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  1. NTU Theses and Dissertations Repository
  2. 醫學院
  3. 腫瘤醫學研究所
請用此 Handle URI 來引用此文件: http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/104596
完整後設資料紀錄
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dc.contributor.advisor楊泮池zh_TW
dc.contributor.advisorPan-Chyr Yangen
dc.contributor.author林士文zh_TW
dc.contributor.authorShr-Uen Linen
dc.date.accessioned2026-08-28T16:36:03Z-
dc.date.available2026-08-29-
dc.date.copyright2026-08-28-
dc.date.issued2026-
dc.date.submitted2026-08-05 00:00:00-
dc.identifier.citationReferences
1. Siegel, R.L., et al., Cancer statistics, 2026. CA Cancer J Clin, 2026. 76(1): p. e70043.
2. Peters, S., et al., The impact of brain metastasis on quality of life, resource utilization and survival in patients with non-small-cell lung cancer. Cancer Treat Rev, 2016. 45: p. 139-62.
3. Eichler, A.F., et al., The biology of brain metastases-translation to new therapies. Nat Rev Clin Oncol, 2011. 8(6): p. 344-56.
4. Stombaugh, J., et al., The Power Decoder Simulator for the Evaluation of Pooled shRNA Screen Performance. J Biomol Screen, 2015. 20(8): p. 965-75.
5. Batlle, E. and H. Clevers, Cancer stem cells revisited. Nat Med, 2017. 23(10): p. 1124-1134.
6. Prager, B.C., et al., Cancer Stem Cells: The Architects of the Tumor Ecosystem. Cell Stem Cell, 2019. 24(1): p. 41-53.
7. Wang, Y. and G.J. Patti, The Warburg effect: a signature of mitochondrial overload. Trends Cell Biol, 2023. 33(12): p. 1014-1020.
8. Icard, P., et al., The dual role of citrate in cancer. Biochim Biophys Acta Rev Cancer, 2023. 1878(6): p. 188987.
9. Abou Khouzam, R., et al., Hypoxia as a potential inducer of immune tolerance, tumor plasticity and a driver of tumor mutational burden: Impact on cancer immunotherapy. Semin Cancer Biol, 2023. 97: p. 104-123.
10. Schito, L. and S. Rey-Keim, Hypoxia signaling and metastatic progression. Semin Cancer Biol, 2023. 97: p. 42-49.
11. Wang, Y., et al., Yin Yang 1 promotes the Warburg effect and tumorigenesis via glucose transporter GLUT3. Cancer Sci, 2018. 109(8): p. 2423-2434.
12. Zhong, X., et al., CUE domain-containing protein 2 promotes the Warburg effect and tumorigenesis. EMBO Rep, 2017. 18(5): p. 809-825.
13. Chu, Y.W., et al., Selection of invasive and metastatic subpopulations from a human lung adenocarcinoma cell line. Am J Respir Cell Mol Biol, 1997. 17(3): p. 353-60.
14. Subramanian, A., et al., Gene set enrichment analysis: A knowledge-based approach for interpreting genome-wide expression profiles. Proceedings of the National Academy of Sciences, 2005. 102(43): p. 15545-15550.
15. Mootha, V.K., et al., PGC-1α-responsive genes involved in oxidative phosphorylation are coordinately downregulated in human diabetes. Nature Genetics, 2003. 34(3): p. 267-273.
16. Fakhri, S., et al., Modulation of hypoxia-inducible factor-1 signaling pathways in cancer angiogenesis, invasion, and metastasis by natural compounds: a comprehensive and critical review. Cancer Metastasis Rev, 2024. 43(1): p. 501-574.
17. Fu, J., et al., Hypoxia-associated autophagy flux dysregulation in human cancers. Cancer Lett, 2024. 590: p. 216823.
18. Bhattacharya, R., et al., A gene for all seasons: The evolutionary consequences of HIF-1 in carcinogenesis, tumor growth and metastasis. Semin Cancer Biol, 2024. 102-103: p. 17-24.
19. Daehn, I.S., Mitochondria Matter: A Critical Role of ADCK4 in Stabilizing the CoQ Complex in Podocytes in Steroid-Resistant Nephrotic Syndrome. J Am Soc Nephrol, 2020. 31(6): p. 1167-1169.
20. Doimo, M., et al., Genetics of coenzyme q10 deficiency. Mol Syndromol, 2014. 5(3-4): p. 156-62.
21. Acosta, M.J., et al., Coenzyme Q biosynthesis in health and disease. Biochim Biophys Acta, 2016. 1857(8): p. 1079-1085.
