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Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae)

Yıl 2025, Cilt: 8 Sayı: 4, 1076 - 1086, 15.07.2025
https://doi.org/10.34248/bsengineering.1657985

Öz

The aim of this study was to synthesise silver nanoparticles (AgNPs) from horse chestnut organic wastes (kernel and shell) by phytosynthesis and to investigate the larvicidal activity of the obtained nanoproducts. In the characterisation tests (UV-Vis, FTIR, XRD, SEM, STEM, EDS), the physico-chemical structure of the synthesised AgNPs was clearly obtained. In order to determine the larvicidal activity of the synthesised AgNPs, topical application of four different doses of AgNPs (50, 100, 150 and 200 ppm) on second and fourth instar larvae of Indian meal moth (P. interpunctella) was carried out at two different temperatures (28-32 °C). The highest larvicidal activity was observed at the end of the fourth day, at the highest application dose (200 ppm), at 32 °C and in the nanoproduct obtained from the kernel (99% mortality rate for second instar larvae and 92% mortality rate for fourth instar larvae). It was observed that second instar larvae were more sensitive to AgNPs compared to fourth instar larvae, and as the applied temperature increased, the concentration values required for lethal effect and the exposure times required for killing decreased. According to the larvicidal activity data obtained, it was determined that the type of extract used in the synthesis, the temperature of the environment selected for application, the dose amounts applied and the exposure time are very important in this type of nano-insecticidal studies.

Etik Beyan

Ethics committee approval is not required for this study due to the use of research materials that are not defined as experimental animals (Scientific and Technological Research Council of Türkiye, Animal Experiments Local Ethics Committee Directive, 2018, Article 3-c).

Teşekkür

I would like to thank Dr. Ferda Eser for her help in performing FTIR analyses of two AgNPs samples synthesised from two different extracts and the valuable experts and managers of the Black Sea Advanced Technology Research and Application Centre (KITAM) for the careful characterisation analyses (XRD, SEM, STEM and EDS) of both AgNPs.

