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AupperleeMD, SmithKT, KariaginaA, HaslamSZ. Progesterone receptor isoforms A and B: temporal and spatial differences in expression during murine mammary gland development.Endocrinology2005; 146: 3577–3588.Google Scholar
Bar-SinaiA, BassaN, FischetteM, GottesmanMM, LoveDC, HanoverJA, HochmanJ. Mouse mammary tumor virus env-derived peptide associates with nucleolar targets in lymphoma, mammary carcinoma, and human breast cancer.Cancer Res2005; 65: 7223–7230.Google Scholar
BerteauxN, LottinV, MonteD, PinteS, QuatannensB, CollJ, HondermarckH, CurgyJJ, DugimontT, AdriaenssensE. H19 mRNA-like noncoding RNA promotes breast cancer cell proliferation through positive control by E2F1.J Biol Chem2005; 280: 29625–29636.Google Scholar
BiroccioA, D'AngeloC, JansenB, CleaveME, ZupiG. Antisense clusterin oligodeoxynucleotides increase the response of HER-2 gene amplified breast cancer cells to trastuzumab.J Cell Physiol2005; 204: 463–469.Google Scholar
BogdanovaN, Enssen-DubrowinskajaN, FeshchenkoS, LazjukGI, RogovYI, DammannO, BremerM, KarstensJH, SohnC, DorkT. Association of two mutations in the CHEK2 gene with breast cancer.Int J Cancer2005; 116: 263–266.Google Scholar
CabiogluN, YaziciMS, ArunB, BroglioKR, HortobagyiGN, PriceJE, SahinA. CCR7 and CXCR4 as novel biomarkers predicting axillary lymph node metastasis in T-1 breast cancer.Clin Cancer Res2005; 11: 5686–5693.Google Scholar
CeschiM, SunCL, Van Den BergD, KohWP, YuMC, Probst-HenschN. The effect of cyclin D1 (CCND1) G870A-polymorphism on breast cancer risk is modified by oxidative stress among Chinese women in Singapore.Carcinogenesis2005; 26: 1457–1464.Google Scholar
CookAC, TuckAB, McCarthyS, TurnerJG, IrbyRB, BloomGC, YeatmanTJ, ChambersAF. Osteopontin induces multiple changes in gene expression that reflect the six ‘hallmarks of cancer’ in a model of breast cancer progression.Mol Carcinogen2005; 43: 225–236.Google Scholar
DeMicheleA, AplencR, BotbylJ, ColliganT, WrayL, Klein-CabralM, FoulkesA, GimottyP, GlickJ, WeberB, StadtmauerE, RebbeckTR. Drug-metabolizing enzyme polymorphisms predict clinical outcome in a node-positive breast cancer cohort.J Clin Oncol2005; 23: 5552–5559.Google Scholar
DietelM, LewisMA, ShapiroS. Hormone replacement therapy: pathobiological aspects of hormone-sensitive cancers in women relevant to epidemiological studies on HRT: a mini-review.Hum Reprod2005; 20: 2052–2060.Google Scholar
EwanKBR, Oketch-RabahHA, RavaniSA, ShyamalaG, MosesHL, Barcellos-HoffMH. Proliferation of estrogen receptor-alpha-positive mammary epithelial cells is restrained by transforming growth factor-beta 1 in adult mice.Am J Pathol2005; 167: 409–417.Google Scholar
FernandezCA, YanL, LousG, YangJ, KutokJL, MosesMA. The matrix metalloproteinase-9/neutrophil gelatinase-associated lipocalin complex plays a role in breast tumor growth and is present in the urine of breast cancer patients.Clin Cancer Res2005; 11: 5390–5395.Google Scholar
FreedmanML, PenneyKL, StramDO, RileyS, McKean-CowdinR, Le MarchandL, AltshulerD, HaimanCA. A haplotype-based case-control study of BRCA1 and sporadic breast cancer risk.Cancer Res2005; 65: 7516–7522.Google Scholar
