Characterisation of neuroprotective efficacy of modified poly-arginine-9 (R9) peptides using a neuronal glutamic acid excitotoxicity model

  • Mol Cell Biochem. 2017 Feb;426(1-2):75-85. doi: 10.1007/s11010-016-2882-z.
Adam B Edwards  1  2  3 Ryan S Anderton  4  5 Neville W Knuckey  4  6  7 Bruno P Meloni  4  6  7
Affiliations
  • 1. Western Australian Neuroscience Research Institute, A Block, 4th Floor, QEII Medical Centre, Verdun St, Nedlands, WA, 6009, Australia. [email protected].
  • 2. School of Health Sciences, The University of Notre Dame Australia, Fremantle, WA, 6160, Australia. [email protected].
  • 3. Department of Neurosurgery, Sir Charles Gardiner Hospital, QEII Medical Centre, Nedlands, WA, 6009, Australia. [email protected].
  • 4. Western Australian Neuroscience Research Institute, A Block, 4th Floor, QEII Medical Centre, Verdun St, Nedlands, WA, 6009, Australia.
  • 5. School of Health Sciences, The University of Notre Dame Australia, Fremantle, WA, 6160, Australia.
  • 6. Centre for Neuromuscular and Neurological Disorders, The University of Western Australia, Nedlands, WA, 6009, Australia.
  • 7. Department of Neurosurgery, Sir Charles Gardiner Hospital, QEII Medical Centre, Nedlands, WA, 6009, Australia.
Abstract

In a recent study, we highlighted the importance of cationic charge and arginine residues for the neuroprotective properties of poly-arginine and arginine-rich peptides. In this study, using cortical neuronal cultures and an in vitro glutamic acid excitotoxicity model, we examined the neuroprotective efficacy of different modifications to the poly-arginine-9 peptide (R9). We compared an unmodified R9 peptide with R9 peptides containing the following modifications: (i) C-terminal amidation (R9-NH2); (ii) N-terminal acetylation (Ac-R9); (iii) C-terminal amidation with N-terminal acetylation (Ac-R9-NH2); and (iv) C-terminal amidation with D-amino acids (R9D-NH2). The three C-terminal amidated peptides (R9-NH2, Ac-R9-NH2, and R9D-NH2) displayed neuroprotective effects greater than the unmodified R9 peptide, while the N-terminal acetylated peptide (Ac-R9) had reduced efficacy. Using the R9-NH2 peptide, neuroprotection could be induced with a 10 min peptide pre-treatment, 1-6 h before glutamic acid insult, or when added to neuronal cultures up to 45 min post-insult. In addition, all peptides were capable of reducing glutamic acid-mediated neuronal intracellular calcium influx, in a manner that reflected their neuroprotective efficacy. This study further highlights the neuroprotective properties of poly-arginine peptides and provides insight into peptide modifications that affect efficacy.

Keywords
Arginine-rich peptides; Cell-penetrating peptides; Cortical neurons; Glutamate excitotoxicity; Neuroprotection; Poly-arginine peptides.
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