Gong Zhiyong, Wu Tianli, Zhao Yanan, Guo Jinghui, Zhang Yao, Li Baojun, Li Yuchao
Guangdong Provincial Key Laboratory of Nanophotonic Manipulation, Institute of Nanophotonics, College of Physics & Optoelectronic Engineering, Jinan University, Guangzhou 511443, China.
School of Medicine, The Chinese University of Hong Kong, Shenzhen 518172, China.
ACS Nano. 2025 Jan 14;19(1):1036-1043. doi: 10.1021/acsnano.4c12681. Epub 2024 Dec 4.
Tunneling nanotubes (TNTs), submicrometer membranous channels that bridge and connect distant cells, play a pivotal role in intercellular communication. Organelle transfer within TNTs is crucial in regulating cell growth, signal transmission, and disease progression. However, precise control over individual organelle transport within TNTs remains elusive. In this study, we introduce an optical technique that harnesses TNTs as biophotonic conveyors for the directional transport of individual organelles between cells. By utilizing near-infrared light propagating along the TNTs, optical forces were exerted on the organelles, enabling their active transport in a predetermined direction and at a controlled velocity. As a potential application, TNT conveyors were employed to inhibit mitochondrial hijacking from immune cells to cancer cells, thereby activating immune cells and suppressing cancer cell growth. Furthermore, neural modulation was achieved by transporting mitochondria and neurotransmitter-containing vesicles between neurons via TNT conveyors and axonal conveyors, respectively. This study presents a robust and precise approach to immune activation and neural regulation through the manipulation of organelle transfer at the subcellular level.
隧道纳米管(TNTs)是连接远处细胞的亚微米级膜性通道,在细胞间通讯中起着关键作用。TNTs内的细胞器转移对于调节细胞生长、信号传递和疾病进展至关重要。然而,对TNTs内单个细胞器运输的精确控制仍然难以实现。在本研究中,我们引入了一种光学技术,该技术利用TNTs作为生物光子输送机,用于细胞间单个细胞器的定向运输。通过利用沿TNTs传播的近红外光,对细胞器施加光力,使其能够在预定方向上以可控速度进行主动运输。作为一种潜在应用,TNT输送机被用于抑制免疫细胞向癌细胞的线粒体劫持,从而激活免疫细胞并抑制癌细胞生长。此外,分别通过TNT输送机和轴突输送机在神经元之间运输线粒体和含神经递质的囊泡,实现了神经调节。本研究提出了一种通过在亚细胞水平上操纵细胞器转移来实现免疫激活和神经调节的强大而精确的方法。