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Biosensors 2025年生物传感器材料栏目文章精选主编荐读


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  Biosensors 2025年生物传感器材料栏目文章精选主编荐读。期刊名:Biosensors

   期刊主页:https://www.mdpi.com/journal/biosensors

   随着先进纳米材料、功能高分子与仿生界面的不断突破,生物传感材料正从传统的单一响应/被动识别迈向高灵敏、多模态、智能催化、可集成的新范式。本文献清单荟萃了发表于 Biosensors 的一批具有代表性的工作,系统梳理了新型传感材料的设计策略及其在复杂体系中的应用潜力。内容涵盖了从碳量子点、MXene量子点及复合纳米颗粒等新型信号放大材料,到面向癌症标志物、病原体与食品安全的高灵敏检测方案;从MOF基纳米酶与核酸纳米酶构筑的智能催化识别网络,到分子印迹聚合物(MIPs)实现的特异性分子捕获;同时也关注微流控液滴操控、SERS/等离激元增强平台、高盐体液电容式检测等跨学科技术,以及无线集成传感与深度学习多模态融合的前沿探索。这些成果串联起了从材料理性设计到精准信号转换的完整技术链条,为下一代临床即时诊断、环境健康监测与智慧医疗的应用提供了更多参考。

   1. Carbon Quantum Dots: Synthesis, Characteristics, and Quenching as Biocompatible Fluorescent Probes

   碳量子点:作为生物相容性荧光探针的合成、特性及猝灭行为

   https://www.mdpi.com/2079-6374/15/2/99

   Kamal, A.; Hong, S.; Ju, H. Carbon Quantum Dots: Synthesis, Characteristics, and Quenching as Biocompatible Fluorescent Probes. Biosensors 2025, 15, 99. https://doi.org/10.3390/bios15020099

   2. Electrochemical Impedance Spectroscopy-Based Biosensors for Label-Free Detection of Pathogens

   基于电化学阻抗谱的病原体无标记检测生物传感器

   https://www.mdpi.com/2079-6374/15/7/443

   Zhang, H.; Sun, Z.; Sun, K.; Liu, Q.; Chu, W.; Fu, L.; Dai, D.; Liang, Z.; Lin, C.-T. Electrochemical Impedance Spectroscopy-Based Biosensors for Label-Free Detection of Pathogens. Biosensors 2025, 15, 443. https://doi.org/10.3390/bios15070443

   3. Comprehensive Analysis of Advancement in Optical Biosensing Techniques for Early Detection of Cancerous Cells

   用于癌症细胞早期检测的光学生物传感技术进展的综合分析

   https://www.mdpi.com/2079-6374/15/5/292

   Ramola, A.; Shakya, A.K.; Bergman, A. Comprehensive Analysis of Advancement in Optical Biosensing Techniques for Early Detection of Cancerous Cells. Biosensors 2025, 15, 292. https://doi.org/10.3390/bios15050292

   4. Colorimetric Biosensors: Advancements in Nanomaterials and Cutting-Edge Detection Strategies

   比色生物传感器:纳米材料的进展与前沿检测策略

   https://www.mdpi.com/2079-6374/15/6/362

   Lee, Y.; Haizan, I.; Sim, S.B.; Choi, J.-H. Colorimetric Biosensors: Advancements in Nanomaterials and Cutting-Edge Detection Strategies. Biosensors 2025, 15, 362. https://doi.org/10.3390/bios15060362

   5. Droplet Generation and Manipulation in Microfluidics: A Comprehensive Overview of Passive and Active Strategies

   微流控中的液滴生成与操控:被动与主动策略的综合综述

   https://www.mdpi.com/2079-6374/15/6/345

   Fergola, A.; Ballesio, A.; Frascella, F.; Napione, L.; Cocuzza, M.; Marasso, S.L. Droplet Generation and Manipulation in Microfluidics: A Comprehensive Overview of Passive and Active Strategies. Biosensors 2025, 15, 345. https://doi.org/10.3390/bios15060345

   6. Recent Advances in Metal–Organic Framework-Based Nanozymes for Intelligent Microbial Biosensing: A Comprehensive Review of Biomedical and Environmental Applications

   基于金属有机框架的纳米酶用于智能微生物生物传感的最新进展:生物医学与环境应用综述

   https://www.mdpi.com/2079-6374/15/7/437

   Kidanemariam, A.; Cho, S. Recent Advances in Metal–Organic Framework-Based Nanozymes for Intelligent Microbial Biosensing: A Comprehensive Review of Biomedical and Environmental Applications. Biosensors 2025, 15, 437. https://doi.org/10.3390/bios15070437

