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RESEARCH ARTICLE

Effects of growth stage and position within the beam in the structure and chemical composition of sika deer (Cervus nippon) antlers

Byong Tae Jeon A G , Kyoung Hoon Kim B G , Sun Hee Cheong A , Sung Ki Kang C , Pyo Jam Park A , Dong Hyun Kim A , Ho Sung Jung D , Jae Hyun Park A , David G. Thomas E and Sang Ho Moon A F
+ Author Affiliations
- Author Affiliations

A Korea Nokyong Research Center, Konkuk University, Chungju 380-701, Republic of Korea.

B National Institute of Animal Science, RDA, Suwon 440-706, Republic of Korea.

C Cheilbio Co. Ltd, 456-2 Moknae-Dong, Danwon-Gu, Ansan-City, Kyeong-Ki Province, Republic of Korea.

D Department of Emergency Medicine, Chungju Hospital, School of Medicine, Konkuk University, Chungju 380-701, Republic of Korea.

E Institute of Food, Nutrition and Human Health, Massey University, Palmerston North, New Zealand.

F Corresponding author. Email: moon0204@kku.ac.kr

G These authors contributed equally to this work.

Animal Production Science 52(1) 51-57 https://doi.org/10.1071/AN11183
Submitted: 24 August 2011  Accepted: 2 December 2011   Published: 9 January 2012

Abstract

The purpose of the present study was to investigate the changes in structural and chemical properties of sika deer antler at different stages of its growth in order to improve scientific assessment of antler’s quality. Eighteen antler samples, harvested on 40, 50 and 60 days after casting were collected from randomly selected deer farms, and the structural properties of antlers were examined. The chemical composition of each antler was determined in the upper, middle and basal section. Our results showed that the crude protein, crude fat (ether extract), uronic acid and sialic acid increased markedly from the base to the upper section, but the ash was higher in the basal section. Collagen content increased significantly from the upper to the basal section in all groups. The structural factors, including length and girth were positively or negatively correlated with the chemical composition such as glycosaminoglycans, ether extract-fat, ash, uronic acid, sialic acid, total sugar and collagen content. These findings may provide useful basic information and identify biomarkers for the association between structural properties and chemical composition during antler growth period, which should facilitate efficient production of high quality antlers for food consumption and as pharmaceutical agents.

Additional keywords: deer antler, growth period, structural properties.


References

AOAC (1990) ‘AOAC official methods of analysis.’ 15th edn. (Association of Official Analytical Chemists: Washington, DC)

Ball AJ, Thompson JM, Fennessy PF (1994) Relationship between velvet antler weight and liveweight in red deer (Cervus elaphus). New Zealand Journal of Agricultural Research 37, 153–157.
Relationship between velvet antler weight and liveweight in red deer (Cervus elaphus).Crossref | GoogleScholarGoogle Scholar |

Banks WJ (1974) The ossification process of the developing antler in the white-tailed deer (Odocoileus virginianus). Calcified Tissue Research 14, 257–274.
The ossification process of the developing antler in the white-tailed deer (Odocoileus virginianus).Crossref | GoogleScholarGoogle Scholar | 1:STN:280:DyaE2c3nvVOisw%3D%3D&md5=af39893667eaa3bd522c667d8d5921f4CAS |

Bergman I, Loxley R (1963) Two improve and simple methods for the spectrophotometric determination of hydroxyproline. Analytical Chemistry 35, 1961–1965.
Two improve and simple methods for the spectrophotometric determination of hydroxyproline.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaF2cXjsV2nsA%3D%3D&md5=d5e553be1b55b0f70292cd3de3054ffeCAS |

Chapman DI (1975) Antlers – bones of contention. Mammal Review 5, 121–172.
Antlers – bones of contention.Crossref | GoogleScholarGoogle Scholar |

Choi HK, Kim KH, Kim KH, Kim YS, Lee MW, Whang WK (2006) Metabolomic differentiation of deer antlers of various origins by HNMR spectrometry and principal components analysis. Journal of Pharmaceutical and Biomedical Analysis 41, 1047–1050.
Metabolomic differentiation of deer antlers of various origins by HNMR spectrometry and principal components analysis.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28Xks1equ7s%3D&md5=2e68fbaf7ff6a78633170e19811c5860CAS |

Cross HR, Carpenter ZL, Smith GC (1973) Effect of intramuscular collagen and elastin on bovine muscle tenderness. Journal of Food Science 38, 998–1003.
Effect of intramuscular collagen and elastin on bovine muscle tenderness.Crossref | GoogleScholarGoogle Scholar |

Farndale RW, Sayer CA, Bsrett AJ (1982) A direct spectrophotometric assay for sulfated glycosaminoglycans in cartilage cultures. Connective Tissue Research 9, 247–248.
A direct spectrophotometric assay for sulfated glycosaminoglycans in cartilage cultures.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaL38XlslyitLY%3D&md5=5599d75cc3504a65cd6fece9524307b6CAS |

