Yamashita Kyohei, Yamaguchi Tomoka, Ikeno Shigehiro, Koyama Asuka, Aono Tetsuo, Mori Ayaka, Serizawa Shoto, Ishikawa Yuji, Tokunaga Eiji
Department of Physics, Faculty of Science Division I, Tokyo University of Science, Shinjuku-ku, Tokyo 162-8601, Japan.
Micromachines (Basel). 2024 Mar 19;15(3):410. doi: 10.3390/mi15030410.
Previous studies of motility at low temperatures in have been conducted at temperatures of up to 15 °C. In this study, we report that exhibits unique motility at a lower temperature range (-8.7 to 1.7 °C). Cell motility was recorded using four low-cost, easy-to-operate observation systems. Fast Fourier transform (FFT) analysis at room temperature (20-27 °C) showed that the main peak frequency of oscillations ranged from 44 to 61 Hz, which is consistent with the 60 Hz beat frequency of flagella. At lower temperatures, swimming velocity decreased with decreasing temperature. The results of the FFT analysis showed that the major peak shifted to the 5-18 Hz range, suggesting that the flagellar beat frequency was decreasing. The FFT spectra had distinct major peaks in both temperature ranges, indicating that the oscillations were regular. This was not affected by the wavelength of the observation light source (white, red, green or blue LED) or the environmental spatial scale of the cells. In contrast, cells in a highly viscous (3.5 mPa·s) culture at room temperature showed numerous peaks in the 0-200 Hz frequency band, indicating that the oscillations were irregular. These findings contribute to a better understanding of motility under lower-temperature conditions in .
之前关于[研究对象]在低温下运动性的研究是在高达15°C的温度下进行的。在本研究中,我们报告了[研究对象]在较低温度范围(-8.7至1.7°C)表现出独特的运动性。使用四个低成本、易于操作的观察系统记录细胞运动性。在室温(20 - 27°C)下的快速傅里叶变换(FFT)分析表明,振荡的主峰频率范围为44至61 Hz,这与鞭毛的60 Hz拍频一致。在较低温度下,游动速度随温度降低而下降。FFT分析结果表明,主峰移至5 - 18 Hz范围,表明鞭毛拍频在降低。FFT光谱在两个温度范围内都有明显的主峰,表明振荡是规则的。这不受观察光源波长(白色、红色、绿色或蓝色发光二极管)或细胞环境空间尺度的影响。相比之下,在室温下处于高粘度(3.5 mPa·s)培养液中的细胞在0 - 200 Hz频段显示出许多峰值,表明振荡是不规则的。这些发现有助于更好地理解[研究对象]在较低温度条件下的运动性。