Role of adipose tissue-derived cytokines in the progression of inflammatory breast cancer in patients with obesity

De Silva S, Tennekoon KH, Karunanayake EH. Overview of the genetic basis toward early detection of breast cancer. Breast Cancer Targets Therapy. 2019;11:71–80.

PubMed  PubMed Central  Google Scholar 

Fletcher SJ, Sacca PA, Pistone-creydt M, Coló FA, Serra MF, Santino FE, et al. Human breast adipose tissue : characterization of factors that change during tumor progression in human breast cancer. J Exp Clin Cancer Res. 2017:1–13.

Saeg F, Anbalagan M. Breast cancer stem cells and the challenges of eradication: a review of novel therapies. 2018;5:1–9.

Harwansh RK, Deshmukh R. Breast cancer: An insight into its inflammatory, molecular, pathological and targeted facets with update on investigational drugs. Crit Rev Oncol Hematol [Internet]. 2020;154:103070. Available from: https://doi.org/https://doi.org/10.1016/j.critrevonc.2020.103070

Schlichting JA, Soliman AS, Schairer C, Harford JB, Hablas A, Ramadan M, et al. Breast Cancer by Age at Diagnosis in the Gharbiah, Egypt, Population-Based Registry Compared to the United States Surveillance, Epidemiology, and End Results Program, 2004-2008. Biomed Res Int. 2015;2015.

Nouh MA, Mohamed MM, El-Shinawi M, Shaalan MA, Cavallo-Medved D, Khaled HM, et al. Cathepsin b: A potential prognostic marker for inflammatory breast cancer. J Transl Med. 2011;9:1–8.

CAS  PubMed  PubMed Central  Google Scholar 

Mohamed HT, Untereiner V, Proult I, Ibrahim SA, Götte M, El-Shinawi M, et al. Characterization of inflammatory breast cancer: a vibrational microspectroscopy and imaging approach at the cellular and tissue level. Analyst. 2018;143:6103–12.

CAS  PubMed  Google Scholar 

Fares M, Taha Mohamed H, Ibrahim SA, Hosney M, Rady MI, El-Shinawi M, et al. Incidence of Human Cytomegalovirus in Breast Carcinoma Tissues is Associated with A Higher Expression of Growth Factor Receptor-Bound Protein 2. Egypt J Hospital Med [Internet]. 2019;75:2358–65 Available from: https://ejhm.journals.ekb.eg/article_30754_b8d84e5d384b134ccd109242869610c9.pdf.

Google Scholar 

Barkataki S, Joglekar-Javadekar M, Bradfield P, Murphy T, Dickson-Witmer D, van Golen KL, et al. Inflammatory Breast Cancer: A Panoramic Overview. J Rare Dis ResTreatment. 2018;3:37–43.

Google Scholar 

Mohamed HT, Boffa MB, Mohamed MM, Cavallo-Medved D, El-Ghonaimy EA, Bazzi ZA, et al. IL-10 correlates with the expression of carboxypeptidase B2 and lymphovascular invasion in inflammatory breast cancer: The potential role of tumor infiltrated macrophages. Curr Probl Cancer. 2018;42:215–30.

PubMed  Google Scholar 

Nouh MA, Mohamed MM, El-Shinawi M, Shaalan MA, Cavallo-Medved D, Khaled HM, et al. Cathepsin b: A potential prognostic marker for inflammatory breast cancer. J Transl Med [Internet]; 2011;9:1. Available from: http://www.translational-medicine.com/content/9/1/1

Huang A, Cao S, Tang L. The tumor microenvironment and inflammatory breast cancer. J Cancer. 2017;8:1884–91.

PubMed  PubMed Central  Google Scholar 

Mohamed MM. Inflammatory breast cancer : New factors contribute to disease etiology: A review. J Adv Res [Internet]. 2014;5:525–536. Available from: https://doi.org/10.1016/j.jare.2013.06.004

Laudisio D, Muscogiuri G, Barrea L, Savastano S, Colao A. Obesity and breast cancer in premenopausal women: Current evidence and future perspectives. Eur J Obstetr Gynecol Reprod Biol [Internet]. 2018;230:217–221. Available from: https://doi.org/10.1016/j.ejogrb.2018.03.050

Liu X, Sun Q, Hou H, Zhu K, Wang Q, Liu H, et al. The association between BMI and kidney cancer risk. 2018;

Google Scholar 

Jiang SHUZ, Lu WEN, Zong XUEF, Ruan HYUN, Liu YI. Obesity Hypertension (Review). 2016:2395–9.

