BibTex RIS Kaynak Göster

ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI

Yıl 2015, Cilt: 12 Sayı: 2, 25 - 31, 01.06.2015

Öz

Çiftlik hayvanlarında (sığır, koyun, kanatlı ve tavşan) kas lifi özellikleri et kalitesi üzerine anahtar bir rol
oynamaktadır. Lif tiplerinin kas kütlesi içerisindeki oranı etin kalitesini etkileyebilmektedir. Bu sebeple kas
kütlesi içerisindeki liflerin tip ve oranının belirlenmesi et kalitesi açısından önem arz etmektedir. Kas lifi
tiplerinin farklı sınıflandırılma metodları bulunmaktadır. Morfolojik, fizyolojik ve histokimyasal özelliklerine
göre farklılıklar gösteren kas lifi tiplerinin belirlenmesinde histokimyasal ve immunohistokimyasal boyama
teknikleri kullanılmaktadır. En güvenilir ve yaygın olarak kullanılanı histokimyasal boyama tekniğidir. Temel
olarak kas lifleri metabolik (oksidatif veya glikolitik) ve fiziksel (hızlı veya yavaş kasılma) aktivitelerine göre
sınıflandırılmaktadır. Metabolik aktivitenin belirlenmesinde succinatedehidrogenaz (SDH) veya nicotinanide
adenine dinucleotide-tetrazolium reductase (NADH-TR), fizyolojik aktivitenin belirlenmesinde adenozin
trifosfataz (ATPase) veya amylophosphorylase (AP) histokimyasal boyama yöntemleri kullanılır. Bu yöntemlere
göre belirlenen kas lifleri; Kırmızı, beyaz ve ara form; Tip A, Tip B ve Tip C; Tip I, Tip IIA ve Tip IIB-C; α-
Kırmızı, β-Kırmızı ve α-Beyaz; yavaş kasılan oksidatif, hızlı kasılan oksido-glikolitik ve hızlı kasılan glikolitik
kas lifi olmak üzere farklı gruplar içerisinde tanımlanmaktadır. Sonuç olarak etin gevrekliği ve aroması üzerine
etkili olabilen kas lifi özelliklerinin belirlenip sınıflandırılması et kalitesinin belirlenmesi açısından önem arz
etmektedir. Dolayısıyla, bu derlemenin amacı çeşitli histokimyasal boyama teknikleri kullanılarak belirlenen kas
liflerinin sınıflandırılma sistemlerini açıklamaktır.

