetables, ornamental plants, fruit trees, hops, cotton and strawberries. Specific examples of parasitic mite-host plant species within the scope of the present invention include the following: Acanthaceae: Acanthus mollis; Justicia adhatoda. Actinidiaceae: Actinidia chinensis; Actinidia deliciosa; Actinidia species. Adoxaceae: Sambucus canadensis; Sambucus chinensis; Sambucus edulus; Sambucus nigra; Sambucus sieboldiana; Sambucus species; Viburnum lantana; Viburnum opulus; Viburnum rhytidophyllum; Viburnum species; Viburnum tinus. Aizoaceae: Mesembryanthemum crystallinum. Alstroemeriaceae: Alstroemeria species. Amaranthaceae: Altfermanthera species; Amaranthus blitum; Amaranthus caudatus; Amaranthus graecizans; Amaranthus hybridus; Amaranthus mangostanus; Amaranthus palmeri; Amaranthus retroflexus; Amaranthus species; Amaranthus spinosus; Amaranthus viridis; Atriplex canescens; Atriplex lentiformis; Atriplex semibaccata; Beta vulgaris; Celosia argentea; Chenopodium album; Chenopodium mural; Chenopodium species; Dysphania ambrosioides; Haloxylon ammodendron; fresina herbstii; Salsola vermiculata; Spinacia oleracea. Amaryllidaceae: Allium ampeloprasum; Allium cepa; Allium fistulosum; Allium sativum; Allium species; Narcissus species. Anacardiaceae: Mangifera indica; Pistacia terebinthus; Pistacia vera. Annonaceae: Annona muricata; Annona reticulata; Annona squamosa. Apiaceae: Aegopodium podagraria; Ammi majus; Apium graveolens; Apium no-diflorum; Arracacia xanthorrhiza; Athamanta macedonica; Bupleurum lancifolium; Coriandrum sativum; Cryptotaenia canadensis; Daucus carota; Eryngium species; Foeniculum vulgare; Pastinaca sativa; Petroselinum crispum; Peucedanum japonicum; Phellolophium madagascariense; Spananthe species. Apocynaceae: Ampelamus laevis; Apocynum cannabinum; species Asclepias; Catharanthus roseus; Mandevilla species; Matelea carolinensis; Nerium oleander; Plumeria species; species Raphionacme; Rauvolfia serpentina; Vinca major; Vinca species. Aquifoliaceae: ex crenata. Araceae: Alocasia macrorrhizos; Alocasia species; Anthurium species; Arum italicum; Arum species; Caladium bicolor; Caladium species; Calla species; Colocasia esculenta; species Colocasia; species Dieffenbachia; Epipremnum pinnatum; Philodendron species; Symplocarpus foetidus; Xanthosoma species; Zantedeschia aethiopica. Araliaceae: Aralia species; Hedera canariensis; Hedera helix; Hedera species; Hydrocotyle umbellara; Polyscias balfouriana; Schefflera actinophylla; Schefflera elegantissima; Schefflera species; Tetrapanax papyrifer. Araucariaceae: Agathis species; Araucaria species. Arecaceae: Dypsis species; Phoenix dactylifera; Phoenix species; Veitchia species. Aristolochiaceae: Aristolochia clernatitis. Asparagaceae: Asparagus laricinus; Asparagus officinalis; Asparagus setaceus; Asparagus species; Aspidistra elatior; Cordyline fruitosa; Cordyline species; Dracaena braunii; Dracaena fragrans; Dracaena goldieana; species Dracaena; Hyacinthus orientalis; Lachenalia ensifolia; Maianthemum racemosum; species Orni- thogalum; Polygonatum odoratum; Ruscus aculeatus; Yucca species. Balsaminaceae: Impatiens balsamina; Impatiens species; Impatiens walleriana. Berberidaceae: Berberis cretica; Berberis thunbergii; Berberis vulgaris; Berberis wilsoniae; Nandina domestica. Betulaceae: Alnus incana; Betula maximowicziana; Betula papyrifera; Betula pendula; Carpinus species; Corylus avellana. Bignoniaceae: Campsis radicans; Pyrostegia venusta; Tecoma capensis; Tecoma stans. Boraginaceae: Borago officinalis; Cynoglossum columnae; Heliotropium arborescens; Heliotropium eichwaldii; Heliotropium europaeum; Nama hispidum; Omphalodes verna. Brassicaceae: Aethionema saxatile; Brassica juncea; Brassica napus; Brassica oleracea; Brassica rapa; Brassica species; Capsella bursa-pastoris; Diplotaxis erucoides; Diplotaxis viminea; Eruca vesicaria; Erysimum graecum; Erysimum species; Erysimum x cheiri; Hirschfeldia incana; Lepidium didymum; Malcolmia species; Matthiola fruticulosa; Matthiola incana; Matthiola odoratissima; Nasturtium species; Raphanus raphanistrum; Raphanus species; Rapistrum rugosum; Rorippa indica; Sinapis arvensis; Zilla spinosa. Bromeliaceae: Tillandsia species. Buxaceae: Buxus sempervirens. Calophyllaceae: Mammea Americana. Campanulaceae: Campanula erinus; Lobelia species; Platycodon grandiflorus. Cannabaceae: Cannabis sativa; Celtic australis; Celtis occidentalis; Humulus lupulus; Humulus scandens; Trema micrantha. Cannaceae: Canna indica. Capparaceae: Capparis nummularia. Caprifoliaceae: Cephalaria gigantea; Diervilla species; Leycesteria formosa; Lonicera etrusca; Lonicera nigra; Lonicera periclymenum; species Lonicera; Lonicera tatarica; Lonicera xylosteum; Pterocephalus plumosus; Scabiosa sicula; Symphoria racemosa; Symphoricarpos albus; Symphoricarpos orbiculatus; Weigela hortensis. Caricaceae: Carica papaya. Caryophyllaceae: Dianthus armeria; Dianthus barbatus; Dianthus caryophyllus Dianthus chinensis; Dianthus species; Dianthus tenuiflorus; Drymaria cordata; Gypsophila paniculata; Myosoton aquaticum; Silene chalcedonica; Silene vulgaris; Stellaria media. Celastraceae: Celastrus orbiculatus; Cestrus scandens; Euonymus europaeus; Euonymus japonicus; Euonymus species. Cistaceae: Helianthemum salicifolium. Cleomaceae: Cleome species; Cleome viscosa. Clethraceae: Clethra arborea. Combretaceae: Terminalia catappa. Commelinaceae: Commelina benghalensis; Commelina communis; Commelina broadcast. Compositae: Acanthospermum hispidum; Achillea filipendulina; Achillea fraasii; Ageratum conyzoides; Ageratum houstonianum; Ambrosia trifida; Anthemis chia; Arctium lappa; Arctium minus; Arctotheca calendula; species Arctotis; Artemisia dracunculus; Bellis annua; Bidens bipinnata; Bidens biternata; Bidens pilosa; Bidens species; Boltonia species; Brachyscome species; Calendula arvensis; Calendula officinalis; Calendula species; Callistephus chinensis; Carduus crispus; Carthamus tinctorius; Centaurea cyanus; Centaurea hyalolepis; Centaurea iberica; Centaurea imperialis; Centaurea montana; Chaenactis stevioides; Chrysanthemum coronarium; Chrysanthemum indicum; Chrysanthemum morifolium; Chrysanthemum segetum; Chrysanthemum species; Chrysothamnus viscidiflorus; Cichorium endivia; Cichorium intybus; Cichorium pumilum; Cichorium spinosum; Conyza bonariensis; Conyza canadensis; Conyza species; Cosmos bipinnatus; Cosmos species; Crassocephalum crepidioides; Crepis neglecta; crepis rubra; Cynara cardunculus; Cynara species; Dahlia coccinea; Dahlia species; Dahlia variabilis; Elephantopus mollis; Erigeron annuus; Erigeron species; Euryops species; Euthamia graminifolia; Galinsoga caracasana; Galinsoga ciliata; Galinsoga parviflora; Gerbera jamesonii; Gerbera species; Helianthella quinquenervis; Helianthus annuus; Helichrysum luteoalbum; Helichrysum tenax; Helichrysum thianschanicum; species Heliopsis; Helminthotheca echioides; Lactuca salivated; Lactuca sativa; Lactuca seriola; Lapsana communis; Leontodon autumnalis; Leucanthemum vulgare; Melampodium perfoliatum; Melanthera aspera; Mikania micrantha; Montanoa bipinnatifida; Notobasis syriaca; species Osteospermum; Parthenium species; Penizia globosa; Picris pauciflora; Picris sprengeriana; Pseudognaphalium obrusifolium; Rudbeckia amplexicaulis; Rudbeckia species; Schkuhria pinnata; Scolymus maculatus; Scorzonera species; Senecio lividus; Senecio species; Senecio vulgaris; Solidago gigantea; Sonchus arvensis; Sonchus asper; Sonchus oleraceus; Sonchus species; Tagetes erecta; Tagetes microglossa; Tagetes minute; Tagetes patula; species Tagetes; Taraxacum officinale; Tithonia rotundifolia; Tragopogon dubius; Tragopogon pratensis; Tridax procumbens; Urospermum dalechampii; Vernonia species; Xanthium strumarium; Zinnia elegans; Zinnia species. Convolvulaceae: Calystegia hederacea; Calystegia sepium; species Convolvulaceae; Convolvulus arvensis; Convolvulus hirsutus; Convolvulus scammonia; Convolvulus siculus; Convolvulus species; Convolvulus tricolor; Dinetus racemosus; Ipomoea aquatica; Ipomoea arachnosperma; Ipomoea batatas; Ipomoea biflora; Ipomoea cairica; Ipomoea hochstetteri; Ipomoea indica; Ipomoea lacunosa; Ipomoea lobata; Ipomoea nil; Ipomoea purpurea; species Ipomoea; Ipomoea tricolor; Ipomoea triloba. Cornaceae: Cornus alba; Cornus canadensis; Cornus nuttallii; Cornus species. Cucurbitaceae: Benincasa hispida; Bryonia alba; Citrullus colocynthis; Citrullus lanatus; Cucumis melo; Cucumis sativus; Cucumis species; Cucurbita ficifolia; Cucurbita maxima; Cucurbita moschata; Cucurbita pepo; Cucurbita species; species Cucurbitaceae; Diplocyclos palmatus; Echallium elaterium; Lagenaria siceraria; Loofah acutangula; Luffa cylindrica; Momordica charantia; Praecitrullus fistulosus; Sechium edule. Cupressaceae: Chamaecyparis thyoides; Cupressus species; Juniperus arizonica; Juniperus virginiana; Platycladus orientalis. Cyperaceae: Cyperus esculentus; Cyperus rotundus; Cyperus schimperianus. Dipterocarpaceae: Shorea robusta. Ebenaceae: Diospyros kaki; Diospyros scabrida. Elaeagnaceae: Elaeagnus angustifolia; Elaeagnus umbellata. Equisetaceae: Equisetum palustre. Ericaceae: Azalea nudiflora; Azalea species; Rhododendron species; species Siphonandra. Euphorbiaceae: Acalypha australis; Acalypha havanensis; Acalypha species; Acalypha wilkesiana; Codiaeum species; Codiaeum variegatum; Croton niveus; Croton species; Euphorbia amygdaloides; Euphorbia burmanni; Euphorbia helenae; Euphorbia helioscopia; Euphorbia hirta; Euphorbia hypericifolia; Euphorbia parviflora; Euphorbia pulcherrima; Euphorbia species; Hevea brasiliensis; Hura crepitans; Jatropha gossyplifolia; Jatropha hastata; Jatropha multifida; Jatropha species; Manihot esculenta; Manihot species; Mercurialis annua; Mercurialis species; Ricinus communis. Fagaceae: Quercus alba; Quercus robur; Quercus species. Garryaceae: Aucuba japonica. Gentianaceae: Eustoma grandiflorum; Gentiana species. Geraniaceae: Erodium alnifolium; Geranium carolinianum; Geranium dissectum; Geranium lucidum; Geranium soft; Geranium rotundifolium; Geranium species; Pelargonium inquinans; Pelargonium species. Gesneriaceae: Saintpaulia ionantha. Goodeniaceae: Goodenia species; Scaevola species. Grossulariaceae: Ribes americanum; Ribes nigrum; Ribes rubrum. Heliconiaceae: Heliconia bihai; Heliconia latispatha. Hydrangeaceae: species Deutzia; Hydrangea macrophylla; Hydrangea paniculata; species Hydrangea; Philadelphus coronarius; Philadelphus sericanthus. Tridaceae: Crocosmia x crocosmiiflora; Gladiolus hortulanus; Gladiolus italicus; Gladiolus species; Iris sanguinea; Iris x germanica; Ixia flexuosa. Juglandaceae: Carya illinoinensis; Juglans regia; Juglans species. Lamiaceae: Ajuga species; Ballota africana; Clerodendrum chinense; Clerodendrum thomsoniae; Galeopsis speciosa; Galeopsis tetrahit; Glechoma hederacea; Glechoma species; Holmskioldia sanguinea; species Holmskioldia; Lamium album; Lamium amplexicaule; Lamium purpureum; Lamium species; Lavandula species; Leonotis ocymifolia; Leucas martinicensis; Marrubium vulgare; Melissa officinalis; Mentha arvensis; Mentha species; Mentha spicata; Mentha x piperita; Moluccella laevis; Monarda fistulosa; Nepeta cataria; Ocimum basilicum; Ocimum tenuiflorum; Perilla frutescens; Rosmarinus officinalis; Salvia argentea; Salvia officinalis; Salvia pratensis; Salvia species; Salvia splendens; Salvia verticillata; Salvia viridis; Stachys arvensis; Vitex negundo. Lauraceae: Cassytha species; Endlicheria paniculata; Laurus nobilis; Persea americana. Leguminosae: Acacia grœufti; Acacia horrida; Acacia huarango; Acacia karroo; Acacia robusta; Acacia species; Alysicarpus longifolius; Amphicarpaea bracteata; Anthyllis vulneraria; Arachis hypogaea; Arachis species; Astragalus sinicus; Bauhinia forficata; Bauhinia monandra; Bauhinia species; Bauhinia variegata; Bi-tuminaria bituminosa; Canavalia ensiformis; Caragana arborescens; Cassia artemisioides; Ceratonia siliqua; Cercis siliquastrum; Cicer arietinum; species Clianthus; Clitoria