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用碳基纳米材料生物传感器增强类器官技术:进展、挑战与未来方向。

Enhancing organoid technology with carbon-based nanomaterial biosensors: Advancements, challenges, and future directions.

作者信息

Rezaei Zahra, Wang Niyou, Yang Yipei, Govindaraj Kannan, Velasco Jose Joaquin, Martinez Blanco Alvaro Dario, Bae Nam Ho, Lee HeaYeon, Shin Su Ryon

机构信息

Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, 65 Landsdowne Street, Cambridge, MA 02139, USA.

Division of Engineering in Medicine, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, 65 Landsdowne Street, Cambridge, MA 02139, USA; Department of Orthopedic Surgery, Shenzhen Hospital, Southern Medical University, Shenzhen 518000, China.

出版信息

Adv Drug Deliv Rev. 2025 May 3;222:115592. doi: 10.1016/j.addr.2025.115592.

Abstract

Various carbon-based nanomaterials (CBNs) have been utilized to develop nano- and microscale biosensors that enable real-time and continuous monitoring of biochemical and biophysical changes in living biological systems. The integration of CBN-based biosensors into organoids has recently provided valuable insights into organoid development, disease modeling, and drug responses, enhancing their functionality and expanding their applications in diverse biomedical fields. These biosensors have been particularly transformative in studying neurological disorders, cardiovascular diseases, cancer progression, and liver toxicity, where precise, non-invasive monitoring is crucial for understanding pathophysiological mechanisms and assessing therapeutic efficacy. This review introduces intra- and extracellular biosensors incorporating CBNs such as graphene, carbon nanotubes (CNTs), graphene oxide (GO), reduced graphene oxide (rGO), carbon dots (CDs), and fullerenes. Additionally, it discusses strategies for improving the biocompatibility of CBN-based biosensors and minimizing their potential toxicity to ensure long-term organoid viability. Key challenges such as biosensor integration, data accuracy, and functional compatibility with specific organoid models are also addressed. Furthermore, this review highlights how CBN-based biosensors enhance the precision and relevance of organoid models in biomedical research, particularly in organ-specific applications such as brain-on-a-chip systems for neurodegenerative disease studies, liver-on-a-chip platforms for hepatotoxicity screening, and cardiac organoids for assessing cardiotoxicity in drug development. Finally, it explores how biosensing technologies could revolutionize personalized medicine by enabling high throughput drug screening, patient-specific disease modeling, and integrated sensing platforms for early diagnostics. By capturing current advancements and future directions, this review underscores the transformative potential of carbon-based nanotechnology in organoid research and its broader impact on medical science.

摘要

各种碳基纳米材料(CBNs)已被用于开发纳米和微米级生物传感器,这些传感器能够实时、连续地监测活生物系统中的生化和生物物理变化。基于CBN的生物传感器与类器官的整合最近为类器官发育、疾病建模和药物反应提供了有价值的见解,增强了其功能,并扩大了它们在不同生物医学领域的应用。这些生物传感器在研究神经疾病、心血管疾病、癌症进展和肝毒性方面尤其具有变革性,在这些领域中,精确、非侵入性监测对于理解病理生理机制和评估治疗效果至关重要。本综述介绍了包含CBNs(如石墨烯、碳纳米管(CNTs)、氧化石墨烯(GO)、还原氧化石墨烯(rGO)、碳点(CDs)和富勒烯)的细胞内和细胞外生物传感器。此外,还讨论了提高基于CBN的生物传感器生物相容性并将其潜在毒性降至最低以确保类器官长期存活的策略。还解决了诸如生物传感器整合、数据准确性以及与特定类器官模型的功能兼容性等关键挑战。此外,本综述强调了基于CBN的生物传感器如何提高类器官模型在生物医学研究中的精确性和相关性,特别是在器官特异性应用中,如用于神经退行性疾病研究的芯片上脑系统、用于肝毒性筛选的芯片上肝平台以及用于药物开发中评估心脏毒性的心脏类器官。最后,探讨了生物传感技术如何通过实现高通量药物筛选、患者特异性疾病建模以及用于早期诊断的集成传感平台来彻底改变个性化医疗。通过捕捉当前的进展和未来方向,本综述强调了碳基纳米技术在类器官研究中的变革潜力及其对医学科学的更广泛影响。

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