Scientia Agricultura Sinica ›› 2020, Vol. 53 ›› Issue (9): 1913-1920.doi: 10.3864/j.issn.0578-1752.2020.09.017

• ANIMAL SCIENCE·VETERINARY SCIENCE·RESOURCE INSECT • Previous Articles     Next Articles

Study of Genotyping and Performance in Late-Feathering Qingyuan Partridge Cocks

Hua LI1,2,GuiJun FANG1,GuoHong HUA2,ShuWen TAN1,3,ZhengFen ZHANG2,YuYu HONG1,Hui YU1,2   

  1. 1 Guangdong Provincial Key Laboratory of Animal Molecular Design and Precise Breeding/Foshan University, Foshan 528225, Guangdong;
    2 Guangdong Tinoo’s Foods Corporation Ltd., Qingyuan 511827, Guangdong
  • Received:2017-11-15 Accepted:2020-03-11 Online:2020-05-01 Published:2020-05-13

Abstract:

【Objective】In order to verify the genotyping accuracy of heterozygotic cocks, and to construct the resistant strain without ev21 gene, the relationship among genotypes, four late-feathering sub-phenotypes (named micro-type as L1, inverted type as L2, isometric type as L3, and ungrown type as L4) and the production performance were investigated in the late-feathering Qingyuan partridge cocks. The feasibility was demonstrated by the expression profile difference of two candidate genes, i.e., Prolactin Receptor (PRLR) and Sperm Flagellar Protein 2 (SPEF2), between the early- and late-feathering Qingyuan partridge cocks. 【Method】Genotypes were detected by PCR-RFLP in the late-feathering Qingyuan partridge cocks, and its accuracy was verified by progeny testing using a test cross. The production differences among genotyping groups were compared by variance analysis of percentage data and t-test. The expressions of two candidate genes were quantified by real-time quantitative PCR (RT-PCR) in both the early (R2) feathering and late (L2 and L4) feathering cocks. 【Result】Among the 568 late-feathering cocks, the proportion of the deletant group (ev21 - group) was 41.73%, and that of the ev21 + group was 58.27%, of which the homozygotes and the heterozygote accounted for 8.80% and 49.47%, respectively. By the test cross, the genotyping accuracy was 46.83% both in the homozygote group and the deletant group, indicating that the heterozygote was in fact homozygote. The descendant percentage of the isometric late-feathering type in ev21 + group was significantly higher than that in ev21 - group (P≤0.05). The feather maturity of the late-feathering cocks at 105-day-old in the ev21 - group was extremely significantly higher than that in ev21 +group (P≤0.01). At one-day-old chicks, the expression of PRLR gene between R2 versus (L2+L4) showed no any difference (P>0.05),but its expression between R2 versus L4 was significantly down-regulated (0.01<P≤0.05). While the expression of SPEF2 gene in late-feathering chickens was extremely significantly higher than that in early-feathering chickens (P≤0.01). By comparing with the R2 group, SPEF2 significantly differentially up-regulated in the L4 and L2 groups (P≤0.01). 【Conclusion】New genotyping method should be developed for improving the accuracy of the heterozygote in the late feathering cocks. Up to now, a test cross is essential for the chicken production. Construction of the ev21 -resistant strain is viable in late-feathering chicken breeding. Furthermore, studies need to be conducted to figure out the difference of isometric subtype ratio and feather maturity between the ev21 + group and the ev21 - group. Besides, SPEF2 and PRLR were candidate genes for subtypes affecting the difference of early-feathering and late-feathering chickens at 1-day-old.

Key words: Qingyuan partridge cocks, late-feathering, genotyping, performance

Fig. 1

PCR-RFLP results of late-feathering Qingyuan Partridge cocks M represents Marker DL2 000; 2 is homozygote, 5, 8 and 9 are heterozygotes, while 1, 3, 4, 6 and 7 are deletants"

Table 1

Genotyping cocks of the late-feathering line"

群体
Population
纯合子Homozygote 缺失体Deletant 杂合子Heterozygote 合计Total
No % No % No % No
纯系Pure line 23 10.09 100 43.86 105 46.05 228
祖代Progenitor 27 7.94 137 40.29 176 51.77 340
合计Total 50 8.80 237 41.73 281 49.47 568

Table 2

Comparison of phenotypes and genotypes in late-feathering cocks by test cross"