ternatea; Coronilla valentina; Crotalaria juncea; Crotalaria micans; species Crotalaria; Dalbergia sissoo; Dalea mollis; Desmodium khasianum; Dolichos species; Erythrina corallodendron; Erythrina poeppigiana; Erythrina species; Genisra species; species Gleditsia; Glycine max; Indigofera arrecta; Indigofera holubii; Indigofera tinctoria; Inga species; Kennedia coccinea; Lablab purpureus; Laburnum anagyroides; Laburnum species; Lathyrus cicera; Lathyrus odoratus; Lathyrus sativus; Lens culinaris; Lespedeza maximowiczii; Lotus corniculatus; Lupinus arboreus; Lupinus argenieus; Lupinus sativus; Macroptilium atropurpureum; Macroptilium lathyroides; Medicago arabica; Medicago arborea; Medicago lupulina; Medicago orbicularis; Medicago polymorpha; Medicago sativa; Medicago species; Melilotus albus; Melilotus indicus; Melilotus species; Mucuna membranacea; Mucuna pruriens; Neonotonia wightii; Neorautanenia mitis; Onobrychis vicufolia; species Ornithopus; Phaseolus acutifolius; Phaseolus coccineus; Phaseolus lunatus; Phaseolus species; Phaseolus vulgaris; Pisum sativum; Psophocarpus tetragonolobus; Pueraria montana; Pueraria phaseoloides; Rhynchosia capitata; Rhynchosia caribaea; Robinia hispida; Robinia pseudoacacia; Sesbania cannabina; Sesbania herbacea; Spartium junceum; Styphnolobium japonicum; Teramnus uncinatus; Tipuana tipu; Trifolium alexandrinum; Trifolium aureum; Trifolium dasyurum; Trifolium dubium; Trifolium glomeratum; Trifolium hybridum; Trifolium incarnatum; Trifolium pratense; Trifolium purpureum; Trifolium repens; Trifolium species; Trifolium spumosum; Vicia angustifolia; Vicia faba; Vicia pulchella; Vicia sativa; Vicia species; Vicia villosa; Vigna aconitifolia; Vigna angularis; Vigna mung; Vigna radiata; Vigna species; Vigna unguiculata; Wisteria floribunda; Wisteria polystachya; Wisteria sinensis. Liliaceae: species Lilium. Linaceae: Reinwardtia tetragyna. Lythraceae: Cuphea species; Lagerstroemia speciosa; Punica granatum. Magnoliaceae: Magnolia lilliflora; Magnolia species; Magnolia stellata. Malvaceae: Abelmoschus esculentus; Abutilon pictum; Abutilon reflexum; Abutilon species; Abutilon theophrasti; Abutilon tubulosum; Alcea rosea; Althaea nudiflora; Bytreria australis; Ceiba pentandra; Corchorus capsularis; Corchorus olitorius; Gossypium barbadense; Gossypium herbaceum; Gossypium hirsutum; Gossypium species; Grewia asiatica; Grewia biloba; Helicteres guazumifolia; Hibiscus lunartifolius; Hibiscus mutabilis; Hibiscus rosa-sinensis; Hibiscus species; Hibiscus syriacus; Hibiscus trionum; Malva aegyptia; Malva moschata; Malva neglecta; Malva nicaeensis; Malva parviflora; Malva species; Malva sylvestris; Malva trimestris; Malvella leprosa; Sida rhombifolia; AIDS species; Sterculia murex; Tilia americana; Tilia cordata; Tilia platyphyllos; Tilia rubra; species Tilia; Tilia tomentosa; Tilia x euchlora; Triumfetta semitriloba; Waltheria indica. Marantaceae: Calathea species; Maranta species. Meliaceae: Azadirachta indica; Melia azedarach; Toona ciliata. Menispermaceae: Tinospora fragosa. Moraceae: Artocarpus altilis; Ficus carica; Ficus elastica; Ficus religiosa; Ficus species; Morus alba; Morus nigra; More rubra; Morus species. Moringaceae: Moringa oleifera. Musaceae: Musa acuminata; Musa basjoo; species Musa; Musa x paradisiaca. Myrtaceae: Eucalyptus grandis; Psidium cattleianum; Psidium guajava; Syzygium cumini. Nothofagaceae: Nothofagus alpina. Nyctaginaceae: Bougainvillea spectabilis. Olacaceae: Ximenia americana. Oleaceae: Forsythia koreana; Forsythia suspensa; Forsythia x intermedia; Fraxinus angustifolia; Fraxinus excelsior; Fraxinus ornus; Fraxinus species; Jasminum humile; Jasminum nudiflorum; Jasmine officinale; Jasmine sambac; Jasmine species; Ligustrum lucidum; Ligustrum vulgare; Olea europaea; Osmanthus fragrans; Syringa oblata; Syringa vulgaris. Onagraceae: Chylismia claviformis; Epilobium angustifolium; Fuchsia magellanica; Fuchsia species; Fuchsia x hybrida; Gaura species; Oenothera biennis; Oenothera laciniata; Oenothera species; Oenothera tetraptera. Orchidaceae: Catasetum species; Cymbidium species; species Orchidaceae; Papilionanthe teres. Oxalidaceae: Oxalis corniculata; Oxalis debilis; Oxalis europaea; Oxalis floribunda; Oxalis species. Papaveraceae: Argemone mexicana; Bocconia frutescens; Chelidonium majus; Chelidonium species; Dicentra species; Eschscholzia species; Fumaria officinalis; Papaver aculeatum; Papaver nudicaule; Papaver Oriental; Papaver rhoeas; Papaver somniferum. Passifloraceae: Passiflora caerulea; Passiflora edulis; Passiflora foetida; Passiflora mollissima; species Passiflora. Paulowniaceae: Paulownia fortunei. Pedaliaceae: Sesamum indicum. Phyllanthaceae: Phyllanthus amarus; Phyllanthus species. Phytolaccaceae: Petiveria alliacea; Phytolacca americana; Phytolacca dioica; Phytolacca esculenta; Phytolacca icosandra. Pinaceae: Pinus sylvestris; Tsuga canadensis. Pittosporaceae: Pittosporum tobira. Plantaginaceae: Angelonia species; Antirrhinum majus; Digitalis purpurea; Hippuris vulgaris; Linaria genistifolia; Mecardonia procumbens; Plantago asiatica; Plantago lanceolata; Plantago major; Plantago species; Veronica persica; Veronica species; Veronica teucrium. Platanaceae: Platanus orientalis; Platanus species. Plumbaginaceae: Limoniastru guyonianum; Limonium sinuatum; Plumbago auriculata; Plumbago species. Poaceae: Aegilops species; Agropyron desertorum; Aira species; Avena fatua; Avena sativa; Avena species; Avena sterilis; Bambusa species; Bromus catharticus; Bromus species; Chondrosum barbatum; Cynodon dactylon; Dactyloctenium aegyptium; Digitaria argillacea; Digitaria ciliaris; Digitaria diversinervis; Digitaria sanguinalis; Finger millet coracana; Elymus hispidus; Elymus repens; species Eragrostis; Festuca arundinacea; Festuca species; Helictotrichon pratense; Hordeum species; Lolium multiflorum; Lolium species; Ophiuros exaltatus; Oryza glaberrima; Oryza sativa; Panicum miliaceum; species Panicum; Paspalum dilatatum; Pennisetum clandestinum; Pennisetum purpureum; Phleum pratense; Poa annua; Poa pratensis; Poa trivialis; species Poaceae; Rottboellia cochinchinensis; Saccharum officinarum; Setaria pumila; Setaria viridis; Sitanion hystrix; Sorghum bicolor; Sorghum halepense; Sorghum species; Stenotaphrum secundatum; Triticum species; Zea mays; species Zeugites. Polemoniaceae: Phlox carolina; Phlox paniculata; Phlox species. Polygonaceae: Emex australis; Fallopia baldschuanica; Fallopia convolvulus; Persicaria hydropiper; Persicaria longiseta; Persicaria maculosa; Persicaria pensylvanica; Polygonum argyrocoleon; Polygonum aviculare; Rumex acetosa; Rumex acetosella; Rumex crispus; Rumex japonicus; Rumex obtusifolius; Rumex species. Pontederiaceae: Fichhornia crassipes. Portulacaceae: Portulaca oleracea. Primulaceae: Cyclamen graecum; Cyclamen hederifolium; Cyclamen persicum; Cyclamen species; Primula denticulata; Primula polyantha; Primula species; Primula veris. Ranunculaceae: Adonis aestivalis; Anemone coronaria; Anemone hortensis; Aquilegia species; Clematis paniculata; Clematis species; Delphinium species; Helleborus species; Ranunculus asiaticus; Thalictrum fendleri. Resedaceae: Reseda odorata. Rhamnaceae: Frangula dodonei; Helinus integrifolius; Rhamnus alpina; Rhamnus imeretina; Ziziphus jujuba; Ziziphus spina-christi. Rosaceae: Alchemilla vulgaris; Armeniaca mume; Cerasus lusitanica; Cerasus serrula; Cerasus vulgaris; Chaenomeles japonica; Chaenomeles sinensis; Cotoneaster horizontalis; Cotoneaster microphyllus; Cotoneaster tomentosa; Crataegus laevigata; Crataegus monogyna; Crataegus sanguinea; Cydonia oblonga; Eriobotrya japonica; Filipendula ulmaria; Fragaria moschata; Fragaria vesca; Fragaria virginiana; Fragaria x ananassa; Geum rival; Malus domestica; Malus floribunda; Malus pumila; Malus species; Marcetella maderensis; padus avium; Potentilla fragarioides; Potentilla fruiticosa; Potentilla norvegica; Potentilla tanacetifolia; Prunus amygdalus; Prunus armeniaca; Prunus avium; Prunus cerasifera; Prunus cerasoides; Prunus cerasus; Prunus domestica; Prunus insititia; Prunus lusitanica; Prunus persica; Prunus salicina; Prunus serotina; species Prunus; Prunus spinosa; Pyracantha coccinea; Pyracantha koidzumii; Pyracantha species; Pyrus communis; Pyrus pyrifolia; Pyrus species; Rosa canina; Rosa cymosa; Rosa hybrida; Rosa multiflora; Rosa odorata; Rosa rugosa; Rosa species; Rosa x alba; Rosa x centifolia; Rosa x Damascena; Rosa x rugosa; Rubus buergeri; Rubus chaerophyllus; Rubus chingii; Rubus fruticosus; Rubus idaeus; Rubus Hoydianus; Rubus occidentalis; Rubus species; Rubus ulmifolius; Sorbus aucuparia; Sorbus species; Spiraea japonica. Rubiaceae: Coffea arabica; Coffea species; Galium aparine; Galium stellatum; Gardenia jasminoides; Gardenia species. Rutaceae: Choisya ternata; Citrus aurantiifolia; Citrus aurantium; Citrus clementina; Citrus lime; Citrus maxima; Citrus medica; Citrus paradisi; Citrus reticulata; Citrus sinensis; Citrus species; Citrus trifoliate; Ruta graveolens; Zanthoxylum rhoifolium. Salicaceae: Dovyalis caffra; Populus alba; Populus nigra; Populus species; Populus tremula; Populus x canadensis; Salix aegyptiaca; Salix alba; Salix babylonica; Salix caprea; Salix chaenomeloides; Salix dephnoides; Salix fragilis; Salix species; Salix viminalis. Sapindaceae: Acer campestre; Acer negundo; Acer platanoides; Acer pseudo-platanus; Acer rubrum; Acer saccharum; Acer species; Aesculus glabra; Dodonae viscosa; Koelreuteria paniculata; Lychee sinensis; Sapindus species. Saxifragaceae: Rodgersia podophylla. Scrophulariaceae: Buddleja davidii; Buddleja madagascariensis; Diascia species; species Myoporum; Nemesia species; Verbascum blattaria. Simaroubaceae: Ailanthus altissima. Solanaceae: Acnistus arborescens; Brugmansia arborea; Brugmansia suaveolens; Brugmansia x candida; Calibrachoa species; Capsicum annuum; Capsicum species; Cestrum cyaneum; Cestrum elegans; Cestrum strigillatum; Cyphomandra species; Datura metel; Datura species; Datura stramonium; Lycium chinense; Nicandra physalodes; Nicotiana glauca; Nicotiana species; Nicotiana tabacum; Petunia species; Petunia x hybrid; Physalis acutifolia; Physalis alkekengi; Physalis angulata; Physalis lagascae; Physalis peruviana; Salpichroa origanifolia; Solanum aethiopicum; Solanum americanum; Solanum capsicoides; Solanum carolinense; Solanum delagoense; Solanum elaeagnifolium; Solanum grandiflorum; Solanum la-ciniatum; Solanum lycopersicum; Solanum macrocarpon; Solanum mammosum; Solanum melongena; Solanum muricatum; Solanum nigrum; Solanum panduraeforme; Solanum quitoense; Solanum species; Solanum tuberosum; Withania will sleep. Strelitziaceae: Strelitzia reginae. Theaceae: Camnellia japonica; Camellia sinensis; Camellia species. Thymelaeaceae: Dais cotinifolia. Tropaeolaceae: Tropaeolum majus; species Tropaeolum. Ulmaceae: Ulmus americana; Ulmus glabra; Ulmus laevis; Ulmus pumila; Ulmus rubra; Ulmus species. Urticaceae: Boehmeria nivea; Laportea aestuans; Parietaria judaica; Parietaria officinalis; Pipturus albidus; Urtica dioica; Urtica species; Urtica urens. Verbenaceae: Aloysia citriodora; Duranta erecta; Glandularia phlogiflora; Lantana camara; Lippia alba; Verbena bracteata; Verbena brasiliensis; Verbena hybrida; Verbena officinalis; Verbena species. Violaceae: Viola odorata; Viola species; Viola tricolor; Viola x wittrockiana. Vitaceae: species Ampelopsis; Parthenocissus quinquefolia; Parthenocissus tricuspidata; Vitis species; Vitis vinifera. Xanthorrhoeaceae: Hemerocallis fulva; Hemerocallis minor. Zingiberaceae: Curcuma longa; Zingiber mioga. Zygophyllaceae: Tribulus terrestris. The term "fungus-reducing agent" or "fungus-reducing agent" hereinafter refers to chemical fungus-reducing agents such as a natural or synthetic fungicide, or a biological fungus-reducing agent such as a population of fungi. a species of mite producing antifungal exudates, or a population of mycophagous mites, in particular selected from Astigmata, for example populations of living