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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 許駿 | zh_TW |
| dc.contributor.advisor | Chiun Hsu | en |
| dc.contributor.author | 林立 | zh_TW |
| dc.contributor.author | Li Lin | en |
| dc.date.accessioned | 2026-08-28T16:37:53Z | - |
| dc.date.available | 2026-08-29 | - |
| dc.date.copyright | 2026-08-28 | - |
| dc.date.issued | 2026 | - |
| dc.date.submitted | 2026-08-17 16:14:03 | - |
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| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/104601 | - |
| dc.description.abstract | Cabozantinib是一種多靶點酪胺酸激酶抑制劑,已獲准用於晚期肝細胞癌的二線治療。雖然其抗血管新生與細胞抗增殖作用廣為人知,但其免疫調控機制仍未被完全理解。因此,本研究旨在探討cabozantinib的免疫調控機制,著重於其在抑制HCC細胞分泌的白血病抑制因子,以及對骨髓來源抑制性細胞的抑制與誘導細胞焦亡現象中所扮演的角色。本研究使用源自Nlrp3敲除小鼠的骨髓來源抑制性細胞及Gsdmd敲除的HCC細胞,分別評估NLRP3與GSDMD在cabozantinib誘導細胞焦亡中的參與。並以Gsdmd敲除的Hepa1-6細胞在免疫健全小鼠中建立腫瘤模型,以評估腫瘤細胞GSDMD與cabozantinib活體治療效果及免疫調控作用之間的關聯。此外,本研究也使用LIF敲落或過度表現的HCC細胞株建立小鼠模型,以評估腫瘤細胞LIF表現與腫瘤生長及治療反應之間的關聯。流式細胞儀分析、單細胞RNA 定序與磷酸化蛋白質體學分析則用於鑑定相關細胞族群、蛋白質活化及基因表現變化。
研究結果顯示,cabozantinib可降低腫瘤細胞的LIF分泌,而外源性LIF及腫瘤細胞LIF表現量的操作,則會改變MDSCs的誘導比例與免疫抑制功能。操縱腫瘤細胞LIF表現量在小鼠腫瘤生長及cabozantinib治療後呈現不同的組內反應,暗示LIF表現可能與腫瘤生長及治療反應相關。我們同時發現,cabozantinib能在HCC細胞與MDSCs中誘發細胞焦亡相關現象。在源自Nlrp3敲除小鼠的MDSCs中,cabozantinib所引起的細胞死亡、NLRP3–ASC鄰近化及GSDMD裂解均受到抑制。在活體模型中,cabozantinib的抗腫瘤與免疫調控效應在帶有野生型腫瘤的小鼠中存在顯著差異,而在帶有Gsdmd敲除腫瘤的小鼠中並沒有,提示腫瘤細胞GSDMD可能與cabozantinib的治療反應相關。整體而言,這些結果支持NLRP3–CASP1–GSDMD相關焦亡訊號可能參與cabozantinib的抗腫瘤與免疫調控作用。 綜合我們的發現,暗示cabozantinib處理後的細胞焦亡相關變化可能與免疫活化有關,並為後續評估cabozantinib與免疫治療在HCC中的聯合使用提供了臨床前觀察依據。 | zh_TW |
| dc.description.abstract | Cabozantinib is a multi-target tyrosine kinase inhibitor approved for second-line treatment of advanced hepatocellular carcinoma (HCC). While its antiangiogenic and antiproliferative effects are well known, its immunomodulatory mechanisms remain incompletely understood. Here, we aimed to investigate the novel immunomodulatory mechanism of cabozantinib, focusing on its role in suppressing the secretion of leukemia inhibitory factor (LIF) by HCC cells, as well as inhibiting myeloid-derived suppressor cells (MDSCs) and inducing pyroptosis. Cabozantinib-induced pyroptosis was evaluated in HCC cell lines and MDSCs. The involvement of NLRP3 and GSDMD in cabozantinib-induced pyroptosis was evaluated using MDSCs derived from Nlrp3 knockout mice and Gsdmd knockout HCC cells, respectively. Gsdmd knockout Hepa1-6 cells were also used to establish tumors in immunocompetent mice to assess the association between tumor cell GSDMD and the in vivo antitumor and immunomodulatory responses to cabozantinib. In addition, mouse models established using LIF knockdown or LIF overexpressing HCC cells were used to evaluate the associations of tumor cell LIF expression with tumor growth and treatment response. Flow cytometry, single-cell RNA sequencing, and phosphoproteomic analyses were performed to characterize relevant cell populations and changes in protein activation and gene expression.
