Analyze Diet

Topic:Fetal Development

Fetal development in horses refers to the progression of growth and differentiation that occurs from conception until birth. This process involves a series of complex stages, beginning with fertilization and continuing through embryonic and fetal stages. Key developmental milestones include organogenesis, skeletal formation, and maturation of physiological systems. The equine gestation period averages around 340 days, during which the fetus undergoes significant anatomical and functional changes. Understanding fetal development in horses is essential for optimizing breeding practices and ensuring the health of both mare and foal. This page compiles peer-reviewed research studies and scholarly articles that explore the stages, mechanisms, and factors influencing fetal development in equines.
[Culture of human chorionic villi].
Revista da Faculdade de Farmacia e Odontologia de Ribeirao Preto    January 1, 1982   Volume 19, Issue 1 43-46 
Sala MA, Benedetti WL, Alvarez H.No abstract available
The concept of readiness for birth.
Journal of reproduction and fertility. Supplement    January 1, 1982   Volume 32 507-510 
Rossdale PD, Silver M.No abstract available
Chemical composition of the spinal cord in the normal developing fetus and in the premature foal.
Journal of reproduction and fertility. Supplement    January 1, 1982   Volume 32 563-567 
Sweasey D, Patterson DS, Leadon DP.The lipid content of spinal cord, expressed as a percentage of adult values, was considerably higher for newborn foals than for several other species and traces of esterified cholesterol (type A) were only rarely present in horse fetal cord (from 270 days gestational age onwards). This suggested that, at birth, the spinal cord is neurochemically more 'mature' in the horse than in cattle, sheep and pigs. Data for premature foals revealed no lipid abnormality suggestive of myelin immaturity or degeneration.
Transuterine migration of the fetus in the mare between day 42 and parturition.
Journal of reproduction and fertility. Supplement    January 1, 1982   Volume 32 441-446 
Pascoe RR.A total of 2187 Thoroughbred and Standardbred mares was examined over a 4-year period to determine the location of the fetus at 42 days, the location of the previous fetus as determined by examination 5-15 days after foaling, and pregnancy location the next season. Maiden mares showed 44 and 56% of pregnancies in the left and right horns respectively. No transuterine migration was observed in 139 maiden mares examined after their first foal. Lactating mares showed 62% implantations and full-term pregnancies on one side of the uterus with the next season's pregnancy being in the opposite uterin...
Relationship between early pregnancy site in consecutive gestations in mares.
Equine veterinary journal    January 1, 1981   Volume 13, Issue 1 51-52 doi: 10.1111/j.2042-3306.1981.tb03451.x
Allen WE, Newcombe JR.The records of 200 pairs of consecutive pregnancies in mares showed that in 82 per cent of cases the second pregnancy was initially established in the opposite uterine horn to that of the first, irrespective of the parturition to conception interval. This relationship also occurred when the first pregnancy ended in abortion after 140 days but not if it terminated before this time.
Investigations into fetal and neonatal losses in the horse.
The Veterinary clinics of North America. Large animal practice    November 1, 1980   Volume 2, Issue 2 313-331 doi: 10.1016/s0196-9846(17)30165-9
Whitwell KE.No abstract available
[Embryonic death and twin pregnancy in the horse].
Tierarztliche Praxis    January 1, 1980   Volume 8, Issue 4 489-494 
Merkt H, Klug E.No abstract available
[Progesterone substitution during early pregnancy in the mare using the model of PGF2 alpha-induced intrauterine death].
Berliner und Munchener tierarztliche Wochenschrift    August 15, 1979   Volume 92, Issue 16 309-312 
Stolla R, Leidl W.No abstract available
Histological development of the equine fetal adrenal gland.
Journal of reproduction and fertility. Supplement    January 1, 1979   Issue 27 487-491 
Yamauchi S.The horse fetal adrenal gland was shown to begin to increase in weight from about the end of the 4th month of pregnancy when the fetus has a crown-rump length of about 20 cm. Growth then proceeds steadily to term but, in contrast to the adult horse, the medulla remains thicker than the cortex throughout fetal life. The cortex also becomes established around 20 cm crown-rump length and at the same time the glomerular and fascicular zones become distinguishable. In contrast the reticular zone is not differentiated until around 50 cm crown-rump length. In the fetal adrenal cortex, the fascicular ...
