<?xml version="1.0" encoding="utf-8"?>
<!DOCTYPE article PUBLIC "-//NLM//DTD JATS (Z39.96) Journal Publishing DTD v1.2 20190208//EN" "https://jats.nlm.nih.gov/publishing/1.2/JATS-journalpublishing1.dtd">
<article xmlns:xlink="http://www.w3.org/1999/xlink">
  <front>
    <journal-meta><journal-id journal-id-type="publisher-id">Int. j. clin. biomed. res.</journal-id><issn pub-type="epub">2395-0471</issn><publisher><publisher-name>Sumathi Publications</publisher-name></publisher></journal-meta><article-meta>
      <title-group>
        <article-title>The Therapeutic Potentials of Moringa oleifera in the Treatment of Lead-Induced Toxicity may be Mediated through Inhibition of Oxidative Stress</article-title>
      </title-group>
      <contrib-group content-type="author">
        <contrib contrib-type="person">
          <name>
            <surname>Ejike</surname>
            <given-names>Onah Christian</given-names>
          </name>
          <email>ce.onah@unizik.edu.ng</email>
          <xref ref-type="aff" rid="aff-1"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Florence</surname>
            <given-names>Onah Chinwemma</given-names>
          </name>
          <email>mmaonah@gmail.com</email>
          <xref ref-type="aff" rid="aff-2"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Friday</surname>
            <given-names>Ehiaghe Alfred</given-names>
          </name>
          <email>fa.ehiaghe@unizik.edu.ng</email>
          <xref ref-type="aff" rid="aff-3"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Athanasius</surname>
            <given-names>Onyegbule Onyema</given-names>
          </name>
          <email>onyemath1@gmail.com</email>
          <xref ref-type="aff" rid="aff-4"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Chukwuemeka</surname>
            <given-names>Ogbodo Emmanuel</given-names>
          </name>
          <email>augustinee442@gmail.com</email>
          <xref ref-type="aff" rid="aff-5"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Ukamaka</surname>
            <given-names>Ijeomah Ann</given-names>
          </name>
          <email>annukamaka@nsuk.edu.ng</email>
          <xref ref-type="aff" rid="aff-6"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Serah</surname>
            <given-names>Nnaemeka Wuraola</given-names>
          </name>
          <email>ws.nnaemeka@unizik.edu.ng</email>
          <xref ref-type="aff" rid="aff-7"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Chukwuemeka</surname>
            <given-names>Meludu Samuel</given-names>
          </name>
          <email>sc.meludu@unizik.edu.ng</email>
          <xref ref-type="aff" rid="aff-8"/>
        </contrib>
        <contrib contrib-type="person">
          <name>
            <surname>Emmanuel</surname>
            <given-names>Dioka Chudi</given-names>
          </name>
          <email>ce.dioka@unizik.edu.ng</email>
          <xref ref-type="aff" rid="aff-9"/>
        </contrib>
      </contrib-group>
      <aff id="aff-1">
        <institution>Department of Medical Laboratory Science, Faculty of Health Sciences and Technology, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-2">
        <institution>Department of Nursing Services, Nnamdi Azikiwe University Teaching Hospital, Nnewi</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-3">
        <institution>Department of Medical Laboratory Science, Faculty of Health Sciences and Technology, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-4">
        <institution>Department of Obstetric and Gynaenicology, Federal Medical Centre, Owerri </institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-5">
        <institution>Department of Medical Laboratory Science, Faculty of Health Sciences and Technology, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-6">
        <institution>Department of Biochemistry, Faculty of Natural and Applied Sciences, Nasarawa State University Keffi </institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-7">
        <institution>Department of Human Biochemistry, Faculty of Basic Medical Sciences, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-8">
        <institution>Department of Human Biochemistry, Faculty of Basic Medical Sciences, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      <aff id="aff-9">
        <institution>Department of Chemical Pathology, Faculty of Medicine, Nnamdi Azikiwe University, Awka</institution>
        <country>Nigeria</country>
      </aff>
      