Lee K, Kruper L, Dieli-Conwright CM, Mortimer JE. The Impact of Obesity on Breast Cancer Diagnosis and Treatment. Curr Oncol Rep. 2019;21:19–24.

Google Scholar 

Renehan AG, Soerjomataram I, Tyson M, Egger M, Zwahlen M, Coebergh JW, et al. Incident cancer burden attributable to excess body mass index in 30 European countries. Int J Cancer. 2010;702:692–702.

Google Scholar 

Protani M, Coory M, Martin JH. Effect of obesity on survival of women with breast cancer : systematic review and meta-analysis. Breast Cancer Res Treat. 2010:627–35.

Fuentes-Mattei E, Velazquez-Torres G, Phan L, Zhang F, Chou PC, Shin JH, et al. Effects of obesity on transcriptomic changes and cancer hallmarks in estrogen receptor-positive breast cancer. J Natl Cancer Inst. 2014;106.

Lengyel E, Makowski L, DiGiovanni J, Kolonin MG. Cancer as a Matter of Fat: The Crosstalk between Adipose Tissue and Tumors. Trend Cancer [Internet]. 2018;4:374–384. Available from: https://doi.org/10.1016/j.trecan.2018.03.004

Vaysse C, Muller C, Fallone F. Obesity: An heavyweight player in breast cancer’s chemoresistance. Oncotarget. 2019;10:3207–8.

PubMed  PubMed Central  Google Scholar 

Ewertz M, Jensen MB, Gunnarsdóttir KÁ, Højris I, Jakobsen EH, Nielsen D, et al. effect of obesity on prognosis after early-stage breast cancer. J Clin Oncol. 2011;29:25–31.

PubMed  Google Scholar 

Emaus A, Bragelien M, Steinar V. Metabolic profile, physical activity, and mortality in breast cancer patients. Breast Cancer Res Treat. 2010;121:651–60.

PubMed  Google Scholar 

Vaysse C, Lomo J, Garred O, Fjeldheim F, Lofteroed T, Schlichting E, et al. Inflammation of mammary adipose tissue occurs in overweight and obese patients exhibiting early-stage breast cancer. NPJ Breast Cancer [Internet]. 2017;3:1–9. Available from: https://doi.org/10.1038/s41523-017-0015-9

DSM C, Vieira AR, Aune D, Bandera EV, Greenwood DC, Mctiernan A, et al. Body mass index and survival in women with breast cancer-systematic literature review and meta-analysis of 82 follow-up studies. Ann Oncol. 2014;25:1901–14.

Google Scholar 

Wu Q, Li B, Li Z, Li J, Sun S, Sun S. Cancer-associated adipocytes: Key players in breast cancer progression. J Hematol Oncol. 2019;12:1–15.

Google Scholar 

Lorincz AM, Sukumar S. Molecular links between obesity and breast cancer. Endocr Relat Cancer. 2006;13:279–92.

CAS  PubMed  Google Scholar 

Zhu W, Nelson CM. Adipose and mammary epithelial tissue engineering. Biomatter. 2013;3:1–6.

Google Scholar 

Kocan B, Maziarz A, Tabarkiewicz J, Ochiya T, Banaś-Ząbczyk A. Trophic Activity and Phenotype of Adipose Tissue-Derived Mesenchymal Stem Cells as a Background of Their Regenerative Potential. Stem Cells Int. 2017;2017:1653254.

PubMed  PubMed Central  Google Scholar 

Sethi JK, Vidal-Puig AJ. Thematic review series: Adipocyte Biology. Adipose tissue function and plasticity orchestrate nutritional adaptation. J Lipid Res. 2007;48:1253–62.

CAS  PubMed  Google Scholar 

Schäffler A, Büchler C. Concise Review: Adipose Tissue-Derived Stromal Cells-Basic and Clinical Implications for Novel Cell-Based Therapies. Stem Cells. 2007;25:818–27.

PubMed  Google Scholar 

Zoico E, Rubele S, De Caro A, Nori N, Mazzali G, Fantin F, et al. Brown and beige adipose tissue and aging. Front Endocrinol. 2019;10:1–10.

Google Scholar 

Fenzl A, Kiefer FW. Brown adipose tissue and thermogenesis. Horm Mol Biol Clin Invest. 2014;19:25–37.

CAS  Google Scholar 

Jardé T, Perrier S, Vasson MP, Caldefie-Chézet F. Molecular mechanisms of leptin and adiponectin in breast cancer. Eur J Cancer. 2011;47:33–43.