Kaynakça

  • Abarca M, Lill JT, Weiss MR. 2020. Host plant and thermal stress induce supernumerary instars in caterpillars. Environ Entomol, 49(1): 123-131.
  • Abbood NM, Ali ST. 2020. The role of silver nanoparticles and some extracts of damas Conocarpus lancifolius in controlling stored dates moth Ephestia cautella (Walker). Plant Arch, 20(1): 3301-3305.
  • Abbott WS. 1925. A method of computing the effectiveness of an insecticide. J Econ Entomol, 18(2): 265-267.
  • Adetunji CO, Oloke JK (Eds.). 2024. Handbook of Agricultural Biotechnology, Volume 1: Nanopesticides. John Wiley & Sons, Hoboken, NJ, USA, pp: 125-134.
  • Ali IAM, Ahmed AB, Al-Ahmed HI. 2023. Green synthesis and characterization of silver nanoparticles for reducing the damage to sperm parameters in diabetic compared to metformin. Sci Rep, 13(1): 2256.
  • Anees MM, Patil SB, Kambrekar DN, Chandrashekhar SS, Jahagirdar S. 2022. Biosynthesis, characterization, evaluation, and shelf-life study of silver nanoparticles against cotton bollworm, Helicoverpa armigera (Hubner) (Noctuidae: Lepidoptera). Nanomaterials, 12(19): 3511.
  • Attia FI, Shipp E, Shanahan GJ. 1981. Inheritance of resistance to malathion, DDT and dieldrin in Plodia interpunctella (Lepidoptera: Pyralidae). J Stored Prod Res, 17(3): 109-115.
  • Benelli G, Caselli A, Canale A. 2017. Nanoparticles for mosquito control: Challenges and constraints. J King Saud Univ Sci, 29(4): 424-435.
  • Bharani RA, Namasivayam SKR. 2017. Biogenic silver nanoparticles mediated stress on developmental period and gut physiology of major lepidopteran pest Spodoptera litura (Fab.) (Lepidoptera: Noctuidae)—An eco-friendly approach of insect pest control. J Environ Chem Eng, 5(1): 453-467.
  • Chand K, Cao D, Fouad DE, Shah AH, Dayo AQ, Zhu K, Dong S. 2020. Green synthesis, characterization and photocatalytic application of silver nanoparticles synthesized by various plant extracts. Arab J Chem, 13(11): 8248-8261.
  • Chellappandian M, Vasantha-Srinivasan P, Senthil-Nathan S, Karthi S, Thanigaivel A, Ponsankar A, Hunter WB. 2018. Botanical essential oils and uses as mosquitocides and repellents against dengue. Environ Int, 113: 214-230.
  • Čukanović J, Tešević V, Jadranin M, Ljubojević M, Mladenović E, Kosti S. 2020. Horse chestnut (Aesculus hippocastanum L.) seed fatty acids, flavonoids and heavy metals plasticity to different urban environments. Biochem Syst Ecol, 89: 103980.
  • Çolak H, Karaköse E, Duman F. 2017. High optoelectronic and antimicrobial performances of green synthesized ZnO nanoparticles using Aesculus hippocastanum. Environ Chem Lett, 15: 547-552.
  • Demirezen DA, Yılmaz S, Yılmaz DD. 2018. Green synthesis and characterization of iron nanoparticles using Aesculus hippocastanum seed extract. Int J Adv Sci Eng Technol, 6(2): 25-29.
  • Devi GD, Murugan K, Selvam CP. 2014. Green synthesis of silver nanoparticles using Euphorbia hirta (Euphorbiaceae) leaf extract against crop pest of cotton bollworm, Helicoverpa armigera (Lepidoptera: Noctuidae). J Biopestic, 7: 54.
  • Elma F, Çetin H, Yorgancılar M, Acar R. 2021. Detection of metabolite content in local bitter white lupin seeds (Lupinus albus L.) and acaricidal and insecticidal effect of its seed extract. J Agric Sci, 27(4): 407-413.
  • El-Samad LM, Bakr NR, El-Ashram S, Radwan EH, Aziz KKA, Hussein HK, Hassan MA. 2022. Silver nanoparticles instigate physiological, genotoxicity, and ultrastructural anomalies in midgut tissues of beetles. Chem Biol Interact, 367: 110166.
  • Esan V, Elanchezhiyan C, Mahboob S, Al-Ghanim KA, Al-Misned F, Ahmed Z, Marimuthu G. 2022. Toxicity of Trewia nudiflora-mediated silver nanoparticles on mosquito larvae and non-target aquatic fauna. Toxin Rev, 41(1): 229-236.
  • Ghaedi F, Abbasipour H, Karimi J. 2024. Effect of critical temperatures on mortality and cuticle composition of Plodia interpunctella larvae: Insights from GC–MS analysis and SEM imaging. J Asia Pac Entomol, 27(3): 102309.
  • Gibbs AG. 2011. Thermodynamics of cuticular transpiration. J Insect Physiol, 57(8): 1066-1069.
  • Gołębiowski M. 2012. Comparison of free fatty acids composition of cuticular lipids of Calliphora vicina larvae and pupae. Lipids, 47(10): 1001-1009.
  • Gurunathan S, Park JH, Han JW, Kim JH. 2022. Comparative assessment of the apoptotic potential of silver nanoparticles synthesized by Bacillus tequilensis and Calocybe indica in MDA-MB-231 human breast cancer cells: Targeting p53 for anticancer therapy [Corrigendum]. Int J Nanomed, 17: 5207-5208.
  • Hazaa M, Alm-Eldin M, Ibrahim AE, Elbarky N, Salama M, Sayed R, Sayed W. 2021. Biosynthesis of silver nanoparticles using Borago officinalis leaf extract, characterization and larvicidal activity against cotton leaf worm, Spodoptera littoralis (Bosid). Int J Trop Insect Sci, 41: 145-156.
  • Hu D, Gao T, Kong X, Ma N, Fu J, Meng L, Latif S. 2022. Ginger (Zingiber officinale) extract mediated green synthesis of silver nanoparticles and evaluation of their antioxidant activity and potential catalytic reduction activities with Direct Blue 15 or Direct Orange 26. PLoS One, 17(8): e0271408.
  • Ituen E, Ekemini E, Yuanhua L, Singh A. 2020. Green synthesis of Citrus reticulata peels extract silver nanoparticles and characterization of structural, biocide and anticorrosion properties. J Mol Struct, 1207: 127819.