    <permissions><copyright-statement>© 2023 The Author(s)</copyright-statement><copyright-year>2023</copyright-year><copyright-license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by-nc-sa/4.0" xml:lang="en"><license-p><inline-graphic xlink:href="https://mirrors.creativecommons.org/presskit/buttons/88x31/svg/by-nc-sa.svg"/>This work is published under the Creative Commons   License 4.0 (CC BY 4.0 ).</license-p></copyright-license></permissions><pub-date pub-type="epub"><day>25</day><month>03</month><year>2023</year></pub-date><history><date type="received" iso-8601-date="2023-01-05"><day>05</day><month>01</month><year>2023</year></date><date type="accepted" iso-8601-date="2023-03-25"><day>25</day><month>03</month><year>2023</year></date><date type="published" iso-8601-date="2023-03-25"><day>25</day><month>03</month><year>2023</year></date></history></article-meta>
  </front>
  
  
<body id="body">
    <sec id="sec-1">
      <title>Introduction</title>
      <p id="_paragraph-2">Lead exposure causes approximately 143,000 deaths each year mostly in developing regions [1]. It is one of the biggest environmental problems considering the number of people exposed and the associated public health burden [2]. In Nigeria, the burden of lead poisoning is high. For instance, lead poisoning killed over 400 children, while more than 2,500 children were enrolled in the intervention program organized by Medicens Sans Frontieres following the lead-poisoning outbreak in Zamfara State, Nigeria [3]. In addition, lead poisoning as a result of illegal mining in Niger State, Nigeria claimed around 28 lives (mainly children under age of five), while many required medical treatment [4].</p>
      <p id="_paragraph-3">A significant number of small-scale and medium scale industrial/occupational workers (auto-mechanics, electricians, welders, painters, panel beaters etc.) using lead-based materials are also at risk of lead poisoning [5-7]. Their exposure risks are increased due to a lack of work place regulations for lead exposure and poor implementation of waste management policies. According to the WHO, the widespread use of lead in different regions of the world has resulted in widespread environmental contamination, human exposure and high public health burden and currently there is no known level of lead exposure that is considered safe [1].</p>
      <p id="_paragraph-4">Chelation therapy is the most commonly used treatment option for lead poisoning [8]. These chelating agents include ethylene diamine tetra acetate (CaNa2EDTA), British anti-lewisite (BAL), Dimercaptosuccinic acid (DMSA), and penicillamine etc. Although DMSA is better than other chelating agent in terms of safety, it is still burdened with high content of essential minerals extraction [9]. In addition, medical condition such as lead poisoning, in which the symptoms are not as obvious and often go undiagnosed especially in the case of chronic and low-dose exposure, as in the case of occupational workers do not always require treatment with these conventional drugs. These side effects and other limitations have prompted the search for a safer alternative therapy.</p>
      <p id="_paragraph-5"><italic id="italic-ec9fb972e08b2b8c8e51f39c3e841da6">M. oleifera</italic>, also called drumstick tree, or horseradish tree, is a well-known and most widespread species of the Moringaceae family. It is a very important tropical plant widely used as medicine, human food, and in oil production [10]. All parts of M. oleifera<italic id="_italic-1"> such as</italic> leaves, flowers, gums, roots, seeds and fruits are used extensively to treat diabetes mellitus [11], renal and liver diseases [12], hematological and renal function [13], as well as metal intoxications including arsenic [14], and lead [15]. Previous studies have shown that <italic id="italic-39c2f3e1f6a7a57983ba7b975ba6b27d">M. oleifera</italic> leave are a good metal ion chelator [16].</p>
      <p id="_paragraph-6">The ability of <italic id="italic-70fb6959b705cd996296eb7c14973d78">M. oleifera</italic> seeds to remove cadmium from aqueous media has also been demonstrated [17]. This property is very useful in purifying drinking water, especially in low-income countries. It is therefore likely that the leaf extract could also remove lead in vivo. However, this work was designed to investigate the therapeutic potential of M. oleifera in the treatment of lead toxicity and to relate the outcome of supplementation to that of DMSA in lowering BLL as well as enhancing antioxidant activities.</p>
    </sec>
    <sec id="sec-2">
      <title>Materials and methods</title>
      <sec id="sec-2_1">
        <title>Plant Collection and extraction</title>
