» Articles » PMID: 27197172

Autophagy Differentially Regulates Distinct Breast Cancer Stem-like Cells in Murine Models Via EGFR/Stat3 and Tgfβ/Smad Signaling

Overview
Journal Cancer Res
Specialty Oncology
Date 2016 May 20
PMID 27197172
Citations 85
Authors
Affiliations
Soon will be listed here.
Abstract

Cancer stem-like cells contribute to tumor heterogeneity and have been implicated in disease relapse and drug resistance. Here we show the coexistence of distinct breast cancer stem-like cells (BCSC) as identified by ALDH(+) and CD29(hi)CD61(+) markers, respectively, in murine models of breast cancer. While both BCSC exhibit enhanced tumor-initiating potential, CD29(hi)CD61(+) BCSC displayed increased invasive abilities and higher expression of epithelial-to-mesenchymal transition and mammary stem cell-associated genes, whereas ALDH(+) BCSC were more closely associated with luminal progenitors. Attenuating the autophagy regulator FIP200 diminished the tumor-initiating properties of both ALDH(+) and CD29(hi)CD61(+) BCSC, as achieved by impairing either the Stat3 or TGFβ/Smad pathways, respectively. Furthermore, combining the Stat3 inhibitor Stattic and the Tgfβ-R1 inhibitor LY-2157299 inhibited the formation of both epithelial and mesenchymal BCSC colonies. In vivo, this combination treatment was sufficient to limit tumor growth and reduce BCSC number. Overall, our findings reveal a differential dependence of heterogeneous BCSC populations on divergent signaling pathways, with implications on how to tailor drug combinations to improve therapeutic efficacy. Cancer Res; 76(11); 3397-410. ©2016 AACR.

Citing Articles

Extrachromosomal circular DNA and their roles in cancer progression.

Zheng S, Li Y, Wang L, Wei Q, Wei M, Yu T Genes Dis. 2024; 12(1):101202.

PMID: 39534571 PMC: 11554924. DOI: 10.1016/j.gendis.2023.101202.


STAT3: Key targets of growth-promoting receptor positive breast cancer.

Jiang R, Zhu J, Zhang H, Yu Y, Dong Z, Zhou H Cancer Cell Int. 2024; 24(1):356.

PMID: 39468521 PMC: 11520424. DOI: 10.1186/s12935-024-03541-9.


Receptor tyrosine kinases in breast cancer treatment: unraveling the potential.

Qi Y, Deng S, Wang K Am J Cancer Res. 2024; 14(9):4172-4196.

PMID: 39417188 PMC: 11477839. DOI: 10.62347/KIVS3169.


Understanding the autophagic functions in cancer stem cell maintenance and therapy resistance.

Niharika , Garg M Expert Rev Mol Med. 2024; 26:e23.

PMID: 39375840 PMC: 11488345. DOI: 10.1017/erm.2024.23.


ATP6V1D drives hepatocellular carcinoma stemness and progression via both lysosome acidification-dependent and -independent mechanisms.

Xu Z, Liu R, Ke H, Xu F, Yang P, Zhang W Autophagy. 2024; 21(3):513-529.

PMID: 39316516 PMC: 11849949. DOI: 10.1080/15548627.2024.2406186.


References
1.
Ferlay J, Soerjomataram I, Dikshit R, Eser S, Mathers C, Rebelo M . Cancer incidence and mortality worldwide: sources, methods and major patterns in GLOBOCAN 2012. Int J Cancer. 2014; 136(5):E359-86. DOI: 10.1002/ijc.29210. View

2.
Chen J, Li Y, Yu T, McKay R, Burns D, Kernie S . A restricted cell population propagates glioblastoma growth after chemotherapy. Nature. 2012; 488(7412):522-6. PMC: 3427400. DOI: 10.1038/nature11287. View

3.
Mathew R, Khor S, Hackett S, Rabinowitz J, Perlman D, White E . Functional role of autophagy-mediated proteome remodeling in cell survival signaling and innate immunity. Mol Cell. 2014; 55(6):916-930. PMC: 4169768. DOI: 10.1016/j.molcel.2014.07.019. View

4.
Zhang M, Behbod F, Atkinson R, Landis M, Kittrell F, Edwards D . Identification of tumor-initiating cells in a p53-null mouse model of breast cancer. Cancer Res. 2008; 68(12):4674-82. PMC: 2459340. DOI: 10.1158/0008-5472.CAN-07-6353. View

5.
Karantza-Wadsworth V, Patel S, Kravchuk O, Chen G, Mathew R, Jin S . Autophagy mitigates metabolic stress and genome damage in mammary tumorigenesis. Genes Dev. 2007; 21(13):1621-35. PMC: 1899472. DOI: 10.1101/gad.1565707. View