Photochemical and Microbial Degradation of Deadwood Leachate

IF 3.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Journal of Geophysical Research: Biogeosciences Pub Date : 2024-12-07 DOI:10.1029/2024JG008184
Norbert Kamjunke, Peter Herzsprung, Wolf von Tümpling, Oliver J. Lechtenfeld
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Abstract

During the last decades, intensive forest dieback due to drought events and bark beetle infestation was globally observed leading to accumulation of deadwood. However, data on molecular composition of deadwood DOM, of its bacterial and photo-transformation, and of the interaction of these processes are scarce. Here, we investigate the fate of DOM leached from deadwood into streams. We hypothesized that (a) bacterial degradation dominates quantitatively over photodegradation in stream water, (b) bacterial degradation is further promoted by labile and easily degradable photoproducts, and (c) DOM compositional changes reflect both the bacterial and light transformation. A leachate of spruce branches and bark in pure water was used for a degradation experiment in a 2 × 2 factorial design without and with stream bacteria and light, respectively. Dissolved organic carbon concentration did not change in dark incubation without bacteria but decreased slightly (3%) in the light. The decrease with bacteria in the dark was stronger (9%), that is, photodegradation of spruce leachate was less important than bacterial degradation (a). Photodegradation and bacterial degradation added in the light plus bacteria treatment (12%), and bacterial degradation was similar in light and dark, indicating no quantitative priming by easily available photoproducts but some qualitative modifications were detected (b). Light induced the production of mostly small and polar molecules, mainly from stream water DOM, while bacteria preferentially degraded nonpolar molecules from dead-wood leachate (c). Our results indicate distinct transformation pathways and high microbial availability for deadwood-derived DOM as compared to stream water DOM that may stimulate heterotrophic processes in headwater streams.

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枯木渗滤液的光化学和微生物降解
在过去的几十年里,由于干旱事件和树皮甲虫的侵扰,全球范围内观察到密集的森林枯死,导致枯木积累。然而,关于枯木DOM的分子组成、细菌和光转化以及这些过程相互作用的数据很少。在这里,我们研究从枯木中浸出的DOM进入溪流的命运。我们假设:(a)细菌降解在数量上占主导地位,(b)不稳定且易于降解的光产物进一步促进细菌降解,(c) DOM成分变化反映了细菌和光转化。采用2 × 2因子设计,分别对云杉树枝和树皮在纯水中的渗滤液进行无菌和有光的降解试验。溶解有机碳浓度在没有细菌的黑暗孵育中没有变化,但在光照下略有下降(3%)。细菌在黑暗条件下的降低幅度更大(9%),即云杉渗滤液的光降解不如细菌降解重要(a)。光加细菌处理下的光降解和细菌降解增加(12%),细菌降解在光和暗条件下相似,表明易获得的光产物没有定量引发,但检测到一些定性修饰(b)。光诱导的产物大多是小分子和极性分子。细菌优先降解来自枯木渗滤液的非极性分子(c)。我们的研究结果表明,与可能刺激水源异养过程的溪水DOM相比,枯木来源的DOM有不同的转化途径和较高的微生物可利用性。
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来源期刊
Journal of Geophysical Research: Biogeosciences
Journal of Geophysical Research: Biogeosciences Earth and Planetary Sciences-Paleontology
CiteScore
6.60
自引率
5.40%
发文量
242
期刊介绍: JGR-Biogeosciences focuses on biogeosciences of the Earth system in the past, present, and future and the extension of this research to planetary studies. The emerging field of biogeosciences spans the intellectual interface between biology and the geosciences and attempts to understand the functions of the Earth system across multiple spatial and temporal scales. Studies in biogeosciences may use multiple lines of evidence drawn from diverse fields to gain a holistic understanding of terrestrial, freshwater, and marine ecosystems and extreme environments. Specific topics within the scope of the section include process-based theoretical, experimental, and field studies of biogeochemistry, biogeophysics, atmosphere-, land-, and ocean-ecosystem interactions, biomineralization, life in extreme environments, astrobiology, microbial processes, geomicrobiology, and evolutionary geobiology
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