Issue
Nano-biosensors in cellular and molecular biology
Corresponding Author(s) : Sajad Moradi
Cellular and Molecular Biology,
Vol. 64 No. 5: Issue 5
Abstract
Detection and quantification of various biological and non-biological species today is one of the most important pillars of all experimental sciences, especially sciences related to human health. This may apply to a chemical in the factory wastewater or to identify a cancer cell in a person's body, it may be apply to trace a useful industrial microorganism or human or plant pathogenic microorganisms. In this regard, scientists from various sciences have always striven to design and provide tools and techniques for identifying and quantifying as accurately as possible to trace various analyte types with greater precision and specificity. Nano science, which has flourished in recent years and is nowadays widely used in all fields of science, also has a unique place in the design and manufacture of sensors and this, in addition to the new and special characteristics of nanoparticles, is due to the ability of nano-devices to penetrate into very tiny places to track the species. On the other hand, due to the high specificity of biological molecules in identifying and connecting to their receptors that have evolved over millions of years, Scientists are now trying to design hybrid devices using nano science and biology, called Nano-biosensors So that they can trace and quantify target molecules in very small amounts and in inaccessible places, such as within the organs and even the cells.
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- Salvati, E., F. Stellacci, and S. Krol, Nanosensors for early cancer detection and for therapeutic drug monitoring. Nanomedicine, 2015. 10(23): p. 3495-3512.
- Carneiro, K.M. and A.A. Greschner, Recent advances in self-assembled DNA nanosensors. American Journal of Nano Research and Application, 2015. 3(1-1): p. 1-7.
- Mehrotra, P., Biosensors and their applications–A review. Journal of oral biology and craniofacial research, 2016. 6(2): p. 153-159.
- Zhao, W.-W., J.-J. Xu, and H.-Y. Chen, Photoelectrochemical aptasensing. TrAC Trends in Analytical Chemistry, 2016. 82: p. 307-315.
- Lim, S.A. and M.U. Ahmed, Electrochemical immunosensors and their recent nanomaterial-based signal amplification strategies: a review. RSC Advances, 2016. 6(30): p. 24995-25014.
- Tian, K., M. Prestgard, and A. Tiwari, A review of recent advances in nonenzymatic glucose sensors. Materials Science and Engineering: C, 2014. 41: p. 100-118.
- Kneipp, J., et al., Novel optical nanosensors for probing and imaging live cells. Nanomedicine: Nanotechnology, Biology and Medicine, 2010. 6(2): p. 214-226.
- Windmiller, J.R. and J. Wang, Wearable electrochemical sensors and biosensors: a review. Electroanalysis, 2013. 25(1): p. 29-46.
- Grieshaber, D., et al., Electrochemical biosensors-sensor principles and architectures. Sensors, 2008. 8(3): p. 1400-1458.
- Shcherbakova, D.M., et al., Natural photoreceptors as a source of fluorescent proteins, biosensors, and optogenetic tools. Annual review of biochemistry, 2015. 84: p. 519-550.
- Singh, P., SPR biosensors: Historical perspectives and current challenges. Sensors and Actuators B: Chemical, 2016. 229: p. 110-130.
- Skládal, P., Piezoelectric biosensors. TrAC Trends in Analytical Chemistry, 2016. 79: p. 127-133.
- Zhu, C., et al., Electrochemical sensors and biosensors based on nanomaterials and nanostructures. Analytical chemistry, 2014. 87(1): p. 230-249.
- Mozes, E., et al., The genetic control of antibody specificity. Journal of Experimental Medicine, 1969. 130(6): p. 1263-1278.
- Liu, B.L. and M.A. Saltman, Immunosensor Technology: Historical Perspective and Future Outlook. Laboratory medicine, 2015. 27(2): p. 109-115.
- Kokkinos, C., A. Economou, and M.I. Prodromidis, Electrochemical immunosensors: Critical survey of different architectures and transduction strategies. TrAC Trends in Analytical Chemistry, 2016. 79: p. 88-105.
- Torrente-Rodríguez, R.M., et al., Electrochemical sensor for rapid determination of fibroblast growth factor receptor 4 in raw cancer cell lysates. PloS one, 2017. 12(4): p. e0175056.
