Self-Assembled Short Peptide Nanostructures: ‘’Dipeptides’’
Year 2023,
Volume: 11 Issue: 1, 83 - 91, 01.07.2023
Emrah Dikici
,
Burcu Önal Acet
,
Tuba Gök
,
Ömür Acet
,
Mehmet Odabaşı
Abstract
Dipeptides are short peptide molecules formed by the peptide bond between two amino acids, and they play significant roles in various biological processes (such as protein synthesis, nutrient absorption, cellular signaling, immune response). Short peptides have a prominent place in the design of self-assembling materials. In particular, dipeptides have gained considerable attention in the field of biotechnology as a type of self-organizing nanostructure due to their low cost, simplicity of synthesis, biocompatibility, and tunability of functionality. However, there is limited knowledge about peptide and protein-based nanostructures in the literature. Therefore, more information is needed on dipeptide nanostructures, especially in terms of their potential applications for biomedical purposes. This review focuses on dipeptide nanostructures, particularly their potential uses in biomedical applications, and provides a broader perspective on the advantages, challenges, synthesis, interactions, and applications of these nanostructures.
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Year 2023,
Volume: 11 Issue: 1, 83 - 91, 01.07.2023
Emrah Dikici
,
Burcu Önal Acet
,
Tuba Gök
,
Ömür Acet
,
Mehmet Odabaşı
References
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Self-Assembly”, ACS Nano, 5, (2011), 4448–4454.
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-
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-
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-
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-
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-
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Acad. Sci., 26, (1999), 14801–14806.
-
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hydrogen-bond surrogate”, J. Am. Chem. Soc., 130, (2008), 4334–4337.
-
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applications”, Bioactive Materials, 11, (2022), 268-282.
-
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nanostructuring and capacity for membrane destabilization,” Biomacromolecules, 11, (2010), 402–411.
-
Veiga A. S., Sinthuvanich C., Gaspar D., Franquelim H. G., Castanho M. A. R. B., Schneider J. P., “Arginine-rich
self- assembling peptides as potent antibacterial gels,” Biomaterials, 33, (2012), 8907–8916.
-
Gorbitz C. H., “The structure of nanotubes formed by dipheny- lalanine, the core recognition motif of
Alzheimer’s 𝛽-amyloid polypeptide,” Chemical Communications, 22, (2006), 2332–2334.
-
Nagai Y., Unsworth L.D., Koutsopoulos S., Zhang S., “Slow release of molecules in self-assembling peptide
nanofiber scaffold”, J. Control. Release., 115, (2006), 18-25.
-
Reithofer M.R., Chan K. H., Lakshmanan A., Lam D.H., Mishra A., Gopalan B., Joshi M., Wanga S., Hauser C. A. E.,
“Ligation of anti-cancer drugs to self-assembling ultrashort peptides by click chemistry for localized
therapy”, Chem. Sci., 5, (2014), 625-630.
-
Habibi N., Kamaly N., Memic A., Shafiee H., “Self-assembled peptide-based nanostructures: Smart
nanomaterials toward targeted drug delivery”, Nano Today, 11, (2016), 41-60.
-
Gupta B., Levchenko T., Torchilin V., “Intracellular delivery of large molecules and small particles by cell-
penetrating proteins and peptides”, Adv. Drug Delivery Rev., 57, (2005), 637-651.
-
Fuchs S.M., Raines R.T., “Internalization of cationic peptides: the road less (or more?) traveled”, Cell. Mol. Life
Sci., 63, (2006), 1819-1822.
-
Tirrell M., Kokkoli E., Biesalski M., “The Role of Surface Science in Bioengineered Materials”,Surf. Sci., 500, (2002),
61-68.
-
Pastorino L., Habibi N., Soumetz F., Giulianelli M., Ruggiero C., “Polyelectrolyte multilayers for cell and tissue
engineering”, Eur. Cells Mater., 22, (2011), 66.
