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降水调节太阳辐射对凋落物分解和二氧化碳排放的净效应——一项荟萃分析。

Precipitation modulates the net effect of solar radiation on litter decomposition and CO emission - a meta-analysis.

作者信息

Liu YaLan, Li Lei, Wang ShiQi, Li Xiangyi

机构信息

State Key Laboratory of Desert and Oasis Ecology, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi, China.

Xinjiang Key Laboratory of Desert Plant Roots Ecology and Vegetation Restoration, Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, Urumqi, China.

出版信息

Front Plant Sci. 2023 Jul 5;14:1200155. doi: 10.3389/fpls.2023.1200155. eCollection 2023.

Abstract

INTRODUCTION

Solar radiation plays a crucial role in the decomposition of litter and the cycling of nutrients. Previous studies have investigated that the net effect of solar radiation on litter decomposition depends on the balance of its facilitative and inhibitory effects on microbial activity; however, a gap in understanding the mechanism by which precipitation affects the net effect of solar radiation and the mechanism of litter decomposition on a global scale was observed.

METHODS

In addressing this gap, a comprehensive meta-analysis of 351 data points from 37 published studies was conducted to estimate the sole radiation effect and interactive effect of solar radiation and precipitation on a global scale, as well as how they vary at different precipitation levels. In addition, the importance of influential factors regulating the net effect of solar radiation on litter decomposition was assessed to identify the key drivers of the response of mass loss to solar radiation at different precipitation levels.

RESULTS

Our findings indicated that solar radiation largely regulates litter decomposition, and the direction and magnitude are potentially dependent on the precipitation regime. In addition, solar radiation significantly increased mass loss and decreased the nutrient remaining. Furthermore, the effects of solar radiation on mass loss, C remaining, and N remaining were found to be similar among areas with precipitation levels below 200 and above 800 mm and greater than in areas with precipitation levels between 200-400 mm and 400-800 mm. The effect of solar radiation on CO emissions varied from 13.97% when precipitation was below 200 mm to -0.707% when precipitation was between 200 and 400 mm.

CONCLUSION

Climatic factors determine the response ratio of mass loss to solar radiation in arid lands, whereas the initial litter characteristics have a great influence on the response of mass loss to solar radiation in ecosystems that are not moisture limited. The effect of precipitation on the photodegradation mechanism of litter was primarily achieved by influencing the decomposition of lignin, and the main effect of solar radiation on litter decomposition will shift from the positive effect of "photopriming" to the negative effect of "microbial inhibition" with the increase of precipitation. Our findings can provide a comprehensive understanding of litter decomposition patterns on a global scale, and our results showed that CO emissions from photodegradation will be lessened by precipitation, which is important in predicting CO emission and separating sources of CO under future increasing precipitation scenarios, particularly in arid lands.

摘要

引言

太阳辐射在凋落物分解和养分循环中起着至关重要的作用。以往的研究表明,太阳辐射对凋落物分解的净效应取决于其对微生物活动促进和抑制作用的平衡;然而,在全球范围内,对降水影响太阳辐射净效应的机制以及凋落物分解机制的理解存在差距。

方法

为填补这一差距,对37项已发表研究中的351个数据点进行了全面的荟萃分析,以估计全球范围内太阳辐射的单一辐射效应以及太阳辐射与降水的交互效应,以及它们在不同降水水平下的变化情况。此外,评估了调节太阳辐射对凋落物分解净效应的影响因素的重要性,以确定不同降水水平下质量损失对太阳辐射响应的关键驱动因素。

结果

我们的研究结果表明,太阳辐射在很大程度上调节着凋落物分解,其方向和幅度可能取决于降水格局。此外,太阳辐射显著增加了质量损失并减少了养分残留。此外,发现在降水水平低于200毫米和高于800毫米的地区,太阳辐射对质量损失、碳残留和氮残留的影响相似,且大于降水水平在200 - 400毫米和400 - 800毫米之间的地区。太阳辐射对二氧化碳排放的影响从降水低于200毫米时的13.97%变化到降水在200至400毫米之间时的 - 0.707%。

结论

气候因素决定了干旱地区质量损失对太阳辐射的响应比率,而初始凋落物特征对非水分限制生态系统中质量损失对太阳辐射的响应有很大影响。降水对凋落物光降解机制的影响主要通过影响木质素的分解来实现,并且随着降水增加,太阳辐射对凋落物分解的主要影响将从“光启动”的积极作用转变为“微生物抑制”的消极作用。我们的研究结果可以提供对全球范围内凋落物分解模式的全面理解,并且我们的结果表明降水会减少光降解产生的二氧化碳排放,这对于预测未来降水增加情景下的二氧化碳排放以及区分二氧化碳来源非常重要,特别是在干旱地区。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bdba/10356545/90953ad99fb1/fpls-14-1200155-g001.jpg

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