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眼点藻的趋热性是由膜的兴奋引起的,并受氧化还原条件的控制。

Thermotaxis in Chlamydomonas is brought about by membrane excitation and controlled by redox conditions.

机构信息

Department of Machinery and Control Systems, College of Systems Engineering and Science, Shibaura Institute of Technology, Saitama, 337-8570, Japan.

出版信息

Sci Rep. 2018 Oct 31;8(1):16114. doi: 10.1038/s41598-018-34487-4.

Abstract

Temperature is physiologically critical for all living organisms, which cope with temperature stress using metabolic and behavioral responses. In unicellular and some multicellular organisms, thermotaxis is a behavioral response to avoid stressful thermal environments and promote accumulation in an optimal thermal environment. In this study, we examined whether Chlamydomonas reinhardtii, a unicellular green alga, demonstrated thermotaxis. We found that between 10 °C and 30 °C, Chlamydomonas cells migrated toward lower temperatures independent of cultivation temperature. Interestingly, when we applied reagents to change intracellular reduction-oxidation (redox) conditions, we saw that thermotaxis was enhanced, suppressed, or reversed, depending on the redox conditions and cultivation temperature. Thermotaxis was almost absent in ppr2 and ppr3 mutants, which cannot swim backward because of a defect in generating calcium current in flagella. The frequency of spontaneous backward swimming was lower at more favorable temperature, suggesting a pivotal role of spontaneous backward swimming generated by flagellar membrane excitation.

摘要

温度对所有生物体的生理活动都至关重要,它们通过代谢和行为反应来应对温度压力。在单细胞生物和一些多细胞生物中,趋温性是一种行为反应,可以避免不利的热环境,并促进其在最佳热环境中的积累。在这项研究中,我们检验了单细胞绿藻莱茵衣藻是否表现出趋温性。我们发现,在 10°C 到 30°C 之间,衣藻细胞会向低温方向迁移,而不受培养温度的影响。有趣的是,当我们应用试剂来改变细胞内的氧化还原(redox)条件时,我们发现趋温性会根据 redox 条件和培养温度而增强、抑制或反转。ppr2 和 ppr3 突变体几乎没有趋温性,因为它们在鞭毛中产生钙电流的能力存在缺陷,所以无法向后游动。在更有利的温度下,自发向后游动的频率更低,这表明鞭毛膜激发产生的自发向后游动起着关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adc2/6208428/8aa2a757d733/41598_2018_34487_Fig1_HTML.jpg

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