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Cited by in CrossRef
For: Pejnovic N, Jeftic I, Jovicic N, Arsenijevic N, Lukic ML. Galectin-3 and IL-33/ST2 axis roles and interplay in diet-induced steatohepatitis. World J Gastroenterol 2016; 22(44): 9706-9717 [PMID: 27956794 DOI: 10.3748/wjg.v22.i44.9706]
URL: https://www.wjgnet.com/2150-5330/full/v22/i44/9706.htm
Number Citing Articles
1
Hee-Won Moon, Mikyoung Park, Mina Hur, Hanah Kim, Won Hyeok Choe, Yeo-Min Yun. Usefulness of Enhanced Liver Fibrosis, Glycosylation Isomer of Mac-2 Binding Protein, Galectin-3, and Soluble Suppression of Tumorigenicity 2 for Assessing Liver Fibrosis in Chronic Liver DiseasesAnnals of Laboratory Medicine 2018; 38(4): 331 doi: 10.3343/alm.2018.38.4.331
2
Devaraj Ezhilarasan. Unraveling the pathophysiologic role of galectin‐3 in chronically injured liverJournal of Cellular Physiology 2023; 238(4): 673 doi: 10.1002/jcp.30956
3
Sandra Rayego‐Mateos, José Luis Morgado‐Pascual, Cristina García‐Caballero, Iolanda Lazaro, Aleix Sala‐Vila, Lucas Opazo‐Rios, Sebastian Mas‐Fontao, Jesús Egido, Marta Ruiz‐Ortega, Juan Antonio Moreno. Intravascular hemolysis triggers NAFLD characterized by a deregulation of lipid metabolism and lipophagy blockadeThe Journal of Pathology 2023; 261(2): 169 doi: 10.1002/path.6161
4
Wangyan Jiang, Zhelong Liu, Shaohua Liu, Tingting Du. Associations of advanced liver fibrosis with heart failure with preserved ejection fraction in type 2 diabetic patients according to obesity and metabolic goal achievement statusFrontiers in Endocrinology 2023; 14 doi: 10.3389/fendo.2023.1183075
5
Liang Chen, Chun Hu, Molly Hood, Juntao Kan, Xiaona Gan, Xue Zhang, Yi Zhang, Jun Du. An Integrated Approach Exploring the Synergistic Mechanism of Herbal Pairs in a Botanical Dietary Supplement: A Case Study of a Liver Protection Health FoodInternational Journal of Genomics 2020; 2020: 1 doi: 10.1155/2020/9054192
6
Hui Han, Romain Desert, Sukanta Das, Zhuolun Song, Dipti Athavale, Xiaodong Ge, Natalia Nieto. Danger signals in liver injury and restoration of homeostasisJournal of Hepatology 2020; 73(4): 933 doi: 10.1016/j.jhep.2020.04.033
7
Manhal Izzy, Lisa B. VanWagner, Grace Lin, Mario Altieri, James Y. Findlay, Jae K. Oh, Kymberly D. Watt, Samuel S. Lee. Redefining Cirrhotic Cardiomyopathy for the Modern EraHepatology 2020; 71(1): 334 doi: 10.1002/hep.30875
8
Stefano Fiorucci, Michele Biagioli, Eleonora Distrutti. Future trends in the treatment of non-alcoholic steatohepatitisPharmacological Research 2018; 134: 289 doi: 10.1016/j.phrs.2018.07.014
9
Kyung Eun Kim, Hyun Joo Shin, Yeajin Ju, Youngae Jung, Hyeong Seok An, So Jeong Lee, Eun Ae Jeong, Jaewoong Lee, Geum-Sook Hwang, Gu Seob Roh. Intermittent Fasting Attenuates Metabolic-Dysfunction-Associated Steatohepatitis by Enhancing the Hepatic Autophagy–Lysosome PathwayNutrients 2023; 15(21): 4574 doi: 10.3390/nu15214574
10
S. Zhu, Z. Wu, W. Wang, L. Wei, H. Zhou. A revisit of drugs and potential therapeutic targets against non-alcoholic fatty liver disease: learning from clinical trialsJournal of Endocrinological Investigation 2023; 47(4): 761 doi: 10.1007/s40618-023-02216-y
