生物地球化学循环
碳循环
基因组
碳纤维
生态学
自行车
碳通量
生化工程
生态系统
生物
瓶颈
气候变化
全球变化
生物地球化学
微生物生态学
计算生物学
环境科学
仿形(计算机编程)
系统生物学
作者
Jiayin Zhou,Lu Qian,MingChao Ji,Yan Li,Kai Ma,Xiaoli Yu,Jiyu Chen,Lu Lin,Xiaofan Gong,Zhili He,Jianjun Wang,Qichao Tu
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2026-01-28
标识
DOI:10.64898/2026.01.28.702190
摘要
Abstract Microorganisms play essential roles in mediating biogeochemical cycling of carbon across Earth’s ecosystems. Understanding the processes and underlying mechanisms for microbially mediated carbon cycling is therefore critical for advancing global ecology and climate change research. To comprehensively depict these complex biogeochemical processes, we developed CCycDB, a knowledge-based functional gene database, to accurately fingerprint microbially-mediated carbon cycling pathways and gene families, particularly from shotgun metagenomes. The CCycDB database comprises 4,676 gene families classified into six major functional categories, further structured into 45 level-1 and 188 level-2 sub-categories, encompassing a total of 10,991,724 high-quality reference sequences. Validation using both synthetic and real-world datasets demonstrated that CCycDB outperforms existing orthology databases in terms of accuracy, coverage and specificity. By directly targeting carbon-cycling functional gene families, CCycDB provided promising routines to reconstruct both functional gene and taxonomic profiles associated with microbially mediated carbon cycling. Application of CCycDB to shotgun metagenomes from diverse and complex ecosystems revealed pronounced habitat-specific differences in carbon cycling processes and their associated microbial taxa. Collectively, CCycDB provides a powerful and reliable tool for profiling carbon cycling processes from both functional and taxonomic perspectives in complex ecosystems. CCycDB is accessible at https://ccycdb.github.io/ . Impact Statement The microbially mediated carbon cycling processes are the most complex biogeochemical processes in the Earth’s biosphere, playing profound regulatory roles on global climate changes. A key bottleneck in linking microbial communities to global change is the lack of integrated tools for comprehensive carbon cycle profiling. Here, we present CCycDB, a tool that serves a dual purpose—first being a reference database that obtains functional gene and taxonomic profiles and functioning as a customized routine for efficiently aligning sequences and querying associated functional information. CCycDB enables researchers to accurately link microbial community dynamics to carbon cycling and transforming pathways, thereby advancing integrated global change studies with microbes and ecological research via complex metagenomic datasets.
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