Detail
Článek
Článek online
FT
Medvik - BMČ
  • Je něco špatně v tomto záznamu ?

Cancer-associated fibroblasts promote prostate tumor growth and progression through upregulation of cholesterol and steroid biosynthesis

H. Neuwirt, J. Bouchal, G. Kharaishvili, C. Ploner, K. Jöhrer, F. Pitterl, A. Weber, H. Klocker, IE. Eder

. 2020 ; 18 (1) : 11. [pub] 20200124

Jazyk angličtina Země Velká Británie

Typ dokumentu časopisecké články, práce podpořená grantem

Perzistentní odkaz   https://www.medvik.cz/link/bmc21020796

BACKGROUND: Androgen receptor targeted therapies have emerged as an effective tool to manage advanced prostate cancer (PCa). Nevertheless, frequent occurrence of therapy resistance represents a major challenge in the clinical management of patients, also because the molecular mechanisms behind therapy resistance are not yet fully understood. In the present study, we therefore aimed to identify novel targets to intervene with therapy resistance using gene expression analysis of PCa co-culture spheroids where PCa cells are grown in the presence of cancer-associated fibroblasts (CAFs) and which have been previously shown to be a reliable model for antiandrogen resistance. METHODS: Gene expression changes of co-culture spheroids (LNCaP and DuCaP seeded together with CAFs) were identified by Illumina microarray profiling. Real-time PCR, Western blotting, immunohistochemistry and cell viability assays in 2D and 3D culture were performed to validate the expression of selected targets in vitro and in vivo. Cytokine profiling was conducted to analyze CAF-conditioned medium. RESULTS: Gene expression analysis of co-culture spheroids revealed that CAFs induced a significant upregulation of cholesterol and steroid biosynthesis pathways in PCa cells. Cytokine profiling revealed high amounts of pro-inflammatory, pro-migratory and pro-angiogenic factors in the CAF supernatant. In particular, two genes, 3-hydroxy-3-methylglutaryl-Coenzyme A synthase 2 (HMGCS2) and aldo-keto reductase family 1 member C3 (AKR1C3), were significantly upregulated in PCa cells upon co-culture with CAFs. Both enzymes were also significantly increased in human PCa compared to benign tissue with AKR1C3 expression even being associated with Gleason score and metastatic status. Inhibiting HMGCS2 and AKR1C3 resulted in significant growth retardation of co-culture spheroids as well as of various castration and enzalutamide resistant cell lines in 2D and 3D culture, underscoring their putative role in PCa. Importantly, dual targeting of cholesterol and steroid biosynthesis with simvastatin, a commonly prescribed cholesterol synthesis inhibitor, and an inhibitor against AKR1C3 had the strongest growth inhibitory effect. CONCLUSIONS: From our results we conclude that CAFs induce an upregulation of cholesterol and steroid biosynthesis in PCa cells, driving them into AR targeted therapy resistance. Blocking both pathways with simvastatin and an AKR1C3 inhibitor may therefore be a promising approach to overcome resistances to AR targeted therapies in PCa. Video abstract.

