Forma del producto

Extensión - Castaño o Acedera

    Prueba de ADN para el gen Extensión que controla la producción de pigmento negro o rojo en todo el pelaje....

    €35.00 IVA incluido

      Acerca de la pruebaAcerca de la prueba

      La Prueba de ADN de Extensión (MC1R) determina el color base genético del pelaje identificando si un caballo porta el alelo dominante del pigmento negro (E) o el alelo recesivo del pigmento rojo (e).

      Esta prueba es esencial para los criadores que desean predecir los colores del pelaje de la descendencia e identificar caballos que portan el factor rojo recesivo, incluso cuando muestran un pelaje de base negra.

      Para una predicción completa del color del pelaje, se recomienda la prueba de Extensión junto con la prueba de Agouti y otras pruebas de dilución del color del pelaje.

      ¿Por qué probar?¿Por qué probar?

      La prueba del gen Extension permite a los criadores:

      • Identificar portadores del alelo recesivo rojo (castaño).
      • Predecir el color base del pelaje de la descendencia futura.
      • Mejorar las decisiones de cría para la selección de color.
      • Confirmar si los caballos con base negra son homocigotos o heterocigotos para el gen Extension.
      • Combinar los resultados con los genes Agouti y de dilución para una predicción completa del color del pelaje.
      Signos clínicosSignos clínicos

      This gene sets coat colour. It is not linked to any illness.

      Horses that can make black pigment. Carriers and non-carriers look the same. Agouti then decides where the black goes: onto the legs, mane and tail only for a bay or brown, or all over for a black.

      Chestnut horses. The coat has only red pigment. The shade runs from a pale sorrel to a very dark liver chestnut, and the mane and tail may be darker, the same shade or flaxen. Sorrel, chestnut and liver chestnut are names for the same result. Agouti has no black pigment to work on, so it does not change a chestnut.

      What fools the eye:

      • A very dark liver chestnut against a true black, especially in winter coat
      • A sun-bleached black, which can read as dark brown or dark chestnut
      • A flaxen chestnut against a palomino: both have a light mane and tail on a golden body
      • A dilution on top of the base colour: Cream, Pearl, Champagne, Dun or Silver
      • Grey, which slowly strips the base colour away and in the end hides it completely
      TransmisiónTransmisión

      Chestnut is recessive. A horse needs one chestnut copy from the sire and one from the dam to be chestnut. The gene is not on a sex chromosome, so colts and fillies are the same.

      What each mating can produce:

      • E/E x E/E gives 100% E/E: no chestnut foals and no carriers
      • E/E x E/e gives 50% E/E, 50% E/e: no chestnut foals
      • E/E x e/e gives 100% E/e: no chestnut foals, every foal a carrier
      • E/e x E/e gives 25% E/E, 50% E/e, 25% e/e: one foal in four chestnut
      • E/e x e/e gives 50% E/e, 50% e/e: one foal in two chestnut
      • e/e x e/e gives 100% e/e: every foal chestnut
      PrevenciónPrevención

      The result lets you plan whether a mating can give chestnut foals.

      To get chestnut foals. Both parents must carry the chestnut variant. The crosses under Transmission give the odds.

      To keep chestnut out. At least one parent must have no copy of the chestnut variant.

      Breeding for black. Test both parents at Agouti too. Both must be able to pass on black.

      Chestnuts and Silver. Silver only lightens black pigment, so a chestnut can carry Silver without showing it and pass it on unseen. In breeds where Silver occurs, keep this in mind: Silver is linked to an eye condition, Multiple Congenital Ocular Anomalies.

      Colour should not be the only thing that decides a mating.

      ResultadosResultados

      La prueba de ADN para el gen de Extensión verifica el color base del pelaje y presenta los resultados como uno de los siguientes:

      • E/E- Homocigoto dominante para Extensión - Negro, Alazán o Marrón - Solo se expresa el factor negro. El caballo solo puede transmitir el alelo (E) E/E a su descendencia. No puede tener potros con color básico Alazán o Sorrel sin importar el color de la pareja. El gen Agouti determinará si el color base del pelaje será negro, alazán o marrón, a menos que sea modificado por otros genes modificadores de color.
      • E/e - Heterocigoto para Extensión - Negro, Alazán o Marrón - Se expresan tanto el factor rojo como el negro. Puede transmitir el alelo (E) o (e) a su descendencia. El gen Agouti determinará si el color base del pelaje será negro, alazán o marrón, a menos que sea modificado por otros genes modificadores de color.
      • e/e - Homocigoto recesivo para Extensión - Alazán o Sorrel- Solo se expresa el pigmento rojo. El color base del pelaje es alazán o sorrel, a menos que sea modificado por otros genes modificadores de color.
      Requisitos de muestraRequisitos de muestra

      30 a 40 - raíces del cabello - sobre o 5 mL - sangre - tubo K3 EDTA

      Envía tu muestra por correo ordinario o entrega exprés a:

      Laboratorio Equigerminal HIESE
      Rua da Quinta do Sobreiro Nº25
      3230-343 Penela, Portugal

      Tiempo de entregaTiempo de entrega

      2 a 5 días hábiles

      Cómo funcionaCómo funciona

      🛒 Compra el Test: Selecciona y compra el test en línea.

      📧 Recibe Instrucciones: Después de la confirmación del pago, recibe instrucciones para la recolección de la muestra.

