Literature DB >> 33025116

Heat stress and poultry production: impact and amelioration.

G D Vandana1,2, V Sejian3,4, A M Lees5, P Pragna1,6, M V Silpa7, Shane K Maloney8.   

Abstract

Globally, the poultry industry is gaining significant importance among the agricultural and its allied sectors. However, heat stress was found to negatively affect the poultry production particularly in the tropical regions. This review is therefore an attempt to generate information pertaining to the impacts of heat stress on poultry production and its amelioration. Heat stress reduces the growth, reproductive performance, and egg production in poultry birds. The reduction in productive potential of poultry birds on exposure to heat stress may be attributed to the deviation of energy resources from production to adaptation pathway. There are different approaches pertaining to relieving the adverse impacts of heat stress on poultry production. These approaches can be broadly categorized under genetic, management, and nutritional strategies. These approaches may reduce the negative effects of heat stress and enhance the productive performance of poultry birds. The management strategies include appropriate shelter design, providing shade, using sprinklers, implementing cooling devices, and using fans and ventilation systems. The recommended floor space for mature birds weighing 1.7 kg is 0.06 m2/bird while it is 0.13 m2/bird for the birds weighing 3.5 kg with 27.8 kg/m2 bird density in either case. The nutritional interventions comprise ration balancing and providing essential micronutrients to improve the productive and reproductive performance in poultry birds. Fat, antioxidants, yeast, and electrolyte supplementations are some of the most commonly used nutritional strategies to ensure optimum production in the poultry industry. Furthermore, providing adequate water supply and disease surveillance measures may help to ensure optimum meat and egg production in the birds. The advanced biotechnological tools may aid to identify suitable genetic markers in poultry birds which might help in developing new strains of higher thermo-tolerance by designing suitable breeding program involving marker-assisted selection. These strategies may help to optimize and sustain poultry production in the changing climate scenario.

Entities:  

Keywords:  Antioxidants; Climate change; Heat stress; Hen; Minerals; Poultry birds; Shelter

Year:  2020        PMID: 33025116     DOI: 10.1007/s00484-020-02023-7

Source DB:  PubMed          Journal:  Int J Biometeorol        ISSN: 0020-7128            Impact factor:   3.787


  16 in total

Review 1.  Redox Homeostasis in Poultry: Regulatory Roles of NF-κB.

Authors:  Peter F Surai; Ivan I Kochish; Michael T Kidd
Journal:  Antioxidants (Basel)       Date:  2021-01-28

2.  The Mechanism of Heat Stress Resistance During Spermatogenesis in Turpan Black Sheep.

Authors:  Yukun Song; Xi Zhao; Aikebaier Aihemaiti; Aerman Haire; Yu Gao; Chao Niu; Peng Yang; Guoshi Liu; Gongxue Jia; Abulizi Wusiman
Journal:  Front Vet Sci       Date:  2022-06-13

3.  Heat Stress Affects Jejunal Immunity of Yellow-Feathered Broilers and Is Potentially Mediated by the Microbiome.

Authors:  Wen-Chao Liu; Meng-Yi Huang; Balamuralikrishnan Balasubramanian; Rajesh Jha
Journal:  Front Physiol       Date:  2022-05-23       Impact factor: 4.755

4.  Effect of Heat Stress on Egg Production, Steroid Hormone Synthesis, and Related Gene Expression in Chicken Preovulatory Follicular Granulosa Cells.

Authors:  Leyan Yan; Mengdie Hu; Lihong Gu; Mingming Lei; Zhe Chen; Huanxi Zhu; Rong Chen
Journal:  Animals (Basel)       Date:  2022-06-05       Impact factor: 3.231

5.  Effects of Heat Stress on Production Performance, Redox Status, Intestinal Morphology and Barrier-Related Gene Expression, Cecal Microbiome, and Metabolome in Indigenous Broiler Chickens.

Authors:  Wen-Chao Liu; Zi-Yi Pan; Yue Zhao; Yan Guo; Sheng-Jian Qiu; Balamuralikrishnan Balasubramanian; Rajesh Jha
Journal:  Front Physiol       Date:  2022-04-29       Impact factor: 4.755

6.  Alterations in intestinal microbiota composition coincide with impaired intestinal morphology and dysfunctional ileal immune response in growing-finishing pigs under constant chronic heat stress.

Authors:  Yunxia Xiong; Shuting Cao; Hao Xiao; Qiwen Wu; Hongbo Yi; Zongyong Jiang; Li Wang
Journal:  J Anim Sci Biotechnol       Date:  2022-01-05

7.  A Comprehensive Analysis of the Colonic Flora Diversity, Short Chain Fatty Acid Metabolism, Transcripts, and Biochemical Indexes in Heat-Stressed Pigs.

Authors:  Canying Hu; Xueting Niu; Shengwei Chen; Jiaying Wen; Minglong Bao; Sahar Ghulam Mohyuddin; Yanhong Yong; Xiaoxi Liu; Lianyun Wu; Zhichao Yu; Xinbin Ma; Xianghong Ju
Journal:  Front Immunol       Date:  2021-10-21       Impact factor: 7.561

8.  Influence of dietary vitamin E and selenium supplementation on broilers subjected to heat stress, Part II: oxidative stress, immune response, gut integrity, and intestinal microbiota.

Authors:  Ali Calik; Nima K Emami; Ghislain Schyns; Mallory B White; Maria C Walsh; Luis F Romero; Rami A Dalloul
Journal:  Poult Sci       Date:  2022-03-15       Impact factor: 4.014

9.  Genetic Effect and Growth Curve Parameter Estimation under Heat Stress in Slow-Growing Thai Native Chickens.

Authors:  Wuttigrai Boonkum; Monchai Duangjinda; Srinuan Kananit; Vibuntita Chankitisakul; Wootichai Kenchaiwong
Journal:  Vet Sci       Date:  2021-11-29

10.  Heat Stress Impairs Maternal Endometrial Integrity and Results in Embryo Implantation Failure by Regulating Transport-Related Gene Expression in Tongcheng Pigs.

Authors:  Weisi Lian; Dengying Gao; Cheng Huang; Qiqi Zhong; Renwu Hua; Minggang Lei
Journal:  Biomolecules       Date:  2022-03-02
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