基因分型组
Genotyping group
数量 Count 出苗Seedlings 慢羽表型Phenotyes (%)
% 微长型L1 倒长型L2 等长型L3 未出型L4
纯合子Ⅰ HomozygoteⅠ 4 5.06 34 5.89 70.60 11.76 11.76
杂合子Ⅱ HeterozygoteⅡ 42 53.17 453 13.02 61.59 9.49 15.90
Ⅰ+Ⅱ (ev21+) 46 58.23 487 12.52 62.22 9.65b 15.61
缺失体(ev21-) Deletant 33 41.77 396 10.86 63.39 5.30a 20.45
合计Total 79 100 883 11.78 62.74 7.70 17.78

Table 3

Comparisons of the production performance of the late-feathering cocks at 105-day-old"

基因分型组
Genotyping group
体重
Weight (g)
冠高
Crown height (mm)
胫长
Shank length (mm)
胫围
Shank circumstance (cm)
通管值
Feather maturity
ev21+ n=123 1302.6±159.7 43.1±5.4 81.7±2.8 3.9±0.2 40.3±15.7c
缺失体Deletant n=94 1268.5±129.6 42.8±5.6 81.7±3.3 3.9±0.1 47.5±22.5a
合计Total n=217 1287.8±144.7 42.9±5.7 81.7±3.1 3.9±0.1 43.4±20.6

Fig. 2

Expression of PRLR and SPEF2 by RT-PCR A indicating the control group is (L2+L4); B indicating the control group is L4; Gene expression with the same letter indicate not significant difference(P>0.05); Gene expression with adjacent letters was significant difference (0.01<P≤0.05); Gene expression with interphase letters was highly significant difference (P≤0.01)"

