ZOU Feng-Yu, HAN Ya-Kang, LUO Zhi, ZHAO Tao, XU Jie-Jie, TAN Xiao-Ying. REPLACEMENT OF DIETARY FISH MEAL BY RAPESEED MEAL AND COTTONSEED MEAL ON MUSCLE TEXTURE, HEALTH AND EXPRESSION OF MUSCLE-RELATED GENES IN YELLOW CATFISH (PELTEOBAGRUS FULVIDRACO)[J]. ACTA HYDROBIOLOGICA SINICA, 2023, 47(2): 227-234. DOI: 10.7541/2023.2022.0231
Citation: ZOU Feng-Yu, HAN Ya-Kang, LUO Zhi, ZHAO Tao, XU Jie-Jie, TAN Xiao-Ying. REPLACEMENT OF DIETARY FISH MEAL BY RAPESEED MEAL AND COTTONSEED MEAL ON MUSCLE TEXTURE, HEALTH AND EXPRESSION OF MUSCLE-RELATED GENES IN YELLOW CATFISH (PELTEOBAGRUS FULVIDRACO)[J]. ACTA HYDROBIOLOGICA SINICA, 2023, 47(2): 227-234. DOI: 10.7541/2023.2022.0231

REPLACEMENT OF DIETARY FISH MEAL BY RAPESEED MEAL AND COTTONSEED MEAL ON MUSCLE TEXTURE, HEALTH AND EXPRESSION OF MUSCLE-RELATED GENES IN YELLOW CATFISH (PELTEOBAGRUS FULVIDRACO)

Funds: Supported by the National Key R&D Program of China (grant No. 2018YFD0900400)
  • Received Date: March 24, 2022
  • Rev Recd Date: July 20, 2022
  • Available Online: August 21, 2022
  • Published Date: February 14, 2023
  • This article aims to study the effect of rapeseed meal and cottonseed meal on the muscle quality and the expression of genes related to muscle fiber development after replacing part of the fish meal in the diets of yellow catfish (Pelteobagrus fulvidraco). Five groups of equal nitrogen and equal energy diets were designed in the experiment. The group containing 25% fish meal was used as the control diet (FM), and rapeseed meal and cotton meal were mixed 3﹕2 to replace 10%, 20%, 30% and 40% fish meal, and then set up four test groups as RM10, RM20, RM30 and RM40, respectively. The juvenile yellow catfish with an initial body weight of (2.38±0.02) g were fed with the above five diets for 8 weeks. The experiment showed that, compared with the fishmeal group, as the replacement level exceeded 10%, the crude protein and crude fat in the muscle of yellow catfish decreased significantly when the replacement level increased, but there was no significant difference in moisture and ash. In addition, the content of hydroxyproline in muscle also showed a downward trend. Among the muscle fibers of yellow catfish, the number with a diameter of ≥50 μm decreased when the replacement level reached 10%, while the number of fibers with a diameter of ≤20 μm showed an upward trend. At the same time, the replacement of plant protein sources will also have a certain impact on the muscle texture of yellow catfish. In addition, the mRNA levels of muscle fiber development-related genes myod, myog, and mrf4 gradually increased as the replacement level reached 10%, while the gene expression of myf5 and mstn did not show significance between the groups. The expression of TOR and S6K1 decreased as the replacement level increased, and the expression of 4E-BP1 increased as the replacement level increased. Therefore, this study show that use of the rapeseed meal and cottonseed meal to replace more than 10% of the fish meal in the diet of yellow catfish juveniles will damage the muscle growth and muscle quality.
