Exosomes serve as a crucial mediator of epithelial-fibroblast communication during hair follicle morphogenesis in cashmere goats

被引:0
|
作者
Hai, Erhan [1 ]
Wang, ChangShou [2 ]
Wu, Zhihong [2 ]
机构
[1] Inner Mongolia Agr Univ, Coll Anim Sci, Inner Mongolia Key Lab Sheep & Goat Genet Breeding, Hohhot 010018, Inner Mongolia, Peoples R China
[2] Hetao Coll, Dept Agr, Bayannur 015000, Inner Mongolia, Peoples R China
关键词
Cashmere goats; Hair follicle morphogenesis; Exosomes; Epithelial-fibroblast communication; BIOGENESIS; MICRORNAS; SKIN;
D O I
10.1016/j.cbd.2024.101357
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The formation of dermal condensates (DCs) through fibroblasts is a pivotal event in hair follicle morphogenesis in cashmere goats, a process that intricately involves epithelial-fibroblast communication. Exosomes (Exos), as essential mediators of intercellular communication, have garnered increasing attention in recent years, yet their precise role in hair follicle morphogenesis remains largely unknown. In this study, we focused on isolating and identifying epithelial cell-derived exosomes (Epi-Exos) from Inner Mongolian cashmere goats. Our experiments demonstrated that Epi-Exos could efficiently enter fibroblasts within 12 h of co-culture. Both direct co-culture of epithelial cells with fibroblasts and co-culture with Epi-Exos alone revealed that Epi-Exos promoted fibroblast migration while inhibiting their proliferation, changes that mirror the cellular biological characteristics observed during DC formation. Furthermore, recognizing the abundance of miRNAs carried by Exos, we conducted small RNA sequencing (small RNA-seq) on Epi-Exos. This analysis identified a panel of 54 highly expressed miRNAs within the Epi-Exos, 34 of which were also found to be abundant in fetal skin tissues of Inner Mongolian cashmere goats. Gene Ontology (GO) and Kyoto Encyclopedia of Genes and Genomes (KEGG) enrichment analyses indicated that these miRNAs were significantly enriched in cellular processes and signaling pathways related to hair follicle morphogenesis. Notably, our findings offer new perspectives on the role of miRNAs in EpiExos regulating DC formation and hair follicle morphogenesis in cashmere goats, with significant implications for understanding hair follicle development mechanisms and potential clinical or production benefits, including improved cashmere quality and yield through targeted exosome-mediated signaling manipulation.
引用
收藏
页数:9
相关论文
共 12 条
  • [1] Screening of microRNA and mRNA related to secondary hair follicle morphogenesis and development and functional analysis in cashmere goats
    Shang, Fangzheng
    Wang, Yu
    Ma, Rong
    Rong, Youjun
    Wang, Min
    Wu, Zhihong
    Hai, Erhan
    Pan, Jianfeng
    Liang, Lili
    Wang, Zhiying
    Wang, Ruijun
    Su, Rui
    Liu, Zhihong
    Zhao, Yanhong
    Wang, Zhixin
    Li, Jinquan
    Zhang, Yanjun
    FUNCTIONAL & INTEGRATIVE GENOMICS, 2022, 22 (05) : 835 - 848
  • [2] Screening of microRNA and mRNA related to secondary hair follicle morphogenesis and development and functional analysis in cashmere goats
    Fangzheng Shang
    Yu Wang
    Rong Ma
    Youjun Rong
    Min Wang
    Zhihong Wu
    Erhan Hai
    Jianfeng Pan
    Lili Liang
    Zhiying Wang
    Ruijun Wang
    Rui Su
    Zhihong Liu
    Yanhong Zhao
    Zhixin Wang
    Jinquan Li
    Yanjun Zhang
    Functional & Integrative Genomics, 2022, 22 : 835 - 848
  • [3] Chi-miR-370-3p regulates hair follicle morphogenesis of Inner Mongolian cashmere goats
    Hai, Erhan
    Han, Wenjing
    Wu, Zhihong
    Ma, Rong
    Shang, Fangzheng
    Wang, Min
    Liang, Lili
    Rong, Youjun
    Pan, Jianfeng
    Wang, Zhiying
    Wang, Ruijun
    Su, Rui
    Zhao, Yanhong
    Liu, Zhihong
    Wang, Zhixin
    Li, Jinquan
    Zhang, Yanjun
    G3-GENES GENOMES GENETICS, 2021, 11 (05):
  • [4] Comparative Transcriptome Analysis of Fetal Skin Reveals Key Genes Related to Hair Follicle Morphogenesis in Cashmere Goats
    Gao, Ye
    Wang, Xiaolong
    Yan, Hailong
    Zeng, Jie
    Ma, Sen
    Niu, Yiyuan
    Zhou, Guangxian
    Jiang, Yu
    Chen, Yulin
    PLOS ONE, 2016, 11 (03):
  • [5] Mesenchymal-epithelial interactions during hair follicle morphogenesis and cycling
    Sennett, Rachel
    Rendl, Michael
    SEMINARS IN CELL & DEVELOPMENTAL BIOLOGY, 2012, 23 (08) : 917 - 927
  • [6] Mitochondrial Function in Murine Skin Epithelium Is Crucial for Hair Follicle Morphogenesis and Epithelial-Mesenchymal Interactions
    Kloepper, Jennifer E.
    Baris, Olivier R.
    Reuter, Karen
    Kobayashi, Ken
    Weiland, Daniela
    Vidali, Silvia
    Tobin, Desmond J.
    Niemann, Catherin
    Wiesner, Rudolf J.
    Paus, Ralf
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2015, 135 (03) : 679 - 689
  • [7] Effect of Fasted Live-Weight Gain during the Cashmere Non-Growing Period on Cashmere Production Performance and Secondary Hair Follicle Activity of Cashmere Goats
    Li, Junxia
    Xing, Wenhui
    Gegen, Tana
    Zhang, Chunxiang
    Ren, Youshe
    Yang, Chunhe
    ANIMALS, 2023, 13 (22):
  • [8] Expression and localization of the vascular endothelial growth factor and changes of microvessel density during hair follicle development of Liaoning cashmere goats
    Zhang, Q. L.
    Li, J. P.
    Li, Y. M.
    Chang, Q.
    Chen, Y.
    Jiang, H. Z.
    Zhao, Z. H.
    Guo, D.
    GENETICS AND MOLECULAR RESEARCH, 2013, 12 (04): : 6424 - 6432
  • [9] Molecular characterization and comparison of gene expression between epithelial placodes of the mammary gland and hair follicle during skin morphogenesis
    Sharov, A. A.
    Sharova, T. Y.
    Atoyan, R.
    Mardaryev, A. N.
    Sargsyan, A.
    Botchkarev, V. A.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2006, 126 : 101 - 101
  • [10] Effect of Fibroblast Growth Factor 10 and an Interacting Non-Coding RNA on Secondary Hair Follicle Dermal Papilla Cells in Cashmere Goats' Follicle Development Assessed by Whole-Transcriptome Sequencing Technology
    Gao, Yuan
    Song, Weiguo
    Hao, Fei
    Duo, Lei
    Zhe, Xiaoshu
    Gao, Chunyan
    Guo, Xudong
    Liu, Dongjun
    ANIMALS, 2023, 13 (13):