Carpoglyphus lactis or Lepidoglyphus destructor individuals. Such fungi-reducing mite populations are disclosed in WO2013 / 103294. It is within the scope of the present invention that the rearing composition as defined in any of the paragraphs above is free or free of a fungus reducing agent. The claimed Phytoseiulus mites of the present invention are capable of completing their life cycle and reproducing for at least 2 generations when reared by being fed immobilized Astigmata individuals including mites at any stage of development and / or eggs. It is noted that the developmental stages of non-viable Astigmata mites are unable to produce or secrete a fungus reducing agent. Reference is now made to Figures 11 through 17 showing combinations of elements particularly contemplated for embodiments of the various aspects of the invention. The numbers given provide a reference number for a particular combination of elements. [fig.11] presents combinations of the percentage of females able to reproduce by feeding on the non spider mite arthropod prey (P) combined with the values of the daily oviposition rate (O) as particularly envisaged for use in the various aspects of the present invention. The numbers shown (PO1-PO638) provide a part number for a combination per- ticular of values (P) and (O) which correspond to the values at the intersection of the values (P) and (0), where the reference number is positioned. When a reference number is positioned at the intersection of a value (P) and (O), the combination of the values (P) and (O) is thus envisaged for use in accordance with the various aspects of the invention. In [fig.12], as well as in [fig.11], combinations of the percentage of females able to reproduce by feeding on the non spider mite (P) arthropod prey are combined with the values of the percentage survival juveniles (J) as particularly contemplated for use in the various aspects of the present invention are shown. The numbers shown (PJ1-PJ352) provide a reference number for a particular combination of (P) and (J) values which correspond to the values at the intersection of the (P) and (J) values where the reference number is positioned. When a reference number is positioned at the intersection of a (P) and (J) value, the combination of (P) and (J) values is thus envisaged for use in accordance with the various aspects of the invention. In the figure, the term "non-limiting" means that in the indicated embodiment, the percentage of females capable of reproducing by feeding on the non-mite arthropod prey, is not a limiting element. Thus this element can have any value and thus does not need to be specified or (explicitly) mentioned. In the figure, “meaning. early. means substantially the whole. In [fig.13], as well as in [fig.11], combinations of the percentage of females able to reproduce by feeding on the non spider mite (P) arthropod prey are combined with the values of the percentage survival females (F) as particularly contemplated for use in the various aspects of the present invention. The numbers shown (PF1-PF330) provide a reference number for a particular combination of (P) and (F) values which correspond to the values at the intersection of the (P) and (F) values where the reference number is po - positioned. When a reference number is positioned at the intersection of a value (P) and (F), the combination of values (P) and (F) is thus envisaged for use in accordance with the various aspects of the invention. In the figure, "non-limiting" means that in the embodiments shown, the percentage of females able to reproduce by feeding on the non-mite arthropod prey is not limiting. Thus this element can have any value and thus does not need to be specified or (explicitly) mentioned. In the figure, “meaning. early. means substantially the whole. In [fig.14], as well as in [fig.11], combinations of the percentage of females able to reproduce by feeding on the non-spider mite (P) arthropod prey combined with the lambda values of the rate of daily reproduction (R) as particularly contemplated for use in the various aspects of the present invention are set forth. The numbers shown (PR1-PR198) provide a reference number for a particular combination of (P) and (R) values which correspond to the values at the intersection of the (P) and (R) values where the reference number is positioned . When a reference numeral is positioned at the intersection of a (P) and (R) value, the combination of (P) and (R) values is thus contemplated for use in accordance with the various aspects of the invention. In the figure, "non-limiting" means that in the embodiments indicated, the percentage of females able to reproduce by feeding on the non-mite arthropod prey is not a limiting element. Thus this element can have any value and thus does not need to be specified or (explicitly) mentioned. In the figure, “meaning. early. means substantially the whole. In [fig.15], combinations of Phytoseiulus species with (groups of) Astigmatid mites specifically contemplated for use in embodiments of various aspects of the present invention are shown. The numbers given (PA1-PA270) provide a reference number for a particular combination of a Phytoseiulus species and (groups of) Astigmatid mites where the reference number is at the intersection. Where in the figure a reference numeral is shown, the particular combination is contemplated for embodiments of the various aspects of the invention. Reference numbers shown in bold refer to a preferred combination. Reference numerals presented in bold and underlined refer to a more preferred combination. The [Fig. 16] presents additional combinations of combinations of species Phytoseiulus x (groups of) Astigmatid mites (indicated by the reference numbers PA1-PA270 of [fig. 15]) with the percentage of females capable of reproducing while feeding of non-mite arthropod prey (P) x female percent survival values (F) (indicated by reference numbers PF1-PF330 [fig.13]). Where "X" is shown, the specific combination is contemplated or applied in embodiments of various aspects of the present invention. The [Fig. 17] presents additional combinations of combinations of species Phytoseiulus x (groups of) Astigmatid mites (indicated by the reference numbers PA1-PA270 of [fig.15]) with the percentage of females able to reproduce while feeding of non spider mite arthropod prey (P) x oviposition rate values (indicated by reference numbers PO1-PO638 from [fig.13]). Where "X" is shown, the specific combination is contemplated or applied in embodiments of various aspects of the present invention. The following embodiments of various aspects of the invention are particularly contemplated. 1. Population of predatory mites comprising predatory Phytoseiulus individuals, in which at least 10% of female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably arthropod prey non-immobilized spider mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized stages of the life cycle including immobilized eggs. 2. Population of predatory mites according to embodiment 1, wherein at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40%, at least 45% , at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs. 3. A predatory mite population according to any of embodiments 1-2, wherein the at least 10% of the female individuals in the population are capable of oviposition by feeding on the non-mite arthropod prey, preferably immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs. 4. Population of predatory mites according to any of embodiments 1 to 3, wherein the population has a daily oviposition rate of at least 0.50, such as >0.60, >0.65 , >0.70, >0.75, >0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1.15, >1.20 , >1.25, >1.30, =1.35, >1.40, =1.45, >1.50, >1.55, >1.60, >1.65, >1.70 , >1.75, >1.80, >1.85, =1.90, >1.95 or at least 2.00 eggs / day / female when feeding on non-mite arthropod prey, preferably immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs. 5. Population of predatory mites according to any of embodiments 1 to 4, wherein the population has a daily oviposition rate of at least 0.55, such as >0.60, =0.65 , >0.70, >0.75, >0.80, >0.90, >0.95, =1.00, >1.05, >1.10, >1.15, >1.20 , >1.25, =1.30, =1.35, >1.40, =1.45, >1.50, >1.55, =1.60, =1.65, >1.70 , >1.75, >1.80, >1.85, =1.90, >1.95, or >2.00 eggs / day / female, when using non-mite arthropod prey as the sole power supply. 6. Population of predatory mites according to any of embodiments 1 to 5, in which at least 10% of female individuals are able to complete a full ontogenetic cycle, when non-mite arthropod prey is used as the sole food source. 7. Population of predatory mites according to any one of embodiments 1 to 6, in which the population is characterized by a survival rate of juveniles and / or females of at least 40%, preferably of at least minus 45%, 50%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% when feeding on the non-mite prey. 8. A predatory mite population according to any of embodiments 1 to 7, wherein the at least 10% of the female individuals of the population are characterized by an ability to produce female offspring in a number of subsequent generations, wherein the number of subsequent generations is at least |, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. 9. A predatory mite population according to any of embodiments 1 to 8, wherein the population is characterized by a daily reproduction rate in the range of about 1.10 to 1.40, such as 1 .15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1 .30, 1.10 to 1.25, 1.10 to 1.20 when feeding on non-spider mite arthropod prey, preferably immobilized Astigmatid prey with immobilized life cycle stages including immobilized eggs . 10. Population of predatory mites according to any one of embodiments 1 to 9, in which the female individuals exhibit a predatory behavior towards the individuals of a spider mite species, preferably a predatory behavior characterized by a daily oviposition rate of at least 10, preferably at least 15, more preferably at least 19 eggs per female in 5 days. 11. A predatory mite population according to any of embodiments 1 to 10, wherein the population exhibits an increased reproductive rate compared to a control Phytoseiulus predator population of the same species comprising a fraction of individuals. females able to reproduce by feeding on immobilized Astigmatid prey showing immobilized life cycle stages including immobilized eggs, less than 10%. 12. Population of predatory mites comprising Phytoseiulus predatory individuals, in which the population is characterized by a daily oviposition rate of at least 0.55 eggs / day / female, such that = 0.60, > 0 .65, >0.70, >0.75, >0.80, >0.90, >0.95, =1.00, =1.05, >1.10, >1.15, >1 .20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, =1.60, >1.65, =1 ,70, >1.75, >1.80, >1.85, >1.90, >1.95 or >2.00 eggs / day / female, while feeding on non spider mite, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey exhibiting immobilized stages of the life cycle including immobilized eggs. 13. Population of predatory mites according to embodiment 12, wherein the population is characterized by a survival rate of juveniles and / or females of at least 40% while feeding on the non-mite prey. 14. A predatory mite population according to any of embodiments 12 to 13, wherein at least 10% of the female individuals in the population are characterized by an ability to produce female offspring within a number of generations. subsequent generations, wherein the number of subsequent generations is at least |, such as at least 2, such as at least 3, 4, 5, 6, 7, 8, 9 or 10 generations. 15. A predatory mite population according to any of embodiments 12 to 14, wherein the population is characterized by a daily reproduction rate in the range of about 1.10 to 1.40, such as 1 .15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1 .30, from 1.10 to 1.25, from 1.10 to 1.20. 