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珊瑚脂质。

Coral Lipids.

机构信息

A.V. Zhirmunsky National Scientific Center of Marine Biology, 17 Palchevsky Str., 690041 Vladivostok, Russia.

Centre for Applied Research, Innovation and Entrepreneurship, Lethbridge College, 3000 College Drive South, Lethbridge, AB T1K 1L6, Canada.

出版信息

Mar Drugs. 2023 Oct 15;21(10):539. doi: 10.3390/md21100539.

DOI:10.3390/md21100539
PMID:37888474
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10608786/
Abstract

Reef-building corals, recognized as cornerstone species in marine ecosystems, captivate with their unique duality as both symbiotic partners and autotrophic entities. Beyond their ecological prominence, these corals produce a diverse array of secondary metabolites, many of which are poised to revolutionize the domains of pharmacology and medicine. This exhaustive review delves deeply into the multifaceted world of coral-derived lipids, highlighting both ubiquitous and rare forms. Within this spectrum, we navigate through a myriad of fatty acids and their acyl derivatives, encompassing waxes, sterol esters, triacylglycerols, mono-akyl-diacylglycerols, and an array of polar lipids such as betaine lipids, glycolipids, sphingolipids, phospholipids, and phosphonolipids. We offer a comprehensive exploration of the intricate biochemical variety of these lipids, related fatty acids, prostaglandins, and both cyclic and acyclic oxilipins. Additionally, the review provides insights into the chemotaxonomy of these compounds, illuminating the fatty acid synthesis routes inherent in corals. Of particular interest is the symbiotic bond many coral species nurture with dinoflagellates from the Symbiodinium group; their lipid and fatty acid profiles are also detailed in this discourse. This exploration accentuates the vast potential and intricacy of coral lipids and underscores their profound relevance in scientific endeavors.

摘要

造礁珊瑚作为海洋生态系统中的基石物种,以其共生伙伴和自养实体的独特双重性而引人注目。除了生态上的重要性,这些珊瑚还产生了多种多样的次生代谢产物,其中许多有望彻底改变药理学和医学领域。本综述深入探讨了珊瑚衍生脂质的多面世界,重点介绍了普遍存在和罕见的形式。在这个范围内,我们探索了无数的脂肪酸及其酰基衍生物,包括蜡、甾醇酯、三酰基甘油、单酰基二酰基甘油以及一系列极性脂质,如甜菜碱脂质、糖脂、鞘脂、磷脂和磷酰脂质。我们全面探讨了这些脂质、相关脂肪酸、前列腺素以及环状和非环状氧化脂的复杂生化多样性。此外,该综述还介绍了这些化合物的化学生态分类学,阐明了珊瑚中固有的脂肪酸合成途径。特别值得关注的是,许多珊瑚物种与来自 Symbiodinium 属的甲藻形成共生关系;本论述还详细介绍了它们的脂质和脂肪酸图谱。这种探索强调了珊瑚脂质的巨大潜力和复杂性,并突出了它们在科学研究中的深远意义。