GarciaMJ, PoleJCM, ChinSF, TeschendorffA, NaderiA, OzdagH, ViasM, KranjacT, SubkhankulovaT, PaishC, EllisI, BrentonJD, EdwardsPAW, CaldasC. A 1Mb minimal amplicon at 8p11–12 in breast cancer identifies new candidate oncogenes.Oncogene2005; 24: 5235–5245.Google Scholar
HuM, YaoJ, CaiL, BachmanKE, van den BruleF, VelculescuV, PolyakK. Distinct epigenetic changes in the stromal cells of breast cancers.Nat Genet2005; 37: 899–905.Google Scholar
JiangWG, DaviesG, MartinT, ParrC, WatkinsG, MasonMD, MokbelK, ManselRE. Targeting matrilysin and its impact on tumor growth in vivo: the potential implications in breast cancer therapy.Clin Cancer Res2005; 11: 6012–6019.Google Scholar
KarsanA, EiglBJ, FlibotteS, GelmonK, SwitzerP, HassellP, HarrisonD, LawJ, HayesM, StillwellM, XiaoZ, ConradsTP, VeenstraT. Analytical and preanalytical biases in serum proteomic pattern analysis for breast cancer diagnosis.Clin Chem2005; 51: 1525–1528.Google Scholar
KeenJC, ZhouQ, ParkBH, PettitC, MackKM, BlairB, BrennerK, DavidsonNE. Protein phosphatase 2A regulates estrogen receptor alpha (ER) expression through modulation of ER mRNA stability.J Biol Chem2005; 280: 29519–29524.Google Scholar
KimH, LaingM, MullerW. c-Src-null mice exhibit defects in normal mammary gland development and ER alpha signaling.Oncogene2005; 24: 5629–5636.Google Scholar
Le MarchandL, DonlonT, KolonelLN, HendersonBE, WilkensLR. Estrogen metabolism-related genes and breast cancer risk: the multiethnic cohort study.Cancer Epidem Biomar2005; 14: 1998–2003.Google Scholar
LesueurF, PharoahPD, LaingS, AhmedS, JordanC, SmithPL, LubenR, WarehamNJ, EastonDF, DunningAM, PonderBAJ. Allelic association of the human homologue of the mouse modifier Ptprj with breast cancer.Hum Mol Genet2005; 14: 2349–2356.Google Scholar
LiangYY, HyderSM. Proliferation of endothelial and tumor epithelial cells by progestin-induced vascular endothelial growth factor from human breast cancer cells: paracrine and autocrine effects.Endocrinology2005; 146: 3632–3641.Google Scholar
LopezJI, CamenischTD, StevensMV, SandsBJ, McDonaldJ, SchroederJA. CD44 attenuates metastatic invasion during breast cancer progression.Cancer Res2005; 65: 6755–6763.Google Scholar
LuoM, KohM, FengJJ, WuQ, MelamedP. Cross talk in hormonally regulated gene transcription through induction of estrogen receptor ubiquitylation.Mol Cell Biol2005; 25: 7386–7398.Google Scholar
MannGB, FaheyVD, FeleppaF, BuchananMR. Reliance on hormone receptor assays of surgical specimens may compromise outcome in patients with breast cancer.J Clin Oncol2005; 23: 5148–5154.Google Scholar
MelkoumianZK, PengX, GanBY, WuYY, GuanJL. Mechanism of cell cycle regulation by FIP200 in human breast cancer cells.Cancer Res2005; 65: 6676–6684.Google Scholar
OlivaJ, El MessaoudiS, PellestorF, FuentesM, GeorgetV, BalaguerP, CavaillesV, VignonFO, BadiaE. Involvement of HP1 alpha protein in irreversible transcriptional inactivation by antiestrogens in breast cancer cells.Febs Lett2005; 579: 4278–4286.Google Scholar
