Perez-Castro Lizbeth, Nawas Afshan F, Kilgore Jessica A, Garcia Roy, Lafita-Navarro M Carmen, Acosta Paul H, Nogueira Pedro A S, Williams Noelle S, Conacci-Sorrell Maralice
Department of Cell Biology, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
Department of Biochemistry, University of Texas Southwestern Medical Center, Dallas, Texas 75390, USA.
bioRxiv. 2024 Dec 23:2024.12.23.630041. doi: 10.1101/2024.12.23.630041.
Although tryptophan (Trp) is the largest and most structurally complex amino acid, it is the least abundant in the proteome. Its distinct indole ring and high carbon content enable it to generate various biologically active metabolites such as serotonin, kynurenine (Kyn), and indole-3-pyruvate (I3P). Dysregulation of Trp metabolism has been implicated in diseases ranging from depression to cancer. Investigating Trp and its metabolites in healthy tissues offers pathways to target disease-associated disruptions selectively, while preserving essential functions. In this study, we comprehensively mapped Trp metabolites across the Kyn, serotonin, and I3P pathways, as well as the microbiome-derived metabolite tryptamine, in C57BL/6 mice. Our comprehensive analysis covered 12 peripheral organs, the central nervous system, and serum in both male and female mice at three life stages: young (3 weeks), adult (54 weeks), and aged (74 weeks). We found significant tissue-, sex-, and age-specific variations in Trp metabolism, with notably higher levels of the oncometabolites I3P and Kyn in aging males. These findings emphasize the value of organ-specific analysis of Trp metabolism for understanding its role in disease progression and identifying targeted therapeutic opportunities.
尽管色氨酸(Trp)是最大且结构最复杂的氨基酸,但它在蛋白质组中的含量却是最少的。其独特的吲哚环和高碳含量使其能够产生多种生物活性代谢产物,如血清素、犬尿氨酸(Kyn)和吲哚 - 3 - 丙酮酸(I3P)。色氨酸代谢失调与从抑郁症到癌症等多种疾病有关。研究健康组织中的色氨酸及其代谢产物为选择性靶向与疾病相关的破坏提供了途径,同时保留基本功能。在本研究中,我们全面绘制了C57BL / 6小鼠中犬尿氨酸、血清素和I3P途径以及微生物群衍生代谢产物色胺中的色氨酸代谢产物图谱。我们的综合分析涵盖了12个外周器官、中枢神经系统以及处于三个生命阶段(幼年(3周)、成年(54周)和老年(74周))的雄性和雌性小鼠的血清。我们发现色氨酸代谢存在显著的组织、性别和年龄特异性差异,老年雄性小鼠中的肿瘤代谢产物I3P和Kyn水平明显更高。这些发现强调了对色氨酸代谢进行器官特异性分析对于理解其在疾病进展中的作用以及确定靶向治疗机会的价值。