| Literature DB >> 29767721 |
Hisashi Hasumi1,2, Mitsuko Furuya3, Kenji Tatsuno4, Shogo Yamamoto4, Masaya Baba2,5, Yukiko Hasumi2,6, Yasuhiro Isono7, Kae Suzuki1, Ryosuke Jikuya1, Shinji Otake1, Kentaro Muraoka1, Kimito Osaka1, Narihiko Hayashi1, Kazuhide Makiyama1, Yasuhide Miyoshi1, Keiichi Kondo1, Noboru Nakaigawa1, Takashi Kawahara1, Koji Izumi1, Junichi Teranishi1, Yasushi Yumura1, Hiroji Uemura1, Yoji Nagashima8, Adam R Metwalli2, Laura S Schmidt2,9, Hiroyuki Aburatani4, W Marston Linehan2, Masahiro Yao1.
Abstract
Birt-Hogg-Dubé (BHD) syndrome is a hereditary kidney cancer syndrome, which predisposes patients to develop kidney cancer, cutaneous fibrofolliculomas and pulmonary cysts. The responsible gene FLCN is a tumor suppressor for kidney cancer, which plays an important role in energy homeostasis through the regulation of mitochondrial oxidative metabolism. However, the process by which FLCN-deficiency leads to renal tumorigenesis is unclear. In order to clarify molecular pathogenesis of BHD-associated kidney cancer, we conducted whole-exome sequencing analysis using next-generation sequencing technology as well as metabolite analysis using liquid chromatography-mass spectrometry and gas chromatography-mass spectrometry. Whole-exome sequencing analysis of BHD-associated kidney cancer revealed that copy number variations of BHD-associated kidney cancer are considerably different from those already reported in sporadic cases. In somatic variant analysis, very few variants were commonly observed in BHD-associated kidney cancer; however, variants in chromatin remodeling genes were frequently observed in BHD-associated kidney cancer (17/29 tumors, 59%). Metabolite analysis of BHD-associated kidney cancer revealed metabolic reprogramming toward upregulated redox regulation which may neutralize reactive oxygen species potentially produced from mitochondria with increased respiratory capacity under FLCN-deficiency. BHD-associated kidney cancer displays unique molecular characteristics that are completely different from sporadic kidney cancer, providing mechanistic insight into tumorigenesis under FLCN-deficiency as well as a foundation for development of novel therapeutics for kidney cancer.Entities:
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Year: 2018 PMID: 29767721 PMCID: PMC6048985 DOI: 10.1093/hmg/ddy181
Source DB: PubMed Journal: Hum Mol Genet ISSN: 0964-6906 Impact factor: 6.150