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奶山羊非泌乳期乳腺的转录组分析揭示了乳腺细胞重塑的分子遗传机制。

Transcriptome profiling of the nonlactating mammary glands of dairy goats reveals the molecular genetic mechanism of mammary cell remodeling.

作者信息

Xuan Rong, Chao Tianle, Zhao Xiaodong, Wang Aili, Chu Yunpeng, Li Qing, Zhao Yilin, Ji Zhibin, Wang Jianmin

机构信息

College of Animal Science and Veterinary Medicine, Shandong Agricultural University, 271018, Tai'an, Shandong Province, P.R. China.

College of Animal Science and Veterinary Medicine, Shandong Agricultural University, 271018, Tai'an, Shandong Province, P.R. China.

出版信息

J Dairy Sci. 2022 Jun;105(6):5238-5260. doi: 10.3168/jds.2021-21039. Epub 2022 Mar 26.

Abstract

The mammary gland redevelops to the prepregnancy state during involution, which shows the mammary cells have the characteristics of remodeling. The rapidity and degree of mammary gland involution vary across species (e.g., between model organism mice and dairy livestock). However, the molecular genetic mechanism of involution and remodeling of goat mammary gland has not yet been clarified. This work investigated the structural changes and transcriptome characteristics of the mammary gland tissue of nonlactating dairy goats during the late lactation (LL), the dry period (DP), and late gestation (LG). Terminal deoxynucleotidyl transferase dUTP nick-end labeling (TUNEL) staining revealed significant changes in the structure of the nonlactating goat mammary gland, and obvious cell apoptosis occurred at LL and DP. Sequencing identified 1,381 genes that are differentially expressed in mammary gland tissue at the 3 developmental stages. Genes related to cell growth, apoptosis, immunity, nutrient transport, synthesis, and metabolism exhibited adaptive transcriptional changes to meet the needs of a new set of mammary gland lactation functions. The significant enrichment of Gene Ontology terms such as humoral immune response, complement activation, and neutrophil-mediated immunity indicates that the innate immune system plays an important role in maintaining the health of degenerative mammary glands and eliminating apoptotic cells. The peroxisome proliferator-activated receptor signaling pathway plays an important regulatory role in lipid metabolism, especially the adaptive changes in expression of genes encoded lipid transport and enzymes, which promote the formation of milk fat during the lactation. The mammary gland development gene module revealed that pregnancy hormone receptors, cell growth factors and their receptors, and genes encoding insulin-like growth factor binding proteins regulate the physiological process of mammary gland involution through adaptive transcriptional changes. Interestingly, ERBB4 was identified as the hub gene of the network that regulates mammary gland growth and development. Overexpression of ERBB4 in mammary epithelial cells cultured in vitro can reduce cell cycle arrest in G/S phase and apoptosis by regulating the PI3K/Akt signaling pathway and promote the proliferation of mammary epithelial cells. The gene ERBB4 also affects the expression of genes that initiate mammary gland involution and promote mammary gland remodeling. These findings contribute to an in-depth understanding of the molecular mechanisms involved in mammary gland involution and remodeling.

摘要

在乳腺退化过程中,乳腺会重新发育到妊娠前状态,这表明乳腺细胞具有重塑的特性。乳腺退化的速度和程度因物种而异(例如,在模式生物小鼠和奶牛之间)。然而,山羊乳腺退化和重塑的分子遗传机制尚未阐明。本研究调查了非泌乳期奶山羊乳腺组织在泌乳后期(LL)、干奶期(DP)和妊娠后期(LG)的结构变化和转录组特征。末端脱氧核苷酸转移酶dUTP缺口末端标记(TUNEL)染色显示非泌乳山羊乳腺结构发生显著变化,在LL和DP阶段出现明显的细胞凋亡。测序鉴定出1381个在3个发育阶段的乳腺组织中差异表达的基因。与细胞生长、凋亡、免疫、营养物质运输、合成和代谢相关的基因表现出适应性转录变化,以满足乳腺新的泌乳功能需求。体液免疫反应、补体激活和中性粒细胞介导的免疫等基因本体术语的显著富集表明,先天免疫系统在维持退化乳腺的健康和清除凋亡细胞中起重要作用。过氧化物酶体增殖物激活受体信号通路在脂质代谢中起重要调节作用,特别是脂质转运和酶编码基因表达的适应性变化,在泌乳期间促进乳脂肪的形成。乳腺发育基因模块显示,妊娠激素受体、细胞生长因子及其受体以及编码胰岛素样生长因子结合蛋白的基因通过适应性转录变化调节乳腺退化的生理过程。有趣的是,ERBB4被鉴定为调节乳腺生长和发育网络的枢纽基因。在体外培养的乳腺上皮细胞中过表达ERBB4可通过调节PI3K/Akt信号通路减少G/S期细胞周期阻滞和细胞凋亡,并促进乳腺上皮细胞增殖。基因ERBB4还影响启动乳腺退化和促进乳腺重塑的基因表达。这些发现有助于深入了解乳腺退化和重塑所涉及的分子机制。

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