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Cited by in CrossRef
For: Turkmen K, Karagoz A, Kucuk A. Sirtuins as novel players in the pathogenesis of diabetes mellitus. World J Diabetes 2014; 5(6): 894-900 [PMID: 25512793 DOI: 10.4239/wjd.v5.i6.894]
URL: https://www.wjgnet.com/1007-9327/full/v5/i6/894.htm
Number Citing Articles
1
Hong Zheng, Jinzi Wu, Zhen Jin, Liang-Jun Yan. Protein Modifications as Manifestations of Hyperglycemic Glucotoxicity in Diabetes and Its ComplicationsBiochemistry Insights 2016; 9: BCI.S36141 doi: 10.4137/BCI.S36141
2
Jianhua Liu, Yun Zhang, Min Liu, Feng Shi, Bo Cheng. AG1024, an IGF-1 receptor inhibitor, ameliorates renal injury in rats with diabetic nephropathy via the SOCS/JAK2/STAT pathwayOpen Medicine 2023; 18(1) doi: 10.1515/med-2023-0683
3
Sandip K. Nandi, Rooban B. Nahomi, Peter S. Harris, Cole R. Michel, Kristofer S. Fritz, Ram H. Nagaraj. The absence of SIRT3 and SIRT5 promotes the acetylation of lens proteins and improves the chaperone activity of α-crystallin in mouse lensesExperimental Eye Research 2019; 182: 1 doi: 10.1016/j.exer.2019.02.024
4
Aynaz Mihanfar, Mohammad Nouri, Leila Roshangar, Mohammad Hassan Khadem-Ansari. Ameliorative effects of fisetin in letrozole-induced rat model of polycystic ovary syndromeThe Journal of Steroid Biochemistry and Molecular Biology 2021; 213: 105954 doi: 10.1016/j.jsbmb.2021.105954
5
Mrityunjay Singh, Mitul Srivastava, Sharad R. Wakode, Shailendra Asthana. Elucidation of Structural Determinants Delineates the Residues Playing Key Roles in Differential Dynamics and Selective Inhibition of Sirt1–3Journal of Chemical Information and Modeling 2021; 61(3): 1105 doi: 10.1021/acs.jcim.0c01193
6
Ana Arpón, Fermín I. Milagro, Omar Ramos-Lopez, M. Luisa Mansego, José Luis Santos, José-Ignacio Riezu-Boj, J. Alfredo Martínez. Epigenome-wide association study in peripheral white blood cells involving insulin resistanceScientific Reports 2019; 9(1) doi: 10.1038/s41598-019-38980-2
7
Marwa Mohammed Ibrahim Mohammed Khalil, Heba E. Kasem, Shaimaa Elsayed Ramadan Genena. Association of Insulin receptor (INR) gene rs2252673 and Sirtuin1 rs7069102 polymorphisms with diabetic nephropathy in patients with type 2 diabetes mellitusHuman Gene 2022; 33: 201078 doi: 10.1016/j.humgen.2022.201078
8
Xiao-peng Zheng, Qing Nie, Jing Feng, Xiao-yan Fan, Yue-lei Jin, Guang Chen, Ji-wei Du. Kidney-targeted baicalin-lysozyme conjugate ameliorates renal fibrosis in rats with diabetic nephropathy induced by streptozotocinBMC Nephrology 2020; 21(1) doi: 10.1186/s12882-020-01833-6
9
Maša Pintarič, Tomaž Langerholc. Probiotic Mechanisms Affecting Glucose Homeostasis: A Scoping ReviewLife 2022; 12(8): 1187 doi: 10.3390/life12081187
10
