LBPO.TB01 · 肿瘤生物学 · Late-Breaking

脂肪因子 adipsin 通过诱导脂肪细胞成熟促进乳腺癌进展

Adipokine adipsin promotes breast cancer progression by inducing adipocyte maturation

编号 LB227 展板 2 时间 4/20 02:00–05:00 区域 Section 55 主讲 Yohei Shimono, MD;PhD
分会场 Late-Breaking Research: Tumor Biology 1
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作者与单位 Authors & Affiliations

Yohei Shimono, Behnoush Khaledian, Masahiro Mizuno, Jumpei Yoshida, Kazutsune Yamagata, Takuya Kato, Lisa Thibes, Satoru Ishihara, Fujiko Sueishi, Yuko Kijima, Motoshi Suzuki, Kenji Kawada, Naoya Asai

Fujita Health University, Toyoake, Aichi, Japan

摘要 Abstract

中文摘要
乳腺癌是全球女性中最常被诊断的癌症,也是癌症相关死亡的首要原因。尽管诊断和治疗取得了进展,晚期转移性乳腺癌仍难以治愈。脂肪细胞长期以来被认为在正常和恶性乳腺组织生物学中发挥重要作用。肥胖以成熟脂肪细胞的过度蓄积为特征,是乳腺癌进展的已知风险因素。因此,靶向脂肪细胞及其与癌细胞的相互作用将为乳腺癌提供新的治疗策略。我们从乳腺癌患者的手术标本中建立了患者来源肿瘤异种移植(PDXs)和脂肪组织来源干细胞(ADSCs)。ADSCs 显著促进乳腺癌细胞的肿瘤干细胞特性、肿瘤侵袭和转移。使用 Cfd(补体因子 D,也称为 adipsin)敲除(KO)小鼠及其来源的乳腺 ADSCs(mADSCs),我们发现 mADSCs 中的 Cfd 缺陷显著降低了其增强共培养乳腺癌 PDX 细胞肿瘤球形成的能力。肝细胞生长因子(HGF)是一种由 mADSCs 以 CFD 依赖方式分泌的脂肪因子,它挽救了 Cfd-KO mADSCs 所诱导的乳腺癌 PDX 细胞受损的肿瘤球形成和体内致瘤性。此外,我们观察到乳腺癌细胞的迁移和侵袭以 adipsin 和 HGF 依赖的方式被成熟脂肪细胞(而非其前体细胞,即 ADSCs)显著促进。Adipsin 是一种分泌型丝氨酸蛋白酶,传统上以激活替代补体途径和调节全身代谢而闻名。它主要由乳腺 ADSCs 分泌,其表达在脂肪细胞成熟过程中增加。我们发现 adipsin 的缺失抑制了脂滴(LD)形成,而脂滴形成是脂肪细胞成熟的标志。虽然 adipsin 在脂肪细胞中高表达,但其在脂肪生成中的作用仍知之甚少。在本研究中,我们使用从野生型(WT)和 Cfd-KO 小鼠分离的 mADSCs 研究了 adipsin 在脂肪细胞成熟中的作用。我们发现 CFD 缺陷显著减少了成熟脂肪细胞中的 LD 形成。慢病毒表达分泌信号缺陷型(SD)或催化失活的 CFD 突变体,以及胞质型(非分泌型)CFD3 剪接变体,均可将 Cfd-KO 脂肪细胞中的 LD 形成恢复至 WT 水平。这些发现表明,胞内 CFD 以独立于其催化活性的方式促进 LD 生物发生。总之,我们的发现揭示了 CFD 在脂肪细胞分化过程中调节脂滴生物发生的一种此前未被认识的胞内功能。鉴于脂肪细胞成熟强烈促进乳腺癌进展,阐明乳腺脂肪细胞以及 adipsin 和 HGF 等脂肪因子的作用将为乳腺癌的治疗干预提出新的途径。
查看英文原文 English abstract
Breast cancer is the most frequently diagnosed cancer and the leading cause of cancer-related death among women worldwide. Despite advances in diagnosis and treatment, advanced-stage metastatic breast cancer remains difficult to cure. Adipocytes have long been recognized for their essential roles in both normal and malignant breast tissue biology. Obesity, characterized by the excessive accumulation of mature adipocytes, is a known risk factor for breast cancer progression. Therefore, targeting adipocytes and their interactions with cancer cells will offer novel therapeutic strategies for breast cancer. We established patient-derived tumor xenografts (PDXs) and adipose tissue-derived stem cells (ADSCs) from surgical specimens of breast cancer patients. ADSCs significantly promote cancer stem cell properties, tumor invasion, and metastasis of breast cancer cells. Using Cfd (complement factor D, also known as adipsin) knockout (KO) mice and mammary ADSCs (mADSCs) derived from them, we found that Cfd deficiency in mADSCs markedly reduced their ability to enhance tumorsphere formation by cocultured breast cancer PDX cells. Hepatocyte growth factor (HGF), an adipokine secreted by mADSCs in a CFD-dependent manner, rescued the impaired tumorsphere formation and in vivo tumorigenicity of breast cancer PDX cells induced by Cfd-KO mADSCs. Furthermore, we observed that breast cancer cell migration and invasion were significantly promoted by mature adipocytes-but not by their precursors (i.e., ADSCs)-in an adipsin- and HGF-dependent manner. Adipsin is a secreted serine protease traditionally known for activating the alternative complement pathway and regulating systemic metabolism. It is predominantly secreted by mammary ADSCs, and its expression increases during adipocyte maturation. We found that the absence of adipsin suppressed lipid droplet (LD) formation, a hallmark of adipocyte maturation. Although adipsin is highly expressed in adipocytes, its role in adipogenesis remains poorly understood. In this study, we investigated the role of adipsin in adipocyte maturation using mADSCs isolated from wild-type (WT) and Cfd-KO mice. We found that CFD deficiency significantly reduced LD formation in mature adipocytes. Lentiviral expression of a secretion signal-deficient (SD) or catalytically inactive CFD mutant, as well as the cytosolic (non-secreted) CFD3 splice variant, restored LD formation to WT levels in Cfd-KO adipocytes. These findings suggest that intracellular CFD promotes LD biogenesis in a manner independent of its catalytic activity. Together, our findings reveal a previously unrecognized intracellular function of CFD in regulating lipid droplet biogenesis during adipocyte differentiation. Given that adipocyte maturation strongly promotes breast cancer progression, elucidating the roles of mammary adipocytes and adipokines such as adipsin and HGF will propose novel ways for therapeutic intervention in breast cancer.
利益披露 Disclosure
Y. Shimono, None.. B. Khaledian, None.. M. Mizuno, None.. J. Yoshida, None.. K. Yamagata, None.. T. Kato, None.. L. Thibes, None.. S. Ishihara, None.. F. Sueishi, None.. Y. Kijima, None.. M. Suzuki, None.. K. Kawada, None.. N. Asai, None.

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