Iele Antonio, Ricciardi Armando, Pecorella Claudia, Cirillo Andrea, Ficuciello Fanny, Siciliano Bruno, La Rocca Roberto, Mirone Vincenzo, Consales Marco, Cusano Andrea
Optoelectronics Group, Engineering Department, University of Sannio, Benevento, I-82100, Italy.
PRISMA Lab, Department of Electrical Engineering and Information Technology, University of Naples Federico II, Naples, I-80125, Italy.
Biomed Opt Express. 2021 Aug 18;12(9):5691-5703. doi: 10.1364/BOE.430408. eCollection 2021 Sep 1.
Tissue elasticity is universally recognized as a diagnostic and prognostic biomarker for prostate cancer. As the first diagnostic test, the digital rectal examination is used since malignancy changes the prostate morphology and affects its mechanical properties. Currently, this examination is performed manually by the physician, with an unsatisfactory positive predictive value of 42%. A more objective and spatially selective technique is expected to provide a better prediction degree and understanding of the disease. To this aim, here we propose a miniaturized probe, based on optical fiber sensor technology, for mechanical characterization of the prostate with sub-millimeter resolution. Specifically, the optical system incorporates a customized Fiber Bragg Grating, judiciously integrated in a metallic cannula and moved by a robotic arm. The probe enables the local measurement of the force upon tissue indentation with a resolution of 0.97 mN. The system has been developed in such a way to be potentially used directly . Measurements performed on phantom tissues mimicking different stages of the prostatic carcinoma demonstrated the capability of our device to distinguish healthy from diseased zones of the prostate. The study on phantoms has been complemented with preliminary experiments on real organs obtained from radical surgeries. Our findings lay the foundation for the development of advanced optical probes that, when integrated inside biopsy needle, are able to perform direct mechanical measurements with high sensitivity and spatial resolution, opening to new scenarios for early diagnosis and enhanced diagnostic accuracy of prostate cancer.
组织弹性被公认为前列腺癌的一种诊断和预后生物标志物。作为首要诊断测试,由于恶性病变会改变前列腺形态并影响其机械性能,因此采用直肠指检。目前,该检查由医生手动进行,阳性预测值仅为42%,不尽人意。人们期望一种更客观、空间选择性更强的技术能提供更好的预测水平并加深对该疾病的了解。为此,我们在此提出一种基于光纤传感器技术的小型化探头,用于以亚毫米分辨率对前列腺进行机械特性表征。具体而言,光学系统包含一个定制的光纤布拉格光栅,巧妙地集成在金属套管中,并由机器人手臂移动。该探头能够以0.97毫牛的分辨率对组织压痕时的力进行局部测量。该系统的开发方式使其有可能直接使用。对模拟前列腺癌不同阶段的仿体组织进行的测量表明,我们的设备有能力区分前列腺的健康区域和病变区域。对仿体的研究得到了从根治性手术获取的真实器官的初步实验的补充。我们的研究结果为先进光学探头的开发奠定了基础,这种探头集成在活检针内时,能够以高灵敏度和空间分辨率进行直接机械测量,为前列腺癌的早期诊断和提高诊断准确性开辟了新的前景。