   7. Small Toxic Molecule Detection and Elimination Using Molecularly Imprinted Polymers (MIPs)

   利用分子印迹聚合物(MIPs)检测与去除小分子毒物

   https://www.mdpi.com/2079-6374/15/6/393

   Kang, M.S.; Lee, J.-H.; Kim, K.S. Small Toxic Molecule Detection and Elimination Using Molecularly Imprinted Polymers (MIPs). Biosensors 2025, 15, 393. https://doi.org/10.3390/bios15060393

   8. Recent Advances in Electrochemical Sensors for the Detection of Anti-Inflammatory and Antibiotic Drugs: A Comprehensive Review

   用于检测抗炎药和抗生素药物的电化学传感器研究进展:综合综述

   https://www.mdpi.com/2079-6374/15/10/676

   Mello, G.A.B.; Benjamin, S.R.; de Lima, F.; Dutra, R.F. Recent Advances in Electrochemical Sensors for the Detection of Anti-Inflammatory and Antibiotic Drugs: A Comprehensive Review. Biosensors 2025, 15, 676. https://doi.org/10.3390/bios15100676

   9. Exploring Nucleic Acid Nanozymes: A New Frontier in Biosensor Development

   探索核酸纳米酶:生物传感器开发的新前沿

   https://www.mdpi.com/2079-6374/15/3/142

   Chen, K.; Du, Z.; Zhang, Y.; Bai, R.; Zhu, L.; Xu, W. Exploring Nucleic Acid Nanozymes: A New Frontier in Biosensor Development. Biosensors 2025, 15, 142. https://doi.org/10.3390/bios15030142

   10. Aptamer-Conjugated Multi-Quantum Dot-Embedded Silica Nanoparticles for Lateral Flow Immunoassay

   用于侧向层析免疫分析的适配体偶联多量子点包埋二氧化硅纳米颗粒

   https://www.mdpi.com/2079-6374/15/1/54

   Yoo, K.; Cho, H.-S.; Kim, J.; Shin, M.; Chu, J.-S.; Jang, S.; Bae, H.-J.; Jung, H.S.; Kang, H.; Jun, B.-H. Aptamer-Conjugated Multi-Quantum Dot-Embedded Silica Nanoparticles for Lateral Flow Immunoassay. Biosensors 2025, 15, 54. https://doi.org/10.3390/bios15010054

   11. A Sensitive Electrochemical Cholinesterase-Inhibiting Biosensor for Organophosphorus Pesticides Based on Ti3C2TX MXene Quantum Dots

   基于 Ti3C2Tx MXene 量子点的有机磷农药高灵敏电化学胆碱酯酶抑制生物传感器

   https://www.mdpi.com/2079-6374/15/9/575

   Makani, N.; Wu, J.; Florentino, J.; Chafin, C.F.; Gautam, B.; Chao, S.; Han, S. A Sensitive Electrochemical Cholinesterase-Inhibiting Biosensor for Organophosphorus Pesticides Based on Ti3C2TX MXene Quantum Dots. Biosensors 2025, 15, 575. https://doi.org/10.3390/bios15090575

   12. On the Feasibility of SERS-Based Monitoring of Drug Loading Efficiency in Exosomes for Targeted Delivery

   关于基于SERS监测靶向递送外泌体载药效率可行性的研究

   https://www.mdpi.com/2079-6374/15/3/141

   Liu, J.; Srivastava, S.; Li, T.; Moujane, F.; Lee, J.Y.; Chen, Y.; Liu, H.; Deng, S.X.; Xie, Y.-H. On the Feasibility of SERS-Based Monitoring of Drug Loading Efficiency in Exosomes for Targeted Delivery. Biosensors 2025, 15, 141. https://doi.org/10.3390/bios15030141

   13. Deep Learning-Driven Multimodal Integration of miRNA and Radiomic for Lung Cancer Diagnosis

   基于深度学习的肺癌诊断:miRNA与影像组学的多模态融合

   https://www.mdpi.com/2079-6374/15/9/610

   Chen, Y.; Chen, D.; Liu, X.; Jiang, H.; Wang, X. Deep Learning-Driven Multimodal Integration of miRNA and Radiomic for Lung Cancer Diagnosis. Biosensors 2025, 15, 610. https://doi.org/10.3390/bios15090610

   14. Plasmonic Biosensors in Cancer-Associated miRNA Detection

   用于癌症相关 miRNA 检测的等离激元生物传感器

   https://www.mdpi.com/2079-6374/15/3/165

   Kim, N.; Bae, M.; Cho, E.; Kim, K.S.; Lee, J.-H. Plasmonic Biosensors in Cancer-Associated miRNA Detection. Biosensors 2025, 15, 165. https://doi.org/10.3390/bios15030165

