Mitochondrial Dynamics in Ovarian Cancer: Pathophysiology and Therapeutic Implications

被引:1
作者
Kobayashi, Hiroshi [1 ,2 ]
Yoshimoto, Chiharu [2 ,3 ]
Matsubara, Sho [2 ,4 ]
Shigetomi, Hiroshi [2 ,5 ]
Imanaka, Shogo [1 ,2 ]
机构
[1] Ms Clin MayOne, Dept Gynecol & Reprod Med, 871-1 Shijo Cho, Kashihara 6340813, Japan
[2] Nara Med Univ, Dept Obstet & Gynecol, 840 Shijo Cho, Nara 6348522, Japan
[3] Nara Prefecture Gen Med Ctr, Dept Obstet & Gynecol, 2-897-5 Shichijyonishi Machi, Nara 6308581, Japan
[4] Kei Oushin Clin, Dept Med, 5-2-6 Naruo Cho, Nishinomiya 6638184, Japan
[5] Aska Ladies Clin, Dept Gynecol & Reprod Med, 3-3-17 Kitatomigaoka Cho, Nara 6340001, Japan
来源
JOURNAL OF MOLECULAR PATHOLOGY | 2023年 / 4卷 / 04期
关键词
metabolic dynamics; metabolic reprogramming; mitochondrial fission; mitochondrial fusion; ovarian cancer; CLEAR-CELL CARCINOMA; HYPOXIA-INDUCED MIGRATION; METABOLIC SWITCH; MITOFUSIN; PROMOTES; DRP1; PROGRESSION; INVASION; PATHWAY; PROLIFERATION;
D O I
10.3390/jmp4040023
中图分类号
R36 [病理学];
学科分类号
100104 ;
摘要
Background: Ovarian cancer is often characterized by aggressive growth and chemoresistance, leading to a poor prognosis. The energy and nutrient acquisition through metabolic reprogramming has been reported to facilitate cancer cell proliferation, invasion, and metastasis. Therefore, a therapeutic strategy to consider is to rewire energy metabolism. Mitochondrial dynamics have a profound impact on the metabolic profiles. In this review, we summarize the current understanding of the molecular mechanisms governing mitochondrial dynamics and their impact on cell proliferation and invasion and discuss future perspectives for therapeutic strategies and research directions. Methods: A search was conducted for literature published up to 30 June 2023 using the online databases PubMed and Google Scholar in this narrative literature review. Results: Mitochondria are essential for regulating metabolic reprogramming to meet the increasing energy demand for rapid cancer cell proliferation and invasion. A metabolic switch from OXPHOS to glycolysis may promote invasion, and OXPHOS-driven metabolism may be associated with proliferation, chemoresistance, and stemness. Many ovarian cancer cells are known to favor glycolysis over OXPHOS, but the opposite takes place in the subpopulation of cancer cells. The preference for glycolysis versus OXPHOS in ovarian cancer cells may be determined by histopathologic types, the unique genetic profile of energy metabolism, and intrinsic (e.g., oncogenic signaling) and extrinsic (e.g., nutritional status and hypoxia) factors. Conclusions: Preclinical studies suggest that mitochondrial dynamics regulators have therapeutic potential in ovarian cancer, but some factors limit their beneficial effects.
引用
收藏
页码:275 / 293
页数:19
相关论文
共 136 条
  • [61] MFN1 deacetylation activates adaptive mitochondrial fusion and protects metabolically challenged mitochondria
    Lee, Joo-Yong
    Kapur, Meghan
    Li, Ming
    Choi, Moon-Chang
    Choi, Sujin
    Kim, Hak-June
    Kim, Inhye
    Lee, Eunji
    Taylor, J. Paul
    Yao, Tso-Pang
    [J]. JOURNAL OF CELL SCIENCE, 2014, 127 (22) : 4954 - 4963
  • [62] Mitochondrial Fusion Via OPA1 and MFN1 Supports Liver Tumor Cell Metabolism and Growth
    Li, Meng
    Wang, Ling
    Wang, Yijin
    Zhang, Shaoshi
    Zhou, Guoying
    Lieshout, Ruby
    Ma, Buyun
    Liu, Jiaye
    Qu, Changbo
    Verstegen, Monique M. A.
    Sprengers, Dave
    Kwekkeboom, Jaap
    van der Laan, Luc J. W.
    Cao, Wanlu
    Peppelenbosch, Maikel P.
    Pan, Qiuwei
    [J]. CELLS, 2020, 9 (01)
  • [63] Quantitative proteomics revealed energy metabolism pathway alterations in human epithelial ovarian carcinoma and their regulation by the antiparasite drug ivermectin: data interpretation in the context of 3P medicine
    Li, Na
    Li, Huanni
    Wang, Ya
    Cao, Lanqin
    Zhan, Xianquan
    [J]. EPMA JOURNAL, 2020, 11 (04) : 661 - 694
  • [64] The lncRNA SNHG3 regulates energy metabolism of ovarian cancer by an analysis of mitochondrial proteomes
    Li, Na
    Zhan, Xiaohan
    Zhan, Xianquan
    [J]. GYNECOLOGIC ONCOLOGY, 2018, 150 (02) : 343 - 354
  • [65] Mitochondrial Biogenesis in Neurodegeneration
    Li, P. Andy A.
    Hou, Xiaolin
    Hao, Shaocai
    [J]. JOURNAL OF NEUROSCIENCE RESEARCH, 2017, 95 (10) : 2025 - 2029
  • [66] PKM2 coordinates glycolysis with mitochondrial fusion and oxidative phosphorylation
    Li, Tong
    Han, Jinbo
    Jia, Liangjie
    Hu, Xiao
    Chen, Liqun
    Wang, Yiguo
    [J]. PROTEIN & CELL, 2019, 10 (08) : 583 - 594
  • [67] Mitochondrial pyruvate carrier function determines cell stemness and metabolic reprogramming in cancer cells
    Li, Xiaoli
    Han, Gaoyang
    Li, Xiaoran
    Kan, Quancheng
    Fan, Zhirui
    Li, Yaqing
    Ji, Yasai
    Zhao, Jing
    Zhang, Mingzhi
    Grigalavicius, Mantas
    Berge, Viktor
    Goscinski, Mariusz Adam
    Nesland, Jahn M.
    Suo, Zhenhe
    [J]. ONCOTARGET, 2017, 8 (28): : 46363 - 46380
  • [68] Discovery of a Novel, Potent, Orally Active, and Safe Inhibitor Targeting Human Mitochondrial RNA Polymerase
    Li, Xinnan
    Ze, Xiaotong
    Zhou, Shengnan
    Hu, Zhaoxin
    He, Chen
    Jia, Yilin
    Liu, Lihua
    Wang, Tao
    Li, Junda
    Xu, Shengtao
    Yang, Dong-Hua
    Chen, Zhe-Sheng
    Yao, Hequan
    Xu, Jinyi
    Yao, Hong
    [J]. JOURNAL OF MEDICINAL CHEMISTRY, 2023, 66 (07) : 5118 - 5153
  • [69] Li YQ, 2016, AM J CANCER RES, V6, P2076
  • [70] DRP1 upregulation promotes pancreatic cancer growth and metastasis through increased aerobic glycolysis
    Liang, Jing
    Yang, Yiping
    Bai, Lu
    Li, Feng
    Li, Enxiao
    [J]. JOURNAL OF GASTROENTEROLOGY AND HEPATOLOGY, 2020, 35 (05) : 885 - 895