Noncoding RNAs and Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes in Cardiac Arrhythmic Brugada Syndrome

被引:0
|
作者
Theisen, Benjamin [1 ]
Holtz, Austin [1 ]
Rajagopalan, Viswanathan [1 ,2 ]
机构
[1] Arkansas State Univ, Dept Biomed & Anat Sci, New York Inst Technol, Coll Osteopath Med, Jonesboro, AR 72401 USA
[2] Arkansas Biosci Inst, Jonesboro, AR 72401 USA
关键词
Brugada; noncoding; stem cells; heart; arrhythmia; ion channel; MiRNA; LncRNA; GENOME-WIDE ASSOCIATION; CHANNEL GENE SCN5A; J-WAVE SYNDROMES; SHORT QT; SEGMENT ELEVATION; COMMON VARIANTS; MOLECULAR-MECHANISMS; ATRIAL-FIBRILLATION; CALCIUM-CHANNEL; SUDDEN-DEATH;
D O I
10.3390/cells12192398
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Hundreds of thousands of people die each year as a result of sudden cardiac death, and many are due to heart rhythm disorders. One of the major causes of these arrhythmic events is Brugada syndrome, a cardiac channelopathy that results in abnormal cardiac conduction, severe life-threatening arrhythmias, and, on many occasions, death. This disorder has been associated with mutations and dysfunction of about two dozen genes; however, the majority of the patients do not have a definite cause for the diagnosis of Brugada Syndrome. The protein-coding genes represent only a very small fraction of the mammalian genome, and the majority of the noncoding regions of the genome are actively transcribed. Studies have shown that most of the loci associated with electrophysiological traits are located in noncoding regulatory regions and are expected to affect gene expression dosage and cardiac ion channel function. Noncoding RNAs serve an expanding number of regulatory and other functional roles within the cells, including but not limited to transcriptional, post-transcriptional, and epigenetic regulation. The major noncoding RNAs found in Brugada Syndrome include microRNAs; however, others such as long noncoding RNAs are also identified. They contribute to pathogenesis by interacting with ion channels and/or are detectable as clinical biomarkers. Stem cells have received significant attention in the recent past, and can be differentiated into many different cell types including those in the heart. In addition to contractile and relaxational properties, BrS-relevant electrophysiological phenotypes are also demonstrated in cardiomyocytes differentiated from stem cells induced from adult human cells. In this review, we discuss the current understanding of noncoding regions of the genome and their RNA biology in Brugada Syndrome. We also delve into the role of stem cells, especially human induced pluripotent stem cell-derived cardiac differentiated cells, in the investigation of Brugada syndrome in preclinical and clinical studies.
引用
收藏
页数:23
相关论文
共 50 条
  • [31] Cardiac toxicity from bisphenol A exposure in human-induced pluripotent stem cell-derived cardiomyocytes
    Hyun, Sung-Ae
    Lee, Chang Youn
    Ko, Moon Yi
    Chon, Sun-Hwa
    Kim, Ye-Ji
    Seo, Jeong-Wook
    Kim, Kee K.
    Ka, Minhan
    TOXICOLOGY AND APPLIED PHARMACOLOGY, 2021, 428
  • [32] Cardiac repair in a murine model of myocardial infarction with human induced pluripotent stem cell-derived cardiomyocytes
    Xin Jiang
    Ziyi Yang
    Ming Dong
    Stem Cell Research & Therapy, 11
  • [33] Pseudohypoxia as a promoter of the proliferation of human induced pluripotent stem cell-derived cardiomyocytes
    Uribe Brange, D.
    Raya, R.
    EUROPEAN JOURNAL OF CLINICAL INVESTIGATION, 2024, 54
  • [34] Strategies for Improving the Maturity of Human Induced Pluripotent Stem Cell-Derived Cardiomyocytes
    Tu, Chengyi
    Chao, Benjamin S.
    Wu, Joseph C.
    CIRCULATION RESEARCH, 2018, 123 (05) : 512 - 514
  • [35] Electrophysiological Effect of Citreoviridin on Human Induced Pluripotent Stem Cell-derived Cardiomyocytes
    Uchiyama, Yosuke
    Yamazaki, Daiju
    Kobayashi, Naoki
    Kanda, Yasunari
    Sugita-Konishi, Yoshiko
    FOOD HYGIENE AND SAFETY SCIENCE, 2022, 63 (06): : 210 - 217
  • [36] The effect of bisphenol A on the electrophysiology of human induced pluripotent stem cell-derived cardiomyocytes
    Hyun, Sung-Ae
    Lee, Chang Youn
    Chon, Sun-Hwa
    Lee, Young-Ju
    Ka, Min Han
    Seo, Joung-Wook
    JOURNAL OF PHARMACOLOGICAL AND TOXICOLOGICAL METHODS, 2020, 105
  • [37] Modeling Short QT Syndrome Using Human-Induced Pluripotent Stem Cell-Derived Cardiomyocytes
    El-Battrawy, Ibrahim
    Lan, Huan
    Cyganek, Lukas
    Zhao, Zhihan
    Li, Xin
    Buljubasic, Fanis
    Lang, Siegfried
    Yucel, Gokhan
    Sattler, Katherine
    Zimmermann, Wolfram-Hubertus
    Utikal, Jochen
    Wieland, Thomas
    Ravens, Ursula
    Borggrefe, Martin
    Zhou, Xiao-Bo
    Akin, Ibrahim
    JOURNAL OF THE AMERICAN HEART ASSOCIATION, 2018, 7 (07):
  • [38] Strengthening cardiac therapy pipelines using human pluripotent stem cell-derived cardiomyocytes
    Raniga, Kavita
    Nasir, Aishah
    Vo, Nguyen T. N.
    Vaidyanathan, Ravi
    Dickerson, Sarah
    Hilcove, Simon
    Mosqueira, Diogo
    Mirams, Gary R.
    Clements, Peter
    Hicks, Ryan
    Pointon, Amy
    Stebbeds, Will
    Francis, Jo
    Denning, Chris
    CELL STEM CELL, 2024, 31 (03) : 292 - 311
  • [39] MESENCHYMAL STEM CELL-DERIVED EXTRACELLULAR VESICLES ATTENUATE CARDIAC HYPERTROPHY IN A CELLULAR MODEL OF HUMAN-INDUCED PLURIPOTENT STEM CELL-DERIVED CARDIOMYOCYTES
    Constantin, A.
    Alexandru, N.
    Filippi, A.
    Nemecz, M.
    Vilcu, A.
    Chitoiu, L.
    Gherghiceanu, M.
    Georgescu, A.
    ATHEROSCLEROSIS, 2022, 355 : E315 - E315
  • [40] In Vivo Differentiation of Induced Pluripotent Stem Cell-Derived Cardiomyocytes
    Yu, Tao
    Miyagawa, Shigeru
    Miki, Kenji
    Saito, Atsuhiro
    Fukushima, Satsuki
    Higuchi, Takahiro
    Kawamura, Masashi
    Kawamura, Takuji
    Ito, Emiko
    Kawaguchi, Naomasa
    Sawa, Yoshiki
    Matsuura, Nariaki
    CIRCULATION JOURNAL, 2013, 77 (05) : 1297 - 1306