LARVICIDAL POTENTIAL OF EXTRACTS OF Persea Americana SEED AND Chromolaena odorata LEAF AGAINST Aedes vittatus MOSQUITO

 

Table Of Contents


  • ABSTRACTCHAPTER ONE1.0 INTRODUCTION1.1 Statement of Research Problem1.2 Justification1.3 Aims and Objectives1.
  • 3.1General Aim1.
  • 3.2Specific ObjectivesCHAPTER TWO2.0 LITERATURE REVIEW2.1 Mosquito2.
  • 1.3Life Cycle of Aedes2.
  • 1.4Mosquito Morphology and Feeding Habits2.
  • 1.5Mosquito Born Diseases2.
  • 1.6Mosquito Control Methods2.
  • 1.7Active Ingredients in Plants Responsible for Larval Toxicity2.
  • 1.8Mechanism and mode of action of insecticide/larvicide2.
  • 1.9Toxicity Response Determinant and Variation of plant derived larvicides2.
  • 1.10Scope for isolation of toxic larvicidal active ingredients from plants2.2 Chromolaena odorata2.
  • 2.1Classification of C. odorata2.
  • 2.2Origin and Distribution2.
  • 2.3Traditional Uses of C. odorata2.
  • 2.4Phytochemical Composition of C. odorata2.
  • 2.5Medicinal Values of C. odorata2.
  • 2.6Antibacterial effect of C. odorata2.
  • 2.7Toxicity of C. odorata2.3 Persea americana2.
  • 3.1Classification of Persea americana2.
  • 3.2Biological activities of Persea americana constituents2.
  • 3.3Phytochemical composition of avocado seed2.
  • 3.4Tradomedicinal Uses of Avocado Seed2.
  • 3.5Larvicidal and antimicrobial activities2.
  • 3.6Toxicity of avocado seedCHAPTER THREE3.0 MATERIALS AND METHODS3.1 Materials3.
  • 1.1Chemicals3.
  • 1.2Plants Collection and identification3.2 Methods3.
  • 2.1Preparation of extracts3.
  • 2.2Mosquito Larvae culture3.3 Phytochemical Analysis3.
  • 3.1Test for Saponins3.
  • 3.2Test for tannins3.
  • 3.3Test for flavonoids3.
  • 4.4Test for sterols3.
  • 4.5Test for Terpenoids3.
  • 4.6Test for Anthracenes3.
  • 4.7Test for cardiac glycosides3.
  • 4.8Test for alkaloids3.4 Preparation of Stock Solutions3.
  • 4.1Preparation of Test Concentrations For Bioassay3.5 Larvicidal Bioassay3.
  • 5.1Determination of Lethal Concentrations3.6 Thin Layer Chromatography (TLC)3.
  • 6.1Column Chromatography3.7 Characterization of Larvicidal Compounds In The Bioactive Fraction3.
  • 7.1Fourier Transform Infra-Red Spectroscopy(FTIR)3.
  • 7.2Gas Chromatography/Mass Spectroscopy (GC/MS)
  • 3.8Statistical AnalysisCHAPTER FOUR4.0 RESULTS4.1 Phytochemical Constituents of Extracts of Persea americana Seed and Chromolaena odorata Leaf4.2 Larvicidal activity of different solvent extracts of Persea americana seed against Aaedes vittatus mosquito4.3 Larvicidal Activity of Different Solvents Extract of Chromolaena odorata Leaf Against Aedes vittatus Mosquito4.4 Larvicidal activity of chromatographic fractions of n-hexane extracts of Persea americana seed against Aedes vittatus4.5 Larvicidal activity of chromatographic fractions of n-hexane extracts of Chromolaena odorata leaf against Aedes vittatus mosquito4.6 GC/MS Characterisation of Most Potent Chromatographic Fraction (nHPa6) of P. americana4.7 GC/MS characterisation of Most Potent Chromatographic Fraction (nHCo6) of C. odorata4.8 Functional group Identification of nHPa64.9 Functional groups Identification of nHCo6 fractionCHAPTER FIVE5.0 DISCUSSIONCHAPTER SIX6.0 SUMMARY, CONCLUSION AND RECOMMENDATIONS6.1 Summary6.2 Conclusions6.3 RecommendationsREFERENCESAPPENDICESAbbreviationsLC = Lethal ConcentrationsGCMS = Gas Chromatography Mass SpectrometryFTIR = Fourier Transform Infra-Redn-Hexane = Normal HexaneTLC = Thin Layer ChromatographyDMSO = Dimethyl SulfoxideJE = Japanese EncephalitisWHO = World Health OrganisationCx = CulexAn = AnophelesAe = AedesCHIKV = Chikungunya VirusBti = Bacillus ThuriengiensisBs = Bacillus SphaericusDDT = Dichloro-Diphenyl-TrichloroethaneIGR = Insect Growth RegulatorCSI = Chitin Synthesis InhibitorCNS = Central Nervous SystemACh = Acetyl CholineAChE = Acetyl Choline EsteraseGABA = Gammaamino Butyric AcidATP = Adenosine TriphosphatePTTH = Prothoracictropic HormoneCCl4 = TetrachloromethaneNMR = Nuclear Magnetic Resonance