Our results showed that cabozantinib reduced tumor-cell LIF secretion, while exogenous LIF and manipulation of tumor-cell LIF expression altered MDSC induction and immunosuppressive activity. Mouse models with different tumor-cell LIF levels showed distinct within-group patterns of tumor growth and response to cabozantinib, suggesting a possible association between LIF expression and treatment response. Cabozantinib also induced features consistent with pyroptosis in HCC cells and MDSCs. In Nlrp3-knockout MDSCs, cabozantinib-associated cell death, NLRP3–ASC proximity, and GSDMD cleavage were attenuated. In vivo, the antitumor and immunomodulatory effects of cabozantinib were statistically significant in mice bearing wild-type, but not Gsdmd-knockout, tumors, suggesting a possible association between tumor-cell GSDMD and treatment response. Collectively, these findings support the involvement of NLRP3–CASP1–GSDMD-associated pyroptotic signaling in the antitumor and immunomodulatory effects of cabozantinib. These findings suggest a possible association between cabozantinib-associated pyroptotic changes and immune activation and provide preclinical observations supporting further evaluation of cabozantinib combined with immunotherapy in HCC. | en |
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| dc.description.provenance | Made available in DSpace on 2026-08-28T16:37:53Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 誌謝 i
中文摘要 ii 英文摘要 iii 目次 v 圖次 ix 縮寫表 xii 第一章 緒論 1 1.1 晚期肝細胞癌的治療 1 1.2 Cabozantinib與免疫治療 1 1.3 細胞焦亡的定義與形態特徵 2 1.4 Gasdermin家族的共同結構與成員差異 3 1.4.1 GSDMD 4 1.4.2 GSDME 4 1.4.3 GSDMA 5 1.4.4 GSDMB 5 1.4.5 GSDMC 5 1.5 細胞焦亡與其他調控性細胞死亡途徑的交互及轉換 5 1.6 細胞焦亡在腫瘤中的雙重作用 6 1.6.1 腫瘤細胞的清除以及免疫原性細胞死亡 6 1.6.2 慢性發炎以及腫瘤促進免疫微環境 7 1.7 與免疫檢查點抑制劑的聯合治療 8 1.8 LIF在腫瘤微環境與免疫調控中的角色 9 第二章 材料與方法 11 2.1 小鼠肝癌模型與細胞株 11 2.2 Cabozantinib配製以及劑量選擇說明 12 2.3 MDSCs誘導分化 12 2.4 MDSCs對T細胞調控能力檢測 12 2.5 Gr-1+細胞剔除和MDSCs過繼轉移 13 2.6 細胞毒殺能力分析 13 2.7 使用CD3/CD28微珠刺激CD4⁺與CD8⁺ T細胞 13 2.8 多重免疫螢光染色 13 2.9 近距離連接分析(Proximity Ligation Assay, PLA) 14 2.10 細胞上清液的收集 14 2.11 用於Western Blotting的細胞樣本製備 14 2.12 免疫螢光染色樣本製備 14 2.13 流式細胞儀樣本製備 15 2.14 高內涵影像系統拍攝 15 2.15 穿透電子顯微鏡(Transmission Electron Microscope,TEM)樣本製備 15 2.16 單細胞RNA定序與分析 16 2.17 Bulk RNA-seq與分析 17 2.18 磷酸化蛋白質體學與數據分析 17 2.19 細胞凋亡分析 18 2.20 統計分析 18 2.21 試劑藥品與器材 19 2.21.1 實驗中所使用試劑 19 2.21.2 實驗中所使用的西方墨點一次抗體 19 2.21.3 實驗中所使用的流式細胞儀螢光抗體 20 2.21.4 實驗中所使用的多重免疫螢光抗體 21 2.21.5 實驗中所使用的器材 21 第三章 實驗結果 22 3.1 