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Regulatory Mechanism of Carbon Fractions and Microbial Metabolism on Organic Carbon Turnover in Saline–Alkali Soils

塩性アルカリ土壌における有機炭素ターンオーバーに対する炭素画分と微生物代謝の制御メカニズム (AI 翻訳)

Jinfeng Wang, Fang Gao, Ziyuan Du, Yinheng Fan, Yaling Zan, Jia Li

Biology📚 査読済 / ジャーナル2026-08-07#その他Origin: CN対象セクター: agriculture
DOI: 10.3390/biology15161335
原典: https://doi.org/10.3390/biology15161335

🤖 gxceed AI 要約

日本語

塩性アルカリ土壌の塩分勾配に沿って、微生物の炭素代謝と炭素画分(POC、MAOC)が有機炭素隔離に与える影響を調査。塩分増加に伴い微生物呼吸と炭素利用効率(CUE)が低下し、CUEはSOCと正の相関を示した。ランダムフォレストとPLS-PMにより、塩性アルカリストレスが微生物活性を弱めSOC蓄積を制限することを示した。

English

This study examines how salinity gradient affects microbial carbon metabolism and carbon fractions (POC, MAOC) in saline-alkali soils. Results show that increasing salinity reduces microbial respiration and carbon use efficiency (CUE), with CUE positively correlated with SOC. Random forest and PLS-PM reveal that saline-alkali stress limits SOC sequestration by weakening microbial activity, suggesting strategies to enhance carbon pools and microbial efficiency.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本の農業土壌や塩害地域の炭素貯留に示唆を与えるが、直接的なGX政策や開示制度との関連は薄い。日本の読者には土壌炭素隔離の基礎的理解として有用。

In the global GX context

This paper contributes to global understanding of soil carbon dynamics in saline-alkali soils, relevant for climate mitigation strategies. However, it lacks direct connection to disclosure frameworks or transition finance, making it more relevant for agricultural and climate science audiences.

👥 読者別の含意

🔬研究者:Provides insights into microbial mechanisms of soil carbon sequestration under salinity stress, useful for carbon cycle modeling.

🏛政策担当者:May inform agricultural policies on soil carbon management in saline regions, but not directly applicable to corporate disclosure.

📄 Abstract(原文)

Soil salinization is a serious threat to agricultural productivity and organic carbon cycling; however, the mechanisms by which carbon fractions and microbial metabolism regulate organic carbon sequestration remain unclear. This research investigated the effects of four sites (S1–S4) along a salinity gradient on microbial carbon metabolism, carbon fractions (particulate organic carbon, POC; mineral-associated organic carbon, MAOC), and bacterial and fungal communities in a typical saline–alkali soil. The results showed that, as the salt–alkali level increases, microbial growth, respiration, and carbon utilization efficiency (CUE) all exhibit a gradually decreasing trend, with CUE declining by 34.0% at S4 relative to S1. CUE was strongly negatively correlated with the soil pH, EC, and soluble salts, but showed a logarithmic rise with SOC, reaching a maximum of 0.47 near 8 g kg−1. Both POC and MAOC decreased alongside the salt–alkali level, the proportion of MAOC in SOC (52.04–55.02%) was significantly higher than that of POC (44.98–47.96%), and there was a significant positive linear correlation with SOC and CUE. Under high salinity, the 16S rRNA gene copy number decreased by up to 28.8%, while the ITS copy number remained stable. As the salt and alkali levels increased, bacterial Proteobacteria and Actinobacteriota showed an increasing trend, whereas fungal communities remained dominated by Ascomycota. Furthermore, correlation analyses revealed that bacterial Acidobacteriota and Proteobacteria, and fungal Basidiomycota and Chytridiomycota play crucial roles in carbon cycling. Random forest modeling (RFM) and partial least squares path modeling (PLS-PM) also revealed that saline–alkali soil properties strongly affect 16S rRNA gene abundance and microbial respiration; carbon fractions and CUE exerted a strong positive direct effect on SOC, whereas microbial respiration had a negative effect. These findings demonstrate that saline–alkali stress restricts SOC sequestration primarily by weakening microbial activity and community function, with CUE playing only an indirect role. In conclusion, enhancing the POC and MAOC pools and improving the microbial carbon turnover efficiency may be more effective strategies for mitigating carbon loss and sustaining SOC stocks in saline–alkali soils.

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