Raúl A. Salazar-González, Eneida Turiján-Espinoza, David W. Hein, Rosa C. Milán-Segovia, Edith E. Uresti-Rivera, Diana P. Portales-Pérez. Expression and genotype-dependent catalytic activity of N-acetyltransferase 2 (NAT2) in human peripheral blood mononuclear cells and its modulation by Sirtuin 1Biochemical Pharmacology 2018; 156: 340 doi: 10.1016/j.bcp.2018.08.034
11
Patricia González, Pedro Lozano, Gaspar Ros, Francisco Solano. Hyperglycemia and Oxidative Stress: An Integral, Updated and Critical Overview of Their Metabolic InterconnectionsInternational Journal of Molecular Sciences 2023; 24(11): 9352 doi: 10.3390/ijms24119352
12
Leila Khalili, Beitullah Alipour, Mohammad Asghari Jafarabadi, Tohid Hassanalilou, Mehran Mesgari Abbasi, Ismail Faraji. RETRACTED ARTICLE: Probiotic assisted weight management as a main factor for glycemic control in patients with type 2 diabetes: a randomized controlled trialDiabetology & Metabolic Syndrome 2019; 11(1) doi: 10.1186/s13098-019-0400-7
13
Zahra Arab Sadeghabadi, Mitra Nourbakhsh, Parvin Pasalar, Solaleh Emamgholipour, Abolfazl Golestani, Bagher Larijani, Maryam Razzaghy-Azar. Reduced gene expression of sirtuins and active AMPK levels in children and adolescents with obesity and insulin resistanceObesity Research & Clinical Practice 2018; 12(2): 167 doi: 10.1016/j.orcp.2017.10.004
14
Kultigin Turkmen. Sirtuin Biology in Cancer and Metabolic Disease2021; : 61 doi: 10.1016/B978-0-12-822467-0.00014-0
15
Nimisha Lingappa, Harvey N Mayrovitz . Role of Sirtuins in Diabetes and Age-Related ProcessesCureus 2022;  doi: 10.7759/cureus.28774
16
Robert N. Mahon, Richard Hafner. Immune Cell Regulatory Pathways Unexplored as Host-Directed Therapeutic Targets forMycobacterium tuberculosis: An Opportunity to Apply Precision Medicine Innovations to Infectious DiseasesClinical Infectious Diseases 2015; 61(suppl 3): S200 doi: 10.1093/cid/civ621
17
Wenjun Yu, Beilei Gao, Na Li, Jiaxing Wang, Cuiting Qiu, Guoyong Zhang, Min Liu, Rongqing Zhang, Congye Li, Gang Ji, Yingmei Zhang. Sirt3 deficiency exacerbates diabetic cardiac dysfunction: Role of Foxo3A-Parkin-mediated mitophagyBiochimica et Biophysica Acta (BBA) - Molecular Basis of Disease 2017; 1863(8): 1973 doi: 10.1016/j.bbadis.2016.10.021
18
Vemana Gowd, Qingzheng Kang, Qi Wang, Qiang Wang, Feng Chen, Ka-Wing Cheng. Resveratrol: Evidence for Its Nephroprotective Effect in Diabetic NephropathyAdvances in Nutrition 2020; 11(6): 1555 doi: 10.1093/advances/nmaa075
19
Manisha J. Oza, Yogesh A. Kulkarni. Biochanin A improves insulin sensitivity and controls hyperglycemia in type 2 diabetesBiomedicine & Pharmacotherapy 2018; 107: 1119 doi: 10.1016/j.biopha.2018.08.073
20
Sourbh Suren Garg, Jeena Gupta. Polyol pathway and redox balance in diabetesPharmacological Research 2022; 182: 106326 doi: 10.1016/j.phrs.2022.106326
21
Catherine Y Cheng, Julia Böhme, Amit Singhal. Metabolic energy sensors as targets for designing host-directed therapies for tuberculosisJournal of Leukocyte Biology 2018; 103(2): 215 doi: 10.1189/jlb.4MR0617-226R