[1] 黎怀星, 邱祥聘, 曾凡同, 谢后清 . 鸡不同品系及其后代的羽速羽型研究. 四川农业大学学报, 1988,3(6):241-246.
LI H X, QIU X P, ZENG F T, XIE H Q . Studies on feather types and feathering in several early-and late-feathering strains and their crossbreds. Agricultural Journal of Sichuan, 1988,3(6):241-246. (in Chinese)
[2] 王建华, 李花妮, 石凤英 . 鸡羽毛生长基因的研究进展. 家禽科学, 2012,8:44-46.
WANG J H, LI H N, SHI F Y . Research progress of chicken feather growth genes. Poultry Science, 2012,8:44-46. (in Chinese)
[3] 刘小辉, 赵彩娟, 李祥龙, 逯春香, 赵书雨 . 快慢羽基因对坝上长尾鸡早期体重与羽速生长的影响. 湖北畜牧兽医, 2014,35(11):11-13.
LIU X H, ZHAO C J, LI X L, LU C X, ZHAO S Y . Effect of the fearthering gene weight and ferrhering rate of bashing Long-tailed chickens. Hubei Journal of Animal and Veterinary Science, 2014,35(11):11-13. (in Chinese)
[4] 宋素芳, 康相涛, 孙桂荣, 王彦斌, 李明, 黄艳群 . 羽速基因对0~20周龄固始鸡生长发育的影响. 河北农业科学, 2003,8:62-64.
SONG S F, KANG X T, SUN G R, WANG Y B, LI M, HUANG Y Q . Effect of feather growth gene on the growth and development of 0~20 week-old Gushi chicken. Hebei Agricultural Science, 2003,8:62-64. (in Chinese)
[5] 娄义洲, 徐寒梅, 娄锋, 谢璞 . 武农Ⅰ系乌骨鸡快慢羽系羽毛生长速度与体重关系的研究. 云南畜牧兽医, 2001,4:3-4.
LOU Y Z, XU H M, LOU F, XIE P . Study on the relationship between feather growth rate and body weight of Wunong silky fowl. Yunnan Journal of Animal Science and Veterinary Medicine, 2001,4:3-4. (in Chinese)
[6] 尹华贵, 曾子建, 朱汉春, 潘广碧, 章元, 周克勇 . 泸州黄羽乌鸡羽速与体重关系的研究. 中国家禽, 2002,24(6):7-8.
YIN H G, ZENG Z J, ZHU H C, PAN G B, ZHANG Y, ZHOU K Y . The relationship between feathering speed and body weight in the black-meat chicken. China Poultry, 2002,24(6):7-8. (in Chinese)
[7] IRAQI F, SMITH E J . Determination of the zygosity of ev21-K in late-feathering male White Leghorns using the polymerase chain reaction. Poultry Science, 1994,73(7):939-946.
doi: 10.3382/ps.0730939 pmid: 7937481
[8] 李培周, 李华, 杜炳旺, 陈洁波, 陶林, 陈琦, 林丽超 . 贵妃鸡羽速基因分子检测及相关早熟性状分析. 中国家禽, 2013,3(5):5-8.
LI P Z, LI H, DU B W, CHEN J B, TAO L, CHEN Q, LIN L C . Molecular detection of fearthering locus and prematurity traits of princess chicken. The Chinese Poultry, 2013,3(5):5-8. (in Chinese)
[9] 白春艳, 陈强, 杨长锁, 潘玉春 . 鸡羽速基因与內源禽白血病病毒的关系及其在育种中的应用. 中国家禽, 2011(08):5-8.
BAI C Y, CHEN Q, YANG C S, PAN Y C . The relationship between chicken feather speed gene and endogenous avian leucosis virus and its application in breeding. China Poultry, 2011(08):5-8. (in Chinese)
[10] 李竞一, 李荣妮, 王晓亮, 王翔宇, 杨永林, 鲍海港, 赵春江, 凌遥 . 慢羽鸡ev21结合位点缺失个体的检测. 中国畜牧杂志, 2011,11(47):6-8.
LI J Y, LI R N, WANG X L, WANG X Y, YANG Y L, BAO H G, ZHAO C J, LING Y . Detection of ev21 binding site deletion in slow-feathering chicke. Chinese Journal of Animal Science, 2011,11(47):6-8.(in Chinese)
[11] 李培周, 朱晓萍, 邝智祥 . 清远麻鸡羽速基因的分子检测及其与体重和冠高相关性分析. 中国畜牧杂志, 2013,7(49):10-12.
LI P Z, ZHU X P, KUANG Z X . Molecular detection of the feather speed gene and its correlation with weight and crown height in Qingyuan chicken. Chinese Journal of Animal Science, 2013,7(49):10-12. (in Chinese)
[12] TAKENOUCHI A, TOSHISHIGE M, ITO N, TSUDZUKI M . Endogenous viral gene ev21 is not responsible for the expression of late feathering in chickens. Poultry Science. 2017,97:403-411.
doi: 10.3382/ps/pex345 pmid: 29253229
[13] 李珊珊, 李东华, 吕福琨, 董晶, 李艳青, 杜炳旺 . 慢羽系麒麟公鸡纯合个体分子检测方法的建立, 河南农业科学, 2016: 45(7):118-121.
LI S S, LI D H, LV F K, DONG J, LI Y Q, DU B W . Establishment of molecular detection method for homozygous individuals of slow-feathering unicorn cocks. Henan Agricultural Sciences, 2016,45(7):118-121. (in Chinese)
[14] ZHANG X, WANG H, ZHANG L, WANG Q, DU X, GE L, ZHOU R, LI L, LI X . Analysis of a genetic factors contributing to feathering phenotype in chickens. Poultry Science. 2018,97(10):3405-3413.
doi: 10.3382/ps/pey231 pmid: 29924355
[15] LUO C, SHEN X, RAO Y, XU H, TANG J, SUN L, NIE Q, ZHANG X . Differences of Z chromosome and genomic expression between early- and late-feathering chickens. Molecular Biology Reports, 2012,39(5):6283-6288.
doi: 10.1007/s11033-012-1449-7 pmid: 22297689
[16] ZHAO J C, YAO J, LI F, YANG Z, SUN Z, QU L, WANG K, SU K, ZHANG A, MONTGOMERY S A, GENG T, CUI H . Identification of candidate genes for chicken early- and late-feathering. Poultry Science, 2016,95(7):1498-1503.
doi: 10.3382/ps/pew131 pmid: 27081197
