Metabolic Responses to Redox Stress in Vascular Cells.

IF 5.9 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Antioxidants & redox signaling Pub Date : 2024-11-01 Epub Date: 2024-07-10 DOI:10.1089/ars.2023.0476
Wusheng Xiao, Laurel Y Lee, Joseph Loscalzo
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引用次数: 0

Abstract

Significance: Redox stress underlies numerous vascular disease mechanisms. Metabolic adaptability is essential for vascular cells to preserve energy and redox homeostasis. Recent Advances: Single-cell technologies and multiomic studies demonstrate significant metabolic heterogeneity among vascular cells in health and disease. Increasing evidence shows that reductive or oxidative stress can induce metabolic reprogramming of vascular cells. A recent example is intracellular L-2-hydroxyglutarate accumulation in response to hypoxic reductive stress, which attenuates the glucose flux through glycolysis and mitochondrial respiration in pulmonary vascular cells and provides protection against further reductive stress. Critical Issues: Regulation of cellular redox homeostasis is highly compartmentalized and complex. Vascular cells rely on multiple metabolic pathways, but the precise connectivity among these pathways and their regulatory mechanisms is only partially defined. There is also a critical need to understand better the cross-regulatory mechanisms between the redox system and metabolic pathways as perturbations in either systems or their cross talk can be detrimental. Future Directions: Future studies are needed to define further how multiple metabolic pathways are wired in vascular cells individually and as a network of closely intertwined processes given that a perturbation in one metabolic compartment often affects others. There also needs to be a comprehensive understanding of how different types of redox perturbations are sensed by and regulate different cellular metabolic pathways with specific attention to subcellular compartmentalization. Lastly, integration of dynamic changes occurring in multiple metabolic pathways and their cross talk with the redox system is an important goal in this multiomics era. Antioxid. Redox Signal. 41,793-817.

血管细胞对氧化还原压力的代谢反应
意义重大:氧化还原压力是多种血管疾病机制的基础。代谢适应性对血管细胞保持能量和氧化还原平衡至关重要。最新进展:单细胞技术和多组学研究表明,血管细胞在健康和疾病状态下存在显著的代谢异质性。越来越多的证据表明,还原或氧化压力可诱导血管细胞的代谢重编程。最近的一个例子是,细胞内 L-2-羟基戊二酸的积累是对缺氧还原应激的反应,它能减弱肺血管细胞中通过糖酵解和线粒体呼吸的葡萄糖通量,并提供对进一步还原应激的保护。关键问题:细胞氧化还原平衡的调节是高度分区和复杂的。血管细胞依赖于多种代谢途径,但这些途径之间的确切联系及其调控机制仅得到部分界定。此外,还迫切需要更好地了解氧化还原系统和代谢途径之间的交叉调节机制,因为这两个系统中的任何一个系统或它们之间的交叉对话都可能造成危害。未来方向:今后的研究需要进一步明确血管细胞中的多种代谢途径是如何单独连接起来的,以及它们是如何形成一个紧密交织的网络,因为一个代谢区的扰动往往会影响到其他代谢区。还需要全面了解不同类型的氧化还原扰动如何被不同的细胞代谢途径感知和调控,并特别关注亚细胞区隔。最后,整合多种代谢途径中发生的动态变化及其与氧化还原系统的交叉对话,是多组学时代的一个重要目标。
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来源期刊
Antioxidants & redox signaling
Antioxidants & redox signaling 生物-内分泌学与代谢
CiteScore
14.10
自引率
1.50%
发文量
170
审稿时长
3-6 weeks
期刊介绍: Antioxidants & Redox Signaling (ARS) is the leading peer-reviewed journal dedicated to understanding the vital impact of oxygen and oxidation-reduction (redox) processes on human health and disease. The Journal explores key issues in genetic, pharmaceutical, and nutritional redox-based therapeutics. Cutting-edge research focuses on structural biology, stem cells, regenerative medicine, epigenetics, imaging, clinical outcomes, and preventive and therapeutic nutrition, among other areas. ARS has expanded to create two unique foci within one journal: ARS Discoveries and ARS Therapeutics. ARS Discoveries (24 issues) publishes the highest-caliber breakthroughs in basic and applied research. ARS Therapeutics (12 issues) is the first publication of its kind that will help enhance the entire field of redox biology by showcasing the potential of redox sciences to change health outcomes. ARS coverage includes: -ROS/RNS as messengers -Gaseous signal transducers -Hypoxia and tissue oxygenation -microRNA -Prokaryotic systems -Lessons from plant biology
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