Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy

Buyankhishig Dorjsuren,1,* Birendra Chaurasiya,2,* Zixuan Ye,1 Yanyan Liu,1 Wei Li,3 Chaoyang Wang,1 Di Shi,4 Colin E Evans,2 Thomas J Webster,4 Yan Shen1 1Department of Pharmaceutics, China Pharmaceutical University, Nanjing 210009, People’s Republic of China; 2Department of Pediatrics, C...

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Main Authors: Dorjsuren B, Chaurasiya B, Ye Z, Liu Y, Li W, Wang C, Shi D, Evans CE, Webster TJ, Shen Y
Format: Article
Language:English
Published: Dove Medical Press 2020-10-01
Series:International Journal of Nanomedicine
Subjects:
Online Access:https://www.dovepress.com/cetuximab-coated-thermo-sensitive-liposomes-loaded-with-magnetic-nanop-peer-reviewed-article-IJN
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spelling doaj-fdb3860e2ca84cc1bc89bf5b9d36eab82020-11-25T03:10:37ZengDove Medical PressInternational Journal of Nanomedicine1178-20132020-10-01Volume 158201821558480Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined TherapyDorjsuren BChaurasiya BYe ZLiu YLi WWang CShi DEvans CEWebster TJShen YBuyankhishig Dorjsuren,1,* Birendra Chaurasiya,2,* Zixuan Ye,1 Yanyan Liu,1 Wei Li,3 Chaoyang Wang,1 Di Shi,4 Colin E Evans,2 Thomas J Webster,4 Yan Shen1 1Department of Pharmaceutics, China Pharmaceutical University, Nanjing 210009, People’s Republic of China; 2Department of Pediatrics, Critical Care Division, Stanley Manne Children’s Research Institute, Ann & Robert H. Lurie Children’s Hospital of Chicago, Northwestern University Feinberg School of Medicine, Chicago, IL, USA; 3Department of Cardiology, Affiliated Hospital of Yangzhou University, Yangzhou 225002, People’s Republic of China; 4Department of Chemical Engineering, Northeastern University, Boston, MA, USA*These authors contributed equally to this workCorrespondence: Yan Shen; Thomas J Webster Tel +86 (025) 83271305; Tel +86 (025) 83271305; Email shenyan@cpu.edu.cn; th.webster@northeastern.eduBackground: One major limitation of cancer chemotherapy is a failure to specifically target a tumor, potentially leading to side effects such as systemic cytotoxicity. In this case, we have generated a cancer cell-targeting nanoparticle-liposome drug delivery system that can be activated by near-infrared laser light to enable local photo-thermal therapy and the release of chemotherapeutic agents, which could achieve combined therapeutic efficiency.Methods: To exploit the magnetic potential of iron oxide, we prepared and characterized citric acid-coated iron oxide magnetic nanoparticles (CMNPs) and encapsulated them into thermo-sensitive liposomes (TSLs). The chemotherapeutic drug, doxorubicin (DOX), was then loaded into the CMNP-TSLs, which were coated with an antibody against the epidermal growth factor receptor (EGFR), cetuximab (CET), to target EGFR-expressing breast cancer cells in vitro and in vivo studies in mouse model.Results: The resulting CET-DOX-CMNP–TSLs were stable with an average diameter of approximately 120 nm. First, the uptake of TSLs into breast cancer cells increased by the addition of the CET coating. Next, the viability of breast cancer cells treated with CET-CMNP-TSLs and CET-DOX-CMNP-TSLs was reduced by the addition of photo-thermal therapy using near-infrared (NIR) laser irradiation. What is more, the viability of breast cancer cells treated with CMNP-TSLs plus NIR was reduced by the addition of DOX to the CMNP-TSLs. Finally, photo-thermal therapy studies on tumor-bearing mice subjected to NIR laser irradiation showed that treatment with CMNP-TSLs or CET-CMNP-TSLs led to an increase in tumor surface temperature to 44.7°C and 48.7°C, respectively, compared with saline-treated mice body temperature ie, 35.2°C. Further, the hemolysis study shows that these nanocarriers are safe for systemic delivery.Conclusion: Our studies revealed that a combined therapy of photo-thermal therapy and targeted chemotherapy in thermo-sensitive nano-carriers represents a promising therapeutic strategy against breast cancer.Keywords: breast cancer, cetuximab, doxorubicin, iron oxide magnetic nanoparticles, epidermal growth factor receptors, combined therapyhttps://www.dovepress.com/cetuximab-coated-thermo-sensitive-liposomes-loaded-with-magnetic-nanop-peer-reviewed-article-IJNbreast cancercetuximabdoxorubiciniron oxide magnetic nanoparticlesepidermal growth factor receptorscombined therapy
collection DOAJ
language English
format Article
sources DOAJ
author Dorjsuren B
Chaurasiya B
Ye Z
Liu Y
Li W
Wang C
Shi D
