Self-Assembled Block Copolymers as a Facile Pathway to Create Functional Nanobiosensor and Nanobiomaterial Surfaces
Author:
Sytu Marion Ryan C.1ORCID, Cho David H.2, Hahm Jong-in1ORCID
Affiliation:
1. Department of Chemistry, Georgetown University, 37th & O Sts. NW., Washington, DC 20057, USA 2. National Institute of Biomedical Imaging and Bioengineering, National Institutes of Health, 9000 Rockville Pike, Bethesda, MD 20892, USA
Abstract
Block copolymer (BCP) surfaces permit an exquisite level of nanoscale control in biomolecular assemblies solely based on self-assembly. Owing to this, BCP-based biomolecular assembly represents a much-needed, new paradigm for creating nanobiosensors and nanobiomaterials without the need for costly and time-consuming fabrication steps. Research endeavors in the BCP nanobiotechnology field have led to stimulating results that can promote our current understanding of biomolecular interactions at a solid interface to the never-explored size regimes comparable to individual biomolecules. Encouraging research outcomes have also been reported for the stability and activity of biomolecules bound on BCP thin film surfaces. A wide range of single and multicomponent biomolecules and BCP systems has been assessed to substantiate the potential utility in practical applications as next-generation nanobiosensors, nanobiodevices, and biomaterials. To this end, this Review highlights pioneering research efforts made in the BCP nanobiotechnology area. The discussions will be focused on those works particularly pertaining to nanoscale surface assembly of functional biomolecules, biomolecular interaction properties unique to nanoscale polymer interfaces, functionality of nanoscale surface-bound biomolecules, and specific examples in biosensing. Systems involving the incorporation of biomolecules as one of the blocks in BCPs, i.e., DNA–BCP hybrids, protein–BCP conjugates, and isolated BCP micelles of bioligand carriers used in drug delivery, are outside of the scope of this Review. Looking ahead, there awaits plenty of exciting research opportunities to advance the research field of BCP nanobiotechnology by capitalizing on the fundamental groundwork laid so far for the biomolecular interactions on BCP surfaces. In order to better guide the path forward, key fundamental questions yet to be addressed by the field are identified. In addition, future research directions of BCP nanobiotechnology are contemplated in the concluding section of this Review.
Funder
National Science Foundation
Reference222 articles.
1. Gupta, N., Renugopalakrishnan, V., Liepmann, D., Paulmurugan, R., and Malhotra, B.D. (2019). Cell-Based Biosensors: Recent Tends, Challenges and Future Perspectives. Biosens. Bioelectron., 141. 2. Lithographic Processes for the Scalable Fabrication of Micro- and Nanostructures for Biochips and Biosensors;Fruncillo;ACS Sens.,2021 3. Jin, X., Li, G., Xu, T., Su, L., Yan, D., and Zhang, X. (2022). Fully Integrated Flexible Biosensor for Wearable Continuous Glucose Monitoring. Biosens. Bioelectron., 196. 4. Innovations in Biomedical Nanoengineering: Nanowell Array Biosensor;Seo;Nano Converg.,2018 5. Wu, W., Wang, L., Yang, Y., Du, W., Ji, W., Fang, Z., Hou, X., Wu, Q., Zhang, C., and Li, L. (2022). Optical Flexible Biosensors: From Detection Principles to Biomedical Applications. Biosens. Bioelectron., 210.
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