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Biology subjects

Nyuma, H. T.

Publications and source records attributed to Nyuma, H. T..

2 recordsLinked to original sources

Chemical Dynamics of Heavy Metal Translocation and Phytoaccumulation Paradoxes in Highly Leached, Acidic Xanthic Ferralsols of Fendall, Liberia

Heavy metal contamination in soil systems is an escalating global crisis, yet over 55% of urban agriculture literature focuses on high-tech indoor vertical farming, leaving vulnerable open-field tropical urban agriculture (UPA) severely under-researched. This study addresses this knowledge gap by evaluating the chemical mechanics of heavy metal translocation within highly acidic Xanthic Ferralsols in Fendall, Liberia, serving as a global proxy for tropical agro-ecosystem risks. Using a randomized complete block design, topsoil (0-20 cm) from five cultivated and five uncultivated sites (n = 10) and corresponding tissues of cabbage (Brassica oleracea), lettuce (Lactuca sativa), and sweet potato greens (Ipomoea batatas) were screened via handheld X-ray fluorescence spectrometry. Results revealed a compelling geochemical paradox: uncultivated soils demonstrated significantly higher geogenic background metal concentrations across all elements (p < 0.05). Systemic Nickel (Ni) above the World Health Organization (WHO) thresholds was recorded on both land-use histories. While plant tissues accumulation of Copper (Cu) and Zinc (Zn) remained within safe parameters, Lead (Pb) concentrations across all crops profoundly exceeded food safety standards, averaging 1.53 mg/kg, which is over 5 times above the WHO limit (0.30 mg/kg). Risk screening highlighted high soil-to-plant transfer factors (TF =>1) for Ni and Zn in plant tissue, in the order of cabbage > sweet potato greens > lettuce. These findings provide transferable insights into how high soil acidity accelerates toxic metal mobilization, offering a scalable framework for crop-specific exclusion policies and real-time field screening in tropical municipalities. AbstractRapid urban agricultural expansion in Montserrado County, Liberia, relies heavily on highly weathered acidic Xanthic Ferralsols. While these soils support crop growth, they present a hidden geogenic risk of heavy metal translocation to the human food chain. This study evaluated the concentrations of Copper (Cu), Nickel (Ni), Lead (Pb), and Zinc (Zn) in the soils and edible tissues of cabbage (Brassica oleracea), lettuce (Lactuca sativa), and sweet potato greens (Ipomoea batatas) in Fendall. The uncultivated soils exhibited a geochemical paradox, showing significantly higher total metal concentrations than cultivated plots. However, low soil pH (4.0-6.0) highly mobilized these geogenic metals, driving rapid plant uptake. While tissue concentrations of Cu, Ni, and Zn remained within safe physiological ranges, Lead (Pb) concentrations in all three crops reached an alarming mean of 1.53 mg/kg, exceeding the World Health Organization (WHO) permissible safety limit of 0.30 mg/kg by more than 5-fold. The soil-to-plant Transfer Factors (TF) for Lead ranged from 0.51 to 0.81, highlighting significant bioavailable translocation despite the lack of visible crop phytotoxicity. These results demonstrate that passive geogenic metal uptake poses a silent public health threat. Immediate agronomic interventions, including systematic liming and crop-exclusion frameworks, are urgently required to safeguard urban food security in Monrovia. GRAPHIC ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=157 SRC="FIGDIR/small/740606v1_ufig1.gif" ALT="Figure 1"> View larger version (111K): org.highwire.dtl.DTLVardef@11b1d37org.highwire.dtl.DTLVardef@11b3bc9org.highwire.dtl.DTLVardef@f24429org.highwire.dtl.DTLVardef@158e03b_HPS_FORMAT_FIGEXP M_FIG C_FIG

ecology↗

Agroforestry adoption and its influence on soil quality under smallholder maize production systems in western Kenya

Agroforestry, a sustainable land use practice was-introduced in western Kenya in the early 1990s as a soil fertility replenishment strategy alongside other multiple benefits. Since then, effect of the practice on soil quality is seldom evidenced. Therefore, a study was conducted in the region to assess the effects of agroforestry adoption on soil quality under small holder maize production systems. A total of 120 soil samples were collected from two land use practices: agroforestry adoption (90) and non-agroforestry adoption (30) at 0-30 cm depth from two locations (Busia and Kakamega counties). On average, adoption of agroforestry significantly improved soil physicochemical properties compared to non-adoption of agroforestry. Bulk density (BD) reduced by 21% (from 1.4 to1.1g cm-3) while SOC increased by 75% (0.8-1.4%), P by 80% (3.0-5.4 mg kg-1), exchangeable K+ by 256% (0.3-8.0 Cmolc kg-1), Ca2+ by 100% (1.0-2.0 Cmolc kg-1), S by 50%(0.2-0.3 mg kg-1), and Cu by 18% (2.8-3.3 mg kg-1).In reference to the soil environmental requirement for maize production, agroforestry adoption significantly increased K and Cu above the critical thresholds of 0.4 Cmolc kg-1 and 1.0 mg kg-1, respectively regardless of the study location or adoption practice. In addition, different agroforestry tree species had variable effect on soil properties. Sesbania and leucaena significantly influenced soil BD, clay, pH, Similarly, soil available P (4.3.-7.0 mg kg -1), exchangeable K+ (0.4-0.7 cmolc kg-1), Mg (0.1-0.2 cmolc kg-1), and Mn (13.5 - 25.2 mg kg-1) above non-agroforestry adoption at both locations, while calliandra significantly increased SOC in Kakamega only.

ecology↗