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  1. 1.   Spatiotemporal modulation of growth factors directs the generation of multilineage mouse embryonic stem cell-derived mammary organoids
  2. Sahu,Sounak; Sahoo, Sarthak; Sullivan,Teresa; O'Sullivan,Theresa; Turan,Sevilay; Albaugh,Mary; Burkett,Sandra; Tran,Bao; Salomon,David; Kozlov,Serguei; Koehler, Karl R; Jolly, Mohit Kumar; Sharan,Shyam
  3. Developmental Cell. 2024, Jan 22; 59
  1. 2.   Slug and E-Cadherin: Stealth Accomplices?
  2. Sterneck,Esta; Poria,Dipak; Kuppusamy,Balamurugan
  3. Frontiers in molecular biosciences. 2020, JUL 14; 7: 138.
  1. 3.   Absolute oxygen tension (pO(2)) muscle tissue as determined by in murine fatty and EPR
  2. Matsumoto, A.; Matsumoto, S.; Sowers, A. L.; Koscielniak, J. W.; Trigg, N. J.; Kuppusamy, P.; Mitchell, J. B.; Subramanian, S.; Krishna, M. C.; Matsumoto, K.
  3. Magnetic Resonance in Medicine. 2005, DEC; 54(6): 1530-1535.
  1. 4.   C/EBP delta is a crucial regulator of pro-apoptotic gene expression during mammary gland involution
  2. Thangaraju, M.; Rudelius, M.; Bierie, B.; Raffeld, M.; Sharan, S.; Hennighausen, L.; Huang, A. M.; Sterneck, E.
  3. Development. 2005, NOV; 132(21): 4675-4685.
  1. 5.   Mammary development and tumorigenesis in mice expressing a truncated human Notch4/Int3 intracellular domain (h-Int3sh)
  2. Raafat, A.; Bargo, S.; Anver, M. R.; Callahan, R.
  3. Oncogene. 2004, DEC 16; 23(58): 9401-9407.
  1. 6.   Transcription factor blockade for mammary gland biology and prevention of breast cancer
  2. Shen, Q.; Zhang, Y.; Hill, J.; Lu, C. H.; Kim, H. T.; Chodosh, L. A.; Young, M.; Colburn, N.; Brown, P. H.
  3. Cancer Epidemiology Biomarkers & Prevention. 2004, NOV; 13(11, Part 2): 1920S-1920S.
  1. 7.   Mammary gland remodeling depends on gp130 signaling through Stat3 and MAPK
  2. Zhao, L.; Hart, S.; Cheng, J. G.; Melenhorst, J. J.; Bierie, B.; Ernst, M.; Stewart, C.; Schaper, F.; Heinrich, P. C.; Ullrich, A.; Robinson, G. W.; Hennighausen, L.
  3. Journal of Biological Chemistry. 2004, OCT 15; 279(42): 44093-44100.
  1. 8.   Canonical WNT signaling promotes mammary placode development and is essential for initiation of mammary gland morphogenesis
  2. Chu, E. Y.; Hens, J.; Andl, T.; Kairo, A.; Yamaguchi, T. P.; Brisken, C.; Glick, A.; Wysolmerski, J. J.; Millar, S. E.
  3. Development. 2004, OCT; 131(19): 4819-4829.
  1. 9.   Quantitative three-dimensional microscopy approaches with applications in breast cancer biology including measurement of genomic instability
  2. Lockett, S.; de Solorzano, C. O.; Baggett, D.; Chin, K.
  3. Journal of Mammary Gland Biology and Neoplasia. 2004, OCT; 9(4): 383-391.
  1. 11.   Adipose tissue: A vital in vivo role in mammary gland development but not differentiation
  2. Couldrey, C.; Moitra, J.; Vinson, C.; Anver, M.; Nagashima, K.; Green, J.
  3. Developmental Dynamics. 2002 223(4): 459-468.
  1. 12.   Haploid loss of bax leads to accelerated mammary tumor development in C3(1)/SV40-TAg transgenic mice: reduction in protective apoptotic response at the preneoplastic stage
  2. Shibata, M. A.; Liu, M. L.; Knudson, M. C.; Shibata, E.; Yoshidome, K.; Bandey, T.; Korsmeyer, S. J.; Green, J. E.
  3. Embo Journal. 1999 18(10): 2692-2701.
  1. 13.   Adaptation of Laser Microdissection Technique to Nanostring RNA Analysis in the Study of a Spontaneous Metastatic Mammary Carcinoma Mouse Model
  2. Castro, Nadia P; Golubeva, Yelena
  3. Methods in molecular biology (Clifton, N.J.). 2018 1723: 119-137.
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