Evans CE
Webster TJ
Shen Y
spellingShingle Dorjsuren B
Chaurasiya B
Ye Z
Liu Y
Li W
Wang C
Shi D
Evans CE
Webster TJ
Shen Y
Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
International Journal of Nanomedicine
breast cancer
cetuximab
doxorubicin
iron oxide magnetic nanoparticles
epidermal growth factor receptors
combined therapy
author_facet Dorjsuren B
Chaurasiya B
Ye Z
Liu Y
Li W
Wang C
Shi D
Evans CE
Webster TJ
Shen Y
author_sort Dorjsuren B
title Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
title_short Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
title_full Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
title_fullStr Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
title_full_unstemmed Cetuximab-Coated Thermo-Sensitive Liposomes Loaded with Magnetic Nanoparticles and Doxorubicin for Targeted EGFR-Expressing Breast Cancer Combined Therapy
title_sort cetuximab-coated thermo-sensitive liposomes loaded with magnetic nanoparticles and doxorubicin for targeted egfr-expressing breast cancer combined therapy
publisher Dove Medical Press
series International Journal of Nanomedicine
issn 1178-2013
publishDate 2020-10-01
description Buyankhishig Dorjsuren,1,* Birendra Chaurasiya,2,* Zixuan Ye,1 Yanyan Liu,1 Wei Li,3 Chaoyang Wang,1 Di Shi,4 Colin E Evans,2 Thomas J Webster,4 Yan Shen1 1Department of Pharmaceutics, China Pharmaceutical University, Nanjing 210009, People’s Republic of China; 2Department of Pediatrics, Critical Care Division, Stanley Manne Children’s Research Institute, Ann & Robert H. Lurie Children’s Hospital of Chicago, Northwestern University Feinberg School of Medicine, Chicago, IL, USA; 3Department of Cardiology, Affiliated Hospital of Yangzhou University, Yangzhou 225002, People’s Republic of China; 4Department of Chemical Engineering, Northeastern University, Boston, MA, USA*These authors contributed equally to this workCorrespondence: Yan Shen; Thomas J Webster Tel +86 (025) 83271305; Tel +86 (025) 83271305; Email shenyan@cpu.edu.cn; th.webster@northeastern.eduBackground: One major limitation of cancer chemotherapy is a failure to specifically target a tumor, potentially leading to side effects such as systemic cytotoxicity. In this case, we have generated a cancer cell-targeting nanoparticle-liposome drug delivery system that can be activated by near-infrared laser light to enable local photo-thermal therapy and the release of chemotherapeutic agents, which could achieve combined therapeutic efficiency.Methods: To exploit the magnetic potential of iron oxide, we prepared and characterized citric acid-coated iron oxide magnetic nanoparticles (CMNPs) and encapsulated them into thermo-sensitive liposomes (TSLs). The chemotherapeutic drug, doxorubicin (DOX), was then loaded into the CMNP-TSLs, which were coated with an antibody against the epidermal growth factor receptor (EGFR), cetuximab (CET), to target EGFR-expressing breast cancer cells in vitro and in vivo studies in mouse model.Results: The resulting CET-DOX-CMNP–TSLs were stable with an average diameter of approximately 120 nm. First, the uptake of TSLs into breast cancer cells increased by the addition of the CET coating. Next, the viability of breast cancer cells treated with CET-CMNP-TSLs and CET-DOX-CMNP-TSLs was reduced by the addition of photo-thermal therapy using near-infrared (NIR) laser irradiation. What is more, the viability of breast cancer cells treated with CMNP-TSLs plus NIR was reduced by the addition of DOX to the CMNP-TSLs. Finally, photo-thermal therapy studies on tumor-bearing mice subjected to NIR laser irradiation showed that treatment with CMNP-TSLs or CET-CMNP-TSLs led to an increase in tumor surface temperature to 44.7°C and 48.7°C, respectively, compared with saline-treated mice body temperature ie, 35.2°C. Further, the hemolysis study shows that these nanocarriers are safe for systemic delivery.Conclusion: Our studies revealed that a combined therapy of photo-thermal therapy and targeted chemotherapy in thermo-sensitive nano-carriers represents a promising therapeutic strategy against breast cancer.Keywords: breast cancer, cetuximab, doxorubicin, iron oxide magnetic nanoparticles, epidermal growth factor receptors, combined therapy
topic breast cancer
cetuximab
doxorubicin
iron oxide magnetic nanoparticles
epidermal growth factor receptors
combined therapy
url https://www.dovepress.com/cetuximab-coated-thermo-sensitive-liposomes-loaded-with-magnetic-nanop-peer-reviewed-article-IJN
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