  • [1]
    Huang Y J, Zhang N N, Fan W J, et al. Soy-bean and cottonseed meals are good candidates for fishmeal replace-ment in the diet of juvenile Macrobrachium nipponense [J]. Aquaculture International, 2018, 26(1): 309-324. doi: 10.1007/s10499-017-0215-1
    [2]
    Zheng Q, Wen X, Han C, et al. Effect of replacing soybean meal with cottonseed meal on growth, hematology, antioxi-dant enzymes activity and expression for juvenile grass carp, Ctenopharyngodon idellus [J]. Fish Physiology and Biochemistry, 2012, 38(4): 1059-1069. doi: 10.1007/s10695-011-9590-0
    [3]
    Lee K J, Rinchard J, Dabrowski K, et al. Long-term effects of dietary cottonseed meal on growth and reproductive performance of rainbow trout: three-year study [J]. Animal Feed Science and Technology, 2006, 126(1/2): 93-106.
    [4]
    Bian F, Zhou H, He G, et al. Effects of replacing fishmeal with different cottonseed meals on growth, feed utilization, haematological indexes, intestinal and liver morphology of juvenile turbot (Scophthalmus maximus L.) [J]. Aquaculture Nutrition, 2017, 23(6): 1429-1439. doi: 10.1111/anu.12518
    [5]
    Cheng Z J, Hardy R W. Apparent digestibility coefficients and nutritional value of cottonseed meal for rainbow trout (Oncorhynchus mykiss) [J]. Aquaculture, 2002, 212(1-4): 361-372. doi: 10.1016/S0044-8486(02)00260-0
    [6]
    Hu Y, Huang Y, Feng F, et al. Effect of soybean meal replacement by cottonseed meal on growth, feed utilization and some blood physiological/biochemical indices of juvenile black carp, Mylopharyngodon piceus [J]. Aquaculture Research, 2015, 46(10): 2490-2500. doi: 10.1111/are.12409
    [7]
    Satoh, Higgs, Dosanjh, et al. Effect of extrusion processing on the nutritive value of canola meal for Chinook salmon (Oncorhynchus tshawytscha) in seawater [J]. Aquaculture Nutrition, 1998, 4(2): 115-122. doi: 10.1046/j.1365-2095.1998.00056.x
    [8]
    Johnston I A, Lee H T, Macqueen D J, et al. Embryonic temperature affects muscle fibre recruitment in adult zebrafish: genome-wide changes in gene and microRNA expression associated with the transition from hyperplastic to hypertrophic growth phenotypes [J]. The Journal of Experimental Biology, 2009, 212(Pt 12): 1781-1793.
    [9]
    Duan C, Ren H, Gao S. Insulin-like growth factors (IGFs), IGF receptors, and IGF-binding proteins: roles in skeletal muscle growth and differentiation [J]. General and Comparative Endocrinology, 2010, 167(3): 344-351. doi: 10.1016/j.ygcen.2010.04.009
    [10]
    Mohamed R A, Elbialy Z I, Abd El Latif A S, et al. Dietary clenbuterol modifies the expression of genes involved in the regulation of lipid metabolism and growth in the liver, skeletal muscle, and adipose tissue of Nile tilapia (Oreochromis niloticus) [J]. Aquaculture Reports, 2020(17): 100319. doi: 10.1016/j.aqrep.2020.100319
    [11]
    Jobling B. National research council (NRC): nutrient requirements of fish and shrimp [J]. Aquaculture International, 2012, 20(3): 601-602.
    [12]
    Roux P P, Topisirovic I. Regulation of mRNA translation by signaling pathways [J]. Cold SpringHarbor Perspectives in Biology, 2012, 4(11): a012252.
    [13]
    Jiang W D, Chen L, Liu Y, et al. Impact and consequences of dietary riboflavin deficiency treatment on flesh quality loss in on-growing grass carp (Ctenopharyngodon idella) [J]. Food& Function, 2019, 10(6): 3396-3409.
    [14]
    Wu C, Ye J, Gao J E, et al. The effects of dietary carbohydrate on the growth, antioxidant capacities, innate immune responses and pathogen resistance of juvenile black carp Mylopharyngodon piceus [J]. Fish Shellfish & Immunology, 2016(49): 132-142.