[17] 邝智祥, 李华, 张正芬, 陈洁忠, 何兰花 . 清远麻鸡白羽系部分生产性能的测定与分析. 中国家禽, 2015,37(18):51-52.
KUANG Z X, LI H, ZHANG Z F, CHEN J Z, HE L H . Determination and analysis of production performance of white feather line of Qingyuan chicken. The Chinese Poultry, 2015,37(18):51-52. (in Chinese)
[18] 朱庆, 杨志勤, 杨爱民 . 蛋鸡慢羽羽型的分布及其与生产性能的关系探讨. 四川农业大学学报, 1996,1(14):1-5.
ZHU Q, YANG Z Q, YANG A M . The distribution of slow-feathering types their relationship with performance in chicken layers. Journal of Sichuan Agricultural University, 1996,1(14):1-5. (in Chinese)
[19] ELFERINK M G, VALLEE A A, JUNGERIUS A P, CROOIJMANS R P, GROENEN M A . Partial duplication of the PRLR and SPEF2 genes at the late feathering locus in chicken. BMC Genomics, 2008,9:391.
doi: 10.1186/1471-2164-9-391 pmid: 18713476
[20] BU G, HUANG G, FU H, LI J, HUANG S, WANG Y . Characterization of the novel duplicated PRLR gene at the late-feathering K locus in Lohmann chickens. Journal of Molecular Endocrinology, 2013,51(2):261-276.
doi: 10.1530/JME-13-0068 pmid: 23940279
[21] DERKS MFL, HERRERO-MEDRANO JM, CROOIJMANS RPMA, VEREIJKEN A, LONG JA, MEGENS HJ, GROENEN MAM . Early and late feathering in turkey and chicken: same gene but different mutations. Genetic Selection Evolution, 2018 , 50(1):7.
[22] FANG G, JIA X, LI H, TAN S, NIE Q, YU H, YANG Y . Characterization of microRNA and mRNA expression profiles in skin tissue between early-feathering and late-feathering chickens. BMC Genomics, 2018,19(1):399.
doi: 10.1186/s12864-018-4773-z pmid: 29801437
[23] 谢后清, 周铁茅, 刘福蓉 . 成都白鸡快慢羽纯系的选育及羽型研究. 四川农学院学报, 1985,1(3):9-14.
XIE H Q, ZHOU T M, LIU F R . Study on breeding and feather type of Chengdu white chicken pure line with fast and slow feathering. Journal of Sichuan Agricultural University, 1985,1(3):9-14. (in Chinese)
[24] OKAMURA A, MASUMOTO A, TAKENOUCHI A, KUDO T, AIZAWA S, OGOSHI M, TAKAHASHI S, TSUDZUKI M, TAKEUCHI S . Changes in prolactin receptor homodimer availability may cause late feathering in chickens. General and Comparative Endocrinology, 2019,272:109-116.
doi: 10.1016/j.ygcen.2018.12.011 pmid: 30594591
[25] DAVIS-TURAK J C, ALLISON K, SHOKHIREV M N, PONOMARENKO P, TSIMRING L S, GLASS C K, JOHNSON T L, HOFFMANN A . Considering the kinetics of mRNA synthesis in the analysis of the genome and epigenome reveals determinants of co-transcriptional splicing. Nucleic Acids Research, 2015,43(2):699-707.
doi: 10.1093/nar/gku1338 pmid: 25541195
[26] LIN X, Gao Q X, ZHU L Y, ZHOU G X, NI S W, HAN H, YUE Z C . Long non-coding RNAs regulate Wnt signaling during feather regeneration. Development, 2018 (145):162388.
doi: 10.1242/dev.162388 pmid: 30327322
[27] 宁中华, 王忠, 彭丹芳, 侯卓成, 徐桂云 . 禽白血病和羽速基因对白壳蛋鸡生产性能的影响. 中国畜牧杂志, 2005,41(10):23-25.
NING Z H, WANG Z, PENG D F, HOU Z C, XU G Y . Effects of avian leucosis and feathering gene on performance of white layer. Chinese Journal of Animal Science, 2005,41(10):23-25. (in Chinese)
[28] SU L N, LI H, TAN S W, FANG G J, YU H, YANG Y L . Mechanisms of early- and late-feathering in Qingyuan partridge chickens. Biotechnology & Biotechnological Equipment, 2019,33(1):1172-1181.
[29] 陶林, 杜炳旺, 张丽 . 卷羽鸡毛囊发育规律及卷羽候选基因 KRT75 遗传特征分析. 中国农业科学, 2015,48(4):821-830.
doi: 10.3864/j.issn.0578-1752.2015.04.20
TAO L, DU B W, ZHANG L . The development of frizzled follicle and genetic characteristics of candidate gene KRT75 in frizzled feather chicken. Scientia Agricultura Sinica, 2015,48(4):821-830. (in Chinese)
doi: 10.3864/j.issn.0578-1752.2015.04.20
[30] LIN C M, JIANG T X, WIDELITZ R B, CHUONG C M . Molecular signaling in feather morphogenesis. Current Opinion in Cell Biology, 2006,18(6):730-741.
doi: 10.1016/j.ceb.2006.10.009 pmid: 17049829
[31] BAO W, GREENWOLD M J, SAWYER R H . Expressed miRNAs target feather related mRNAs involved in cell signaling, cell adhesion and structure during chicken epidermal development. Gene, 2016,591(2):393-402.
doi: 10.1016/j.gene.2016.06.027 pmid: 27320726
[32] WIDELITZ R B, JIANG T X, CHEN C W J, STOTT N S, Jung H S, Chuong C M . Wnt-7a in feather morphogenesis: involvement of anterior-posterior asymmetry and proximal-distal elongation demonstrated with an in vitro reconstitution model. Development, 1999,126(12):2577-2587.
pmid: 10331970
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