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Analysis of Lipogenic and Myogenic Gene Expressions in Energy Restricted Broiler Chickens

육계의 에너지 제한 사양에 따른 지방 합성 및 근육 발달 관련 유전자의 발현 양상 비교 분석

  • Moon, Yang-Soo (Department of Animal Science and Biotechnology, Jinju National University)
  • 문양수 (진주산업대학교 동물생명과학과)
  • Published : 2009.12.31

Abstract

The present study was conducted to determine the effect of energy restricted (ER) diet on the expressions of lipogenic genes in liver and myogenic genes in muscle tissue of broiler chickens. Energy restriction was accomplished by providing chicks with 70% (ER70) or 85% (ER85) energy level of control diet intake. Energy restricted groups of chickens were restricted for 7 days, starting at 8 days of age. Ad libitum feeding was resumed after the restriction period, and continued through the end of the experiment. The body weight of chickens in the restricted groups gained less during the energy restriction period (P<0.05). The body weight of the ER groups were similar to the control group during the re-alimentation period. However, the body weight of the ER70 group did not catch up with that of the control group by 35 days of age. The energy restrictions during early life of chicks decreased the contents of triglycerides and cholesterol in blood (P<0.05), but those were not different among treatments after re-alimentation. The genes of fatty acid synthase (FAS) and transcription factors including SREBP and PPARγ were down regulated by restriction regimen only in ER70 (P<0.05). However, those genes were not completely recovered after re-alimentation in ER70 group. The RNA expression levels of Myo-D, Myf-5 and myogenin in all treatment groups were decreased by restriction regimen when compared with control group (P<0.05). Myogenin was highly expressed after re-alimentation, but the other genes were not different among groups. These results suggest that ER85 group shows the best growth performance by re-alimentation and the higher muscle differentiation by expressing myogenin.

본 연구는 육계에서 사료의 제한 급이 조건과 생체 내 지방 합성 및 근육 발달 관련 유전자들의 발현 양상을 비교 분석하기 위해여 실시하였다. 본 시험은 육계 Ross 종을 3처리 5반복 반복당 4수씩 완전 임의 배치하였으며, 7일령에 에너지제한 15%(ER85)와 30%(ER70)으로 하여 1주일간 제한 사양을 실시하였다. 제한 급이 이후 시험 종료까지(35일령)는 자유 급이를 실시하였다. 대조구는 전 사양 기간 동안 자유급이를 실시하였다. 에너지를 8일령부터 1주일간 제한 급이한 결과 대조구에 비하여 11.0%(ER85)와 30.8%(ER70) 각각 체성장이 낮게 나타났다. 제한 사양 후 3주간의 자유 급이 결과 ER85는 대조구와 같이 체성장을 이루어 보상 성장이 유도되었으나, ER70의 경우 대조구의 체성장보다 약 7.3% 낮게 나타나 보상 성장이 충분히 이루어지지 않았다. 제한 사양 후 콜레스테롤의 함량은 대조구에 비하여 40.6%(ER85)와 38.1%(ER70) 감소하였으나(P<0.05), 처리구간에는 유의적 차이를 나타내지 않았다. 중성지방 또한 대조구와 비교하여 64.5%(ER85), 49.5%(ER70) 각각감소하였다. 혈중포도당은 지방 성분들과 같은 경향으로 대조구에 비하여 34.5%(ER85), 27.7%(ER70) 각각 낮은 수준을 보였다. 보상 성장의 결과 혈중 콜레스테롤의 함량은 제한 사양 직후 대조구보다 낮은 수준에서 대조구와 같은 수준을 보였다. 혈중 중성지방은 대조구와 비교하여 처리구에서 102.3%(ER85)와 72.1%(ER70)의 높은 함량을 보여주어 제한 사양 직후와 상반된 결과를 보여 주었다. 혈중 포도당의 경우 ER70 처리구에서 비교적 높은 혈중 함량을 보였으며, 대조구와 ER85 그리고 처리구 간에는 유의적 차이를 보이지 않았다. 제한 사양 직후 FAS와 SREBP와 PPARr의 발현 양상은 ER70구에서 이들 유전자들의 발현이 감소하였을 뿐 대조구와 ER85구에서는 서로간의 차이를 볼 수 없었다. 제한 사양 후 14일령에 근육관련 유전자의 발현 양상은 대조구에 비해 모든 처리구에서 발현율이 낮게 나타났다. 보상 성장 후 ER85 처리군에서 Myogenin은 대조구와 ER70에 비하여 높은 발현을 보였다. 이상의 결과로부터 육계에서 보상 성장 및 근육 발달 관련 유전자들의 발현 양상을 고려할 때, 에너지 제한 15%(ER85) 수준이 적절한 제한 급이 방법으로 사료된다.

