PURPOSE: Monoclonal antibodies, such as herceptin and trastuzumab, against the epidermal growth factor receptor ErbB2 (also known as HER2/neu) are an effective therapy for breast cancer patients with overexpression of ErbB2. Herceptin, in combination with standard chemotherapy, such as taxol or etoposide, gives a synergistically apoptotic response in breast tumors. EXPERIMENTAL DESIGN: The mechanism underlying this synergy between chemotherapy and herceptin treatment is not well understood. Herein, we have determined that addition of herceptin, sensitized breast cancer cell lines MDA-MB-231 and MCF-7 to etoposide- or taxol-induced apoptosis. RESULTS: This treatment resulted in reduced expression of ErbB2 and the antiapoptotic Bcl-2 family member Mcl-1 in MDA-MB-231 cells. Using antisense oligonucleotides against Mcl-1, MDA-MB-231 cells were rendered sensitive to etoposide-induced apoptosis similar to herceptin, but combined treatment of antisense against Mcl-1 and herceptin failed to give a significant increase in apoptosis. In 29 human breast tumors immunostained for ErbB2 and Mcl-1, we found that when ErbB2 was overexpressed, there was a corresponding increase in Mcl-1 expression. DISCUSSION: Using murine fibroblasts that express human ErbB2, but no other ErbB family member (NE2), these cells showed resistance to both taxol- and etoposide-induced apoptosis compared with parental cells. In addition, NE2 cells preferentially express the antiapoptotic Bcl-2 family member Mcl-1 compared with parental cells, and treatment with herceptin reduces Mcl-1 expression. Taken together, these results suggest that herceptin sensitizes ErbB2-overexpressing cells to apoptosis by reducing antiapoptotic Mcl-1 protein levels.
PURPOSE: Monoclonal antibodies, such as herceptin and trastuzumab, against the epidermal growth factor receptorErbB2 (also known as HER2/neu) are an effective therapy for breast cancerpatients with overexpression of ErbB2. Herceptin, in combination with standard chemotherapy, such as taxol or etoposide, gives a synergistically apoptotic response in breast tumors. EXPERIMENTAL DESIGN: The mechanism underlying this synergy between chemotherapy and herceptin treatment is not well understood. Herein, we have determined that addition of herceptin, sensitized breast cancer cell lines MDA-MB-231 and MCF-7 to etoposide- or taxol-induced apoptosis. RESULTS: This treatment resulted in reduced expression of ErbB2 and the antiapoptotic Bcl-2 family member Mcl-1 in MDA-MB-231 cells. Using antisense oligonucleotides against Mcl-1, MDA-MB-231 cells were rendered sensitive to etoposide-induced apoptosis similar to herceptin, but combined treatment of antisense against Mcl-1 and herceptin failed to give a significant increase in apoptosis. In 29 humanbreast tumors immunostained for ErbB2 and Mcl-1, we found that when ErbB2 was overexpressed, there was a corresponding increase in Mcl-1 expression. DISCUSSION: Using murine fibroblasts that express humanErbB2, but no other ErbB family member (NE2), these cells showed resistance to both taxol- and etoposide-induced apoptosis compared with parental cells. In addition, NE2 cells preferentially express the antiapoptotic Bcl-2 family member Mcl-1 compared with parental cells, and treatment with herceptin reduces Mcl-1 expression. Taken together, these results suggest that herceptin sensitizes ErbB2-overexpressing cells to apoptosis by reducing antiapoptotic Mcl-1 protein levels.
Authors: Jashodeep Datta; Cinthia Rosemblit; Erik Berk; Lori Showalter; Prachi Namjoshi; Rosemarie Mick; Kathreen P Lee; Andrew M Brod; Rachel L Yang; Rachel R Kelz; Elizabeth Fitzpatrick; Clifford Hoyt; Michael D Feldman; Paul J Zhang; Shuwen Xu; Gary K Koski; Brian J Czerniecki Journal: Oncoimmunology Date: 2015-04-01 Impact factor: 8.110
Authors: S Thrane; A M Pedersen; M B H Thomsen; T Kirkegaard; B B Rasmussen; A K Duun-Henriksen; A V Lænkholm; M Bak; A E Lykkesfeldt; C W Yde Journal: Oncogene Date: 2014-11-03 Impact factor: 9.867
Authors: Yongqiang Chen; Elizabeth S Henson; Wenyan Xiao; Epsita Shome; Meghan B Azad; Teralee R Burton; Michelle Queau; Akshay Sathya; David D Eisenstat; Spencer B Gibson Journal: Cancer Biol Ther Date: 2015-10-15 Impact factor: 4.742
Authors: Lauren A Courter; Andreas Luch; Tamara Musafia-Jeknic; Volker M Arlt; Kay Fischer; Robert Bildfell; Cliff Pereira; David H Phillips; Miriam C Poirier; William M Baird Journal: Cancer Lett Date: 2008-03-18 Impact factor: 8.679
Authors: Amylou C Dueck; Monica M Reinholz; Xochiquetzal J Geiger; Kathleen Tenner; Karla Ballman; Robert B Jenkins; Darren Riehle; Beiyun Chen; Ann E McCullough; Nancy E Davidson; Silvana Martino; George W Sledge; Peter A Kaufman; Leila A Kutteh; Julie Gralow; Lyndsay N Harris; James N Ingle; Wilma L Lingle; Edith A Perez Journal: Clin Cancer Res Date: 2013-08-21 Impact factor: 12.531
Authors: F Végran; R Boidot; B Coudert; P Fumoleau; L Arnould; J Garnier; S Causeret; J Fraise; D Dembélé; S Lizard-Nacol Journal: Br J Cancer Date: 2009-09-15 Impact factor: 7.640