RadvanyiL, Singh-SandhuD, GallichanS, LovittC, PedyczakA, MalloG, GishK, KwokK, HannaW, ZubovitsJ, ArmesJ, VenterD, HakimiJ, ShortreedJ, DonovanM, ParringtonM, DunnP, OomenR, TartagliaJ, BerinsteinNL. The gene associated with trichorhinophalangeal syndrome in humans is overexpressed in breast cancer.Proc Natl Acad Sci2005; 102: 11005–11010.Google Scholar
RouzierR, PerouCM, SymmansWF, IbrahimN, CristofanilliM, AndersonK, HessKR, StecJ, AyersM, WagnerP, MorandiP, FanC, RabiulI, RossJS, HortobagyiGN, PusztaiL. Breast cancer molecular subtypes respond differently to preoperative chemotherapy.Clin Cancer Res2005; 11: 5678–5685.Google Scholar
ShahYM, Al-DhaheriM, DongY, IpC, JonesFE, RowanBG. Selenium disrupts estrogen receptor alpha signaling and potentiates tamoxifen antagonism in endometrial cancer cells and tamoxifen-resistant breast cancer cells.Mol Cancer Ther2005; 4: 1239–1249.Google Scholar
Shalom-FeuersteinR, CooksT, RazA, KloogY. Galectin-3 regulates a molecular switch from N-Ras to K-Ras usage in human breast carcinoma cells.Cancer Res2005; 65: 7292–7300.Google Scholar
StassiG, GarofaloM, ZerilliM, Ricci-VitianiL, ZancaC, TodaroM, AragonaF, LimiteG, PetrellaG, CondorelliG. PED mediates AKT-dependent chemoresistance in human breast cancer cells.Cancer Res2005; 65: 6668–6675.Google Scholar
SunY, StrizziL, RaafatA, HirotaM, BiancoC, FeigenbaumL, KenneyN, WechselbergerC, CallahanR, SalomonDS. Overexpression of human Cripto-1 in transgenic mice delays mammary gland development and differentiation and induces mammary tumorigenesis.Am J Pathol2005; 167: 585–597.Google Scholar
TuY, JerryDJ, PazikB, SchneiderSS. Sensitivity to DNA damage is a common component of hormone-based strategies for protection of the mammary gland.Mol Cancer Res2005; 3: 435–442.Google Scholar
UrsinG, BernsteinL, LordSJ, KarimR, DeapenD, PressMF, DalingJR, NormanSA, LiffJM, MarchbanksPA, FolgerSG, SimonMS, StromBL, BurkmanRT, WeissLK, SpirtasR. Reproductive factors and subtypes of breast cancer defined by hormone receptor and histology.Br J Cancer2005; 93: 364–371.Google Scholar
van der HelOL, Bueno-de-MesquitaHB, van GilsCH, RoestM, SlothouberB, GrobbeeDE, PeetersPHM. Cumulative genetic defects in carcinogen metabolism may increase breast cancer risk.Cancer Cause Contr2005; 16: 675–681.Google Scholar
VarmaAK, BrownRS, BirraneG, LadiasJAA. Structural basis for cell cycle checkpoint control by the BRCA1-CtIP complex.Biochemistry2005; 44: 10941–10946.Google Scholar
WittmannBM, FujinagaK, DengHY, OgbaN, MontanoMM. The breast cell growth inhibitor, estrogen down regulated gene 1, modulates a novel functional interaction between estrogen receptor alpha and transcriptional elongation factor cyclin T1.Oncogene2005; 24: 5576–5588.Google Scholar
YuanJM, KohWP, SunCL, LeeHP, YuMC. Green tea intake, ACE gene polymorphism and breast cancer risk among Chinese women in Singapore.Carcinogenesis2005; 26: 1389–1394.Google Scholar
ZhangSM, HankinsonSE, HunterDJ, GiovannucciEL, ColditzGA, WillettWC. Folate intake and risk of breast cancer characterized by hormone receptor status.Cancer Epidem Biomar2005; 14: 2004–2008.Google Scholar
ZhaoH, CuiYZ, DupontJ, SunH, HennighausenL, YakarS. Overexpression of the tumor suppressor gene phosphatase and tensin homologue partially inhibits Wnt-1-induced mammary tumorigenesis.Cancer Res2005; 65: 6864–6873.Google Scholar