        <p id="_paragraph-7">Fresh leaves of <italic id="italic-6c55f56bf7e67c0d97a3582ddabf0d7c">M. oleifera</italic> were obtained from Obukpa at Nsukka LGA collected,  in Enugu State, Nigeria, and was identified taxonomically by a botanist (Ugwuozor PO) at Nnamdi Azikiwe University (NAU), Awka. The specimen copy (PCG474/A/037) has been deposited in the Herbarium of the Department of Pharmacognosy, Faculty of Pharmaceutical Sciences, NAU, Agulu for future reference. The fresh leaves were washed in clean water several times, air-dried in the shade for about 3 days, and then pulverized with a blender. This yielded 500 g of dried powder, which underwent complete extraction by a cold maceration process. Briefly, 500 g of dried powder was soaked in 2.5 liters of methanol for a week with intermittent shaking and changing the solvent every 48 h. The percolated extract was dried in the rotary evaporator at 45°C, weighed and dissolved in distilled water to give the final concentration of 200 and 400-mg extract/kg body weight. The exact weight of the final extract was 86.4 g, giving a percentage yield of 17.28%.</p>
      </sec>
      <sec id="sec-2_2">
        <title>Experimental animals</title>
        <p id="_paragraph-8">30 male Wistar rats weighing 140-160 g were procured from the breeding colony of the Department of Pharmacology/Toxicology, Faculty of Pharmaceutical Sciences, NAU, Awka. They were maintained under standard laboratory animal conditions at a temperature of 22±3 C, a relative humidity of 50±5% and a photoperiod of 12 h (12 h dark and 12 h light cycle). All animal experiment was performed in accordance with National Institutes of Health (NIH) guidelines for the care and use of laboratory animals.</p>
      </sec>
    </sec>
    <sec id="sec-3">
      <title>Materials and methods</title>
      <p id="_paragraph-9">The study design was approved by the Ethics Committee of the Faculty of Basic Medical Sciences, NAU, Nnewi Campus. The animals were assigned to five different groups of six animals each. Group A received normal rat chow and water ad libitum for 12 weeks, while groups B and C received 100-mg/kg body weight lead acetate orally for 6 weeks and then 200 and 400-mg/kg body weight <italic id="italic-e1ac85a2527afa5533c36b90efdbd48b">M. oleifera</italic> for a further 6 weeks. Group D rats were administered 100-mg/kg body weight lead acetate for 6 weeks and then 30-mg/kg body weight DMSA (PO) for 5 days, followed by 14 days 20-mg/kg body weight/day, while group E were administered 100-mg/kg body weight lead acetate for 6 weeks and then continued with 200-mg/kg body weight M. oleifera for 6 weeks concomitantly with 30-mg/kg body weight DMSA (PO) for 5 days followed by 14 days 20-mg/kg body weight/day.</p>
      <sec id="heading-6c15607d2182772f05c161c432faf535">
        <title>Sample collection and biochemicalanalysis</title>
        <p id="_paragraph-10">Blood samples were collected at three stages, namely: baseline (pretreatment), six weeks after administration of lead acetate, and six weeks after administration of <italic id="italic-7584a4369f43154b1e751740a365bef8">M. oleifera</italic>, DMSA, and their combinations. At the end of the experiment, the rats were fasted overnight and blood was collected by retro-orbital puncture. Blood was collected in lithium heparin containers for blood lead determination and also in sterile plain containers. The blood in the plain containers was allowed to clot, collected and the serum separated and stored at −30°C for analysis of oxidative parameters within a week of storage. [18]. SOD was determined using the method of Misra and Fredovich[19]. CAT was tested using the method of Sinha [20]. GST was determined according to the method of Habig, et al. [21].MDA was analyzed using the method of Gutteridge and Wilkins[22].</p>
      </sec>
      <sec id="heading-f82fbf8ade62e4062200ec4f87110b4f">
        <title>Statistical analysis</title>
        <p id="_paragraph-11">Version 21 of the Statistical Package for Social Sciences (SPSS) (IBM, USA) was used for the statistical analysis. All data were expressed as mean standard deviation. Test of significant difference of one group at different intervals was performed by paired t-test, while mean difference of more than two groups was performed using ANOVA (<italic id="_italic-2">p</italic>&lt;0.05 was taken as cut-off point for significant used). The plots were performed using SigmaPlot version 12 software.</p>
      </sec>
    </sec>
    <sec id="sec-6">
      <title>Results</title>
