Department of Pharmaceutical Sciences, School of Pharmacy, University of California Irvine, Irvine, CA, United States.
Department of Developmental and Cell Biology, School of Biological Sciences, University of California Irvine, Irvine, CA, United States.
Front Endocrinol (Lausanne). 2022 May 6;13:887037. doi: 10.3389/fendo.2022.887037. eCollection 2022.
A fundamental question in cell biology underlies how nutrients are regenerated to maintain and renew tissues. Physiologically, the canonical Wnt signaling is a vital pathway for cell growth, tissue remodeling, and organ formation; pathologically, Wnt signaling contributes to the development of myriad human diseases such as cancer. Despite being the focus of intense research, how Wnt intersects with the metabolic networks to promote tissue growth and remodeling has remained mysterious. Our understanding of metabolism has been revolutionized by technological advances in the fields of chemical biology, metabolomics, and live microscopy that have now made it possible to visualize and manipulate metabolism in living cells and tissues. The application of these toolsets to innovative model systems have propelled the Wnt field into new realms at the forefront answering the most pressing paradigms of cell metabolism in health and disease states. Elucidating the basis of Wnt signaling and metabolism in a cell-type and tissue-specific manner will provide a powerful base of knowledge for both basic biomedical fields and clinician scientists, and has the promise to generate new, transformative therapies in disease and even processes of aging.
细胞生物学中的一个基本问题是,营养物质如何被再生以维持和更新组织。从生理学上讲,经典的 Wnt 信号通路是细胞生长、组织重塑和器官形成的重要途径;从病理学上讲,Wnt 信号通路有助于多种人类疾病的发展,如癌症。尽管它是研究的焦点,但 Wnt 如何与代谢网络交叉以促进组织生长和重塑仍然是个谜。化学生物学、代谢组学和活细胞显微镜等领域的技术进步彻底改变了我们对代谢的理解,现在已经可以在活细胞和组织中可视化和操纵代谢。将这些工具集应用于创新模型系统,将 Wnt 领域推向了新的前沿领域,解决了健康和疾病状态下细胞代谢最紧迫的范例问题。以细胞类型和组织特异性的方式阐明 Wnt 信号和代谢的基础,将为基础生物医学领域和临床科学家提供强大的知识库,并有望在疾病甚至衰老过程中产生新的变革性疗法。