PubMed  Google Scholar 

Kajimura S, Saito M. NIH Public Access. 2014;225–49.

Fain JN, Madan AK, Hiler ML, Cheema P, Bahouth SW. Comparison of the release of adipokines by adipose tissue, adipose tissue matrix, and adipocytes from visceral and subcutaneous abdominal adipose tissues of obese humans. Endocrinology. 2004;145:2273–82.

CAS  PubMed  Google Scholar 

Berg AH, Scherer PE. Adipose tissue, inflammation, and cardiovascular disease. Circ Res. 2005;96:939–49.

CAS  PubMed  Google Scholar 

Liu C, Zhao Q, Yu X. Bone Marrow Adipocytes, Adipocytokines, and Breast Cancer Cells: Novel Implications in Bone Metastasis of Breast Cancer. Front Oncol. 2020;10:1–15.

Google Scholar 

Avtanski D, Garcia A, Caraballo B, Thangeswaran P, Marin S, Bianco J, et al. Cytokine Resistin induces breast cancer cells epithelial to mesenchymal transition ( EMT ) and stemness through both adenylyl cyclase-associated protein 1 ( CAP1 ) -dependent and CAP1-independent mechanisms. Cytokine [Internet]. 2019;120:155–164. Available from: https://doi.org/10.1016/j.cyto.2019.04.016

Ogino T, Matsunaga N, Tanaka T, Tanihara T, Terajima H, Yoshitane H, et al. Post-transcriptional repression of circadian component clock regulates cancer-stemness in murine breast cancer cells. Elife. 2021;10:1–26.

Tarek A, El-Sayed SK, Woodward WA, El-Shinawi M, Hirshon JM, Mohamed MM. Inflammatory Breast Cancer: The Cytokinome of Post-Mastectomy Wound Fluid Augments Proliferation, Invasion, and Stem Cell Markers. Curr Issues Mol Biol. 2022;44:2730–44.

Wanandi SI, Syahrani RA, Arumsari S, Wideani G, Hardiany NS. Profiling of gene expression associated with stemness and aggressiveness of ALDH1A1-expressing human breast cancer cells. Malaysian J Med Sci. 2019;26:38–52

Piruzyan M, Shitanda I, Shimauchi Y, Okita G, Tsurekawa Y, Moriuchi M, et al. A novel condition of mild electrical stimulation exerts immunosuppression via hydrogen peroxide production that controls multiple signaling pathway. Public Library of Science; PLoS One. 2020;15.

Ibrahim SA, Gadalla R, El-Ghonaimy EA, Samir O, Mohamed HT, Hassan H, et al. Syndecan-1 is a novel molecular marker for triple negative inflammatory breast cancer and modulates the cancer stem cell phenotype via the IL-6/STAT3, Notch and EGFR signaling pathways. Mol Cancer. 2017;16:57.

PubMed  PubMed Central  Google Scholar 

Fares M, Mohamed HT, Ibrahim SA, Hosney M, Rady M, El-Shinawi M, et al. Incidence of Human Cytomegalovirus in Breast Carcinoma Tissues is Associated with A Higher Expression of Growth Factor Receptor-Bound Protein 2. Egypt J Hosp Med. 2019;75:2358–65.

Google Scholar 

D’Esposito V, Ambrosio MR, Giuliano M, Cabaro S, Miele C, Beguinot F, et al. Mammary Adipose Tissue Control of Breast Cancer Progression: Impact of Obesity and Diabetes. Front Oncol. 2020;10:1–8.

Google Scholar 

Gyamfi J, Lee YH, Eom M, Choi J. Interleukin-6/STAT3 signalling regulates adipocyte induced epithelial-mesenchymal transition in breast cancer cells. Scientific Reports [Internet]. 2018;8:1–13. Available from: https://doi.org/10.1038/s41598-018-27184-9

Cozzo AJ, Fuller AM, Makowski L. Contribution of adipose tissue to development of cancer. Compr Physiol. 2018;8:237–82.

Google Scholar 

Picon-ruiz M, Morata-tarifa C, Valle-goffin JJ. Take free quizzes online at acsjournals . com / ce Obesity and Adverse Breast Cancer Risk and Outcome : Mechanistic Insights and Strategies for Intervention. 2017;67.

Fouad TM, Kogawa T, Liu DD, Shen Y, Masuda H, El-Zein R, et al. HHS Public Access. 2016;152:407–16.

