Allen Institute for Brain Science, Seattle, WA 98109
Allen Institute for Brain Science, Seattle, WA 98109.
eNeuro. 2020 Jan 17;7(1). doi: 10.1523/ENEURO.0255-19.2019. Print 2020 Jan/Feb.
Two-photon fluorescence microscopy has been used extensively to probe the structure and functions of cells in living biological tissue. Two-photon excitation generates fluorescence from the focal plane, but also from outside the focal plane, with out-of-focus fluorescence increasing as the focus is pushed deeper into tissue. It has been postulated that the two-photon depth limit, beyond which results become inaccurate, is where in-focus and out-of-focus fluorescence are equal, which we term the balance depth. Calculations suggest that the balance depth should be at ∼600 µm in mouse cortex. Neither the two-photon depth limit nor the balance depth have been measured in brain tissue. We found the depth limit and balance depth of two-photon excitation in mice with GCaMP6 indicator expression in all layers of visual cortex, by comparing near-simultaneous two-photon and three-photon excitation. Two-photon and three-photon results from superficial locations were almost identical. two-photon results were inaccurate beyond the balance depth, consistent with the depth limit matching the balance depth for two-photon excitation. However, the two-photon depth limit and balance depth were at 450 µm, shallower than predicted by calculations. Our results were from tissue with a largely homogenous distribution of fluorophores. The expected balance depth is deeper in tissue with fewer fluorophores outside the focal plane and our results therefore establish a superficial bound on the two-photon depth limit in mouse visual cortex.
双光子荧光显微镜已被广泛用于探测活生物组织中细胞的结构和功能。双光子激发可在焦平面内产生荧光,也可在焦平面外产生荧光,随着焦点深入组织,离焦荧光会增加。有人假设,双光子的深度极限,超过这个极限,结果就会不准确,是在焦平面内和焦平面外的荧光相等的地方,我们称之为平衡深度。计算表明,在小鼠皮层中,平衡深度约为 600µm。在脑组织中,既没有测量过双光子深度极限,也没有测量过平衡深度。我们通过比较近同时的双光子和三光子激发,在所有视觉皮层层有 GCaMP6 指示剂表达的小鼠中发现了双光子激发的深度极限和平衡深度。来自浅层位置的双光子和三光子结果几乎完全相同。双光子结果在平衡深度之外不准确,与双光子激发的深度极限与平衡深度相匹配一致。然而,双光子的深度极限和平衡深度为 450µm,比计算预测的要浅。我们的结果来自荧光团分布基本均匀的组织。在离焦平面外荧光团较少的组织中,预期的平衡深度更深,因此我们的结果在小鼠视觉皮层中确定了双光子深度极限的浅层边界。