  • Jafir M, Ahmad JN, Arif MJ, Ali S, Ahmad SJN. 2021. Characterization of Ocimum basilicum synthesized silver nanoparticles and its relative toxicity to some insecticides against tobacco cutworm, Spodoptera litura Feb. (Lepidoptera: Noctuidae). Ecotoxicol Environ Saf, 218: 112278.
  • Kędzierski B, Kukula-Koch W, Widelski J, Głowniak K. 2016. Impact of harvest time of Aesculus hippocastanum seeds on the composition, antioxidant capacity and total phenolic content. Ind Crops Prod, 86: 68-72.
  • Kiani BH, Arshad I, Najeeb S, Okla MK, Almanaa TN, Al-Qahtani WH, Abdel-Maksoud MA. 2023. Evaluation of biogenic silver nanoparticles synthesized from vegetable waste. Int J Nanomed, 18: 6527-6544.
  • Kumar P, Kumar D, Kumar V, Chauhan RPS, Singh H. 2022. Mosquito larvicidal potential of Solanum xanthocarpum leaf extract derived silver nanoparticles and its bio-toxicity on non-target aquatic organism. J Vector Borne Dis, 59(3): 216-227.
  • Kumar R. 2017. Insect pests of stored grain: Biology, behavior, and management strategies. Apple Academic Press, Oakville, ON, Canada, Chapter 4: 61-86.
  • Küp FÖ, Çoşkunçay S, Duman F. 2020. Biosynthesis of silver nanoparticles using leaf extract of Aesculus hippocastanum (horse chestnut): Evaluation of their antibacterial, antioxidant and drug release system activities. Mater Sci Eng C, 107: 110207.
  • Lack HW. 2002. The discovery and rediscovery of the horse chestnut. Arnoldia, 61(4): 15-19.
  • Lee RE. 2010. A primer on insect cold-tolerance. In: Low Temperature Biology of Insects, Denlinger DL, Lee RE (Eds.). Cambridge University Press, Cambridge, UK, pp: 3-34.
  • Li H, Wen T, Wang T, Ji Y, Shen Y, Chen J, Wu X. 2020. In vivo metabolic response upon exposure to gold nanorod core/silver shell nanostructures: Modulation of inflammation and upregulation of dopamine. Int J Mol Sci, 21(2): 384.
  • Mahdi ZS, Hashim IH, Jassim NM. 2024. Bactericidal effects of silver nanoparticles prepared by green synthesis. Mustansiriyah J Pure Appl Sci, 2(4): 1-6.
  • Marcu Spinu S, Dragoi Cudalbeanu M, Avram I, Fierascu RC, Rosu PM, Morosanu AM, Ortan A. 2024. Antibacterial and antitumoral potentials of phytosynthesized silver/silver oxide nanoparticles using tomato flower waste. Int J Mol Sci, 25(18): 9871.
  • Martínez G, Merinero M, Perez-Aranda M, Perez-Soriano E, Ortiz T, Villamor E, Alucida A. 2020. Environmental impact of nanoparticles’ application as an emerging technology: A review. Materials, 14(1): 166.
  • Morejón B, Pilaquinga F, Domenech F, Ganchala D, Debut A, Neira M. 2018. Larvicidal activity of silver nanoparticles synthesized using extracts of Ambrosia arborescens (Asteraceae) to control Aedes aegypti L. (Diptera: Culicidae). J Nanotechnol, 2018(1): 6917938.
  • Nasir MF, Ulrichs C, Prozell S, Schöller M. 2017. Laboratory studies on parasitism of Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae) by two species of Trichogramma Westwood (Hymenoptera: Trichogrammatidae) in different grains, and evaluation of traps for their monitoring. J Stored Prod Res, 74: 6-12.
  • Nie P, Zhao Y, Xu H. 2023. Synthesis, applications, toxicity and toxicity mechanisms of silver nanoparticles: A review. Ecotoxicol Environ Saf, 253: 114636.
  • Owczarek-Januszkiewicz A, Kicel A, Olszewska MA. 2023. Aesculus hippocastanum in the pharmaceutical industry and beyond – Phytochemistry, bioactivity, present application, and future perspectives. Ind Crops Prod, 193: 116187.
  • Panda P, Chakraborty S, Krishna SBN. 2023. The use of silver nanoparticles in environmental remediation. Preprints Org, 2023010330.
  • Parthiban E, Ramachandran M, Jayakumar M, Ramanibai R. 2019. Biocompatible green synthesized silver nanoparticles impact on insecticides resistant developing enzymes of dengue transmitted mosquito vector. SN Appl Sci, 1: 1-9.
  • Pretty J, Pervez Bharucha Z. 2015. Integrated pest management for sustainable intensification of agriculture in Asia and Africa. Insects, 6(1): 152-182.
  • Prvulović D, Gvozdenac S, Latković D, Peić Tukuljac M, Sikora V, Kiprovski B, Ovuka J. 2023. Phytotoxic and insecticidal activity of industrial hemp (Cannabis sativa L.) extracts against Plodia interpunctella Hübner—A potential sunflower grain protectant. Agronomy, 13(10): 2456.
  • Rehman HU, Majee B, Farooqi MA, Rasul A, Sagheer M, Ali Q, Akhtar ZR. 2021. Green synthesis of silver nitrate nanoparticles from Camelina sativa (L.) and its effect to control insect pests of stored grains. Int J Trop Insect Sci, pp: 1-9.
  • Roni M, Murugan K, Panneerselvam C, Subramaniam J, Nicoletti M, Madhiyazhagan P, Dinesh D, Suresh U, Khater HF, Wei H, Canale A, Alarfaj AA, Munusamy MA, Higuchi A, Benelli G. 2015. Characterization and biotoxicity of Hypnea musciformis-synthesized silver nanoparticles as potential eco-friendly control tool against Aedes aegypti and Plutella xylostella. Ecotoxicol Environ Saf, 121: 31-38.
  • Salayová A, Bedlovičová Z, Daneu N, Baláž M, Lukáčová Bujňáková Z, Balážová Ľ, Tkáčiková Ľ. 2021. Green synthesis of silver nanoparticles with antibacterial activity using various medicinal plant extracts: Morphology and antibacterial efficacy. Nanomaterials, 11(4): 1005.
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Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae)