16. Population of predatory mites according to any of embodiments 12 to 15, wherein at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40 %, at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90 %, at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-mite prey phytophagous, preferably of Astigmatid prey, most preferably of immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs. 17. Population of predatory mites comprising Phytoseiulus predatory individuals, in which the population is characterized by enhanced reproduction by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages comprising immobilized eggs, compared to to a population of control Phytoseiulus predators of the same species comprising a fraction of female individuals capable of reproducing by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs, less than 10%. 18. Phytoseiulus predatory mite population according to embodiment 17, wherein enhanced reproduction by feeding on non-mite arthropod prey is characterized by at least one of: increased daily reproductive rate, increased daily reproductive rate, increased daily oviposition, increased survival rate, increased percentage of female individuals reproducing by feeding on said prey, and improved predatory behavior towards a Tetranychidae. 19. Population of predatory mites according to any of embodiments 1 to 18, wherein the predatory individuals are from a species selected from Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. 20. A predatory mite population according to any one of embodiments 1 to 19, wherein breeding while feeding non-mite prey is breeding while feeding an Astigmatid mite species selected from: 1) the Carpoglyphidae such as those of the genus Carpoglyphus, for example Carpoglyphus lactis ii) Pyroglyphidae such as those of the genus Dermatophagoides, for example Dermatophagoides pteronysinus, Dermatophagoides farinae; of the genus Euroglyphus, for example Euroglyphus longior, Euroglyphus maynei; of the genus Pyroglyphus, for example Pyroglyphus africanus; ii) Glycyphagidae such as those of the Crenoglyphinae subfamily, such as those of the Diamesoglyphus genus, for example Diamesoglyphus intermedius, or of the Ctenoglyphus genus, for example Ctenoglyphus plumiger, Ctenoglyphus canestrinii, Ctenoglyphus palmifer; of the subfamily Glycyphaginae, such as those of the genus Blomia, for example Blomia freemani or of the genus Glycyphagus, for example Glycyphagus ornatus, Glycyphagus bicaudatus, Glycyphagus privatus, Glycyphagus domesticus, or of the genus Lepidoglyphus, for example Lepidoglyphus michaeli, Lepidoglyphus fustifer, Lepidoglyphus destructor, or of the genus Austroglycyphagus, for example Austroglycyphagus geniculatus; of the Aeroglyphinae subfamily, such as those of the Aeroglyphus genus, for example Aeroglyphus robustus; of the subfamily Labidophorinae, such as those of the genus Gohieria, for example Gohieria. fusca; or of the subfamily Nycteriglyphinae such as those of the genus Coproglyphus, for example Coproglyphus stammeri or of the subfamily Chortoglyphidae, such as of the genus Chortoglyphus for example Chortoglyphus arcuatus and more preferably is selected from the subfamily Glycyphaginae, of most preferred way is selected from the genus Glycyphagus or the genus Lepidoglyphus most preferably selected from Glycyphagus domesticus or Lepidoglyphus destructor; iv) Acaridae such as those of the genus Tyrophagus, for example Tyrophagus putrescentiae, Tyrophagus tropicus, of the genus Acarus, for example Acarus siro, Acarus farris, Acarus gracilis; of the genus Lardoglyphus, for example Lardoglyphus konoi, of the genus Thyreophagus, such as Thyreophagus entomophagus; of the genus Aleuroglyphus, for example Aleuroglyphus ovatus; v) Suidasiidae such as those of the genus Suidasia, such as Suidasia nesbiti, Suidasia pontifica or Suidasia medanensis. 21. Mite-based composition comprising a population of predatory mites according to any one of embodiments 1 to 20 together with a carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having carrier elements comprising mite harborages. 22. A mite composition according to embodiment 21, comprising a food source for Phytoseiulus predatory individuals, wherein the food source comprises non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly a species of Carpoglyphus, having immobilized life cycle stages including eggs immobilized. 23. Use of a non-mite arthropod species, preferably an immobilized non-mite arthropod species, such as a non-phytophagous prey, preferably an Astigmatid species, most preferably of an immobilized Astigmatid species, such as most preferably an immobilized Astigmatid species, particularly a Carpoglyphus species, having immobilized life cycle stages including immobilized eggs, as a food source, preferably as rearing prey, for a predatory mite population of Phytoseiulus predatory individuals according to any one of embodiments 1 to 20. 24. Use according to embodiment 23, wherein said use comprises releasing individuals of a non-mite arthropod species, preferably an immobilized non-mite arthropod species, such as non-phytophagous prey , preferably an Astigmatid species, most preferably an immobilized Astigmatid species, such as most preferably an immobilized Astigmatid species, particularly a Car- poglyphus, having immobilized life cycle stages comprising immobilized eggs, preferably the use comprises releasing the non-mite arthropod species using a device comprising an outlet for the mobile life cycle stages of the non spider mite arthropod species, preferably an outlet suitable for providing sustained release from a number of motile life cycle stages. 25. Device for the release of individuals of a species of predatory mite Phytoseiulus, said device comprising a reservoir containing a population of predatory mites according to any one of embodiments 1 to 20, preferably in a composition according to any one of embodiments 21-22, wherein the device comprises an outlet for the mobile stages of the life cycle of the predatory mite species Phytoseiulus, preferably an outlet suitable for providing a sustained release of a number of mobile life cycle stages. 26. Use of a population of predatory mites according to any one of embodiments 1 to 20, or of a composition based on mites according to any one of embodiments 21 to 22, preferably in a device according to embodiment 24, for crop protection. 27. A method of rearing Phytoseiulus predatory individuals, said method comprising providing a population of predatory mites according to any one of embodiments 1 to 20, preferably in a composition according to any one of 21 to 22 and allowing the predatory Phytoseiulus individuals to feed on the non-mite arthropod prey. A method for obtaining a population of predatory mites according to any of embodiments 1 to 20, said method comprising the steps of: (a) providing a breeding population of a species of predatory mite selected from the genus Phytoseiulus, said breeding population comprising individuals of the species Phytoseiulus preferably together with a food source suitable for Phytoseiulus individuals, said food source comprising a prey species selected from Terranychidae; (b) providing a preselected non-mite arthropod species, preferably an Astigmatid mite species, most preferably an immobilized Astigmatid mite species having immobilized life cycle stages comprising immobilized eggs; (c) providing the pre-selected non-mite arthropod species to Phytoseiulus individuals as a food source; (d) selection of Phytoseiulus individuals that are able to reproduce while using the pre-selected non-mite arthropod individuals as a source supply; (e) rearing the selected Phytoseiulus individuals by providing them with a food source comprising the pre-selected non-mite arthropod species; (D optionally, alternately rearing selected Phytoseiulus individuals in a sequence of: - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the pre-selected species of non-spider mite arthropod; - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the prey species selected from the Tetranychidae. 29. A method according to embodiment 28, wherein the method further comprises the steps of has. separation of eggs from the pre-selected non-mite arthropod species; b. mixing separated eggs with a carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof and water, so as to coat the vector material with a layer of eggs: vs. freezing the mixture; and d. rearing the Phytoseiulus individuals by providing them with the mixture as a food source. 30. A method according to any of embodiments 28 to 29, wherein the breeding population provided is a population composed of a number of subpopulations, wherein said subpopulations come from distinct sources, such as as distinct production populations and / or isolated natural populations from distinct geographical locations. 31. A method according to any of embodiments 28 to 30, wherein the breeding population provided comprises at least 100 individuals, such as between 200 and 5000 individuals, preferably between 500 and 1500 individuals. 32. Method for obtaining a population of predatory mites capable of reproducing by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably an Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey having immobilized life cycle stages including immobilized eggs, said method comprising the steps of: has. the provision of a breeding population of a species of predatory mite selected from the genus Phytoseiulus, said breeding population comprising individuals of the species Phytoseiulus, reared while being fed a food source suitable for Phyroseiulus individuals, said food source comprising a prey species selected from the species Tetranychidae of the genus Phytoseiulus; b. providing a population of individuals of a preselected non-mite arthropod species, preferably an Astigmatid mite species, most preferably an immobilized Astigmatid mite species having immobilized stages of the life cycle including immobilized eggs; vs. rearing Phytoseiulus individuals by feeding them the pre-selected non-mite arthropod species as a food source. 33. A method according to embodiment 32, further comprising the steps of: d. selection of Phytoseiulus individuals that are able to reproduce while using pre-selected non-mite arthropod individuals as a food source: e. rearing the selected Phytoseiulus individuals by providing them with a food source comprising the pre-selected non-mite arthropod species; £ optionally, alternating the rearing of selected Phytoseiulus individuals according to a sequence of: - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the pre-selected species of non-spider mite arthropod; - reared for at least 2, such as between 5 and 50, generations while using a food source comprising the prey species selected from the Tetranychidae. 34. A mite composition comprising a population of predatory mites according to any of embodiments 1 to 20 together with immobilized non-mite arthropod prey, preferably immobilized non-mite arthropod prey comprising immobilized eggs, such as an immobilized Astigmatid mite species having immobilized life cycle stages including frozen eggs, wherein the eggs are coated with a carrier material, such as a carrier material selected from sawdust, bran wheat, buckwheat hulls, rice hulls or millet hulls, or comprising a mixture thereof, preferably a carrier having carrier elements comprising harborages for mites, or wherein the carrier material, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a ve The vector having vector elements comprising shelters for the mites is coated with the immobilized non-mite arthropod prey. 35. A device for the release of individuals of a species of predatory mite Phytoseiulus, said device comprising a reservoir containing the composition according to embodiment 34, wherein the reservoir comprises an outlet for the stages of the life cycle of the predatory mite species Phytoseiulus, preferably a release suitable for providing sustained release of a number of motile life cycle stages. 