光学镊子
生物系统
光学
光学力
材料科学
色散(光学)
镊子
粒子(生态学)
物理
粒子群优化
折射率
信号(编程语言)
光热治疗
细胞内
梁(结构)
生物物理学
纳米技术
计算机科学
存水弯(水管)
磁镊
光电子学
激光器
俘获
变形镜
光热效应
传输(电信)
荧光寿命成像显微镜
领域(数学)
光功率
泽尼克多项式
折射
生物分子
机械生物学
显微镜
微流控
作者
Dajing Wang,Tiange Zhang,Jinlong Shi,Yao Wang,Baolei Liu,Lei Ding,Chaohao Chen,Wenchao Zhang,Jiachen Zheng,Jia-Lin Chen,Ziqi Li,Renren Deng,Xuchen Shan,Fan Wang
标识
DOI:10.1002/lpor.202502473
摘要
ABSTRACT Optically intracellular manipulation and sensing, both in vivo and in vitro, face fundamental challenges due to spatially varying aberrations arising from refractive index heterogeneity and dynamic organelle motion. Achieving high‐speed laser field optimization to correct aberrations is essential but remains challenging. Here, we develop a particle swarm optimized optical tweezers (PSOOT) employing a multimodal synergistic strategy to enhance both the speed and performance of trapping beam optimization. Leveraging fluorescence feedback to dynamically and simultaneously modulate Zernike aberration modes enables faster convergence to the target intensity levels through multimodal coordination. In numerical simulation, this strategy can find the potential solutions at a speed more than four times faster than the traditional scanning method. Experimentally, PSOOT achieves an order‐of‐magnitude enhancement in trap stiffness for 1 µm spheres, increasing k x from 0.30 to 3.36 pN/µm/mW and for 110 nm particles in aqueous solution, from 0.11 to 0.34 pN/µm/mW, approaching the theoretical limit for such trapped objects. The optimized optical trap enables the stable trapping and optical‐driven manipulation of a single lipid droplet in living HeLa cells. Furthermore, the spatial intracellular heterogeneity of aberrations is quantitatively investigated. The methodology establishes a new paradigm for closed‐loop optical tweezers in biological environments, which may advance the mechanobiology studies, such as intracellular targeted delivery and cellular surgery.
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