Yıl 2025, Cilt: 8 Sayı: 4, 1076 - 1086, 15.07.2025
https://doi.org/10.34248/bsengineering.1657985

Öz

The aim of this study was to synthesise silver nanoparticles (AgNPs) from horse chestnut organic wastes (kernel and shell) by phytosynthesis and to investigate the larvicidal activity of the obtained nanoproducts. In the characterisation tests (UV-Vis, FTIR, XRD, SEM, STEM, EDS), the physico-chemical structure of the synthesised AgNPs was clearly obtained. In order to determine the larvicidal activity of the synthesised AgNPs, topical application of four different doses of AgNPs (50, 100, 150 and 200 ppm) on second and fourth instar larvae of Indian meal moth (P. interpunctella) was carried out at two different temperatures (28-32 °C). The highest larvicidal activity was observed at the end of the fourth day, at the highest application dose (200 ppm), at 32 °C and in the nanoproduct obtained from the kernel (99% mortality rate for second instar larvae and 92% mortality rate for fourth instar larvae). It was observed that second instar larvae were more sensitive to AgNPs compared to fourth instar larvae, and as the applied temperature increased, the concentration values required for lethal effect and the exposure times required for killing decreased. According to the larvicidal activity data obtained, it was determined that the type of extract used in the synthesis, the temperature of the environment selected for application, the dose amounts applied and the exposure time are very important in this type of nano-insecticidal studies.

Etik Beyan

Ethics committee approval is not required for this study due to the use of research materials that are not defined as experimental animals (Scientific and Technological Research Council of Türkiye, Animal Experiments Local Ethics Committee Directive, 2018, Article 3-c).

Teşekkür

I would like to thank Dr. Ferda Eser for her help in performing FTIR analyses of two AgNPs samples synthesised from two different extracts and the valuable experts and managers of the Black Sea Advanced Technology Research and Application Centre (KITAM) for the careful characterisation analyses (XRD, SEM, STEM and EDS) of both AgNPs.

