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For: Lee M, Yoon JH. Metabolic interplay between glycolysis and mitochondrial oxidation: The reverse Warburg effect and its therapeutic implication. World J Biol Chem 2015; 6(3): 148-161 [PMID: 26322173 DOI: 10.4331/wjbc.v6.i3.148]
URL: https://www.wjgnet.com/1007-9327/full/v6/i3/148.htm
Number Citing Articles
1
Yao Wang, Jingjing Sun, Yang Yang, Sonia Zebaze Dongmo, Yeben Qian, Zhen Wang. Identification and Development of Subtypes with Poor Prognosis in Gastric Cancer Based on Both Hypoxia and Immune Cell InfiltrationInternational Journal of General Medicine 2021; : 9379 doi: 10.2147/IJGM.S326647
2
Bhanumita Agrawal, Soad Boulos, Soliman Khatib, Yonatan Feuermann, Julia Panov, Hanoch Kaphzan. Molecular Insights into Transcranial Direct Current Stimulation Effects: Metabolomics and Transcriptomics AnalysesCells 2024; 13(3): 205 doi: 10.3390/cells13030205
3
Peck Yean Tan, Cheng Wei Chang, Kaibo Duan, Michael Poidinger, Kai Lyn Ng, Yap Seng Chong, Peter D. Gluckman, Walter Stünkel, Jun Sun. E2F1 Orchestrates Transcriptomics and Oxidative Metabolism in Wharton’s Jelly-Derived Mesenchymal Stem Cells from Growth-Restricted InfantsPLOS ONE 2016; 11(9): e0163035 doi: 10.1371/journal.pone.0163035
4
Sajad Dar, Jasdeep Chhina, Ismail Mert, Dhananjay Chitale, Thomas Buekers, Hareena Kaur, Shailendra Giri, Adnan Munkarah, Ramandeep Rattan. Bioenergetic Adaptations in Chemoresistant Ovarian Cancer CellsScientific Reports 2017; 7(1) doi: 10.1038/s41598-017-09206-0
5
Shirisha Jonnalagadda, Sravan K. Jonnalagadda, Conor T. Ronayne, Grady L. Nelson, Lucas N. Solano, Jon Rumbley, Jon Holy, Venkatram R. Mereddy, Lester R. Drewes. Novel N,N-dialkyl cyanocinnamic acids as monocarboxylate transporter 1 and 4 inhibitorsOncotarget 2019; 10(24): 2355 doi: 10.18632/oncotarget.26760
6
Grady L. Nelson, Conor T. Ronayne, Lucas N. Solano, Sravan K. Jonnalagadda, Shirisha Jonnalagadda, Jon Rumbley, Jon Holy, Teresa Rose-Hellekant, Lester R. Drewes, Venkatram R. Mereddy. Development of Novel Silyl Cyanocinnamic Acid Derivatives as Metabolic Plasticity Inhibitors for Cancer TreatmentScientific Reports 2019; 9(1) doi: 10.1038/s41598-019-54709-7
7
Hui Chen, Qing Wu, Liu Peng, Ting Cao, Man-Ling Deng, Yi-Wen Liu, Jia Huang, Yang Hu, Nian Fu, Ke-Bing Zhou, Mei-Ling Yang, Xue-Feng Yang, Songwen Tan. Mechanism, Clinical Significance, and Treatment Strategy of Warburg Effect in Hepatocellular CarcinomaJournal of Nanomaterials 2021; 2021: 1 doi: 10.1155/2021/5164100
8
Chiara Galber, Simone Fabbian, Cristina Gatto, Martina Grandi, Stefania Carissimi, Manuel Jesus Acosta, Gianluca Sgarbi, Natascia Tiso, Francesco Argenton, Giancarlo Solaini, Alessandra Baracca, Massimo Bellanda, Valentina Giorgio. The mitochondrial inhibitor IF1 binds to the ATP synthase OSCP subunit and protects cancer cells from apoptosisCell Death & Disease 2023; 14(1) doi: 10.1038/s41419-023-05572-y
9
Durga Khandekar, Suneetha Amara, Venkataswarup Tiriveedhi. Immunogenicity of Tumor Initiating Stem Cells: Potential Applications in Novel Anticancer TherapyFrontiers in Oncology 2019; 9 doi: 10.3389/fonc.2019.00315