      <p id="_paragraph-12">The pretreatment BLL did not differ significantly (<italic id="_italic-3">p</italic>&gt;0.05) in all the groups. After six weeks of lead-acetate administration, there was significant (<italic id="_italic-4">p</italic>&lt;0.05) increase in the mean BLL in all the groups when compared with their pretreatment, and control group. BLL level decreased significantly (<italic id="_italic-5">p</italic>&lt;0.05) after 6 weeks of subsequent <italic id="italic-1bf62b00c40e583917c9b8ae09efc7ae">M. oleifera</italic> and DMSA administration when compared to their six weeks (lead acetate administration) level in all the groups. BLL at 12 weeks in 200-mg/kg body weight <italic id="italic-e64e447a6185f59cf142d2d1dfc87f15">M. oleifera</italic> and 400-mg/kg body weight M. oleifera groups differed significantly (<italic id="_italic-6">p</italic>&lt;0.05) when compared to their pretreatment levels(<italic id="_italic-7">p</italic>&lt;0.05), while BLL at 12 weeks in DMSA and 200-mg/kg body weight <italic id="italic-04070249cb4304f0ed71628b8627ed9d">M. oleifera</italic> + DMSA groups were similar with their pretreatment levels (<italic id="_italic-8">p</italic>&gt;0.05) (Figure 1).</p>
      <fig id="figure-panel-cc3fbf13d764d345a488c79ab47ffab4">
        <label>Figure 1</label>
        <caption>
          <title>The effects of 6-week administration of lead, and subsequent 6-week administration of different doses of M. oleifera, DMSA and their combinations on mean levels of blood lead levels.</title>
          <p id="paragraph-5b4736fc25017aea5a2b2b19729a2764">b=<italic id="_italic-9">p&lt;0.05 when compared with their baseline and 12 weeksc=p</italic>&lt;0.05 when compared with their baseline</p>
        </caption>
        <graphic id="graphic-c9a00d7a975a5458a4c6f270d3000b6b" mimetype="image" mime-subtype="png" xlink:href="1.png"/>
      </fig>
      <p id="_paragraph-14">The six-week administration of 200-mg/kg body weight <italic id="italic-a55b1f278c9a39970c6c52847e1baa5b">M. oleifera</italic>, 400-mg/kg body weight <italic id="italic-d2e67a02fab4c18e9a7c2c7cd302e296">M. oleifera</italic>, DMSA, and 200-mg/kg body weight M. oleifera + DMSA were able to reduce blood lead level up to 29%, 40.5%, 63% and 63.3% respectively from their six weeks lead acetate levels (Figure 2).</p>
      <fig id="figure-panel-299a8383fbf77cbefd937e51f26de9d0">
        <label>Figure 2</label>
        <caption>
          <title>The effects of 6-week administration of lead, and subsequent 6-week administration of different doses of M. oleifera, DMSA and their combinations on mean levels of SOD, catalase, GST, and MDA</title>
          <p id="paragraph-cf9a85992b7a8c7dbb8603856ade85f9">
            <italic id="_italic-11">b=p&lt;0.05 when compared with their baseline and 12 weeks.</italic>
          </p>
          <p id="_paragraph-16">
            <italic id="_italic-12">c=p&lt;0.05 when compared with their baseline.</italic>
          </p>
        </caption>
        <graphic id="graphic-d46f7424cde52ff2cacb2633e8db6917" mimetype="image" mime-subtype="png" xlink:href="2.png"/>
      </fig>
      <p id="paragraph-ac3cb1bbcdc7ce2d1ea8b95140cb108f"/>
      <p id="_paragraph-17">The pretreatment levels of serum MDA, SOD, catalase and GST did not differ significantly (<italic id="_italic-13">p</italic>&gt;0.05) in all the groups. The mean level of MDA increased significantly (<italic id="_italic-14">p</italic>&lt;0.05) while the mean levels of SOD, GST and CAT activities decreased significantly (<italic id="_italic-15">p</italic>&lt;0.05) after six weeks of lead-acetate administration when compared with their pretreatment levels in all the groups, except in control group (<italic id="_italic-16">p</italic>&gt;0.05). However, the mean level of MDA decreased significantly (<italic id="_italic-17">p</italic>&lt;0.05) while the mean levels of SOD, GST and catalase activities increased significantly (<italic id="_italic-18">p</italic>&lt;0.05) after 6 weeks of subsequent <italic id="italic-e03332635999abd7d04b2fc9d7ea5f20">M. oleifera</italic> and DMSA administration when compared with their six weeks of lead-acetate administration in all the groups (<italic id="_italic-19">p</italic>&lt;0.05), except for SOD and GST in DMSA and control group (<italic id="_italic-20">p</italic>&gt;0.05). All the parameters did not differ significantly after 6 weeks of subsequent <italic id="italic-dceba9aae39efaa46e4b01f824ec936c">M. oleifera</italic> and DMSA administration when compared with their pretreatment levels in all the groups (<italic id="_italic-21">p</italic>&gt;0.05), except in DMSA group and for MDA and catalase in 200-mg/kg body weight <italic id="italic-a7750aa0eae1c8d0d04043688e3f20f8">M. oleifera</italic> group (<italic id="_italic-22">p</italic>&lt;0.05) (Figure 2).</p>
