Biochemical basis of endogenous bioluminescent springtail Lobella sauteri (Collembola).

IF 1.8 4区 生物学 Q3 BIOLOGY
Biology Open Pub Date : 2025-05-15 Epub Date: 2025-05-12 DOI:10.1242/bio.061829
Manabu Bessho-Uehara, Takumi Kato, Atsuko Ohira, Taizo Nakamori, Yuichi Oba
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引用次数: 0

Abstract

Bioluminescence plays important roles among animals in both intra- and inter-species communication. A variety of bioluminescent organisms inhabit soil environments, even in areas where light penetration is minimal. However, due to the lack of a model system to study underground bioluminescence, the biology and molecular mechanisms underlying this phenomenon remain largely unknown. Springtails (Collembola) are representative soil animals, and we recently identified Lobella sauteri (Neanuridae) as a bioluminescent species. L. sauteri can be maintained over multiple generations under laboratory conditions on a single food source, the plasmodium Fuligo septica, with a generation time of approximately 3 months. Bioluminescence was observed in all developmental stages of L. sauteri in laboratory-raised populations. The light emission exhibited periodic changes and increased before ecdysis, coinciding with the whitening of its tubercles. The bioluminescent reaction in vitro requires a small molecular (luciferin) fraction, an enzyme (luciferase) fraction, adenosine triphosphate (ATP), and Mg2+. Comparative transcriptomic and biochemical analyses suggest that L. sauteri employs a novel endogenous bioluminescent molecular mechanism. We propose that L. sauteri provides a valuable research opportunity for investigating novel bioluminescence systems and underground light-based communication.

内源性生物发光小叶虫的生化基础。
生物发光在动物体内和物种间的交流中都起着重要的作用。各种各样的生物发光生物栖息在土壤环境中,即使在光线渗透最小的地区也是如此。然而,由于缺乏研究地下生物发光的模型系统,这种现象背后的生物学和分子机制在很大程度上仍然未知。弹尾(弹尾目)是典型的土壤动物,最近我们发现了一种生物发光的小圆叶虫(Neanuridae)。在实验室条件下,苏氏乳杆菌可在单一食物来源富力戈败血性疟原虫上维持数代,其一代时间约为3个月。在实验室饲养的苏氏乳杆菌的所有发育阶段都观察到生物发光。光发射呈周期性变化,在蜕皮前增加,与结核变白一致。体外生物发光反应需要小分子(荧光素)部分、酶(荧光素酶)部分、三磷酸腺苷(ATP)和Mg2+。比较转录组学和生化分析表明,苏氏乳杆菌采用了一种新的内源性生物发光分子机制。我们认为苏氏乳杆菌为研究新型生物发光系统和地下光通信提供了宝贵的研究机会。
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来源期刊
Biology Open
Biology Open BIOLOGY-
CiteScore
3.90
自引率
0.00%
发文量
162
审稿时长
8 weeks
期刊介绍: Biology Open (BiO) is an online Open Access journal that publishes peer-reviewed original research across all aspects of the biological sciences. BiO aims to provide rapid publication for scientifically sound observations and valid conclusions, without a requirement for perceived impact.
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