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    <title>UnizikSpace Community: Faculty of Biosciences</title>
    <link>http://repository.unizik.edu.ng/handle/123456789/27</link>
    <description>Faculty of Biosciences</description>
    <pubDate>Tue, 11 Aug 2026 08:03:43 GMT</pubDate>
    <dc:date>2026-08-11T08:03:43Z</dc:date>
    <item>
      <title>Harnessing phages as biocontrol agents against common bacterial blight diseases in plants</title>
      <link>http://repository.unizik.edu.ng/handle/123456789/1241</link>
      <description>Title: Harnessing phages as biocontrol agents against common bacterial blight diseases in plants
Authors: Anakwenze, Vivian Nonyelum; Enukorah, Esther Chidera; Adewale, Kazeem Shakiru; Nnadi, Emmanuel Nnaemeka; Isiaka, Amarachukwu Bernaldine; Anaukwu, Chikodili Gladys; Ekwealor, Chito Clare; Ezemba, Chinyere Constance; Anyaoha, Victoria Ihedinachi; Amailo, Emmanuela Nneamaka
Abstract: Bacterial blight diseases in plants are caused by various bacterial pathogens such as Dickeya, Pectobacterium,&#xD;
Xanthomonas, and others. They infect a wide range of crops including potatoes, tomatoes, apples, and citrus. The impact of these diseases includes reduced crop yields, lower quality produce, and economic losses for farmers. Traditional&#xD;
control methods like antibiotics and copper-based compounds are becoming less effective due to the development of&#xD;
resistance and environmental concerns. As a result, there is growing interest in alternative strategies such as biocontrol agents (BCAs), particularly bacteriophages. Bacteriophages are viruses that infect bacteria, they offer a promising solution to agricultural disease management. Their specificity and ability to target pathogenic bacteria make them an environmentally friendly alternative to chemical interventions. By optimizing phage formulations and application protocols, bacteriophages have the potential to contribute to healthier crops, increased yields, and a more sustainable agricultural system.
Description: scholarly works</description>
      <pubDate>Sat, 27 Jul 2024 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://repository.unizik.edu.ng/handle/123456789/1241</guid>
      <dc:date>2024-07-27T00:00:00Z</dc:date>
    </item>
    <item>
      <title>Heavy metal application of response surface optimized‑lipopeptide biosurfactant produced by Pseudomonas aeruginosa strain CGA‑02 in low‑cost substrate</title>
      <link>http://repository.unizik.edu.ng/handle/123456789/1199</link>
      <description>Title: Heavy metal application of response surface optimized‑lipopeptide biosurfactant produced by Pseudomonas aeruginosa strain CGA‑02 in low‑cost substrate
Authors: Chikodili Gladys Anaukwu1, Chikodili Gladys; Ekwealor, Chito Clare; Anakwenze, Vivian Nonyelum; Orji, Chinedu Christian; Ogbukagu, Chioma Maureen; Anyaoha, Victoria Ihedinachi; Isiaka, Amarachukwu Bernaldine; Green, Stefan Joshua; Ekwealor, Ikechukwu Amechi
Abstract: Cost-efective methods of biosurfactant production with minimal environmental impact are needed as global demand continues to increase. This study evaluated lipopeptide biosurfactant production in a Pseudomonas aeruginosa strain CGA-02 using a low-cost carbon substrate. The structural properties of the biosurfactant and applicability of the biosurfactant in heavy metal removal were evaluated. Response surface methodology (RSM) involving central composite design (CCD) was used to optimize process parameters to maximize biosurfactant production. The study identifed sugar cane molasses and sodium nitrate as carbon and nitrogen sources of choice for bacterial growth and biosurfactant production, with a relatively 2.64-fold increase in biosurfactant yield under optimized conditions. Analysis of the biosurfactant measured a surface tension reduction of water from 72.2±0.26 to 30.5±0.2 mN/m at 40 mg/L critical micelle concentration. GC–MS and FTIR analysis revealed structural properties of the lipopeptide biosurfactant, with fatty acid components&#xD;
predominantly 9-octadecenoic acid (oleic acid), n-hexadecanoic acid, cyclotetrasiloxane and trimyristin, and infrared peaks belonging to amine, carboxyl, nitrile, alkanol, ether and carbonyl groups. Capture of heavy metals using the biosurfactant was evaluated in soil microcosms. Removal rates of 80.47, 100, 77.57, 100, and 97.57% were recorded for As, Pb, Hg, Cd and Cr respectively after 12 weeks of incubation. There was no signifcant diference (p&lt;0.05) in the removal efciency of the biosurfactant and an analogous chemical surfactant, sodium dodecyl sulphate. First and second-order kinetic models described heavy metal removal rates by the biosurfactant. We demonstrate the production of a useful biosurfactant using low-cost waste carbon.
