mTORC1 and mTORC2 differentially regulate homeostasis of neoplastic and non-neoplastic human mast cells

被引:46
|
作者
Smrz, Daniel [1 ]
Kim, Mi-Sun [1 ]
Zhang, Shuling [2 ]
Mock, Beverly A. [2 ]
Smrzova, Sarka [1 ]
DuBois, Wendy [2 ]
Simakova, Olga [3 ]
Maric, Irina [3 ]
Wilson, Todd M. [1 ]
Metcalfe, Dean D. [1 ]
Gilfillan, Alasdair M. [1 ]
机构
[1] NIAID, Lab Allerg Dis, NIH, Bethesda, MD 20892 USA
[2] Ctr Canc Res, Lab Canc Biol & Genet, Bethesda, MD USA
[3] NIH, Hematol Sect, Dept Lab Med, Ctr Clin, Bethesda, MD USA
关键词
FC-EPSILON-RI; C-KIT; MEDIATOR RELEASE; COMPLEX; RICTOR; GROWTH; ACTIVATION; MASTOCYTOSIS; RAPTOR; PHOSPHORYLATION;
D O I
10.1182/blood-2011-06-359984
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Increased mast cell burden is observed in the inflamed tissues and affected organs and tissues of patients with mast cell proliferative disorders. However, normal mast cells participate in host defense, so approaches to preferentially target clonally expanding mast cells are needed. We found that mammalian target of rapamycin complex 1(mTORC1) and 2(mTORC2) are up-regulated in neoplastic and developing immature mast cells compared with their terminally differentiated counter-parts. Elevated mTOR mRNA was also observed in bone marrow mononuclear cells of patients exhibiting mast-cell hyperplasia. Selective inhibition of mTORC1 and mTORC2 through genetic and pharmacologic manipulation revealed that, whereas mTORC1 may contribute to mast-cell survival, mTORC2 was only critical for homeostasis of neoplastic and dividing immature mast cells. The cytostatic effect of mTORC2 down-regulation in proliferating mast cells was deter-mined to be via inhibition of cell-cycle progression. Because mTORC2 was observed to play little role in the homeostasis of differentiated, nonproliferating, mature mast cells, these data provide a rationale for adopting a targeted approaching selectively inhibiting mTORC2 to effectively reduce the proliferation of mast cells associated with inflammation and disorders of mast cell proliferation while leaving normal differentiated mast cells largely unaffected. (Blood.2011;118(26):6803-6813)
引用
收藏
页码:6803 / 6813
页数:11
相关论文
共 50 条
  • [21] ATP-site binding inhibitor effectively targets mTORC1 and mTORC2 complexes in glioblastoma
    Neil, Jayson
    shannon, Craig
    Mohan, Avinash
    Laurent, Dimitri
    Murali, Raj
    Jhanwar-Uniyal, Meena
    INTERNATIONAL JOURNAL OF ONCOLOGY, 2016, 48 (03) : 1045 - 1052
  • [22] The kinase mTOR regulates the differentiation of helper T cells through the selective activation of signaling by mTORC1 and mTORC2
    Delgoffe, Greg M.
    Pollizzi, Kristen N.
    Waickman, Adam T.
    Heikamp, Emily
    Meyers, David J.
    Horton, Maureen R.
    Xiao, Bo
    Worley, Paul F.
    Powell, Jonathan D.
    NATURE IMMUNOLOGY, 2011, 12 (04) : 295 - U117
  • [23] Regulation of mTORC1 and mTORC2 Complex Assembly by Phosphatidic Acid: Competition with Rapamycin
    Toschi, Alfredo
    Lee, Evan
    Xu, Limei
    Garcia, Avalon
    Gadir, Noga
    Foster, David A.
    MOLECULAR AND CELLULAR BIOLOGY, 2009, 29 (06) : 1411 - 1420
  • [24] FilGAP regulates tumor growth in Glioma through the regulation of mTORC1 and mTORC2
    Tsutsumi, Koji
    Nohara, Ayumi
    Tanaka, Taiki
    Murano, Moe
    Miyagaki, Yurina
    Ohta, Yasutaka
    SCIENTIFIC REPORTS, 2023, 13 (01):
  • [25] Rac1 Regulates the Activity of mTORC1 and mTORC2 and Controls Cellular Size
    Saci, Abdelhafid
    Cantley, Lewis C.
    Carpenter, Christopher L.
    MOLECULAR CELL, 2011, 42 (01) : 50 - 61
  • [26] mTORC1 and mTORC2 Regulate EMT, Motility, and Metastasis of Colorectal Cancer via RhoA and Rac1 Signaling Pathways
    Gulhati, Pat
    Bowen, Kanika A.
    Liu, Jianyu
    Stevens, Payton D.
    Rychahou, Piotr G.
    Chen, Min
    Lee, Eun Y.
    Weiss, Heidi L.
    O'Connor, Kathleen L.
    Gao, Tianyan
    Evers, B. Mark
    CANCER RESEARCH, 2011, 71 (09) : 3246 - 3256
  • [27] mTORC2, but not mTORC1, is required for hippocampal mGluR-LTD and associated behaviors
    Zhu, Ping Jun
    Chen, Chien-Ju
    Mays, Jacqunae
    Stoica, Loredana
    Costa-Mattioli, Mauro
    NATURE NEUROSCIENCE, 2018, 21 (06) : 799 - +
  • [28] mTORC2 and AMPK differentially regulate muscle triglyceride content via Perilipin 3
    Kleinert, Maximilian
    Parker, Benjamin L.
    Chaudhuri, Rima
    Fazakerley, Daniel J.
    Serup, Annette
    Thomas, Kristen C.
    Krycer, James R.
    Sylow, Lykke
    Fritzen, Andreas M.
    Hoffman, Nolan J.
    Jeppesen, Jacob
    Schjerling, Peter
    Ruegg, Markus A.
    Kiens, Bente
    James, David E.
    Richter, Erik A.
    MOLECULAR METABOLISM, 2016, 5 (08): : 646 - 655
  • [29] Mammalian Target of Rapamycin Complex 1 (mTORC1) and 2 (mTORC2) Control the Dendritic Arbor Morphology of Hippocampal Neurons
    Urbanska, Malgorzata
    Gozdz, Agata
    Swiech, Lukasz J.
    Jaworski, Jacek
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2012, 287 (36) : 30240 - 30256
  • [30] Deubiquitinase OTUD5 is a positive regulator of mTORC1 and mTORC2 signaling pathways
    Cho, Jin Hwa
    Kim, Kidae
    Kim, Sung Ah
    Park, Sungryul
    Park, Bi-Oh
    Kim, Jong-Hwan
    Kim, Seon-Young
    Kwon, Min Jee
    Han, Myeong Hoon
    Lee, Sung Bae
    Park, Byoung Chul
    Park, Sung Goo
    Kim, Jeong-Hoon
    Kim, Sunhong
    CELL DEATH AND DIFFERENTIATION, 2021, 28 (03) : 900 - 914