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Biology subjects

Manning, S. R.

Publications and source records attributed to Manning, S. R..

2 recordsLinked to original sources

Natural slab photonic crystals and where to find them among the girdle bands of diatoms

Slab photonic crystals, nanomaterials characterized by periodic pores for manipulating light, have applications in advanced optical technologies. Remarkably, similar materials have been identified in the silica shell of diatoms, in particular the girdle bands. Despite the potential applications and significance for diatom biology, their prevalence remains uncertain due to limited observations across a few species. In this study of 393 SEM girdle band micrographs across major taxonomic groups, we identified slab photonic crystals using Fast Fourier Transform (FFT) analysis. A correlation analysis of these properties on a phylogenetic tree revealed their distribution across the diversity of species and taxonomic groups. Square and hexagonal lattice varieties are prevalent in earlier-diverging groups, and linked to phytoplanktonic lifestyles. More recently-diverged clades lack these structures entirely in their girdle bands. Numerical analysis indicates that square lattice types exhibit anticipated photonic properties (stopbands) in the visible spectrum, while hexagonal lattice types are primarily linked to the near to mid-infrared range. This suggests that girdle band slab photonic crystal morphologies 1) originate from quasi-periodic photonic structures, 2) are primarily found in evolutionarily older clades (Coscinodiscophyceae and Mediophyceae), 3) lost square lattice types through diversification in the Mediophyceae, and 4) are absent in more recent clades (Fragilariophyceae and Bacillariophyceae). The limited inter-species distribution of slab photonic crystals may offer experimental cues to study their biological functionality. While these data suggest that stopband functionalities are a derived frustule trait, the ultimate purpose of slab photonic crystals in nature remains a mystery.

evolutionary biology↗

Sunfish as zooplankton control agents to improve yields of wastewater-cultivated algae

Wastewater algal cultivation (WAC) in outdoor raceway ponds is a promising means of removing polluting nutrients from water while producing biomass feedstock for products like fertilizer or biofuel. However, algal cultivation in open ponds is often plagued by underproduction due to contamination by zooplankton. The use of biological controls, i.e., natural predators to control zooplankton, was evaluated as a potential low-cost solution in this study. Eighteen pilot-scale raceway ponds were inoculated with cultured algae and naturally-occurring zooplankton; bluegill sunfish (Lepomis macrochirus) were tested as biological control agents to suppress zooplankton. We installed cages in the ponds to protect the fish from the paddlewheels and control the area the fish could access. The cage either surrounded the paddlewheel - in which case the fish had access to the remaining area - or the cage was opposite the paddlewheel, in which case the fish had access to the smaller area inside the cage. We also implemented fishless controls. After 19 days, ponds with cages surrounding the paddlewheel had 93% more zooplankton, but the fish had reduced zooplankton by 89% on average across cage treatments. Cage placement did not affect algal biomass, but ponds with fish had 45% higher algal dry weight and 84% higher algal biovolume. However, no differences in nutrient levels were recorded among treatments after 19 days. We concluded hardy zooplanktivorous fish represent a promising means of boosting algal production in WAC, although further research is needed to determine whether the change in algal biomass could eventually translate to improved nutrient removal.

ecology↗