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    Item type:Publication,
    Bee pollen peptides as potent tyrosinase inhibitors with anti-melanogenesis effects in murine b16f10 melanoma cells and zebrafish embryos
    (2024-12-01)
    Sangtanoo, Papassara
    ;
    Srimongkol, Piroonporn
    ;
    Saisavoey, Tanatorn
    ;
    Puthong, Songchan
    ;
    Buakeaw, Anumart
    One important functional food ingredient today, valued for its health properties and ability to prevent disease, is bee pollen, which comprises a combination of nectar, pollen from plants, and the secretions of bees. In this research, the tyrosinase (TYR) inhibiting abilities of the peptides derived from bee pollen protein hydrolysates are investigated. Various proteases were utilized to generate these peptides, followed by testing at different concentrations. Tyrosinase inhibition activity was detected in all cases, while the hydrolysate drawn from 5.0% w/v neutrase exhibited the best IC<inf>50</inf> value and was thus investigated further via ultrafiltration to separate the active fractions. The highest potential for tyrosinase inhibition was recorded for the fractions below 0.65 kDa. Subsequent purification steps via SEC and RP-HPLC led to the identification of the VDGYPAAGY (named VY-9) peptide via LC-Q-TOF-MS/MS in fraction F<inf>1–2</inf>, known for its non-toxic and hydrophobic characteristics albeit poor water solubility. The synthesized VY-9 peptide demonstrated competitive inhibition, with IC<inf>50</inf> values of 0.55 ± 0.03 µM for mono-phenolase and 2.54 ± 0.06 µM for di-phenolase activities, as confirmed by molecular docking analysis revealing dominant hydrogen bond interactions with TYR. Effective concentrations of 0.2–1.6 µM of VY-9 showed negligible cytotoxicity in B16F10 cells. Melanin synthesis suppression was examined via qRT-PCR, and western blot in MITF, TYR, TRP-1, and TRP-2. Cell death in zebrafish embryos was evaluated in vivo using a toxicity assay which revealed no significant influence from VY-9, while anti-melanogenic effects were observed when the concentration was 4 µM, suggesting bee pollen-derived peptides’ potential in cosmetic and pharmaceutical depigmentation applications.
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    Item type:Publication,
    Optimization, isolation, identification and molecular mechanisms in B16F10 melanoma cells of a novel tyrosinase inhibitory peptide derived from split gill mushrooms
    (2024-10-01)
    Arnamwong, Sarinya
    ;
    Kuptawach, Kittisak
    ;
    Sangtanoo, Papassara
    ;
    Srimongkol, Piroonporn
    ;
    Saisavoey, Tanatorn
    Hyperpigmentation often arises from an imbalance in melanogenesis, primarily due to the overexpression of tyrosinase (TYR). While the inhibition of TYR presents a common approach to skin whitening, it can lead to undesirable side effects. Thus, there is growing interest in safe and natural alternatives for TYR inhibition. Bioactive compounds and peptides sourced from split gill mushrooms hold promise in this regard. This study aims to optimize the conditions for papain-mediated hydrolysis of split gill mushroom protein to inhibit TYR activity, utilizing response surface methodology (RSM) and central composite design (CCD). Optimal conditions were determined at a temperature of 46.70 °C, a hydrolysis time of 217.09 min, and an enzyme-to-substrate ratio (E/S) of 1.1%. Under these conditions, the resulting hydrolysates exhibited significant TYR inhibition, with an IC<inf>50</inf> value of 117.86 μg/mL and a degree of hydrolysis (DH) of 87.97%. Further purification via ultrafiltration and RP-HPLC yielded a peptide, Tyr-Ala-Ser-Ile-Leu-Leu (YASILL or YL-6), identified through LC-Q-TOF-MS/MS, which competitively inhibited TYR. YL-6 demonstrated an IC<inf>50</inf> value of 3.97 mM for mono-phenolase activity and 6.75 mM for di-phenolase activity. Molecular docking analysis revealed hydrogen bonds and hydrophobic interactions between TYR and YL-6. Treatment of B16F10 cells with YL-6 across concentrations ranging from 10-3000 μM showed no cytotoxic effects.The inhibition of melanin synthesis was investigated via qRT-PCR along with Western blot in MITF, TYR, TRP-1, and TRP-2. The results obtained in this research may prove significant in guiding the development of commercially viable cosmetic products to whiten the skin.
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    Item type:Publication,
    Synechococcus marine microalgae peptide: Melanogenesis inhibition in cellular and zebrafish models
    (2024-08-01)
    Srimongkol, Piroonporn
    ;
    Sangtanoo, Papassara
    ;
    Saisavoey, Tanatorn
    ;
    Puthong, Songchan
    ;
    Buakeaw, Anumart
    In this study, the AILQSYSAGKTK (named AK-12) peptide, also known as AK-12, from the Synechococcus marine microalgae cell extract is examined to determine the mechanism by which tyrosinase inhibition takes place. According to the docking simulation, it is expected that the peptides bind and interact at the tyrosinase active site, with the potential to support the inhibition of tyrosinase. For testing, the required peptides were first synthesized, before the results revealed tyrosinase inhibitory activity for which the respective IC<inf>50</inf> values for mono- and di-phenolase activities were 489.71 ± 0.01 μM, and 765.57 ± 0.01 μM. The characteristics of the different competitive types were shown in a Lineweaver-Burk plot. For the treatment of B16F10 cells, peptide concentrations of 50–400 μM were selected, confirming the absence of cytotoxicity. When the peptide was introduced, both tyrosinase activity and the production of melanin were significantly inhibited. Quantitative reverse transcription polymerase chain reaction (qRT-PCR) was then used to assess the suppression of melanin synthesis in MITF (microphthalmia-associated transcription factor, TYR (tyrosinase), TRP-1 (tyrosinase-related protein-1) and TRP-2 (tyrosinase-related protein-2). An in vivo toxicity assay was also carried out to evaluate zebrafish embryo cell death, revealing that AK-12 did not significantly affect cell death, while strong anti-melanogenic activity was observed for the concentration of 50 μM. From these findings it could be concluded that the peptide in question may offer potential in future hyperpigmentation treatments.