Jin XiaoDong, Liu WenYe, Miao Jing, Tai ZhiPeng, Li LingYa, Guan PengPeng, Liu Jing-Xia
College of Fisheries, Key Laboratory of Freshwater Animal Breeding, Ministry of Agriculture, Huazhong Agricultural University, Wuhan, China.
College of Informatics, Agricultural Bioinformatics Key Laboratory of Hubei Province, Hubei Engineering Technology Research Center of Agricultural Big Data, Huazhong Agricultural University, Wuhan, China.
FASEB J. 2021 Jul;35(7):e21686. doi: 10.1096/fj.202100183R.
Unbalanced copper (Cu ) homeostasis is associated with the developmental defects of vertebrate myogenesis, but the underlying molecular mechanisms remain elusive. In this study, it was found that Cu stressed zebrafish embryos and larvae showed reduced locomotor speed as well as loose and decreased myofibrils in skeletal muscle, coupled with the downregulated expression of muscle fiber markers mylpfa and smyhc1l and the irregular arrangement of myofibril and sarcomere. Meanwhile, the Cu stressed zebrafish embryos and larvae also showed significant reduction in the expression of H3K4 methyltransferase smyd1b transcripts and H3K4me3 protein as well as in the binding enrichment of H3K4me3 on gene mylpfa promoter in skeletal muscle cells, suggesting that smyd1b-H3K4me3 axis mediates the Cu -induced myofibrils specification defects. Additionally, whole genome DNA methylation sequencing unveiled that the gene smyd5 exhibited significant promoter hyper-methylation and increased expression in Cu stressed embryos, and the ectopic expression of smyd5 in zebrafish embryos also induced the myofibrils specification defects as those observed in Cu stressed embryos. Moreover, Cu was shown to suppress myofibrils specification and smyd1b promoter transcriptional activity directly independent of the integral function of copper transporter cox17 and atp7b. All these data may shed light on the linkage of unbalanced copper homeostasis with specific gene promoter methylation and epigenetic histone protein modification as well as the resultant signaling transduction and the myofibrillogenesis defects.
铜(Cu)稳态失衡与脊椎动物肌生成的发育缺陷有关,但其潜在的分子机制仍不清楚。在本研究中,发现铜胁迫的斑马鱼胚胎和幼体表现出运动速度降低,骨骼肌中肌原纤维松散且数量减少,同时肌肉纤维标记物mylpfa和smyhc1l的表达下调,肌原纤维和肌节排列不规则。同时,铜胁迫的斑马鱼胚胎和幼体还表现出H3K4甲基转移酶smyd1b转录本和H3K4me3蛋白的表达显著降低,以及骨骼肌细胞中H3K4me3在基因mylpfa启动子上的结合富集减少,这表明smyd1b - H3K4me3轴介导了铜诱导的肌原纤维规格缺陷。此外,全基因组DNA甲基化测序显示,基因smyd5在铜胁迫胚胎中表现出显著的启动子高甲基化和表达增加,并且在斑马鱼胚胎中异位表达smyd5也诱导了与铜胁迫胚胎中观察到的类似的肌原纤维规格缺陷。此外,已表明铜直接抑制肌原纤维规格和smyd1b启动子转录活性,而与铜转运蛋白cox17和atp7b的整体功能无关。所有这些数据可能有助于揭示铜稳态失衡与特定基因启动子甲基化和表观遗传组蛋白修饰之间的联系,以及由此产生的信号转导和肌原纤维生成缺陷。