原发性中枢神经系统淋巴瘤
中枢神经系统
己糖激酶
淋巴瘤
生物
神经科学
信号转导
医学
内分泌学
内科学
细胞生物学
糖酵解
新陈代谢
作者
Kensuke Tateishi,Yohei Miyake,Masahito Kawazu,Nobuyoshi Sasaki,Taishi Nakamura,Jo Sasame,Yukie Yoshii,Toshihide Ueno,Akio Miyake,Jun Watanabe,Yuko Matsushita,Norio Shiba,Naoko Udaka,Kentaro Ohki,Alexandria L. Fink,Shilpa S. Tummala,Manabu Natsumeda,Naoki Ikegaya,Mayuko Nishi,Makoto Ohtake
出处
期刊:Cancer Research
[American Association for Cancer Research]
日期:2020-10-16
卷期号:80 (23): 5330-5343
被引量:35
标识
DOI:10.1158/0008-5472.can-20-2425
摘要
Abstract Primary central nervous system lymphoma (PCNSL) is an isolated type of lymphoma of the central nervous system and has a dismal prognosis despite intensive chemotherapy. Recent genomic analyses have identified highly recurrent mutations of MYD88 and CD79B in immunocompetent PCNSL, whereas LMP1 activation is commonly observed in Epstein–Barr virus (EBV)-positive PCNSL. However, a lack of clinically representative preclinical models has hampered our understanding of the pathogenic mechanisms by which genetic aberrations drive PCNSL disease phenotypes. Here, we establish a panel of 12 orthotopic, patient-derived xenograft (PDX) models from both immunocompetent and EBV-positive PCNSL and secondary CNSL biopsy specimens. PDXs faithfully retained their phenotypic, metabolic, and genetic features, with 100% concordance of MYD88 and CD79B mutations present in PCNSL in immunocompetent patients. These models revealed a convergent functional dependency upon a deregulated RelA/p65-hexokinase 2 signaling axis, codriven by either mutated MYD88/CD79B or LMP1 with Pin1 overactivation in immunocompetent PCNSL and EBV-positive PCNSL, respectively. Notably, distinct molecular alterations used by immunocompetent and EBV-positive PCNSL converged to deregulate RelA/p65 expression and to drive glycolysis, which is critical for intracerebral tumor progression and FDG-PET imaging characteristics. Genetic and pharmacologic inhibition of this key signaling axis potently suppressed PCNSL growth in vitro and in vivo. These patient-derived models offer a platform for predicting clinical chemotherapeutics efficacy and provide critical insights into PCNSL pathogenic mechanisms, accelerating therapeutic discovery for this aggressive disease. Significance: A set of clinically relevant CNSL xenografts identifies a hyperactive RelA/p65-hexokinase 2 signaling axis as a driver of progression and potential therapeutic target for treatment and provides a foundational preclinical platform.
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