22. Guerra, R.M. and D.J. Pagliarini, Coenzyme Q biochemistry and biosynthesis. Trends Biochem Sci, 2023. 48(5): p. 463-476.
23. Malaga-Dieguez, L. and K. Susztak, ADCK4 "reenergizes" nephrotic syndrome. J Clin Invest, 2013. 123(12): p. 4996-9.
24. Korkmaz, E., et al., ADCK4-Associated Glomerulopathy Causes Adolescence-Onset FSGS. J Am Soc Nephrol, 2016. 27(1): p. 63-8.
25. Atmaca, M., et al., Follow-up results of patients with ADCK4 mutations and the efficacy of CoQ10 treatment. Pediatr Nephrol, 2017. 32(8): p. 1369-1375.
26. Feng, C., et al., Coenzyme Q10 supplementation therapy for 2 children with proteinuria renal disease and ADCK4 mutation: Case reports and literature review. Medicine (Baltimore), 2017. 96(47): p. e8880.
27. Zhou, J., et al., Identification of cisplatin-resistance associated genes through proteomic analysis of human ovarian cancer cells and a cisplatin-resistant subline. Asian Pac J Cancer Prev, 2012. 13(12): p. 6435-9.
28. Yen, H.C., et al., Levels of Coenzyme Q(10) and Several COQ Proteins in Human Astrocytoma Tissues Are Inversely Correlated with Malignancy. Biomolecules, 2022. 12(2).
29. Tafazoli, A., Coenzyme Q10 in breast cancer care. Future Oncol, 2017. 13(11): p. 1035-1041.
30. Li, J., et al., Decylubiquinone Inhibits Colorectal Cancer Growth Through Upregulating Sirtuin2. Front Pharmacol, 2021. 12: p. 804265.
31. Dai, W., et al., GLUT3 induced by AMPK/CREB1 axis is key for withstanding energy stress and augments the efficacy of current colorectal cancer therapies. Signal Transduct Target Ther, 2020. 5(1): p. 177.
32. Ziegler, G.C., et al., Cellular effects and clinical implications of SLC2A3 copy number variation. J Cell Physiol, 2020. 235(12): p. 9021-9036.
33. Tsai, T.H., et al., Overexpression of GLUT3 promotes metastasis of triple-negative breast cancer by modulating the inflammatory tumor microenvironment. J Cell Physiol, 2021. 236(6): p. 4669-4680.
34. Li, Z. and J. Cui, Targeting the lactic acid metabolic pathway for antitumor therapy. Mol Ther Oncolytics, 2023. 31: p. 100740.
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dc.identifier.urihttp://tdr.lib.ntu.edu.tw/jspui/handle/123456789/104596-
dc.description.abstract肺癌至今仍為全球癌症相關死亡之首要原因,對公共衛生造成重大負擔。根據 2026 年《Global Cancer Statistics》報告,美國預估新增 229,410 例肺癌病例,並造成 124,990 例相關死亡。在臺灣,2023 年肺癌之發生率與死亡率分別為每十萬人口 49.00 例與 21.27 例,且男性之發生率與死亡率均顯著高於女性。儘管近年來手術技術與放射治療已有長足進展,使早期及局限型腫瘤之治療成效明顯提升,轉移性肺癌仍具有高度惡性與不可預測性,且與不良臨床預後密切相關。此外,臨床觀察與基礎研究之間的橫溝,限制了對腫瘤轉移及治療抗性相關分子機制之深入理解。
本研究透過將肺癌細胞注射至小鼠內頸動脈建立體內轉移模型,進行功能喪失 shRNA 篩選,並結合體外及體內功能性實驗及肺癌病患之臨床資料分析,以驗證候選基因之生物學功能與臨床相關性。研究結果顯示,粒線體相關基因 AarF domain-containing kinase 4(ADCK4)為調控腫瘤生成能力與癌症幹性之重要負向調節因子。ADCK4 低表現與較高之腫瘤生成能力、增強之幹細胞特性,以及較差之整體存活率顯著相關。機制上,ADCK4 缺失之癌細胞會發生葡萄糖代謝路徑變化,使葡萄糖代謝由粒線體氧化磷酸化與三羧酸循環(tricarboxylic acid cycle, TCA cycle)轉向醣解作用,此現象符合高度惡性腫瘤常見之 Warburg effect。綜合而言,本研究結果顯示 ADCK4 所介導之代謝調控機制可能作為抑制腫瘤進展、藥物抗性、復發及轉移之潛在治療標的。
zh_TW
dc.description.abstractLung cancer remains the leading cause of cancer-related mortality worldwide. According to Global Cancer Statistics 2026, an estimated 229,410 new lung cancer cases and 124,990 lung cancer-related deaths occurred in the United States. In Taiwan, the incidence and mortality rates of lung cancer in 2023 were 49.00 and 21.27 cases per 100,000 population, respectively, with higher rates observed in men than in women Despite remarkable advances in surgical techniques and radiotherapy, which have substantially improved the management of early-stage and localized tumors, metastatic