Molecular Stress-inducing Compounds Increase Osteoclast Formation in a Heat Shock Factor 1 Protein-dependent Manner

被引:16
作者
Chai, Ryan C. [1 ]
Kouspou, Michelle M. [1 ]
Lang, Benjamin J. [1 ]
Nguyen, Chau H. [1 ]
van der Kraan, A. Gabrielle J. [1 ,2 ]
Vieusseux, Jessica L. [1 ]
Lim, Reece C. [1 ]
Gillespie, Matthew T. [1 ,2 ]
Benjamin, Ivor J. [3 ]
Quinn, Julian M. W. [1 ,2 ]
Price, John T. [1 ,4 ]
机构
[1] Monash Univ, Dept Biochem & Mol Biol, Clayton, Vic 3800, Australia
[2] Prince Henrys Inst, Clayton, Vic 3168, Australia
[3] Med Coll Wisconsin, Div Cardiovasc Med, Milwaukee, WI 53226 USA
[4] Victoria Univ, Coll Hlth & Biomed, Melbourne, Vic 8001, Australia
基金
英国医学研究理事会;
关键词
Bone; Heat Shock Protein; HSP90; Osteoclast; Stress Response; HSF1; Cell Stress; Chemotherapy; Inhibitors; MICROPHTHALMIA TRANSCRIPTION FACTOR; KAPPA-B ACTIVATION; BREAST-CANCER; HEAT-SHOCK-PROTEIN-90; HSP90; CARCINOMA-CELLS; CLINICAL-TRIAL; BONE LOSS; IN-VITRO; EXPRESSION; DIFFERENTIATION;
D O I
10.1074/jbc.M113.530626
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Background: HSP90 inhibitors increase osteoclast formation and bone loss. Results: Altered Hsf1 activity impacts the ability of stress-inducing compounds to modulate osteoclast formation. Conclusion: Hsf1 plays an important role in stress-associated osteoclast formation, potentially via MITF. Significance: We identified a novel pathway whereby agents inducing stress can enhance osteoclast formation. Many anticancer therapeutic agents cause bone loss, which increases the risk of fractures that severely reduce quality of life. Thus, in drug development, it is critical to identify and understand such effects. Anticancer therapeutic and HSP90 inhibitor 17-(allylamino)-17-demethoxygeldanamycin (17-AAG) causes bone loss by increasing osteoclast formation, but the mechanism underlying this is not understood. 17-AAG activates heat shock factor 1 (Hsf1), the master transcriptional regulator of heat shock/cell stress responses, which may be involved in this negative action of 17-AAG upon bone. Using mouse bone marrow and RAW264.7 osteoclast differentiation models we found that HSP90 inhibitors that induced a heat shock response also enhanced osteoclast formation, whereas HSP90 inhibitors that did not (including coumermycin A1 and novobiocin) did not affect osteoclast formation. Pharmacological inhibition or shRNAmir knockdown of Hsf1 in RAW264.7 cells as well as the use of Hsf1 null mouse bone marrow cells demonstrated that 17-AAG-enhanced osteoclast formation was Hsf1-dependent. Moreover, ectopic overexpression of Hsf1 enhanced 17-AAG effects upon osteoclast formation. Consistent with these findings, protein levels of the essential osteoclast transcription factor microphthalmia-associated transcription factor were increased by 17-AAG in an Hsf1-dependent manner. In addition to HSP90 inhibitors, we also identified that other agents that induced cellular stress, such as ethanol, doxorubicin, and methotrexate, also directly increased osteoclast formation, potentially in an Hsf1-dependent manner. These results, therefore, indicate that cellular stress can enhance osteoclast differentiation via Hsf1-dependent mechanisms and may significantly contribute to pathological and therapeutic related bone loss.
引用
收藏
页码:13602 / 13614
页数:13
相关论文
共 70 条
  • [1] HSP90 interacts with and regulates the activity of heat shock factor 1 in Xenopus oocytes
    Ali, A
    Bharadwaj, S
    O'Carroll, R
    Ovsenek, N
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 1998, 18 (09) : 4949 - 4960
  • [2] Regulation of HSF1 Function in the Heat Stress Response: Implications in Aging and Disease
    Anckar, Julius
    Sistonen, Lea
    [J]. ANNUAL REVIEW OF BIOCHEMISTRY, VOL 80, 2011, 80 : 1089 - 1115
  • [3] Impaired development of bone mineral density during chemotherapy:: A prospective analysis of 46 children newly diagnosed with cancer
    Arikoski, P
    Komulainen, J
    Riikonen, P
    Parviainen, M
    Jurvelin, JS
    Voutilainen, R
    Kröger, K
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 1999, 14 (12) : 2002 - 2009
  • [4] The molecular understanding of osteoclast differentiation
    Asagiri, Masataka
    Takayanagi, Hiroshi
    [J]. BONE, 2007, 40 (02) : 251 - 264
  • [5] Osteoclast differentiation and activation
    Boyle, WJ
    Simonet, WS
    Lacey, DL
    [J]. NATURE, 2003, 423 (6937) : 337 - 342
  • [6] Heat shock proteins in cancer: chaperones of tumorigenesis
    Calderwood, SK
    Khaleque, MA
    Sawyer, DB
    Ciocca, DR
    [J]. TRENDS IN BIOCHEMICAL SCIENCES, 2006, 31 (03) : 164 - 172
  • [7] CIOCCA DR, 1992, CANCER RES, V52, P3648
  • [8] Conde R, 2009, BIOCHEM CELL BIOL, V87, P845, DOI [10.1139/O09-049, 10.1139/o09-049]
  • [9] Chronic alcohol ingestion induces osteoclastogenesis and bone loss through IL-6 in mice
    Dai, JL
    Lin, DL
    Zhang, J
    Habib, P
    Smith, P
    Murtha, J
    Fu, Z
    Yao, Z
    Qi, YH
    Keller, ET
    [J]. JOURNAL OF CLINICAL INVESTIGATION, 2000, 106 (07) : 887 - 895
  • [10] In vitro effects of combination chemotherapy on osteoblasts: Implications for osteopenia in childhood malignancy
    Davies, JH
    Evans, BAJ
    Jenney, MEM
    Gregory, JW
    [J]. BONE, 2002, 31 (02) : 319 - 326