36. A biological control composition wherein the composition comprises has. a population of predatory mites comprising individuals of at least one species of mite of the genus Phytoseiulus capable of reproducing by feeding on non-spider mite arthropod prey, preferably immobilized non-spider mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, exhibiting immobilized stages of the life comprising immobilized eggs; and b. a population of prey mites comprising individuals of non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably d immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, having immobilized life cycle stages including immobilized eggs, and vs. optionally a carrier, such as a carrier material selected from sawdust, wheat bran, buckwheat husks, rice husks or millet husks, or comprising a mixture thereof, preferably a carrier having vector elements including shelters for mites. 37. A biological control composition according to embodiment 36, wherein at least 10% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably arthropod prey. non-immobilized spider mite, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, exhibiting immobilized stages of the life cycle including immobilized eggs. 38. A biological control composition according to any of embodiments 36 to 37, wherein at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40% , at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90% , at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey , preferably of an Astigmatid prey, so most preferred of immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, having immobilized life cycle stages including immobilized eggs. 39. A biological control composition according to any of embodiments 36-38, wherein the at least 10% of the female individuals in the population are capable of oviposition by feeding on immobilized Astigmatid prey having immobilized stages of the life cycle including immobilized eggs. 40. A biological control composition according to any of embodiments 36-39, wherein the population has a daily oviposition rate of at least 0.50, such as >0.55, >0, 60, =0.65, >0.70, =0.75, =0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1, 15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1, 65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female. 41. A biological control composition according to any of embodiments 36-40, wherein the population has a daily oviposition rate of at least 0.50, such as >0.55, >0, 60, =0.65, >0.70, =0.75, =0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1, 15, >1.20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1, 65, >1.70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female, when using prey non spider mite arthropod as sole food source. 42. A biological control composition according to any of embodiments 36-41, wherein the at least 10% of the female individuals are capable of completing a full ontogenetic cycle by feeding on the non-mite arthropod prey, when the non-mite arthropod prey is used as the sole food source. 43. Biological control composition according to any one of embodiments 36 to 42, in which the population is characterized by a survival rate of juveniles and / or females of at least 40%, preferably of at least 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% when feeding on the non-mite prey. 44. A biological control composition according to any of embodiments 36 to 43, wherein the at least 10% of the female individuals in the population are characterized by an ability to produce lamellar offspring in a number of subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8,9 or 10 generations. 45. A biological control composition according to any of embodiments 36 to 44, wherein the population is characterized by a reproductive rate daily in the range of about 1.10 to 1.40, such as 1.15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1 .40, or 1.10 to 1.35, 1.10 to 1.30, 1.10 to 1.25, 1.10 to 1.20 when feeding on non-mite prey. 46. A biological control composition according to any of embodiments 36 to 45, wherein the female individuals exhibit predatory behavior towards individuals of a spider mite species, preferably predatory behavior characterized by a rate of daily reproduction of at least 10, preferably at least 15, more preferably at least 19 eggs per female in 5 days. 47. A biological control composition according to any of embodiments 36 to 46, wherein the population exhibits an increased reproductive rate compared to a control Phytoseiulus predator population of the same species comprising a fraction of female individuals. capable of reproducing by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs, less than 10%. 48. A biological control composition comprising predatory Phytoseiulus individuals, wherein the population is characterized by a daily oviposition rate of at least 0.50, such as >0.55, >0.60, =0, 65, >0.70, >0.75, >0.80, >0.90, >0.95, >1.00, >1.05, >1.10, >1.15, >1, 20, >1.25, >1.30, >1.35, >1.40, >1.45, >1.50, >1.55, >1.60, >1.65, >1, 70, >1.75, >1.80, >1.85, >1.90, >1.95 or at least 2.00 eggs / day / female while feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly a Carpoglyphus prey, exhibiting immobilized life cycle stages including immobilized eggs. 49. A biological control composition according to embodiment 48, wherein the population is characterized by a juvenile and / or female survival rate of at least 40%, preferably at least 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90% or at least 95% when feeding on the non-mite prey. 50. A biological control composition according to any of embodiments 48 to 49, wherein the at least 10% of the female individuals in the population are characterized by an ability to produce female offspring in a number of subsequent generations, wherein the number of subsequent generations is at least 1, such as at least 2, such as at least 3, 4, 5, 6, 7, 8,9 or 10 generations. 51. A biological control composition according to any of embodiments 48-50, wherein the population is characterized by a daily reproductive rate in the range of about 1.10-1.40, such as 1, 15 to 1.40, 1.20 to 1.40, 1.25 to 1.40, 1.30 to 1.40, or 1.10 to 1.35, 1.10 to 1.30, 1.10 to 1.25, 1.10 at 1.20. 52. A biological control composition according to any of embodiments 48 to 51, wherein at least 15%, at least 20%, at least 25%, at least 30%, at least 35%, at least 40% , at least 45%, at least 50%, at least 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90% , at least 95% or at least 99% of the female individuals in the population are able to reproduce by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey , preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, particularly Carpoglyphus prey, having immobilized life cycle stages including immobilized eggs. 53. A biological control composition comprising Phytoseiulus predatory individuals, wherein the population is characterized by enhanced reproduction by feeding on non-mite arthropod prey, preferably immobilized non-mite arthropod prey, such as non-phytophagous prey, preferably Astigmatid prey, most preferably immobilized Astigmatid prey, such as immobilized Astigmatid prey, in particular Carpoglyphus prey, having immobilized life cycle stages comprising immobilized eggs, compared to a population of control Phytoseiulus predators of the same species comprising a fraction of female individuals able to reproduce by feeding on immobilized Astigmatid prey exhibiting immobilized life cycle stages comprising immobilized eggs, less than 10%. 54, A biological control composition according to embodiment 53, wherein enhanced reproduction by feeding on non-mite arthropod prey is characterized by at least one of: increased daily reproductive rate, increased daily reproductive rate, increased daily oviposition, increased survival rate, increased percentage of female individuals reproducing by feeding on said prey, and improved predatory behavior towards a Tetranychidae. 55, Biological control composition according to any one of embodiments 36 to 54, in which the predatory individuals come from a species selected from Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus macropilis, Phytoseiulus persimilis and Phytoseiulus robertsi. 56. A biological control composition according to any of embodiments 36 to 55, wherein breeding while feeding a non-mite prey is breeding while feeding a species of Astigmatid mite selected from: 1) the Carpoglyphidae such as those of the genus Carpoglyphus, for example Carpoglyphus lactis ii) Pyroglyphidae such as those of the genus Dermatophagoides, for example Dermatophagoides pteronysinus, Dermatophagoides farinae; of the genus Euroglyphus, for example Euroglyphus longior, Euroglyphus maynei; of the genus Pyroglyphus, for example Pyroglyphus africanus; iii) Glycyphagidae such as those of the Crenoglyphinae subfamily, such as those of the genus Diamesoglyphus, for example Diamesoglyphus intermedius or of the genus Ctenoglyphus, for example Ctenoglyphus plumiger, Ctenoglyphus canestrinii, Ctenoglyphus palmifer; of the subfamily Glycyphaginae, such as those of the genus Blomia, for example Blomia freemani or of the genus Glycyphagus, for example Glycyphagus ornatus, Glycyphagus bicaudatus, Glycyphagus privatus, Glycyphagus domesticus, or of the genus Lepidoglyphus, for example Lepidoglyphus michaeli, Lepidoglyphus fustifer, Lepidoglyphus destructor, or of the genus Austroglycyphagus, for example Austroglycyphagus geniculatus; of the Aëroglyphinae subfamily, such as those of the genus Aëroglyphus, for example Aëroglyphus robustus; of the subfamily Labidophorinae, such as those of the genus Gohieria, for example Gohieria. fusca; or of the subfamily Nycteriglyphinae such as those of the genus Coproglyphus, for example Coproglyphus stammeri or of the subfamily Chortoglyphidae, such as of the genus Chortoglyphus for example Chortoglyphus arcuatus and more preferably is selected from the subfamily Glycyphaginae, of most preferably is selected from the genus Glycyphagus or the genus Lepidoglyphus most preferably selected from Glycyphagus domesticus or Lepidoglyphus destructor; iv) Acaridae such as those of the genus Tyrophagus, for example Tyrophagus putrescentiae, Tyrophagus tropicus, of the genus Acarus, for example Acarus siro, Acarus farris, Acarus gracilis; of the genus Lardoglyphus, for example Lardoglyphus konoi, of the genus Thyreophagus, such as Thyreophagus entomophagus; of the genus Aleuroglyphus, for example Aleuroglyphus ovatus; v) Suidasiidae such as those of the genus Suidasia, such as Suidasia nesbiti, Suidasia pontifica or Suidasia medanensis. 