Delayed effects of radiation in adipose tissue reflect progenitor damage and not cellular senescence

被引:4
作者
Ruggiero, Alistaire D. [1 ]
Davis, Matthew A. [2 ]
Davis, Ashley T. [1 ]
DeStephanis, Darla [1 ]
Williams, Abigail G. [1 ]
Vemuri, Ravichandra [1 ]
Fanning, Katherine M. [1 ]
Sherrill, Chrissy [1 ]
Cline, J. Mark [1 ]
Caudell, David L. [1 ]
Kavanagh, Kylie [1 ,3 ]
机构
[1] Wake Forest Univ, Bowman Gray Sch Med, Dept Pathol, 575 N Patterson Ave, Winston Salem, NC 27101 USA
[2] Wake Forest Univ, Bowman Gray Sch Med, Dept Internal Med, Winston Salem, NC 27103 USA
[3] Univ Tasmania, Coll Hlth & Med, Hobart, Tas, Australia
基金
美国国家卫生研究院;
关键词
Radiation; Senescence; Adipose; Liver; Adipose progenitors; INSULIN-RESISTANCE; SKELETAL-MUSCLE; BRAIN-INJURY; IRRADIATION; EXPOSURE; GAMMA; DYSFUNCTION; EXPRESSION; BIOMARKER; DISEASE;
D O I
10.1007/s11357-022-00660-x
中图分类号
R592 [老年病学]; C [社会科学总论];
学科分类号
03 ; 0303 ; 100203 ;
摘要
The pathogenesis of many age-related diseases is linked to cellular senescence, a state of inflammation-inducing, irreversible cell cycle arrest. The consequences and mechanisms of age-associated cellular senescence are often studied using in vivo models of radiation exposure. However, it is unknown whether radiation induces persistent senescence, like that observed in ageing. We performed analogous studies in mice and monkeys, where young mice and rhesus macaques received sub-lethal doses of ionizing radiation and were observed for similar to 15% of their expected lifespan. Assessments of 8-hydroxy-2' - deoxyguanosine (8-OHdG), senescence-associated beta-galactosidase (SA beta-gal), and p16(Ink4)(a) and p21 were performed on mitotic and post-mitotic tissues - liver and adipose tissue - 6 months and 3 years post-exposure for the mice and monkeys, respectively. No elevations in 8-OHdG, SA-beta gal staining, or p16(Ink4a) or p21 gene or protein expression were found in mouse and monkey liver or adipose tissue compared to control animals. Despite no evidence of senescence, progenitor cell dysfunction persisted after radiation exposure, as indicated by lower in situ CD34(+) adipose cells (p = 0 .03) , and deficient adipose stromal vascular cell proliferation (p <0.05) and differentiation (p = 0.04) ex vivo. Our investigation cautions that employing radiation to study senescence-related processes should be limited to the acute post-exposure period and that stem cell damage likely underpins the dysfunction associated with delayed effects of radiation.
引用
收藏
页码:507 / 521
页数:15
相关论文
共 74 条
  • [41] Cellular senescence: from physiology to pathology
    Munoz-Espin, Daniel
    Serrano, Manuel
    [J]. NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2014, 15 (07) : 482 - +
  • [42] Ionizing Radiation Potentiates High-Fat Diet-Induced Insulin Resistance and Reprograms Skeletal Muscle and Adipose Progenitor Cells
    Nylander, Vibe
    Ingerslev, Lars R.
    Andersen, Emil
    Fabre, Odile
    Garde, Christian
    Rasmussen, Morten
    Citirikkaya, Kiymet
    Baek, Josephine
    Christensen, Gitte L.
    Aznar, Marianne
    Specht, Lena
    Simar, David
    Barres, Romain
    [J]. DIABETES, 2016, 65 (12) : 3573 - 3584
  • [43] Isolation of Adipose Tissue Immune Cells
    Orr, Jeb S.
    Kennedy, Arion J.
    Hasty, Alyssa H.
    [J]. JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2013, (75): : e50707
  • [44] Targeting senescent cells alleviates obesity-induced metabolic dysfunction
    Palmer, Allyson K.
    Xu, Ming
    Zhu, Yi
    Pirtskhalava, Tamar
    Weivoda, Megan M.
    Hachfeld, Christine M.
    Prata, Larissa G.
    van Dijk, Theo H.
    Verkade, Esther
    Casaclang-Verzosa, Grace
    Johnson, Kurt O.
    Cubro, Hajrunisa
    Doornebal, Ewald J.
    Ogrodnik, Mikolaj
    Jurk, Diana
    Jensen, Michael D.
    Chini, Eduardo N.
    Miller, Jordan D.
    Matveyenko, Aleksey
    Stout, Michael B.
    Schafer, Marissa J.
    White, Thomas A.
    Hickson, LaTonya J.
    Demaria, Marco
    Garovic, Vesna
    Grande, Joseph
    Arriaga, Edgar A.
    Kuipers, Folkert
    von Zglinicki, Thomas
    LeBrasseur, Nathan K.
    Campisi, Judith
    Tchkonia, Tamar
    Kirkland, James L.
    [J]. AGING CELL, 2019, 18 (03)
  • [45] Long-Term Impact of Radiation on the Stem Cell and Oligodendrocyte Precursors in the Brain
    Panagiotakos, Georgia
    Alshamy, George
    Chan, Bill
    Abrams, Rory
    Greenberg, Edward
    Saxena, Amit
    Bradbury, Michelle
    Edgar, Mark
    Gutin, Philip
    Tabar, Viviane
    [J]. PLOS ONE, 2007, 2 (07):
  • [46] Lasting effects of an impairment of Th1-like immune response in γ-irradiated mice: A resemblance between irradiated mice and aged mice
    Park, Hae-Ran
    Jo, Sung-Kee
    [J]. CELLULAR IMMUNOLOGY, 2011, 267 (01) : 1 - 8
  • [47] ESTABLISHING A MURINE MODEL OF THE HEMATOPOIETIC SYNDROME OF THE ACUTE RADIATION SYNDROME
    Plett, P. Artur
    Sampson, Carol H.
    Chua, Hui Lin
    Joshi, Mandar
    Booth, Catherine
    Gough, Alec
    Johnson, Cynthia S.
    Katz, Barry P.
    Farese, Ann M.
    Parker, Jeffrey
    MacVittie, Thomas J.
    Orschell, Christie M.
    [J]. HEALTH PHYSICS, 2012, 103 (04): : 343 - 355
  • [48] Organ Doses Associated with Partial-Body Irradiation with 2.5% Bone Marrow Sparing of the Non-Human Primate: A Retrospective Study
    Prado, C.
    MacVittie, T. J.
    Bennett, A. W.
    Kazi, A.
    Farese, A. M.
    Prado, K.
    [J]. RADIATION RESEARCH, 2017, 188 (06) : 615 - 625
  • [49] Insights from In Vivo Studies of Cellular Senescence
    Prieto, Luis I.
    Graves, Sara I.
    Baker, Darren J.
    [J]. CELLS, 2020, 9 (04)
  • [50] Radiation-Induced Cardiovascular Disease
    Raghunathan, Deepa
    Khilji, Misha Iftikhar
    Hassan, Saamir A.
    Yusuf, Syed Wamique
    [J]. CURRENT ATHEROSCLEROSIS REPORTS, 2017, 19 (05)