基于生理指标和转录组分析的缺氧对四指丝线幼鱼心脏的影响

IF 3 2区 生物学 Q1 MARINE & FRESHWATER BIOLOGY Frontiers in Marine Science Pub Date : 2025-02-05 DOI:10.3389/fmars.2025.1530224
Yi Lu, Eric Amenyogbe, Ye- Yang, Zhong-liang Wang, Jing-hui Jin, Rui-tao Xie, Eric Kwabena Droepenu, Jian-sheng Huang
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引用次数: 0

摘要

本研究通过生理和转录组分析,评估了缺氧对四指丝线幼体(Eleutheronema tetractylum)心脏的影响。幼鱼的平均体重为122.82 g,体长为24.60 cm。缺氧显著提高血清心肌酶活性,包括肌酸激酶(CK)、肌酸激酶- mb同工酶、乳酸脱氢酶(LDH)和α-羟基丁酸脱氢酶(HDBH)。这些指标最初上升,然后下降,反映了心脏应激,表明它们有潜力作为实时水产养殖监测的早期缺氧生物标志物。组织学分析显示心肌纤维在缺氧条件下出现结构损伤,且随时间加重。这强调了减少氧波动以防止心脏组织变性的必要性。转录组分析发现了参与细胞通讯、免疫反应和细胞内信号传导的上调基因,为培育耐缺氧物种提供了潜在的靶点。京都基因和基因组百科全书途径富集分析突出了关键途径,如丝裂原活化蛋白激酶(MAPK)、缺氧诱导因子-1 (HIF-1)、内吞作用和吞噬体形成。MAPK通路在细胞应激反应中起关键作用,包括存活、增殖和凋亡。缺氧诱导的mapk如ERK、JNK和p38的激活调节应激反应基因。HIF-1信号调节氧稳态,HIF-1α稳定缺氧反应基因,如VEGFA,促进血管重塑和增强氧输送。这些发现为加强水产养殖管理提供了实际应用,如监测生化指标,采用耐缺氧育种,调整环境条件以减轻胁迫,确保更高的生产力和可持续性。本研究为进一步研究水产养殖物种缺氧胁迫的分子机制奠定了基础。
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Effects of hypoxia on the heart of the juvenile four-finger threadfin (Eleutheronema tetradactylum) based on physiological indicators and transcriptome analysis
This study evaluated the effects of hypoxia on the heart of juvenile four-finger threadfin (Eleutheronema tetradactylum) through physiological and transcriptome analysis. Juveniles with an average weight of 122.82 g and length of 24.60 cm were used. Hypoxia significantly increased serum myocardial enzyme activities, including creatine kinase (CK), creatine kinase-MB isoenzyme, lactate dehydrogenase (LDH), and α-hydroxybutyrate dehydrogenase (HDBH). These indicators initially rose and then declined, reflecting cardiac stress and suggesting their potential as early hypoxia biomarkers for real-time aquaculture monitoring. Histological analysis revealed structural damage in myocardial fibers under hypoxia, with increasing severity over time. This underscores the need to minimize oxygen fluctuations to prevent cardiac tissue degeneration. Transcriptome analysis identified upregulated genes involved in cell communication, immune responses, and intracellular signaling, offering potential targets for breeding hypoxia-tolerant species. Kyoto Encyclopedia of Genes and Genomes pathway enrichment analysis highlighted key pathways such as mitogen-activated protein kinase (MAPK), hypoxia-inducible factor-1 (HIF-1), endocytosis, and phagosome formation. The MAPK pathway plays a critical role in cellular stress responses, including survival, proliferation, and apoptosis. Hypoxia-induced activation of MAPKs like ERK, JNK, and p38 regulates stress-responsive genes. HIF-1 signaling regulates oxygen homeostasis, with HIF-1α stabilizing hypoxia-responsive genes such as VEGFA, which promotes vascular remodeling and enhances oxygen delivery. These findings collectively offer practical applications for enhancing aquaculture management, such as monitoring biochemical markers, adopting hypoxia-tolerant breeding, and adjusting environmental conditions to mitigate stress, ensuring better productivity and sustainability. This research provides a foundation for further studies on the molecular mechanisms of hypoxia stress in aquaculture species.
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来源期刊
Frontiers in Marine Science
Frontiers in Marine Science Agricultural and Biological Sciences-Aquatic Science
CiteScore
5.10
自引率
16.20%
发文量
2443
审稿时长
14 weeks
期刊介绍: Frontiers in Marine Science publishes rigorously peer-reviewed research that advances our understanding of all aspects of the environment, biology, ecosystem functioning and human interactions with the oceans. Field Chief Editor Carlos M. Duarte at King Abdullah University of Science and Technology Thuwal is supported by an outstanding Editorial Board of international researchers. This multidisciplinary open-access journal is at the forefront of disseminating and communicating scientific knowledge and impactful discoveries to researchers, academics, policy makers and the public worldwide. With the human population predicted to reach 9 billion people by 2050, it is clear that traditional land resources will not suffice to meet the demand for food or energy, required to support high-quality livelihoods. As a result, the oceans are emerging as a source of untapped assets, with new innovative industries, such as aquaculture, marine biotechnology, marine energy and deep-sea mining growing rapidly under a new era characterized by rapid growth of a blue, ocean-based economy. The sustainability of the blue economy is closely dependent on our knowledge about how to mitigate the impacts of the multiple pressures on the ocean ecosystem associated with the increased scale and diversification of industry operations in the ocean and global human pressures on the environment. Therefore, Frontiers in Marine Science particularly welcomes the communication of research outcomes addressing ocean-based solutions for the emerging challenges, including improved forecasting and observational capacities, understanding biodiversity and ecosystem problems, locally and globally, effective management strategies to maintain ocean health, and an improved capacity to sustainably derive resources from the oceans.
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