Kaynakça

  • Ashmore CR, Doerr L (1971) Comparative aspects of muscle fiber types in different spcies. Experimental. Neurol 31: 431-438.
  • Barnard RJ, Edgerton VR, Furukawa T, Peter JB (1971) Histochemical, biochemical and contractile properties of red, white and intermediate fibres. Am J Physiol 220: 410-414.
  • Broke MM, Keiser K (1970) Muscle fiber type; How many and what kind? Arc Neurol 23: 369-370.
  • Carnwath JW, Shotton DM (1987) Muscular dystrophy in the Mdx mouse: Histopathology of the soleus and extensor digitorum longus muscles. J Neurol Sci 80: 39-54.
  • Carpenter CE, Rice OD, Cockett NE, Snowder GD (1996) Histology and composition of muscles from normal and callipyge lambs. J Anim Sci 74: 388-393.
  • Cassens RG, Cooper CC (1971) Red and white muscle. Ado Food Res 19: 1-9.
  • Dubowitz V, Pearse AGE (1960) Reciprocal relationships of phosphorylase and oxidative enzymes in skeletal muscle. Nature 185: 701-710.
  • Klont RE, Brocks L, Eikelenboom G (1998) Muscle fiber type and meat quality. Meat Sci 49: 219-229.
  • Kuran M, Şen U, Şirin E, Aksoy Y, Ulutaş Z (2008a) The effect of maternal feed intake during the peri- conception period on myogenesis in fetal sheep. Arch Tierz Dummers 51(SI): 18.
  • Kuran M, Şen U, Şirin E, Aksoy Y (2008b) Level of maternal nutrition between day 30 and day 80 of pregnancy affects postnatal muscular development of offspring on day 150. In: Book of Abstracts of 59th Annual Meeting of EAAP, 14: 155.
  • Kuran M, Şen U, Şirin E, Ulutaş Z (2012) Maternal undernutrition during mid-pregnancy affects muscle cellular characteristics of lambs. In: Book of Abstracts of 63th Annual Meeting of of EAAP, 18: 284.
  • Kuran M, Ulutaş Z, Ocak N, Şirin E (2008c) Koyunlarda Ananın Beslenmesinin Kuzuların Post-Natal Kas Lifi Gelişimi ve Et Kalitesine Etkisi. TÜBİTAK-TBAG (105T277, TBAG-U/148) Proje Kesin Sonuç Raporu, Ankara.
  • Maltin CA, Delday MI, Sinclair KD, Steven J, Sneddon AA (2001) Impact of manipulations of myogenesis in utero on the performance of adult skeletal muscle. Reprod 122: 359-374.
  • Moddy WG, Cassens RG (1968) Histochemical differentiation of red and white muscle fibers. J Anim Sci 27: 961-969.
  • Nissen PM, Danielsen VO, Jorgensen PF, Oksbjerg N (2003) Increased maternal nutrition of sows no beneficial effects on muscle fiber number or postnatal growth and has no impact on the meat quality of the offspring. J Anim Sci 81: 3018-3027.
  • Nyström B (1968) Histochemistry of developing cat muscles. Acta Neurol Scand 44: 405-513.
  • Pearson AM, Young RB (1989) Muscle and Meat Biochemistry. Academic Press, London.
  • Peinado B, Latorre R, Vaquez-Auton JM, Poto A, Ramirez G, Lopez-Albors O, Moreno F, Gil F (2004) Histochemical Skeletal Muscle Fibre Types in the Sheep. Anat Histol Embryol 33: 236-243.
  • Peter JB, Jefferss RN, Edgerton VR, Gillespie CA, Stempel KE (1972) Metabolic profiles of three fibers types of skeletal muscle in guinea pigs and rabbits. Biochem 11: 2627-2635.
  • Picard B, Gagniere H, Geay Y (1996) Contractile differentiation of bovine masseter muscle. Basic Appl Myol 6: 361-372.
  • Picard B, Lefaucheur L, Berri C (2002) Muscle fibre ontogenesis in farm animal species. Reprod Nutr Dev 42: 415-431.
  • Rehfeldt C, Fiedler I, Dietl G, Ender K (2000) Myogenesis and postnatal skeletal muscle cell growth as influenced by selection. Livest Prod Sci 66: 177-188.
  • Renand G, Picard B, Touraille C, Berge P, Lepetit J (2001) Relationship between muscle characteristics and meat quality traits of young Charolais bulls. Meat Sci 59: 49- 60.
  • Salviati G, Betto R, Betto DD (1982) Polymorphism of myofibrillar proteins rabbits skeletal muscle fibers. An electrophoretic study of single fibers. Biochem J 207: 261-270.
  • Şen U, Şirin E, Aksoy, Y., Ensoy, Ü., Ulutaş, Z., Kuran, M., 2015. The effect of maternal nutrition level during mid- gestation on post-natal muscle fiber composition and meat quality in lambs. Anim. Prod. Sci., DOI: 10.1071/AN14663.
  • Şirin, E., Aksoy Y, Şen U, Ulutaş Z, Kuran M (2011) Kuzu doğum ağırlığının semitendinosus kasındaki lif sayısı ve çeşidine etkisi. Anadolu Tar Bil Derg 26: 63-67.
  • Şirin E, Sayli Ö, Ulutaş Z, Şen U, Erdoğan SB, Aksoy Y, Akın A, Kuran M (2008) Can functional near infrared spectroscopy (fNIRS) be used for the estimation of the numbers and types of muscle fibres in sheep? Arch Tierz Dummers 51(SI): 45-46.
  • Solomon MB, Moody WG, Kemp JP, Ely DG (1981) Effect of breed, slaughter weight and sex on histological properties of ovine muscle. J Anim Sci 52: 1019-1021.
  • Stein JM, Padykula HA (1962) Histochemical classification of individual skeletal muscle fiber of rat. American J Anat 110: 103-109.
  • Suzuki A (1971) Histochemical classification of individual skeletal muscle fibers in the sheep. I. On M. semitendinosus, M. Longissimus dorsi, M. psoas major, M. latissimus dorsi and M. gastrocnemius. Jap J Zootech Sci 42: 39-54.
  • Valin C (1988) Differentiation tissues muscular. Consequences technologies pour filigree viand. Reprod Nutr Dev 28: 845-856.
  • White NA, McGavin MD, Smith JD (1978) Age-related changes in percentage of fiber types and mean fiber diameters of the ovine quadriceps muscles. Am J Vet Res 39: 1297-1302.
  • Yellin H (1969) A histochemical study of muscle spindles and their relationships to extrafusal fiber types in rat. Am Jour Anat 125: 31-42. Sorumlu Yazar Uğur ŞEN
  • ugur.sen@ahievran.edu.tr
  • Ahi Evran Üniversitesi, Ziraat Fakültesi,
  • Tarımsal Biyoteknoloji Bölümü, 40100,
  • Aşıkpaşa, Kırşehir Geliş Tarihi Kabul Tarihi : 07.10.2015