Citace poskytuje Crossref.org

000      
00000naa a2200000 a 4500
001      
bmc21020796
003      
CZ-PrNML
005      
20210830102436.0
007      
ta
008      
210728s2020 xxk f 000 0|eng||
009      
AR
024    7_
$a 10.1186/s12964-019-0505-5 $2 doi
035    __
$a (PubMed)31980029
040    __
$a ABA008 $b cze $d ABA008 $e AACR2
041    0_
$a eng
044    __
$a xxk
100    1_
$a Neuwirt, Hannes $u Department of Internal Medicine IV - Nephrology and Hypertension, Medical University of Innsbruck, Innsbruck, Austria
245    10
$a Cancer-associated fibroblasts promote prostate tumor growth and progression through upregulation of cholesterol and steroid biosynthesis / $c H. Neuwirt, J. Bouchal, G. Kharaishvili, C. Ploner, K. Jöhrer, F. Pitterl, A. Weber, H. Klocker, IE. Eder
520    9_
$a BACKGROUND: Androgen receptor targeted therapies have emerged as an effective tool to manage advanced prostate cancer (PCa). Nevertheless, frequent occurrence of therapy resistance represents a major challenge in the clinical management of patients, also because the molecular mechanisms behind therapy resistance are not yet fully understood. In the present study, we therefore aimed to identify novel targets to intervene with therapy resistance using gene expression analysis of PCa co-culture spheroids where PCa cells are grown in the presence of cancer-associated fibroblasts (CAFs) and which have been previously shown to be a reliable model for antiandrogen resistance. METHODS: Gene expression changes of co-culture spheroids (LNCaP and DuCaP seeded together with CAFs) were identified by Illumina microarray profiling. Real-time PCR, Western blotting, immunohistochemistry and cell viability assays in 2D and 3D culture were performed to validate the expression of selected targets in vitro and in vivo. Cytokine profiling was conducted to analyze CAF-conditioned medium. RESULTS: Gene expression analysis of co-culture spheroids revealed that CAFs induced a significant upregulation of cholesterol and steroid biosynthesis pathways in PCa cells. Cytokine profiling revealed high amounts of pro-inflammatory, pro-migratory and pro-angiogenic factors in the CAF supernatant. In particular, two genes, 3-hydroxy-3-methylglutaryl-Coenzyme A synthase 2 (HMGCS2) and aldo-keto reductase family 1 member C3 (AKR1C3), were significantly upregulated in PCa cells upon co-culture with CAFs. Both enzymes were also significantly increased in human PCa compared to benign tissue with AKR1C3 expression even being associated with Gleason score and metastatic status. Inhibiting HMGCS2 and AKR1C3 resulted in significant growth retardation of co-culture spheroids as well as of various castration and enzalutamide resistant cell lines in 2D and 3D culture, underscoring their putative role in PCa. Importantly, dual targeting of cholesterol and steroid biosynthesis with simvastatin, a commonly prescribed cholesterol synthesis inhibitor, and an inhibitor against AKR1C3 had the strongest growth inhibitory effect. CONCLUSIONS: From our results we conclude that CAFs induce an upregulation of cholesterol and steroid biosynthesis in PCa cells, driving them into AR targeted therapy resistance. Blocking both pathways with simvastatin and an AKR1C3 inhibitor may therefore be a promising approach to overcome resistances to AR targeted therapies in PCa. Video abstract.
650    _2
$a senioři $7 D000368
650    _2
$a benzamidy $x farmakologie $7 D001549
650    _2
$a biosyntetické dráhy $x genetika $7 D053898
650    _2
$a fibroblasty asociované s nádorem $x metabolismus $x patologie $7 D000072645
650    _2
$a buněčný cyklus $x genetika $7 D002453
650    _2
$a nádorové buněčné linie $7 D045744
650    _2
$a proliferace buněk $x genetika $7 D049109
650    _2
$a viabilita buněk $x účinky léků $x genetika $7 D002470
650    _2
$a cholesterol $x biosyntéza $7 D002784
650    _2
$a kultivační média speciální $x farmakologie $7 D017077
650    12
$a progrese nemoci $7 D018450
650    _2
$a chemorezistence $x účinky léků $x genetika $7 D019008
650    _2
$a extracelulární matrix $x metabolismus $7 D005109
650    _2
$a stanovení celkové genové exprese $7 D020869
650    _2
$a regulace genové exprese u nádorů $x účinky léků $7 D015972
650    _2
$a lidé $7 D006801
650    _2
$a mužské pohlaví $7 D008297
650    _2
$a lidé středního věku $7 D008875
650    _2
$a biologické modely $7 D008954
650    _2
$a anotace sekvence $7 D058977
650    _2
$a nitrily $x farmakologie $7 D009570
650    _2
$a fenotyp $7 D010641
650    _2
$a fenylthiohydantoin $x farmakologie $7 D010669
650    _2
$a nádory prostaty $x genetika $x metabolismus $x patologie $7 D011471
650    _2
$a nádory prostaty rezistentní na kastraci $x genetika $x patologie $7 D064129
650    _2
$a androgenní receptory $x metabolismus $7 D011944
650    _2
$a simvastatin $x farmakologie $7 D019821
650    _2
$a buněčné sféroidy $x metabolismus $x patologie $7 D018874
650    12
$a upregulace $7 D015854
655    _2
$a časopisecké články $7 D016428
655    _2
$a práce podpořená grantem $7 D013485
700    1_
$a Bouchal, Jan $u Department of Clinical and Molecular Pathology, Institute of Molecular and Translational Medicine, Palacky University and University Hospital, Olomouc, Czech Republic
700    1_
$a Kharaishvili, Gvantsa $u Department of Clinical and Molecular Pathology, Institute of Molecular and Translational Medicine, Palacky University and University Hospital, Olomouc, Czech Republic
700    1_
$a Ploner, Christian $u Department of Plastic, Reconstructive and Aesthetic Surgery, Medical University of Innsbruck, Innsbruck, Austria
700    1_
$a Jöhrer, Karin $u Tyrolean Cancer Research Institute, Innsbruck, Austria $u Salzburg Cancer Research Institute, Laboratory for Immunological and Molecular Cancer Research, Salzburg, Austria
700    1_
$a Pitterl, Florian $u Institute of Legal Medicine, Medical University of Innsbruck, Innsbruck, Austria
700    1_
$a Weber, Anja $u Department of Urology, Division of Experimental Urology, Medical University of Innsbruck, Anichstrasse 35, 6020, Innsbruck, Austria
700    1_
$a Klocker, Helmut $u Department of Urology, Division of Experimental Urology, Medical University of Innsbruck, Anichstrasse 35, 6020, Innsbruck, Austria
700    1_
$a Eder, Iris E $u Department of Urology, Division of Experimental Urology, Medical University of Innsbruck, Anichstrasse 35, 6020, Innsbruck, Austria. iris.eder@i-med.ac.at
773    0_
$w MED00008216 $t Cell communication and signaling : CCS $x 1478-811X $g Roč. 18, č. 1 (2020), s. 11
856    41
$u https://pubmed.ncbi.nlm.nih.gov/31980029 $y Pubmed
910    __
$a ABA008 $b sig $c sign $y p $z 0
990    __
$a 20210728 $b ABA008
991    __
$a 20210830102436 $b ABA008
999    __
$a ok $b bmc $g 1691387 $s 1141242
BAS    __
$a 3
BAS    __
$a PreBMC
BMC    __
$a 2020 $b 18 $c 1 $d 11 $e 20200124 $i 1478-811X $m Cell communication and signaling $n Cell Commun Signal $x MED00008216
LZP    __
$a Pubmed-20210728

Najít záznam

Citační ukazatele

Nahrávání dat ...

Možnosti archivace

Nahrávání dat ...