10
Na Li, Xiaohan Zhan, Xianquan Zhan. The lncRNA SNHG3 regulates energy metabolism of ovarian cancer by an analysis of mitochondrial proteomesGynecologic Oncology 2018; 150(2): 343 doi: 10.1016/j.ygyno.2018.06.013
11
Sonu Benny, Rohan Mishra, Maneesha K Manojkumar, T.P. Aneesh. From Warburg effect to Reverse Warburg effect; the new horizons of anti-cancer therapyMedical Hypotheses 2020; 144: 110216 doi: 10.1016/j.mehy.2020.110216
12
Suneetha Amara, Mu Zheng, Venkataswarup Tiriveedhi. Oleanolic Acid Inhibits High Salt-Induced Exaggeration of Warburg-like Metabolism in Breast Cancer CellsCell Biochemistry and Biophysics 2016; 74(3): 427 doi: 10.1007/s12013-016-0736-7
13
Ralf-Peter Czekay, Dong-Joo Cheon, Rohan Samarakoon, Stacie M. Kutz, Paul J. Higgins. Cancer-Associated Fibroblasts: Mechanisms of Tumor Progression and Novel Therapeutic TargetsCancers 2022; 14(5): 1231 doi: 10.3390/cancers14051231
14
Daire J. Hurley, Mustapha Irnaten, Colm O’Brien. Metformin and Glaucoma—Review of Anti-Fibrotic Processes and BioenergeticsCells 2021; 10(8): 2131 doi: 10.3390/cells10082131
15
Bo-Yu Yu, Ling-Gai Shi, Chang Jiang, Guang-Ke Wang, Jun Liu, Tian-Yi Wu. Kinesin Family Member C1 Overexpression Exerts Tumor-Promoting Properties in Head and Neck Squamous Cell Carcinoma via the Rac1/Wnt/β-catenin PathwayLaboratory Investigation 2023; 103(7): 100134 doi: 10.1016/j.labinv.2023.100134
16
Yongxian Zhuang, Reynold C. Ly, Carleigh V. Frazier, Jia Yu, Sisi Qin, Xiao-Yang Fan, Matthew P. Goetz, Judy C. Boughey, Richard Weinshilboum, Liewei Wang. The novel function of tumor protein D54 in regulating pyruvate dehydrogenase and metformin cytotoxicity in breast cancerCancer & Metabolism 2019; 7(1) doi: 10.1186/s40170-018-0193-4
17
Rosana Crespo, Boris E. Rodenak-Kladniew, María A. Castro, María V. Soberón, Sabrina M.L. Lavarías. Induction of oxidative stress as a possible mechanism by which geraniol affects the proliferation of human A549 and HepG2 tumor cellsChemico-Biological Interactions 2020; 320: 109029 doi: 10.1016/j.cbi.2020.109029
18
Ana Cavaco, Maryam Rezaei, Stephan Niland, Johannes A. Eble. Collateral Damage Intended—Cancer-Associated Fibroblasts and Vasculature Are Potential Targets in Cancer TherapyInternational Journal of Molecular Sciences 2017; 18(11): 2355 doi: 10.3390/ijms18112355
19
Ling Mao, Xiaoweng Wu, Zhengpeng Gong, Ming Yu, Zhi Huang. PDIA6 contributes to aerobic glycolysis and cancer progression in oral squamous cell carcinomaWorld Journal of Surgical Oncology 2021; 19(1) doi: 10.1186/s12957-021-02190-w
20
Yuzhen Ouyang, Yanping Liu, Zhiming M. Wang, Zongwen Liu, Minghua Wu. FLIM as a Promising Tool for Cancer Diagnosis and Treatment MonitoringNano-Micro Letters 2021; 13(1) doi: 10.1007/s40820-021-00653-z
21
Zhaolun Meng, Yan Wang, Xiao Wang, Xuefeng Han. TRIB3 promotes the growth of oral squamous cell carcinoma by regulating JNK/JUN-mediated aerobic glycolysisArchives of Oral Biology 2024; : 105977 doi: 10.1016/j.archoralbio.2024.105977
