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Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato

About 45% of the world’s fruit and vegetables are wasted, resulting in postharvest losses and contributing to economic losses ranging from $10 billion to $100 billion worldwide. Soft rot disease caused by Rhizopus stolonifer leads to postharvest storage losses of sweet potatoes. Nanoscience stands a...

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Autores principales: Pang, Lin-Jiang, Adeel, Muhammed, Shakoor, Noman, Guo, Ke-Rui, Ma, Dai-Fu, Ahmad, Muhammad Arslan, Lu, Guo-Quan, Zhao, Mei-Hui, Li, Sheng-E, Rui, Yu-Kui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537040/
https://www.ncbi.nlm.nih.gov/pubmed/34685013
http://dx.doi.org/10.3390/nano11102572
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author Pang, Lin-Jiang
Adeel, Muhammed
Shakoor, Noman
Guo, Ke-Rui
Ma, Dai-Fu
Ahmad, Muhammad Arslan
Lu, Guo-Quan
Zhao, Mei-Hui
Li, Sheng-E
Rui, Yu-Kui
author_facet Pang, Lin-Jiang
Adeel, Muhammed
Shakoor, Noman
Guo, Ke-Rui
Ma, Dai-Fu
Ahmad, Muhammad Arslan
Lu, Guo-Quan
Zhao, Mei-Hui
Li, Sheng-E
Rui, Yu-Kui
author_sort Pang, Lin-Jiang
collection PubMed
description About 45% of the world’s fruit and vegetables are wasted, resulting in postharvest losses and contributing to economic losses ranging from $10 billion to $100 billion worldwide. Soft rot disease caused by Rhizopus stolonifer leads to postharvest storage losses of sweet potatoes. Nanoscience stands as a new tool in our arsenal against these mounting challenges that will restrict efforts to achieve and maintain global food security. In this study, three nanomaterials (NMs) namely C(60), CuO, and TiO(2) were evaluated for their potential application in the restriction of Rhizopus soft rot disease in two cultivars of sweet potato (Y25, J26). CuO NM exhibited a better antifungal effect than C(60) and TiO(2) NMs. The contents of three important hormones, indolepropionic acid (IPA), gibberellic acid 3 (GA-3), and indole-3-acetic acid (IAA) in the infected J26 sweet potato treated with 50 mg/L CuO NM were significantly higher than those of the control by 14.5%, 10.8%, and 24.1%. CuO and C(60) NMs promoted antioxidants in both cultivars of sweet potato. Overall, CuO NM at 50 mg/L exhibited the best antifungal properties, followed by TiO(2) NM and C(60) NM, and these results were further confirmed through scanning electron microscope (SEM) analysis. The use of CuO NMs as an antifungal agent in the prevention of Rhizopus stolonifer infections in sweet potatoes could greatly reduce postharvest storage and delivery losses.
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spelling pubmed-85370402021-10-24 Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato Pang, Lin-Jiang Adeel, Muhammed Shakoor, Noman Guo, Ke-Rui Ma, Dai-Fu Ahmad, Muhammad Arslan Lu, Guo-Quan Zhao, Mei-Hui Li, Sheng-E Rui, Yu-Kui Nanomaterials (Basel) Article About 45% of the world’s fruit and vegetables are wasted, resulting in postharvest losses and contributing to economic losses ranging from $10 billion to $100 billion worldwide. Soft rot disease caused by Rhizopus stolonifer leads to postharvest storage losses of sweet potatoes. Nanoscience stands as a new tool in our arsenal against these mounting challenges that will restrict efforts to achieve and maintain global food security. In this study, three nanomaterials (NMs) namely C(60), CuO, and TiO(2) were evaluated for their potential application in the restriction of Rhizopus soft rot disease in two cultivars of sweet potato (Y25, J26). CuO NM exhibited a better antifungal effect than C(60) and TiO(2) NMs. The contents of three important hormones, indolepropionic acid (IPA), gibberellic acid 3 (GA-3), and indole-3-acetic acid (IAA) in the infected J26 sweet potato treated with 50 mg/L CuO NM were significantly higher than those of the control by 14.5%, 10.8%, and 24.1%. CuO and C(60) NMs promoted antioxidants in both cultivars of sweet potato. Overall, CuO NM at 50 mg/L exhibited the best antifungal properties, followed by TiO(2) NM and C(60) NM, and these results were further confirmed through scanning electron microscope (SEM) analysis. The use of CuO NMs as an antifungal agent in the prevention of Rhizopus stolonifer infections in sweet potatoes could greatly reduce postharvest storage and delivery losses. MDPI 2021-09-30 /pmc/articles/PMC8537040/ /pubmed/34685013 http://dx.doi.org/10.3390/nano11102572 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pang, Lin-Jiang
Adeel, Muhammed
Shakoor, Noman
Guo, Ke-Rui
Ma, Dai-Fu
Ahmad, Muhammad Arslan
Lu, Guo-Quan
Zhao, Mei-Hui
Li, Sheng-E
Rui, Yu-Kui
Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title_full Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title_fullStr Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title_full_unstemmed Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title_short Engineered Nanomaterials Suppress the Soft Rot Disease (Rhizopus stolonifer) and Slow Down the Loss of Nutrient in Sweet Potato
title_sort engineered nanomaterials suppress the soft rot disease (rhizopus stolonifer) and slow down the loss of nutrient in sweet potato
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8537040/
https://www.ncbi.nlm.nih.gov/pubmed/34685013
http://dx.doi.org/10.3390/nano11102572
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