Neuroprotective Effect Of Peptide Fractions from Chia (Salvia hispanica) on H2O2-Induced Oxidative Stress-Mediated Neuronal Damage on N1E-115 Cell Line

Neurochemical Research - Tập 45 - Trang 2278-2285 - 2020
Edwin E. Martínez Leo1, Maira R. Segura Campos1
1Facultad de Ingenieria Quimica, Universidad Autonoma de Yucatan, Merida, Mexico

Tóm tắt

Neurodegenerative diseases (ND) affect around a billion people worldwide. Oxidative stress plays a critical role in the activation of neuronal death mechanisms, implicated in the ND etiology. In the present research, the neuroprotective effect of the S. hispanica protein derivatives is evaluated, on neuronal cells N1E-115, after the damage induction with H2O2. From the protein-rich fraction of S. hispanica, three peptide fractions were obtained (3–5, 1–3 y < 1 kDa) and its neuroprotective effect on neuronal cells N1E-115 was evaluated, through the antioxidant pathway. In the toxicity assay, the peptide fractions showed viability greater than 90%. When N1E-115 cells were incubated with 100 µM H2O2, fractions 1–3 and < 1 kDa, presented cell viability of 66.64% ± 3.2 and 67.32% ± 2.8, respectively. Fractions 1–3 and < 1 kDa reduced by 41.73% ± 3.2 and 40.87% ± 2.8, respectively, the ROS production compared to the control, without significant statistical difference between both fractions (p < 0.05), while F3–5 kDa, only reduced the ROS production by 21.95% ± 2.4. The protective effect observed in the < 3 kDa fractions could be associated with its antioxidant activity, which represents an important study target.