      ✨ Recolección de Muestras: Recoge 30–40 raíces de cabello o pide a tu veterinario que tome una muestra de sangre.

      📄 Descarga el Formulario de Envío: Descarga el formulario de envío imprimible.

      📮 Envía las Muestras: Envía tus muestras a:

      Equigerminal Lab HIESE
      Rua da Quinta do Sobreiro Nº25
      3230-343 Penela, Portugal

      📄 Recibe Resultados: Tu certificado de ADN será enviado por correo electrónico.

      Preguntas frecuentesPreguntas frecuentes

      What does this test not detect?
      It does not read a second, much rarer chestnut variant called e-a. It does not test Agouti. It does not test Cream, Pearl, Champagne, Silver, Dun, Grey, Roan, Tobiano, Overo, Splashed White, Sabino, Dominant White or the Appaloosa patterns. It says nothing about health, performance or temperament.

      My horse is chestnut. Do I still need the test?
      Usually not, since a chestnut horse already has two chestnut copies. It still makes sense when the colour is hard to read.

      At what age can a horse be tested?
      Any age. The result never changes, so a newborn foal gives the same answer as an adult.

      For ProfessionalsFor Professionals

      Genetic and clinical detail for veterinarians, geneticists and laboratories.

      • Gene / locus: MC1R (melanocortin 1 receptor), Extension (E) locus, ECA3.
      • Variant: e allele, c.248C>T, missense, loss of receptor function: the receptor no longer takes the hormone signal that switches the pigment cell to black pigment. HGVS (EquCab3.0): NC_009146.3:g.36979560C>T; NM_001114534.1:c.248C>T; NP_001108006.1:p.(Ser83Phe). Marklund et al. (1996) showed that chestnut in 12 breeds comes from this change.
      • Alternative designations: chestnut, red factor. A second chestnut allele, e^a (NM_001114534.1:c.250G>A; NP_001108006.1:p.(Asp84Asn); NC_009146.3:g.36979562G>A; rs3443929753), was described in the Belgian Draft (Wagner and Reissmann, 2000) and is also reported in the Black Forest horse. Avila et al. (2022) concluded that detecting e^a matters when breeding to a colour.
      • Variant identifiers: e: rs68458866 (EVA); OMIA variant 154. e^a: OMIA variant 155.
      • Variant classification: not currently evaluated (ISAG/AVCG, per OMIA).
      • Inheritance: autosomal recessive for the chestnut phenotype (e/e); E is dominant. OMIA code: A (autosomal). Recessive inheritance was first argued by Hurst (1906), disputed by Weldon the same year, and settled from studbook records in Hurst's favour.
      • Breeds with documented carriers or cases: widespread. Avila et al. (2022) found e in all 28 breeds studied: Andalusian, Appaloosa, Arabian, Connemara Pony, Dutch Warmblood, Gypsy Cob, Gypsy Vanner, Hanoverian, Icelandic Horse, Knabstrupper, Lusitano, Miniature Horse, Missouri Fox Trotter, Morgan Horse, Mustang, Norwegian Fjord Horse, Oldenburg, Paint Horse, Percheron, Pony of the Americas, Pura Raza Espanola, Quarter Horse, Rocky Mountain Horse, Shetland Pony, Standardbred, Tennessee Walking Horse, Thoroughbred and Welsh Pony. e^a carriers: Knabstrupper 6/91, Paint Horse 1/2,076, Percheron 1/52, Quarter Horse 2/110 (Avila et al., 2022).
      • Allele / carrier frequencies: allele frequency of e from 76% (Pony of the Americas) to 12% (Percheron) across 28 breeds (Avila et al., 2022; 11,281 horses tested, 6,878 after removal of close relatives). The authors note ascertainment bias, since samples were submitted for colour testing, so figures for less-sampled breeds may be overestimated.
      • Clinical / diagnostic notes for veterinarians: the report gives the c.248C>T genotype only. An E/E or E/e horse from Belgian Draft, Knabstrupper, Paint, Percheron or Quarter Horse lines may still carry e^a; an e/e-like phenotype with an E/e result should prompt e^a testing. Source for the Silver note under Prevention: Brunberg et al. (2006). Mura et al. (2024) documented mismatch between genetic and recorded visual colour in the Sarcidano horse. Reported links between MC1R and behaviour (Jacobs et al., 2016; Finn et al., 2016) are early exploratory work and no basis for decisions.

      Key references:

      • Marklund L, Moller MJ, Sandberg K, Andersson L (1996). A missense mutation in the gene for melanocyte-stimulating hormone receptor (MC1R) is associated with the chestnut coat color in horses. Mamm Genome 7:895-899. PMID 8995760.
      • Wagner HJ, Reissmann M (2000). New polymorphism detected in the horse MC1R gene. Anim Genet 31:289-290. doi:10.1046/j.1365-2052.2000.00655.x. PMID 11086549.
      • Rieder S, Taourit S, Mariat D, Langlois B, Guerin G (2001). Mutations in the agouti (ASIP), the extension (MC1R), and the brown (TYRP1) loci and their association to coat color phenotypes in horses. Mamm Genome 12:450-455. doi:10.1007/s003350020017. PMID 11353392.
      • Avila F, Hughes SS, Magdesian KG, Penedo MCT, Bellone RR (2022). Breed distribution and allele frequencies of base coat color, dilution, and white patterning variants across 28 horse breeds. Genes 13:1641.

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