      <p id="_paragraph-18">The six-week administration of 200-mg/kg body weight <italic id="italic-74e0b6ff889acefccacb81cbb76fd35b">M. oleifera</italic>, 400-mg/kg body weight <italic id="italic-81d6db225720a478e1ccd7c17afbd0a6">M. oleifera</italic>, DMSA, and 200-mg/kg body weight <italic id="italic-52ebd2d6e0ca4014b6348c7631a4965d">M. oleifera</italic> + DMSA produced serum increase in SOD activities by 29%, 35%, 5%, 38.5% (Figure 3); CAT activities by 20.8%, 26.3%, 14.8%and 34% (Figure 3); GST activities by 48.6%, 53%, 32% and 49.4% (Figure 3); and were able to decrease MDA levels by 29.6%, 52%, 23.7% and 51.9% respectively (Figure 3).</p>
      <fig id="figure-panel-3961a9e4bd7d6f2d84a5545fc90610f0">
        <label>Figure 3</label>
        <caption>
          <title>The percentage changes in the levels of BLL, MDA, SOD, CAT, and GST following M. oleifera and DMSA treatment on lead-induced toxicity in rat</title>
          <p id="paragraph-9f4d619770eef7d64f11afccbfdb25aa"/>
        </caption>
        <graphic id="graphic-a4c15d10d61feb42877d32299c4b3b4a" mimetype="image" mime-subtype="png" xlink:href="3.png"/>
      </fig>
    </sec>
    <sec id="sec-7">
      <title>Discussion</title>
      <p id="_paragraph-19">Lead is a toxic metal when ingested or inhaled, and it affects almost every system in the body [23]. Six weeks oral lead administration, as observed in this study could result in significantly elevated blood lead levels (Figure 1), which correlated with the recorded lead-induced toxicity. A previous study reported an association between elevated blood lead and deleterious effects on antioxidant activities [24].</p>
      <p id="_paragraph-20">However, six weeks oral administration of <italic id="italic-59897ea9453a755941c76939680316f7">M. oleifera</italic> leave extract at different doses significantly reduced BLL though DMSA alone and in combination with <italic id="italic-9639eee1f2f3e3be9d3c5c96eec4a296">M. oleifera</italic> were more effective (Figure 1). The significant reduction in the blood lead level as observed in this study may have been mediated through chelation by the <italic id="italic-44cc031df4778ce8dc012cb54e462937">M. oleifera</italic> leave extract. Studies have shown that the leave extract of <italic id="italic-7416edc3ca07109e57b957ee8f1882e4">M. oleifera</italic> was rich in essential amino acids especially the sulfur containing amino acids [25]. These proteineous amino acids have been shown to exhibit variety of structurally related pH-dependent properties, which generate negatively charged atmosphere that play important role in binding to metals [17].</p>
      <p id="_paragraph-21">Lead induced oxidative stress has been described as the primary contributory agent in the pathogenesis of lead toxicity [26]. This study showed that lead exposure for six weeks significantly decreased antioxidant enzymes (SOD, CAT, and GST) and increased lipid peroxidation product (MDA) (Figure 2). These findings were in agreement with other previous works that reported increased lipid peroxidation [27], and decrease in antioxidant levels [28]. More so, previous studies have shown that lead can cause oxidative stress in many ways. For instance, by inducing the generation of reactive oxygen species; reduction in the antioxidant defense system of cells via depleting glutathione; interference with some essential metals; inhibition of sulfhydryl dependent enzymes or antioxidant enzymes activities; or by increased susceptibility of cells to oxidative attack by altering membrane integrity and fatty-acid composition [29].</p>
      <p id="_paragraph-22">After six weeks of administration of different doses of <italic id="italic-a9dc1c4d4f0b7ef934c29cbcd1e668e5">M. oleifera</italic> (200 and 400-mg/kg body weight), DMSA, and their combinations, the altered oxidative markers induced by lead exposure were variably restored. Though, DMSA alone increased the antioxidant enzymes activities (SOD, CAT and GST) and decreased the raised lipid peroxidation, <italic id="italic-6c716e884af5c4954367ac75ebef7542">M. oleifera</italic> at both concentrations were more effective in restoring the altered oxidative markers (Figure 2). This showed that the <italic id="italic-495ae7e93b6dc39630657c20f3d79c9d">M. oleifera</italic> leave<italic id="_italic-23"> extract</italic> can reverse the oxidative cell damage caused by lead toxicity. These findings were in line with a previous study that reported significant higher activities of SOD, CAT and GST and a significant lower level of lipid peroxidation after administration of <italic id="italic-754a5548780eda5674f93ccddb6c89d8">M. oleifera</italic> leave extract in diabetic rats [30]. They attributed the protection against oxidative damage by <italic id="italic-f14c40e7bc542a4c5920be8551fe1d2e">M. oleifera</italic> to increased level of flavonoid and phenolic contents presence in the <italic id="italic-ce1bd332863cfdd2d3f63eae5f586c1b">M. oleifera </italic>leave extract.</p>
