骨的特征、再生和治疗的超声成像和调节机械转导

Yi-Xian Qin
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摘要

超声成像在临床诊断中得到了广泛的应用,如心血管、腹部、妇产科等软组织器官的b、m型超声成像在临床诊断中的应用。传统上,超声成像在骨中的应用受到限制,因为骨小梁和骨皮质结构的高声阻抗和密度以及密度改变,高波反射、吸收、散射和低穿透,导致超声能量在这类矿物组织中的反射和衰减明显。定量超声技术的最新进展为通过传输或后向散射信号检测骨质量的无创特征开辟了新的可能性,为双能x射线吸收仪(DEX)、x射线和CT扫描等传统成像方式提供了一种无辐射的替代方案。此外,低强度超声(LIUS)已被研究并应用于通过诱导组织和细胞的机械转导来促进骨再生和骨折愈合。骨超声领域包括弹性波与骨皮质和骨小梁微结构相互作用的基础研究,创新成像方法的发展和医学应用,如骨质疏松症诊断的骨健康评估,LIUS的治疗用途,以及颅骨内的相位像差校正。本文重点介绍了超声诊断和治疗、诱导细胞和分子途径的最新进展,以及超声作为一种有前途的成像工具和治疗方法的未来方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrasound imaging and regulated mechanotransduction for characteristics, regeneration, and therapeutics of bone
Ultrasound imaging has been widely used in clinical diagnoses, such as B-mode and M-mode ultrasound imaging for cardiovascular, abdomen, OB-Gyn, and other soft tissue and organs in clinical diagnoses. Ultrasound imaging has traditionally been limited in its application to bone because of the high acoustic impedance and density of trabecular and cortical bone structure and density alterations, high wave reflection, absorption, scattering, and low penetration, which result in significant reflection and attenuation of ultrasonic energy in such mineral tissues. Recent advancements in quantitative ultrasound technology have opened new possibilities for noninvasive characteristics of bone quality through transmitted or backscattered signals, offering a radiation-free alternative to traditional imaging modalities like dual-energy X-ray absorptiometry (DEX), X-rays, and CT scans. In addition, low-intensity ultrasound (LIUS) has been studied and applied to promote bone regeneration and fracture healing through induced mechanotransduction in tissue and cells. The field of bone ultrasound encompasses fundamental research on the interaction of elastic waves with cortical and trabecular bone microstructures, the development of innovative imaging methodologies and medical applications such as bone health assessment for osteoporosis diagnosis, therapeutic use of LIUS, and phase aberration correction inside the skull. This work has highlighted recent developments and advancements in ultrasound diagnosis and therapeutics, induced cellular and molecular pathways, and future directions using ultrasound as a promising imaging tool and treatment method.
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