    [15]
    Zhao Y, Li J, Yin L, et al. Effects of dietary glutamate supplementation on flesh quality, antioxidant defense and gene expression related to lipid metabolism and myogenic regulation in Jian carp (Cyprinus carpio var. Jian) [J]. Aquaculture, 2019(502): 212-222. doi: 10.1016/j.aquaculture.2018.12.050
    [16]
    Hu Y, Hu Y, Wu T, et al. Effects of high dietary levels of cottonseed meal and rapeseed meal on growth performance, muscle texture, and expression of muscle-related genes in grass carp [J]. North American Journal of Aquaculture, 2019, 81(3): 235-241. doi: 10.1002/naaq.10091
    [17]
    童方乐, 唐涛, 魏泽宏, 等. 饲料中添加苜蓿草粉对草鱼生长、肌肉品质和血清抗氧化指标的影响 [J]. 水生生物学报, 2022, 46(4): 488-497. doi: 10.7541/2021.2021.047

    Tong F L, Tang T, Wei Z H, et al. Effects of dietary alfalfa meal on the grouth performance, muscle quality and serum antioxidant indexes of grass carp [J]. Acta Hydrobiologica Sinica, 2022, 46(4): 488-497. doi: 10.7541/2021.2021.047
    [18]
    Xu X, Yang H, Zhang C, et al. Effects of replacing fishmeal with cottonseed protein concentrate on growth performance, flesh quality and gossypol deposition of largemouth bass (Micropterus salmoides) [J]. Aquaculture, 2022, 548: 737551. doi: 10.1016/j.aquaculture.2021.737551
    [19]
    Periago M J, Ayala M D, López-Albors O, et al. Muscle cellularity and flesh quality of wild and farmed sea bass, Dicentrarchus labrax L [J]. Aquaculture, 2005, 249(1-4): 175-188.
    [20]
    Bourne M C. Texture profile analysis [J]. Food technology, 1978, 32(7): 62-66.
    [21]
    Zhao T, Wu K, Hogstrand C, et al. Lipophagy mediated carbohydrate-induced changes of lipid metabolism via oxidative stress, endoplasmic reticulum (ER) stress and ChREBP/PPARγ pathways [J]. Cellular and Molecular Life Sciences, 2020, 77(10): 1987-2003. doi: 10.1007/s00018-019-03263-6
    [22]
    Johnston I A, Li X, Vieira V L A, Nickell D, Dingwall A, Alderson R, et al. Muscle and flesh quality traits in wild and farmed Atlantic salmon [J]. Aquaculture, 2006, 256(1-4): 323-336. doi: 10.1016/j.aquaculture.2006.02.048
    [23]
    Ayala M D, Abdel I, Santaella M, et al. Muscle tissue structural changes and texture development in Sea Bream, Sparus aurata L., during post‐mortem storage. [J]. LWT-Food Science and Technology, 2010, 43(3): 465-475. doi: 10.1016/j.lwt.2009.08.023
    [24]
    Michelato M, de Oliveira Vidal L V, Xavier T O, et al. Dietary lysine requirement to enhance muscle development and fillet yield of finishing Nile tilapia [J]. Aquaculture, 2016(457): 124-130. doi: 10.1016/j.aquaculture.2016.02.022
    [25]
    Valente LMP, Cornet J, Donnay-Moreno C, et al. Quality differences of gilthead sea bream from distinct production systems in southern Europe: intensive, integrated, semi-intensive or extensive systems [J]. Food Control, 2011, 22(5): 708-717. doi: 10.1016/j.foodcont.2010.11.001
    [26]
    Abouel Azm F R, Kong F, Tan Q, et al. Effects of replacement of dietary rapeseed meal by distiller’s dried grains with solubles (DDGS) on growth performance, muscle texture, health and expression of muscle-related genes in grass carp (Ctenopharyngodon idellus) [J]. Aquaculture, 2021(533): 736169. doi: 10.1016/j.aquaculture.2020.736169
    [27]
    Alami-Durante H, Bazin D, Cluzeaud M, et al. Effect of dietary methionine level on muscle growth mechanisms in juvenile rainbow trout (Oncorhynchus mykiss) [J]. Aquaculture, 2018(483): 273-285. doi: 10.1016/j.aquaculture.2017.10.030
    [28]
    Zammit PS. Function of the myogenic regulatory factors Myf5, MyoD, Myogenin and MRF4 in skeletal muscle, satellite cells and regenerative myogenesis [J]. Seminars in Cell & Developmental Biology, 2017(72): 19-32.