11
Melisa Kozaczek, Walter Bottje, Elizabeth Greene, Kentu Lassiter, Byungwhi Kong, Sami Dridi, Soheila Korourian, Reza Hakkak. Comparison of liver gene expression by RNAseq and PCR analysis after 8 weeks of feeding soy protein isolate- or casein-based diets in an obese liver steatosis rat modelFood & Function 2019; 10(12): 8218 doi: 10.1039/C9FO01387C
12
Tieshan Teng, Shuai Qiu, Yiming Zhao, Siyuan Zhao, Dequan Sun, Lingzhu Hou, Yihang Li, Ke Zhou, Xixi Yu, Changyong Yang, Yanzhang Li. Pathogenesis and Therapeutic Strategies Related to Non-Alcoholic Fatty Liver DiseaseInternational Journal of Molecular Sciences 2022; 23(14): 7841 doi: 10.3390/ijms23147841
13
Evgenija Homsak, Damien Gruson. Soluble ST2: A complex and diverse role in several diseasesClinica Chimica Acta 2020; 507: 75 doi: 10.1016/j.cca.2020.04.011
14
Andrew M. F. Johnson, Shaocong Hou, Pingping Li. Inflammation and insulin resistance: New targets encourage new thinkingBioEssays 2017; 39(9) doi: 10.1002/bies.201700036
15
Marina Boziki, Stergios A. Polyzos, Georgia Deretzi, Evangelos Kazakos, Panagiotis Katsinelos, Michael Doulberis, Georgios Kotronis, Evaggelia Giartza-Taxidou, Leonidas Laskaridis, Dimitri Tzivras, Elisabeth Vardaka, Constantinos Kountouras, Nikolaos Grigoriadis, Robert Thomann, Jannis Kountouras. A potential impact of Helicobacter pylori -related galectin-3 in neurodegenerationNeurochemistry International 2018; 113: 137 doi: 10.1016/j.neuint.2017.12.003
16
Flavio A. Cadegiani. Dietary Interventions in Liver Disease2019; : 39 doi: 10.1016/B978-0-12-814466-4.00004-5
17
Tammy R. Chaudoin, Stephen J. Bonasera. Mice lacking galectin-3 (Lgals3) function have decreased home cage movementBMC Neuroscience 2018; 19(1) doi: 10.1186/s12868-018-0428-x
18
Romain Itier, Maeva Guillaume, Jean‐Etienne Ricci, François Roubille, Nicolas Delarche, François Picard, Michel Galinier, Jérôme Roncalli. Non‐alcoholic fatty liver disease and heart failure with preserved ejection fraction: from pathophysiology to practical issuesESC Heart Failure 2021; 8(2): 789 doi: 10.1002/ehf2.13222
19
Milica M. Borovcanin, Slavica M. Janicijevic, Ivan P. Jovanovic, Nevena Gajovic, Nebojsa N. Arsenijevic, Miodrag L. Lukic. IL-33/ST2 Pathway and Galectin-3 as a New Analytes in Pathogenesis and Cardiometabolic Risk Evaluation in PsychosisFrontiers in Psychiatry 2018; 9 doi: 10.3389/fpsyt.2018.00271
20
Maria Gabriela Delgado, Jaume Bosch. HVPG Measurements as a Surrogate of Clinical Events in Cirrhosis: Experience from Clinical TrialsCurrent Hepatology Reports 2019; 18(2): 164 doi: 10.1007/s11901-019-00461-5
21
R.J. Slack, R. Mills, A.C. Mackinnon. The therapeutic potential of galectin-3 inhibition in fibrotic diseaseThe International Journal of Biochemistry & Cell Biology 2021; 130: 105881 doi: 10.1016/j.biocel.2020.105881
22
Zijian Sun, Binxia Chang, Miaomiao Gao, Jiyuan Zhang, Zhengsheng Zou. IL-33-ST2 Axis in Liver Disease: Progression and ChallengeMediators of Inflammation 2017; 2017: 1 doi: 10.1155/2017/5314213
23
