Alexandrovskaya Yulia, Baum Olga, Sovetsky Alexander, Matveyev Alexander, Matveev Lev, Sobol Emil, Zaitsev Vladimir
Institute of Photon Technologies, Federal Scientific Research Center "Crystallography and Photonics", Russian Academy of Sciences, 2 Pionerskaya Street, Troitsk, 108840 Moscow, Russia.
Institute of Applied Physics of the Russian Academy of Sciences, 46 Uljanova Street, 603950 Nizhny Novgorod, Russia.
Materials (Basel). 2022 Jan 25;15(3):904. doi: 10.3390/ma15030904.
This paper presents a recently developed variant of phase-resolved Optical Coherence Elastography (OCE) enabling non-contact visualization of transient local strains of various origins in biological tissues and other materials. In this work, we demonstrate the possibilities of this new technique for studying dynamics of osmotically-induced strains in cartilaginous tissue impregnated with optical clearing agents (OCA). For poroelastic water-containing biological tissues, application of non-isotonic OCAs, various contrast additives, as well as drug solutions administration, may excite transient spatially-inhomogeneous strain fields of high magnitude in the tissue bulk, initiating mechanical and structural alterations. The range of the strain reliably observed by OCE varied from ±10 to ±0.4 for diluted and pure glycerol, correspondingly. The OCE-technique used made it possible to reveal previously inaccessible details of the complex spatio-temporal evolution of alternating-sign osmotic strains at the initial stages of agent diffusion. Qualitatively different effects produced by particular hydrophilic OCAs, such as glycerol and iohexol, are discussed, as well as concentration-dependent differences. Overall, the work demonstrates the unique abilities of the new OCE-modality in providing a deeper insight in real-time kinetics of osmotically-induced strains relevant to a broad range of biomedical applications.
本文介绍了一种最近开发的相分辨光学相干弹性成像(OCE)变体,它能够对生物组织和其他材料中各种来源的瞬态局部应变进行非接触式可视化。在这项工作中,我们展示了这种新技术在研究浸渍有光学透明剂(OCA)的软骨组织中渗透诱导应变动力学方面的可能性。对于含孔隙弹性水的生物组织,应用非等渗OCA、各种对比添加剂以及给药溶液,可能会在组织块中激发高幅度的瞬态空间不均匀应变场,引发机械和结构改变。通过OCE可靠观察到的应变范围,对于稀释甘油和纯甘油分别为±10至±0.4。所使用的OCE技术能够揭示在试剂扩散初始阶段交替符号渗透应变复杂时空演化中以前无法获取的细节。讨论了特定亲水性OCA(如甘油和碘海醇)产生的定性不同的影响,以及浓度依赖性差异。总体而言,这项工作展示了新的OCE模式在深入了解与广泛生物医学应用相关的渗透诱导应变实时动力学方面的独特能力。