Tài liệu tham khảo

WHO. (2017) Noncommunicable diseases progress monitor, 2017. World Health Organization, Geneva. Licence: CC BY-NC-SA 3.0 IGO. https://apps.who.int/iris/bitstream/handle/10665/258940/9789241513029-eng.pdf?sequence=1. National Institute of Neurological Disorders and Stroke. (2017) Neurodegenerative diseases. https://www.ninds.nih.gov/Current-Research/Focus-Disorders/Alzheimers-Related-Dementias.Accessed 28 Jan 2019 Chen W, Zhang X, Huang W (2016) Role of neuroinflammation in neurodegenerative diseases. Mol Med Rep 13:3391–3396 Hong H, Kim BS, Im H (2016) Pathophysiological role of neuroinflammation in neurodegenerative diseases and psychiatric disorders. Int Neurourol J 20:S2–7 Wang X, Michaelis EK (2010) Selective neuronal vulnerability to oxidative stress in the brain. Front Aging Neurosci 2:12. https://doi.org/10.3389/fnagi.2010.00012 Hetz C, Saxena S (2017) ER stress and the unfolded protein response in neurodegeneration. Nature Rev Neurol 13:477–491 Holtman IR, Raj DD, Miller JA, Schaafsma W, Yin Z, Brouwer N et al (2015) Induction of a common microglia gene expression signature by aging and neurodegenerative conditions: a co-expression meta-analysis. Acta Neuropathol Commun 3:1–18 Zhang S, Tang M, Luo H, Shi C, Xu Y (2017) Necroptosis in neurodegenerative diseases: a potential therapeutic target. Cell Death Dis 8:e2905 Giordano C, Marchiò M, Timofeeva E, Biagini G (2014) Neuroactive peptides as putative mediators of antiepileptic ketogenic diets. Front Neurol 29(5):63 Meloni B, Milani D, Edwards A, Anderton R et al (2015) Neuroprotective peptides fused to arginine-rich cell penetrating peptides: neuroprotective mechanism likely mediated by peptide endocytic properties. Pharmacol Ther. https://doi.org/10.1016/j.pharmthera.2015.06.002 Hsu KC (2010) Purification of antioxidative peptides prepared from enzymatic hydrolysates of tuna dark muscle by-product. Food Chem 122:42–48 Ashur-Fabian O, Segal-Ruder Y, Skutelsky E, Brenneman DE, Steingart RA, Giladi E, Gozes I (2003) The neuroprotective peptide NAP inhibits the aggregation of the beta-amyloid peptide. Peptides 24:1413–1423 Banks WA (2015) Peptides and the blood–brain barrier. Peptides 72:16–19 Mohd AN, Yeap SK, Ho WY, Beh BK, Tan SW, Tan SG (2012) The promising future of chia Salvia hispanica L. J Biomed Biotechnol. https://doi.org/10.1155/2012/171956 Lopresti A (2017) Salvia (Sage): a review of its potential cognitive-enhancing and protective effects. Drugs R D 17:53–64 Orona D, Valverde M, Nieto B, Paredes O (2015) Inhibitory activity of chia (Salvia hispanica L.) protein fractions against angiotensin I-converting enzyme and antioxidant capacity. LWT-Food Sci Technol 64:236–242 Chim Y, Gallegos S, Jimenez C, Dávila G, Chel L (2017) Antioxidant capacity of Mexican chia (Salvia hispanica L.) protein hydrolyzates. J Food Meas Charact 12:323–331 Grancieri M, Duarte H, Gonzalez E (2019) Chia seed (Salvia hispanica L.) as a source of proteins and bioactive peptides with health benefits: a review. Compr Rev Food Sci F. https://doi.org/10.1111/1541-4337.12423 Segura-Campos M, Peralta F, Chel L, Betancur D (2013) Angiotensin I-converting enzyme inhibitory peptides of chia (Salvia hispanica) Produced by Enzymatic Hydrolysis. Int J Food Sci. https://doi.org/10.1155/2013/158482 AOAC (1997) Association of official analytical chemists, official methods of analysis, 20th edn. AOAC, Washington Martínez-Leo E, Martín A, Acevedo J, Moo R, Segura-Campos M (2019) Peptides from Mucuna pruriens L., with protection and antioxidant in vitro effect on HeLa cell line. J Sci Food Agri. https://doi.org/10.1002/jsfa.9649 Lowry OH, Rosebrough NJ, Farr L, Randall RJ (1951) Protein measurement with the Folin phenol reagent. J Biol Chem 193:267–275 Sharma OP, Bhat TK (2009) DPPH antioxidant assay revisited. Food Chem 113:1202–1205. https://doi.org/10.1016/j.foodchem.2008.08.008 Sosa I, Laviada H, Chel L, Ortiz R, Betancur D (2018) Inhibitory effect of peptide fractions derivatives from chia (Salvia hispanica) hydrolysis against α-amylase and α-glucosidase enzymes. Nutri hosp 35:928–935 Willett W, Rockström J, Loken B, Springmann M, Lang T et al (2019) Food in the anthropocene: the EAT–Lancet Commission on healthy diets from sustainable food systems. Lancet 393:447–492 López D, Galante M, Raimundo G, Spelzini D, Boeris V (2018) Functional properties of amaranth, quinoa and chia proteins and the biological activities of their hydrolyzates. Food Res Int. https://doi.org/10.1016/j.foodres.2018.08.056 Chan I, Arana V, Torres J, Segura-Campos M (2019) Anti-inflammatory effects of the protein hydrolysate and peptide fractions isolated from Salvia hispanica L. seeds. Food Agri Immunol 30:786–803 Gong J, Ju A, Zhou D, Li D, Zhou W et al (2015) Salvianolic acid Y: a new protector of PC12 cells against hydrogen peroxide-induced injury from salvia officinalis. Molecules 20:683–692 Shaerzadeh F, Alamdary SZ, Esmaeili M, Sarvestani N, Khodagholi F (2011) Neuroprotective effect of Salvia sahendica is mediated by restoration of mitochondrial function and inhibition of endoplasmic reticulum stress. Neurochem Res 36:2216–2226 Wang S, Wang D, Wang R (2008) Neuroprotective activities of enzymatically hydrolyzed peptides from porcine hide gelatin. Int J Clin Exp Med 1:283–293 Lee SJ, Kim E, Hwang J, Kim C, Choi D et al (2010) Neuroprotective effect of Hericium erinaceum against oxidative stress on PC12 cells. J Korean Soc Appl Biol Chem 53:283–289 Li W, Zhao T, Zhang J, Wu C, Zhao M, Su G (2016) Comparison of neuroprotective and cognition-enhancing properties of hydrolysates from soybean, walnut, and peanut protein. J Chem. https://doi.org/10.1155/2016/9358285 Lee S, Hur S (2019) Mechanisms of neuroprotective effects of peptides derived from natural materials and their production and assessment. Compr Rev Food Sci F. https://doi.org/10.1111/1541-4337.12451 Zhang L, Yu H, Sun Y, Lin X, Chen B, Tan C, Cao G, Wang Z (2007) Protective effects of salidroside on hydrogen peroxide-induced apoptosis in SH-SY5Y human neuroblastoma cells. Eur J Pharmacol 564:18–25 Dave L, Hayes M, Mora L, Montoya C, Moughan P, Rutherfurd S (2016) Gastrointestinal endogenous protein-derived bioactive peptides: an in vitro study of their gut modulatory potential. Int J Mol Sci 17:1–23 Venuprasad MP, Kumar K, Khanum F (2013) Neuroprotective effects of hydroalcoholic extract of Ocimum sanctum against H2O2 induced neuronal cell damage in SH-SY5Y cells via its antioxidative defence mechanism. Neurochem Res 38:2190–2200 Chen J, Cui C, Zhao H, Wang H, Zhao M, Wang W, Dong K (2018) The effect of high solid concentrations on enzymatic hydrolysis of soya bean protein isolate and antioxidant activity of the resulting hydrolysates. Int J Food SciTechnol 53:954–961 Harnedy PA, O’Keeffe MB, Fitzgerald RJ (2017) Fractionation and identification of antioxidant peptides from an enzymatically hydrolysed Palmaria palmata protein isolate. Food Res Int 100:416–422 Torres-Fuentes C, Contreras MDM, Recio I, Alaiz M, Vioque J (2015) Identification and characterization of antioxidant peptides from chickpea protein hydrolysates. Food Chem 180:194–202 Zou TB, He TP, Li HB, Tang HW, Xia EQ (2016) The Structureactivity relationship of the antioxidant peptides from natural proteins. Molecules 21:72