A plant-derived natural photosynthetic system for improving cell anabolism

合成代谢 细胞内 分解代谢 细胞生物学 化学 软骨细胞 光合作用 生物物理学 生物化学 新陈代谢 生物 体外
作者
Pengfei Chen,Xin Liu,Chenhui Gu,Peiyu Zhong,Nan Song,Mobai Li,Zhanqiu Dai,Xiangqian Fang,Zhaoming Liu,Jianfeng Zhang,Ruikang Tang,Shunwu Fan,Xianfeng Lin
出处
期刊:Nature [Springer Nature]
卷期号:612 (7940): 546-554 被引量:208
标识
DOI:10.1038/s41586-022-05499-y
摘要

Abstract Insufficient intracellular anabolism is a crucial factor involved in many pathological processes in the body 1,2 . The anabolism of intracellular substances requires the consumption of sufficient intracellular energy and the production of reducing equivalents. ATP acts as an ‘energy currency’ for biological processes in cells 3,4 , and the reduced form of NADPH is a key electron donor that provides reducing power for anabolism 5 . Under pathological conditions, it is difficult to correct impaired anabolism and to increase insufficient levels of ATP and NADPH to optimum concentrations 1,4,6–8 . Here we develop an independent and controllable nanosized plant-derived photosynthetic system based on nanothylakoid units (NTUs). To enable cross-species applications, we use a specific mature cell membrane (the chondrocyte membrane (CM)) for camouflage encapsulation. As proof of concept, we demonstrate that these CM-NTUs enter chondrocytes through membrane fusion, avoid lysosome degradation and achieve rapid penetration. Moreover, the CM-NTUs increase intracellular ATP and NADPH levels in situ following exposure to light and improve anabolism in degenerated chondrocytes. They can also systemically correct energy imbalance and restore cellular metabolism to improve cartilage homeostasis and protect against pathological progression of osteoarthritis. Our therapeutic strategy for degenerative diseases is based on a natural photosynthetic system that can controllably enhance cell anabolism by independently providing key energy and metabolic carriers. This study also provides an enhanced understanding of the preparation and application of bioorganisms and composite biomaterials for the treatment of disease.
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