Larvicidal Efficacy of Extracts Against , , and with Insights into Mode of Action via Molecular Docking

Abbott WS (1925) A method of computing the effectiveness of an insecticide. J Econ Entomol 18(2):265–267

Article  CAS  Google Scholar 

Abutaha N, Alghamdi R, Alshahrani O, Al-Wadaan M (2024) Heliotropium curassavicum extract: Potential therapeutic agent for liver cancer through cytotoxicity, apoptosis, and molecular docking analysis. Arab J Chem 17(10):105986

Babu M, Kaleena P, Janaki A, Velu K, Ravi S (2018) Larvicidal activity and histopathological alterations effected by Kyllinga nemoralis grass weed extracts on the mosquito vectors. Inter J Res Anal Rev 5:388–403

Carroll SP, Jørgensen PS, Kinnison MT, Bergstrom CT, Denison RF, Gluckman P, Smith TB, Strauss SY, Tabashnik BE (2014) Applying evolutionary biology to address global challenges. Science 346(6207):1245993

Article  PubMed  PubMed Central  Google Scholar 

Cerros-Tlatilpa R, Siqueiros Delgado ME, Skendzic EM (2015) The genus Chloris Sw. (Poaceae: Chloridoideae) in Mexico. Acta Bot Mex 112:95–147

Article  Google Scholar 

da Silva WJ, Diel LF, Pilz-Júnior HL, de Lemos AB, de Freitas MT, Pereira ILG, Bernardi L, Ribeiro BM, Lamers ML, Schrekker HS (2024) Imidazolium salt’s toxic effects in larvae and cells of Aedes aegypti and Aedes albopictus (Diptera: Culicidae). Sci Rep 14(1):15421

Article  PubMed  PubMed Central  Google Scholar 

Dar SA, Nisar A, Mudasir A, Mudasir H (2014) Prospects, utilization and challenges of botanical pesticides in sustainable agriculture. Int J Mol Biol Biochem 2(1):1–14

Google Scholar 

David J-P, Rey D, Pautou M-P, Meyran J-C (2000) Differential toxicity of leaf litter to dipteran larvae of mosquito developmental sites. J Invertebr Pathol 75(1):9–18

Article  CAS  PubMed  Google Scholar 

Ehler LE (2006) Integrated pest management (IPM): definition, historical development and implementation, and the other IPM. Pest Manag Sci 62(9):787–789

Article  CAS  PubMed  Google Scholar 

Ghosh A (2013) Efficacy of phytosterol as mosquito larvicide. Asian Pac J Trop Dis 3(3):252

Article  CAS  PubMed Central  Google Scholar 

Gopalakrishnan R, Veer V (2018) Bioecology, insecticide susceptibility and management of Culex quinquefasciatus Say, 1823: a major vector of lymphatic filariasis in India. Lymphatic filariasis: epidemiology, treatment and prevention-The Indian Perspective, 1st ed. Springer, India, pp 199–210

Isman MB (2006) Botanical insecticides, deterrents, and repellents in modern agriculture and an increasingly regulated world. Annu Rev Entomol 51(1):45–66

Article  CAS  PubMed  Google Scholar 

Kamal A, Ahmad F, Shafeeque M (2020) Toxicity of pesticides to plants and non-target organism: A comprehensive review. Iran J Plant Physiol 4(4):3299

Google Scholar 

Kharoubi R, Rehimi N, Khaldi R, Haouari-Abderrahim J, Soltani N (2021) Phytochemical screening and insecticidal activities of essential oil of Menthax piperita L. (Lamiales: Lamiaceae) and their enzymatic properties against mosquito Culex pipiens L. (Diptera: Culicidae). J Essent Oil Bear Plants 24(1):134–146

Article  CAS  Google Scholar 

Khursheed A, Rather MA, Jain V, Rasool S, Nazir R, Malik NA, Majid SA (2022) Plant based natural products as potential ecofriendly and safer biopesticides: a comprehensive overview of their advantages over conventional pesticides, limitations and regulatory aspects. Microb Pathog 173:105854

Article  CAS  PubMed  Google Scholar 

Kumar J, Ramlal A, Mallick D, Mishra V (2021) An overview of some biopesticides and their importance in plant protection for commercial acceptance. Plants 10(6):1185

Article  CAS  PubMed  PubMed Central  Google Scholar 

Kumari D, Chaudhary P, Yadav P, Prakash A, Chaudhary S, Janmeda P (2024) Pharmacognostical analysis, quantitative determination, and in-vitro antioxidant activity of Chloris virgata Sw. Whole Plant 13(3):116

Google Scholar 

Lahlali R, El Hamss H, Mediouni-Ben Jemâa J, Barka EA (2022) The use of plant extracts and essential oils as biopesticides. Front Agron 4:921965

Lengai GM, Muthomi JW, Mbega ER (2020) Phytochemical activity and role of botanical pesticides in pest management for sustainable agricultural crop production. Sci Afri 7:e00239

CAS  Google Scholar 

Ma H-J, Xie R-L, Zhao Q-F, Mei X-D, Ning J (2010) Synthesis and insecticidal activity of novel carbamate derivatives as potential dual-binding site acetylcholinesterase inhibitors. J Agric Food Chem 58(24):12817–12821

Article  CAS  PubMed  Google Scholar 

Madewell ZJ (2020) Arboviruses and their vectors. South Med J 113(10):520

Article  CAS  PubMed  PubMed Central  Google Scholar 

Marc M, Moïse BFE, Joël TNS, Lebel TJ (2021) Evaluation of the insecticidal activity of the methanol extracts of calotropis procera (Asclepiadaceae) and albizia lebbeck (Mimosaceae) on larvae of culex quinquefasciatus Say, 1823. J Basic Appl Zool 82:1–8‏

