Groningen Institute for Evolutionary Life Sciences, University of Groningen, 9712 CP, Groningen, the Netherlands.
Department of Biology, Biotechnical Faculty, University of Ljubljana, 1000, Ljubljana, Slovenia.
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2024 May;210(3):459-472. doi: 10.1007/s00359-023-01672-4. Epub 2023 Sep 22.
Light is the most important environmental cue for the circadian system of most organisms to stay synchronized to daily environmental changes. Like many other insects, the wasp Nasonia vitripennis has trichromatic compound eye-based colour vision and is sensitive to the light spectrum ranging from UV to green. We recently described a red-sensitive, ocelli-based photoreceptor, but its contribution to circadian entrainment remains unclear. In this study, we investigated the possibility of Nasonia circadian light entrainment under long-wavelength red LED light-dark cycles and characterized the strength of red light as a potential Zeitgeber. Additionally, we measured the possibility of entrainment under various light intensities (from 5·10 to 4·10 photons·cm·s) and a broader range of wavelengths (455-656 nm) to construct corresponding action spectra for characterizing all circadian photoreceptors involved in photic entrainment. We also conducted electroretinogram (ERG) recordings for each wavelength in the compound eyes. Our findings demonstrate that Nasonia can entrain under red light dark cycles, and the sensory pathway underlying the red-light Zeitgeber response may reside in the ocelli. Combined with findings from previous research, we pose that blue- and green-sensitive rhodopsin photoreceptor cells function as the major circadian photoreceptors in both circadian entrainment by light-dark cycles and circadian phase shifts by light pulses, whereas the red-sensitive photoreceptor cell requires higher light intensity for its role in circadian entrainment by light-dark cycles.
光是大多数生物体生物钟系统与日常环境变化同步的最重要环境线索。像许多其他昆虫一样,黄蜂 Nasonia vitripennis 具有三色复眼的色觉,并且对从紫外线到绿光的光谱敏感。我们最近描述了一种对红光敏感的、基于小眼的光感受器,但它对生物钟同步的贡献仍不清楚。在这项研究中,我们研究了 Nasonia 在长波长红色 LED 明暗循环下进行生物钟光同步的可能性,并确定了红光作为潜在 Zeitgeber 的强度。此外,我们还测量了在各种光照强度(从 5·10 到 4·10 个光子·cm·s)和更广泛的波长范围(455-656nm)下进行同步的可能性,以构建相应的作用光谱来描述参与光同步的所有生物钟光感受器。我们还对复眼中的每个波长进行了视网膜电图(ERG)记录。我们的研究结果表明,Nasonia 可以在红光暗周期下同步,并且红光 Zeitgeber 反应的感觉途径可能位于小眼。结合之前的研究结果,我们提出蓝敏和绿敏视蛋白感光细胞作为光暗周期和光脉冲引起生物钟相位移动的主要生物钟光感受器,而红敏感光细胞在光暗周期引起生物钟同步中需要更高的光照强度。