Anti-Glioma Activity Achieved by Dual Blood-Brain Barrier/Glioma Targeting Naive Chimeric Peptides-Based Co-Assembled Nanophototheranostics.

Taru Dube, Jiban Jyoti Panda
Author Information
  1. Taru Dube: Institute of Nano Science and Technology (INST), Mohali 160062, Punjab, India.
  2. Jiban Jyoti Panda: Institute of Nano Science and Technology (INST), Mohali 160062, Punjab, India.

Abstract

Peptide monomers can either self-assemble with themselves enacting a solo-component assembly or they can co-assemble by interacting with other suitable partners to mediate peptide co-assembly. Peptide co-assemblies represent an innovative class of naive, multifunctional, bio-inspired supramolecular constructs that result in the production of nanostructures with widespread functional, structural, and chemical multiplicity. Herein, the co-assembly of novel chimeric Peptides (conjugates of T7 (HAIYPRH)/t-Lyp-1 (CGNKRTR) Peptides and aurein 1.2 (GLFDIIKKIAESF)) has been explored as a means to produce Glioma theranostics exhibiting combinatorial chemo-phototherapy. Briefly, we have reported here the design and solid phase synthesis of a naive generation of twin-functional peptide drugs incorporating the blood-brain barrier (BBB) and Glioma dual-targeting functionalities along with anti-Glioma activity (G-Anti G and B-Anti G). Additionally, we have addressed their multicomponent co-assembly and explored their potential application as Glioma drug delivery vehicles. Our naive peptide drug-based nanoparticles (NPs) successfully demonstrated a heightened Glioma-specific delivery and anti-Glioma activity. Multicomponent indocyanine green (ICG)-loaded peptide co-assembled NPs (PINPs: with a hydrodynamic size of 348 nm and a zeta-potential of 5 mV) showed enhanced anti-Glioma responses in several cellular assays involving C6 cells. These included a mass demolition with no wound closure (i.e., a 100% cell destruction) and around 63% collaborative chemo-phototoxicity (with both a photothermal and photodynamic effect) after near infrared (NIR) 808 laser irradiation. The dual targeting ability of peptide bioconjugates towards both the BBB and Glioma cells, presents new opportunities for designing tailored and better peptide-based nanostructures or nanophototheranostics for Glioma.

Keywords

References

  1. Nat Chem. 2019 Jan;11(1):86-93 [PMID: 30455432]
  2. Protein Pept Lett. 2011 Sep;18(9):886-97 [PMID: 21443496]
  3. Amino Acids. 2017 May;49(5):975-993 [PMID: 28283907]
  4. Langmuir. 2015;31(1):315-24 [PMID: 25488898]
  5. Sci Rep. 2017 Aug 25;7(1):9485 [PMID: 28842602]
  6. Chem Soc Rev. 2010 Sep;39(9):3394-412 [PMID: 20523948]
  7. Curr Opin Pharmacol. 2019 Aug;47:14-19 [PMID: 30776641]
  8. Nanomaterials (Basel). 2015 Dec 28;6(1): [PMID: 28344260]
  9. ACS Nano. 2014 Feb 25;8(2):1243-53 [PMID: 24422499]
  10. Pharmacol Rev. 2018 Jul;70(3):412-445 [PMID: 29669750]
  11. J Phys Chem B. 2013 Apr 18;117(15):3962-75 [PMID: 23510047]
  12. Chem Soc Rev. 2016 Aug 22;45(17):4690-707 [PMID: 27188322]
  13. Int J Mol Sci. 2018 Oct 25;19(11): [PMID: 30366424]
  14. Chem Soc Rev. 2018 May 21;47(10):3406-3420 [PMID: 29498728]
  15. Molecules. 2019 Jan 19;24(2): [PMID: 30669445]
  16. Biomacromolecules. 2008 Aug;9(8):2244-50 [PMID: 18624454]
  17. Biomacromolecules. 2014 Apr 14;15(4):1171-84 [PMID: 24568678]
  18. Colloids Surf B Biointerfaces. 2005 Dec 20;46(3):152-61 [PMID: 16321511]
  19. Bioconjug Chem. 2021 Sep 15;32(9):2014-2031 [PMID: 34461019]
  20. Pharm Res. 2007 Sep;24(9):1759-71 [PMID: 17619996]
  21. Nanotechnology. 2016 Oct 7;27(40):402002 [PMID: 27578525]
  22. Expert Opin Drug Deliv. 2017 Jun;14(6):811-824 [PMID: 27690671]
  23. J Am Chem Soc. 2012 Mar 28;134(12):5556-9 [PMID: 22420540]
  24. J Am Chem Soc. 2016 Mar 16;138(10):3579-86 [PMID: 26942690]
  25. Biochim Biophys Acta. 2008 Feb;1778(2):357-75 [PMID: 18078805]
  26. Chem Commun (Camb). 2017 Aug 24;53(69):9586-9589 [PMID: 28808707]
  27. Nat Med. 1999 Sep;5(9):1032-8 [PMID: 10470080]
  28. J Photochem Photobiol B. 2022 Mar;228:112407 [PMID: 35189576]
  29. Science. 2012 Feb 17;335(6070):813-7 [PMID: 22344437]
  30. Biophys Chem. 2007 Apr;127(1-2):78-83 [PMID: 17222498]
  31. Int J Mol Sci. 2019 Nov 21;20(23): [PMID: 31766475]
  32. Chem Commun (Camb). 2014 Sep 11;50(70):10133-6 [PMID: 25050628]
  33. Biomaterials. 2013 Jul;34(21):5138-48 [PMID: 23582684]

Grants

  1. BT/13/IYBA/2020/08/Department of Biotechnology
  2. BT/PR36632/NNT/28/1694/2020/Department of Biotechnology

Word Cloud

Created with Highcharts 10.0.0peptidegliomaco-assemblyanti-gliomanaivePeptidecannanostructurespeptidesexploredchemo-phototherapydrugsBBBactivityGdeliverynanoparticlesNPscellspeptide-basedmonomerseitherself-assembleenactingsolo-componentassemblyco-assembleinteractingsuitablepartnersmediateco-assembliesrepresentinnovativeclassmultifunctionalbio-inspiredsupramolecularconstructsresultproductionwidespreadfunctionalstructuralchemicalmultiplicityHereinnovelchimericconjugatesT7HAIYPRH/t-Lyp-1CGNKRTRaurein12GLFDIIKKIAESFmeansproducetheranosticsexhibitingcombinatorialBrieflyreporteddesignsolidphasesynthesisgenerationtwin-functionalincorporatingblood-brainbarrierdual-targetingfunctionalitiesalongG-AntiB-AntiAdditionallyaddressedmulticomponentpotentialapplicationdrugvehiclesdrug-basedsuccessfullydemonstratedheightenedglioma-specificMulticomponentindocyaninegreenICG-loadedco-assembledPINPs:hydrodynamicsize348nmzeta-potential5mVshowedenhancedresponsesseveralcellularassaysinvolvingC6includedmassdemolitionwoundclosureie100%celldestructionaround63%collaborativechemo-phototoxicityphotothermalphotodynamiceffectnearinfraredNIR808laserirradiationdualtargetingabilitybioconjugatestowardspresentsnewopportunitiesdesigningtailoredbetternanophototheranosticsAnti-GliomaActivityAchievedDualBlood-BrainBarrier/GliomaTargetingNaiveChimericPeptides-BasedCo-AssembledNanophototheranosticscombined

Similar Articles

Cited By (1)