Review

Molecular Imprinting Technology for Biomimetic Assemblies

Volume: 48 Number: 5 November 1, 2020
EN

Molecular Imprinting Technology for Biomimetic Assemblies

Abstract

The term biomimetic can be simply defined as the examination of nature. The scientists inspired by the enormous diversity of nature to solve human problems or facilitate daily life by mimicking natural models, systems, and elements especially in the biomedical and therapeutic applications to make better drugs, artificial organs, sensing instruments, etc. Biological recognition elements like proteins, antibodies, enzymes, DNA, lectins, aptamers, cells, and viruses have been heavily used to ensure specificity in such applications in spite of their lack of stability and reusability. However, in the last two decades molecularly imprinted polymers, MIPs, have been synthesized as an alternative to mimic natural biological interactions for a broad spectrum of templates by means of coordinating functional monomers around template in the presence of cross-linker. This review will outline the broad contours of biomimetics prepared by molecular imprinting techniques and their practical applications in the separation techniques, tissue engineering applications, biomimetic surfaces, sensors, artificial membranes, and drug delivery systems.

Keywords

References

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Details

Primary Language

English

Subjects

Engineering

Journal Section

Review

Publication Date

November 1, 2020

Submission Date

September 28, 2020

Acceptance Date

October 16, 2020

Published in Issue

Year 2020 Volume: 48 Number: 5

APA
Bereli, N., Akgönüllü, S., Aslıyüce, S., Çimen, D., Göktürk, İ., Türkmen, D., Yavuz, H., & Denizli, A. (2020). Molecular Imprinting Technology for Biomimetic Assemblies. Hacettepe Journal of Biology and Chemistry, 48(5), 575-601. https://doi.org/10.15671/hjbc.801427
AMA
1.Bereli N, Akgönüllü S, Aslıyüce S, et al. Molecular Imprinting Technology for Biomimetic Assemblies. HJBC. 2020;48(5):575-601. doi:10.15671/hjbc.801427
Chicago
Bereli, Nilay, Semra Akgönüllü, Sevgi Aslıyüce, et al. 2020. “Molecular Imprinting Technology for Biomimetic Assemblies”. Hacettepe Journal of Biology and Chemistry 48 (5): 575-601. https://doi.org/10.15671/hjbc.801427.
EndNote
Bereli N, Akgönüllü S, Aslıyüce S, Çimen D, Göktürk İ, Türkmen D, Yavuz H, Denizli A (November 1, 2020) Molecular Imprinting Technology for Biomimetic Assemblies. Hacettepe Journal of Biology and Chemistry 48 5 575–601.
IEEE
[1]N. Bereli et al., “Molecular Imprinting Technology for Biomimetic Assemblies”, HJBC, vol. 48, no. 5, pp. 575–601, Nov. 2020, doi: 10.15671/hjbc.801427.
ISNAD
Bereli, Nilay - Akgönüllü, Semra - Aslıyüce, Sevgi - Çimen, Duygu - Göktürk, İlgim - Türkmen, Deniz - Yavuz, Handan - Denizli, Adil. “Molecular Imprinting Technology for Biomimetic Assemblies”. Hacettepe Journal of Biology and Chemistry 48/5 (November 1, 2020): 575-601. https://doi.org/10.15671/hjbc.801427.
JAMA
1.Bereli N, Akgönüllü S, Aslıyüce S, Çimen D, Göktürk İ, Türkmen D, Yavuz H, Denizli A. Molecular Imprinting Technology for Biomimetic Assemblies. HJBC. 2020;48:575–601.
MLA
Bereli, Nilay, et al. “Molecular Imprinting Technology for Biomimetic Assemblies”. Hacettepe Journal of Biology and Chemistry, vol. 48, no. 5, Nov. 2020, pp. 575-01, doi:10.15671/hjbc.801427.
Vancouver
1.Nilay Bereli, Semra Akgönüllü, Sevgi Aslıyüce, Duygu Çimen, İlgim Göktürk, Deniz Türkmen, Handan Yavuz, Adil Denizli. Molecular Imprinting Technology for Biomimetic Assemblies. HJBC. 2020 Nov. 1;48(5):575-601. doi:10.15671/hjbc.801427

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