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Evolution of our understanding of cell volume regulation by the pump-leak mechanism.泵漏机制对细胞体积调节的认识演变。
J Gen Physiol. 2019 Apr 1;151(4):407-416. doi: 10.1085/jgp.201812274. Epub 2019 Feb 19.
2
Cardiotonic Steroids and the Sodium Trade Balance: New Insights into Trade-Off Mechanisms Mediated by the Na⁺/K⁺-ATPase.强心甾体和钠交换平衡:钠/钾-ATP 酶介导的权衡机制的新见解。
Int J Mol Sci. 2018 Aug 30;19(9):2576. doi: 10.3390/ijms19092576.
3
Na⁺, K⁺-ATPase Signaling and Bipolar Disorder.钠离子-钾离子 ATP 酶信号与双相情感障碍。
Int J Mol Sci. 2018 Aug 7;19(8):2314. doi: 10.3390/ijms19082314.
4
Endogenous Ouabain and Related Genes in the Translation from Hypertension to Renal Diseases.内源性哇巴因及相关基因在高血压向肾脏疾病转化中的作用
Int J Mol Sci. 2018 Jul 3;19(7):1948. doi: 10.3390/ijms19071948.
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Ouabain Induces Apoptotic Cell Death Through Caspase- and Mitochondria-dependent Pathways in Human Osteosarcoma U-2 OS Cells.哇巴因通过半胱天冬酶和线粒体依赖性途径诱导人骨肉瘤U-2 OS细胞发生凋亡性细胞死亡。
Anticancer Res. 2018 Jan;38(1):169-178. doi: 10.21873/anticanres.12205.
6
The Structure and Function of the Na,K-ATPase Isoforms in Health and Disease.钠钾ATP酶同工型在健康与疾病中的结构与功能
Front Physiol. 2017 Jun 6;8:371. doi: 10.3389/fphys.2017.00371. eCollection 2017.
7
Apoptotic activities of cardenolide glycosides from Asclepias subulata.尖叶马利筋中强心苷类化合物的凋亡活性。
J Ethnopharmacol. 2016 Dec 4;193:303-311. doi: 10.1016/j.jep.2016.08.022. Epub 2016 Aug 18.
8
Are endogenous cardenolides controlled by atrial natriuretic peptide.内源性强心甾类化合物受心房利钠肽调控吗?
Med Hypotheses. 2016 Jul;92:21-5. doi: 10.1016/j.mehy.2016.04.030. Epub 2016 Apr 18.
9
Cardiotonic Steroids as Modulators of Neuroinflammation.强心甾体类化合物作为神经炎症的调节剂
Front Endocrinol (Lausanne). 2016 Feb 16;7:10. doi: 10.3389/fendo.2016.00010. eCollection 2016.
10
Na(+),K(+)-ATPase isoform selectivity for digitalis-like compounds is determined by two amino acids in the first extracellular loop.钠钾ATP酶同工型对洋地黄样化合物的选择性由第一个细胞外环中的两个氨基酸决定。
Chem Res Toxicol. 2014 Dec 15;27(12):2082-92. doi: 10.1021/tx500290k. Epub 2014 Nov 12.

人类生理学与疾病中的强心苷:昆虫学家的最新进展

Cardiac Glycosides in Human Physiology and Disease: Update for Entomologists.

作者信息

El-Mallakh Rif S, Brar Kanwarjeet S, Yeruva Rajashekar Reddy

机构信息

Department of Psychiatry and Behavioral Sciences, University of Louisville School of Medicine, Louisville, KY 40202, USA.

出版信息

Insects. 2019 Apr 10;10(4):102. doi: 10.3390/insects10040102.

DOI:10.3390/insects10040102
PMID:30974764
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6523104/
Abstract

Cardiac glycosides, cardenolides and bufadienolides, are elaborated by several plant or animal species to prevent grazing or predation. Entomologists have characterized several insect species that have evolved the ability to sequester these glycosides in their tissues to reduce their palatability and, thus, reduce predation. Cardiac glycosides are known to interact with the sodium- and potassium-activated adenosine triphosphatase, or sodium pump, through a specific receptor-binding site. Over the last couple of decades, and since entomologic studies, it has become clear that mammals synthesize endogenous cardenolides that closely resemble or are identical to compounds of plant origin and those sequestered by insects. The most important of these are ouabain-like compounds. These compounds are essential for the regulation of normal ionic physiology in mammals. Importantly, at physiologic picomolar or nanomolar concentrations, endogenous ouabain, a cardenolide, stimulates the sodium pump, activates second messengers, and may even function as a growth factor. This is in contrast to the pharmacologic or toxic micromolar or milimolar concentrations achieved after consumption of exogenous cardenolides (by consuming medications, plants, or insects), which inhibit the pump and result in either a desired medical outcome, or the toxic consequence of sodium pump inhibition.

摘要

强心苷、甲型强心苷元和乙型强心苷元由多种植物或动物合成,用于防止被啃食或捕食。昆虫学家已鉴定出几种昆虫,它们进化出了在组织中隔离这些苷类的能力,以降低自身的适口性,从而减少被捕食的几率。已知强心苷通过特定的受体结合位点与钠钾激活的三磷酸腺苷酶(即钠泵)相互作用。在过去几十年中,自昆虫学研究开展以来,已经明确哺乳动物会合成内源性强心苷元,这些强心苷元与植物来源的化合物以及昆虫隔离的化合物极为相似或完全相同。其中最重要的是类哇巴因化合物。这些化合物对调节哺乳动物正常的离子生理至关重要。重要的是,在生理皮摩尔或纳摩尔浓度下,内源性哇巴因(一种强心苷元)会刺激钠泵,激活第二信使,甚至可能起到生长因子的作用。这与摄入外源性强心苷(通过服用药物、食用植物或昆虫)后达到的药理或毒理微摩尔或毫摩尔浓度形成对比,后者会抑制钠泵,从而产生预期的医疗效果或钠泵抑制的毒性后果。