   15. Capacitive Sensors for Label-Free Detection in High-Ionic-Strength Bodily Fluids: A Review

   用于高离子强度体液中无标记检测的电容式传感器:综述

   https://www.mdpi.com/2079-6374/15/8/491

   Sekhon, S.; Bayford, R.; Demosthenous, A. Capacitive Sensors for Label-Free Detection in High-Ionic-Strength Bodily Fluids: A Review. Biosensors 2025, 15, 491. https://doi.org/10.3390/bios15080491

   16. Aptamer-Conjugated Magnetic Nanoparticles Integrated with SERS for Multiplex Salmonella Detection

   结合SERS的适配体偶联磁性纳米颗粒用于沙门氏菌多重检测

   https://www.mdpi.com/2079-6374/15/7/464

   Sun, F.; Pang, K.; Yang, K.; Zheng, L.; Wang, M.; Wang, Y.; Chen, Q.; Ye, Z.; Liang, P.; Yu, X. Aptamer-Conjugated Magnetic Nanoparticles Integrated with SERS for Multiplex Salmonella Detection. Biosensors 2025, 15, 464. https://doi.org/10.3390/bios15070464

   17. A High-Sensitivity, Bluetooth-Enabled PCB Biosensor for HER2 and CA15-3 Protein Detection in Saliva: A Rapid, Non-Invasive Approach to Breast Cancer Screening

   一种用于检测唾液中 HER2 和 CA15-3 蛋白的高灵敏度蓝牙 PCB 生物传感器:一种乳腺癌筛查的快速、无创方法

   https://www.mdpi.com/2079-6374/15/6/386

   Wan, H.-H.; Chiang, C.-C.; Ren, F.; Tsai, C.-T.; Chou, Y.-S.; Chiu, C.-W.; Liao, Y.-T.; Neal, D.; Heldermon, C.D.; Rocha, M.G.; et al. A High-Sensitivity, Bluetooth-Enabled PCB Biosensor for HER2 and CA15-3 Protein Detection in Saliva: A Rapid, Non-Invasive Approach to Breast Cancer Screening. Biosensors 2025, 15, 386. https://doi.org/10.3390/bios15060386

   18. Wearable Ultrasound-Imaging-Based Visual Feedback (UVF) Training for Ankle Rehabilitation of Chronic Stroke Survivors: A Proof-of-Concept Randomized Crossover Study

   基于可穿戴超声成像视觉反馈(UVF)的慢性脑卒中幸存者踝关节康复训练:一项概念验证随机交叉研究

   https://www.mdpi.com/2079-6374/15/6/365

   Luo, Y.-Y.; Huang, C.; Song, Z.; Nazari, V.; Wong, A.Y.-L.; Yang, L.; Dong, M.; Zhang, M.; Zheng, Y.-P.; Fu, A.S.-N.; et al. Wearable Ultrasound-Imaging-Based Visual Feedback (UVF) Training for Ankle Rehabilitation of Chronic Stroke Survivors: A Proof-of-Concept Randomized Crossover Study. Biosensors 2025, 15, 365. https://doi.org/10.3390/bios15060365

   19. Sensing Protein Structural Transitions with Microfluidic Modulation Infrared Spectroscopy

   利用微流控调制红外光谱检测蛋白质结构转变

   https://www.mdpi.com/2079-6374/15/6/382

   Lucas, L.; Tsoi, P.S.; Nair, A.; Ferreon, A.C.M.; Ferreon, J.C. Sensing Protein Structural Transitions with Microfluidic Modulation Infrared Spectroscopy. Biosensors 2025, 15, 382. https://doi.org/10.3390/bios15060382

   20. Exhaled Aldehydes and Ketones as Biomarkers of Lung Cancer and Diabetes: Review of Sensor Technologies for Early Disease Diagnosis

   作为肺癌和糖尿病生物标志物的呼出气醛类与酮类:疾病早期诊断传感器技术综述

   https://www.mdpi.com/2079-6374/15/10/668

   Kiejzik, R.; Wasilewski, T.; Kamysz, W. Exhaled Aldehydes and Ketones as Biomarkers of Lung Cancer and Diabetes: Review of Sensor Technologies for Early Disease Diagnosis. Biosensors 2025, 15, 668. https://doi.org/10.3390/bios15100668

   期刊介绍

   主编:Prof. Dr. Giovanna Marrazza

   Biosensors(ISSN 2079-6374)为生物传感器及生物传感相关科学与技术领域的研究提供了一个高水平的交流平台。该期刊发表原创性研究论文、综合性综述及简报。我们旨在鼓励科学家尽可能详尽地发表其实验与理论研究成果。论文篇幅不设上限,但必须提供完整的实验细节,以确保研究结果可被复现。

   2025 Impact Factor:6.2

   2025 CiteScore:12.1

   Time to First Decision:17.3 Days

   Acceptance to Publication:2.9 Days

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来源:Biosensors

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