Keywords

References

  1. Acar N, Sizemore FG, Leach GR, Wideman RF, Jr, Owen RL, Barbato GF 1995 Growth of broiler chickens in response to feed restriction regimens to reduce ascites. Poult Sci 74(5):833-843 https://doi.org/10.3382/ps.0740833
  2. Bartov I 1987 Effect of early nutrition on fattening and growth of broiler chicks at 7 weeks of age. Br Poult Sci 28(3):507-518 https://doi.org/10.1080/00071668708416984
  3. Beane AL, Zachmanoglou MA 1979 Health and career awareness. A potpourri of activities. J Sch Health 49(8):473-474 https://doi.org/10.1111/j.1746-1561.1979.tb08129.x
  4. Blair SN, Shaten J, Brownell K, Collins G, Lissner L 1993 Body weight change, all-cause mortality, and cause-specific mortality in the multiple risk factor intervention trial. Ann Intern Med 119(7 Pt 2):749-757 https://doi.org/10.7326/0003-4819-119-7_Part_2-199310011-00024
  5. Calvert CC, Mcmurtry JP, Rosebrough RW, Campbell RG 1987 Effect of energy level on the compensatory growth response of broilers following early feed restriction. Poultry Science 66(Suppl. 2):75(abstract)
  6. Gonzales E 1992 Estudo da sindrome da morte subita em frangos de corte. PhD. Thesis Faculdade de Ciencias Agrarias e Veterinarias, Universidade Estadual Paulista, p 122
  7. Gonzales E, Buyse J, Loddi MM, Takita TS, Buys N, Decuypere E 1998 Performance, incidence of metabolic disturbances and endocrine variables of food-restricted male broiler chickens. Br Poult Sci 39(5):671-678 https://doi.org/10.1080/00071669888557
  8. Halevy O, Piestun Y, Allouh MZ, Rosser BW, Rinkevich Y, Reshef R, Rozenboim I, Wleklinski-Lee M, Yablonka-Reuveni Z. 2004. Pattern of Pax7 expression during myogenesis in the posthatch chicken establishes a model for satellite cell differentiation and renewal. Dev Dyn 231(3):489-502 https://doi.org/10.1002/dvdy.20151
  9. Jones EK, Zaczek V, MacLeod M, Hockin, PM 2004 Genotype, dietary manipulation and food allocation affect indices of welfare in broiler breeders. Br Poult Sci 45(6):725-737 https://doi.org/10.1080/00071660400014226
  10. Lee KH, Leeson S 2001 Performance of broilers fed limited quantities of feed or nutrients during seven to fourteen days of age. Poult Sci 80(4):446-454 https://doi.org/10.1093/ps/80.4.446
  11. Lippens M, Room G, De Groote G, Decuypere E 2000. Early and temporary quantitative food restriction of broiler chickens. 1. Effects on performance characteristics, mortality and meat quality. Br Poult Sci 41(3):343-354 https://doi.org/10.1080/713654926
  12. Marks HL 1979 Growth rate and feed intake of selected and nonselected broilers. Growth 43(2):80-90
  13. McMurtry JP, Plavnik I, Rosebrough RW, Steele NC, Proudman JA 1988 Effect of early feed restriction in male broiler chicks on plasma metabolic hormones during feed restriction and accelerated growth. Comp Biochem Physiol A Comp Physiol 91(1):67-70 https://doi.org/10.1016/0300-9629(88)91593-9
  14. Mollison B, Guenter W, Boycott BR 1984 Abdominal fat deposition and sudden death syndrome in broilers: the effect of restricted intake, early life caloric (fat) restriction, and calorie: protein ratio. Poultry Science 63:1190-1200 https://doi.org/10.3382/ps.0631190
