Recent developments and applications of nanomaterial-based lab-on-a-chip devices for sustainable agri-food industries

被引:22
作者
Arshad, Fareeha [1 ]
Deliorman, Muhammedin [2 ]
Sukumar, Pavithra [2 ]
Qasaimeh, Mohammad A. [2 ]
Olarve, James Salveo [3 ]
Santos, Gil Nonato [3 ]
Bansal, Vipul [4 ]
Ahmed, Minhaz Uddin [1 ]
机构
[1] Univ Brunei Darussalam, Fac Sci, Biosensors & Nanobiotechnol Lab, Integrated Sci Bldg,Jalan Tungku Link, Gadong BE1410, Brunei
[2] New York Univ Abu Dhabi, Div Engn, Abu Dhabi, U Arab Emirates
[3] De La Salle Univ, 2401 Taft Ave, Manila 1004, Metro Manila, Philippines
[4] RMIT Univ, Sch Sci, NanoBiotechnol Res Lab NBRL, Ian Potter NanoBioSensing Facil, GPO Box 2476, Melbourne, Vic 3000, Australia
关键词
Lab-on-a-chip; Nanomaterials; Nanozymes; Food; Agriculture; Biosensors; Detection methods; MEDIATED ISOTHERMAL AMPLIFICATION; GRAPHENE; BACTERIA; SENSORS; OILS;
D O I
10.1016/j.tifs.2023.04.010
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Background: Lab-on-a-chip (LOC) devices have attracted considerable scientific attention due to their ability to incorporate multiple complex analytical processes onto a single chip. Such miniaturised devices can reduce most large-scale laboratory processes to small chips.Scope and approach: This review discusses the recent developments and applications of nanomaterial-based LOC devices for sustainable food and agricultural industries. First, we present a brief introduction to this topic. We then highlight the applications of nanomaterial-based LOC devices in the food and agriculture industries. In the subsequent section, we discuss the advantages and disadvantages of such devices in food screening. Finally, we conclude the review by providing the future perspectives of this promising field for detecting and monitoring important analytes in food and agricultural products.Key findings and conclusion: Due to the miniaturisation of the entire assay, a minute sample is needed to perform the complete analysis quickly, thereby increasing the efficiency of the overall process. Thus, by exploiting the unique electrical, optical, and physical properties of the nanomaterials onto such LOCs, several properties of the sensing process can be improved, including the ability to selectively label the target analytes and thereby improve the overall sensitivity of the process. Such nanomaterial-based LOC devices have considerable potential in identifying nucleic acid, proteinic, and cellular components from complex food and agricultural samples with high specificity and, therefore, can be applied in the continuous monitoring of multiple agri-food analytes to ensure sustainability and food safety.
引用
收藏
页码:145 / 158
页数:14
相关论文
共 100 条
[1]  
Abhyankar P. S., 2021, Bhartiya Krishi Anusandhan Patrika, V36, P326, DOI 10.18805/BKAP374
[2]   Biomarker discovery and applications for foods and beverages: Proteomics to nanoproteomics [J].
Agrawal, Ganesh Kumar ;
Timperio, Anna Maria ;
Zolla, Lello ;
Bansal, Vipul ;
Shukla, Ravi ;
Rakwal, Randeep .
JOURNAL OF PROTEOMICS, 2013, 93 :74-92
[3]   Personalized diagnostics and biosensors: a review of the biology and technology needed for personalized medicine [J].
Ahmed, Minhaz Uddin ;
Saaem, Ishtiaq ;
Wu, Pae C. ;
Brown, April S. .
CRITICAL REVIEWS IN BIOTECHNOLOGY, 2014, 34 (02) :180-196
[4]   Breaking the barrier to biomolecule limit-of-detection via 3D printed multi-length-scale graphene-coated electrodes [J].
Ali, Md. Azahar ;
Hu, Chunshan ;
Yuan, Bin ;
Jahan, Sanjida ;
Saleh, Mohammad S. ;
Guo, Zhitao ;
Gellman, Andrew J. ;
Panat, Rahul .
NATURE COMMUNICATIONS, 2021, 12 (01)
[5]   Sensing of COVID-19 Antibodies in Seconds via Aerosol Jet Nanoprinted Reduced-Graphene-Oxide-Coated 3D Electrodes [J].
Ali, Md Azahar ;
Hu, Chunshan ;
Jahan, Sanjida ;
Yuan, Bin ;
Saleh, Mohammad Sadeq ;
Ju, Enguo ;
Gao, Shou-Jiang ;
Panat, Rahul .
ADVANCED MATERIALS, 2021, 33 (07)
[6]   Wicking in Porous Polymeric Membranes: Determination of an Effective Capillary Radius to Predict the Flow Behavior in Lateral Flow Assays [J].
Altschuh, Patrick ;
Kunz, Willfried ;
Bremerich, Marcel ;
Reiter, Andreas ;
Selzer, Michael ;
Nestler, Britta .
MEMBRANES, 2022, 12 (07)
[7]   Towards smart personalized perspiration analysis: An IoT-integrated cellulose-based microfluidic wearable patch for smartphone fluorimetric multi-sensing of sweat biomarkers [J].
Ardalan, Sina ;
Hosseinifard, Mohammad ;
Vosough, Maryam ;
Golmohammadi, Hamed .
BIOSENSORS & BIOELECTRONICS, 2020, 168
[8]   Nanozyme-based sensors for detection of food biomarkers: a review [J].
Arshad, Fareeha ;
Mohd-Naim, Noor Faizah ;
Chandrawati, Rona ;
Cozzolino, Daniel ;
Ahmed, Minhaz Uddin .
RSC ADVANCES, 2022, 12 (40) :26160-26175
[9]   Applications of graphene-based electrochemical and optical biosensors in early detection of cancer biomarkers [J].
Arshad, Fareeha ;
Nabi, Faisal ;
Iqbal, Sana ;
Khan, Rizwan Hasan .
COLLOIDS AND SURFACES B-BIOINTERFACES, 2022, 212
[10]   Evolution of Biochip Technology: A Review from Lab-on-a-Chip to Organ-on-a-Chip [J].
Azizipour, Neda ;
Avazpour, Rahi ;
Rosenzweig, Derek H. ;
Sawan, Mohamad ;
Ajji, Abdellah .
MICROMACHINES, 2020, 11 (06) :1-15