22
Jasvinder Singh Bhatti, Gurjit Kaur Bhatti, P. Hemachandra Reddy. Mitochondrial dysfunction and oxidative stress in metabolic disorders — A step towards mitochondria based therapeutic strategiesBiochimica et Biophysica Acta (BBA) - Molecular Basis of Disease 2017; 1863(5): 1066 doi: 10.1016/j.bbadis.2016.11.010
23
Abhinav Kanwal, Liston Augustine Dsouza. Sirtuins and diabetes: optimizing the sweetness in the bloodTranslational Medicine Communications 2019; 4(1) doi: 10.1186/s41231-019-0034-7
24
Sandeep Sundriyal, Sébastien Moniot, Zimam Mahmud, Shang Yao, Paolo Di Fruscia, Christopher R. Reynolds, David T. Dexter, Michael J. E. Sternberg, Eric W.-F. Lam, Clemens Steegborn, Matthew J. Fuchter. Thienopyrimidinone Based Sirtuin-2 (SIRT2)-Selective Inhibitors Bind in the Ligand Induced Selectivity PocketJournal of Medicinal Chemistry 2017; 60(5): 1928 doi: 10.1021/acs.jmedchem.6b01690
25
Takahisa Murofushi, Hiromasa Tsuda, Yoshikazu Mikami, Yoko Yamaguchi, Naoto Suzuki. CAY10591, a SIRT1 activator, suppresses cell growth, invasion, and migration in gingival epithelial carcinoma cellsJournal of Oral Science 2017; 59(3): 415 doi: 10.2334/josnusd.16-0696
26
Z. Çalışkan, T. Mutlu, M. Güven, M. Tunçdemir, M. Niyazioğlu, Y. Hacioglu, Y. Dincer. SIRT6 expression and oxidative DNA damage in individuals with prediabetes and type 2 diabetes mellitusGene 2018; 642: 542 doi: 10.1016/j.gene.2017.11.071
27
Karina-Alexandra Cojocaru, Ionut Luchian, Ancuta Goriuc, Lucian-Mihai Antoci, Cristian-Gabriel Ciobanu, Roxana Popescu, Cristiana-Elena Vlad, Mihaela Blaj, Liliana Georgeta Foia. Mitochondrial Dysfunction, Oxidative Stress, and Therapeutic Strategies in Diabetes, Obesity, and Cardiovascular DiseaseAntioxidants 2023; 12(3): 658 doi: 10.3390/antiox12030658
28
Homer S. Black. Oxidative Stress and ROS Link Diabetes and CancerJournal of Molecular Pathology 2024; 5(1): 96 doi: 10.3390/jmp5010007
29
Sathyanarayanan Gopalakrishnan, Swaminathan Venkatraman. Prediction of influential proteins and enzymes of certain diseases using a directed unimodular hypergraphMathematical Biosciences and Engineering 2023; 21(1): 325 doi: 10.3934/mbe.2024015
30
Zahra Arab Sadeghabadi, Nasrin Ziamajidi, Roghayeh Abbasalipourkabir, Roohollah Mohseni. Garlic (Allium sativum) increases SIRT1 and SIRT2 gene expressions in the kidney and liver tissues of STZ- and STZ+niacinamide-induced diabetic ratsJournal of Basic and Clinical Physiology and Pharmacology 2018; 29(5): 463 doi: 10.1515/jbcpp-2017-0079
31
Saras Saraswathi, Sara Al-Khawaga, Naser Elkum, Khalid Hussain. A Systematic Review of Childhood Diabetes Research in the Middle East RegionFrontiers in Endocrinology 2019; 10 doi: 10.3389/fendo.2019.00805
32
Omolola R. Oyenihi, Ayodeji B. Oyenihi, Anne A. Adeyanju, Oluwafemi O. Oguntibeju. Antidiabetic Effects of Resveratrol: The Way Forward in Its Clinical UtilityJournal of Diabetes Research 2016; 2016: 1 doi: 10.1155/2016/9737483