disease remains highly unpredictable and is associated with poor clinical outcomes. Furthermore, the limited integration of clinical observations with experimental investigations has hindered a comprehensive understanding of the molecular mechanisms underlying metastasis and therapeutic resistance. In this study, we performed an in vivo loss-of-function shRNA screen by injecting lung cancer cells into the intracarotid artery of mice, followed by validation of candidate genes through both in vitro and in vivo functional assays and clinical correlation analyses in lung cancer patients. Our results identified the mitochondrial gene AarF domain-containing kinase 4 (ADCK4) as a negative regulator of tumorigenicity and cancer stemness. Reduced ADCK4 expression was associated with enhanced tumorigenic potential, increased stem-like properties, and poorer overall survival in lung cancer patients. Mechanistically, ADCK4-deficient cancer cells exhibited metabolic reprogramming characterized by a shift in glucose utilization from mitochondrial oxidative phosphorylation and the tricarboxylic acid (TCA) cycle toward glycolysis, consistent with the Warburg effect commonly observed in highly aggressive malignancies. Collectively, these findings suggest that ADCK4-mediated metabolic regulation may represent a potential therapeutic target for overcoming tumor progression, drug resistance, recurrence, and metastasis.en
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dc.description.tableofcontents致謝 I
中文摘要 II
Abstract IV
Content VI
List of Tables VIII
List of Figures IX
Chapter I: Introduction 1
1.1 Overview of risk factor identification and current treatment limitation in lung cancer brain metastasis 1
1.2 Background of animal models and the limitations in study in metastasis 3
1.3 Overview of the role of cancer stemness and metabolism shifting 4
1.4 Objective and motivation of this study 5
Chapter II: Materials and methods 7
Chapter III: Results 16
3.1 Establishment of lung orthotopic model for study of metastasis 16
3.2 Establishment of intracarotid artery injection model for study of brain metastasis 19
3.3 Metastasis-related candidate genes 21
3.4 ABL2 or ADCK4 deficiency promote lung cancer metastasis 23
3.5 HIF-1 pathway is upregulated in ADCK4 deficient cancer cells 25
3.6 The cancer stem-like properties of shADCK4 cells in vitro 27
3.7 The cancer stem-like properties of shADCK4 cells in vivo 28
3.8 The levels of ADCK4 in tumors negatively correlated to the outcomes of patients 30

Chapter IV: Discussion 32
Chapter V: Conclusion and perspective 36
Tables 38
Figures 49
References 74
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dc.language.isoen-
dc.subject肺癌-
dc.subject轉移-
dc.subjectlung cancer-
dc.subjectmetastasis-
dc.title活體腫瘤研究模型之建立暨探討ADCK4基因於肺癌腦轉移中扮演的角色zh_TW
dc.titleEstablishment of In Vivo Tumor Research Model and Exploration of the Role of ADCK4 Gene in Lung Cancer Brain Metastasisen
dc.typeThesis-
dc.date.schoolyear114-2-
dc.description.degree博士-
dc.contributor.oralexamcommittee俞松良;徐志宏;王啟仲;洪澤民zh_TW
dc.contributor.oralexamcommitteeSung-Liang Yu;Chih-Hung Hsu;Chi-Chung Wang;Tse-Ming Hongen
dc.subject.keyword肺癌; 轉移zh_TW
dc.subject.keywordlung cancer; metastasisen
dc.relation.page76-
dc.identifier.doi10.6342/NTU202603048-
dc.rights.note同意授權(全球公開)-
dc.date.accepted2026-08-06-
dc.contributor.author-college醫學院-
dc.contributor.author-dept腫瘤醫學研究所-
dc.date.embargo-lift2026-08-29-
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