Decreased skeletal muscle intramyocellular lipid droplet-mitochondrial contact contributes to myosteatosis in cancer cachexia.

IF 5 2区 生物学 Q2 CELL BIOLOGY American journal of physiology. Cell physiology Pub Date : 2024-09-01 Epub Date: 2024-07-16 DOI:10.1152/ajpcell.00345.2024
Thomas D Cardaci, Brandon N VanderVeen, Alexander R Huss, Brooke M Bullard, Kandy T Velázquez, Norma Frizzell, James A Carson, Robert L Price, E Angela Murphy
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Abstract

Cancer cachexia, the unintentional loss of lean mass, contributes to functional dependency, poor treatment outcomes, and decreased survival. Although its pathogenicity is multifactorial, metabolic dysfunction remains a hallmark of cachexia. However, significant knowledge gaps exist in understanding the role of skeletal muscle lipid metabolism and dynamics in this condition. We examined skeletal muscle metabolic dysfunction, intramyocellular lipid droplet (LD) content, LD morphology and subcellular distribution, and LD-mitochondrial interactions using the Lewis lung carcinoma (LLC) murine model of cachexia. C57/BL6 male mice (n = 20) were implanted with LLC cells (106) in the right flank or underwent PBS sham injections. Skeletal muscle was excised for transmission electron microscopy (TEM; soleus), oil red O/lipid staining [tibialis anterior (TA)], and protein (gastrocnemius). LLC mice had a greater number (232%; P = 0.006) and size (130%; P = 0.023) of intramyocellular LDs further supported by increased oil-red O positive (87%; P = 0.0109) and "very high" oil-red O positive (178%; P = 0.0002) fibers compared with controls and this was inversely correlated with fiber size (R2 = 0.5294; P < 0.0001). Morphological analyses of LDs show increased elongation and complexity [aspect ratio: intermyofibrillar (IMF) = 9%, P = 0.046) with decreases in circularity [circularity: subsarcolemmal (SS) = 6%, P = 0.042] or roundness (roundness: whole = 10%, P = 0.033; IMF = 8%, P = 0.038) as well as decreased LD-mitochondria touch (-15%; P = 0.006), contact length (-38%; P = 0.036), and relative contact (86%; P = 0.004). Furthermore, dysregulation in lipid metabolism (adiponectin, CPT1b) and LD-associated proteins, perilipin-2 and perilipin-5, in cachectic muscle (P < 0.05) were observed. Collectively, we provide evidence that skeletal muscle myosteatosis, altered LD morphology, and decreased LD-mitochondrial interactions occur in a preclinical model of cancer cachexia.NEW & NOTEWORTHY We sought to advance our understanding of skeletal muscle lipid metabolism and dynamics in cancer cachexia. Cachexia increased the number and size of intramyocellular lipid droplets (LDs). Furthermore, decreases in LD-mitochondrial touch, contact length, and relative contact along with increased LD shape complexity with decreases in circularity and roundness. Dysregulation in lipid metabolism and LD-associated proteins was also documented. Collectively, we show that myosteatosis, altered LD morphology, and decreased LD-mitochondrial interactions occur in cancer cachexia.

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骨骼肌细胞内脂滴-线粒体接触减少导致癌症恶病质中的肌肉骨质疏松。
癌症恶病质是一种无意中丧失的瘦体重,会导致功能依赖、治疗效果不佳和生存率下降。虽然癌症恶病质的致病因素是多方面的,但代谢功能障碍仍然是恶病质的标志。然而,在了解骨骼肌脂质代谢和动态在这种病症中的作用方面还存在很大的知识差距。我们利用路易斯肺癌(LLC)小鼠恶病质模型研究了骨骼肌代谢功能障碍、细胞内低密度脂蛋白含量、低密度脂蛋白形态和亚细胞分布以及低密度脂蛋白与线粒体的相互作用。C57/BL6雄性小鼠(n=20)在右侧腹部植入LLC细胞[106]或进行PBS假注射。切除骨骼肌进行透射电子显微镜(TEM;比目鱼肌)、油红O/脂染色(胫骨前肌)和蛋白质(腓肠肌)检测。与对照组相比,LLC 小鼠细胞内低密度脂蛋白的数量(232%;p=0.006)和大小(130%;p=0.023)都更大,这进一步证实了油红 O 阳性(87%;p=0.0109)和 "极高 "油红 O 阳性(178%;p=0.0002)纤维的增加,而且这与纤维大小成反比(R2=0.5294;p=0.0002)。
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来源期刊
CiteScore
9.10
自引率
1.80%
发文量
252
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Cell Physiology is dedicated to innovative approaches to the study of cell and molecular physiology. Contributions that use cellular and molecular approaches to shed light on mechanisms of physiological control at higher levels of organization also appear regularly. Manuscripts dealing with the structure and function of cell membranes, contractile systems, cellular organelles, and membrane channels, transporters, and pumps are encouraged. Studies dealing with integrated regulation of cellular function, including mechanisms of signal transduction, development, gene expression, cell-to-cell interactions, and the cell physiology of pathophysiological states, are also eagerly sought. Interdisciplinary studies that apply the approaches of biochemistry, biophysics, molecular biology, morphology, and immunology to the determination of new principles in cell physiology are especially welcome.
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