Manipulating calcium homeostasis with nanoplatforms for enhanced cancer therapy

Author:

Feng Yanlin1ORCID,Wang Jianlin1,Cao Jimin1,Cao Fangfang23,Chen Xiaoyuan2435ORCID

Affiliation:

1. Key Laboratory of Cellular Physiology at Shanxi Medical University, Ministry of Education, and the Department of Physiology Shanxi Medical University Taiyuan China

2. Departments of Diagnostic Radiology, Surgery, Chemical and Biomolecular Engineering, and Biomedical Engineering, Yong Loo Lin School of Medicine and College of Design and Engineering National University of Singapore Singapore Singapore

3. Nanomedicine Translational Research Program, NUS Center for Nanomedicine, Yong Loo Lin School of Medicine National University of Singapore Singapore Singapore

4. Clinical Imaging Research Centre, Centre for Translational Medicine, Yong Loo Lin School of Medicine National University of Singapore Singapore Singapore

5. Agency for Science, Technology, and Research (A*STAR) Institute of Molecular and Cell Biology Singapore Singapore

Abstract

AbstractCalcium ions (Ca2+) are indispensable and versatile metal ions that play a pivotal role in regulating cell metabolism, encompassing cell survival, proliferation, migration, and gene expression. Aberrant Ca2+ levels are frequently linked to cell dysfunction and a variety of pathological conditions. Therefore, it is essential to maintain Ca2+ homeostasis to coordinate body function. Disrupting the balance of Ca2+ levels has emerged as a potential therapeutic strategy for various diseases, and there has been extensive research on integrating this approach into nanoplatforms. In this review, the current nanoplatforms that regulate Ca2+ homeostasis for cancer therapy are first discussed, including both direct and indirect approaches to manage Ca2+ overload or inhibit Ca2+ signalling. Then, the applications of these nanoplatforms in targeting different cells to regulate their Ca2+ homeostasis for achieving therapeutic effects in cancer treatment are systematically introduced, including tumour cells and immune cells. Finally, perspectives on the further development of nanoplatforms for regulating Ca2+ homeostasis, identifying scientific limitations and future directions for exploitation are offered.

Funder

National Natural Science Foundation of China

National University of Singapore

National Medical Research Council

National Research Foundation

Publisher

Wiley

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