475
Views
8
CrossRef citations to date
0
Altmetric
Biochemistry & Molecular Biology

Expression profile analysis of microRNAs during hair follicle development in the sheep foetus

, , , , , & show all
Pages 1045-1061 | Received 20 Oct 2018, Accepted 05 Feb 2019, Published online: 02 Apr 2019

References

  • Paus R, Müller-Röver S, Van DVC, et al. A comprehensive guide for the recognition and classification of distinct stages of hair follicle morphogenesis. J Invest Dermatol. 1999;113:523–532.
  • Sperling LC. Hair anatomy for the clinician. J Am Acad Dermatol. 1991;25:1–17.
  • Stenn KS, Paus R. Controls of hair follicle cycling. Physiol Rev. 2001;81:449.
  • Lyne AG. The development of the epidermis and hair canals in the merino sheep foetus. Aust J Biol Sci. 1957;10:390–397.
  • Lyne AG, Hollis DE. The structure and development of the epidermis in sheep fetuses. J Ultrastruct Res. 1972;38:444–458.
  • Mccloghry CE, Hollis DE, Raphael KA, et al. The effects of exogenous melatonin and prolactin on wool follicle development in ovine foetal skin grafts. J Agric Sci. 1993;121:247–253.
  • Parry AL, Nixon AJ, Craven AJ, et al. The microanatomy, cell replication, and keratin gene expression of hair follicles during a photoperiod-lnduced growth cycle in sheep. Acta Anat. 1995;154:283–299.
  • Gao Y, Wang X, Yan H, et al. Comparative transcriptome analysis of fetal skin reveals key genes related to hair follicle morphogenesis in cashmere goats. PLoS One. 2016;11:e0151118.
  • Yu-Yu WU, Yue YJ, Guo TT, et al. Study on fetal skin hair follicle development and morphology of China super-fine merino (gansu type). Sci Agric Sin. 2013;46:1923–1931.
  • Shimomura YC, Hristiano AM. Biology and genetics of hair. Ann Rev Genomics Hum Genet. 2010;11:109–132.
  • Cadau S, Rosignoli C, Rhetore S, et al. Early stages of hair follicle development: a step by step microarray identity. Eur J Dermatol. 2013;23:4–10.
  • Ohyama M, Zheng Y, Paus R, et al. The mesenchymal component of hair follicle neogenesis: background, methods and molecular characterization. Exp Dermatol. 2010;19:89–99.
  • Sennett R, Rendl M. Mesenchymal–epithelial interactions during hair follicle morphogenesis and cycling. Semin Cell Dev Biol. 2012;23:917–927.
  • Ghelani HS, Rachchh MA, Gokani RH. MicroRNAs as newer therapeutic targets: A big hope from a tiny player. J Pharmacol Pharmacotherapeutics. 2012;3:217–227.
  • Wenguang Z, Jianghong W, Jinquan LY, et al. A subset of skin-expressed microRNAs with possible roles in goat and sheep hair growth based on expression profiling of mammalian microRNAs. OMICS. 2007;11:385.
  • Alnuaimi Y, Baier G, Watson RE, et al. The cycling hair follicle as an ideal systems biology research model. Exp Dermatol. 2010;19:707.
  • Yue Y, Guo T, Chao Y, et al. Integrated analysis of the roles of long noncoding RNA and coding RNA expression in sheep (Ovis aries) skin during initiation of secondary hair follicle. PLoS One. 2016;11:e0156890.
  • Liu Z, Xiao H, Li H, et al. Identification of conserved and novel microRNAs in cashmere goat skin by deep sequencing. PLoS One. 2012;7:e50001.
  • Langmead B, Trapnell C, Pop M, et al. Ultrafast and memory-efficient alignment of short DNA sequences to the human genome. Genome Biol. 2009;10:R25.
  • Vêncio RZN, Brentani H, Pereira CAB. Using credibility intervals instead of hypothesis tests in SAGE analysis. Bioinformatics. 2003;19:2461–2464.
  • Robinson MD, Mccarthy DJ, Smyth GK. edgeR: a bioconductor package for differential expression analysis of digital gene expression data. Bioinformatics. 2010;26:139–140.