33
Liang‐jun Yan. Redox imbalance stress in diabetes mellitus: Role of the polyol pathwayAnimal Models and Experimental Medicine 2018; 1(1): 7 doi: 10.1002/ame2.12001
34
Gabriela Elisa Hirsch, Thiago Gomes Heck. Inflammation, oxidative stress and altered heat shock response in type 2 diabetes: the basis for new pharmacological and non-pharmacological interventionsArchives of Physiology and Biochemistry 2022; 128(2): 411 doi: 10.1080/13813455.2019.1687522
35
Homer S. Black. A Synopsis of the Associations of Oxidative Stress, ROS, and Antioxidants with Diabetes MellitusAntioxidants 2022; 11(10): 2003 doi: 10.3390/antiox11102003
36
Jinzi Wu, Zhen Jin, Liang-Jun Yan. Redox imbalance and mitochondrial abnormalities in the diabetic lungRedox Biology 2017; 11: 51 doi: 10.1016/j.redox.2016.11.003
37
Meysam Zarezadeh, Vali Musazadeh, Amir Hossein Faghfouri, Bahareh Sarmadi, Parsa Jamilian, Parmida Jamilian, Helda Tutunchi, Parvin Dehghan. Probiotic therapy, a novel and efficient adjuvant approach to improve glycemic status: An umbrella meta-analysisPharmacological Research 2022; 183: 106397 doi: 10.1016/j.phrs.2022.106397
38
Manisha Sonthalia, Bhramar Sinha Roy, Divya Chandrawanshi, Goutham V. Ganesh, Ravichandran Jayasuriya, Sundhar Mohandas, Senthilkumar Rajagopal, Kunka Mohanram Ramkumar. Histone deacetylase inhibitors as antidiabetic agents: Advances and opportunitiesEuropean Journal of Pharmacology 2022; 935: 175328 doi: 10.1016/j.ejphar.2022.175328
39
Xiaoting Luo, Jinzi Wu, Siqun Jing, Liang-Jun Yan. Hyperglycemic Stress and Carbon Stress in Diabetic GlucotoxicityAging and disease 2016; 7(1): 90 doi: 10.14336/AD.2015.0702
40
Mingming Zhang, Jie Lin, Shanjie Wang, Zheng Cheng, Jianqiang Hu, Tingting Wang, Wanrong Man, Tao Yin, Wenyi Guo, Erhe Gao, Russel J. Reiter, Haichang Wang, Dongdong Sun. Melatonin protects against diabetic cardiomyopathy through Mst1/Sirt3 signalingJournal of Pineal Research 2017; 63(2) doi: 10.1111/jpi.12418
41
Tingjuan Ni, Na Lin, Xingxiao Huang, Wenqiang Lu, Zhenzhu Sun, Jie Zhang, Hui Lin, Jufang Chi, Hangyuan Guo. Icariin Ameliorates Diabetic Cardiomyopathy Through Apelin/Sirt3 Signalling to Improve Mitochondrial DysfunctionFrontiers in Pharmacology 2020; 11 doi: 10.3389/fphar.2020.00256
42
Guang Chen, Xiao-yan Fan, Xiao-peng Zheng, Yue-lei Jin, Ying Liu, Shuang-chun Liu. Human umbilical cord-derived mesenchymal stem cells ameliorate insulin resistance via PTEN-mediated crosstalk between the PI3K/Akt and Erk/MAPKs signaling pathways in the skeletal muscles of db/db miceStem Cell Research & Therapy 2020; 11(1) doi: 10.1186/s13287-020-01865-7
43
Pervin Ozkan Kurtgoz, Suleyman Karakose, Cigdem Damla Cetinkaya, Edip Erkus, Ibrahim Guney. Evaluation of sirtuin 1 (SIRT1) levels in autosomal dominant polycystic kidney diseaseInternational Urology and Nephrology 2022; 54(1): 131 doi: 10.1007/s11255-021-02862-2
