Expression of Prox1, Lymphatic Endothelial Nuclear Transcription Factor, in Kaposiform Hemangioendothelioma and Tufted Angioma

被引:68
|
作者
Le Huu, Aude Rimella [1 ,2 ,7 ]
Jokinen, Chris H. [3 ]
Ruben, Brian P. [3 ]
Mihm, Martin C. [4 ]
Weiss, Sharon W. [5 ]
North, Paula E. [6 ]
Dadras, Soheil S. [1 ,2 ]
机构
[1] Stanford Univ, Dept Pathol, Sch Med, Stanford, CA 94305 USA
[2] Stanford Univ, Dept Dermatol, Sch Med, Stanford, CA 94305 USA
[3] Univ Washington, Dept Pathol, Seattle, WA 98195 USA
[4] Massachusetts Gen Hosp, Dept Pathol, Boston, MA 02114 USA
[5] Emory Univ, Sch Med, Dept Pathol, Atlanta, GA 30322 USA
[6] Med Coll Wisconsin, Dept Pathol, Milwaukee, WI 53226 USA
[7] Univ Lausanne Hosp, Dept Dermatol DHURDV, Lausanne, Switzerland
关键词
Prox1; LYVE-1; podoplanin (D2-40); CD31; CD34; infantile hemangioma; kaposiform hemangioendothelioma; tufted angioma; KASABACH-MERRITT-SYNDROME; PEDIATRIC VASCULAR TUMORS; MARKER; HEMANGIOMAS; DIFFERENTIATION; MALFORMATIONS; SARCOMA; LESIONS; D2-40; CELLS;
D O I
10.1097/PAS.0b013e3181f6076f
中图分类号
R36 [病理学];
学科分类号
100104 ;
摘要
Kaposiform hemangioendothelioma (KHE) and tufted angioma (TA) are rare tumors mainly occurring in early childhood. Our recent results showed that ectopic overexpression of human Prox1 gene, a lymphatic endothelial nuclear transcription factor, promoted an aggressive behavior in 2 murine models of KHE. This dramatic Prox1-induced phenotype prompted us to investigate immunohistochemical staining pattern of Prox1, podoplanin (D2-40), LYVE-1, and Prox1/CD34 as well as double immunofluorescent staining pattern of LYVE-1/CD31 in KHE and TA, compared with other pediatric vascular tumors. For this purpose, we examined 75 vascular lesions: KHE (n = 18), TA (n = 13), infantile hemangioma (n = 13), pyogenic granuloma (n = 18), and granulation tissue (n = 13). Overall, KHE and TA shared an identical endothelial immunophenotype: the neoplastic spindle cells were Prox1(+), podoplanin(+), LYVE-1(+), CD31(+), and CD34(+), whereas endothelial cells within glomeruloid foci were Prox1(-), podoplanin(-), LYVE-1(-), CD31(+), and CD34(+). The lesional cells of all infantile hemangiomas and pyogenic granulomas were negative for Prox1 in the presence of positive internal control. These findings provide immunophenotypic evidence to support a preexisting notion that KHE and TA are closely related, if not identical. Overall, our results show, for the first time, that Prox1 is an immunohistochemical biomarker helpful in confirming the diagnosis of KHE/TA and in distinguishing it from infantile hemangioma and pyogenic granuloma.
引用
收藏
页码:1563 / 1573
页数:11
相关论文
共 50 条
  • [21] Intracellular localization of transcription factor PROX1 in the human retina in ontogeny
    Yu. V. Markitantova
    R. D. Zinovieva
    Biology Bulletin, 2014, 41 : 103 - 108
  • [22] Fucoidan inhibits lymphangiogenesis by downregulating the expression of VEGFR3 and PROX1 in human lymphatic endothelial cells
    Yang, Yazong
    Gao, Zixiang
    Ma, Yanhong
    Teng, Hongming
    Liu, Zundong
    Wei, Hengyun
    Lu, Yanbing
    Cheng, Xiaofang
    Hou, Lin
    Zou, Xiangyang
    ONCOTARGET, 2016, 7 (25) : 38025 - 38035
  • [23] Gene regulation by homeobox transcription factor Prox1 in murine hepatoblasts
    Papoutsi, Maria
    Dudas, Jozsef
    Becker, Juergen
    Tripodi, Marco
    Opitz, Lennart
    Ramadori, Giuliano
    Wilting, Joerg
    CELL AND TISSUE RESEARCH, 2007, 330 (02) : 209 - 220
  • [24] Prox1 is a master control gene in the program specifying lymphatic endothelial cell fate
    Hong, YK
    Harvey, N
    Noh, YH
    Schacht, V
    Hirakawa, S
    Detmar, M
    Oliver, G
    DEVELOPMENTAL DYNAMICS, 2002, 225 (03) : 351 - 357
  • [25] Lymphatic endothelial cell identity is reversible and its maintenance requires Prox1 activity
    Johnson, Nicole C.
    Dillard, Miriam E.
    Baluk, Peter
    McDonald, Donald M.
    Harvey, Natasha L.
    Frase, Sharon L.
    Oliver, Guillermo
    GENES & DEVELOPMENT, 2008, 22 (23) : 3282 - 3291
  • [26] Embryonic vascular endothelial cells are malleable to reprogramming via Prox1 to a lymphatic gene signature
    Kim, Harold
    Nguyen, Vicky P. K. H.
    Petrova, Tatiana V.
    Cruz, Maribelle
    Alitalo, Kari
    Dumont, Daniel J.
    BMC DEVELOPMENTAL BIOLOGY, 2010, 10
  • [27] Prox1 dosage controls the number of lymphatic endothelial cell progenitors and the formation of the lymphovenous valves
    Srinivasan, R. Sathish
    Oliver, Guillermo
    GENES & DEVELOPMENT, 2011, 25 (20) : 2187 - 2197
  • [28] Sumoylation of Prox1 controls its ability to induce VEGFR3 expression and lymphatic phenotypes in endothelial cells
    Pan, Mei-Ren
    Chang, Tsung-Ming
    Chang, Hui-Chiu
    Su, Jen-Liang
    Wang, Hsei-Wei
    Hung, Wen-Chun
    JOURNAL OF CELL SCIENCE, 2009, 122 (18) : 3358 - 3364
  • [29] The association of transcription factor Prox1 with the proliferation, migration, and invasion of lung cancer
    Hao, Xinxin
    Luo, Wenting
    Qiu, Xueshan
    OPEN LIFE SCIENCES, 2021, 16 (01): : 602 - 610
  • [30] Prox1 induces lymphatic endothelial differentiation via integrin α9 and other signaling cascades
    Mishima, Koichi
    Watabe, Tetsuro
    Saito, Akira
    Yoshimatsu, Yasuhiro
    Imaizumi, Natsuko
    Masui, Shinji
    Hirashima, Masanori
    Morisada, Tohru
    Oike, Yuichi
    Araie, Makoto
    Niwa, Hitoshi
    Kubo, Hajime
    Suda, Toshio
    Miyazono, Kohei
    MOLECULAR BIOLOGY OF THE CELL, 2007, 18 (04) : 1421 - 1429