Callistus I Iheme, Michael A Mogbonjubola, Blessing K Iwuchukwu, Precious N Alisi, Amarachi U Nkwoada, Chidinma J Okpara, Olusola O Ibeh, Chimdi E Esonu, Venatius C S Ubah, Nneamaka A Chiegboka, Chima K Oguzie, Cosmas O Ujowundu
{"title":"生态良性植物化学功能化银核铁壳双金属纳米颗粒靶向抗氧化和抗炎药物递送。","authors":"Callistus I Iheme, Michael A Mogbonjubola, Blessing K Iwuchukwu, Precious N Alisi, Amarachi U Nkwoada, Chidinma J Okpara, Olusola O Ibeh, Chimdi E Esonu, Venatius C S Ubah, Nneamaka A Chiegboka, Chima K Oguzie, Cosmas O Ujowundu","doi":"10.1186/s13065-025-01640-w","DOIUrl":null,"url":null,"abstract":"<p><p>The etiology of several degenerative diseases is linked to oxidative stress and inflammations. This study presents an eco-benign phytochemically-functionalized Ag-core Fe-shell (Ag@Fe) bimetallic nanoparticles (NPs) for targeted antioxidant and anti-inflammatory drug delivery. The NPs were synthesized, and modified with phytochemicals from the aqueous leaf extract of Costus lucanusianus; subsequently, characterized using advance microscopes and spectroscopes. Atomic force microscope revealed the grain size of 4.54 nm with the total projected area of 95.65% confirming the surface modification of the nanoparticles, and the energy dispersive spectroscope confirmed the strong presences of Ag and Fe. At 500 µg/mL, the NPs and ascorbic acid (standard) demonstrated similar (p < 0.05) antioxidant properties by reducing oxidative stress through the effective scavenging of hydroxyl, and hydrogen peroxide radicals. Similarly, at 500 µg/mL, the anti-inflammatory performance of the NPs, and acetyl salicylic acid (standard) through the inhibition of protein denaturation, heat-induced haemolysis, and scavenging of nitric oxide radicals as 52.90 ± 6.65 and 78.26 ± 4.35; 70.83 ± 2.90 and 82.52 ± 8.43; 56.93 ± 5.18 and 74.65 ± 2.43 respectively; were statistically (p < 0.05) similar; thus, revealing the antioxidant and anti-inflammatory potency of the NPs. The dual functionality of these nanoparticles highlights their potential for therapeutic applications, particularly in managing oxidative stress-related and inflammatory conditions.</p>","PeriodicalId":496,"journal":{"name":"BMC Chemistry","volume":"19 1","pages":"277"},"PeriodicalIF":4.3000,"publicationDate":"2025-10-15","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.ncbi.nlm.nih.gov/pmc/articles/PMC12522365/pdf/","citationCount":"0","resultStr":"{\"title\":\"Eco-benign phytochemically-functionalized Ag-core Fe-shell bimetallic nanoparticles for targeted antioxidant and anti-inflammatory drug delivery.\",\"authors\":\"Callistus I Iheme, Michael A Mogbonjubola, Blessing K Iwuchukwu, Precious N Alisi, Amarachi U Nkwoada, Chidinma J Okpara, Olusola O Ibeh, Chimdi E Esonu, Venatius C S Ubah, Nneamaka A Chiegboka, Chima K Oguzie, Cosmas O Ujowundu\",\"doi\":\"10.1186/s13065-025-01640-w\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>The etiology of several degenerative diseases is linked to oxidative stress and inflammations. This study presents an eco-benign phytochemically-functionalized Ag-core Fe-shell (Ag@Fe) bimetallic nanoparticles (NPs) for targeted antioxidant and anti-inflammatory drug delivery. The NPs were synthesized, and modified with phytochemicals from the aqueous leaf extract of Costus lucanusianus; subsequently, characterized using advance microscopes and spectroscopes. Atomic force microscope revealed the grain size of 4.54 nm with the total projected area of 95.65% confirming the surface modification of the nanoparticles, and the energy dispersive spectroscope confirmed the strong presences of Ag and Fe. At 500 µg/mL, the NPs and ascorbic acid (standard) demonstrated similar (p < 0.05) antioxidant properties by reducing oxidative stress through the effective scavenging of hydroxyl, and hydrogen peroxide radicals. Similarly, at 500 µg/mL, the anti-inflammatory performance of the NPs, and acetyl salicylic acid (standard) through the inhibition of protein denaturation, heat-induced haemolysis, and scavenging of nitric oxide radicals as 52.90 ± 6.65 and 78.26 ± 4.35; 70.83 ± 2.90 and 82.52 ± 8.43; 56.93 ± 5.18 and 74.65 ± 2.43 respectively; were statistically (p < 0.05) similar; thus, revealing the antioxidant and anti-inflammatory potency of the NPs. 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Eco-benign phytochemically-functionalized Ag-core Fe-shell bimetallic nanoparticles for targeted antioxidant and anti-inflammatory drug delivery.
The etiology of several degenerative diseases is linked to oxidative stress and inflammations. This study presents an eco-benign phytochemically-functionalized Ag-core Fe-shell (Ag@Fe) bimetallic nanoparticles (NPs) for targeted antioxidant and anti-inflammatory drug delivery. The NPs were synthesized, and modified with phytochemicals from the aqueous leaf extract of Costus lucanusianus; subsequently, characterized using advance microscopes and spectroscopes. Atomic force microscope revealed the grain size of 4.54 nm with the total projected area of 95.65% confirming the surface modification of the nanoparticles, and the energy dispersive spectroscope confirmed the strong presences of Ag and Fe. At 500 µg/mL, the NPs and ascorbic acid (standard) demonstrated similar (p < 0.05) antioxidant properties by reducing oxidative stress through the effective scavenging of hydroxyl, and hydrogen peroxide radicals. Similarly, at 500 µg/mL, the anti-inflammatory performance of the NPs, and acetyl salicylic acid (standard) through the inhibition of protein denaturation, heat-induced haemolysis, and scavenging of nitric oxide radicals as 52.90 ± 6.65 and 78.26 ± 4.35; 70.83 ± 2.90 and 82.52 ± 8.43; 56.93 ± 5.18 and 74.65 ± 2.43 respectively; were statistically (p < 0.05) similar; thus, revealing the antioxidant and anti-inflammatory potency of the NPs. The dual functionality of these nanoparticles highlights their potential for therapeutic applications, particularly in managing oxidative stress-related and inflammatory conditions.
期刊介绍:
BMC Chemistry, formerly known as Chemistry Central Journal, is now part of the BMC series journals family.
Chemistry Central Journal has served the chemistry community as a trusted open access resource for more than 10 years – and we are delighted to announce the next step on its journey. In January 2019 the journal has been renamed BMC Chemistry and now strengthens the BMC series footprint in the physical sciences by publishing quality articles and by pushing the boundaries of open chemistry.