    [29]
    Zhou Q L, Habte-Tsion H M, Ge X, et al. Graded replacing fishmeal with canola meal in diets affects growth and target of rapamycin pathway gene expression of juvenile blunt snout bream, Megalobrama amblycephala [J]. Aquaculture Nutrition, 2018, 24(1): 300-309. doi: 10.1111/anu.12560
    [30]
    Dorval J, Hontela A. Role of glutathione redox cycle and catalase in defense against oxidative stress induced by endosulfan in adrenocortical cells of rainbow trout (Oncorhynchus mykiss) [J]. Toxicology and Applied Pharmacology, 2003, 192(2): 191-200. doi: 10.1016/S0041-008X(03)00281-3
    [31]
    Bransden M P, Carter C G, Nowak B F. Effects of dietary protein source on growth, immune function, blood chemistry and disease resistance of Atlantic salmon (Salmo salar L.) parr [J]. Animal Science, 2001, 73(1): 105-113. doi: 10.1017/S1357729800058100
  • Recommendations
    Fermented soybean meal and soybean meal replace partial fish meal on the growth performance, hematology, liver antioxidant activities and immune related genes mrna expression of juvenile coho salmon
    XU Li-Xiao et al., ACTA HYDROBIOLOGICA SINICA, 2023
    Total replacement of fish oil by blended vegetable oil on growth performance and lipid metabolism in different strains of gibel carp (carassius gibelio)
    LI Hong-Yan et al., ACTA HYDROBIOLOGICA SINICA, 2024
    Vitamin d3 on polarization phenotype of head kidney macrophages in pelteobagrus fulvidraco
    WANG Meng et al., ACTA HYDROBIOLOGICA SINICA, 2023
    Fermented soybean meal instead of fish meal on growth, lipid metabolism, serum non-specific immunity and intestinal flora of juvenile largemouth bass
    HUANG He et al., ACTA HYDROBIOLOGICA SINICA, 2022
    Effects of replacing fish meal with black soldier fly larvae meal on serum immune antioxidant indices, intestinal function and disease resistance of hybrid snakehead (channa maculata ♀×channa argus ♂)
    XIE Yutong et al., JOURNAL OF FISHERIES OF CHINA, 2024
    Effects of replacing fish meal with domestic poultry by-product meal on growth, liver health and intestinal barrier of micropterus salmoides
    WU Jiaxuan et al., JOURNAL OF FISHERIES OF CHINA, 2023
    Cloning of adsl gene in larimichthys crocea and analysis of its correlation between expression level and inosine content
    HE Liangyin et al., SOUTH CHINA FISHERIES SCIENCE, 2024
    The role of the light source in antimicrobial photodynamic therapy
    Piksa, Marta et al., CHEMICAL SOCIETY REVIEWS, 2023
    Metabolomics study reveals don-induced intestinal toxicity in adult zebrafish through disruption of amino acid metabolism and sphingolipid signaling pathway
    AQUATIC TOXICOLOGY
    卡尔曼滤波在海洋浮标数据预处理中的应用
    张新文 等, 广东海洋大学学报, 2024
    Powered by

Catalog

    Article views (1170) PDF downloads (75) Cited by()
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return