22
Alexey Osipov, Tatiana Terpinskaya, Tatiana Kuznetsova, Elena Ryzhkovskaya, Vladimir Lukashevich, Julia Rudnichenko, Vladimir Ulashchyk, Vladislav Starkov, Yuri Utkin. Cobra Venom Factor and Ketoprofen Abolish the Antitumor Effect of Nerve Growth Factor from Cobra VenomToxins 2017; 9(9): 274 doi: 10.3390/toxins9090274
23
Fang Yuan, Bin Song, Zixing Huang, Xijiao Liu, Chunchao Xia. Glucose as a stimulation agent in the BOLD functional magnetic resonance imaging for liver cirrhosis and hepatocellular carcinoma: a feasibility studyAbdominal Radiology 2018; 43(3): 607 doi: 10.1007/s00261-017-1264-7
24
Eunah Shin, Ja Seung Koo. Glucose Metabolism and Glucose Transporters in Breast CancerFrontiers in Cell and Developmental Biology 2021; 9 doi: 10.3389/fcell.2021.728759
25
Na Li, Xiaohan Zhan, Xianquan Zhan. Molecular Medicine2019;  doi: 10.5772/intechopen.80622
26
Yves Lecarpentier, Olivier Schussler, Jean-Louis Hébert, Alexandre Vallée. Multiple Targets of the Canonical WNT/β-Catenin Signaling in CancersFrontiers in Oncology 2019; 9 doi: 10.3389/fonc.2019.01248
27
Aalia Batool, Su-Ren Chen, Yi-Xun Liu. Distinct Metabolic Features of Seminoma and Embryonal Carcinoma Revealed by Combined Transcriptome and Metabolome AnalysesJournal of Proteome Research 2019; 18(4): 1819 doi: 10.1021/acs.jproteome.9b00007
28
Fabian Morales-Polanco, Christian Bates, Jennifer Lui, Joseph Casson, Clara A. Solari, Mariavittoria Pizzinga, Gabriela Forte, Claire Griffin, Kirsten E.L. Garner, Harriet E. Burt, Hannah L. Dixon, Simon Hubbard, Paula Portela, Mark P. Ashe. Core Fermentation (CoFe) granules focus coordinated glycolytic mRNA localization and translation to fuel glucose fermentationiScience 2021; 24(2): 102069 doi: 10.1016/j.isci.2021.102069
29
Ling Chen, Li Guo, Ziwen Sun, Guochun Yang, Jing Guo, Kai Chen, Ruixue Xiao, Xigui Yang, Lijun Sheng. <p>Monoamine Oxidase A is a Major Mediator of Mitochondrial Homeostasis and Glycolysis in Gastric Cancer Progression</p>Cancer Management and Research 2020; : 8023 doi: 10.2147/CMAR.S257848
30
Anastasiya V. Snezhkina, Anna V. Kudryavtseva, Olga L. Kardymon, Maria V. Savvateeva, Nataliya V. Melnikova, George S. Krasnov, Alexey A. Dmitriev. ROS Generation and Antioxidant Defense Systems in Normal and Malignant CellsOxidative Medicine and Cellular Longevity 2019; 2019: 1 doi: 10.1155/2019/6175804
31
Peter Vaupel, Gabriele Multhoff. Oxygen Transport to Tissue XLIAdvances in Experimental Medicine and Biology 2020; 1232: 169 doi: 10.1007/978-3-030-34461-0_21
32
Elizabeth Varghese, Samson Mathews Samuel, Alena Líšková, Marek Samec, Peter Kubatka, Dietrich Büsselberg. Targeting Glucose Metabolism to Overcome Resistance to Anticancer Chemotherapy in Breast CancerCancers 2020; 12(8): 2252 doi: 10.3390/cancers12082252
33
Lenka Koklesova, Alena Mazurakova, Marek Samec, Erik Kudela, Kamil Biringer, Peter Kubatka, Olga Golubnitschaja. Mitochondrial health quality control: measurements and interpretation in the framework of predictive, preventive, and personalized medicineEPMA Journal 2022; 13(2): 177 doi: 10.1007/s13167-022-00281-6