- Feng, L., et al., A graphene functionalized electrochemical aptasensor for selective label-free detection of cancer cells. Biomaterials, 2011. 32(11): p. 2930-2937.
- Naef, F., et al., DNA hybridization to mismatched templates: a chip study. Physical Review E, 2002. 65(4): p. 040902.
- Yi, X., et al., Label-Free Electrochemical Detection of MicroRNAs via Intercalation of Hemin into the DNA/RNA Hybridization. Int. J. Electrochem. Sci, 2017. 12: p. 2813-2821.
- Liu, X., et al., A sensitive, label-free electrochemical detection of telomerase activity without modification or immobilization. Biosensors and Bioelectronics, 2017. 91: p. 347-353.
- Zhang, S., et al., A recyclable chitosan-based QCM biosensor for sensitive and selective detection of breast cancer cells in real time. Analyst, 2014. 139(23): p. 6259-6265.
- Lian, Y., et al., A new aptamer/graphene interdigitated gold electrode piezoelectric sensor for rapid and specific detection of Staphylococcus aureus. Biosensors and Bioelectronics, 2015. 65: p. 314-319.
- Shang, X., et al., Synthesis and cytotoxicity of azo nano-materials as new biosensors for l-Arginine determination. Materials Science and Engineering: C, 2015. 51: p. 279-286.
- Singh, K.P., et al., Applying graphene oxide nano-film over a polycarbonate nanoporous membrane to monitor E. coli by infrared spectroscopy. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2017. 170: p. 14-18.
- Al-Ogaidi, I., et al., A gold@ silica core–shell nanoparticle-based surface-enhanced Raman scattering biosensor for label-free glucose detection. Analytica chimica acta, 2014. 811: p. 76-80.
- Thompson, R.B., Fluorescence sensors and biosensors. 2005: CRC Press.
- Halo, T.L., et al., NanoFlares for the detection, isolation, and culture of live tumor cells from human blood. Proceedings of the National Academy of Sciences, 2014. 111(48): p. 17104-17109.
- Shao, Y., et al., Graphene based electrochemical sensors and biosensors: a review. Electroanalysis, 2010. 22(10): p. 1027-1036.
- Jung, J.H., et al., A graphene oxide based immuno"biosensor for pathogen detection. Angewandte Chemie International Edition, 2010. 49(33): p. 5708-5711.
- Liu, Y., et al., Biocompatible graphene oxide-based glucose biosensors. Langmuir, 2010. 26(9): p. 6158-6160.
- Mayorga"Martinez, C.C., Z. Sofer, and M. Pumera, Layered black phosphorus as a selective vapor sensor. Angewandte Chemie, 2015. 127(48): p. 14525-14528.
- Chen, Y., et al., Field-effect transistor biosensors with two-dimensional black phosphorus nanosheets. Biosensors and Bioelectronics, 2017. 89: p. 505-510.
- Kong, R.-M., et al., A novel aptamer-functionalized MoS2 nanosheet fluorescent biosensor for sensitive detection of prostate specific antigen. Analytical and bioanalytical chemistry, 2015. 407(2): p. 369-377.
- Yew, Y.T., et al., Black phosphorus nanoparticles as a novel fluorescent sensing platform for nucleic acid detection. Materials Chemistry Frontiers, 2017. 1(6): p. 1130-1136.
- Shamsipur, M., et al., A highly sensitive quantum dots-DNA nanobiosensor based on fluorescence resonance energy transfer for rapid detection of nanomolar amounts of human papillomavirus 18. Journal of pharmaceutical and biomedical analysis, 2017. 136: p. 140-147.
- Zhang, H., et al., Universal fluorescence biosensor platform based on graphene quantum dots and pyrene-functionalized molecular beacons for detection of microRNAs. ACS applied materials & interfaces, 2015. 7(30): p. 16152-16156.
- Sadowski, J.W., J. Lekkala, and I. Vikholm, Biosensors based on surface plasmons excited in non-noble metals. Biosensors and Bioelectronics, 1991. 6(5): p. 439-444.
- Nishijima, Y., et al., Alloy Materials for Plasmonic Refractive Index Sensing. Sensors and Materials, 2017. 29(9): p. 1233-1239.