Project Abstract

The larvicidal activity of various solvent (ethanol, ethyl acetate and n-hexane) extracts of Persea americana seed and Chromolaena odorata leaves against Aedes vittatus mosquito was analysed. The most potent solvent (n-hexane) extracts of both plants were fractionated using column chromatography and most effective fractions isolated and identified using Gas Chromatography Mass Spectrometry and Fourier Transform Infrared techniques. Phytochemical screening revealed the presence of steroids, cardiac glycosides and terpenoids in all the extracts. The larvicidal bioassay of Persea americana seed gave LC50 values of 0.827ppm, 1.799ppm and 2.732ppm for n-hexane, ethanol and ethyl acetate extracts respectively, while, Chromolaena odorata leaf extract had LC50 values of 1.835ppm, 3.314ppm, and 5.163ppm for n-hexane, ethanol and ethyl acetate respectively. Column chromatographic fractionation of most potent n-hexane (crude) extracts of both plants, showed increased activity in some of the fractions of Persea americana (nHPa6) and Chromolaena odorata (nHCo6) which showed higher mortality, with LC50 values of 0.486ppm and 1.308ppm respectively. GC/MS analysis of components in nHPa6 and nHCo6 showed oleic acid as the most abundant, in fractions of both plants. The FTIR analyses of nHPa6 and nHCo6 showed absorption bands of the functional groups present, which included; alcohol, alkane, alkene, alkyl halide, aldehyde, carboxylic acid and carbonyl ester, thus, supporting the GCMS result. The n-hexane, ethanol and ethyl acetate extracts of P. americana seed and C. odorata leaves have shown good larvicidal activity and should therefore be further exploited for the control of mosquito larvae.