34
Shi‐Yann Cheng, Yao‐Chih Yang, Kuan‐lun Ting, Su-Ying Wen, Vijaya Padma Viswanadha, Chih‐Yang Huang, Wei‐Wen Kuo. Lactate dehydrogenase downregulation mediates the inhibitory effect of diallyl trisulfide on proliferation, metastasis, and invasion in triple‐negative breast cancerEnvironmental Toxicology 2017; 32(4): 1390 doi: 10.1002/tox.22333
35
Riva Shmulevich, Tsipi Ben-Kasus Nissim, Ido Wolf, Keren Merenbakh-Lamin, Daniel Fishman, Israel Sekler, Tami Rubinek. Klotho rewires cellular metabolism of breast cancer cells through alteration of calcium shuttling and mitochondrial activityOncogene 2020; 39(24): 4636 doi: 10.1038/s41388-020-1313-5
36
Michelle Potter, Emma Newport, Karl J. Morten. The Warburg effect: 80 years onBiochemical Society Transactions 2016; 44(5): 1499 doi: 10.1042/BST20160094
37
Rui-Jie Zeng, Chun-Wen Zheng, Wan-Xian Chen, Li-Yan Xu, En-Min Li. Rho GTPases in cancer radiotherapy and metastasisCancer and Metastasis Reviews 2020; 39(4): 1245 doi: 10.1007/s10555-020-09923-5
38
Guanqun Zhu, Degui Wang, Shenqian Li, Xuecheng Yang, Yanwei Cao, Yonghua Wang, Haitao Niu. Acute effect of lactic acid on tumor-endothelial cell metabolic coupling in the tumor microenvironmentOncology Letters 2016; 12(5): 3478 doi: 10.3892/ol.2016.5047
39
Luisa Aring, Eun‐Kyung Choi, Huira Kopera, Thomas Lanigan, Shigeki Iwase, Daniel J. Klionsky, Young Ah Seo. A neurodegeneration gene, WDR45, links impaired ferritinophagy to iron accumulationJournal of Neurochemistry 2022; 160(3): 356 doi: 10.1111/jnc.15548
40
Mira Bosso, Dania Haddad, Ashraf Al Madhoun, Fahd Al-Mulla. Targeting the Metabolic Paradigms in Cancer and DiabetesBiomedicines 2024; 12(1): 211 doi: 10.3390/biomedicines12010211
41
Nima Zafari, Mahla Velayati, Sedigheh Damavandi, Ghazaleh Pourali, Majid Ghayour Mobarhan, Mohammadreza Nassiri, Seyed Mahdi Hassanian, Majid Khazaei, Gordon A. Ferns, Amir Avan. Metabolic Pathways Regulating Colorectal Cancer: A Potential Therapeutic ApproachCurrent Pharmaceutical Design 2022; 28(36): 2995 doi: 10.2174/1381612828666220922111342
42
Rosa Maria Pascale, Diego Francesco Calvisi, Maria Maddalena Simile, Claudio Francesco Feo, Francesco Feo. The Warburg Effect 97 Years after Its DiscoveryCancers 2020; 12(10): 2819 doi: 10.3390/cancers12102819
43
Andrea Deledda, Emanuele Giordano, Fernanda Velluzzi, Giovanna Flore, Sara Franceschelli, Lorenza Speranza, Patrizio Ripari. Mitochondrial Aging and Senolytic Natural Products with Protective PotentialInternational Journal of Molecular Sciences 2022; 23(24): 16219 doi: 10.3390/ijms232416219
44
Jing Li, Xuting Xu, Huilian Huang, Liqin Li, Jing Chen, Yunfeng Ding, Jinliang Ping. Pink1 promotes cell proliferation and affects glycolysis in breast cancerExperimental Biology and Medicine 2022; 247(12): 985 doi: 10.1177/15353702221082613
45
Jin G. Jung, Anne Le. The Heterogeneity of Cancer MetabolismAdvances in Experimental Medicine and Biology 2021; 1311: 205 doi: 10.1007/978-3-030-65768-0_15