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Ying Yong Sheng Tai Xue Bao. 2022 Sep;33(9):2572-2584. doi: 10.13287/j.1001-9332.202209.031.
9
Protein evolution in two co-occurring types of Symbiodinium: an exploration into the genetic basis of thermal tolerance in Symbiodinium clade D.两种共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生共生 ## 技术与健康伦理 ## 1. 引言 随着科技的快速发展,我们正步入一个技术与健康相互交融的新时代。技术在为我们带来便利和进步的同时,也引发了一系列关于健康和伦理的挑战。本文旨在探讨技术与健康伦理之间的关系,旨在探讨如何在技术的发展中确保健康和伦理的平衡。 ## 2. 技术的进步对健康的影响 - **医疗保健的进步**:医疗技术的发展使人们能够更好地预防、诊断和治疗疾病,提高了全球健康水平。例如,基因编辑、基因治疗和基因测序等技术为治疗遗传疾病提供了新的希望。 - **远程医疗**:远程医疗的发展使患者能够获得远程医疗服务,提高了医疗的可及性和效率。这有助于改善医疗资源的分配,特别是在偏远和资源匮乏的地区。 - **电子健康记录**:电子健康记录的发展使医疗记录的管理更加便捷和高效,提高了医疗质量和安全性。 ## 3. 技术的发展引发的伦理问题 - **隐私和数据安全**:随着互联网和大数据技术的发展,个人数据的收集、存储和共享引发了隐私和数据安全的问题。这可能导致个人隐私的侵犯和数据滥用的风险。 - **技术的不平等**:技术的发展可能加剧社会的不平等,例如数字鸿沟和数字排斥。这可能导致一些人无法获得技术带来的益处,加剧社会的不平等。 - **技术的滥用**:技术的滥用可能对健康产生负面影响,例如过度使用抗生素导致的抗生素耐药性的出现。这可能威胁到公共卫生。 ## 4. 技术与健康伦理的平衡 - **监管和法律框架**:制定和实施相关的政策和法规,以确保技术的发展符合伦理标准。这包括制定和更新伦理准则、伦理审查程序和法规,以确保技术的发展符合伦理原则。 - **公众教育**:提高公众对技术与健康伦理问题的认识和理解,增强公众的技术素养和伦理意识。这有助于公众能够做出明智的决策,参与技术的发展和应用,并能够识别和应对技术带来的伦理挑战。 - **伦理准则和指南**:制定和发布伦理准则和指南,为技术的发展提供指导。这些准则和指南应考虑到不同技术的特点和潜在影响,为技术的开发和应用提供指导。 - **利益相关者的参与**:鼓励利益相关者的参与,包括患者、医生、技术开发者、政策制定者和公众,以确保技术的发展和应用符合伦理原则。这有助于确保各方的利益得到考虑,促进技术与健康的平衡。 ## 5. 结论 技术与健康伦理的平衡是一个复杂而重要的议题,需要综合考虑技术的潜在益处、伦理原则和公众利益。通过制定和实施相关政策、加强公众教育、制定伦理准则和指南以及鼓励利益相关者的参与,可以促进技术与健康的平衡,确保技术的发展符合伦理标准,为人类的健康和福祉服务。
BMC Evol Biol. 2012 Nov 12;12:217. doi: 10.1186/1471-2148-12-217.
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Multispecies microbial mutualisms on coral reefs: the host as a habitat.珊瑚礁上的多物种微生物共生关系:宿主作为一种栖息地
Am Nat. 2003 Oct;162(4 Suppl):S51-62. doi: 10.1086/378684.

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Machine learning reveals distinct gene expression signatures across tissue states in stony coral tissue loss disease.机器学习揭示了石珊瑚组织损失病不同组织状态下独特的基因表达特征。
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Photobiota of the Tropical Red Sea: Fatty Acid Profile Analysis and Nutritional Quality Assessments.热带红海的光合生物群:脂肪酸谱分析与营养质量评估。
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Immunomodulatory Compounds from the Sea: From the Origins to a Modern Marine Pharmacopoeia.海洋免疫调节剂:从起源到现代海洋药物学。
Mar Drugs. 2024 Jun 28;22(7):304. doi: 10.3390/md22070304.
Molecules. 2023 Jul 20;28(14):5549. doi: 10.3390/molecules28145549.
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Coral Lipidome: Molecular Species of Phospholipids, Glycolipids, Betaine Lipids, and Sphingophosphonolipids.珊瑚脂类组学:磷脂、糖脂、甜菜碱脂和神经鞘磷脂的分子种类。
Mar Drugs. 2023 May 30;21(6):335. doi: 10.3390/md21060335.
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The coral microbiome: towards an understanding of the molecular mechanisms of coral-microbiota interactions.珊瑚微生物组:对珊瑚-微生物相互作用的分子机制的理解。
FEMS Microbiol Rev. 2023 Mar 10;47(2). doi: 10.1093/femsre/fuad005.
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A systematic review and meta-analysis of the direct effects of nutrients on corals.营养素对珊瑚直接影响的系统评价和荟萃分析。
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Current Progress in Lipidomics of Marine Invertebrates.海洋无脊椎动物脂质组学的研究进展。
Mar Drugs. 2021 Nov 25;19(12):660. doi: 10.3390/md19120660.
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Microorganisms. 2021 Oct 23;9(11):2209. doi: 10.3390/microorganisms9112209.
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In Silico Prediction of Steroids and Triterpenoids as Potential Regulators of Lipid Metabolism.计算机预测甾体和三萜类化合物作为潜在的脂代谢调节剂。
Mar Drugs. 2021 Nov 22;19(11):650. doi: 10.3390/md19110650.