Senolytic Therapy Enabled by Senescent Cell‐Sensitive Biomimetic Melanin Nano‐Senolytics

Author:

Zhang Hairui12,Xu Xiaoling13ORCID,Shou Xin1,Liao Wucan4,Jin Chengkang5,Chen Changjiang4,Zhang Chen1,Gao Wenhua4,Zhang Junfeng4,Ge Weihong2,Shi Liyun1ORCID

Affiliation:

1. Key Laboratory of Artificial Organs and Computational Medicine Institute of Translational Medicine Zhejiang Shuren University Hangzhou Zhejiang 310015 China

2. School of Pharmaceutical Sciences Zhejiang Chinese Medical University Hangzhou 310053 China

3. Shulan International Medical College Zhejiang Shuren University Hangzhou 310015 China

4. Department of Immunology and Medical Microbiology Nanjing University of Chinese Medicine Nanjing 210046 China

5. College of Basic Medical Science Zhejiang Chinese Medical University Hangzhou 310053 China

Abstract

AbstractCellular senescence is a significant risk factor for aging and age‐related diseases (ARD). The canonical senolytics Dasatinib and Quercetin (DQ) have shown promise in clearing senescent cells (SnCs); however, the lack of selectivity poses a challenge in achieving optimal outcomes. Despite the recent occurrence of nanomaterial‐based approaches targeting SnCs, limited therapeutic effects, and potential toxicity still remain a major concern. Herein, a “double locks‐like” nanoplatform is developed that integrated Galactan coating and mesoporous polydopamine to encase the senolytic drug DQ. By this way, DQ is only released in SnCs that are featured with higher levels of β‐galactosidase (β‐gal) and low PH. Additionally, the nanoparticles are equipped with 2,2,6,6‐Tetramethylpiperidine‐1‐oxyl (Tempo) to gain enhanced photothermal converting potential. Consequently, the synthesized nanosenolytics demonstrate remarkable specificity and efficacy in eradicating SnCs, and accordingly reverse pulmonary fibrosis in mice without affecting normal tissues. Upon exposure of near‐infrared (NIR) light, the nanoparticles demonstrate to efficiently remove senescent tumor cells inducted by chemotherapy, thereby hindering the outgrowth and metastasis or breast cancer. Collectively, the present study develops an “On/Off” switchable nanoplatform in response to SnCs, and produces a more safe, efficient, and feasible way to delay aging or alleviate age‐associated diseases.

Funder

Key Technologies Research and Development Program

National Key Scientific Instrument and Equipment Development Projects of China

Publisher

Wiley

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