46
Yijing Zhao, Lei Zhou, Hui Li, Tingge Sun, Xue Wen, Xueli Li, Ying Meng, Yan Li, Mengmeng Liu, Shanshan Liu, Su-Jeong Kim, Jialin Xiao, Lingyu Li, Songling Zhang, Wei Li, Pinchas Cohen, Andrew R. Hoffman, Ji-Fan Hu, Jiuwei Cui. Nuclear-Encoded lncRNA MALAT1 Epigenetically Controls Metabolic Reprogramming in HCC Cells through the Mitophagy PathwayMolecular Therapy - Nucleic Acids 2021; 23: 264 doi: 10.1016/j.omtn.2020.09.040
47
YAO CHEN, ZIQING ZHANG, CHENGQUN LUO, ZIZI CHEN, JIANDA ZHOU. MicroRNA-18b inhibits the growth of malignant melanoma via inhibition of HIF-1α-mediated glycolysisOncology Reports 2016; 36(1): 471 doi: 10.3892/or.2016.4824
48
Rui-Xue Huang, Ping-Kun Zhou. DNA damage response signaling pathways and targets for radiotherapy sensitization in cancerSignal Transduction and Targeted Therapy 2020; 5(1) doi: 10.1038/s41392-020-0150-x
49
Vinay Sagar, Rajita Vatapalli, Barbara Lysy, Sahithi Pamarthy, Jonathan F. Anker, Yara Rodriguez, Huiying Han, Kenji Unno, Walter M. Stadler, William J. Catalona, Maha Hussain, Parkash S. Gill, Sarki A. Abdulkadir. EPHB4 inhibition activates ER stress to promote immunogenic cell death of prostate cancer cellsCell Death & Disease 2019; 10(11) doi: 10.1038/s41419-019-2042-y
50
Milica Kosic, Verica Paunovic, Biljana Ristic, Aleksandar Mircic, Mihajlo Bosnjak, Danijela Stevanovic, Tamara Kravic-Stevovic, Vladimir Trajkovic, Ljubica Harhaji-Trajkovic. 3-Methyladenine prevents energy stress-induced necrotic death of melanoma cells through autophagy-independent mechanismsJournal of Pharmacological Sciences 2021; 147(1): 156 doi: 10.1016/j.jphs.2021.06.003
51
Yaojie Fu, Shanshan Liu, Shanghelin Yin, Weihong Niu, Wei Xiong, Ming Tan, Guiyuan Li, Ming Zhou. The reverse Warburg effect is likely to be an Achilles' heel of cancer that can be exploited for cancer therapyOncotarget 2017; 8(34): 57813 doi: 10.18632/oncotarget.18175
52
Yao Rong, Fengyuan Dong, Guiqian Zhang, Mingzheng Tang, Xiashuang Zhao, Yan Zhang, Pengxian Tao, Hui Cai. The crosstalking of lactate‐Histone lactylation and tumorPROTEOMICS – Clinical Applications 2023; 17(5) doi: 10.1002/prca.202200102
53
Prabir K. Chakraborty, Soumyajit Banerjee Mustafi, Xunhao Xiong, Shailendra Kumar Dhar Dwivedi, Vasyl Nesin, Sounik Saha, Min Zhang, Danny Dhanasekaran, Muralidharan Jayaraman, Robert Mannel, Kathleen Moore, Scott McMeekin, Da Yang, Rosemary Zuna, Kai Ding, Leonidas Tsiokas, Resham Bhattacharya, Priyabrata Mukherjee. MICU1 drives glycolysis and chemoresistance in ovarian cancerNature Communications 2017; 8(1) doi: 10.1038/ncomms14634
54
Sarmistha Talukdar, Luni Emdad, Rajan Gogna, Swadesh K. Das, Paul B. Fisher. Advances in Cancer Research 2021; 152: 103 doi: 10.1016/bs.acr.2021.06.002
55
Jin G. Jung, Anne Le. The Heterogeneity of Cancer MetabolismAdvances in Experimental Medicine and Biology 2018; 1063: 167 doi: 10.1007/978-3-319-77736-8_12
56
