Spatiotemporal Heterogeneity of De Novo Lipogenesis in Fixed and Living Single Cells

被引:15
|
作者
Shuster, Sydney O. [1 ]
Burke, Michael J. [1 ]
Davis, Caitlin M. [1 ]
机构
[1] Yale Univ, Dept Chem, New Haven, CT 06511 USA
来源
JOURNAL OF PHYSICAL CHEMISTRY B | 2023年 / 127卷 / 13期
基金
美国国家科学基金会; 美国国家卫生研究院;
关键词
INFRARED-SPECTROSCOPY; RAMAN-SPECTROSCOPY; GLUCOSE-UPTAKE; IR; DIFFERENTIATION; ADIPOCYTES; SCATTERING; ACIDS; H2O; D2O;
D O I
10.1021/acs.jpcb.2c08812
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
De novo lipogenesis (DNL) is a critical metabolic process that provides the majority of lipids for adipocyte and liver tissue. In cancer, obesity, type II diabetes, and nonalcoholic fatty liver disease DNL becomes dysregulated. A deeper understanding of the rates and of subcellular organization of DNL is necessary for identifying how this dysregulation occurs and varies across individuals and diseases. However, DNL is difficult to study inside the cell because labeling lipids and their precursors is not trivial. Existing techniques either can only measure parts of DNL, like glucose uptake, or do not provide spatiotemporal resolution. Here, we track DNL in space and time as isotopically labeled glucose is converted to lipids in adipocytes using optical photothermal infrared microscopy (OPTIR). OPTIR provides submicron resolution infrared imaging of the glucose metabolism in both living and fixed cells while also reporting on the identity of lipids and other biomolecules. We show significant incorporation of the labeled carbons into triglycerides in lipid droplets over the course of 72 h. Live cells had better preservation of lipid droplet morphology, but both showed similar DNL rates. Rates of DNL, as measured by the ratio of C-13-labeled lipid to C-12-labeled lipid, were heterogeneous, with differences within and between lipid droplets and from cell to cell. The high rates of DNL measured in adipocyte cells match upregulated rates of DNL previously reported in PANC1 pancreatic cancer cells. Taken together, our findings support a model where DNL is locally regulated to meet energy needs within cells.
引用
收藏
页码:2918 / 2926
页数:9
相关论文
共 50 条
  • [31] Nutritional regulation of hepatic de novo lipogenesis in humans
    Cross, Eloise
    Dearlove, David J.
    Hodson, Leanne
    CURRENT OPINION IN CLINICAL NUTRITION AND METABOLIC CARE, 2023, 26 (02): : 65 - 71
  • [32] Fuelling the fire: de novo lipogenesis primes thermogenesis
    S. Rodríguez-Fdez
    A. Vidal-Puig
    Nature Metabolism, 2023, 5 : 1646 - 1648
  • [33] De novo lipogenesis in humans: metabolic and regulatory aspects
    MK Hellerstein
    European Journal of Clinical Nutrition, 1999, 53 : s53 - s65
  • [34] Fructose stimulated de novo lipogenesis is promoted by inflammation
    Todoric, Jelena
    Di Caro, Giuseppe
    Reibe, Saskia
    Henstridge, Darren C.
    Green, Courtney R.
    Vrbanac, Alison
    Ceteci, Fatih
    Conche, Claire
    McNulty, Reginald
    Shalapour, Shabnam
    Taniguchi, Koji
    Meikle, Peter J.
    Watrous, Jeramie D.
    Moranchel, Rafael
    Najhawan, Mahan
    Jain, Mohit
    Liu, Xiao
    Kisseleva, Tatiana
    Diaz-Meco, Maria T.
    Moscat, Jorge
    Knight, Rob
    Greten, Florian R.
    Lau, Lester F.
    Metallo, Christian M.
    Febbraio, Mark A.
    Karin, Michael
    NATURE METABOLISM, 2020, 2 (10) : 1034 - +
  • [35] Fuelling the fire: de novo lipogenesis primes thermogenesis
    Rodriguez-Fdez, S.
    Vidal-Puig, A.
    NATURE METABOLISM, 2023, 5 (10) : 1646 - 1648
  • [36] DAXX drives de novo lipogenesis and contributes to tumorigenesis
    Mahmud, Iqbal
    Tian, Guimei
    Wang, Jia
    Hutchinson, Tarun E.
    Kim, Brandon J.
    Awasthee, Nikee
    Hale, Seth
    Meng, Chengcheng
    Moore, Allison
    Zhao, Liming
    Lewis, Jessica E.
    Waddell, Aaron
    Wu, Shangtao
    Steger, Julia M.
    Lydon, McKenzie L.
    Chait, Aaron
    Zhao, Lisa Y.
    Ding, Haocheng
    Li, Jian-Liang
    Purayil, Hamsa Thayele
    Huo, Zhiguang
    Daaka, Yehia
    Garrett, Timothy J.
    Liao, Daiqing
    NATURE COMMUNICATIONS, 2023, 14 (01)
  • [37] DAXX drives de novo lipogenesis and contributes to tumorigenesis
    Iqbal Mahmud
    Guimei Tian
    Jia Wang
    Tarun E. Hutchinson
    Brandon J. Kim
    Nikee Awasthee
    Seth Hale
    Chengcheng Meng
    Allison Moore
    Liming Zhao
    Jessica E. Lewis
    Aaron Waddell
    Shangtao Wu
    Julia M. Steger
    McKenzie L. Lydon
    Aaron Chait
    Lisa Y. Zhao
    Haocheng Ding
    Jian-Liang Li
    Hamsa Thayele Purayil
    Zhiguang Huo
    Yehia Daaka
    Timothy J. Garrett
    Daiqing Liao
    Nature Communications, 14
  • [38] Effects of Artemisia species on de novo lipogenesis in vivo
    Rood, Jennifer C.
    Schwarz, Jean-Marc
    Gettys, Thomas
    Mynatt, Randall L. L.
    Mendoza, Tamara
    Johnson, William D.
    Cefalu, William T.
    NUTRITION, 2014, 30 (7-8) : S17 - S20
  • [39] MULTIPLE MECHANISMS FOR DYSREGULATED DE NOVO LIPOGENESIS CONVERGE ON
    Yang, Xiaochun
    Rao, Shuyun
    Xiang, Xiyan
    Ohshiro, Kazufumi
    Latham, Patricia S.
    Gough, Nancy R.
    Mishra, Lopa
    GASTROENTEROLOGY, 2022, 162 (07) : S836 - S836
  • [40] Lipoexpediency: de novo lipogenesis as a metabolic signal transmitter
    Lodhi, Irfan J.
    Wei, Xiaochao
    Semenkovich, Clay F.
    TRENDS IN ENDOCRINOLOGY AND METABOLISM, 2011, 22 (01): : 1 - 8