Fierro Y, Gortázar C, Landete-Castillejos T, Vicente J, Garcia A, Gallego L (2002) Baseline values for cast antlers of Iberian red deer (Cervus elaphus hispanicus). Zeitschrift fur Jagdwissenschaft 48, 244–251.
Baseline values for cast antlers of Iberian red deer (Cervus elaphus hispanicus).Crossref | GoogleScholarGoogle Scholar |

Fletcher TJ (1986) Reproduction: seasonality. In ‘Management and diseases of deer’. (Ed. TL Alexander) pp. 17–18. (Veterinary Deer Society: London)

Gaspar-López E, José García A, Landete-Castillejos T, Carrión D, Estevez JA, Gallego L (2008) Growth of the first antler in Iberian red deer (Cervus elaphus hispanicus). European Journal of Wildlife Research 54, 1–5.
Growth of the first antler in Iberian red deer (Cervus elaphus hispanicus).Crossref | GoogleScholarGoogle Scholar |

Gaspar-López E, Landete-Castillejos T, Estevez JA, Ceacero F, Gallego L, Garcia AJ (2010) Biometrics, testosterone, cortisol and antler growth cycle in Iberian red deer stags (Cervus elaphus hispanicus). Reproduction in Domestic Animals 45, 243–249.
Biometrics, testosterone, cortisol and antler growth cycle in Iberian red deer stags (Cervus elaphus hispanicus).Crossref | GoogleScholarGoogle Scholar |

Gómez JA, Landete-Castillejos T, García AJ, Gallego L (2006) Importance of growth during lactation on body size and antler development in the Iberian red deer (Cervus elaphus hispanicus). Livestock Science 105, 27–34.
Importance of growth during lactation on body size and antler development in the Iberian red deer (Cervus elaphus hispanicus).Crossref | GoogleScholarGoogle Scholar |

Goss RJ (1983) Developmental anatomy of antlers. In ‘Deer antlers: regeneration, function and evolution’. (Ed. RJ Goss) pp. 133–171. (Academics Press: New York)

Ha YW, Jeon BT, Moon SH, Toyoda H, Toida T, Linhardt RJ, Kim YS (2005) Characterization of heparin sulfate from the unossified antler of Cervus elaphus. Carbohydrate Research 340, 411–416.
Characterization of heparin sulfate from the unossified antler of Cervus elaphus.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2MXoslarsw%3D%3D&md5=c692f19f198a1fb560ca2359f888b7daCAS |

Hunter GA (1991) Role of proteoglycan in the provisional calcification of cartilage. A review and reinterpretation. Clinical Orthopaedics and Related Research 262, 256–280.

Huxley JS (1931) The relative size of antlers in deer. Proceedings of the Zoological Society of London 72, 819–864.

Hyvärinen H, Kay RNB, Hamilton WJ (1977) Variation in the weight, specific gravity and composition of the antlers of red deer (Cervus elaphus L.). The British Journal of Nutrition 38, 301–311.
Variation in the weight, specific gravity and composition of the antlers of red deer (Cervus elaphus L.).Crossref | GoogleScholarGoogle Scholar |

Jeon BT, Kim MH, Lee SM, Moon SH (2006) Effects of dietary protein level on dry matter intake, and production and chemical composition of velvet antler in spotted deer fed forest by-product silage. Asian-Australasian Journal of Animal Science 19, 1737–1741.

Jeon BT, Kim SJ, Lee SM, Park PJ, Sung SH, Kim JM, Moon SH (2009) Effect of antler growth period on the chemical composition of velvet antler in sika deer (Cervus nippon). Mammalian Biology 74, 374–380.
Effect of antler growth period on the chemical composition of velvet antler in sika deer (Cervus nippon).Crossref | GoogleScholarGoogle Scholar |

Kosakai M, Yosizawa Z (1979) A partial modification of the cartilage method of Bitter and Muir for quantization of hexuronic acids. Analytical Biochemistry 93, 295–298.
A partial modification of the cartilage method of Bitter and Muir for quantization of hexuronic acids.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaE1MXhsVOqtb8%3D&md5=9a07fb3aa0c7283a9eceaa69f624b9b7CAS |

Landete-Castillejos T, Currey JD, Estevez JA, Gaspar-López E, García AJ, Gallego L (2007a) Influence of physiological effort of growth and chemical composition on antler bone mechanical properties. Bone 41, 794–803.
Influence of physiological effort of growth and chemical composition on antler bone mechanical properties.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXhtF2htbzO&md5=90ab9ba5b1250ddae9c373f414edc3c5CAS |

Landete-Castillejos T, Estevez JA, Martínez A, Ceacero F, Garcia A, Gallego L (2007b) Does chemical composition of antler bone reflect the physiological effort made to grow it? Bone 40, 1095–1102.
Does chemical composition of antler bone reflect the physiological effort made to grow it?Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD2sXjtVaksbs%3D&md5=d67fadf152952a606003ba921323504dCAS |

