Cardioprotective Potential of d-limonene against Isoproterenol induced Myocardial Infarction in Rats.

IF 1.8 4区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Cell Biochemistry and Biophysics Pub Date : 2024-12-31 DOI:10.1007/s12013-024-01649-3
Md Saifullah, Tarique Mahmood, Farogh Ahsan, Shahzadi Bano, Syed Mehdi Hasan Zaidi, Mohd Masih Uzzaman Khan
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Abstract

d-limonene is a type of colorless liquid hydrocarbon that falls under the category of cyclic monoterpene. It is the component found in the oil extracted from fruit peels. Isoproterenol, a synthetic β-adrenergic agonist, was administered to rats to induce myocardial injury by increasing heart rate and myocardial oxygen demand, leading to ischemia and oxidative stress. This study aims to investigate the properties of d limonene, against myocardial infarction induced by isoprenaline (ISO) in rats. Male Sprague Dawley rats were treated with d-limonene (200 & 400 mg/kg, p.o) daily for 28 days and administered ISO (85 mg/kg, s.c) on the 29th and 30th days at an interval of 24 hr to induce myocardial injury. Morphological and antioxidant parameters, biochemical markers, lipid profile, troponin-I, cardiac ATPase, heart mitochondrial, and lysosomal enzymes were assayed followed by histopathological screening. Rats treated with isoproterenol (85 mg/kg, s.c), administered twice at an interval of 24 h on 29th and 30th day showed a significant change in morphological and antioxidant parameters, biochemical markers, lipid profile, troponin-I, cardiac ATPase, heart mitochondrial, lysosomal enzymes activities and transcription factor (TNF-α/IL-6/NF-kB) expression. Pretreatment with d-limonene (200 and 400 mg/kg, p.o) for 28 days followed by ISO administration on 29th and 30th day significantly reversed the effects of isoproterenol-induced ischemic changes. Moreover, the biochemical results were validated by histopathological findings. The research indicates that d-limonene demonstrates cardioprotective potential against isoproterenol-induced myocardial infarction. This is attributed to its antioxidant properties, stabilization of myocardial membranes, improved scavenging of free radicals, and inhibition of membrane lipid peroxidation.

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d-柠檬烯对异丙肾上腺素所致大鼠心肌梗死的保护作用。
d-柠檬烯是一种无色液态烃,属于环单萜类。它是从果皮中提取的油中发现的成分。异丙肾上腺素是一种合成的β-肾上腺素能激动剂,通过增加心率和心肌需氧量来诱导大鼠心肌损伤,导致缺血和氧化应激。本研究旨在探讨d柠檬烯对异丙肾上腺素(ISO)致大鼠心肌梗死的作用。用d-柠檬烯(200和400 mg/kg, p.o)每日给药28 d,在第29和30天每隔24 h给药ISO (85 mg/kg, s.c)诱导心肌损伤。形态学和抗氧化参数、生化指标、脂质谱、肌钙蛋白- 1、心脏atp酶、心脏线粒体和溶酶体酶进行检测,然后进行组织病理学筛查。异丙肾上腺素(85 mg/kg, s.c),在第29天和第30天每隔24 h给药两次,大鼠的形态学和抗氧化参数、生化指标、血脂、肌钙蛋白- 1、心脏atp酶、心脏线粒体、溶酶体酶活性和转录因子(TNF-α/IL-6/NF-kB)表达均发生了显著变化。d-柠檬烯(200和400 mg/kg, p.o)预处理28天,第29天和第30天给予异丙肾上腺素,可显著逆转异丙肾上腺素引起的缺血改变。此外,组织病理学结果证实了生化结果。研究表明,d-柠檬烯对异丙肾上腺素诱导的心肌梗死具有心脏保护作用。这是由于它的抗氧化特性,稳定心肌膜,改善自由基清除和抑制膜脂过氧化。
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来源期刊
Cell Biochemistry and Biophysics
Cell Biochemistry and Biophysics 生物-生化与分子生物学
CiteScore
4.40
自引率
0.00%
发文量
72
审稿时长
7.5 months
期刊介绍: Cell Biochemistry and Biophysics (CBB) aims to publish papers on the nature of the biochemical and biophysical mechanisms underlying the structure, control and function of cellular systems The reports should be within the framework of modern biochemistry and chemistry, biophysics and cell physiology, physics and engineering, molecular and structural biology. The relationship between molecular structure and function under investigation is emphasized. Examples of subject areas that CBB publishes are: · biochemical and biophysical aspects of cell structure and function; · interactions of cells and their molecular/macromolecular constituents; · innovative developments in genetic and biomolecular engineering; · computer-based analysis of tissues, cells, cell networks, organelles, and molecular/macromolecular assemblies; · photometric, spectroscopic, microscopic, mechanical, and electrical methodologies/techniques in analytical cytology, cytometry and innovative instrument design For articles that focus on computational aspects, authors should be clear about which docking and molecular dynamics algorithms or software packages are being used as well as details on the system parameterization, simulations conditions etc. In addition, docking calculations (virtual screening, QSAR, etc.) should be validated either by experimental studies or one or more reliable theoretical cross-validation methods.
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