CRTD/Center for Regenerative Therapies TU Dresden, Center for Molecular and Cellular Bioengineering, Technische Universität Dresden, Dresden, Germany.
Department of Internal Medicine 3, Center for Healthy Aging, University Hospital Carl Gustav Carus, Technische Universität Dresden, Dresden, Germany.
Open Biol. 2022 Jun;12(6):220078. doi: 10.1098/rsob.220078. Epub 2022 Jun 22.
In processes such as development and regeneration, where large cellular and tissue rearrangements occur, cell fate and behaviour are strongly influenced by tissue mechanics. While most well-established tools probing mechanical properties require an invasive sample preparation, confocal Brillouin microscopy captures mechanical parameters optically with high resolution in a contact-free and label-free fashion. In this work, we took advantage of this tool and the transparency of the highly regenerative axolotl to probe its mechanical properties for the first time. We mapped the Brillouin frequency shift with high resolution in developing limbs and regenerating digits, the most studied structures in the axolotl. We detected a gradual increase in the cartilage Brillouin frequency shift, suggesting decreasing tissue compressibility during both development and regeneration. Moreover, we were able to correlate such an increase with the regeneration stage, which was undetected with fluorescence microscopy imaging. The present work evidences the potential of Brillouin microscopy to unravel the mechanical changes occurring in axolotls, setting the basis to apply this technique in the growing field of epimorphic regeneration.
在发育和再生等过程中,细胞和组织会发生大规模的重排,细胞命运和行为受到组织力学的强烈影响。虽然大多数成熟的探测力学特性的工具都需要侵入性的样本制备,但共焦布里渊显微镜以非接触和无标记的方式,以高分辨率光学捕获机械参数。在这项工作中,我们首次利用该工具和高度再生蝾螈的透明性,来探测其机械特性。我们在发育中的肢体和再生的趾部中以高分辨率绘制了布里渊频移图,这是蝾螈中研究最多的结构。我们检测到软骨布里渊频移的逐渐增加,表明在发育和再生过程中组织可压缩性降低。此外,我们能够将这种增加与荧光显微镜成像无法检测到的再生阶段相关联。本工作证明了布里渊显微镜在揭示蝾螈中发生的机械变化方面的潜力,为在不断发展的再生领域应用该技术奠定了基础。