4.7 Article

Dynamically-enhanced retention of gold nanoclusters in HeLa cells following X-rays exposure: A cell cycle phase-dependent targeting approach

Journal

RADIOTHERAPY AND ONCOLOGY
Volume 119, Issue 3, Pages 544-551

Publisher

ELSEVIER IRELAND LTD
DOI: 10.1016/j.radonc.2016.04.033

Keywords

Ionizing radiation; Nano-agents; Cell cycle; Cellular uptake; Synergistic chemo-radiotherapy

Funding

  1. Key Project of National Natural Science Foundation of China (National Natural Science Foundation of China) [U1232207]
  2. National Key Technology Support Program of the Ministry of Science and Technology of China (Ministry of Science and Technology of China) [2015BAI01B11]
  3. National Natural Science Foundation of China [11075191, 11205217]

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Background and purpose: Cell cycle phase could affect the cellular uptake of nanoparticles. Based on the fact that ionizing radiation exposure can delay cell cycle progression including inducing G2/M phase arrest, we propose that ionizing radiation exposure is a cell cycle phase-dependent targeting approach for intracellular delivery of nano-agents in tumor cells. Materials and methods: We synthesized luminescent gold nanoclusters (AuNCs) using a one-pot green synthetic method. Subsequently, we used the as-prepared AuNCs as both nano-agents and fluorescent trafficking probes for our study using human cervical carcinoma HeLa cells. Estimating the cellular uptake of AuNCs and cell cycle analysis were performed following X-rays irradiation and cell synchronization. Results: Our work showed that X-rays irradiation could delay the division of HeLa cells and thereby enhance the retention of AuNCs in HeLa cells, which is a reverse strategy compared with other studies on synergistic nano-radiotherapy. Our results demonstrated that the cell cycle synchronization influenced the cellular uptake processes of AuNCs, suggesting that dynamic cell cycle progression could affect the cellular uptake kinetics of AuNCs. Conclusion: We consider that the radiation-induced cell division delay might provide a possible mechanism underlying the enhanced effect for the cellular uptake of AuNCs in irradiated HeLa cells. (C) 2016 Elsevier Ireland Ltd. All rights reserved.

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