Dynamic regulation of drug biodistribution by turning tumors into decoys for biomimetic nanoplatform to enhance the chemotherapeutic efficacy of breast cancer with bone metastasis

Author:

Zheng Cuixia12,Zhang Dandan1,Kong Yueyue1,Niu Mengya1,Zhao Hongjuan1,Song Qingling1,Feng Qianhua13,Li Xingru1,Wang Lei1345ORCID

Affiliation:

1. School of Pharmaceutical Sciences Zhengzhou University Zhengzhou P. R. China

2. Translational Medical Center of Huaihe Hospital Henan University Kaifeng P. R. China

3. Henan Key Laboratory Targeting Therapy and Diagnosis for Critical Diseases Zhengzhou P. R. China

4. Gynecology The Third Affiliated Hospital of Zhengzhou University Zhengzhou P. R. China

5. Henan International Joint Laboratory of Ovarian Malignant Tumor Zhengzhou P. R. China

Abstract

AbstractBreast cancer with bone metastasis accounts for serious cancer‐associated pain which significantly reduces the quality of life of affected patients and promotes cancer progression. However, effective treatment using nanomedicine remains a formidable challenge owing to poor drug delivery efficiency to multiple cancer lesions and inappropriate management of cancer‐associated pain. In this study, using engineered macrophage membrane (EMM) and drugs loaded nanoparticle, we constructed a biomimetic nanoplatform (EMM@DJHAD) for the concurrent therapy of bone metastatic breast cancer and associated pain. Tumor tropism inherited from EMM provided the targeting ability for both primary and metastatic lesions. Subsequently, the synergistic combination of decitabine and JTC801 boosted the lytic and inflammatory responses accompanied by a tumoricidal effect, which transformed the tumor into an ideal decoy for EMM, resulting in prolonged troop migration toward tumors. EMM@DJHAD exerted significant effects on tumor suppression and a pronounced analgesic effect by inhibiting µ‐opioid receptors in bone metastasis mouse models. Moreover, the nanoplatform significantly reduced the severe toxicity induced by chemotherapy agents. Overall, this biomimetic nanoplatform with good biocompatibility may be used for the effective treatment of breast cancer with bone metastasis.

Funder

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

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