Fungal Frontiers in (Bio)sensing.

IF 5.6 3区 工程技术 Q1 CHEMISTRY, ANALYTICAL
Gerardo Grasso
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Abstract

Filamentous fungi are increasingly recognized as versatile biological platforms for the development of advanced (bio)sensing technologies, owing to their extensive secretory capacity, material-forming ability, and intrinsic bioelectrical activity. This review critically surveys recent progress in fungal-based sensing within a multiscale framework spanning molecular, material, computational, and ecological domains, with particular emphasis on developments reported over the past five years. Key advances involving secretome-derived biomolecules, mycogenic nanomaterials, mycelium-based living materials, and fungal electrophysiology are discussed alongside emerging approaches for environmental monitoring that integrate sensor networks, imaging platforms, and data-driven analytics. Collectively, these works demonstrate that fungal systems can enhance biosensor sensitivity, selectivity, and sustainability, while enabling unconventional paradigms of signal transduction, material-integrated sensing, and biologically mediated computation. At larger spatial and temporal scales, mycelial growth dynamics and electrical activity provide measurable responses to mechanical, chemical, and environmental perturbations, supporting early applications in wearable devices, structural materials, and ecosystem monitoring. Despite significant progress, challenges remain in reproducibility, long-term stability, mechanistic understanding, and scalable device integration. Overall, the evidence reviewed highlights filamentous fungi as biologically adaptive and ecologically embedded systems with substantial potential to support next-generation (bio)sensing technologies, while underscoring the need for integrative approaches that combine biological insight with materials science, electronics, and artificial intelligence.

真菌(生物)传感的前沿。
丝状真菌由于其广泛的分泌能力、材料形成能力和内在的生物电活性,越来越被认为是开发先进(生物)传感技术的多功能生物平台。这篇综述在分子、材料、计算和生态领域的多尺度框架内批判性地调查了基于真菌的传感的最新进展,特别强调了过去五年的发展报告。主要进展涉及分泌细胞衍生的生物分子,真菌源纳米材料,菌丝体为基础的活材料,真菌电生理学和新兴的环境监测方法,集成传感器网络,成像平台和数据驱动分析进行了讨论。总的来说,这些工作表明真菌系统可以提高生物传感器的灵敏度、选择性和可持续性,同时实现信号转导、材料集成传感和生物介导计算的非常规范例。在更大的空间和时间尺度上,菌丝生长动力学和电活动对机械、化学和环境扰动提供了可测量的响应,支持了可穿戴设备、结构材料和生态系统监测的早期应用。尽管取得了重大进展,但在可重复性、长期稳定性、机理理解和可扩展设备集成方面仍存在挑战。总体而言,回顾的证据突出了丝状真菌作为生物适应性和生态嵌入式系统,具有支持下一代(生物)传感技术的巨大潜力,同时强调了将生物洞察力与材料科学,电子学和人工智能相结合的综合方法的必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biosensors-Basel
Biosensors-Basel Biochemistry, Genetics and Molecular Biology-Clinical Biochemistry
CiteScore
6.60
自引率
14.80%
发文量
983
审稿时长
11 weeks
期刊介绍: Biosensors (ISSN 2079-6374) provides an advanced forum for studies related to the science and technology of biosensors and biosensing. It publishes original research papers, comprehensive reviews and communications. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Electronic files and software regarding the full details of the calculation or experimental procedure, if unable to be published in a normal way, can be deposited as supplementary electronic material.
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