Kaynakça

  • Abarca M, Lill JT, Weiss MR. 2020. Host plant and thermal stress induce supernumerary instars in caterpillars. Environ Entomol, 49(1): 123-131.
  • Abbood NM, Ali ST. 2020. The role of silver nanoparticles and some extracts of damas Conocarpus lancifolius in controlling stored dates moth Ephestia cautella (Walker). Plant Arch, 20(1): 3301-3305.
  • Abbott WS. 1925. A method of computing the effectiveness of an insecticide. J Econ Entomol, 18(2): 265-267.
  • Adetunji CO, Oloke JK (Eds.). 2024. Handbook of Agricultural Biotechnology, Volume 1: Nanopesticides. John Wiley & Sons, Hoboken, NJ, USA, pp: 125-134.
  • Ali IAM, Ahmed AB, Al-Ahmed HI. 2023. Green synthesis and characterization of silver nanoparticles for reducing the damage to sperm parameters in diabetic compared to metformin. Sci Rep, 13(1): 2256.
  • Anees MM, Patil SB, Kambrekar DN, Chandrashekhar SS, Jahagirdar S. 2022. Biosynthesis, characterization, evaluation, and shelf-life study of silver nanoparticles against cotton bollworm, Helicoverpa armigera (Hubner) (Noctuidae: Lepidoptera). Nanomaterials, 12(19): 3511.
  • Attia FI, Shipp E, Shanahan GJ. 1981. Inheritance of resistance to malathion, DDT and dieldrin in Plodia interpunctella (Lepidoptera: Pyralidae). J Stored Prod Res, 17(3): 109-115.
  • Benelli G, Caselli A, Canale A. 2017. Nanoparticles for mosquito control: Challenges and constraints. J King Saud Univ Sci, 29(4): 424-435.
  • Bharani RA, Namasivayam SKR. 2017. Biogenic silver nanoparticles mediated stress on developmental period and gut physiology of major lepidopteran pest Spodoptera litura (Fab.) (Lepidoptera: Noctuidae)—An eco-friendly approach of insect pest control. J Environ Chem Eng, 5(1): 453-467.
  • Chand K, Cao D, Fouad DE, Shah AH, Dayo AQ, Zhu K, Dong S. 2020. Green synthesis, characterization and photocatalytic application of silver nanoparticles synthesized by various plant extracts. Arab J Chem, 13(11): 8248-8261.
  • Chellappandian M, Vasantha-Srinivasan P, Senthil-Nathan S, Karthi S, Thanigaivel A, Ponsankar A, Hunter WB. 2018. Botanical essential oils and uses as mosquitocides and repellents against dengue. Environ Int, 113: 214-230.
  • Čukanović J, Tešević V, Jadranin M, Ljubojević M, Mladenović E, Kosti S. 2020. Horse chestnut (Aesculus hippocastanum L.) seed fatty acids, flavonoids and heavy metals plasticity to different urban environments. Biochem Syst Ecol, 89: 103980.
  • Çolak H, Karaköse E, Duman F. 2017. High optoelectronic and antimicrobial performances of green synthesized ZnO nanoparticles using Aesculus hippocastanum. Environ Chem Lett, 15: 547-552.
  • Demirezen DA, Yılmaz S, Yılmaz DD. 2018. Green synthesis and characterization of iron nanoparticles using Aesculus hippocastanum seed extract. Int J Adv Sci Eng Technol, 6(2): 25-29.
  • Devi GD, Murugan K, Selvam CP. 2014. Green synthesis of silver nanoparticles using Euphorbia hirta (Euphorbiaceae) leaf extract against crop pest of cotton bollworm, Helicoverpa armigera (Lepidoptera: Noctuidae). J Biopestic, 7: 54.
  • Elma F, Çetin H, Yorgancılar M, Acar R. 2021. Detection of metabolite content in local bitter white lupin seeds (Lupinus albus L.) and acaricidal and insecticidal effect of its seed extract. J Agric Sci, 27(4): 407-413.
  • El-Samad LM, Bakr NR, El-Ashram S, Radwan EH, Aziz KKA, Hussein HK, Hassan MA. 2022. Silver nanoparticles instigate physiological, genotoxicity, and ultrastructural anomalies in midgut tissues of beetles. Chem Biol Interact, 367: 110166.
  • Esan V, Elanchezhiyan C, Mahboob S, Al-Ghanim KA, Al-Misned F, Ahmed Z, Marimuthu G. 2022. Toxicity of Trewia nudiflora-mediated silver nanoparticles on mosquito larvae and non-target aquatic fauna. Toxin Rev, 41(1): 229-236.
  • Ghaedi F, Abbasipour H, Karimi J. 2024. Effect of critical temperatures on mortality and cuticle composition of Plodia interpunctella larvae: Insights from GC–MS analysis and SEM imaging. J Asia Pac Entomol, 27(3): 102309.
  • Gibbs AG. 2011. Thermodynamics of cuticular transpiration. J Insect Physiol, 57(8): 1066-1069.
