Engineering osteoblastic metastases to delineate the adaptive response of androgen-deprived prostate cancer in the bone metastatic microenvironment

被引:0
|
作者
Nathalie Bock [1 ,2 ,3 ]
Ali Shokoohmand [1 ,2 ,3 ]
Thomas Kryza [1 ,2 ]
Joan R?hl [1 ,2 ]
Jonelle Meijer [1 ,2 ,3 ]
Phong A.Tran [3 ,4 ]
Colleen C.Nelson [1 ,2 ]
Judith A.Clements [1 ,2 ]
Dietmar W.Hutmacher [1 ,2 ,3 ,4 ,5 ]
机构
[1] School of Biomedical Sciences,Faculty of Health and Australian Prostate Cancer Research Centre(APCRC-Q),Institute of Health and Biomedical Innovation(IHBI),Queensland University of Technology(QUT)
[2] Australian Research Council(ARC) Training Centre in Additive Biomanufacturing,QUT
[3] Centre in Regenerative Medicine,QUT
[4] Bone and Joint Disorders Program,School of Chemistry,Physics and Mechanical Engineering,Science and Engineering Faculty(SEF),QUT
[5] Translational Research Institute(TRI)
基金
英国医学研究理事会; 澳大利亚国家健康与医学研究理事会;
关键词
red; PC; LNCaP; Engineering osteoblastic metastases to delineate the adaptive response of androgen-deprived prostate cancer in the bone metastatic microenvironment;
D O I
暂无
中图分类号
R737.25 [前列腺肿瘤];
学科分类号
100214 ;
摘要
While stromal interactions are essential in cancer adaptation to hormonal therapies,the effects of bone stroma and androgen deprivation on cancer progression in bone are poorly understood.Here,we tissue-engineered and validated an in vitro microtissue model of osteoblastic bone metastases,and used it to study the effects of androgen deprivation in this microenvironment.The model was established by culturing primary human osteoprogenitor cells on melt electrowritten polymer scaffolds,leading to a mineralized osteoblast-derived microtissue containing,in a 3 D setting,viable osteoblastic cells,osteocytic cells,and appropriate expression of osteoblast/osteocyte-derived mRNA and proteins,and mineral content.Direct co-culture of androgen receptordependent/independent cell lines(LNCaP,C4-2 B,and PC3) led cancer cells to display functional and molecular features as observed in vivo.Co-cultured cancer cells showed increased affinity to the microtissues,as a function of their bone metastatic potential.Cocultures led to alkaline phosphatase and collagen-I upregulation and sclerostin downregulation,consistent with the clinical marker profile of osteoblastic bone metastases.LNCaP showed a significant adaptive response under androgen deprivation in the microtissues,with the notable appearance of neuroendocrine transdifferentiation features and increased expression of related markers(dopa decarboxylase,enolase 2).Androgen deprivation affected the biology of the metastatic microenvironment with stronger upregulation of androgen receptor,alkaline phosphatase,and dopa decarboxylase,as seen in the transition towards resistance.The unique microtissues engineered here represent a substantial asset to determine the involvement of the human bone microenvironment in prostate cancer progression and response to a therapeutic context in this microenvironment.
引用
收藏
页码:157 / 170
页数:14
相关论文
共 50 条
  • [31] Prostate cancer bone metastases promote both osteolytic and osteoblastic activity
    Keller, ET
    Brown, J
    JOURNAL OF CELLULAR BIOCHEMISTRY, 2004, 91 (04) : 718 - 729
  • [32] Hungry Bone Syndrome: Persistent Hypocalcemia Related to Osteoblastic Bone Metastases of Prostate Cancer
    Alfaro Riveros, Hilda
    Obradors Almodovar, Laia
    Farriols Danes, Cristina
    Planas Domingo, Josep
    JOURNAL OF PALLIATIVE MEDICINE, 2013, 16 (12) : 1496 - 1497
  • [33] BONE MICROENVIRONMENT TARGETED NANOPARTICLES FOR METASTATIC PROSTATE CANCER TREATMENT
    Gdowski, Andrew
    Ranjan, Amalendu
    Mukerjee, Anindita
    Sarker, Marjana
    Kimbell, Joe
    Vishwanatha, Jamboor
    JOURNAL OF UROLOGY, 2016, 195 (04): : E1093 - E1094
  • [34] Prostate cancer cells promote osteoblastic bone metastases through Wnts.
    Hall, CL
    Bafico, A
    Aaronson, S
    Keller, ET
    JOURNAL OF BONE AND MINERAL RESEARCH, 2005, 20 (09) : S64 - S64
  • [35] Severe hypocalcemia due to osteoblastic metastases in a patient with metastatic prostate cancer: A case report
    Tamamritkul, Ratchanon
    Baisamut, Thanyanan
    Chansriwong, Phichai
    Jongcharoenprasert, Wallaya
    Dejthevaporn, Thitiya
    Dajsakdipon, Thanate
    ANNALS OF ONCOLOGY, 2023, 34 : S1451 - S1451
  • [36] An Integrated Computational Model of the Bone Microenvironment in Bone-Metastatic Prostate Cancer
    Araujo, Arturo
    Cook, Leah M.
    Lynch, Conor C.
    Basanta, David
    CANCER RESEARCH, 2014, 74 (09) : 2391 - 2401
  • [37] Human prostate cancer bone metastases have an actionable immunosuppressive microenvironment
    Kfoury, Youmna
    Baryawno, Ninib
    Severe, Nicolas
    Mei, Shenglin
    Gustafsson, Karin
    Hirz, Taghreed
    Brouse, Thomas
    Scadden, Elizabeth W.
    Igolkina, Anna A.
    Kokkaliaris, Konstantinos
    Choi, Bryan D.
    Barkas, Nikolas
    Randolph, Mark A.
    Shin, John H.
    Saylor, Philip J.
    Scadden, David T.
    Sykes, David B.
    Kharchenko, Peter, V
    CANCER CELL, 2021, 39 (11) : 1464 - +
  • [38] Bone remodeling in relation to androgen receptor activity in prostate cancer bone metastases.
    Ylitalo, Erik Bovinder
    Nordstrand, Annika
    Thysell, Elin
    Jernberg, Emma
    Crnalic, Sead
    Widmark, Anders
    Bergh, Anders
    Lerner, Ulf H.
    Wikstrom, Pernilla
    CANCER RESEARCH, 2018, 78 (16) : 50 - 50
  • [39] Androgen Receptor-CaMKK2 Axis in Prostate Cancer and Bone Microenvironment
    Dadwal, Ushashi C.
    Chang, Eric S.
    Sankar, Uma
    FRONTIERS IN ENDOCRINOLOGY, 2018, 9
  • [40] Skeletal response to clodronate in prostate cancer with bone metastases
    FernandezConde, M
    Alcover, J
    Aaron, JE
    Ordi, J
    Carretero, P
    AMERICAN JOURNAL OF CLINICAL ONCOLOGY-CANCER CLINICAL TRIALS, 1997, 20 (05): : 471 - 476