Methods for Classifying Muscle Fibers in Farm Animals

Yıl 2015, Cilt: 12 Sayı: 2, 25 - 31, 01.06.2015

Öz

In farm animals (bovine, ovine, poultry and rabbit), muscle fiber characteristics play a key role in meat quality.
The ratio of muscle fiber types in muscle mass can affect meat quality. For this reason, muscle fiber types and
proportions in muscle tissue are important for determination of meat quality. There are different classification
methods for muscle fibers. To determine the type of muscle fibers which have different morphological,
physiological and histochemical characteristics, histochemical and immunohistochemical staining techniques
are used. The most reliable and widely used method is histochemical staining technique. Basically the muscle
fibers are classified as metabolic (oxidative or glycolytic) and physical (fast or slow contraction) activities.
Succinatedehidrogenaz (SDH) or Nicotinanide adenine dinucleotide-Tetrazolium reductase (NADH-TR)
staining methods are also used to determine metabolic activities. Adenozin trifosfataz (ATPase) or
Amylophosphorylase (AP) staining methods are used to determine physiological activities. Classification based
on this method result in different muscle fiber groups such as; Red, white and intermediate; Type A, B and C; Type
I, IIA and IIB; α-Red, β-Red and α-White; slow-twitch oxidative (SO), fast-twitch oxido-glycolytic (FOG) and
fast twitch glycolytic (FG) muscle fibers. In conclusion the characteristics of muscle fiber that may have effect on
tenderness and flavor of meat are important to determine meat quality. Therefore the purpose of this review is to
explain classification methods by various techniques such as histochemical staining of muscle fibers to reveal the
classified system.