  • Gołębiowski M. 2012. Comparison of free fatty acids composition of cuticular lipids of Calliphora vicina larvae and pupae. Lipids, 47(10): 1001-1009.
  • Gurunathan S, Park JH, Han JW, Kim JH. 2022. Comparative assessment of the apoptotic potential of silver nanoparticles synthesized by Bacillus tequilensis and Calocybe indica in MDA-MB-231 human breast cancer cells: Targeting p53 for anticancer therapy [Corrigendum]. Int J Nanomed, 17: 5207-5208.
  • Hazaa M, Alm-Eldin M, Ibrahim AE, Elbarky N, Salama M, Sayed R, Sayed W. 2021. Biosynthesis of silver nanoparticles using Borago officinalis leaf extract, characterization and larvicidal activity against cotton leaf worm, Spodoptera littoralis (Bosid). Int J Trop Insect Sci, 41: 145-156.
  • Hu D, Gao T, Kong X, Ma N, Fu J, Meng L, Latif S. 2022. Ginger (Zingiber officinale) extract mediated green synthesis of silver nanoparticles and evaluation of their antioxidant activity and potential catalytic reduction activities with Direct Blue 15 or Direct Orange 26. PLoS One, 17(8): e0271408.
  • Ituen E, Ekemini E, Yuanhua L, Singh A. 2020. Green synthesis of Citrus reticulata peels extract silver nanoparticles and characterization of structural, biocide and anticorrosion properties. J Mol Struct, 1207: 127819.
  • Jafir M, Ahmad JN, Arif MJ, Ali S, Ahmad SJN. 2021. Characterization of Ocimum basilicum synthesized silver nanoparticles and its relative toxicity to some insecticides against tobacco cutworm, Spodoptera litura Feb. (Lepidoptera: Noctuidae). Ecotoxicol Environ Saf, 218: 112278.
  • Kędzierski B, Kukula-Koch W, Widelski J, Głowniak K. 2016. Impact of harvest time of Aesculus hippocastanum seeds on the composition, antioxidant capacity and total phenolic content. Ind Crops Prod, 86: 68-72.
  • Kiani BH, Arshad I, Najeeb S, Okla MK, Almanaa TN, Al-Qahtani WH, Abdel-Maksoud MA. 2023. Evaluation of biogenic silver nanoparticles synthesized from vegetable waste. Int J Nanomed, 18: 6527-6544.
  • Kumar P, Kumar D, Kumar V, Chauhan RPS, Singh H. 2022. Mosquito larvicidal potential of Solanum xanthocarpum leaf extract derived silver nanoparticles and its bio-toxicity on non-target aquatic organism. J Vector Borne Dis, 59(3): 216-227.
  • Kumar R. 2017. Insect pests of stored grain: Biology, behavior, and management strategies. Apple Academic Press, Oakville, ON, Canada, Chapter 4: 61-86.
  • Küp FÖ, Çoşkunçay S, Duman F. 2020. Biosynthesis of silver nanoparticles using leaf extract of Aesculus hippocastanum (horse chestnut): Evaluation of their antibacterial, antioxidant and drug release system activities. Mater Sci Eng C, 107: 110207.
  • Lack HW. 2002. The discovery and rediscovery of the horse chestnut. Arnoldia, 61(4): 15-19.
  • Lee RE. 2010. A primer on insect cold-tolerance. In: Low Temperature Biology of Insects, Denlinger DL, Lee RE (Eds.). Cambridge University Press, Cambridge, UK, pp: 3-34.
  • Li H, Wen T, Wang T, Ji Y, Shen Y, Chen J, Wu X. 2020. In vivo metabolic response upon exposure to gold nanorod core/silver shell nanostructures: Modulation of inflammation and upregulation of dopamine. Int J Mol Sci, 21(2): 384.
  • Mahdi ZS, Hashim IH, Jassim NM. 2024. Bactericidal effects of silver nanoparticles prepared by green synthesis. Mustansiriyah J Pure Appl Sci, 2(4): 1-6.
  • Marcu Spinu S, Dragoi Cudalbeanu M, Avram I, Fierascu RC, Rosu PM, Morosanu AM, Ortan A. 2024. Antibacterial and antitumoral potentials of phytosynthesized silver/silver oxide nanoparticles using tomato flower waste. Int J Mol Sci, 25(18): 9871.
  • Martínez G, Merinero M, Perez-Aranda M, Perez-Soriano E, Ortiz T, Villamor E, Alucida A. 2020. Environmental impact of nanoparticles’ application as an emerging technology: A review. Materials, 14(1): 166.
  • Morejón B, Pilaquinga F, Domenech F, Ganchala D, Debut A, Neira M. 2018. Larvicidal activity of silver nanoparticles synthesized using extracts of Ambrosia arborescens (Asteraceae) to control Aedes aegypti L. (Diptera: Culicidae). J Nanotechnol, 2018(1): 6917938.
