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Monitoring of Nanodrug Accumulation in Murine Breast Cancer Metastases
Published on: August 23, 2024
Targeting Osteocytes to Attenuate Early Breast Cancer Bone Metastasis by Theranostic Upconversion Nanoparticles with
Han Qiao1, Zhaowen Cui2, Shengbing Yang1
1Shanghai Key Laboratory of Orthopaedic Implants, Department of Orthopaedic Surgery, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine , Shanghai 200011, People's Republic of China.
Abstract:
The early detection and thus treatment of breast cancer bone metastasis remain a big challenge clinically. As the most abundant cells within bone tissue, osteocytes have been found to manipulate the activity of early cancer bone metastasis by its crosstalk with cancer cells and osteoclasts. However, conventional bone-targeting nanomedicine has limited bone-lesion specificity and ignores the vital role of osteocytes during breast cancer bone metastasis. Also, it lacks detailed insight into the therapeutic mechanisms, which hinders the following translational practice. Previously, we have shown that a combination of zoledronic acid (ZA) and plumbagin (PL) synergistically alleviates cancer-induced bone destruction. Herein, we further develop a pH-responsive bone-targeting drug delivery system, i.e., the ZA-anchored bimodal mesoporous slica covered gadolinium(III) upconversion nanoparticles loaded with PL, to detect and treat bone metastasis sensitively and specifically at an early stage. This multifunctional nanosystem can target osteocytes to release PL as controlled by pH, decreasing osteocytic RANKL expression synergistically through the structural simulation of adenosine phosphate, which competitively inhibits the phosphorylation of osteocytic protein kinase-a, cAMP-response element binding protein, extracellular regulated protein kinase, and c-Jun N-terminal kinase. More importantly, by establishing a breast cancer bone metastasis mice model via intracardiac injection, we show that tumoriogenesis and osteoclastogenesis can both be attenuated significantly. We thereby realize the effective theranostics of tiny bone metastasis in breast cancer bone metastasis. Our work highlights the significance of theranostic nanomedicine and osteocyte-targeting therapy in the treatment of early bone metastasis, which could be applied in achieving efficient theranostic effects for other bone diseases.
Insights
This study introduces a novel nanomedicine system for early breast cancer bone metastasis detection and treatment. The system targets osteocytes, releasing drugs to significantly reduce tumor growth and bone destruction.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Early detection of breast cancer bone metastasis is clinically challenging.
- Osteocytes play a crucial role in bone metastasis progression.
- Existing nanomedicine lacks specificity and mechanistic insight for bone metastasis.
Purpose of the Study:
- To develop a pH-responsive, bone-targeting nanomedicine for early breast cancer bone metastasis theranostics.
- To investigate the therapeutic mechanisms involving osteocyte targeting.
- To evaluate the efficacy in a preclinical mouse model.
Main Methods:
- Development of zoledronic acid-anchored, gadolinium(III) upconversion nanoparticles loaded with plumbagin.
- pH-responsive drug release mechanism targeting osteocytes.
- Inhibition of osteocytic RANKL expression and related signaling pathways.
- Establishment of a breast cancer bone metastasis mouse model for in vivo evaluation.
Main Results:
- The nanomedicine system demonstrated sensitive and specific targeting of osteocytes.
- Plumbagin release was controlled by pH, synergistically decreasing osteocytic RANKL expression.
- Tumorigenesis and osteoclastogenesis were significantly attenuated in the mouse model.
- Effective theranostics of early-stage bone metastasis were achieved.
Conclusions:
- The developed nanomedicine system shows significant potential for early breast cancer bone metastasis theranostics.
- Osteocyte-targeting therapy is crucial for effective treatment of bone metastasis.
- This approach could be extended to other bone-related diseases.