Description: scholarly works</description>
      <pubDate>Tue, 07 May 2024 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://repository.unizik.edu.ng/handle/123456789/1199</guid>
      <dc:date>2024-05-07T00:00:00Z</dc:date>
    </item>
    <item>
      <title>Chemical modification of cellulose from palm kernel de- oiled cake to microcrystalline cellulose and its evaluation as a pharmaceutical excipient</title>
      <link>http://repository.unizik.edu.ng/handle/123456789/1198</link>
      <description>Title: Chemical modification of cellulose from palm kernel de- oiled cake to microcrystalline cellulose and its evaluation as a pharmaceutical excipient
Authors: Ezea, Vincent Ndika; Umerie, Sunday Chidozie; Ubaoji, Kingsley Ikechukwu
Abstract: Microcrystalline cellulose (MCC) is an important ingredient in pharmaceutical, food, cosmetic and other industries. In this research work, microcrystalline cellulose was synthesized from the alpha cellulose content of pretreated palm kernel de-oiled cake. The microcrystalline cellulose from palm kernel cake was obtained through acidified sodium chlorite, sodium hydroxide delignification followed by hydrogen peroxides bleaching and finally acid hydrolysis. The prepared microcrystalline cellulose was characterized by determining some physicochemical properties such as pH, bulk density, tap density, moisture content, ash content, Carrs compressibility index, Hausners ratio, powder porosity, angle of repose and compared with commercial-grade microcrystalline cellulose that is used in pharmaceutical industry as excipient. FT-IR was employed to expose the functional groups and the wavelength inherent&#xD;
by both the produced and commercial microcrystalline cellulose. The swelling property of MCC product&#xD;
was determined based on hydration capacity, swelling capacity and moisture sorption capacity. The results of the physicochemical parameters were given as pH (7.75 ± 0.40), bulk density (0.49 ± 0.67 gcm-3), tapped density (0.54 ± 0.03 gcm-3), moisture content (1.00 ± 0.5%), ash content (4.30 ± 0.35%), Carrs compressibility index (12.96 ± 0.27), Hausners ratio (1.15 ± 0.01), powder porosity (18.8 ± 0.55), angle of repose (27.4 ± 0.26), respectively. The swelling properties were also determined and compared favorably with the commercial grade of microcrystalline cellulose (p&gt;0.05). The findings suggest that palm kernel cake can not only be used as feeds for animals but also a better source of cellulose for the production of microcrystalline cellulose for the industry owing to its availability and cost managements.
Description: Scholarly work</description>
      <pubDate>Mon, 01 Jul 2019 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://repository.unizik.edu.ng/handle/123456789/1198</guid>
      <dc:date>2019-07-01T00:00:00Z</dc:date>
    </item>
    <item>
      <title>Exploring the role of gut microbiota in human health</title>
      <link>http://repository.unizik.edu.ng/handle/123456789/1194</link>
      <description>Title: Exploring the role of gut microbiota in human health
Authors: Isiaka, Amarachukwu Bernaldine; Anakwenze, Vivian Nonyelum; Uzoka, Ugonna Henry; Ilodinso, Chiamaka Rosemary; Oso, Mercy Oluwayomi; Ekwealor, Chito Clare; Anaukwu, Chikodili Gladys
Abstract: The study explores the intricate relationship between the human gut microbiota and health. It analyzes the gut&#xD;
microbiota’s roles in digestion, metabolism, immune responses, and overall well-being. The review discusses the composition and diversity of gut microbial communities, emphasizing their symbiotic relationship with the host. It also examines how gut dysbiosis, or microbial imbalance, relates to health conditions like inflammatory bowel diseases and metabolic disorders. The review highlights research methodologies like metagenomics and metabolomics that deepen our understanding of gut microbiota function. It also explores external factors, such as diet and antibiotic use, in shaping the gut microbiome. The review discusses potential therapeutic interventions like probiotics and fecal microbiota transplantation, suggesting a future for personalized medicine. By synthesizing existing knowledge, the review aims to advance understanding of the gut microbiota’s role in health and suggest future research and interventions.
Description: scholarly works</description>
      <pubDate>Wed, 03 Apr 2024 00:00:00 GMT</pubDate>
      <guid isPermaLink="false">http://repository.unizik.edu.ng/handle/123456789/1194</guid>
      <dc:date>2024-04-03T00:00:00Z</dc:date>
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