Author:
Taylor Winna,Mathias Amanda,Ali Arshia,Ke Hengning,Stoynev Nikolay,Shilkaitis Anne,Green Albert,Kiyokawa Hiroaki,Christov Konstantin
Abstract
Abstract
Background
p27 is a cell cycle suppressor gene, whose protein is a negative regulator of cyclin/cdk complexes. p27 is also a potential target of retinoids in cancer prevention studies. In benign prostate hyperplasia (BPH), and in most carcinomas, p27Kip1 is down-regulated, suggesting its potential resistance to retinoids. To test this hypothesis, we examined the efficacy of 9-cis retinoic acid (9cRA) to suppress prostate cell proliferation (PECP) and carcinogenesis in p27Kip1 deficient mice.
Methods
p27Kip1 deficient (-/-), heterozygous (+/-) and homozygous (+/+) mice were treated for 7 days with testosterone, 9cRA, or with both, and cell proliferation in dorsolateral prostate (DLP) was determined by BrdU labeling. Prostate carcinogenesis was induced by N-Methyl-N-Nitrosourea (MNU) and hormone stimulation.
Results
PECP in DLP of two-month-old mice of all genotypes was similar but significantly increased in old p27-/- mice only. Testosterone treatment increased PECP in all three p27 genotypes with the highest values in p27-/- mice. p27Kip1 deficiency did not affect the response of PEC to 9cRA and to 9cRA+testosterone. The decrease of p27Kip1 in p27+/- and p27-/- mice progressively increased the incidence and frequency of PIN and tumors. 9cRA suppressed PIN in all three p27 genotypes and this was associated with decreased PECP and increased cellular senescence.
Conclusions
This data indicates that p27Kip1 deficiency promotes prostate cell proliferation and carcinogenesis but does not affect 9cRA's potential to suppress prostate carcinogenesis, suggesting that patients with PIN and carcinomas lacking or having a low level of p27Kip1 expression may also benefit from clinical trials with retinoids.
Publisher
Springer Science and Business Media LLC
Subject
Cancer Research,Genetics,Oncology
Reference41 articles.
1. Gill JK, Wilkens LR, Pollak MN, Stanczyk FZ, Kolonel LN: Androgens, growth factors, and risk of prostate cancer: the Multiethnic Cohort. Prostate. 2010, 70 (8): 906-915.
2. Alberti C: Hereditary/familial versus sporadic prostate cancer: few indisputable genetic differences and many similar clinicopathological features. Eur Rev Med Pharmacol Sci. 2010, 14 (1): 31-41.
3. Marlow NM, Halpern MT, Pavluck AL, Ward EM, Chen AY: Disparities associated with advanced prostate cancer stage at diagnosis. J Health Care Poor Underserved. 2010, 21 (1): 112-131. 10.1353/hpu.0.0253.
4. Yang RM, Naitoh J, Murphy M, Wang HJ, Phillipson J, deKernion JB, Loda M, Reiter RE: Low p27 expression predicts poor disease-free survival in patients with prostate cancer. J Urol. 1998, 159 (3): 941-945. 10.1016/S0022-5347(01)63776-5.
5. Roy S, Gu M, Ramasamy K, Singh RP, Agarwal C, Siriwardana S, Sclafani RA, Agarwal R: p21/Cip1 and p27/Kip1 Are essential molecular targets of inositol hexaphosphate for its antitumor efficacy against prostate cancer. Cancer Res. 2009, 69 (3): 1166-1173. 10.1158/0008-5472.CAN-08-3115.
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