Project Overview

1.0 INTRODUCTIONInsect-transmitted diseases remain a major cause of morbidity and mortality worldwide. Mosquito species belonging to genera; Anopheles, Aedes and Culex, are vectors (Redouane et al., 2002) for the transmission of malaria, dengue fever, yellow fever, filariasis, schistosomiasis and Japanese encephalitis (JE), transmitting diseases to more than 700 million people annually (Oyewole et al., 2010; Govindarajan, 2009). Mosquitoes also cause allergic responses in humans which include local skin irritation and systemic reactions such as angioedema. Aedes spp are generally regarded as a vector responsible for transmission of yellow fever and dengue fever, which is endemic to Southeast Asia, the Pacific island area, Africa, Central and South America.The World Health Organization (W.H.O. 2012) has recommended vector control as an important component of the global strategy for preventing insect-transmitted diseases. The most commonly employed method for the control of mosquito-borne diseases involve the use of chemical-based insecticide, though it is not without numerous challenges, such as human and environmental toxicity, resistance, affordability and availability (Ghosh et al., 2012).Extracts from plants has been good sources of phytochemicals as mosquito egg and larval control agents, since they constitute an abundant source of bioactive compounds that are easily biodegradable into nontoxic products. In fact, many researchers have reported on the effectiveness of plant extracts or essential oils against mosquito larvae. They act as larvicides, insect growth regulators, repellents, and oviposition attractants (Pushpanathan, 2008; Samidurai et al., 2009; Mathivanan et al., 2010).Persea Americana is an evergreen tree belonging to Lauraceae family and its fruits are commonly known as avocado pear or alligator pear. The plant originates from Central America but it has shown easy adaptation to other tropical regions, thus widely cultivated in tropical and subtropical regions. The various parts (leaves, fruits and seed) of this plant have numerous uses from edible pulp as source of nutrients to the seed preparation as remedy (Arukwe et al., 2012).
The seed extracts of Persea americana has many vital application in traditional medicine, for the treatment of diarrhoea, dysentery, toothache, intestinal parasites, skin infection (mycoses) and management of hypertension and the leaves have been reported to have anti-inflammatory and analgesic activities (Adeyemi et al., 2002; Ozolua et al., 2009). Phytochemical screening of avocado seed shows the presence of fatty acids, Triterpenes, anthocyanin, flavonoids and abscisic acids (Leiti et al., 2009).Chromolaena odorata is a weed which belongs to Asteraceae family. It is found in tropical and subtropical areas, extending from west, central and southern Africa to India, Sri Lanka, Bangladesh, Laos, Cambodia, Thailand, southern China, Taiwan, and Indonesia. The weed goes by many common names including; Siam weed, devil’s weed, French weed, communist weed (Vaisakh and Pandey, 2012). In Nigeria, the Chromolaena odorata is referred to as Obu inenawall by the Igbo and ―ewe awolowo‖ by the Yoruba. This plant is exploited traditionally for its medicinal properties, especially for external uses as in wounds, inflammation and skin infections. Some studies also demonstrate the efficacy of its leaf extract, as antioxidant, anti-inflammatory, analgesic, anti-microbial and cytoprotective agent (Ajao et al., 2011). The oil from C. odorata also had been exploited as insecticide, ovicide and larvicide (Noud Agbessi et al., 2006). Previous phytochemical studies of the leaf extracts of C. odorata show the presence of alkaloid, cardiac glycosides, anthocyanin, tannin, and flavonoids (Ngozi et al., 2009).
  • Statement of Research Problem
An estimated 3.3 billion people are at risk of malaria globally, with populations living in sub-Saharan Africa having the highest risk (WHO, 2012) and two-fifths of the world‘s population is at risk of dengue fever (WHO, 2003). Malaria alone accounts for about 50 per cent of out-patient consultation, 15 per cent of hospital admission, and also among the top three causes of death in the country.In recent years, the use of many synthetic insecticides in mosquito control programme has been limited, due to many challenges such as, high cost of synthetic insecticides, environmental sustainability, toxic effect on human health (immune suppression), and other non-target organisms, environmental persistence, higher rate of biological accumulation and magnification through ecosystem, as well as increasing insecticide resistance on large scale (Srivastava and Sharma, 2000; Raghvendra and Subbarao, 2002). These challenges have resulted in an urge to search for environmentally sustainable, biodegradable, affordable and target selective insecticides against mosquito species (Saxena and Sumithra, 1985; Kumar and Dutta, 1987; Chariandy et al., 1999; Markouk et al., 2000; Tare et al., 2004).Consequently, the application of eco-sustainable alternatives such as biological control of vectors has become the main focus of the control programme to replace the synthetic chemical insecticides (Gosh et al., 2012). One of the most effective alternative approaches under the biological control programme is to utilise the plants biodiversity as a reservoir of safer insecticides of botanical origin as a simple, affordable and sustainable method of mosquito control.
  • Justification
Mosquito larvae is the easiest stage to target in its life cycle and several studies have documented the efficacy of plant extracts as a reservoir pool of bioactive toxic agents against mosquito larvae. Furthermore, evolution of the resistance to plant-derived compounds has rarely been reported (Sharma et al., 2006).However, the main reasons for the failure in laboratory to field utilisation of bioactive phytochemicals are poor characterization and inability to determine the active toxic components responsible for larvicidal activity (Ghosh et al., 2012). Hence, there is a need for the characterisation, of various plant extracts to determine the active (larvicidal) components of locally available plants for mosquito control. This will help to reduce dependence on expensive and mostly imported products, and stimulate local efforts to enhance the general public health.
  • Aims and Objectives
  • General Aim
The aim of this study was to investigate the larvicidal potential of extracts of Perseaamericana seed and Chromolaena odorata leave against Aedes vittatus larvae
  • Specific Objectives
  1. Phytochemical analysis (qualitative) of the crude extracts of persea americana seed and Chromolaena odorata
  2. Determination of the most potent solvent extracts with larvicidal activity against Aedes vittatus larvae
  3. Determination of the lethal concentration (LC) of the crude extracts for 50% and 90% mortality (LC50 and LC90).
  4. Fractionation of the most potent crude extracts and isolation of the most effective (larvicidal) fractions using column chromatography;
  5. Characterisation of the bioactive (larvicidal) fractions using FTIR and GC/MS techniques.

