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开发数百种新型手性MXenes和MBenes纳米片/量子点用于下一代手性工程生物材料应用的指南。

Guides for Developing Hundreds of Novel Chiral MXenes and MBenes Nanosheets/Quantum Dots for Next-Generation Chiral Engineered Biomaterials Applications.

作者信息

Rafieerad Alireza, Amiri Ahmad

机构信息

Institute for Molecular Biosciences, Johann Wolfgang Goethe Universität, 60438, Frankfurt am Main, Germany.

Institute for Biology and Biotechnology of Plants, University of Münster, Schlossplatz 8, 48143, Münster, Germany.

出版信息

Adv Healthc Mater. 2025 Sep 4:e02422. doi: 10.1002/adhm.202502422.

Abstract

The development and multiple bio-applications of chiral MXene nanosheets and derived quantum dots-based heterostructures as next-generation plant biostimulants are recently reported in Small for the first time. This chirality-induction came at a critical juncture in the field, as the safety efficacy of synthetic low-dimensional materials, including MXenes, challenges their clinical, agricultural, and environmental translatability. Using a rational surface engineering and structural-modification strategy, distinct left- or right-handed chiral MXenes are developed. These tailored asymmetric MXenes inherently leverage desirable durability, long-term biocompatibility, and multifunctional bioactivities. Chirality, as a natural biological specification of living organisms and most bio-macromolecules, plays a pivotal role in their cellular functions, interactions, enzyme-substrate recognition, protein folding, genetic encoding, and immune-related mechanisms. Chiral engineering of nanomaterials has set paradigms to open up avenues of studies toward designing numerous novel chiral MXenes and MBenes. Here, this innovative perspective presents a roadmap for periodic development of chiral MXenes/MBenes of diverse chemical compositions and forms. In particular, prospective vacancies and step-by-step guides for constructing hundreds of different MXene/MBene formulations are proposed through diverse chiral-active sources. Induced chirality is anticipated to relatively enhance the properties and biocompatibility of their original materials. It paves the way for extending and optimizing this nano-biotechnology to more effectively activate, regulate, or control biological responses. These prospects are anticipated to cover antimicrobial coating, immune modulation, tissue engineering, drug delivery, cancer treatments, cell therapies, organ-transplant rejection prevention, and other healthcare/diagnostic aspects of electrochemically active-nanomaterials in bio-tracking, wearable bioelectronics, and biomedical sensors. The basic predictions of their toxicity behaviors across various biological settings are also discussed, and their bio-properties are speculated on to prioritize design recommendations and strategize the possible chiral-functionalization challenges.

摘要

最近,《Small》首次报道了手性MXene纳米片及其衍生的基于量子点的异质结构作为下一代植物生物刺激剂的开发和多种生物应用。这种手性诱导出现在该领域的一个关键时刻,因为包括MXene在内的合成低维材料的安全有效性对其临床、农业和环境可转化性提出了挑战。通过合理的表面工程和结构修饰策略,开发出了独特的左旋或右旋手性MXene。这些经过定制的不对称MXene本身具有理想的耐久性、长期生物相容性和多功能生物活性。手性作为生物体和大多数生物大分子的一种天然生物学特性,在其细胞功能、相互作用、酶-底物识别、蛋白质折叠、遗传编码和免疫相关机制中起着关键作用。纳米材料的手性工程为开展众多新型手性MXene和MBene的设计研究开辟了道路。在此,这一创新观点为不同化学成分和形式的手性MXene/MBene的周期性开发提供了路线图。特别是,通过多种手性活性源,提出了构建数百种不同MXene/MBene配方的预期空位和逐步指南。预计诱导手性会相对增强其原始材料的性能和生物相容性。这为扩展和优化这种纳米生物技术以更有效地激活、调节或控制生物反应铺平了道路。这些前景预计将涵盖抗菌涂层、免疫调节、组织工程、药物递送、癌症治疗、细胞疗法、预防器官移植排斥以及生物追踪、可穿戴生物电子学和生物医学传感器中电化学活性纳米材料的其他医疗保健/诊断方面。还讨论了它们在各种生物环境中的毒性行为的基本预测,并推测了它们的生物特性,以确定设计建议的优先级并应对可能的手性功能化挑战。

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