- Uludag, Y. and I.E. Tothill, Cancer biomarker detection in serum samples using surface plasmon resonance and quartz crystal microbalance sensors with nanoparticle signal amplification. Analytical chemistry, 2012. 84(14): p. 5898-5904.
- Zhang, D., et al., Enhancing sensitivity of surface plasmon resonance biosensor by Ag nanocubes/chitosan composite for the detection of mouse IgG. Talanta, 2016. 146: p. 364-368.
- Khaledian, S., et al., A sensitive biosensor based on gold nanoparticles to detect Ralstonia solanacearum in soil. Journal of General Plant Pathology, 2017. 83(4): p. 231-239.
References
Salvati, E., F. Stellacci, and S. Krol, Nanosensors for early cancer detection and for therapeutic drug monitoring. Nanomedicine, 2015. 10(23): p. 3495-3512.
Carneiro, K.M. and A.A. Greschner, Recent advances in self-assembled DNA nanosensors. American Journal of Nano Research and Application, 2015. 3(1-1): p. 1-7.
Mehrotra, P., Biosensors and their applications–A review. Journal of oral biology and craniofacial research, 2016. 6(2): p. 153-159.
Zhao, W.-W., J.-J. Xu, and H.-Y. Chen, Photoelectrochemical aptasensing. TrAC Trends in Analytical Chemistry, 2016. 82: p. 307-315.
Lim, S.A. and M.U. Ahmed, Electrochemical immunosensors and their recent nanomaterial-based signal amplification strategies: a review. RSC Advances, 2016. 6(30): p. 24995-25014.
Tian, K., M. Prestgard, and A. Tiwari, A review of recent advances in nonenzymatic glucose sensors. Materials Science and Engineering: C, 2014. 41: p. 100-118.
Kneipp, J., et al., Novel optical nanosensors for probing and imaging live cells. Nanomedicine: Nanotechnology, Biology and Medicine, 2010. 6(2): p. 214-226.
Windmiller, J.R. and J. Wang, Wearable electrochemical sensors and biosensors: a review. Electroanalysis, 2013. 25(1): p. 29-46.
Grieshaber, D., et al., Electrochemical biosensors-sensor principles and architectures. Sensors, 2008. 8(3): p. 1400-1458.
Shcherbakova, D.M., et al., Natural photoreceptors as a source of fluorescent proteins, biosensors, and optogenetic tools. Annual review of biochemistry, 2015. 84: p. 519-550.
Singh, P., SPR biosensors: Historical perspectives and current challenges. Sensors and Actuators B: Chemical, 2016. 229: p. 110-130.
Skládal, P., Piezoelectric biosensors. TrAC Trends in Analytical Chemistry, 2016. 79: p. 127-133.
Zhu, C., et al., Electrochemical sensors and biosensors based on nanomaterials and nanostructures. Analytical chemistry, 2014. 87(1): p. 230-249.
Mozes, E., et al., The genetic control of antibody specificity. Journal of Experimental Medicine, 1969. 130(6): p. 1263-1278.
Liu, B.L. and M.A. Saltman, Immunosensor Technology: Historical Perspective and Future Outlook. Laboratory medicine, 2015. 27(2): p. 109-115.
Kokkinos, C., A. Economou, and M.I. Prodromidis, Electrochemical immunosensors: Critical survey of different architectures and transduction strategies. TrAC Trends in Analytical Chemistry, 2016. 79: p. 88-105.
Torrente-Rodríguez, R.M., et al., Electrochemical sensor for rapid determination of fibroblast growth factor receptor 4 in raw cancer cell lysates. PloS one, 2017. 12(4): p. e0175056.
Feng, L., et al., A graphene functionalized electrochemical aptasensor for selective label-free detection of cancer cells. Biomaterials, 2011. 32(11): p. 2930-2937.
Naef, F., et al., DNA hybridization to mismatched templates: a chip study. Physical Review E, 2002. 65(4): p. 040902.
Yi, X., et al., Label-Free Electrochemical Detection of MicroRNAs via Intercalation of Hemin into the DNA/RNA Hybridization. Int. J. Electrochem. Sci, 2017. 12: p. 2813-2821.