REFERENCES

Abbott, W.S. (1925). A method of computing the effectiveness of insecticide. Journal of Economic Entomology, 18, 265–7.Adeyemi, O. O., Okpo, S. O. and Ogunti, O. O. (2002). Analgesic and anti-inflammatory effects of the aqueous extract of leaves of Persea americana Mill (Lauraceae). Fitoterapia, 73, 375-380.Afolabi, C., Akinmoladun, E.O., and Dan-Ologe, I.A. (2007). Phytochemical Constituents and Antioxidant properties of extracts from the leaves of Chromolaena odorata. Scientific Research and Essay, 2 (6), 191-194.Ajao, A. T., Ajadi, T.S. and Oyelowo, M.S. (2011). Evaluation of Multiplicative Killing Effect of C.odorata extracts and β-lactam antibiotics against β-lactamase Producing bacteria, isolated from Selected Hospitals in Ilorin Metropolis. Annals of Biological Research Scholars Research Library, 2, (4), 76-84.Alaa, E. B., Balaña-Fouce, R., Sobeih, A. K. and Hussein E. M. K. (1998). The biological activity of some chitin synthesis inhibitors against the cotton leafworm Spodoptera littoralis (Boisduval), (Lepidoptera: Noctuidae). Bulletin of plant health, Pest, 24, 499-506.Alaba, A.O. (2005). Malaria and Rural Household productivity in Oyo State. (Doctoral dissertation, University of Ibadan, Nigeria).Alisi, C., Ojiako, S. O. A., Osuagwu, C. G., and Onyeze, G. O. C. (2011). Free Radical Scavenging and In-vitro Antioxidant Effects of Ethanol Extract of the Medicinal Herb Chromolaena odorata Linn. British Journal of Pharmaceutical Research, 1(4), 141-155.Al-Rajhy, D.H., Alahmed A.M., Hussein H.I. and Kheir, S.M. (2003). Acaricidal effects of cardiac glycosides, azadirachtin and neem oil against the camel tick, Hyalomma dromedaril (Acari: Ixodidae) Pest Management Science, 59(11): 1250-1254.Amalraj, D. and Das, P.K. (1998). Estimation of predation by the larvae of Toxorhynchites splendens on the aquatic stages of Aedes aegypti. Southeast Asian Journal of Tropical Medicine and Public Health; 29, 177-83.Anees, A.M. (2008). Larvicidal activity of Ocimum sanctum Linn (Labiatae) against Aedes aegypti (L.) and Culex quinquefasciatus (Say). Parasitology Research, 101, 1451-3.Anon, (1983). Important Weeds of the World (3rd Edition). Leverkusen, Germany: Bayer A.G.Anyasor, G.N., Aina, D.A.; Olushola M., and Aniyikaiye, A.F. (2011). Phytochemical constituent, proximate analysis, antioxidant, antibacterial and wound healing properties of leaf extracts of Chromolaena Odorata. Annals of Biological Research; 2(2): 441-451Arukwe, U., Amadi, B.A., Duru, M.K.C., Agomuo, E.N., Adindu, E. A., Odika, P.C., Lele, K.C., Egejuru, L., and Anudike, J. (2012). Chemical Composition of Persea americana Leaf, Fruit and Seed International Journal of Research and Review in Applied Sciences; 11 (2).

