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代谢程序的表观遗传失调介导脂肪肉瘤细胞可塑性

英文原题:Epigenetic dysregulation of metabolic programs mediates liposarcoma cell plasticity.

PubMed 2026/01/21(内容时间) Sci Transl Med Q1 · IF 15.6(JCR 2025)

研究概要

我们在 DDLPS 中发现了谱系特异性缺陷,PPARG2 是 LPS 中分化状态的分子介导因子。

中文摘要

肉瘤是一类罕见癌症,被认为源于间充质干细胞(MSC)异常分化。脂肪肉瘤(LPS)是最常见的肉瘤之一,其高分化型和去分化型亚型(WDLPS和DDLPS)有助于认识异常分化过程。尽管这两种亚型在组织学和临床行为上存在差异,其分子通路仍未明确定义,因此DDLPS患者仍依赖经验性化疗。我们对人正常脂肪组织、WDLPS和DDLPS样本开展单核多组学测序和空间分析,发现LPS分化过程中存在谱系特异性阻滞。DDLPS的特征是胰岛素样生长因子1(IGF1)信号缺失以及早期间充质和胰高血糖素样肽-1(GLP-1)相关程序激活。在混合组织学肿瘤中,IGF1信号缺失仅限于DDLPS成分,并与LPS患者生存较差相关。在正常脂肪细胞中,IGF1通过过氧化物酶体增殖物激活受体γ2(PPARG2)驱动分化。我们发现DDLPS细胞缺乏PPARG2,形成分化屏障,导致其对外源性促脂肪生成信号无应答。单独恢复PPARG2表达即可重新启动脂肪生成,指出PPARG2是谱系命运的关键分子决定因素。最后,DDLPS中的IGF1缺乏与IGF1受体(IGF1R)上调相关,从而产生对IGF1R靶向抗体药物偶联物的选择性脆弱性。总之,我们发现DDLPS存在谱系特异性缺陷,其中PPARG2介导LPS的分化状态。更广泛而言,我们的研究显示,阐明肿瘤状态的谱系特异机制可为开发非化疗治疗策略提供依据。

展开英文摘要原文

Sarcomas are rare cancers thought to arise from aberrant mesenchymal stem cell (MSC) differentiation. Liposarcoma (LPS) is among the most commonly diagnosed sarcomas and provides insights into dysfunctional differentiation through its well- and dedifferentiated subtypes (WDLPS and DDLPS). Despite differences in histology and clinical behavior, the molecular pathways underlying each subtype remain poorly defined, leaving patients with DDLPS reliant on empiric chemotherapies. We applied single-nucleus multiome sequencing and spatial profiling to human normal adipose, WDLPS, and DDLPS tissues and identified lineage-specific blocks in differentiation within LPS. We found that DDLPS is characterized by loss of insulin-like growth factor 1 (IGF1) signaling and activation of early mesenchymal and glucagon-like peptide-1 (GLP-1)-associated programs. IGF1 signaling loss was restricted to the DDLPS component within mixed histology tumors and correlated with poor survival in patients with LPS. In normal adipocytes, IGF1 drives differentiation through peroxisome proliferator-activated receptor gamma 2 (PPARG2). We found that DDLPS cells lack PPARG2, causing a barrier to differentiation. This defect rendered DDLPS cells unresponsive to exogenous proadipogenic signals. Restoration of PPARG2 expression alone was sufficient to reenable adipogenesis, pinpointing PPARG2 as the key molecular determinant of lineage fate. Last, IGF1 deficiency in DDLPS was associated with up-regulation of the IGF1 receptor (IGF1R), creating a selective vulnerability to IGF1R-targeted antibody-drug conjugates. In summary, we identified lineage-specific defects in DDLPS, with PPARG2 as the molecular mediator of differentiation state in LPS. More broadly, our findings demonstrate how defining lineage-specific mechanisms of tumor state can inform the development of nonchemotherapeutic treatment approaches.

论文信息

作者
Pimenta EM、Garza AE、Camp SY、Park J、Hoffman SE、Valderrábano L、Fu J、Bi K
单位
Department of Medical Oncology, Dana-Farber Cancer Institute, Boston, MA 02115, USA.United States
期刊
Science translational medicine2026 Jan 21
原文标识
PubMed 41564157 · DOI 10.1126/scitranslmed.adw4689