Kaynakça

  • Ashmore CR, Doerr L (1971) Comparative aspects of muscle fiber types in different spcies. Experimental. Neurol 31: 431-438.
  • Barnard RJ, Edgerton VR, Furukawa T, Peter JB (1971) Histochemical, biochemical and contractile properties of red, white and intermediate fibres. Am J Physiol 220: 410-414.
  • Broke MM, Keiser K (1970) Muscle fiber type; How many and what kind? Arc Neurol 23: 369-370.
  • Carnwath JW, Shotton DM (1987) Muscular dystrophy in the Mdx mouse: Histopathology of the soleus and extensor digitorum longus muscles. J Neurol Sci 80: 39-54.
  • Carpenter CE, Rice OD, Cockett NE, Snowder GD (1996) Histology and composition of muscles from normal and callipyge lambs. J Anim Sci 74: 388-393.
  • Cassens RG, Cooper CC (1971) Red and white muscle. Ado Food Res 19: 1-9.
  • Dubowitz V, Pearse AGE (1960) Reciprocal relationships of phosphorylase and oxidative enzymes in skeletal muscle. Nature 185: 701-710.
  • Klont RE, Brocks L, Eikelenboom G (1998) Muscle fiber type and meat quality. Meat Sci 49: 219-229.
  • Kuran M, Şen U, Şirin E, Aksoy Y, Ulutaş Z (2008a) The effect of maternal feed intake during the peri- conception period on myogenesis in fetal sheep. Arch Tierz Dummers 51(SI): 18.
  • Kuran M, Şen U, Şirin E, Aksoy Y (2008b) Level of maternal nutrition between day 30 and day 80 of pregnancy affects postnatal muscular development of offspring on day 150. In: Book of Abstracts of 59th Annual Meeting of EAAP, 14: 155.
  • Kuran M, Şen U, Şirin E, Ulutaş Z (2012) Maternal undernutrition during mid-pregnancy affects muscle cellular characteristics of lambs. In: Book of Abstracts of 63th Annual Meeting of of EAAP, 18: 284.
  • Kuran M, Ulutaş Z, Ocak N, Şirin E (2008c) Koyunlarda Ananın Beslenmesinin Kuzuların Post-Natal Kas Lifi Gelişimi ve Et Kalitesine Etkisi. TÜBİTAK-TBAG (105T277, TBAG-U/148) Proje Kesin Sonuç Raporu, Ankara.
  • Maltin CA, Delday MI, Sinclair KD, Steven J, Sneddon AA (2001) Impact of manipulations of myogenesis in utero on the performance of adult skeletal muscle. Reprod 122: 359-374.
  • Moddy WG, Cassens RG (1968) Histochemical differentiation of red and white muscle fibers. J Anim Sci 27: 961-969.
  • Nissen PM, Danielsen VO, Jorgensen PF, Oksbjerg N (2003) Increased maternal nutrition of sows no beneficial effects on muscle fiber number or postnatal growth and has no impact on the meat quality of the offspring. J Anim Sci 81: 3018-3027.
  • Nyström B (1968) Histochemistry of developing cat muscles. Acta Neurol Scand 44: 405-513.
  • Pearson AM, Young RB (1989) Muscle and Meat Biochemistry. Academic Press, London.
  • Peinado B, Latorre R, Vaquez-Auton JM, Poto A, Ramirez G, Lopez-Albors O, Moreno F, Gil F (2004) Histochemical Skeletal Muscle Fibre Types in the Sheep. Anat Histol Embryol 33: 236-243.
  • Peter JB, Jefferss RN, Edgerton VR, Gillespie CA, Stempel KE (1972) Metabolic profiles of three fibers types of skeletal muscle in guinea pigs and rabbits. Biochem 11: 2627-2635.
  • Picard B, Gagniere H, Geay Y (1996) Contractile differentiation of bovine masseter muscle. Basic Appl Myol 6: 361-372.
  • Picard B, Lefaucheur L, Berri C (2002) Muscle fibre ontogenesis in farm animal species. Reprod Nutr Dev 42: 415-431.
  • Rehfeldt C, Fiedler I, Dietl G, Ender K (2000) Myogenesis and postnatal skeletal muscle cell growth as influenced by selection. Livest Prod Sci 66: 177-188.
  • Renand G, Picard B, Touraille C, Berge P, Lepetit J (2001) Relationship between muscle characteristics and meat quality traits of young Charolais bulls. Meat Sci 59: 49- 60.
  • Salviati G, Betto R, Betto DD (1982) Polymorphism of myofibrillar proteins rabbits skeletal muscle fibers. An electrophoretic study of single fibers. Biochem J 207: 261-270.
  • Şen U, Şirin E, Aksoy, Y., Ensoy, Ü., Ulutaş, Z., Kuran, M., 2015. The effect of maternal nutrition level during mid- gestation on post-natal muscle fiber composition and meat quality in lambs. Anim. Prod. Sci., DOI: 10.1071/AN14663.
  • Şirin, E., Aksoy Y, Şen U, Ulutaş Z, Kuran M (2011) Kuzu doğum ağırlığının semitendinosus kasındaki lif sayısı ve çeşidine etkisi. Anadolu Tar Bil Derg 26: 63-67.
  • Şirin E, Sayli Ö, Ulutaş Z, Şen U, Erdoğan SB, Aksoy Y, Akın A, Kuran M (2008) Can functional near infrared spectroscopy (fNIRS) be used for the estimation of the numbers and types of muscle fibres in sheep? Arch Tierz Dummers 51(SI): 45-46.
  • Solomon MB, Moody WG, Kemp JP, Ely DG (1981) Effect of breed, slaughter weight and sex on histological properties of ovine muscle. J Anim Sci 52: 1019-1021.
  • Stein JM, Padykula HA (1962) Histochemical classification of individual skeletal muscle fiber of rat. American J Anat 110: 103-109.
  • Suzuki A (1971) Histochemical classification of individual skeletal muscle fibers in the sheep. I. On M. semitendinosus, M. Longissimus dorsi, M. psoas major, M. latissimus dorsi and M. gastrocnemius. Jap J Zootech Sci 42: 39-54.
  • Valin C (1988) Differentiation tissues muscular. Consequences technologies pour filigree viand. Reprod Nutr Dev 28: 845-856.
  • White NA, McGavin MD, Smith JD (1978) Age-related changes in percentage of fiber types and mean fiber diameters of the ovine quadriceps muscles. Am J Vet Res 39: 1297-1302.
  • Yellin H (1969) A histochemical study of muscle spindles and their relationships to extrafusal fiber types in rat. Am Jour Anat 125: 31-42. Sorumlu Yazar Uğur ŞEN
  • ugur.sen@ahievran.edu.tr
  • Ahi Evran Üniversitesi, Ziraat Fakültesi,
  • Tarımsal Biyoteknoloji Bölümü, 40100,
  • Aşıkpaşa, Kırşehir Geliş Tarihi Kabul Tarihi : 07.10.2015
Toplam 37 adet kaynakça vardır.