Landete-Castillejos T, Garcia A, Gallego L (2007c) Body weight, early growth and antler size influence antler bone mineral composition of Iberian Red Deer (Cervus elaphus hispanicus). Bone 40, 230–235.
Body weight, early growth and antler size influence antler bone mineral composition of Iberian Red Deer (Cervus elaphus hispanicus).Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BD28Xht12ktrvE&md5=690c7f1031d9a82b5f18bec3ada56010CAS |

Landete-Castillejos T, Currey JD, Estevez JA, Fierro Y, Calatayud A, Ceacero F, Garcia AJ, Gallego L (2010) Do drastic weather effects on diet influence changes in chemical composition, mechanical properties and structure in deer antlers? Bone 47, 815–825.
Do drastic weather effects on diet influence changes in chemical composition, mechanical properties and structure in deer antlers?Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DC%2BC3cXhtFClsb3K&md5=7dc2be49775aa149de3aa384fb76db23CAS |

Lee SR, Jeon BT, Kim SJ, Kim MH, Lee SM, Moon SH (2007) Effects of antler development stage on fatty acid, vitamin and GAGs contents of velvet antler in spotted deer (Cervus nippon). Asian-Australasian Journal of Animal Sciences 20, 1546–1550.

Moen R, Pastor J (1998) Simulating antler growth and energy, nitrogen, calcium and phosphorus metabolism in caribou. Rangifer 10, 85–97.

Moore GE, Littlejohn RP, Cowie GM (1988) Liveweights, growth rates and antler measurements of farmed deer stags and their usefulness as predictors of performance. New Zealand Journal of Agricultural Research 31, 285–292.

Muir PD, Sykes AR (1988) Effect of winter nutrition on antler development in red deer (Cervus elaphus): a field study. New Zealand Journal of Agricultural Research 31, 145–150.

Rucklidge GJ, Milne G, Bos KJ, Farquharson C, Robins SP (1997) Deer antler does not represent a typical endochondral growth system: immunoidentification of collagen type X but little collagen type II in growing antler tissue. Comparative Biochemistry and Physiology 118B, 303–308.

Scott JE (1960) Aliphatic ammonium salts in the assay of acidic polysaccharides from tissues. Methods of Biochemical Analysis 8, 145–197.
Aliphatic ammonium salts in the assay of acidic polysaccharides from tissues.Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaF3cXnsFSiuw%3D%3D&md5=0f664c4fe01d49a495222cf9f76dd6b9CAS |

Scott JE, Hughes EW (1981) Chondroitin sulfate from fossilized antlers. Nature 291, 580–581.
Chondroitin sulfate from fossilized antlers.Crossref | GoogleScholarGoogle Scholar |

Sunwoo HH, Nakano T, Hudson RJ, Sim JS (1995) Chemical composition of antlers from Wapiti (Cervus elaphus). Journal of Agricultural and Food Chemistry 43, 2846–2849.
Chemical composition of antlers from Wapiti (Cervus elaphus).Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK2MXovFSktbo%3D&md5=1e0ce76a4998dd381fc9757c0b923c8fCAS |

Sunwoo HH, Sim LYM, Nakano T, Hudson RJ, Sim JS (1997) Glycosaminoglycans from growing antlers of wapiti (Cervus elaphus). Canadian Journal of Animal Science 77, 715–721.
Glycosaminoglycans from growing antlers of wapiti (Cervus elaphus).Crossref | GoogleScholarGoogle Scholar | 1:CAS:528:DyaK1cXitlaisLw%3D&md5=f759e2e56a346e4de2674a06c6698c59CAS |

Thorleifson I, Pearse T, Friedel B (2000) Velvet antler. In ‘Elk farming handbook.’ (Eds I Thorleifson, T Pearse, B Friedel) pp. 147–176. (Viking Livestock, Incorporated: Saint Albert, Alberta)

Ullrey DE (1982) Nutrition and antler development in white-tailed deer. In ‘Antler development in Cervidae’. (Ed. RD Brown) pp. 49–59. (Caesar Kleberg Wildlife Research Institute: Kingsville, TX)

Ungerfeld R, Bielli A, Gonzalez-Pensado SX, Villagrán M, Gonzalez-Sierra UT (2008) Antler size and weight in a herd of pampas deer (Ozotoceros bezoarticus). Mammalian Biology 73, 478–481.
Antler size and weight in a herd of pampas deer (Ozotoceros bezoarticus).Crossref | GoogleScholarGoogle Scholar |

Warren L (1959) The thiobarbituric acid assay of sialic acids. The Journal of Biological Chemistry 234, 1971–1975.

Wolfe GJ (1982) The relationship between age and antler development in wapiti. In ‘Antler development in Cervidae’. (Ed. RD Brown) pp. 29–36. (Caesar Kleberg Wildlife Research Institute: Kingsville, TX)