Theodora Oikonomou, Ioannis Goulis, Fani Ntogramatzi, Zoi Athanasiadou, Eleni Vagdatli, Evangelos Akriviadis, Evangelos Cholongitas. Galectin-3 is associated with glomerular filtration rate and outcome in patients with stable decompensated cirrhosisDigestive and Liver Disease 2019; 51(12): 1692 doi: 10.1016/j.dld.2019.05.030
24
Linh Pham, Leonardo Baiocchi, Lindsey Kennedy, Keisaku Sato, Vik Meadows, Fanyin Meng, Chiung‐Kuei Huang, Debjyoti Kundu, Tianhao Zhou, Lixian Chen, Gianfranco Alpini, Heather Francis. The interplay between mast cells, pineal gland, and circadian rhythm: Links between histamine, melatonin, and inflammatory mediatorsJournal of Pineal Research 2021; 70(2) doi: 10.1111/jpi.12699
25
Tea Lund Laursen, Anders Mellemkjær, Holger Jon Møller, Henning Grønbæk, Konstantin Kazankov. Spotlight on liver macrophages for halting injury and progression in nonalcoholic fatty liver diseaseExpert Opinion on Therapeutic Targets 2022; 26(8): 697 doi: 10.1080/14728222.2022.2132145
26
Atef Al Attar, Ani Antaramian, Mazen Noureddin. Review of galectin-3 inhibitors in the treatment of nonalcoholic steatohepatitisExpert Review of Clinical Pharmacology 2021; 14(4): 457 doi: 10.1080/17512433.2021.1894127
27
Pio Conti, Gianpaolo Ronconi, Spyridon K. Kritas, Alessandro Caraffa, Theoharis C. Theoharides. Activated Mast Cells Mediate Low-Grade Inflammation in Type 2 Diabetes: Interleukin-37 Could Be BeneficialCanadian Journal of Diabetes 2018; 42(5): 568 doi: 10.1016/j.jcjd.2018.01.008
28
Kristiaan Wouters, Alessia S. Cento, Katrien H. Gaens, Margee Teunissen, Jean L. J. M. Scheijen, Federica Barutta, Fausto Chiazza, Debora Collotta, Manuela Aragno, Gabriella Gruden, Massimo Collino, Casper G. Schalkwijk, Raffaella Mastrocola. Deletion of RAGE fails to prevent hepatosteatosis in obese mice due to impairment of other AGEs receptors and detoxifying systemsScientific Reports 2021; 11(1) doi: 10.1038/s41598-021-96859-7
29
Mei-Juan Sun, Zhan-Qi Cao, Ping Leng. The roles of galectins in hepatic diseasesJournal of Molecular Histology 2020; 51(5): 473 doi: 10.1007/s10735-020-09898-1
30
Ivan Srejovic, Dragica Selakovic, Nemanja Jovicic, Vladimir Jakovljević, Miodrag L. Lukic, Gvozden Rosic. Galectin-3: Roles in Neurodevelopment, Neuroinflammation, and BehaviorBiomolecules 2020; 10(5): 798 doi: 10.3390/biom10050798
31
Elke Roeb. Interleukin-13 (IL-13)—A Pleiotropic Cytokine Involved in Wound Healing and FibrosisInternational Journal of Molecular Sciences 2023; 24(16): 12884 doi: 10.3390/ijms241612884
32
Svitlana Demyanets, Christoph Kaun, Alexandra Kaider, Walter Speidl, Manfred Prager, Stanislav Oravec, Philipp Hohensinner, Johann Wojta, Gersina Rega-Kaun. The pro-inflammatory marker soluble suppression of tumorigenicity-2 (ST2) is reduced especially in diabetic morbidly obese patients undergoing bariatric surgeryCardiovascular Diabetology 2020; 19(1) doi: 10.1186/s12933-020-01001-y
33
Michael Kram. Galectin-3 inhibition as a potential therapeutic target in non-alcoholic steatohepatitis liver fibrosisWorld Journal of Hepatology 2023; 15(2): 201-207 doi: 10.4254/wjh.v15.i2.201
34
