Zepeda Daniel, Li Yucheng, Xue Yi
Department of Biomedical Engineering, University of California, Davis, 451 Health Sciences Dr., Davis, California 95616, USA.
Photonics Res. 2025 Apr;13(4):845-864. doi: 10.1364/prj.544387. Epub 2025 Mar 11.
Light penetration depth in biological tissue is limited by tissue scattering. Correcting scattering becomes particularly challenging in scenarios with limited photon availability and when access to the transmission side of the scattering tissue is not possible. Here, we introduce, to our knowledge, a new two-photon microscopy system with Fourier-domain intensity coupling for scattering correction (2P-FOCUS). 2P-FOCUS corrects scattering by intensity modulation in the Fourier domain, leveraging the nonlinearity of multiple-beam interference and two-photon excitation, eliminating the need for a guide star, iterative optimization, or measuring transmission or reflection matrices. 2P-FOCUS uses random patterns to probe scattering properties, combined with a single-shot algorithm to rapidly generate the correction mask. 2P-FOCUS can also correct scattering beyond the limitation of the memory effect by automatically customizing correction masks for each subregion in a large field-of-view. We provide several proof-of-principle demonstrations here, including focusing and imaging through a bone sample, and imaging neurons and cerebral blood vessels in the mouse brain . 2P-FOCUS significantly enhances two-photon fluorescence signals by several tens of folds compared to cases without scattering correction at the same excitation power. 2P-FOCUS can also correct tissue scattering over a volume, which is beyond the memory effect range. 2P-FOCUS is able to measure, calculate, and correct scattering within a few seconds, effectively delivering more light deep into the scattering tissue. 2P-FOCUS could be broadly adopted for deep tissue imaging owing to its powerful combination of effectiveness, speed, and cost.
光在生物组织中的穿透深度受组织散射的限制。在光子可用性有限以及无法进入散射组织透射侧的情况下,校正散射变得尤其具有挑战性。在此,据我们所知,我们引入了一种用于散射校正的具有傅里叶域强度耦合的新型双光子显微镜系统(2P-FOCUS)。2P-FOCUS通过傅里叶域中的强度调制来校正散射,利用多光束干涉和双光子激发的非线性,无需导星、迭代优化或测量透射或反射矩阵。2P-FOCUS使用随机图案探测散射特性,并结合单次算法快速生成校正掩膜。2P-FOCUS还可以通过为大视场中的每个子区域自动定制校正掩膜来校正超出记忆效应限制的散射。我们在此提供了几个原理验证演示,包括通过骨样本进行聚焦和成像,以及对小鼠大脑中的神经元和脑血管进行成像。与在相同激发功率下未进行散射校正的情况相比,2P-FOCUS显著增强了双光子荧光信号数十倍。2P-FOCUS还可以校正超过记忆效应范围的组织体积内的散射。2P-FOCUS能够在几秒钟内测量、计算并校正散射,有效地将更多光传输到散射组织深处。由于其有效性、速度和成本的强大组合,2P-FOCUS可广泛应用于深层组织成像。