Liu Tianbao, Li Yin, Wang Dawei, Stauber Tobias, Zhao Jiajun
Key Laboratory of Endocrine Glucose & Lipids Metabolism and Brain Aging, Ministry of Education, Department of Endocrinology, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, Shandong, China.
Shandong Key Laboratory of Endocrinology and Lipid Metabolism, Jinan, Shandong, China.
Front Pharmacol. 2023 Jul 19;14:1234885. doi: 10.3389/fphar.2023.1234885. eCollection 2023.
In this study, we utilized bibliometric methods to assess the worldwide scientific output and identify hotspots related to the research on the volume-regulated anion channel (VRAC) from 2014 to 2022. From Web of Science, we obtained studies related to VRAC published from 2014 to 2022. To analyzed the data, we utilized VOSviewer, a tool for visualizing network, to create networks based on the collaboration between countries, institutions, and authors. Additionally, we performed an analysis of journal co-citation, document citation, and co-occurrence of keywords. Furthermore, we employed CiteSpace (6.1. R6 Advanced) to analyzed keywords and co-cited references with the strongest burst. The final analysis included a total of 278 related articles and reviews, covering the period from 2014 to 2022. The United States emerged as the leading country contributing to this field, while the University of Copenhagen stood out as the most prominent institution. The author with most publications and most citations was Thomas J. Jentsch. Among the cited references, the article by Voss et al. published in Science (2014) gained significant attention for its identification of LRRC8 heteromers as a crucial component of the volume-regulated anion channel VRAC. Pflügers Archiv European Journal of Physiology and Journal of Physiology-London were the leading journals in terms of the quantity of associated articles and citations. Through the analysis of keyword co-occurrence, it was discovered that VRAC is involved in various physiological processes including cell growth, migration, apoptosis, swelling, and myogenesis, as well as anion and organic osmolyte transport including chloride, taurine, glutamate and ATP. VRAC is also associated with related ion channels such as TMEM16A, TMEM16F, pannexin, and CFTR, and associated with various diseases including epilepsy, leukodystrophy, atherosclerosis, hypertension, cerebral edema, stroke, and different types of cancer including gastric cancer, glioblastoma and hepatocellular carcinoma. Furthermore, VRAC is involved in anti-tumor drug resistance by regulating the uptake of platinum-based drugs and temozolomide. Additionally, VRAC has been studied in the context of pharmacology involving DCPIB and flavonoids. The aim of this bibliometric analysis is to provide an overall perspective for research on VRAC. VRAC has become a topic of increasing interest, and our analysis shows that it continues to be a prominent area. This study offers insights into the investigation of VRAC channel and may guide researchers in identifying new directions for future research.
在本研究中,我们运用文献计量学方法评估了2014年至2022年期间全球范围内与容积调节性阴离子通道(VRAC)研究相关的科学产出,并确定了研究热点。我们从科学网获取了2014年至2022年发表的与VRAC相关的研究。为了分析数据,我们使用了VOSviewer(一种用于可视化网络的工具),根据国家、机构和作者之间的合作创建网络。此外,我们还进行了期刊共被引分析、文献被引分析以及关键词共现分析。此外,我们使用CiteSpace(6.1. R6高级版)分析关键词和具有最强爆发性的共被引参考文献。最终分析共纳入278篇相关文章和综述,涵盖2014年至2022年期间。美国成为该领域的主要贡献国,而哥本哈根大学是最突出的机构。发表文章最多且被引次数最多的作者是托马斯·J·延奇。在被引参考文献中,沃斯等人于2014年发表在《科学》杂志上的文章因将LRRC8异聚体鉴定为容积调节性阴离子通道VRAC的关键组成部分而备受关注。《 Pflügers Archiv欧洲生理学杂志》和《伦敦生理学杂志》是相关文章数量和被引次数方面的领先期刊。通过关键词共现分析发现,VRAC参与多种生理过程,包括细胞生长、迁移、凋亡、肿胀和肌生成,以及阴离子和有机渗透溶质转运,包括氯离子、牛磺酸、谷氨酸和ATP。VRAC还与相关离子通道如TMEM16A、TMEM16F、泛连接蛋白和CFTR相关,并与多种疾病相关,包括癫痫、脑白质营养不良、动脉粥样硬化、高血压、脑水肿、中风以及不同类型的癌症,包括胃癌、胶质母细胞瘤和肝细胞癌。此外,VRAC通过调节铂类药物和替莫唑胺的摄取参与抗肿瘤耐药性。此外,VRAC还在涉及DCPIB和类黄酮的药理学背景下进行了研究。本文献计量分析的目的是为VRAC研究提供一个全面的视角。VRAC已成为一个越来越受关注的话题,我们的分析表明它仍然是一个突出的领域。本研究为VRAC通道的研究提供了见解,并可能指导研究人员确定未来研究的新方向。