Blazingprojects Mobile App

📚 Over 50,000 Project Materials
📱 100% Offline: No internet needed
📝 Over 98 Departments
🔍 Software coding and Machine construction
🎓 Postgraduate/Undergraduate Research works
📥 Instant Whatsapp/Email Delivery

Blazingprojects App

Related Research

Biochemistry. 2 min read

Development of a CRISPR-based biosensor for rapid detection of antibiotic resistance...

What This Project Is About A straightforward study of a biosensor that uses CRISPR technology in a cell-free system to detect antibiotic resistance genes found ...

BP
Blazingprojects
Read more →
Biochemistry. 3 min read

Engineering of enzymatic cascades for selective biomass-derived chemical synthesis: ...

What This Project Is About The project explores how a sequence of enzymatic reactions—an enzymatic cascade—can be designed to transform inexpensive, plant-b...

BP
Blazingprojects
Read more →
Biochemistry. 4 min read

Development of a CRISPR-based diagnostic platform for rapid detection of antimicrobi...

What This Project Is About A straightforward introduction to using a gene-editing–inspired tool (Cas12a) to detect antibiotic resistance genes quickly at the ...

BP
Blazingprojects
Read more →
Biochemistry. 2 min read

Development and optimization of CRISPR-based STRIP-tag system for real-time visualiz...

What This Project Is About The project looks at a way to watch how lipid metabolism enzymes work inside living cells. It uses a genome-editing tool to tag enzym...

BP
Blazingprojects
Read more →
Biochemistry. 2 min read

Characterization of novel plant-derived polyphenols as modulators of mitochondrial b...

What This Project Is About A straightforward, non-technical look at how certain plant-based polyphenols might affect how cancer cells produce and use energy ins...

BP
Blazingprojects
Read more →
Biochemistry. 3 min read

Design, synthesis, and functional characterization of a novel biosynthetic pathway f...

What This Project Is About A straightforward look at how scientists can design and test a new biological pathway in bacteria to make more of a useful metabolite...

BP
Blazingprojects
Read more →
Biochemistry. 4 min read

Development of a label-free, rapid biosensor for early detection of metabolic syndro...

What This Project Is About The project explores a simple, fast way to detect early signs of metabolic syndrome in people using a tiny sensor. The sensor can rea...

BP
Blazingprojects
Read more →
Biochemistry. 3 min read

Characterization of plant-based polyphenolic proteins and their role in modulating o...

What This Project Is About A plain-language overview of plant-based proteins and how they might affect cellular stress in human cells. The project looks at whic...

BP
Blazingprojects
Read more →
Biochemistry. 2 min read

Metabolomic profiling of sacaride-conjugated bile acids in non-alcoholic fatty liver...

What This Project Is About The project looks at small molecules called bile acids and how they are chemically linked to sugars (sacarides) in people with non-al...

BP
Blazingprojects
Read more →
WhatsApp Click here to chat with us