      <p id="_paragraph-23">Figure 3 showed that the combined administration of DMSA and <italic id="italic-6685c1a0e4ad9611413625cd345005dc">M. oleifera</italic> was better than the individual treatments in the recovery of the antioxidant parameters and reduction in lipid peroxidation product as well as depletion of blood lead levels. Though, the combination did not appreciably decrease BLL more than DMSA alone, increasing the concentration of <italic id="italic-0c5d5d56968d99814a87794043415d3a">M. oleifera</italic> used in the combination may be accompanied by more pronounced reduction in BLL.</p>
      <p id="_paragraph-24">Due to high safety profile of<italic id="italic-1f6bbfd972fb1a98987feade147ff047"> M. oleifera</italic>[31], and its desirable nutrient contents such as vitamins, essential minerals, amino acids, fatty acids [32], extending the duration of supplementation may increase the degree of blood lead reduction and enhance antioxidant activities in subject exposed to lead. <italic id="italic-27ae38d5e3de270daf3909dc80282b53">M. oleifera</italic> may also serve as a desirable therapeutic approach in chronic to low dose lead exposure, such as in the case of occupational workers in which case the conventional chelating agents may not be recommended. Availability and cost-effectiveness also speakin favor of <italic id="italic-460c5997b3b689ce434650be9869f9ae">M. oleifera </italic>especially in low income countries like Nigeria.</p>
    </sec>
    <sec id="heading-224efd3364085bd94182f12abe4116d9">
      <title>Conclusion </title>
      <p id="_paragraph-26"><italic id="italic-78fc970846d4d83f6255d35d027f9b1b">M. oleifera</italic> not only significantly reduced blood lead levels, but also protected against oxidative damage after six weeks of administration in lead exposed rats.</p>
      <p id="_paragraph-27">Conflict of interest: None</p>
      <p id="_paragraph-28">Conflicts of interest: This research is self-sponsored.</p>
    </sec>
    <sec id="sec-8">
      <title>References</title>
      <p id="_paragraph-29">1. WHO. Factsheet. Lead poisoning and health; 2013. Available at: hptt: [cited 2/6/2015]. Available from: http://www.who.int/mediacentre/factsheets/fs379/en/.</p>
      <p id="_paragraph-30">2. Pokras MA, Kneeland MR. Lead poisoning: using transdisciplinary approaches to solve an ancient problem. Ecohealth. 2008;5(3):379-85. doi: <ext-link id="_external-link-1" xlink:href="https://doi.org/10.1007/s10393-008-0177-x">10.1007/s10393-008-0177-x</ext-link>, PMID <ext-link id="_external-link-2" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/19165554">19165554</ext-link>.</p>
      <p id="_paragraph-31">3. Sans M. Frontieres. Lead Poisoning Crisis in Zamfara State, Northern Nigeria; 2012 [cited 2/6/2015]. Available from:<ext-link id="_external-link-3" xlink:href="http://www.msf.org">http://www.msf.org</ext-link>.</p>
      <p id="_paragraph-32">4. Says FG. Vanguard. Nigeria: Lead Poisoning Kills 28 in Niger;May 14, 2015 [cited 2/7/2015]. Available from:<ext-link id="_external-link-4" xlink:href="http://www.allafrica.com/stories/201505140096.html">http://www.allafrica.com/stories/201505140096.html</ext-link>.</p>
      <p id="_paragraph-33">5. Amah UK, Madu NK, Ahaneku JE, Ahaneku GI, Onah CE, Onuegbu JA et al.Evaluation of nephrotoxic effect of lead exposure among automobile repairers in Nnewi Metropolis. IntJResMedSci. 2014;2(3):1107-11. doi: <ext-link id="_external-link-5" xlink:href="https://doi.org/10.5455/2320-6012.ijrms20140893">10.5455/2320-6012.ijrms20140893</ext-link>.</p>
      <p id="_paragraph-34">6. C Ogbodo E, N Okpogba A, C Dike C, O Nwoko S, C Ugwu E. Evaluation of heavy metal levels in blo od of cable manufacturing factory workers in Nnewi. Int J Clin BiochemRes. 2019;6(3):430-6. doi: <ext-link id="_external-link-6" xlink:href="https://doi.org/10.18231/j.ijcbr.2019.091">10.18231/j.ijcbr.2019.091</ext-link>.</p>
      <p id="_paragraph-35">7. Ogbodo EC, Okpogba AN, Amah UK, Mounmbegna EP, Obi-Ezeani CN. Evaluation of some heavy metal levels in blood of lead acid battery manufacturing factory workers in Nnewi, Nigeria. Indian J Pharm Pharmacol. 2020;7(2):82-94. doi: <ext-link id="_external-link-7" xlink:href="https://doi.org/10.18231/j.ijpp.2020.017">10.18231/j.ijpp.2020.017</ext-link>.</p>
      <p id="_paragraph-36">8. Zhai Q, Narbad A, Chen W. Dietary strategies for the treatment of cadmium and lead toxicity. Nutrients. 2015;7(1):552-71. doi: <ext-link id="_external-link-8" xlink:href="https://doi.org/10.3390/nu7010552">10.3390/nu7010552</ext-link>, PMID <ext-link id="_external-link-9" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/25594439">25594439</ext-link>.</p>