  • Nasir MF, Ulrichs C, Prozell S, Schöller M. 2017. Laboratory studies on parasitism of Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae) by two species of Trichogramma Westwood (Hymenoptera: Trichogrammatidae) in different grains, and evaluation of traps for their monitoring. J Stored Prod Res, 74: 6-12.
  • Nie P, Zhao Y, Xu H. 2023. Synthesis, applications, toxicity and toxicity mechanisms of silver nanoparticles: A review. Ecotoxicol Environ Saf, 253: 114636.
  • Owczarek-Januszkiewicz A, Kicel A, Olszewska MA. 2023. Aesculus hippocastanum in the pharmaceutical industry and beyond – Phytochemistry, bioactivity, present application, and future perspectives. Ind Crops Prod, 193: 116187.
  • Panda P, Chakraborty S, Krishna SBN. 2023. The use of silver nanoparticles in environmental remediation. Preprints Org, 2023010330.
  • Parthiban E, Ramachandran M, Jayakumar M, Ramanibai R. 2019. Biocompatible green synthesized silver nanoparticles impact on insecticides resistant developing enzymes of dengue transmitted mosquito vector. SN Appl Sci, 1: 1-9.
  • Pretty J, Pervez Bharucha Z. 2015. Integrated pest management for sustainable intensification of agriculture in Asia and Africa. Insects, 6(1): 152-182.
  • Prvulović D, Gvozdenac S, Latković D, Peić Tukuljac M, Sikora V, Kiprovski B, Ovuka J. 2023. Phytotoxic and insecticidal activity of industrial hemp (Cannabis sativa L.) extracts against Plodia interpunctella Hübner—A potential sunflower grain protectant. Agronomy, 13(10): 2456.
  • Rehman HU, Majee B, Farooqi MA, Rasul A, Sagheer M, Ali Q, Akhtar ZR. 2021. Green synthesis of silver nitrate nanoparticles from Camelina sativa (L.) and its effect to control insect pests of stored grains. Int J Trop Insect Sci, pp: 1-9.
  • Roni M, Murugan K, Panneerselvam C, Subramaniam J, Nicoletti M, Madhiyazhagan P, Dinesh D, Suresh U, Khater HF, Wei H, Canale A, Alarfaj AA, Munusamy MA, Higuchi A, Benelli G. 2015. Characterization and biotoxicity of Hypnea musciformis-synthesized silver nanoparticles as potential eco-friendly control tool against Aedes aegypti and Plutella xylostella. Ecotoxicol Environ Saf, 121: 31-38.
  • Salayová A, Bedlovičová Z, Daneu N, Baláž M, Lukáčová Bujňáková Z, Balážová Ľ, Tkáčiková Ľ. 2021. Green synthesis of silver nanoparticles with antibacterial activity using various medicinal plant extracts: Morphology and antibacterial efficacy. Nanomaterials, 11(4): 1005.
  • Silva-Holguín PN, Garibay-Alvarado JA, Reyes-López SY. 2024. Silver nanoparticles: Multifunctional tool in environmental water remediation. Materials, 17(9): 1939.
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  • Suresh U, Murugan K, Panneerselvam C, Rajaganesh R, Roni M, Al-Aoh HAN, Benelli G. 2018. Suaeda maritima-based herbal coils and green nanoparticles as potential biopesticides against the dengue vector Aedes aegypti and the tobacco cutworm Spodoptera litura. Physiol Mol Plant Pathol, 101: 225-235.
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  • Tirunagaru KC, Kolluru R, Singh IR. 2024. A review on nanotechnological approaches for the management of stored insect-pests: Present scenario and future prospects. J Sci Res Rep, 30(10): 756-769.
  • Wang C, Jiang Y, He K, Wāng Y. 2024. Eco-friendly synthesis of silver nanoparticles against mosquitoes: Pesticidal impact and indispensable biosafety assessment. Sci Total Environ, pp: 176006.
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  • Yasur J, Rani PU. 2015. Lepidopteran insect susceptibility to silver nanoparticles and measurement of changes in their growth, development and physiology. Chemosphere, 124: 92-102.
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  • Zhu L, Guo D, Sun L, Huang Z, Zhang X, Ma W, Gu N. 2017. Activation of autophagy by elevated reactive oxygen species rather than released silver ions promotes cytotoxicity of polyvinylpyrrolidone-coated silver nanoparticles in hematopoietic cells. Nanoscale, 9(17): 5489-5498.
Toplam 63 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Nanoteknoloji (Diğer)
Bölüm Research Articles
Yazarlar