Shirin Hekmatirad, Milad Moloudizargari, Marjan Fallah, Atena Rahimi, Vahdat Poortahmasebi, Mohammad Hossein Asghari. Cancer-associated immune cells and their modulation by melatoninImmunopharmacology and Immunotoxicology 2023; 45(6): 788 doi: 10.1080/08923973.2023.2239489
57
Jumpei F. Yamagishi, Tetsuhiro S. Hatakeyama. Microeconomics of Metabolism: The Warburg Effect as Giffen BehaviourBulletin of Mathematical Biology 2021; 83(12) doi: 10.1007/s11538-021-00952-x
58
Xingchen Wang, He Liu, Yingqian Ni, Peibo Shen, Xiuzhen Han. Lactate shuttle: from substance exchange to regulatory mechanismHuman Cell 2022; 35(1): 1 doi: 10.1007/s13577-021-00622-z
59
Megan I. Mitchell, Anna-Mart Engelbrecht. Metabolic hijacking: A survival strategy cancer cells exploit?Critical Reviews in Oncology/Hematology 2017; 109: 1 doi: 10.1016/j.critrevonc.2016.11.010
60
Elisabetta de Alteriis, Fabrizio Cartenì, Palma Parascandola, Jacinta Serpa, Stefano Mazzoleni. Revisiting the Crabtree/Warburg effect in a dynamic perspective: a fitness advantage against sugar-induced cell deathCell Cycle 2018; 17(6): 688 doi: 10.1080/15384101.2018.1442622
61
Su Yeon Lee, Eui Kyong Jeong, Min Kyung Ju, Hyun Min Jeon, Min Young Kim, Cho Hee Kim, Hye Gyeong Park, Song Iy Han, Ho Sung Kang. Induction of metastasis, cancer stem cell phenotype, and oncogenic metabolism in cancer cells by ionizing radiationMolecular Cancer 2017; 16(1) doi: 10.1186/s12943-016-0577-4
62
Yu‐Ting Huang, Pei‐Chin Yeh, Shih‐Chun Lan, Pei‐Fen Liu. Metabolites modulate the functional state of human uridine phosphorylase IProtein Science 2020; 29(11): 2189 doi: 10.1002/pro.3939
63
James Kealey, Heiko Düssmann, Irene Llorente-Folch, Natalia Niewidok, Manuela Salvucci, Jochen H. M. Prehn, Beatrice D’Orsi. Effect of TP53 deficiency and KRAS signaling on the bioenergetics of colon cancer cells in response to different substrates: A single cell studyFrontiers in Cell and Developmental Biology 2022; 10 doi: 10.3389/fcell.2022.893677
64
Keerthana Gnanapradeepan, Subhasree Basu, Thibaut Barnoud, Anna Budina-Kolomets, Che-Pei Kung, Maureen E. Murphy. The p53 Tumor Suppressor in the Control of Metabolism and FerroptosisFrontiers in Endocrinology 2018; 9 doi: 10.3389/fendo.2018.00124
65
Haiying Xu, Lanqing Li, Shunshun Wang, Zijun Wang, Linghang Qu, Chunli Wang, Kang Xu. Royal jelly acid suppresses hepatocellular carcinoma tumorigenicity by inhibiting H3 histone lactylation at H3K9la and H3K14la sitesPhytomedicine 2023; 118: 154940 doi: 10.1016/j.phymed.2023.154940
66
Saurabh Kumar Jha, Rahul Yadav, Kumari Swati, Niraj Kumar Jha, Ankur Sharma, Fahad Khan, Neeraj Kumar, Parma Nand, Prabhjot Kaur, Tanaya Gover, Geetika Rawat. Cancer Cell Metabolism: A Potential Target for Cancer Therapy2020; : 147 doi: 10.1007/978-981-15-1991-8_10
67
Vusala Snyder, Tamika C. Reed-Newman, Levi Arnold, Sufi Mary Thomas, Shrikant Anant. Cancer Stem Cell Metabolism and Potential Therapeutic TargetsFrontiers in Oncology 2018; 8 doi: 10.3389/fonc.2018.00203
68
Zhan Su, Guimei Zhang, Xiangting Li, Haining Zhang. Inverse correlation between Alzheimer’s disease and cancer from the perspective of hypoxiaNeurobiology of Aging 2023; 131: 59 doi: 10.1016/j.neurobiolaging.2023.07.002