-
Davis M., Motion J., Narmoneva D., Takahashi T., Hakuno D., Kamm R., Zhang S., Lee R. T., “Injectable Self-
Assembling Peptide Nanofibers Create Intramyocardial Microenvironments for Endothelial Cells”, Circulation,
111, (2005), 442-450.
-
Tenidis K., Waldner M., Bernhagen J., Fischle W., Bergmann M., Weber M., Merkle M. L., Voelter W., Brunner H.,
Kapurniotu A., “Identification of a penta- and hexapeptide of islet amyloid polypeptide (IAPP) with
amyloidogenic and cytotoxic properties”, J. Mol. Biol., 295, (2000), 1055-1071.
-
Reches M., Porat Y., Gazit E., “Amyloid fibril formation by pentapeptide and tetrapeptide fragments of human
calcitonin”, J. Biol. Chem., 277, (2002), 35475-35480.
-
Singh P., Pandey S. K., Grover A., Sharma R. K., Wangoo N., “Understanding the self-ordering of amino acids into
supramolecular architectures: co-assembly-based modulation of phenylalanine nanofibrils”, Materials
Chemistry Frontiers, 5, (2021), 1971-1981.
-
Basiri M. A., "Dipeptide-based nanoparticles: advances and challenges," RSC Advances, 11, (2021), 14321-14334.
-
Pala B. B., Vural T., Kuralay F., Cırak T., Bolat G., Abacı S., Denkbas E. B., “Disposable pencil graphite electrode
modified with peptide nanotubes for Vitamin B12 analysis,” Appl. Surf. Sci., 303, (2014), 37–45.
-
Guo C., Luo Y., Zhou R., Wei G., “Probing the Self-Assembly Mechanism of Diphenylalanine-Based Peptide
Nanovesicles and Nanotubes,” ACS Nano, 6, (2012), 3907-3918.
-
Chen C., Liu K., Li J., Yan X., “Functional architectures based on selfassembly of bio-inspired dipeptides:
Structure modulation and its photoelectronic applications,” Adv. Colloid Interface Sci., 225, (2015), 177-193.
-
Wang Q., Zhang X., “Self-assembly of diphenylalanine peptide nanotubes on graphene for electronic devices”,
ACS applied materials & interfaces, 8, (2016), 20125-20132.
-
Liu X., Wang J., Li Y., Wang X., Chen Y., “Peptide-based nanoparticles for drug delivery”, Advanced drug
delivery reviews, 110, (2016), 112-126.
-
Wang C., Wang S., Yang X., “Diphenylalanine peptide nanotubes as a platform for nanoscale optoelectronics”,
Advanced materials, 27, (2015), 402-427.
-
Yan X., He Q., Wang K., Duan L., Cui Y., Li J., “Transition of Cationic Dipeptide Nanotubes into Vesicles and
Oligonucleotide Delivery,” Angew. Chemie Int. Ed., 46, (2007), 2431–2434.
-
Yan X., Cui Y., He Q., Wang K., Li J., Mu W., Wang B., Ou-yang Z., “Reversible Transitions between Peptide
Nanotubes and Vesicle-Like Structures Including Theoretical Modeling Studies,” Chem. Europe, 14, (2008),
5974–5980.
-
Zhang H., Fei J., Yan X., Wang A., Li J., “Enzyme-Responsive Release of Doxorubicin from Monodisperse
Dipeptide-Based Nanocarriers for Highly Efficient Cancer Treatment In Vitro,” Adv. Funct. Mater., 25, (2015)
1193–1204.
-
Ma H., Fei J., Li Q., Li J., “Photo-induced Reversible Structural Transition of Cationic Diphenylalanine Peptide
Self-Assembly,” Small, 11, (2015), 1787–1791.
-
Huang C., Chen X., Lu Y., Yang H., Yang W., “Electrogenerated chemiluminescence behavior of peptide
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