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Biology subjects

Roh, C.

Publications and source records attributed to Roh, C..

3 recordsLinked to original sources

Morphological and functional characterization of the ptychocyte, a stingless stinging cell

Cnidocytes (stinging cells), unique to cnidarians (corals, anemones, jellyfish), have diversified into distinct types with variable forms and functions. Nematocytes, cnidocytes found in all cnidarians, are used for prey capture and defense. When triggered, a pressurized capsule inside the nematocyte releases a harpoon-like structure attached to a hollow tubule that pierces prey and delivers venom. Ptychocytes, a cnidocyte unique to tube anemones (sister to corals and sea anemones) discharge a long spineless tubule used exclusively to build the tube in which the animal lives. Given that nematocytes and ptychocytes are specialized for different functions, we hypothesized that they might respond to firing cues in different ways. To test this, we examined the morphology, function, and distribution of nematocytes and ptychocytes in the North American Tube Anemone, Ceriantheopsis americana. We determined that ptychocytes have apical sensory structures like the cones previously described on nematocytes. Surprisingly, the body wall has a dense population of multiciliated cells that appear to function in tube formation. To determine how divergent selection pressures may have affected firing dynamics, we compared the discharge kinematics of cnidocytes from C. americana and the model sea anemone, Nematostella vectensis. Both nematocytes and ptychocytes from C. americana fired slower than nematocytes from N. vectensis, suggesting the rapid discharge speed of sea anemone nematocytes resulted from modification to these cells after sea anemones and tube anemones diverged from their common ancestor. By comparing the morphology and function of different cnidocytes, we can reconstruct the steps that gave rise to cnidocyte diversity.

evolutionary biology↗

A microfluidic rheometer for tumor mechanics and invasion studies

Clinically, the feel, touch, and shape of a solid tumor are important diagnostic methods for determining the malignant state of the disease. However, there are limited tools for quantifying the mechanics and the malignancy of the tumor in a physiologically realistic setting. Here, we developed a microfluidic rheometer - termed the microrheometer - that enables simultaneous measurements of tumor spheroid mechanics and their invasiveness into a 3D extracellular matrix (ECM). The microrheometer consists of a pneumatic pressure control unit for applying controlled static or cyclic compression to tumor spheroids, and a sample chamber for containing spheroid embedded ECM. The innovation here lies in the integration of a polyacrylamide membrane force sensor within the sample chamber, enabling a direct force measurement in a physiologically relevant setting. We found that both tumor stiffness and the viscoelastic properties of the tumor are closely correlated with tumor invasiveness. The microrheometer allowed us to measure tumor mechanics in a short time (less than a minute) and has the potential to be used clinically in the future. We note that the microrheometer here can be easily extended to studies of mechanics of single cell, nucleus, as well as other cell/tissue types.

bioengineering↗

Tracking Helicoverpa zea (Lepidoptera: Noctuidae) flight behavior with infrared camera around pheromone trap

Understanding the flight behavior of nocturnal insect pests is essential for designing effective trapping systems and improving integrated pest management (IPM). This study used infrared (IR) reflectance and IR camera to analyze the flight behavior of corn earworm (Helicoverpa zea) around Scentry Heliothis pheromone trap, focusing on approach, escape, and capture rates. Video analysis revealed low average catch rate of 25% for a total of 48 approaches from 7 p.m. to 4 a.m., as many moths approached the lure but escaped without being trapped. The study identified critical behavioral patterns, such as upwind approach, downwind horizontal escape, or vertical ascending leading to capture. These findings suggest that positioning lure closer to the trap entrance could significantly improve the effectiveness of Scentry Heliothis trap. Additionally, the study highlights the importance of developing a comprehensive database of nocturnal insect behavior around trapping systems. This knowledge can be used to refine trap design for specific insect pest and to update catch count thresholds to improve the effectiveness of insecticide spray programs in precision agriculture. This work demonstrates the potential of IR cameras as a simple, commercially available, and affordable tool for studying nocturnal insect pest activity and flight behavior, with the potential to enhance pest management strategies in agriculture.

animal behavior and cognition↗