Yu Hengwei, Raza Sayed Haidar Abbas, Pan Yueting, Cheng Gong, Mei Chugang, Zan Linsen
College of Animal Science and Technology, Northwest A&F University, Xianyang 712100, China.
Guangdong Provincial Key Laboratory of Food Quality and Safety/Nation-Local Joint Engineering Research Center for Machining and Safety of Livestock and Poultry Products, South China Agricultural University, Guangzhou 510642, China.
Animals (Basel). 2023 Mar 15;13(6):1060. doi: 10.3390/ani13061060.
A crucial goal of reducing backfat thickness (BFT) is to indirectly improve feed conversion efficiency. This phenotype has been reported in certain papers; however, the molecular mechanism has yet to be fully revealed. Two extreme BFT groups, consisting of four Qinchuan cattle, were chosen for this study. We performed metabolite and transcriptome analyses of blood from cattle with a high BFT (H-BFT with average = 1.19) and from those with a low BFT (L-BFT with average = 0.39). In total, 1106 differentially expressed genes (DEGs) and 86 differentially expressed metabolites (DEMs) were identified in the extreme trait. In addition, serum ceramide was strongly correlated with BFT and could be used as a potential biomarker. Moreover, the most notable finding was that the functional genes ( and and metabolite (sphingosine 1-phosphate (S1P)) were filtered out and significantly enriched in the processes related to the sphingolipid metabolism. This investigation contributed to a better understanding of the subcutaneous fat depots in cattle. In general, our results indicated that the sphingolipid metabolism, involving major metabolites (serum ceramide and S1P) and key genes ( and ), could regulate BFT through blood circulation.
降低背膘厚度(BFT)的一个关键目标是间接提高饲料转化效率。某些论文中已报道了这种表型;然而,其分子机制尚未完全揭示。本研究选取了由四头秦川牛组成的两个极端BFT组。我们对高BFT(平均BFT = 1.19)和低BFT(平均BFT = 0.39)牛的血液进行了代谢物和转录组分析。在极端性状中总共鉴定出1106个差异表达基因(DEG)和86种差异表达代谢物(DEM)。此外,血清神经酰胺与BFT密切相关,可作为潜在的生物标志物。而且,最显著的发现是筛选出了功能基因( 和 )以及代谢物(鞘氨醇1-磷酸(S1P)),它们在与鞘脂代谢相关的过程中显著富集。这项研究有助于更好地理解牛的皮下脂肪库。总体而言,我们的结果表明,涉及主要代谢物(血清神经酰胺和S1P)和关键基因( 和 )的鞘脂代谢可通过血液循环调节BFT。