      <p id="_paragraph-37">9. Mikirova N, Casciari J, Hunninghake R. Efficacy of oral DMSA and intravenous EDTA in chelation of toxic metals and improvement of the number of stem/progenitor cells in circulation. TranslBiomed.2011;2:1-8.</p>
      <p id="_paragraph-38">10. Hamza AA. Ameliorative effects of <italic id="_italic-24">Moringa oleifera</italic> Lam seed extract on liver fibrosis in rats. Food Chem Toxicol. 2010;48(1):345-55. doi: <ext-link id="_external-link-10" xlink:href="https://doi.org/10.1016/j.fct.2009.10.022">10.1016/j.fct.2009.10.022</ext-link>, PMID <ext-link id="_external-link-11" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/19854235">19854235</ext-link>.</p>
      <p id="_paragraph-39">11. Nwogor TA, Ogbodo EC, Amah UK, Ezeugwunne IP, Onah CE, Okwara JE, et al.The effects of <italic id="_italic-25">Moringa oleifera </italic>intake on plasmaglucose and serumlipidconcentrations in apparentlyhealthystudents of college of healthsciences.Anamra State, Nigeria: Nnamdi Azikiwe University, Nnewi Campus. <italic id="_italic-26">International Journal of Novel Research in Life Sciences</italic>; 2017; 4(4). p. 89-99.</p>
      <p id="_paragraph-40">12. ‘Onah C, Meludu S, Dioka C, Onuegbu A, Onah C, Ajaghaku D et al. Amelioratory Effect of Methanolic Leaf Extract of <italic id="italic-a4a057f8ec0871dcde0e64e154e13a68">Moringa oleifera</italic> on Some Liver and Kidney Function and Oxidative Stress Markers in Lead-intoxicated Rats. EJMP;12(4):1-12. doi: <ext-link id="_external-link-12" xlink:href="https://doi.org/10.9734/EJMP/2016/23763">10.9734/EJMP/2016/23763</ext-link>’</p>
      <p id="_paragraph-41">13. Mazumder UK, Gupta M, Chakrabarti S, Pal D. Evaluation of haematological and hepatorenal functions of methanolic extract of <italic id="_italic-27">Moringa oleifera</italic> Lam. root treated mice. Indian JExpBiol. 1999;37(6):612-4. PMID <ext-link id="_external-link-13" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/10641193">10641193</ext-link>.</p>
      <p id="_paragraph-42">14. Gupta R, Kannan GM, Sharma M, Flora SG. Therapeutic effect of <italic id="_italic-28">Moringa oleifera</italic> in arsenic- induced toxicity in rat. EnvroToxicolPharmacol.2005;20:456-64.</p>
      <p id="_paragraph-43">15. Sirimongkolvorakul S, Tansatit T, Preyavichyapugdee N, Kosail P, Jiraungkoorskul K,Jiraungkoorskul W. Efficiency of <italic id="_italic-29">Moringa oleifera</italic> dietary supplement reducing leadtoxicity in Puntius altus. J Med Plants Res. 2012;6(2):187-94. doi: <ext-link id="_external-link-14" xlink:href="https://doi.org/10.5897/JMPR11.062">10.5897/JMPR11.062</ext-link>.</p>
      <p id="_paragraph-44">16. Aamir R, Tahseen G, Kh. AY, Faiz-ul-Hassan N, FehmidaYounas, Saiqa A. Exploring anti-acetylcholinesterase, antioxidant and metal chelating activities of extracts of <italic id="italic-fcc3f79db8b253d1348f0b0d1ad0530e">Moringa oleifera </italic>L. for possible prevention and cure of Alzheimers disease. SciResEssays. 2014;9(11):523-7. doi: <ext-link id="_external-link-15" xlink:href="https://doi.org/10.5897/SRE2013.5537">10.5897/SRE2013.5537</ext-link>.</p>
      <p id="_paragraph-45">17. Sharma P, Kumari P, Srivastava MM, Srivastava S. Removal of cadmium from aqueous system by shelled <italic id="italic-1125e8a2c99a4f7c3a419973ecc5c800">Moringa oleifera</italic> lam. seed powder. Bioresour Technol. 2006;97(2):299-305. doi: <ext-link id="_external-link-16" xlink:href="https://doi.org/10.1016/j.biortech.2005.02.034">10.1016/j.biortech.2005.02.034</ext-link>, PMID <ext-link id="_external-link-17" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/15949938">15949938</ext-link>.</p>
      <p id="_paragraph-46">18. Hassel DW. A simple and rapid quantitative determination of lead in blood. AtomAbsorp.Newsl1968;7:50-5.</p>
      <p id="_paragraph-47">19. Misra HP, Fridovich I. The role of superoxideanion in the autoxidation of epinephrine and a simpleassay for superoxide dismutase. J Biol Chem. 1972;247(10):3170-5. doi: <ext-link id="_external-link-18" xlink:href="https://doi.org/10.1016/S0021-9258(19)45228-9">10.1016/S0021-9258(19)45228-9</ext-link>, PMID <ext-link id="_external-link-19" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/4623845">4623845</ext-link>.</p>
      <p id="_paragraph-48">20. Sinha AK. Colorimetric assay of catalase.AnalBiochem. 1972;47(2):389-94. doi: <ext-link id="_external-link-20" xlink:href="https://doi.org/10.1016/0003-2697(72)90132-7">10.1016/0003-2697(72)90132-7</ext-link>, PMID <ext-link id="_external-link-21" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/4556490">4556490</ext-link>.</p>