Michael PJ, Yeoh PB, Scott JK (2012) Potential distribution of the Australian native Chloris truncata based on modelling both the successful and failed global introductions. PLoS ONE 7(7):e42140

Article  CAS  PubMed  PubMed Central  Google Scholar 

Milugo TK, Torto B, Tchouassi DP (2024) Bacteria associated with Parthenium hysterophorus root exudate influence olfactory oviposition responses of Anopheles gambiae. Front Trop Dis 5:1359774

Article  Google Scholar 

Molina AM, de Agrasar ZER (2004) Revisión taxonómica de las especies del género Chloris [Poaceae: Chloridoideae] en Sudamérica. Candollea 59(2):0187–7151

Google Scholar 

Muhammed M, Dugassa S, Belina M, Zohdy S, Irish SR, Gebresilassie A (2022) Insecticidal effects of some selected plant extracts against Anopheles stephensi (Culicidae: Diptera). Malar J 21(1):295

Napoleão TH, Albuquerque LP, Santos ND, Nova IC, Lima TA, Paiva PM, Pontual EV (2019) Insect midgut structures and molecules as targets of plant-derived protease inhibitors and lectins. Pest Manag Sci 75(5):1212–1222

Article  PubMed  Google Scholar 

Nawaz H, Shad MA, Rehman N, Andaleeb H, Ullah N (2020) Effect of solvent polarity on extraction yield and antioxidant properties of phytochemicals from bean (Phaseolus vulgaris) seeds. Braz J Pharm Sci 56:e17129

Article  CAS  Google Scholar 

Nweze E, Okafor J, Njoku O (2004) Antimicrobial activities of methanolic extracts of trema guineensis (Schumm and Thorn) and morinda lucida benth used in Nigerian. Bio-research 2(1):39–46

Pang Y-P, Ekström F, Polsinelli GA, Gao Y, Rana S, Hua DH, Andersson B, Andersson PO, Peng L, Singh SK (2009) Selective and irreversible inhibitors of mosquito acetylcholinesterases for controlling malaria and other mosquito-borne diseases. PLoS ONE 4(8):e6851

Article  PubMed  PubMed Central  Google Scholar 

Pavananundt P, Jiraungkoorskul K, Kosai P, Jiraungkoorskul W (2013) Larvicidal properties of Cassia siamea leaf against Aedes aegypti larvae. Int J Mod Agric 2(1):1–8

Google Scholar 

Petersen V, Santana M, Karina-Costa M, Nachbar JJ, Martin-Martin I, Adelman ZN, Burini BC (2024) Aedes (Ochlerotatus) scapularis, Aedes japonicus japonicus, and Aedes (Fredwardsius) vittatus (Diptera: Culicidae): three neglected mosquitoes with potential global health risks. Insects 15(8):600

Article  PubMed  PubMed Central  Google Scholar 

Ragunathan V, Divakar B (2020) Integrated pest management strategies. In: Molecular biology of the biological control of pests and diseases of plants, 1st edn. CRC Press, USA, pp 173–196

Rakshit A, Meena VS, Parihar M, Singh H, Singh AK (2021) Biofertilizers, vol 1, advances in bio-inoculants. Woodhead Publishing, UK

Reyes-Ávila A, López-Ruiz R, González FJE, Romero-González R, Frenich AG (2024) Chemistry and development of bioinsecticides for safe and sustainable use. Curr Opin Environ Sci Health 41:100568

Şengül Demirak MŞ, Canpolat E (2022) Plant-based bioinsecticides for mosquito control: impact on insecticide resistance and disease transmission. Insects 13(2):162

Article  PubMed  PubMed Central  Google Scholar 

Senthilkumar P, Reetha D (2009) Screening of antimicrobial properties of certain Indian medicinal plants. J Phytology 1(3):193–198

Shaalan EA-S, Canyon D, Younes MWF, Abdel-Wahab H, Mansour A-H (2005) A review of botanical phytochemicals with mosquitocidal potential. Environ Int 31(8):1149–1166

Article  CAS  PubMed  Google Scholar 

Sharma A, Kumar S, Tripathi P (2018) Effects of extracts on the survival and midgut histo-architecture of L. Early IV instars. The Open Parasitolo J 6(1):41–51‏

Shen M, Yuan L, Zhang J, Wang X, Zhang M, Li H, Jing Y, Zeng F, Xie J (2024) Phytosterols: physiological functions and potential application. Foods 13(11):1754

Article  CAS  PubMed  PubMed Central  Google Scholar 

Susheela P, Radha R, Padmapriyanga S (2016) Evaluation of larvicidal action of natural extracts on mosquito larvae of Aedes aegypti (Diptera: Culicidae). Int J Mosq Res 3(6):26–30

Terra WR, Ferreira C, Silva CP (2023) Molecular view of digestion and absorption in the major insect orders. In: Molecular physiology and evolution of insect digestive systems. Springer, Switzerland, pp 193–230

Thapa S, Lv M, Xu H (2017) Acetylcholinesterase: a primary target for drugs and insecticides. Mini Rev Med Chem 17(17):1665–1676

Article  CAS  PubMed  Google Scholar 

Tran VA, Vo T-TT, Van Le TH, Le N, Setzer WN, Thuong VT, Hung NH (2024) Potential for controlling Aedes and Culex mosquito larvae by joint action compounds isolated from Boehmeria nivea. Ind Crops Prod 211:118233

Article  CAS  Google Scholar 

WOH (2024) Vector-borne diseases. https://www.who.int/news-room/fact-sheets/detail/vector-borne-diseases

Yadav N, Rana A (2020) Pharmacological and pharmacognostical aspect of Prosopis juliflora: a review. World J Adv Res Rev 8(1):036–052

Article  CAS  Google Scholar 

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