Inhibitory Effects of Extracellular Vesicles Derived from Sargassum serratifolium on Melanogenesis Partially by Suppressing Melanin Transport

Sargassum serratifolium (S. serratifolium), listed in the Food Code, is known for its antioxidant and anti-inflammatory properties and is used in cosmetic applications. However, due to limited industrial utilization and overaccumulation in marine environments, Sargassum has been designated as a marine pollutant by the UN Environment Agency. To improve resource efficiency and reduce environmental burden, this study developed a dual-extraction strategy to isolate extracellular vesicles (EVs) and extract ethanol-soluble substances from the same S. serratifolium biomass. The extracellular vesicles derived from S. serratifolium (SEVs) were isolated and characterized based on their particle size, morphology, concentration, and cargo molecules, including mRNA and proteins. Their antioxidant and anti-inflammatory activities were evaluated using cellular assays, while their effects on melanogenesis and melanosome transport were assessed in B16F10 melanoma cells. Transcriptomic analysis by RNA sequencing was further performed to investigate the molecular pathways involved in SEV-mediated regulation of melanosome transport. SEVs isolation did not affect the yield or biological activity of the S. serratifolium ethanol-soluble fraction. Based on our previous finding that the ethanol extract of S. serratifolium (ESS) suppresses melanin synthesis, the present study focused on investigating the effects and mechanisms of SEVs on melanogenesis and melanosome transport. SEVs were nanoscale vesicles containing mRNA and proteins and showed antioxidant and anti-inflammatory effects in cellular assays. Although SEVs did not reduce melanin production in B16F10 cells, they significantly inhibited melanosome transport. RNA sequencing suggested that SEVs regulated melanosome transport through pathways related to the extracellular matrix, actin filament organization, and calcium ion homeostasis. These findings suggest that SEVs exert anti-melanogenic effects by targeting melanosome transport, providing a complementary mechanism to the previously reported inhibition of melanin synthesis by ESS. These findings demonstrate a sustainable strategy for producing functional EVs and bioactive extracts from a single S. serratifolium biomass source and support their potential use in cosmetic or therapeutic applications targeting hyperpigmentation.

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Journal
Marine Drugs
Published
2026-09-30
DOI
https://doi.org/10.3390/md24100344
Primary Topic
Extracellular vesicles in disease
Type
article
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article

Inhibitory Effects of Extracellular Vesicles Derived from Sargassum serratifolium on Melanogenesis Partially by Suppressing Melanin Transport

Seonhwa Hwang, Su-Yeon Park, Bonggi Lee, Sung‐Han Jo et al.
Marine Drugs
Extracellular vesicles in disease
article

Inhibitory Effects of Extracellular Vesicles Derived from Sargassum serratifolium on Melanogenesis Partially by Suppressing Melanin Transport

Seonhwa Hwang, Su-Yeon Park, Bonggi Lee, Sung‐Han Jo, Min‐Sup Lee, Hyeung‐Rak Kim, Won‐Kyo Jung, Min Hi Park, Hyeon Hak Jeong, Ji Young Hwang, Jaeseong Seo, Ah-Reum Kim, Sang-Hyug Park, Kyoung Mi Moon
article en

Abstract

Sargassum serratifolium (S. serratifolium), listed in the Food Code, is known for its antioxidant and anti-inflammatory properties and is used in cosmetic applications. However, due to limited industrial utilization and overaccumulation in marine environments, Sargassum has been designated as a marine pollutant by the UN Environment Agency. To improve resource efficiency and reduce environmental burden, this study developed a dual-extraction strategy to isolate extracellular vesicles (EVs) and extract ethanol-soluble substances from the same S. serratifolium biomass. The extracellular vesicles derived from S. serratifolium (SEVs) were isolated and characterized based on their particle size, morphology, concentration, and cargo molecules, including mRNA and proteins. Their antioxidant and anti-inflammatory activities were evaluated using cellular assays, while their effects on melanogenesis and melanosome transport were assessed in B16F10 melanoma cells. Transcriptomic analysis by RNA sequencing was further performed to investigate the molecular pathways involved in SEV-mediated regulation of melanosome transport. SEVs isolation did not affect the yield or biological activity of the S. serratifolium ethanol-soluble fraction. Based on our previous finding that the ethanol extract of S. serratifolium (ESS) suppresses melanin synthesis, the present study focused on investigating the effects and mechanisms of SEVs on melanogenesis and melanosome transport. SEVs were nanoscale vesicles containing mRNA and proteins and showed antioxidant and anti-inflammatory effects in cellular assays. Although SEVs did not reduce melanin production in B16F10 cells, they significantly inhibited melanosome transport. RNA sequencing suggested that SEVs regulated melanosome transport through pathways related to the extracellular matrix, actin filament organization, and calcium ion homeostasis. These findings suggest that SEVs exert anti-melanogenic effects by targeting melanosome transport, providing a complementary mechanism to the previously reported inhibition of melanin synthesis by ESS. These findings demonstrate a sustainable strategy for producing functional EVs and bioactive extracts from a single S. serratifolium biomass source and support their potential use in cosmetic or therapeutic applications targeting hyperpigmentation.

Marine DrugsVol. 24(10)
Kyungsung University (KR), Louisiana State University (US), Konyang University (KR), Louisiana State University Health Sciences Center Shreveport (US), Pukyong National University (KR)
Decent work and economic growth
Openalex Percentile: Top 20%
Extracellular vesicles in disease
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