      <p id="_paragraph-49">21. Habig WH, Pabst MJ, Jakoby WB. Glutathione S-transferases. The first enzymatic step in mercapturic acid formation. J Biol Chem. 1974;249(22):7130-9. PMID <ext-link id="_external-link-22" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/4436300">4436300</ext-link>.</p>
      <p id="_paragraph-50">22. Gutteridge JM, Wilkins S.Formation of thiobarbituric acid reactive products. FEBS Lett. 1982;137(2):327-30. doi: <ext-link id="_external-link-23" xlink:href="https://doi.org/10.1016/0014-5793(82)80377-3">10.1016/0014-5793(82)80377-3</ext-link>, PMID <ext-link id="_external-link-24" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/6277694">6277694</ext-link>.</p>
      <p id="_paragraph-51">23.Helmenstine AM. What makes lead poisonous; 2012 [cited 20/5/2015]. Available from: http://www.chemistry.about.com/od/howthingsworkfaqs/f/leadpoisoning.htm.</p>
      <p id="_paragraph-52">24. Patra RC, Rautray AK, Swarup D. Oxidative stress in lead and cadmium toxicity and its amelioration. Vet MedInt.2011;2011:457327. doi: <ext-link id="_external-link-25" xlink:href="https://doi.org/10.4061/2011/457327">10.4061/2011/457327</ext-link>, PMID <ext-link id="_external-link-26" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/21547215">21547215</ext-link>.</p>
      <p id="_paragraph-53">25. Richter N, Siddhuraju P, Becker K. Evaluation of nutritional quality of <italic id="italic-40579ba6b27a0e945d179d04731923eb">Moringa oleifera</italic> leaves as an alternative protein source for Nile tilapia. Aquaculture. 2003;217(1):599-611.</p>
      <p id="_paragraph-54">26. Xu J, Lian LJ, Wu C, Wang XF, Fu WY, Xu LH. Lead induces oxidative stress, DNA damage and alteration of p53, Bax and Bcl-2 expressions in mice. Food Chem Toxicol. 2008;46(5):1488-94. doi: <ext-link id="_external-link-27" xlink:href="https://doi.org/10.1016/j.fct.2007.12.016">10.1016/j.fct.2007.12.016</ext-link>, PMID <ext-link id="_external-link-28" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/18226849">18226849</ext-link>.</p>
      <p id="_paragraph-55">27. Bokara KK, Brown E, McCormick R, Yallapragada PR, Rajanna S, Bettaiya R. Lead induced increase in antioxidant enzymes and lipid peroxidation products in developing rat brain. Biometals. 2008;21(1):9-16. doi: <ext-link id="_external-link-29" xlink:href="https://doi.org/10.1007/s10534-007-9088-5">10.1007/s10534-007-9088-5</ext-link>, PMID <ext-link id="_external-link-30" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/18214713">18214713</ext-link>.</p>
      <p id="_paragraph-56">28. Vaziri ND, Lin CY, Farmand F, Sindhu RK. Superoxide dismutase, catalase, glutathione peroxidase and NADPH oxidase in lead induced hypertension. Kidney Int. 2003;63(1):186-94. doi: <ext-link id="_external-link-31" xlink:href="https://doi.org/10.1046/j.1523-1755.2003.00711.x">10.1046/j.1523-1755.2003.00711.x</ext-link>, PMID <ext-link id="_external-link-32" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/12472782">12472782</ext-link>.</p>
      <p id="_paragraph-57">29. Sharma S, Sharma V, PrachetaSSH. Therapeutic Potential of Hydromethanolic Root Extract of Withaniasomnifera onNeurological Parameters in Swiss albino Mice Subjected to leadnitrate. Int J CurrPharmaceu Res.2011;3:52-6.</p>
      <p id="_paragraph-58">30. Jaiswal D, Rai PK, Mehta S, Chatterji S, Shukla S, Rai DK et al.Role of <italic id="italic-0ca03d4f8847b91fd6c1ba1996bfd33c">Moringa oleifera</italic> in regulation of diabetes-induced oxidative stress. Asian Pac J Trop Med. 2013;6(6):426-32. doi: <ext-link id="_external-link-33" xlink:href="https://doi.org/10.1016/S1995-7645(13)60068-1">10.1016/S1995-7645(13)60068-1</ext-link>, PMID <ext-link id="_external-link-34" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/23711700">23711700</ext-link>.</p>
      <p id="_paragraph-59">31. Stohs SJ, Hartman MJ. Review of the safety and efficacy of <italic id="italic-ce3093e92e4f791c409e3c36c1d340b4">Moringa oleifera</italic>.PhytotherRes. 2015;29(6):796-804. doi: <ext-link id="_external-link-35" xlink:href="https://doi.org/10.1002/ptr.5325">10.1002/ptr.5325</ext-link>, PMID <ext-link id="_external-link-36" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/25808883">25808883</ext-link>.</p>
      <p id="_paragraph-60">32. Teixeira EMB, Carvalho MRB, Neves VA, Silva MA, Arantes-Pereira L. Chemical characteristics and fractionation of proteins from Moringa oleifera Lam. leaves. Food Chem.2014;147:51-4. doi: <ext-link id="_external-link-37" xlink:href="https://doi.org/10.1016/j.foodchem.2013.09.135">10.1016/j.foodchem.2013.09.135</ext-link>, PMID <ext-link id="_external-link-38" xlink:href="https://www.ncbi.nlm.nih.gov/pubmed/24206684">24206684</ext-link>.</p>
    </sec>
  </body><back/></article>