  • Lu T, Cui L, Zhou Y, et al. Transcriptome-wide investigation of circular RNAs in rice. Rna. 2015;21:2076–2087.
  • Galbraith H. Fundamental hair follicle biology and fine fibre production in animals. Animal. 2010;4:1490–1509.
  • Rogers GE. Biology of the wool follicle: an excursion into a unique tissue interaction system waiting to be re-discovered. Exp Dermatol. 2010;15:931–949.
  • Zhang L, Nie Q, Su Y, et al. MicroRNA profile analysis on duck feather follicle and skin with high-throughput sequencing technology. Gene. 2013;519:77–81.
  • Li J, Qu H, Jiang H, et al. Transcriptome-wide comparative analysis of microRNA profiles in the telogen skins of liaoning cashmere goats (Capra hircus) and fine-wool sheep (Ovis aries) by Solexa deep sequencing. DNA Cell Biol. 2016;35:696.
  • Andl T, Murchison E, Liu F, et al. The miRNA-processing enzyme dicer is essential for the morphogenesis and maintenance of hair follicles. Curr Biol. 2006;16:1041–1049.
  • Yi R, Fuchs E. MicroRNA-mediated control in the skin. Cell Death Differ. 2010;17:229–235.
  • Yi R, Poy MN, Stoffel M, et al. A skin microRNA promotes differentiation by repressing ‘stemness’. Nature. 2008;452:225–229.
  • Yi R, O’carroll D, Pasolli HA, et al. Morphogenesis in skin is governed by discrete sets of differentially expressed microRNAs. Nat Genet. 2006;38:356–362.
  • Mardaryev AN, Ahmed MI, Vlahov NV, et al. Micro-RNA-31 controls hair cycle-associated changes in gene expression programs of the skin and hair follicle. FASEB J. 2010;24:3869–3881.
  • Bostjancic E, Glavac D. Importance of microRNAs in skin morphogenesis and diseases. Acta Dermatovenerol Alp Pannonica Adriat. 2008;17:95.
  • Duverger O, Morasso MI. To grow or not to grow: hair morphogenesis and human genetic hair disorders. Semin Cell Dev Biol. 2014;25–26:22–33.
  • Rippa A, Terskikh V, Nesterova A, et al. Hair follicle morphogenesis and epidermal homeostasis in we/we wal/wal mice with postnatal alopecia. Histochem Cell Biol. 2015;143:481–496.
  • Liu G, Liu R, Li Q, et al. Identification of microRNAs in wool follicles during anagen, catagen, and telogen phases in Tibetan sheep. Plos One. 2013;8:e77801.
  • Kelly PA, Ali S, Rozakis M, et al. The growth hormone/prolactin receptor family - recent progress in hormone research. Recent Prog Horm Res. 1991;48:123.
  • Cassy S, Charlier M, Bélair L, et al. Developmental expression and localization of the prolactin receptor (PRL-R) gene in ewe mammary gland during pregnancy and lactation: estimation of the ratio of the two forms of PRL-R messenger ribonucleic acid. Biol Reprod. 1998;58:1290–1296.
  • Nixon AJ, Ford CA, Wildermoth JE, et al. Regulation of prolactin receptor expression in ovine skin in relation to circulating prolactin and wool follicle growth status. J Endocrinol. 2002;172:605–614.
  • Mccloghry CE, Hollis DE, Foldes A, et al. The effects of exogenous melatonin and prolactin on wool follicle development in ovine foetal skin grafts. Aust J Agric Res. 1993;44:993–1002.
  • Gentile P, Garcovich S, Bielli A, et al. The effect of platelet-rich plasma in hair regrowth: a randomized placebo-controlled trial. Stem Cells Transl Med. 2015;4:1317–1323.
  • González R, Moffatt G, Hagner A, et al. Platelet-derived growth factor signaling modulates adult hair follicle dermal stem cell maintenance and self-renewal. NPJ Regen Med. 2017;2.
  • Botchkareva NV, Ahluwalia G, Shander D. Apoptosis in the hair follicle. J Invest Dermatol. 2006;126:258–264.
  • Folgueras AR, Guo X, Pasolli HA, et al. Architectural niche organization by LHX2 is linked to hair follicle stem cell function. Cell Stem Cell. 2013;13:314–327.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.