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Effects of low oxygen during chorioallantoic membrane development on post-hatch growing performance of broiler
S Druyan1, M Ruzal1, D Shinder1
1Institute of Animal Science, Agricultural Research Organization (ARO), the Volcani Center, 68 HaMakkabbim Road, Rishon Le Ziyyon P.O.Box 15159, Israel.
Insights
Prenatal hypoxia exposure during broiler development improves feed efficiency and heat stress resilience. This incubation strategy enhances broiler growth, organ development, and survival rates, offering a promising approach for sustainable poultry farming.
Area of Science:
- Animal Science
- Poultry Physiology
- Developmental Biology
Background:
- The prenatal circulatory system is adaptable, with angiogenesis occurring under hypoxic stress.
- Hypoxic conditions during chorioallantoic membrane (CAM) development can increase blood oxygen-carrying capacity.
Purpose of the Study:
- To evaluate the effects of prenatal hypoxia on post-hatch broiler performance.
- To determine if prenatal hypoxia enhances broiler tolerance to acute heat stress.
Main Methods:
- Male broilers were incubated under optimal conditions or intermittent hypoxia (15-17% O2, 12h/day) during CAM development (E5-E12).
- Two trials assessed post-hatch performance (body weight, feed intake, FCR), organ weights, and heat stress response (body temperature, mortality).
- Heat stress involved exposure to 35°C for 5 hours after a 72-hour acclimatization period at 23°C.
Main Results:
- Hypoxia-treated broilers showed improved feed conversion ratio (FCR) and enhanced growth until 35 days.
- Increased relative weights of breast muscle, heart, and liver were observed in hypoxia-exposed groups.
- Hypoxia-treated chickens exhibited lower body temperatures and reduced mortality during heat stress.
Conclusions:
- Intermittent prenatal hypoxia during CAM development benefits broilers by improving feed utilization and heat stress coping mechanisms.
- This incubation strategy can be a mitigating step to optimize broiler growth potential and resilience.
Abstract:
The prenatal circulatory system is adaptive and capable of plasticity designed for the needs of the growing tissue. When a broiler embryo is faced with hypoxic stress, the process of angiogenesis in tissues begins. Exposure to hypoxic conditions of 17% oxygen during the chorioallantoic membrane (CAM) development (E5 to E12) affected the circulatory system and contributed to an increase in the blood oxygen carrying capacity. The present study aimed to evaluate the effects of hypoxic exposure during CAM development on post-hatch performance of broilers and to examine whether hypoxic exposure improved sustainability of birds exposed to acute heat stress.Two consecutive trials, with male broilers from each of the incubation treatments-optimal conditions and exposure to hypoxia of 15 or 17% oxygen, for 12 h/day, during CAM development-were conducted. In experiment 1, 60 male chicks from each group were raised in individual cages. In experiment 2, 160 male chicks from each group were raised in 40-chick pens until marketing. On d 35, 20 birds from each group were transferred to individual cages kept at a temperature of 23°C for 72 h, and then birds were exposed to 35°C for 5 hours. Body temperatures were measured at 0, 2, and 5 h of the heat exposure. In both experiments BW, feed intake, and FCR were recorded. At marketing, chicks were slaughtered, and relative weights of breast muscle, abdominal fat pad, heart, and liver were calculated.Hypoxia treatment resulted in a FCR advantage. Food intake was similar in all treatments, but groups exposed to hypoxia grew better than controls until the age of 35 days. Hypoxia-treated groups had higher relative breast, heart, and liver weights than controls. Body temperatures of hypoxia-treated chickens remained lower during heat stress exposure, and their mortality rate was lower as well. Intermittent exposure to moderate hypoxia during CAM development confers advantages to broilers in feed utilization efficiency and in coping with heat stress. It may be considered as a mitigating step in incubation to facilitate broilers in achieving their full growth potential.
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