Cabozantinib的免疫調控作用促進其體內抗腫瘤效應 22 3.1.1 劑量決定 22 3.1.2 Cabozantinib於原位和皮下小鼠模式下的治療效果 22 3.1.3 Cabozantinib的免疫調控機制以單細胞RNA定序分析 22 3.2 Cabozantinib透過活化CD8⁺ T細胞與抑制MDSCs調控免疫反應 23 3.2.1以流式細胞儀分析cabozantinib的免疫調控機制 23 3.2.2 MDSCs是cabozantinib的主要調控目標之一 23 3.2.3 Gr-1+細胞剔除和MDSCs過繼轉移會影響cabozantinib效果 23 3.3 Cabozantinib處理伴隨GSDMD裂解、CASP1活化及細胞焦亡相關特徵 24 3.3.1 RNA定序分析顯示cabozantinib治療下細胞焦亡相關基因富集 24 3.3.2 Cabozantinib可誘發腫瘤細胞焦亡相關特徵 25 3.4 Cabozantinib可能透過調控腫瘤細胞LIF的分泌進而影響MDSCs活性 26 3.5 Cabozantinib誘導的細胞焦亡可能涉及NLRP3–CASP1–GSDMD相關途徑 27 3.5.1 Cabozantinib治療在活體內伴隨焦亡相關變化 27 3.5.2 CASP1抑制劑會阻止cabozantinib引起的CASP1活化 27 3.5.3 NLRP3訊號作為cabozantinib誘導細胞焦亡的上游分子 28 3.6 細胞焦亡相關分子與cabozantinib治療反應型態的關聯 28 3.6.1 Nlrp3敲除模型中的cabozantinib治療反應型態 28 3.6.2 Gsdmd敲除模型中的cabozantinib治療反應型態 29 3.7 Cabozantinib聯合抗PD-1或抗PD-L1抗體的效果存在差異 29 3.7.1 Cabozantinib聯合抗PD-1在同系性肝癌模型中或許比聯合抗PD-L1抗體能展現更好的療效 29 3.7.2 不同聯合治療組合會影響細胞焦亡和T細胞功能指標 29 第四章 討論 31 第五章 參考文獻 38 第六章 圖 47 第七章 附錄 96 7.1 發表文章列表 96 7.2 已發表文章(一) 97 7.3 已發表文章(二) 98 | - |
| dc.language.iso | zh_TW | - |
| dc.subject | cabozantinib | - |
| dc.subject | anti-PD-1 | - |
| dc.subject | anti-PD-L1 | - |
| dc.subject | 細胞焦亡 | - |
| dc.subject | GSDMD | - |
| dc.subject | 肝細胞癌 | - |
| dc.subject | cabozantinib | - |
| dc.subject | anti-PD-1 | - |
| dc.subject | pyroptosis | - |
| dc.subject | anti-PD-L1 | - |
| dc.subject | GSDMD | - |
| dc.subject | hepatocellular carcinoma | - |
| dc.title | Cabozantinib於肝細胞癌中誘導細胞焦亡與免疫調控的機制探討 | zh_TW |
| dc.title | Investigating the Mechanisms of Cabozantinib-Induced Pyroptosis and Immunomodulation in Hepatocellular Carcinoma | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 114-2 | - |
| dc.description.degree | 博士 | - |
| dc.contributor.coadvisor | 歐大諒 | zh_TW |
| dc.contributor.coadvisor | Da-Liang Ou | en |
| dc.contributor.oralexamcommittee | 楊慕華;許家郎;鄭文睿 | zh_TW |
| dc.contributor.oralexamcommittee | Muh-Hwa Yang;Chia-Lang Hsu;Wen-Juei Jeng | en |
| dc.subject.keyword | cabozantinib; anti-PD-1; anti-PD-L1; 細胞焦亡; GSDMD; 肝細胞癌 | zh_TW |
| dc.subject.keyword | cabozantinib; anti-PD-1; pyroptosis; anti-PD-L1; GSDMD; hepatocellular carcinoma | en |
| dc.relation.page | 98 | - |
| dc.identifier.doi | 10.6342/NTU202604352 | - |
| dc.rights.note | 同意授權(限校園內公開) | - |
| dc.date.accepted | 2026-08-17 | - |
| dc.contributor.author-college | 醫學院 | - |
| dc.contributor.author-dept | 腫瘤醫學研究所 | - |
| dc.date.embargo-lift | 2026-08-29 | - |
| 顯示於系所單位: | 腫瘤醫學研究所 | |
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