CAS and Shandong Province Key Laboratory of Experimental Marine Biology, Institute of Oceanology, Chinese Academy of Sciences, Qingdao, 266071, China.
Laboratory of Marine Biology and Biotechnology, Qingdao National Laboratory for Marine Science and Technology, Qingdao, 266237, China.
BMC Biol. 2024 Oct 8;22(1):224. doi: 10.1186/s12915-024-02021-w.
Nematodes are the most abundant metazoans in marine sediments, many of which are bacterivores; however, how habitat bacteria affect physiological outcomes in marine nematodes remains largely unknown. RESULTS: Here, we used a Litoditis marina inbred line to assess how native bacteria modulate host nematode physiology. We characterized seasonal dynamic bacterial compositions in L. marina habitats and examined the impacts of 448 habitat bacteria isolates on L. marina development, then focused on HQbiome with 73 native bacteria, of which we generated 72 whole genomes sequences. Unexpectedly, we found that the effects of marine native bacteria on the development of L. marina and its terrestrial relative Caenorhabditis elegans were significantly positively correlated. Next, we reconstructed bacterial metabolic networks and identified several bacterial metabolic pathways positively correlated with L. marina development (e.g., ubiquinol and heme b biosynthesis), while pyridoxal 5'-phosphate biosynthesis pathway was negatively associated. Through single metabolite supplementation, we verified CoQ, heme b, acetyl-CoA, and acetaldehyde promoted L. marina development, while vitamin B6 attenuated growth. Notably, we found that only four development correlated metabolic pathways were shared between L. marina and C. elegans. Furthermore, we identified two bacterial metabolic pathways correlated with L. marina lifespan, while a distinct one in C. elegans. Strikingly, we found that glycerol supplementation significantly extended L. marina but not C. elegans longevity. Moreover, we comparatively demonstrated the distinct gut microbiota characteristics and their effects on L. marina and C. elegans physiology.
Given that both bacteria and marine nematodes are dominant taxa in sedimentary ecosystems, the resource presented here will provide novel insights to identify mechanisms underpinning how habitat bacteria affect nematode biology in a more natural context. Our integrative approach will provide a microbe-nematodes framework for microbiome mediated effects on host animal fitness.
线虫是海洋沉积物中最丰富的后生动物,其中许多是细菌食者;然而,生境细菌如何影响海洋线虫的生理结果在很大程度上仍然未知。结果:在这里,我们使用了一个马里纳线虫(Litoditis marina)近交系来评估本地细菌如何调节宿主线虫的生理学。我们描述了马里纳线虫栖息地的季节性动态细菌组成,并研究了 448 个栖息地细菌分离物对马里纳线虫发育的影响,然后将重点放在具有 73 个本地细菌的 HQbiome 上,我们生成了 72 个全基因组序列。出乎意料的是,我们发现海洋本地细菌对线虫发育及其陆地亲缘种秀丽隐杆线虫的影响呈显著正相关。接下来,我们重建了细菌代谢网络,并确定了几个与马里纳线虫发育呈正相关的细菌代谢途径(例如,泛醌和血红素 b 生物合成),而吡哆醛 5'-磷酸生物合成途径则呈负相关。通过单一代谢物补充,我们验证了 CoQ、血红素 b、乙酰辅酶 A 和乙醛促进了马里纳线虫的发育,而维生素 B6 则减弱了生长。值得注意的是,我们发现只有四个与线虫发育相关的代谢途径在马里纳线虫和秀丽隐杆线虫之间是共享的。此外,我们确定了与马里纳线虫寿命相关的两个细菌代谢途径,而在秀丽隐杆线虫中则有一个独特的途径。引人注目的是,我们发现甘油补充剂显著延长了马里纳线虫的寿命,但对秀丽隐杆线虫的寿命没有影响。此外,我们比较了马里纳线虫和秀丽隐杆线虫的肠道微生物组特征及其对生理的影响。结论:鉴于细菌和海洋线虫都是沉积生态系统中的主要类群,本研究提供的资源将为识别生境细菌在更自然的环境中影响线虫生物学的机制提供新的见解。我们的综合方法将为微生物组介导的对宿主动物适应性的影响提供一个线虫微生物组框架。