Literature DB >> 14623514

The human CYP19 (aromatase P450) gene: update on physiologic roles and genomic organization of promoters.

Serdar E Bulun1, Siby Sebastian, Kazuto Takayama, Takashi Suzuki, Hironobu Sasano, Makio Shozu.   

Abstract

The human CYP19 (P450arom) gene is located in the chromosome 15q21.2 region and is comprised of a 30 kb coding region and a 93 kb regulatory region. The Internet-based Human Genome Project data enabled us to elucidate its complex organization. The unusually large regulatory region contains 10 tissue-specific promoters that are alternatively used in various cell types. Each promoter is regulated by a distinct set of regulatory sequences in DNA and transcription factors that bind to these specific sequences. In most mammals, P450arom expression is under the control of gonad- and brain-specific promoters. In the human, however, there are at least eight additional promoters that seemed to have been recruited throughout the evolution possibly via alterations in DNA. One of the key mechanisms that permit the recruitment of such a large number of promoters seems to be the extremely promiscuous nature of the common splice acceptor site, since activation of each promoter gives rise splicing of an untranslated first exon onto this common junction immediately upstream of the translation start site in the coding region. These partially tissue-specific promoters are used in the gonads, bone, brain, vascular tissue, adipose tissue, skin, fetal liver and placenta for physiologic estrogen biosynthesis. The most recently characterized promoter (I.7) was cloned by analyzing P450arom mRNA in breast cancer tissue. This TATA-less promoter accounts for the transcription of 29-54% of P450arom mRNAs in breast cancer tissues and contains endothelial-type cis-acting elements that interact with endothelial-type transcription factors, e.g. GATA-2. We hypothesize that this promoter may upregulate aromatase expression in vascular endothelial cells. The in vivo cellular distribution and physiologic roles of promoter I.7 in healthy tissues, however, are not known. The gonads use the proximally located promoter II. The normal breast adipose tissue, on the other hand, maintains low levels of aromatase expression primarily via promoter I.4 that lies 73 kb upstream of the common coding region. Promoters I.3 and II are used only minimally in normal breast adipose tissue. Promoters II and I.3 activities in the breast cancer, however, are strikingly increased. Additionally, the endothelial-type promoter I.7 is also upregulated in breast cancer. Thus, it appears that the prototype estrogen-dependent malignancy breast cancer takes advantage of four promoters (II, I.3, I.7 and I.4) for aromatase expression. The sum of P450arom mRNA species arising from these four promoters markedly increase total P450arom mRNA levels in breast cancer compared with the normal breast.

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Year:  2003        PMID: 14623514     DOI: 10.1016/s0960-0760(03)00359-5

Source DB:  PubMed          Journal:  J Steroid Biochem Mol Biol        ISSN: 0960-0760            Impact factor:   4.292


  78 in total

1.  The HDAC inhibitor LBH589 (panobinostat) is an inhibitory modulator of aromatase gene expression.

Authors:  Shiuan Chen; Jingjing Ye; Ikuko Kijima; Dean Evans
Journal:  Proc Natl Acad Sci U S A       Date:  2010-06-01       Impact factor: 11.205

Review 2.  Evolutionary origins of the estrogen signaling system: insights from amphioxus.

Authors:  G V Callard; A M Tarrant; A Novillo; P Yacci; L Ciaccia; S Vajda; G-Y Chuang; D Kozakov; S R Greytak; S Sawyer; C Hoover; K A Cotter
Journal:  J Steroid Biochem Mol Biol       Date:  2011-04-14       Impact factor: 4.292

3.  The gene for aromatase, a rate-limiting enzyme for local estrogen biosynthesis, is a downstream target gene of Runx2 in skeletal tissues.

Authors:  Jae-Hwan Jeong; Youn-Kwan Jung; Hyo-Jin Kim; Jung-Sook Jin; Hyun-Nam Kim; Sang-Min Kang; Shin-Yoon Kim; Andre J van Wijnen; Janet L Stein; Jane B Lian; Gary S Stein; Shigeaki Kato; Je-Yong Choi
Journal:  Mol Cell Biol       Date:  2010-03-15       Impact factor: 4.272

Review 4.  Structural and functional characterization of aromatase, estrogen receptor, and their genes in endocrine-responsive and -resistant breast cancer cells.

Authors:  Hei Jason Chan; Karineh Petrossian; Shiuan Chen
Journal:  J Steroid Biochem Mol Biol       Date:  2015-08-13       Impact factor: 4.292

Review 5.  The role of aromatase inhibitors in ameliorating deleterious effects of ovarian stimulation on outcome of infertility treatment.

Authors:  Mohamed F M Mitwally; Robert F Casper; Michael P Diamond
Journal:  Reprod Biol Endocrinol       Date:  2005-10-04       Impact factor: 5.211

6.  Aromatase distribution in the monkey temporal neocortex and hippocampus.

Authors:  Josue G Yague; Athena Ching-Jung Wang; William G M Janssen; Patrick R Hof; Luis M Garcia-Segura; Iñigo Azcoitia; John H Morrison
Journal:  Brain Res       Date:  2008-03-05       Impact factor: 3.252

Review 7.  Natural products as aromatase inhibitors.

Authors:  Marcy J Balunas; Bin Su; Robert W Brueggemeier; A Douglas Kinghorn
Journal:  Anticancer Agents Med Chem       Date:  2008-08       Impact factor: 2.505

8.  An aromatase polymorphism modulates the relationship between weight and estradiol levels in obese men.

Authors:  Ahmad Hammoud; Douglas T Carrell; A Wayne Meikle; Yuanpei Xin; Steven C Hunt; Ted D Adams; Mark Gibson
Journal:  Fertil Steril       Date:  2009-12-11       Impact factor: 7.329

Review 9.  The Role of Sex and Sex Hormones in Neurodegenerative Diseases.

Authors:  Elisabetta Vegeto; Alessandro Villa; Sara Della Torre; Valeria Crippa; Paola Rusmini; Riccardo Cristofani; Mariarita Galbiati; Adriana Maggi; Angelo Poletti
Journal:  Endocr Rev       Date:  2020-04-01       Impact factor: 19.871

10.  Cell density is a critical determinant of aromatase expression in adipose stromal cells.

Authors:  Sagar Ghosh; Yanfen Hu; Rong Li
Journal:  J Steroid Biochem Mol Biol       Date:  2009-12-05       Impact factor: 4.292

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