55. Population of Phyrtoseiulus predatory mites according to any one of embodiments 1 to 20, or composition according to any one of embodiments 21 to 22 and 34, or biocontrol composition according to any one of embodiments of embodiments 36-56, wherein the immobilized Astigmatid prey is selected from the group consisting of immobilized mites, non-viable mites, non-hatching eggs, non-viable eggs, and a combination of these. In order to understand the invention and see how it can be implemented in In practice, a plurality of the preferred embodiments will now be described, by way of non-limiting example only, with reference to the following examples. EXAMPLE | Protocol for rearing P. persimilis by feeding it a non-mite arthropod prey In this example, rearing is carried out by feeding P. persimilis a mixture comprising dead frozen developmental stages of C. lactis and sawdust or other carrier material (e.g. bran). The prey mites were immobilized by an immobilization treatment, for example by freezing them or by a gamma irradiation treatment, before using them as food. Mites were fed freeze-immobilized C. / actis, in the range of 10-1000 immobilized C. lactis prey individuals per one P. persimilis per day. Example of growth conditions: Temperature: in the range of 18°C to 30°C, in particular about 22°C. Humidity: above 60%, especially about 85%. Using the diet mentioned above, the population of P. persimilis increased by an average of about 15%, per day. Figure 3 graphically depicts the daily multiplication rate of P. persimilis feeding on a mixture of eggs and dead (freeze-killed) C. lactis motile stages over a 14-week period. As can be seen, an average increase of between about 10% and about 20% in the multiplication rate of P. persimilis was recorded per day. That is, an λ in the range of 1.05 to 1.23, averaging λ of 1.15, was measured over a period of 14 weeks. In a further experiment, the measurement period was 4 weeks, and the λ value obtained was 1.27. Methods used for the above experiments: A population of P. persimilis was reared using dead C. lactis as prey at 22 degrees Celsius and 85% relative humidity in a mixture with sawdust. Each week the mixture was weighed, and four samples containing approximately 50 mg were taken, placed on black tape and counted. The total population size was calculated from these numbers and 1,500 individuals were left on the farm each week. The multiplication rate was calculated by dividing the total number of individuals found by 1,500, giving the factor by which the population multiplied during that week. To change to a daily multiplication rate, the 7th root of this number was determined according to the following formula: Where À is the daily multiplication rate, N(0) is the number of mites left in the flock during the previous count (1,500 in this case), N(t) is the number of mites found during the count current, and t = 7. EXAMPLE 2 Rearing of P. persimilis feeding on different species of Astigmatid mites In this experiment, different species of mites were tested as food for P. persimilis using the following protocol: Thirty (30) P. persimilis mites were isolated in modified Munger cells, and received freeze-immobilized astigmatic mites of the species listed below. Food was replaced daily, and mites were checked for signs of feeding. Signs used as indicators were a rather round full body (unlike a flat body for non-feeding mites), and a whitish coloration in contrast to the usual orange color when feeding on spider mites. Reference is now made to Figure 4 graphically presenting the percentage of P. persimilis showing signs of feeding, as manifested by their body shape and color, after receiving food for 3 consecutive days from each of the following prey species: GD = Glyciphagus domesticus (family Glycyphagidae) LD = Lepidogyphus destructor (family Glycyphagidae) DF = Dermatophagoides farinae (family Pyroglyphidae) DP = Dermatophagoides pteronisinus (family Pyroglyphidae) CL = Carpoglyphus lactis (family Carpoglyphidae) It can be seen that P. persimilis can feed on all of the above astigmatic prey species, with varying efficiency. EXAMPLE 3 Breeding predatory mite P. persimilis feeding on prey Dermatophagoides farinae (D. farinae) In this experiment, the prey used was life cycle stages of D. farinae immobilized by freezing. The mites were reared by the method as described in Examples 1 and 6. The rearing was maintained for 6 weeks, and the measured daily reproduction rate was about 1.05 on average. This demonstrates that P. persimilis can reproduce by feeding on D. farinae prey for more than two generations. EXAMPLE 4 Use of Armblyseius swirskii as prey for P. persimilis In this experiment, 50 predatory mites received immobilized (freezing) mites of A. swirskii as food at 22 degrees Celsius, 85% RH, and monitored daily. The mites showed signs of feeding by their prominent body shape and whitish coloration. When oviposition started, the eggs were removed from the population, isolated, and hatchability was monitored. Hatching was noted followed by maturation of the resulting larvae. When these mites became mature, two were isolated to monitor them for egg laying. These females laid eggs, and hatching of the resulting eggs was observed. This demonstrates that P. persimilis can grow and reproduce by feeding on A. swirskii frozen as food for at least two generations, and that the eggs laid in the third generation are viable. EXAMPLE 5 Survival of P. persimilis juveniles reared on non-mite arthropod prey In this example, the survival rate of P. persimilis was measured after 3 days of development, while feeding on non-mite arthropod prey. The methods used are as described in Example 2 above. As shown in [fig.5], a juvenile survival rate of at least 60% and up to about 85% was observed when P. persimilis reproduced while being fed on ar- non-mite thropod, specifically of immobilized Astigmatid prey and more specifically of individuals of the family (i) Glyciphagidae, e.g. Glyciphagus domesticus (GD) and Lepidogyphus destructor (LD), (ii) Pyroglyphidae, e.g. Dermatophagoides farinae (DF) and Dermatophagoides pteronisinus (DP), and (iii) Carpoglyphidae, eg Carpoglyphus lactis (CL). EXAMPLE 6 Breeding and selection for a population of P. persimilis showing an increased reproductive rate when fed C. / actis as prey This experiment shows successful breeding and selection for a population of P. persimilis adapted to be reared by being fed C. lactis as prey. As shown in this example, the selected P. persimilis population is characterized by the advantageous and desirable properties of a significantly increased reproductive rate when reared on being fed Astigmatid mite individuals. PB the experi . Two different populations of P. persimilis were reared using freeze-immobilized C. lactis as prey at 22 degrees Celsius and 85% relative humidity in a mixture with sawdust. The first population was a population of P. persimilis bred and selected for adaptation to C. lactis as a dummy host prey (denoted by P+), the second population (denoted by P-) was the traditional or commercially available population. commercial P. persimilis available from BioBee Biological Systems Ltd. (Sde Eliyaho, Israel) and was bred on its natural host, spider mites. This second population was served as a reference / control population (i.e. not exposed to non-mite arthropod prey, such as C. lactis). Each week a mixture of each population was weighed, and four samples containing approximately 50 mg each were taken, placed on black tape and counted. The total population size was calculated from these numbers and 1,500 individuals were left on the farm each week. The multiplication rate was calculated by dividing the total number of individuals found by 1,500, giving the factor by which the population multiplied during that week. To calculate the daily multiplication rate, the 7th root of this calculated number was determined according to the following formula: [Math.2] where λ is the daily multiplication rate, N(0) is the initial number of mites left in the culture (i.e. 1,500 mites), N(t) is the total number of mites found after rearing for one period of one week, and t = 7. It is noted that each population was maintained and measured for 4 to 10 weeks. The entire procedure was replicated 3 times. Reference is now made to Figure 6 demonstrating the observed differences in daily reproductive rate (represented by λ, the finite rate of increase) between the population of P. persimilis bred and selected for adaptation to C. lactis as dummy host prey (marked as P+ in [fig.6]), compared to the traditional or commercially available population of P. persimilis (raised by being fed on its natural host, namely spider mites) used as control (marked as P- in [fig.6]). The figure represents the means and the standard error found for the λ values during the test. As can be seen in [fig.6], the population of P. persimilis subjected to the selection for improved adaptation to rearing by being fed C. lactis individuals (P+) showed a significantly increased daily reproductive rate by a factor of approximately 3.6 (P+ / P-: 0.18 / 0.05) by feeding on C. lactis as prey, compared to the control population of P. persimilis, not subjected to the process of reproduction and selection as described inter alia (P-). Reference is now made to an embodiment of the present invention describing an exemplary scheme for obtaining populations of P. persimilis selected for and / or adapted to reproduction by feeding on non-mites, such as the species Carpoglyphus lactis. I. From the population of P. persimilis commercially available from BioBee Biological Systems Ltd. (Sde Eliyaho, Israel) (or a population of P. persimilis reared by being fed spider mites as used up to the present invention, defined as P-), mites were tested for feeding by being fed Astigmatid mites and Amblyseius swirskii as prey, using the method described in Example 2. In these feeding trials, the mites were fed various diets for 3 days, and tested to determine feeding signs and survival. Survivors from different feeding trials, on a variety of different prey types such as Astigmatid mites, were kept and new populations were formed from these survivors. These populations were further maintained by being fed spider mites. I. Various additional populations, collected from 18 distinct geographical locations, were obtained. These populations were also maintained by being fed spider mites. II. Samples from different populations were pooled to create a base population. This base population was also bred by being fed spider mites. IV. A sample of this base population was transferred to a new diet consisting of Carpoglyphus lactis individuals immobilized by freezing. Rearing of this base population was continued by feeding it immobilized C. Zactis for several generations (e.g., for about 1 year or more) and according to embodiments of the present invention it is herein defined as the po - population selected (P+) for reproduction by being fed on a non spider mite prey. The mites were fed freeze-immobilized C. lactis life cycle stages in the range of 10-1000 C. lactis per P. persimilis per day. Based on the information provided in this application, it can be expected that this protocol can be extended also to other Phytoseiulus species for make them capable of reproducing by feeding on arthropod prey that is not spider mite (immobilized), in particular Astigmatid mites (immobilized), more particularly on immobilized eggs (not in the hatching phase). EXAMPLE 7 Reference is now made to experimental results evaluating reproductive traits by feeding P+ and P- populations of P. persimilis non-spider mite arthropod prey (i.e. Astigmatid species, particularly immobilized C. lactis individuals). , as described in Example 6. The P+ population reproduced by being fed immobilized non-mite arthropod prey (e.g. eggs and motile stages of C. lactis, both immobilized by freezing) as described here by Examples 6. The P- population, a commercially available population and / or any population of P. persimilis reproduced using spider mites, as used until the present invention (not exposed to non-mite arthropod prey). The reproductive parameters tested included: daily oviposition rate, female survival (%) and percentage of females laying eggs. To compare the above reproductive parameters of the P. persimilis population fed with immobilized C. lactis (e.g. by freezing) between the P+ and P- populations, the following test was performed. Pregnant females were tested in single cells into which dead C. lactis eggs and larvae (immobilized by freezing) were provided. These females were taken from either the P+ population raised by being fed immobilized C. lactis or the P- population raised by being fed spider mites. To ensure that all females were well fed prior to testing, pregnant females were selected directly from the two rearing populations (without the starvation phase which is usually applied by the present invention, when harvesting P. persimilis from a spider mite farm and modifying its diet). Twenty (20) replicates were performed on each treatment. The cells were incubated at 22 degrees