Akira Hara, Masayuki Niwa, Kei Noguchi, Tomohiro Kanayama, Ayumi Niwa, Mikiko Matsuo, Yuichiro Hatano, Hiroyuki Tomita. Galectin-3 as a Next-Generation Biomarker for Detecting Early Stage of Various DiseasesBiomolecules 2020; 10(3): 389 doi: 10.3390/biom10030389
35
Sanjana Nagraj, Spyros Peppas, Maria Gabriela Rubianes Guerrero, Damianos G Kokkinidis, Felipe I Contreras-Yametti, Sandhya Murthy, Ulrich P Jorde. Cardiac risk stratification of the liver transplant candidate: A comprehensive reviewWorld Journal of Transplantation 2022; 12(7): 142-156 doi: 10.5500/wjt.v12.i7.142
36
Chung Eun Lee. Effects of Intermittent Fasting on Splenic Galectin-3 Protein Expression in High-fat Diet-fed MiceAnatomy & Biological Anthropology 2023; 36(4): 209 doi: 10.11637/aba.2023.36.4.209
37
Katrin Neumann, Birgit Schiller, Gisa Tiegs. NLRP3 Inflammasome and IL-33: Novel Players in Sterile Liver InflammationInternational Journal of Molecular Sciences 2018; 19(9): 2732 doi: 10.3390/ijms19092732
38
家亮 范. Metabolic Dysfunction-Associated Fatty Liver Disease and Cardiovascular Disease: Pathophysiological MechanismsAdvances in Clinical Medicine 2024; 14(03): 1429 doi: 10.12677/acm.2024.143861
39
Suping Qin, Dexu Sun, Jingjing Mu, Daifu Ma, Renxian Tang, Yuanlin Zheng. Purple sweet potato color improves hippocampal insulin resistance via down-regulating SOCS3 and galectin-3 in high-fat diet miceBehavioural Brain Research 2019; 359: 370 doi: 10.1016/j.bbr.2018.11.025
40
Ke Pei, Ting Gui, Dongfang Kan, Huichao Feng, Yanqiang Jin, Ying Yang, Qian Zhang, Ziwei Du, Zhibo Gai, Jibiao Wu, Yunlun Li. An Overview of Lipid Metabolism and Nonalcoholic Fatty Liver DiseaseBioMed Research International 2020; 2020: 1 doi: 10.1155/2020/4020249
41
Alison C. Mackinnon, Dimitar Tonev, Brian Jacoby, Massimo Pinzani, Robert J. Slack. Galectin-3: therapeutic targeting in liver diseaseExpert Opinion on Therapeutic Targets 2023; 27(9): 779 doi: 10.1080/14728222.2023.2258280
42
Nami Lee, Yu Jung Heo, Sung-E Choi, Ja Young Jeon, Seung Jin Han, Dae Jung Kim, Yup Kang, Kwan Woo Lee, Hae Jin Kim. Hepatoprotective effects of gemigliptin and empagliflozin in a murine model of diet-induced non-alcoholic fatty liver diseaseBiochemical and Biophysical Research Communications 2022; 588: 154 doi: 10.1016/j.bbrc.2021.12.065
43
Zhi Wang, Kailei Du, Nake Jin, Biao Tang, Wenwu Zhang. Macrophage in liver Fibrosis: Identities and mechanismsInternational Immunopharmacology 2023; 120: 110357 doi: 10.1016/j.intimp.2023.110357
44
Darrell Pilling, Tejas R. Karhadkar, Richard H. Gomer, Qinghua Sun. A CD209 ligand and a sialidase inhibitor differentially modulate adipose tissue and liver macrophage populations and steatosis in mice on the Methionine and Choline-Deficient (MCD) dietPLOS ONE 2020; 15(12): e0244762 doi: 10.1371/journal.pone.0244762
45
Melisa Kozaczek, Walter Bottje, Byungwhi Kong, Diyana Albataineh, Reza Hakkak. A Comparison of Short- and Long-Term Soy Protein Isolate Intake and Its Ability to Reduce Liver Steatosis in Obese Zucker Rats Through Modifications of Genes Involved in Inflammation and Lipid TransportJournal of Medicinal Food 2021; 24(9): 1010 doi: 10.1089/jmf.2020.0180