3D Reconstruction of Neuronal Allometry and Neuromuscular Projections in Asexual Planarians Using Expansion Tiling Light Sheet Microscopy

Jing Lu, Hao Xu, Dongyue Wang, Yanlu Chen, Takeshi Inoue, Liang Gao, Kai Lei
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Abstract

The intricate coordination of the neural network in planarian growth and regeneration has remained largely unrevealed, partly due to the challenges of imaging the central nervous system (CNS) in three dimensions (3D) with high resolution and within a reasonable timeframe. To address this gap in systematic imaging of the CNS in planarians, we adopted high-resolution, nanoscale imaging by combining tissue expansion and tiling light-sheet microscopy, achieving up to 4-fold linear expansion. Using a semi-automatic 3D cell segmentation pipeline, we quantitatively profiled neurons and muscle fibers at the single-cell level in over 400 wild-type planarians during homeostasis and regeneration. We validated previous observations of neuronal cell number changes and muscle fiber distribution. We found that the rate of neuron cell proliferation tends to lag behind the rapid expansion of somatic cells during the later phase of homeostasis. By imaging the planarian with up to 120 nm resolution, we also observed distinct muscle distribution patterns at the anterior and posterior poles. Furthermore, we investigated the effects of beta-catenin RNAi on muscle fiber distribution at the posterior pole, consistent with changes in anterior-posterior polarity. The glial cells were observed to be close in contact with dorsal-ventral muscle fibers. Finally, we observed disruptions in neural-muscular networks in inr-1 RNAi planarians. These findings provide insights into the detailed structure and potential functions of the neural-muscular system in planarians and highlight the accessibility of our imaging tool in unraveling the biological functions underlying their diverse phenotypes and behaviors.
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利用扩张平铺光片显微镜三维重建无性扁形动物的神经元异构和神经肌肉投影
神经网络在扁形动物生长和再生过程中的复杂协调在很大程度上仍未被揭示,部分原因是在合理的时间范围内以高分辨率对中枢神经系统(CNS)进行三维成像所面临的挑战。为了填补平面动物中枢神经系统成像方面的这一空白,我们采用了高分辨率纳米级成像技术,将组织扩张与瓦片光片显微镜相结合,实现了高达4倍的线性扩张。利用半自动三维细胞分割管道,我们在单细胞水平上定量分析了400多只野生型扁形动物在平衡和再生过程中的神经元和肌纤维。我们验证了之前对神经元细胞数量变化和肌纤维分布的观察结果。我们发现,在平衡后期,神经元细胞的增殖速度往往落后于体细胞的快速扩张。通过以高达 120 纳米的分辨率对扁平体进行成像,我们还观察到了前后两极不同的肌肉分布模式。此外,我们还研究了β-catenin RNAi对后极肌纤维分布的影响,这与前后极性的变化是一致的。我们观察到神经胶质细胞与背腹肌纤维紧密接触。最后,我们观察到 inr-1 RNAi 刨腹动物的神经-肌肉网络发生了破坏。这些发现有助于深入了解扁形动物神经-肌肉系统的详细结构和潜在功能,并凸显了我们的成像工具在揭示扁形动物不同表型和行为背后的生物功能方面的可用性。
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