Noninvasive holographic sensor system for measuring stiffness of soft micro samples.

IF 2.9 3区 医学 Q2 BIOCHEMICAL RESEARCH METHODS Journal of Biomedical Optics Pub Date : 2025-03-01 Epub Date: 2025-03-14 DOI:10.1117/1.JBO.30.3.036501
Hasan Berkay Abdioğlu, Yağmur Işık, Merve Sevgi, Ali Anil Demircali, Ufuk Gorkem Kirabali, Gokhan Bora Esmer, Huseyin Uvet
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Abstract

Significance: Measuring cell stiffness is essential in cellular biomechanics, particularly in understanding disease progression, including cancer metastasis and tissue mechanics. However, conventional techniques such as atomic force microscopy and optical stretching present limitations, including invasiveness, low throughput, and complex sample preparation. These factors restrict their applicability in dynamic and sensitive biological environments. Aim: This study introduces a noninvasive holographic sensor system for evaluating the stiffness of soft microscale samples. Approach: The proposed system integrates holographic imaging with acoustic stimulation using an off-axis Mach-Zehnder interferometer combined with bulk acoustic waves. This setup allows for label-free, high-throughput measurements while preserving sample integrity. The system was validated with polyacrylamide beads engineered to mimic cellular stiffness, ensuring precise and repeatable stiffness assessments. Results: Measurement errors caused by spatial variations were minimized through a structured imaging approach and a calibration strategy, improving uniformity across different regions. These corrections enhanced the consistency and reliability of stiffness assessments. Experimental validation demonstrated stable stiffness measurements regardless of sample size variations. Repeatability tests further confirmed the system's robustness, producing consistent results across multiple trials. Conclusion: The findings highlight the potential of this holographic sensor system in advancing cell biomechanics research, cancer diagnostics, and mechanobiology. By offering a noninvasive, high-throughput alternative for mechanical property assessments in biological samples, this method contributes to improved characterization of cellular stiffness in biomedical applications.

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用于测量软性微型样品硬度的无创全息传感器系统。
意义:测量细胞刚度在细胞生物力学中是必不可少的,特别是在了解疾病进展,包括癌症转移和组织力学方面。然而,原子力显微镜和光学拉伸等传统技术存在局限性,包括侵入性、低通量和复杂的样品制备。这些因素限制了它们在动态和敏感的生物环境中的适用性。目的:介绍一种用于软质微尺度试样刚度评估的无创全息传感器系统。方法:该系统采用离轴马赫-曾德干涉仪结合体声波,将全息成像与声刺激相结合。这种设置允许无标签,高通量测量,同时保持样品的完整性。该系统使用聚丙烯酰胺珠进行验证,以模拟细胞刚度,确保精确和可重复的刚度评估。结果:通过结构化成像方法和校准策略,最大限度地减少了空间变化引起的测量误差,提高了不同区域的均匀性。这些修正提高了刚度评估的一致性和可靠性。实验验证证明了稳定的刚度测量,无论样本大小的变化。重复性测试进一步证实了系统的稳健性,在多次试验中产生一致的结果。结论:这些发现突出了这种全息传感器系统在推进细胞生物力学研究、癌症诊断和力学生物学方面的潜力。通过提供一种无创、高通量的生物样品机械性能评估替代方法,该方法有助于改善生物医学应用中细胞刚度的表征。
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来源期刊
CiteScore
6.40
自引率
5.70%
发文量
263
审稿时长
2 months
期刊介绍: The Journal of Biomedical Optics publishes peer-reviewed papers on the use of modern optical technology for improved health care and biomedical research.
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