Padmanaban V, Grasset EM, Neumann NM, Fraser AK, Henriet E, Matsui W, et al. Organotypic culture assays for murine and human primary and metastatic-site tumors. Nature Protocols [Internet]. 2020;15:2413–2442. Available from: https://doi.org/10.1038/s41596-020-0335-3

Mohamed MM. Monocytes conditioned media stimulate fibronectin expression and spreading of inflammatory breast cancer cells in three- dimensional culture: A mechanism mediated by IL-8 signaling pathway. Cell Commun Signal. 2012;10:1–13.

Google Scholar 

Saji Joseph J, Tebogo Malindisa S, Ntwasa M. Two-Dimensional (2D) and Three-Dimensional (3D) Cell Culturing in Drug Discovery. Cell Cult. 2019;21-42.

Cho YA, Sung MK, Yeon JY, Ro J, Kim J. Prognostic role of interleukin-6, interleukin-8, and leptin levels according to breast cancer subtype. Cancer Res Treat. 2013;45:210–9.

PubMed  PubMed Central  Google Scholar 

Bandini E, Rossi T, Gallerani G, Fabbri F. Adipocytes and microRNAs Crosstalk: A Key Tile in the Mosaic of. Breast Cancer Microenviron. 2019.

Ibrahim SA, El-ghonaimy EA, Hassan H, Mahana N, Abdelbaky M, El-mamlouk T, et al. Hormonal-receptor positive breast cancer: IL-6 augments invasion and lymph node metastasis via stimulating cathepsin B expression. J Adv Res [Internet]. 2016;7:661–670. Available from: https://doi.org/10.1016/j.jare.2016.06.007.

Ibrahim SA, El-Ghonaimy EA, Hassan H, Mahana N, Mahmoud MA, El-Mamlouk T, et al. Hormonal-receptor positive breast cancer: IL-6 augments invasion and lymph node metastasis via stimulating cathepsin B expression. J Adv Res [Internet]. 2016;7:661–670. Available from: https://doi.org/10.1016/j.jare.2016.06.007.

Wang J, Zhuang ZG, Xu SF, He Q, Shao YG, Ji M, et al. Expression of CCL2 is significantly different in five breast cancer genotypes and predicts patient outcome. Int J Clin Exp Med. 2015;8:15684–91.

CAS  PubMed  PubMed Central  Google Scholar 

Chen X, Jung S, University G, Korea Qi Zhao S, Zheng P, Liu Y, et al. Amplification of the CD24 Gene Is an Independent Predictor for Poor Prognosis of Breast Cancer. 2019; Available from: https://portal.gdc.cancer.gov/,

Google Scholar 

Wei X, Li S, He J, Du H, Liu Y, Yu W, et al. Tumor-secreted PAI-1 promotes breast cancer metastasis via the induction of adipocyte-derived collagen remodeling. Cell Communication and Signaling. Cell Commun Signal. 2019;17:1–18.

CAS  Google Scholar 

Bochet L, Dabek M, Majed B, Wang YY, Meulle A, Salles B, et al. Cancer-Associated Adipocytes Exhibit an Activated Phenotype and Contribute to Breast Cancer Invasion. Cancer Res. 2011:2455–66.

Tanaka K, Tokunaga E, Inoue Y, Yamashita N, Saeki H, Okano S, et al. Impact of Expression of Vimentin and Axl in Breast Cancer. Clin Breast Cancer [Internet]. 2016;16:520-526.e2. Available from: https://doi.org/10.1016/j.clbc.2016.06.015

Li J, Han X. Adipocytokines and breast cancer. Curr Prob Cancer [Internet]. 2018;42:208–214. Available from: https://doi.org/10.1016/j.currproblcancer.2018.01.004

Kowalski PJ, Rubin MA, Kleer CG. E-cadherin expression in primary carcinomas of the breast and its distant metastases. Breast Cancer Res. 2003;5:217–22.

Google Scholar 

Kleer CG, Van GKL, Ph D, Braun T, Ph D, Merajver SD, et al. Persistent E-Cadherin Expression in Inflammatory. Breast Cancer. 2001.

Elisha Y, Kalchenko V, Kuznetsov Y, Geiger B. Dual role of E-cadherin in the regulation of invasive collective migration of mammary carcinoma cells. Scientific Reports [Internet]. 2018;8:1–15. Available from: https://doi.org/10.1038/s41598-018-22940-3.

Zaki ME, Basha W, Yousef RN, Awad M. Serum Vascular Endothelial Growth Factor in Egyptian Obese Women with Insulin Resistance. Open Access Maced J Med Sci. 2019;7:1330–4.

PubMed  PubMed Central  Google Scholar 

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