Celsius, and 85% relative humidity, and monitored every two to three days for a week. At each check, mite survival, color and number of eggs laid were recorded. Food was replenished at each check. The sum of eggs deposited during the test period per female was divided by 7 to obtain the daily oviposition rate. The results are summarized in Table 1 below: Table 1: Comparison between P+ and P- populations for reproductive parameters [Tables1] The results presented in Table 1 clearly show that there are significant differences between the P+ and P- populations in terms of oviposition rate, female survival, and the percentage of females that lay eggs. In all parameters tested, higher values were observed and recorded for the P. persimilis population that was bred and reproduced by being fed immobilized (P+) C. / actis developmental stages. These values include percent female survival in the range of 80% to 100% (an average value of 93.3%); the percentage of females that lay eggs in the range of 90% to 94% (an average value of 92.6%); and the daily oviposition rate in the range of 1.43 to 1.63 (an average value of 1.51 eggs / day / female). This is to be compared to the significantly lower values recorded for the P- population, namely, percentage survival of females in the range of 25% to 86% (an average value of 55.6%); percentage of females that lay eggs in the range of 25% to 63% (an average value of 29.3%); and daily oviposition rate in the range of 0.07 to 0.64 (an average value of 0.23 eggs / day / female). It should be noted that on the first day of the test, carried out two days after the installation of the trial, certain differences were already apparent between the mites from the different populations. Survival, daily oviposition, and percentage of mites that laid eggs were significantly higher for mites from the P+ population. While some P- mites laid a few eggs that day, the eggs had an orange color, indicating that they were metabolized from nutrients the mites acquired while reared on spider mites before this diet. is replaced by the immobilized stages of the C. lactis diet. On the second day of the test, performed on day 4, the differences were significantly increased. While none of the mites in the P+ population died, survival was only 56% for the P- population. In addition, all but one of the mites in the P+ population laid eggs, but none in the P- population, and the daily oviposition rate increased for the P+ population, and was zero for the P-. This trend was maintained for all parameters monitored on the third day of the test (day 7 of the test), namely, significantly improved reproduction values of the P+ population compared to the P- control population. The results presented in Table 1 demonstrate that there are significant and considerable differences between the P+ and P- populations in oviposition rate, female survival, and the percentage of females that lay eggs. Phytoseiulus predatory individuals from the population subjected to the rearing method of the present invention exhibit a markedly increased ability to reproduce by feeding on the non-mite arthropod prey compared to currently available populations of the same Phytoseiulus species reared by being fed spider mites. . EXAMPLE 8 Method for rearing P. persimilis using immobilized non-spider mite arthropod prey Reference is now made to an example of a method used to treat immobilized non-mite arthropod prey (e.g. eggs of Carpoglyphus lactis) to be fed as food to predatory mites P. persimilis or other predatory species. Phytoseiulus. This example is one embodiment within the system and method disclosed herein for rearing mite species of the genus Phytoseiulus using Astigmatid mites as prey. In this embodiment, Carpoglyphus lactis eggs are separated from the mite population by sieving. Then, while still wet, they are mixed with sawdust and water, in a way that coats the sawdust particles with a thin layer of eggs. After this process, the mixture is frozen. This mixture is fed to P. persimilis as food. This process improves the accessibility of predators to eggs, and also improves the efficiency of the breeding process for mite predators. EXAMPLE 9 Development and reproduction of P. persimilis populations from distinct geographic sources by feeding them non-mite arthropod prey This example aims to test the ability to complete the life cycle by being fed non-spider mite arthropod prey, for populations of P. persimilis derived from distinct sources or from distinct origins or geographic locations. For this purpose, populations of P. persimilis from 3 distinct geographical locations (e.g. more than 1000 km apart) were tested on C. lactis (immobilized by freezing) as prey. From each population, a cohort of approximately 50 P. persimilis eggs was placed in study chambers together with immobilized C. lactis eggs and juveniles. These populations were maintained at 22 degrees Celsius, and 85% RH. After one week, the populations were observed. It was revealed that in all populations tested, a fraction of the mites grew, changed color to beige-white, and laid eggs. This demonstrates that populations of P. persimilis of distinct geographical origins are able to develop and reproduce by feeding on non-mite arthropod prey, for example C. lactis. To determine if a subsequent generation (e.g. a second generation) of the populations tested above would be fit to complete its life cycle, eggs laid by the first generation of one of the populations were transferred to a new chamber and received the same diet. These eggs hatched, developed into adults who copulated and laid eggs. This demonstrates that populations of P. persimilis from distinct sources (e.g., distinct geographic locations) and subjected to the breeding method of the present invention are able to reproduce by feeding on a substitution diet (i.e. non-mite arthropod prey such as Astigmatid prey) for more than one generation. EXAMPLE 10 Phytoseiulus longipes reared by being fed C. / actis as prey Reference is now made to an example in which the rearing is carried out by feeding Phyroseiulus longipes (P. longipes), as a further representative example of the genus Phyroseiulus, life cycle stages of C. lactis (immobilized by freezing) as prey. Example rearing protocol: A population of P. longipes was reared using immobilized C. lactis as prey at 22 degrees Celsius and 85% relative humidity in a mixture with sawdust, using the rearing methods as described in Examples 1 and 6. The mites showed signs of feeding by seeing their color change from the typical reddish to white, such as as indicated above for P. persimilis fed C. lactis (see Figures | and 2). In addition, all the different stages of the life cycle of P. longipes mites were observed, indicating that this species completed its developmental cycle by receiving this replacement diet. Rearing was maintained for three weeks, showing that the population of P. longipes can be raised by being fed a diet of immobilized C. lactis for at least this period of time. When rearing was maintained for 6 weeks, the measured daily reproduction rate was 1.08 on average. This demonstrates that P. longipes can also reproduce by feeding on C. / actis prey immobilized for more than two generations. EXAMPLE 11 Predatory behavior towards a Tetranychidae To assess the predatory behavior of P. persimilis reared using non-mite arthropod prey (eg Astigmatid species), against spider mites, several trials were conducted. A. Predation and oviposition on leaf discs Thirty adult females derived from a population of P. persimilis selected to reproduce by being fed a non-spider mite surrogate food source, specifically Astigmatid prey, were placed individually on leaf discs infested with spider mites. The method used was according to the IOBC protocol for testing the fecundity of P. persimilis (van Lenteren JC, ed. 2003. Quality Control and Production of Biological Control Agents: Theory and Testing Procedures. Wallingford, UK: CABI Publ. 327 pages). Four different tests were carried out during one year. It has been observed that the P. persimilis mites selected and reproduced by the method of the present invention, and placed on disks of leaves infested with spider mites, saw their beige-white color regain a red-orange color in a few hours. The average fecundity score (eg daily reproductive rate) of these tests was 19.85 eggs per female in a 5-day period (3.97 eggs / female / day). It is pointed out that this result is significantly above the official accepted threshold of 10 eggs per female in 5 days (see van Lenteren JC, ed. 2003. Quality Control and Production of Biological Control Agents: Theory and Testing Procedures. Wallingford, UK : CABI Publ. 327 pages). These results demonstrate that predatory mites reared using the novel and highly desirable rearing system of using non-mites as an alternate food source for P. persimilis, maintained and even increased their ability to consume spider mites and reproduce by feeding on spider mite prey. b. Ability to locate spider mite prey To test whether the new population of P. persimilis mites selected to breed on non-mite prey (e.g. C. lactis) maintained its ability to locate clusters of spider mites on the plant, the following tests were carried out: Cucumber plants were infested with 25 spider mites on their upper leaf. Three days later, 10 P. persimilis females were released onto the lower leaf of the plant. These females were from two different treatments — either traditional rearing of P. persimilis fed spider mites (called traditional product in [fig.7]), or mites reared by being fed dead C. lactis as prey (called new produced in [fig.7]). Thirteen plants (replicates) were tested for each treatment. To assess the ability to locate and reach the prey clump, the upper leaf was observed daily for three days, and the number of P. persimilis reaching this leaf was recorded. The results shown in [fig.7] present the number of predators that were found on the infested leaf at each treatment each day. Bars indicate Means +- standard error. It can be seen that predatory mites reared using the non-spider mite surrogate as prey reached the spider mite prey clumps at significantly higher rates than predatory mites reared in the traditional way (predatory mites raised while being fed spider mites). This indicates that not only was the ability to locate prey not negatively affected by the new rearing technology, but in fact was significantly improved by a factor of approximately 1.5 to 3, compared to example of about 2, compared to P. persimilis traditionally reared by being fed with spider mites (called commercial product in [fig.7]). vs. Ability to control a population of spider mites To test whether the novel P. persimilis population of the present invention maintains its ability to control clusters of spider mites on the plant, the following assay was conducted: Groups of four cucumber plants, about one meter tall, were placed in cages, touching each other. The upper leaf of a plant at one side of the group was infested with 35 spider mites. Two days later, 20 P. persimilis females were introduced to the lower leaf of the plant furthest from the infested one. These females were derived from two different treatments—either the P. persimilis reared traditionally on spider mites (called traditional product in [Fig. 8]), or the P. persimilis mite population of the present invention reared while being fed C. dead lactis as prey (called new product in [Fig. 8]). Each treatment was replicated 8 times (8 cages per treatment). Spider mites and P. persimilis were counted weekly on the infested leaf. In addition to numbers, three weeks after predator introduction, the cages were monitored by an observer blinded to the identity of the treatments, and scored according to the level of spider mite control in each cage. The following index was used to score the ability of P. persimilis to control spider mites: 0 - Spider