Growth and maturity in the equine fetus.
Journal of the Royal Society of Medicine    September 1, 1978   Volume 71, Issue 9 658-661 doi: 10.1177/014107687807100906
Platt H.No abstract available
[Implantation, fetal development and PMSG production in twin mares after mating with their chimeric twin brother].
Verhandelingen - Koninklijke Academie voor Geneeskunde van Belgie    January 1, 1978   Volume 40, Issue 4 253-268 
Bouters R, Spincemaille J, Vandeplassche M, Bonte P, Coryn M.No abstract available
[Occurrence and histogenesis of various fetal pneumopathies in equine viral abortion].
Berliner und Munchener tierarztliche Wochenschrift    November 15, 1977   Volume 90, Issue 22 429-432 
Geisel O, Boch E, Bachmann PA.No abstract available
Studies on the equine placenta II. Ultrastructure of the placental barrier.
Journal of reproduction and fertility    November 1, 1976   Volume 48, Issue 2 257-264 doi: 10.1530/jrf.0.0480257
Samuel CA, Allen WR, Steven DH.In early pregnancy the equine placenta consists of a simple apposition of fetal and maternal epithelia, but it becomes more complex with the formation of microcotyledons between 75 and 100 days of gestation. Although the placental barrier maintains an epitheliochorial arrangement throughout the course of pregnancy, a thinning of the maternal epithelium and a progressive indentation of the chorionic epithelium by fetal capillaries shortens the length of the diffusion pathway and reduces the amount of placental tissue between fetal and maternal bloodstreams. These structural modifications may re...
Influences on fetal growth.
Journal of reproduction and fertility    May 1, 1976   Volume 47, Issue 1 167-181 doi: 10.1530/jrf.0.0470167
McKeown T, Marshall T, Record RG.No abstract available
The development and distribution of mucosal enzymes in the small intestine of the fetus and young foal.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 717-723 
Roberts MC.Lactase and cellobiase were detectable in the fetal intestine by the 3rd month of gestation, and although there was little change by the 9th month, maximal levels were reached at birth and steadily declined after 4 months. Conversely maltase, sucrase and trehalase were barely discernible in the fetus, maltase being present at low levels at birth, but all increased during the suckling period to attain adult levels by 7 months of age. Alkaline phosphatase activity matured earlier than did disaccharidase activity. Mucosal enzymes other than alkaline phosphatase were virtually absent from meconium...
Early embryonic development in the horse.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 495-498 
van Niekerk CH, Allen WR.No abstract available
The development of the lung and its surfactant in the foal and in other species.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 651-657 
Pattle RE, Rossdale PD, Schock C, Creasey JM.The development of the lung from the glandular through the canalicular to the alveolar stages in the horse fetus is described. Traces of surfactant and occasional lamellated osmiophilic bodies representing intracellular surfactant were found at 150 days of gestation, some 40 to 60 days before the transition to the canalicular stage. During this transition some of the cuboidal cells of the glandular rosettes are transformed into cells of Types I and II, but the surfactant is not fully developed until 300 days or, in some foals, until after delivery.
Surfactant studies in the fetal and neonatal foal.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 663-665 
Arvidson G, Astedt B, Ekelund L, Rossdale PD.Phospholipids in embryonic lung tissue, pulmonary washings and amniotic fluid were measured to study the development of lyng surfactant in the horse. A significant increase in the concentration of total phospholipids in lung tissue and a concomitant rise in the amount of dipalmitoyl lecithin in amniotic fluid between 100 and 150 days of gestation indicated the initial formation of surfactant in the fetal lung during this period.
Development of the equine fetus and placenta.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 503-505 
Douglas RH, Ginther OJ.Prenatal specimens from mares with known breeding dates were used to characterize morphological changes in the fetus and placenta of pony mares. Prenatal characteristics and the day on which each was first found and weights of different components of the equine conceptus are summarized.
Infection of the horse fetus.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 605-610 
Platt H.Many infections of the equine placenta and fetus result from ascending spread along the cervical canal. Most abortions due to infection occur during the later stages of pregnancy and the possible effects of intrauterine infection on the developing fetus and young foal are discussed.
