Whole-Genome DNA Methylation Profiling Identifies Epigenetic Signatures of Uterine Carcinosarcoma
NEOPLASIA
Authors: Li, Jing; Xing, Xiaoyun; Li, Daofeng; Zhang, Bo; Mutch, David G.; Hagemann, Ian S.; Wang, Ting
Abstract
Uterine carcinosarcoma (UCS) is a form of endometrial cancer simultaneously exhibiting carcinomatous and sarcomatous elements, but the underlying molecular and epigenetic basis of this disease is poorly understood. We generated complete DNA methylomes for both the carcinomatous and the sarcomatous components of three UCS samples separated by laser capture microdissection and compared DNA methylomes of UCS with those of normal endometrium as well as methylomes derived from endometrioid carcinoma, serous endometrial carcinoma, and endometrial stromal sarcoma. We identified epigenetic lesions specific to carcinosarcoma and specific to its two components. Hallmarks of DNA methylation abnormalities in UCS included global hypomethylation, especially in repetitive elements, and hypermethylation of tumor suppressor gene promoters. Among these, aberrant DNA methylation of MIR200 genes is a key feature of UCS. The carcinoma component of UCS was characterized by hypermethylation of promoters of EMILIN1, NEFM, and CLEC14A, genes that are associated with tumor vascularization. In contrast, DNA methylation changes of PKP3, FAM83F, and TCP11 were more characteristic of the sarcoma components. Our findings highlight the epigenetic signatures that distinguish the two components of UCS, providing a valuable resource for investigation of this disease.
Emilin1 links TGF-beta maturation to blood pressure homeostasis
CELL
Authors: Zacchigna, L; Vecchione, C; Notte, A; Cordenonsi, M; Dupont, S; Maretto, S; Cifelli, G; Ferrari, A; Maffei, A; Fabbro, C; Braghetta, P; Marino, G; Selvetella, G; Aretini, A; Colonnese, C; Bettarini, U; Russo, G; Soligo, S; Adorno, M; Bonaldo, P; Volpin, D; Piccolo, S; Lembo, G; Bressan, GM
Abstract
TGF-beta proteins are main regulators of blood vessel development and maintenance. Here, we report an unprecedented link between TGF-beta signaling and arterial hypertension based on the analysis of mice mutant for Emilin1, a cysteine-rich secreted glycoprotein expressed in the vascular tree. Emilin1 knockout animals display increased blood pressure, increased peripheral vascular resistance, and reduced vessel size. Mechanistically, we found that Emilin1 inhibits TGF-beta signaling by binding specifically to the proTGF-beta precursor and preventing its maturation by furin convertases; in the extracellular space. In support of these findings, genetic inactivation of Emifin1 causes increased TGF-beta signaling in the vascular wall. Strikingly, high blood pressure observed in Emilin1 mutants is rescued to normal levels upon inactivation of a single TGF-beta 1 allele. This study highlights the importance of modulation of TGF-beta availability in the pathogenesis of hypertension.