mites spreading out of control 1 - Spider mites spreading, but P. persimilis gaining control 2 - Spider mites under control 3 - Complete control of spider mites obtained Reference is now made to Figure 8A graphically showing the number of predators / leaf and spider mites / leaf observed at each sampling week under the different treatments. Reference is now made to Figure 8B graphically showing the spider mite control index found three weeks after predator introduction at each treatment. The results shown in Figures 8A and 8B demonstrate that plants which were treated with the new population of P. persimilis reared while being fed non-prey spider mites, showed higher numbers of predatory mites, lower numbers of spider mites, and a higher control index. This indicates that the prey control ability of the new population of P. persimilis reared by being fed non-mite arthropod prey, was not negatively affected, and was even surprisingly enhanced by a factor of approximately equal to 2 compared to the population of P. persimilis reared in the traditional way. EXAMPLE 12 Slow release system for P. persimilis Reference is now made to a description of a controlled release system or device for P. persimtilis according to certain embodiments of the present invention. A mixture containing approximately 120 motile stages and 80 eggs of P. persimilis mites reared by being fed immobilized C. lactis prey (e.g. dead prey) and additional prey and frass as a vector, was inserted into four paper sachets, commonly used for the slow release of predatory mites other than P. persimilis. The pouches were placed on an adhesive tape or surface under controlled conditions (22 degrees Celsius and 85% humidity). The tape was replaced once a week, and the P. persimilis mites that appeared on it were counted to assess the rate of release from the reservoir. Reference is now made to Figure 9 graphically illustrating the rate of release of mites from the sachets as a function of the number of days since the installation of the experiment. In this figure, the X-axis denotes the number of days since trial installation, the upper Y-axis represents the number of mites / day released from the group of four sachets, and the axis A lower Y represents the accumulated number of mites compared to the initial number put in the sachets. As can be seen in [fig.9], the mites are released continuously from the reservoir over a period of 35 days, with a peak release occurring around day 21 (between days 14 and 21). The quantity of mites leaving the sachets reaches in total approximately 10 times the initial quantity of mites (mobile stages + eggs) put in the sachet at the starting point of the experiment. The release rate of predatory mites was up to 200 mites / day from four sachets. This example demonstrates that a slow or controlled release system for P. persimilis (for at least about 20 days) is constructed, based on the rearing composition and method of the present invention. EXAMPLE 13 Slow release of mites in the open field This example demonstrates the performance of a slow release system of the present invention (eg as described in Example 4 above) under greenhouse conditions. Pepper plants were planted in the greenhouse, and exposed to three different treatments in 5 replicates: a) A slow release sachet containing 30 P. persimilis individuals was applied to the plants 13 days before the plants were infested with spider mites. b) A slow release sachet containing 30 P. persimilis individuals was applied to the plants 6 days before the plants were infested with spider mites. c) Control plants that were not exposed to P. persimilis. The sachet was located on the lower parts of plants 1 meter in height. An infestation was carried out by stapling a bean leaf infested with spider mites to one of the upper leaves of the plant. The mite population on each plant was sampled 3 days after the plants were infested. Spider mites and P. persimilis mites found on or above the infested leaf were recorded. Reference is now made to Figure 10 graphically illustrating the numbers of P. persimilis (Pp) and spider mites of plants exposed to the slow release system of the present invention compared to control plants. As can be seen, predatory mites have been found on plants exposed to both treatments with P. persimilis. Furthermore, the quantities of spider mites in the plants treated with P. persimilis were rapidly reduced compared to the control plants. Specifically, an inverse correlation was observed between P. persimilis numbers and spider mite numbers, i.e., the more P. persimilis mites found on the plants, the fewer spider mites were counted. This experiment clearly demonstrates that P. persimilis mites, and more specifically, the composition of the present invention, is effective against spider mite infestation. The P. persimilis slow release system of the present invention reduced the spider mite population on the plant, despite the relatively long time (approximately 6-13 days) elapsed between the application of P. persimilis and the arrival of the spider mites. on the plant. This shows the effectiveness of the P. persimilis slow release composition and system as described here in controlling spider mite infestations. EXAMPLE 14 Oviposition of P. persimilis feeding on a non-mite arthropod that is not a mite In this assay, pregnant females were collected from rearing immobilized life cycle stages of C. lactis (dead C. lactis individuals), isolated, and fed a diet of decapsulated Artemia cysts at 22 degrees Celsius. and at 100% RH. It was observed that all the mites fed easily and changed color when given Artemia for a day. Eggs have been laid by P. persimilis mites, indicating that they can reproduce by feeding on Artemia cysts. As will be appreciated by those skilled in the art, further optimization and adjustments of the results may be made (which are within the skill of the skilled artisan). This example demonstrates that Phytoseiulus mite species are capable of reproducing by feeding on non-mite arthropod prey using the method of the invention, as disclosed inter alia. This disclosure demonstrates the successful oviposition of Phytoseiulus mites feeding on non-phytophagous mites, such as Astigmatid mites as well as feeding on non-mite arthropod prey, such as than Artemia, using the methods of the invention. In conclusion, the present invention provides for the first time a population of P. persimilis characterized by a trait characterized by an increased reproductive rate when fed a substitution diet consisting of a non-mite arthropod prey, preferably from Astigmatid mites such as C. lactis individuals as prey. This allows for a highly desirable, breakthrough, indoor production of improved P. persimilis predatory mites with high yield. increased when reared on Astigmata species, compared to currently available P. persimilis mites, which show significantly reduced reproductive rate and yield when reared on the same constituted prey of an Astigmata species. List of cited documents Chant, D. A. & Me Murtry, J. A. (2006). To review of the subfamily Amblyseiinae Muma (Acari: Phytoseiidae): part VIII. The tribes Macroseiini Chant, Denmark and Baker, Phytoseiulini n. tribe, Africoseiulini n. tribe and Indoseiulini Ehara and Amano. International Journal of Acarology 32, 13-25. Simmonds, S.P. (1970). The Possible Control of Steneotarsonemus pallidus on Strawberries by Phytoseiulus persimilis. Plant pathology 19, 106-107. McMurtry, J.A. & Croft, B.A. (1997). Life-styles of phytoseiid mites and their roles in biological control. Annual Review of Entomology, 42, 291-321. Helle, W. & Sabelis, M.W. (1985). Spider Mites. Their Biology, Natural Enemies and Control, Vol. 1B. Elsevier, Amsterdam. Gerson, U., Smiley, R.L. & Ochoa, R. (2003). Mites (Acari) for Pest Control; Blackwell Science Ltd.: Oxford, UK. Walzer, A. & Schausberger, P. (1999). Cannibalism and interspecific predation in the phytoseiid mites Phytoseiulus persimilis and Neoseiulus californicus: predation rates and effects on reproduction and juvenile development BioControl 43: 457-468. Yao, D.S. & Chant, D.A. (1989). Population growth and predation interference between two species of predatory phytoseiid mites (Acarina: Phytoseiidae) in interactive systems. Oecologia 80: 443—455, Walzer, À, Paulus, W. & Schausberger, P. (2004) Ontogenetic shifts in intraguild predation on thrips by phytoseiid mites: the relevance of body size and diet specialization. Bulletin of Entomological Research, 94, 577-584. van de Vrie, M., MeMurtry J. A. & Huffaker C. B. (1972) Ecology of tetranychid mites and their natural enemies: A review: III. Biology, ecology, and pest status, and host-plant relations of tetranychids. Hilgardia 41(13):343-432.
Claims
Demands
1. Use of a food source including unc eggs species of immobilized non-tetranychus arthropod, selected from Carpoglyphus lactis, Glycyphagus domesticus, Lepidoglyphus destructor, Dermatophagoides farina or Dermatophagoides pte- ronisinus, to feed a population of predatory mites that feed on individuals predators of Phytoseiulus so that said population produces at minus 0.55 eggs / day / female.
2. Use according to claim 1, characterized in that said po- population exhibits a juvenile survival rate of at least 40% in se feeding on non-spider mite prey.
3. Use according to claim 1, characterized in that said po- population exhibits a female survival rate of at least 40% in se feeding on non-spider mite prey.
4. Use according to any one of claims 1 to 3, characterized in that at least 10% of the female individuals in the population exhibit a capacity to produce female offspring in a a certain number of subsequent generations, in which the number of ge- the following generations is of at least |, such that of at least 2, such that of at minus 3, 4, 5, 6, 7, 8, 9 or 10 generations.
5. Use according to any one of claims | to 4, in which population is characterized by a reproduction rate daily in the range of approximately 1.10 to 1.40, such as 1.15 to 1.40, from 1.20 to 1.40, from 1.25 to 1.40, from 1.30 to 1.40, or from 1.10 to 1.35, from 1.10 to 1.30, from 1.10 to 1.25, from 1.10 to 1.
20.
6. Use according to any one of claims 1 to 5, in of which at least 15%, at least 20%, at least 25%, at least 30% at least 35%, at least 40%, at least 45%, at least 50%, at less than 55%, at least 60%, at least 65%, at least 70%, at least 75%, at least 80%, at least 85%, at least 90%, at least 95% or at least 99% of the female individuals in the population are capable to reproduce by feeding on an unte- arthropod prey tranychus, preferably from a non-tranychus arthropod prey im- mobilized, such as a non-herbivorous prey, preferably a prey Astigmatid, in a preferred manner of all, of an Astigmatid prey im- mobilized, such as an immobilized Astigmatid prey exhibiting immobilized life cycle stages including immobilized eggs.
7. Use according to any one of claims | to 6, in in which the predatory individuals come from a selected species among Phytoseiulus fragariae, Phytoseiulus longipes, Phytoseiulus ma- cropilis, Phytoseiulus persimilis and Phytoseiulus robertsi.
8. Use according to any one of claims 1 to 7, in which said population of predatory mites is in a com- position based on mites comprising said mite population predators in conjunction with a vector material, such as a material vector selected from sawdust, wheat bran, buckwheat hulls, rice hulls or millet hulls, or comprising a mixture of those.
9. Use according to any one of claims 1 to 8, in which said population of predatory mites is included in a device comprising a reservoir containing said population predatory mites, said device including an outlet for the mobile stages of the life cycle of said mite population predators.
10. Use according to claim 8, characterized in that said com- This position is for crop protection.
11. Use according to claim 9, characterized in that said device is for crop protection.