Gezimati Mavis, Singh Ghanshyam
Centre for Smart Information and Communication Systems, Department of Electrical and Electronics Engineering Science, University of Johannesburg, Auckland Park Kingsway Campus, P.O Box 524, Johannesburg, 2006 South Africa.
Opt Quantum Electron. 2023;55(2):151. doi: 10.1007/s11082-022-04340-0. Epub 2022 Dec 26.
Currently, there is an increasing demand for the diagnostic techniques that provide functional and morphological information with early cancer detection capability. Novel modern medical imaging systems driven by the recent advancements in technology such as terahertz (THz) and infrared radiation-based imaging technologies which are complementary to conventional modalities are being developed, investigated, and validated. The THz cancer imaging techniques offer novel opportunities for label free, non-ionizing, non-invasive and early cancer detection. The observed image contrast in THz cancer imaging studies has been mostly attributed to higher refractive index, absorption coefficient and dielectric properties in cancer tissue than that in the normal tissue due the local increase of the water molecule content in tissue and increased blood supply to the cancer affected tissue. Additional image contrast parameters and cancer biomarkers that have been reported to contribute to THz image contrast include cell structural changes, molecular density, interactions between agents (e.g., contrast agents and embedding agents) and biological tissue as well as tissue substances like proteins, fiber and fat etc. In this paper, we have presented a systematic and comprehensive review of the advancements in the technological development of THz technology for cancer imaging applications. Initially, the fundamentals principles and techniques for THz radiation generation and detection, imaging and spectroscopy are introduced. Further, the application of THz imaging for detection of various cancers tissues are presented, with more focus on the in vivo imaging of skin cancer. The data processing techniques for THz data are briefly discussed. Also, we identify the advantages and existing challenges in THz based cancer detection and report the performance improvement techniques. The recent advancements towards THz systems which are optimized and miniaturized are also reported. Finally, the integration of THz systems with artificial intelligent (AI), internet of things (IoT), cloud computing, big data analytics, robotics etc. for more sophisticated systems is proposed. This will facilitate the large-scale clinical applications of THz for smart and connected next generation healthcare systems and provide a roadmap for future research.
目前,对于能够提供功能和形态学信息并具备早期癌症检测能力的诊断技术的需求日益增长。基于太赫兹(THz)和红外辐射等技术最新进展的新型现代医学成像系统正在被开发、研究和验证,这些技术与传统模式互补。太赫兹癌症成像技术为无标记、非电离、非侵入性的早期癌症检测提供了新机会。在太赫兹癌症成像研究中观察到的图像对比度,主要归因于癌症组织中水分子含量的局部增加以及受癌症影响组织的血液供应增加,导致癌症组织的折射率、吸收系数和介电特性高于正常组织。据报道,其他有助于太赫兹图像对比度的图像对比度参数和癌症生物标志物包括细胞结构变化、分子密度、试剂(如造影剂和包埋剂)与生物组织之间的相互作用以及蛋白质、纤维和脂肪等组织物质。在本文中,我们对用于癌症成像应用的太赫兹技术的技术发展进展进行了系统而全面的综述。首先,介绍了太赫兹辐射产生与检测、成像和光谱学的基本原理和技术。此外,还介绍了太赫兹成像在各种癌症组织检测中的应用,更侧重于皮肤癌的体内成像。简要讨论了太赫兹数据的数据处理技术。我们还确定了基于太赫兹的癌症检测的优势和现有挑战,并报告了性能改进技术。还报道了太赫兹系统朝着优化和小型化方向的最新进展。最后,提出将太赫兹系统与人工智能(AI)、物联网(IoT)、云计算、大数据分析、机器人技术等集成,以实现更复杂的系统。这将促进太赫兹在智能互联下一代医疗保健系统中的大规模临床应用,并为未来研究提供路线图。