Development of pituitary and adrenal glands in the fetal horse.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 553-556 
Samuel CA, Allen WR, Steven DH.The various cell types in the adult anterior pituitary may be distinguished at the ultrastructural level of the sizes of the secretory granules within the cytoplasm. In the fetal adenohypophysis, with the exception of prolactin-producing cells, all types may be identified after Day 100 of gestation. Morphological evidence suggests that they are producing and secreting trophic hormones. The three constituent layers of the adrenal cortex are also discernible by Day 100 of pregnancy. The cells of the zona glomerulosa have large numbers of darkly stained inclusions within the cytoplasm. The zona f...
An ultrastructural and histochemical study of the interstitial cells in the gonads of the fetal horse.
Journal of reproduction and fertility. Supplement    October 1, 1975   Issue 23 557-561 
Hay MF, Allen WR.Gonadal tissue obtained at about 50-day intervals from Days 60 to 300 of gestation was examined histologically, histochemically and in the electron microscope. The marked enlargement of the gonads (ovaries or testes) reached a peak around Day 250 and was caused by hypertrophy and hypoplasia of interstitial cells. These cells had all the ultrastructural characteristics of a steroid-secreting cell but delta5-3beta-hydroxysteroid dehydrogenase (3beta-HSD) was not detected at any stage of their development. There was no significant change in the ultrastructure of the interstitial cells between Day...
Histological development of the thymic and intestinal lymphoid tissue of the horse.
Journal of the South African Veterinary Association    March 1, 1975   Volume 46, Issue 1 47-55 
Mackenzie CD.The basic components of the immune system, and the defence mechanisms in the gastrointestinal tract, are briefly reviewed. Histological studies in 84 equine foetuses showed that lymphoid cells begin populating the thymic primordium at 11-12 weeks, the mesenteric lymph nodes at 13 weeks, the spleen at 25 weeks and the intestinal lamina propria at 13-14 weeks' gestation. Lymphocytes were seen in the intestinal epithelium very early in gestation. Histological signs of response to antigenic stimulation were seen in five foetuses, indicating that the horse is likely to be capable of mounting an imm...
Embryonic and fetal hemoglobin in animals.
Annals of the New York Academy of Sciences    November 29, 1974   Volume 241 653-671 doi: 10.1111/j.1749-6632.1974.tb21921.x
Kitchen H, Brett I.No abstract available
A comparative study of blood gas tensions, oxygen affinity and red cell 2,3 DPG concentrations in foetal and maternal blood in the mare, cow and sow.
The Journal of physiology    November 1, 1974   Volume 242, Issue 3 805-826 doi: 10.1113/jphysiol.1974.sp010735
Comline RS, Silver M.1. Blood gas tensions, pH, PCV, O(2) affinity and red cell 2,3-diphosphoglycerate (DPG) levels have been measured in uterine and umbilical blood in conscious cows and mares with indwelling vascular catheters and in sows under sodium pentobarbitone anaesthesia.2. Large P(O2) gradients (20-24 mmHg) were observed between the uterine and umbilical venous blood in the cow and pig, while in the mare the corresponding P(O2) difference was only 2.7 +/- 1.7 mmHg. Alterations in maternal arterial P(O2) did not affect the large vein-to-vein P(O2) difference in either ruminant or pig.3. In the cow the pre...
Accessory thoracic lung with bronchial hypoplasia in an equine fetus.
The Cornell veterinarian    July 1, 1974   Volume 64, Issue 3 335-339 
Smith RE, McEntee K.No abstract available
Palpable development of the conceptus and foetus in Welsh pony mares.
Equine veterinary journal    April 1, 1974   Volume 6, Issue 2 69-73 doi: 10.1111/j.2042-3306.1974.tb03932.x
Allen WE.No abstract available
[Nerve-ending distribution in the equine metacarpus and toe as obtained by serial sections of fetal limbs].
Berliner und Munchener tierarztliche Wochenschrift    April 1, 1974   Volume 87, Issue 7 136-143 
Sack WO.No abstract available
Detection of foetal circulation in the mare and cow by Doppler ultra-sound.
The Veterinary record    September 29, 1973   Volume 93, Issue 13 365-368 doi: 10.1136/vr.93.13.365
Mitchell D.No abstract available
[Morphogenesis of the placenta in the horse (Equus equus cabillus) and its characteristics)].
Doklady Akademii nauk SSSR    May 21, 1973   Volume 210, Issue 3 733-736 
Kurnosov KM.No abstract available