Onur Aker 0000-0002-9581-9697

Yayımlanma Tarihi 15 Temmuz 2025
Gönderilme Tarihi 14 Mart 2025
Kabul Tarihi 15 Mayıs 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 8 Sayı: 4

Kaynak Göster

APA Aker, O. (2025). Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae). Black Sea Journal of Engineering and Science, 8(4), 1076-1086. https://doi.org/10.34248/bsengineering.1657985
AMA Aker O. Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae). BSJ Eng. Sci. Temmuz 2025;8(4):1076-1086. doi:10.34248/bsengineering.1657985
Chicago Aker, Onur. “Phytosynthesis of Silver Nanoparticles Using Aesculus Hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia Interpunctella (Hübner) (Lepidoptera: Pyralidae)”. Black Sea Journal of Engineering and Science 8, sy. 4 (Temmuz 2025): 1076-86. https://doi.org/10.34248/bsengineering.1657985.
EndNote Aker O (01 Temmuz 2025) Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae). Black Sea Journal of Engineering and Science 8 4 1076–1086.
IEEE O. Aker, “Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae)”, BSJ Eng. Sci., c. 8, sy. 4, ss. 1076–1086, 2025, doi: 10.34248/bsengineering.1657985.
ISNAD Aker, Onur. “Phytosynthesis of Silver Nanoparticles Using Aesculus Hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia Interpunctella (Hübner) (Lepidoptera: Pyralidae)”. Black Sea Journal of Engineering and Science 8/4 (Temmuz 2025), 1076-1086. https://doi.org/10.34248/bsengineering.1657985.
JAMA Aker O. Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae). BSJ Eng. Sci. 2025;8:1076–1086.
MLA Aker, Onur. “Phytosynthesis of Silver Nanoparticles Using Aesculus Hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia Interpunctella (Hübner) (Lepidoptera: Pyralidae)”. Black Sea Journal of Engineering and Science, c. 8, sy. 4, 2025, ss. 1076-8, doi:10.34248/bsengineering.1657985.
Vancouver Aker O. Phytosynthesis of Silver Nanoparticles Using Aesculus hippocastanum L. (Kernel and Shell) and Evaluation of Their Larvicidal Activity Against Plodia interpunctella (Hübner) (Lepidoptera: Pyralidae). BSJ Eng. Sci. 2025;8(4):1076-8.

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