44
Nasim Abedimanesh, Somayyeh Asghari, Kosar Mohammadnejad, Zahra Daneshvar, Soudeh Rahmani, Samaneh Shokoohi, Amir Hasan Farzaneh, Seyed Hojjat Hosseini, Iraj Jafari Anarkooli, Maryam Noubarani, Sina Andalib, Mohammad Reza Eskandari, Behrooz Motlagh. The anti-diabetic effects of betanin in streptozotocin-induced diabetic rats through modulating AMPK/SIRT1/NF-κB signaling pathwayNutrition & Metabolism 2021; 18(1) doi: 10.1186/s12986-021-00621-9
45
Amarjot Kaur Grewal, Nirmal Singh, Thakur Gurjeet Singh. Effects of resveratrol postconditioning on cerebral ischemia in mice: role of the sirtuin-1 pathwayCanadian Journal of Physiology and Pharmacology 2019; 97(11): 1094 doi: 10.1139/cjpp-2019-0188
46
Jinzi Wu, Xiaoting Luo, Nopporn Thangthaeng, Nathalie Sumien, Zhenglan Chen, Margaret A. Rutledge, Siqun Jing, Michael J. Forster, Liang-Jun Yan. Pancreatic mitochondrial complex I exhibits aberrant hyperactivity in diabetesBiochemistry and Biophysics Reports 2017; 11: 119 doi: 10.1016/j.bbrep.2017.07.007
47
Hatice Iskender, Eda Dokumacioglu, Tugba Mazlum Sen, Imran Ince, Yalcin Kanbay, Sinan Saral. The effect of hesperidin and quercetin on oxidative stress, NF-κB and SIRT1 levels in a STZ-induced experimental diabetes modelBiomedicine & Pharmacotherapy 2017; 90: 500 doi: 10.1016/j.biopha.2017.03.102
48
Frédéric Nicolas Daussin, Alexane Cuillerier, Julianne Touron, Samir Bensaid, Bruno Melo, Ali Al Rewashdy, Goutham Vasam, Keir J. Menzies, Mary-Ellen Harper, Elsa Heyman, Yan Burelle. Dietary Cocoa Flavanols Enhance Mitochondrial Function in Skeletal Muscle and Modify Whole-Body Metabolism in Healthy MiceNutrients 2021; 13(10): 3466 doi: 10.3390/nu13103466
49
Clifford J. Bailey. Textbook of Diabetes2017; : 1000 doi: 10.1002/9781118924853.ch67
50
J.S. Bhatti, S. Kumar, M. Vijayan, G.K. Bhatti, P.H. Reddy. Molecular Biology of AgingProgress in Molecular Biology and Translational Science 2017; 146: 13 doi: 10.1016/bs.pmbts.2016.12.012
51
Keiichiro Matoba, Yusuke Takeda, Yosuke Nagai, Tamotsu Yokota, Kazunori Utsunomiya, Rimei Nishimura. Targeting Redox Imbalance as an Approach for Diabetic Kidney DiseaseBiomedicines 2020; 8(2): 40 doi: 10.3390/biomedicines8020040
52
Duojun Qiu, Shan Song, Yuhan Wang, Yawei Bian, Ming Wu, Haijiang Wu, Yonghong Shi, Huijun Duan. NAD(P)H: quinone oxidoreductase 1 attenuates oxidative stress and apoptosis by regulating Sirt1 in diabetic nephropathyJournal of Translational Medicine 2022; 20(1) doi: 10.1186/s12967-021-03197-3
53
Bin Wang, Jinyu Li, Mi Bao, Runji Chen, Haiyan Li, Binger Lu, Meixin Chen, Danmei Huang, Yanmei Zhang, Fenfei Gao, Ganggang Shi, Antonello Lorenzini. Melatonin Attenuates Diabetic Myocardial Microvascular Injury through Activating the AMPK/SIRT1 Signaling PathwayOxidative Medicine and Cellular Longevity 2021; 2021: 1 doi: 10.1155/2021/8882130