Ayrıntılar

Diğer ID JA32CM65EF
Bölüm Araştırma
Yazarlar

Uğur Şen Bu kişi benim

Yayımlanma Tarihi 1 Haziran 2015
Yayımlandığı Sayı Yıl 2015 Cilt: 12 Sayı: 2

Kaynak Göster

APA Şen, U. (2015). ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI. Adnan Menderes Üniversitesi Ziraat Fakültesi Dergisi, 12(2), 25-31.
AMA Şen U. ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI. ADÜ ZİRAAT DERG. Aralık 2015;12(2):25-31.
Chicago Şen, Uğur. “ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI”. Adnan Menderes Üniversitesi Ziraat Fakültesi Dergisi 12, sy. 2 (Aralık 2015): 25-31.
EndNote Şen U (01 Aralık 2015) ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI. Adnan Menderes Üniversitesi Ziraat Fakültesi Dergisi 12 2 25–31.
IEEE U. Şen, “ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI”, ADÜ ZİRAAT DERG, c. 12, sy. 2, ss. 25–31, 2015.
ISNAD Şen, Uğur. “ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI”. Adnan Menderes Üniversitesi Ziraat Fakültesi Dergisi 12/2 (Aralık 2015), 25-31.
JAMA Şen U. ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI. ADÜ ZİRAAT DERG. 2015;12:25–31.
MLA Şen, Uğur. “ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI”. Adnan Menderes Üniversitesi Ziraat Fakültesi Dergisi, c. 12, sy. 2, 2015, ss. 25-31.
Vancouver Şen U. ÇİFTLİK HAYVANLARINDA KAS LİFİ SINIFLANDIRMA METOTLARI. ADÜ ZİRAAT DERG. 2015;12(2):25-31.