Wnt/β-catenin 信号通路调控脂肪组织的脂生成,相邻的基质血管细胞严格地保护脂肪细胞特异性缺失。
Wnt/β-catenin signaling regulates adipose tissue lipogenesis and adipocyte-specific loss is rigorously defended by neighboring stromal-vascular cells.
机构信息
Department of Molecular and Integrative Physiology, University of Michigan Medical School, Ann Arbor, MI, USA.
Department of Pediatrics and Communicable Diseases, University of Michigan Medical School, Ann Arbor, MI, USA.
出版信息
Mol Metab. 2020 Dec;42:101078. doi: 10.1016/j.molmet.2020.101078. Epub 2020 Sep 9.
OBJECTIVE
Canonical Wnt/β-catenin signaling is a well-studied endogenous regulator of mesenchymal cell fate determination, promoting osteoblastogenesis and inhibiting adipogenesis. However, emerging genetic evidence in humans links a number of Wnt pathway members to body fat distribution, obesity, and metabolic dysfunction, suggesting that this pathway also functions in adipocytes. Recent studies in mice have uncovered compelling evidence that the Wnt signaling pathway plays important roles in adipocyte metabolism, particularly under obesogenic conditions. However, complexities in Wnt signaling and differences in experimental models and approaches have thus far limited our understanding of its specific roles in this context.
METHODS
To investigate roles of the canonical Wnt pathway in the regulation of adipocyte metabolism, we generated adipocyte-specific β-catenin (β-cat) knockout mouse and cultured cell models. We used RNA sequencing, ChIP sequencing, and molecular approaches to assess expression of Wnt targets and lipogenic genes. We then used functional assays to evaluate effects of β-catenin deficiency on adipocyte metabolism, including lipid and carbohydrate handling. In mice maintained on normal chow and high-fat diets, we assessed the cellular and functional consequences of adipocyte-specific β-catenin deletion on adipose tissues and systemic metabolism.
RESULTS
We report that in adipocytes, the canonical Wnt/β-catenin pathway regulates de novo lipogenesis (DNL) and fatty acid monounsaturation. Further, β-catenin mediates effects of Wnt signaling on lipid metabolism in part by transcriptional regulation of Mlxipl and Srebf1. Intriguingly, adipocyte-specific loss of β-catenin is sensed and defended by CD45/CD31 stromal cells to maintain tissue-wide Wnt signaling homeostasis in chow-fed mice. With long-term high-fat diet, this compensatory mechanism is overridden, revealing that β-catenin deletion promotes resistance to diet-induced obesity and adipocyte hypertrophy and subsequent protection from metabolic dysfunction.
CONCLUSIONS
Taken together, our studies demonstrate that Wnt signaling in adipocytes is required for lipogenic gene expression, de novo lipogenesis, and lipid desaturation. In addition, adipose tissues rigorously defend Wnt signaling homeostasis under standard nutritional conditions, such that stromal-vascular cells sense and compensate for adipocyte-specific loss. These findings underscore the critical importance of this pathway in adipocyte lipid metabolism and adipose tissue function.
目的
经典 Wnt/β-连环蛋白信号通路是间充质细胞命运决定的一种研究充分的内源性调节因子,促进成骨细胞生成并抑制脂肪生成。然而,人类新兴的遗传证据将许多 Wnt 途径成员与体脂肪分布、肥胖和代谢功能障碍联系起来,表明该途径也在脂肪细胞中发挥作用。最近在小鼠中的研究发现了令人信服的证据,表明 Wnt 信号通路在脂肪细胞代谢中发挥重要作用,特别是在致肥胖条件下。然而,Wnt 信号的复杂性以及实验模型和方法的差异,迄今为止限制了我们对其在这方面的特定作用的理解。
方法
为了研究经典 Wnt 途径在调节脂肪细胞代谢中的作用,我们生成了脂肪细胞特异性β-连环蛋白(β-cat)敲除小鼠和培养的细胞模型。我们使用 RNA 测序、染色质免疫沉淀测序和分子方法来评估 Wnt 靶基因和脂肪生成基因的表达。然后,我们使用功能测定来评估β-catenin 缺失对脂肪细胞代谢的影响,包括脂质和碳水化合物处理。在维持正常饮食和高脂肪饮食的小鼠中,我们评估了脂肪细胞特异性β-catenin 缺失对脂肪组织和全身代谢的细胞和功能后果。
结果
我们报告称,在脂肪细胞中,经典 Wnt/β-连环蛋白通路调节从头脂肪生成(DNL)和脂肪酸单不饱和化。此外,β-catenin 通过转录调节 Mlxipl 和 Srebf1 介导 Wnt 信号对脂质代谢的影响。有趣的是,脂肪细胞特异性的β-catenin 缺失被 CD45/CD31 基质细胞感知和防御,以维持正常饮食喂养小鼠的组织范围 Wnt 信号的平衡。随着长期高脂肪饮食,这种代偿机制被推翻,表明β-catenin 缺失促进了对饮食诱导的肥胖和脂肪细胞肥大的抵抗,以及随后对代谢功能障碍的保护。
结论
总之,我们的研究表明,脂肪细胞中的 Wnt 信号通路是脂肪生成基因表达、从头脂肪生成和脂质不饱和所必需的。此外,在标准营养条件下,脂肪组织严格维持 Wnt 信号的平衡,使得基质血管细胞能够感知并补偿脂肪细胞特异性的缺失。这些发现强调了该途径在脂肪细胞脂质代谢和脂肪组织功能中的关键重要性。