Mitochondrial connections with immune system in Zebrafish

Mariana Abrantes do Amaral , Lais Cavalieri Paredes , Barbara Nunes Padovani , Juliana Moreira Mendonça-Gomes , Luan Fávero Montes , Niels Olsen Saraiva Câmara , Camila Morales Fénero
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引用次数: 4

Abstract

Mitochondria are organelles commonly associated with adenosine triphosphate (ATP) formation through the oxidative phosphorylation (OXPHOS) process. However, mitochondria are also responsible for functions such as calcium homeostasis, apoptosis, autophagy, and production of reactive oxygen species (ROS) that, in conjunction, can lead to different cell fate decisions. Mitochondrial morphology changes rely on nutrients’ availability and the bioenergetics demands of the cells, in a process known as mitochondrial dynamics, which includes both fusion and fission. This organelle senses the microenvironment and can modify the cells to either a pro or anti-inflammatory profile. The zebrafish has been increasingly used to research mitochondrial dynamics and its connection with the immune system since the pathways and molecules involved in these processes are conserved on this fish. Several genetic tools and technologies are currently available to analyze the behavior of mitochondria in zebrafish. However, even though zebrafish presents several similar processes known in mammals, the effect of the mitochondria in the immune system has not been so broadly studied in this model. In this review, we summarize the current knowledge in zebrafish studies regarding mitochondrial function and immuno metabolism.

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斑马鱼的线粒体与免疫系统的联系
线粒体是通过氧化磷酸化(OXPHOS)过程与三磷酸腺苷(ATP)形成相关的细胞器。然而,线粒体也负责钙稳态、细胞凋亡、自噬和活性氧(ROS)的产生等功能,这些功能共同导致不同的细胞命运决定。线粒体形态的变化依赖于营养物质的可用性和细胞的生物能量需求,这一过程被称为线粒体动力学,包括融合和裂变。这种细胞器能感知微环境,并能改变细胞,使其变得有利或抗炎。斑马鱼被越来越多地用于研究线粒体动力学及其与免疫系统的联系,因为参与这些过程的途径和分子在斑马鱼身上是保守的。目前有几种遗传工具和技术可用于分析斑马鱼线粒体的行为。然而,即使斑马鱼呈现出哺乳动物中已知的几个类似过程,线粒体在免疫系统中的作用在这个模型中还没有得到如此广泛的研究。本文综述了目前斑马鱼线粒体功能和免疫代谢的研究进展。
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