  15. Pfaff FE, Jr, Benson JD, Austic RE 1977 Influence of diet on adiposal lipoprotein lipase and hepatic triacylglyceride synthetase activities in the developing pullet (Gallus domesticus). Comp Biochem Physiol B 58(4):345-348 https://doi.org/10.1016/0305-0491(77)90179-1
  16. Pinchasov Y, Jensen IS 1989 Comparison of physical and chemical means of feed restriction in broiler chicken. Poultry Science 68:61-69 https://doi.org/10.3382/ps.0680061
  17. Pinheiro DF, Cruz VC, Sartori JR, Vicentini Paulino ML 2004 Effect of early feed restriction and enzyme supplementation on digestive enzyme activities in broilers. Poult Sci 83(9):1544-1550 https://doi.org/10.1093/ps/83.9.1544
  18. Plavnik I, Hurwitz S 1985 The performance of broiler chicks during and following a severe feed restriction at an early age. Poultry Science 64:348-355 https://doi.org/10.3382/ps.0640348
  19. Plavnik I, Hurwitz S 1988 Early feed restriction in chicks: effect of age, duration, and sex. Poult Sci 67(3):384-390 https://doi.org/10.3382/ps.0670384
  20. Plavnik I, Hurwitz S 1991 Response of broiler chickens and turkey poults to food restriction of varied severity during early life. British Poultry Science 32:343-352 https://doi.org/10.1080/00071669108417359
  21. Plavnik I, Mcmurtry JP, Rosebrough RW 1986 Effects of early feed restriction in broilers growth performance and carcass composition. Growth. 50:68-76
  22. Poknial I, Cornejo SB 1982 Effect of energy and protein under nutrition on productive performance and carcass, liver, and digestive tract composition of broiler males. Nutr Rep Int 26:319-327
  23. Rosebrough RW, McMurtry JP, Mitchell AD, Steele NC 1988 Chicken hepatic metabolism in vitro. Protein and energy relations in the broiler chicken-VI. Effect of dietary protein and energy restrictions on in vitro carbohydrate and lipid metabolism and metabolic hormone profiles. Comp Biochem Physiol B 90(2):311-316 https://doi.org/10.1016/0305-0491(88)90079-X
  24. Rosebrouh RW, Steele NC, Mcmurtry JP, Plavnik I 1986 Effect of early feed restriction in broilers Ⅱ. Lipid metabolism Growth 50:217-227
  25. Saitoh O, Fujisawa-Sehara A, Nabeshima Y, Periasamy M. 1993. Expression of myogenic factors in denervated chicken breast muscle: isolation of the chicken Myf5 gene. Nucleic Acids Res 21(10):2503-2509 https://doi.org/10.1093/nar/21.10.2503
  26. SAS 2002 SAS user's guide. Statistics, Version 8.e., SAS Institute, Inc. Cary, N.C
  27. Summers JD, Spratt D, Bedford M 1990 Factors influencing the response of broiler chickens to calcium supplementation of canola meal Poult Sci 69(4):615-622
  28. Tottori J, Yamaguchi R, Murakawa Y, Sato M, Uchida K, Tateyama S 1997 The use of feed restriction for mortality control of chickens in broiler farms. Avian Dis 41(2):433-437 https://doi.org/10.2307/1592200
  29. Yu ME, Robinsin FE 1992 The application of short-term feed restriction to broiler chicken production: a review. Journal of Applied Poultry Research. 1:147-153 https://doi.org/10.1093/japr/1.1.147