69
Ziwei Dai, Alexander A. Shestov, Luhua Lai, Jason W. Locasale. A Flux Balance of Glucose Metabolism Clarifies the Requirements of the Warburg EffectBiophysical Journal 2016; 111(5): 1088 doi: 10.1016/j.bpj.2016.07.028
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Prajna Paramita Naik. Autophagy in tumor and tumor microenvironment2020; : 117 doi: 10.1007/978-981-15-6930-2_6
71
Miljana Nenkov, Yunxia Ma, Nikolaus Gaßler, Yuan Chen. Metabolic Reprogramming of Colorectal Cancer Cells and the Microenvironment: Implication for TherapyInternational Journal of Molecular Sciences 2021; 22(12): 6262 doi: 10.3390/ijms22126262
72
Ali Khammanivong, Jhuma Saha, Angela K. Spartz, Brent S. Sorenson, Alexander G. Bush, Derek M. Korpela, Raj Gopalakrishnan, Shirisha Jonnalagadda, Venkatram R. Mereddy, Timothy D. O'Brien, Lester R. Drewes, Erin B. Dickerson. A novel MCT1 and MCT4 dual inhibitor reduces mitochondrial metabolism and inhibits tumour growth of feline oral squamous cell carcinomaVeterinary and Comparative Oncology 2020; 18(3): 324 doi: 10.1111/vco.12551
73
Siting Zhu, Ze’e Chen, Mason Zhu, Ying Shen, Leonardo J. Leon, Liguo Chi, Simone Spinozzi, Changming Tan, Yusu Gu, Anh Nguyen, Yi Zhou, Wei Feng, Frédéric M. Vaz, Xiaohong Wang, Asa B. Gustafsson, Sylvia M. Evans, Ouyang Kunfu, Xi Fang. Cardiolipin Remodeling Defects Impair Mitochondrial Architecture and Function in a Murine Model of Barth Syndrome CardiomyopathyCirculation: Heart Failure 2021; 14(6) doi: 10.1161/CIRCHEARTFAILURE.121.008289
74
Alexandra M. Kozlov, Asad Lone, Dean H. Betts, Robert C. Cumming. Lactate preconditioning promotes a HIF-1α-mediated metabolic shift from OXPHOS to glycolysis in normal human diploid fibroblastsScientific Reports 2020; 10(1) doi: 10.1038/s41598-020-65193-9
75
Su Yeon Lee, Min Kyung Ju, Hyun Min Jeon, Yig Ji Lee, Cho Hee Kim, Hye Gyeong Park, Song Iy Han, Ho Sung Kang. Oncogenic Metabolism Acts as a Prerequisite Step for Induction of Cancer Metastasis and Cancer Stem Cell PhenotypeOxidative Medicine and Cellular Longevity 2018; 2018: 1 doi: 10.1155/2018/1027453
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Xiu Zhang, Dan Wu, Mohanad Aldarouish, Xiaodong Yin, Chunyan Li, Cailian Wang. ETS-1: A potential target of glycolysis for metabolic therapy by regulating glucose metabolism in pancreatic cancerInternational Journal of Oncology 2017; 50(1): 232 doi: 10.3892/ijo.2016.3770
77
Bi Wang, Yingnan Yuan, Yin Zou, Zhengjun Qi, Guijia Huang, Yi Liu, Shan Xia, Yu Huang, Zhi Huang. Fructose-1,6-bisphosphatase 2 represses cervical cancer progression via inhibiting aerobic glycolysis through promoting pyruvate kinase isozyme type M2 ubiquitinationAnti-Cancer Drugs 2022; 33(1): e198 doi: 10.1097/CAD.0000000000001185
78
Jin-Jia Chang, Xiao-Yu Wang, Wei Zhang, Cong Tan, Wei-Qi Sheng, Mi-Die Xu. Comprehensive molecular characterization and identification of prognostic signature in stomach adenocarcinoma on the basis of energy-metabolism-related genesWorld Journal of Gastrointestinal Oncology 2022; 14(2): 478-497 doi: 10.4251/wjgo.v14.i2.478