Liu, X., et al., A sensitive, label-free electrochemical detection of telomerase activity without modification or immobilization. Biosensors and Bioelectronics, 2017. 91: p. 347-353.
Zhang, S., et al., A recyclable chitosan-based QCM biosensor for sensitive and selective detection of breast cancer cells in real time. Analyst, 2014. 139(23): p. 6259-6265.
Lian, Y., et al., A new aptamer/graphene interdigitated gold electrode piezoelectric sensor for rapid and specific detection of Staphylococcus aureus. Biosensors and Bioelectronics, 2015. 65: p. 314-319.
Shang, X., et al., Synthesis and cytotoxicity of azo nano-materials as new biosensors for l-Arginine determination. Materials Science and Engineering: C, 2015. 51: p. 279-286.
Singh, K.P., et al., Applying graphene oxide nano-film over a polycarbonate nanoporous membrane to monitor E. coli by infrared spectroscopy. Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 2017. 170: p. 14-18.
Al-Ogaidi, I., et al., A gold@ silica core–shell nanoparticle-based surface-enhanced Raman scattering biosensor for label-free glucose detection. Analytica chimica acta, 2014. 811: p. 76-80.
Thompson, R.B., Fluorescence sensors and biosensors. 2005: CRC Press.
Halo, T.L., et al., NanoFlares for the detection, isolation, and culture of live tumor cells from human blood. Proceedings of the National Academy of Sciences, 2014. 111(48): p. 17104-17109.
Shao, Y., et al., Graphene based electrochemical sensors and biosensors: a review. Electroanalysis, 2010. 22(10): p. 1027-1036.
Jung, J.H., et al., A graphene oxide based immuno"biosensor for pathogen detection. Angewandte Chemie International Edition, 2010. 49(33): p. 5708-5711.
Liu, Y., et al., Biocompatible graphene oxide-based glucose biosensors. Langmuir, 2010. 26(9): p. 6158-6160.
Mayorga"Martinez, C.C., Z. Sofer, and M. Pumera, Layered black phosphorus as a selective vapor sensor. Angewandte Chemie, 2015. 127(48): p. 14525-14528.
Chen, Y., et al., Field-effect transistor biosensors with two-dimensional black phosphorus nanosheets. Biosensors and Bioelectronics, 2017. 89: p. 505-510.
Kong, R.-M., et al., A novel aptamer-functionalized MoS2 nanosheet fluorescent biosensor for sensitive detection of prostate specific antigen. Analytical and bioanalytical chemistry, 2015. 407(2): p. 369-377.
Yew, Y.T., et al., Black phosphorus nanoparticles as a novel fluorescent sensing platform for nucleic acid detection. Materials Chemistry Frontiers, 2017. 1(6): p. 1130-1136.
Shamsipur, M., et al., A highly sensitive quantum dots-DNA nanobiosensor based on fluorescence resonance energy transfer for rapid detection of nanomolar amounts of human papillomavirus 18. Journal of pharmaceutical and biomedical analysis, 2017. 136: p. 140-147.
Zhang, H., et al., Universal fluorescence biosensor platform based on graphene quantum dots and pyrene-functionalized molecular beacons for detection of microRNAs. ACS applied materials & interfaces, 2015. 7(30): p. 16152-16156.
Sadowski, J.W., J. Lekkala, and I. Vikholm, Biosensors based on surface plasmons excited in non-noble metals. Biosensors and Bioelectronics, 1991. 6(5): p. 439-444.
Nishijima, Y., et al., Alloy Materials for Plasmonic Refractive Index Sensing. Sensors and Materials, 2017. 29(9): p. 1233-1239.
Uludag, Y. and I.E. Tothill, Cancer biomarker detection in serum samples using surface plasmon resonance and quartz crystal microbalance sensors with nanoparticle signal amplification. Analytical chemistry, 2012. 84(14): p. 5898-5904.
Zhang, D., et al., Enhancing sensitivity of surface plasmon resonance biosensor by Ag nanocubes/chitosan composite for the detection of mouse IgG. Talanta, 2016. 146: p. 364-368.
Khaledian, S., et al., A sensitive biosensor based on gold nanoparticles to detect Ralstonia solanacearum in soil. Journal of General Plant Pathology, 2017. 83(4): p. 231-239.