79
Nan Niu, Jinfeng Ye, Zhangli Hu, Junbin Zhang, Yun Wang. Regulative Roles of Metabolic Plasticity Caused by Mitochondrial Oxidative Phosphorylation and Glycolysis on the Initiation and Progression of TumorigenesisInternational Journal of Molecular Sciences 2023; 24(8): 7076 doi: 10.3390/ijms24087076
80
Mengmeng Li, Jiangjuan Shao, Zijian Guo, Chun Jin, Ling Wang, Feixia Wang, Yan Jia, Zhenzhu Zhu, Ziji Zhang, Feng Zhang, Shizhong Zheng, Xiaoyong Wang. Novel mitochondrion‐targeting copper(II) complex induces HK2 malfunction and inhibits glycolysis via Drp1‐mediating mitophagy in HCCJournal of Cellular and Molecular Medicine 2020; 24(5): 3091 doi: 10.1111/jcmm.14971
81
Linlin Lv, Shilei Yang, Yanna Zhu, Xiaohan Zhai, Shuai Li, Xufeng Tao, Deshi Dong. Relationship between metabolic reprogramming and drug resistance in breast cancerFrontiers in Oncology 2022; 12 doi: 10.3389/fonc.2022.942064
82
Chuanzong Zhao, Ben Wang, Enyu Liu, Zongli Zhang. Loss of PTEN expression is associated with PI3K pathway-dependent metabolic reprogramming in hepatocellular carcinomaCell Communication and Signaling 2020; 18(1) doi: 10.1186/s12964-020-00622-w
83
Manoj Amrutkar, Ivar P. Gladhaug. Stellate Cells Aid Growth-Permissive Metabolic Reprogramming and Promote Gemcitabine Chemoresistance in Pancreatic CancerCancers 2021; 13(4): 601 doi: 10.3390/cancers13040601
84
Dhanush Haspula, Andrew K. Vallejos, Timothy M. Moore, Namrata Tomar, Ranjan K. Dash, Brian R. Hoffmann. Influence of a Hyperglycemic Microenvironment on a Diabetic Versus Healthy Rat Vascular Endothelium Reveals Distinguishable Mechanistic and Phenotypic ResponsesFrontiers in Physiology 2019; 10 doi: 10.3389/fphys.2019.00558
85
Amy F. Martinez, Samuel S. McCachren, Marianne Lee, Helen A. Murphy, Caigang Zhu, Brian T. Crouch, Hannah L. Martin, Alaattin Erkanli, Narasimhan Rajaram, Kathleen A. Ashcraft, Andrew N. Fontanella, Mark W. Dewhirst, Nirmala Ramanujam. Metaboloptics: Visualization of the tumor functional landscape via metabolic and vascular imagingScientific Reports 2018; 8(1) doi: 10.1038/s41598-018-22480-w
86
Biao Ma, Hongcheng Cheng, Chenglong Mu, Guangfeng Geng, Tian Zhao, Qian Luo, Kaili Ma, Rui Chang, Qiangqiang Liu, Ruize Gao, Junli Nie, Jiaying Xie, Jinxue Han, Linbo Chen, Gui Ma, Yushan Zhu, Quan Chen. The SIAH2-NRF1 axis spatially regulates tumor microenvironment remodeling for tumor progressionNature Communications 2019; 10(1) doi: 10.1038/s41467-019-08618-y
87
Zahra Ghanbari Movahed, Mohsen Rastegari-Pouyani, Mohammad hossein Mohammadi, Kamran Mansouri. Cancer cells change their glucose metabolism to overcome increased ROS: One step from cancer cell to cancer stem cell?Biomedicine & Pharmacotherapy 2019; 112: 108690 doi: 10.1016/j.biopha.2019.108690
88
Katrin Schröder. Redox Control of AngiogenesisAntioxidants & Redox Signaling 2019; 30(7): 960 doi: 10.1089/ars.2017.7429
89
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