Bacterial motility in rhizosphere colonization: mechanisms, constraints, and implications for microbial inoculants

根际 微生物菌剂 生物 生物肥料 生态系统 微生物生态学 根际细菌 生物技术 生态学 运动性 生物扩散 微生物种群生物学 生化工程 基因组 非生物成分 特质 农学 适应性 生物多样性 实验进化 固氮 共生 细菌
作者
Tong Wang,Brajesh K Singh,Pankaj Trivedi,Zahra F. Islam,Ji-Zheng He,Hang‐Wei Hu
出处
期刊:The ISME Journal [Springer Nature]
标识
DOI:10.1093/ismejo/wrag236
摘要

Although the potential of microbial inoculants for sustainable agriculture and environmental restoration has been widely recognized, their field performance remains highly variable and often unpredictable. Current research and development frameworks for microbial inoculants primarily focus on their plant growth-promoting functions and metabolic traits, often overlooking the ecological processes that determine whether introduced strains can successfully disperse, access, and establish within the rhizosphere. Increasing evidence suggests that successful dispersal and establishment cannot be assumed in the highly heterogeneous conditions of soil systems. Here, we summarize the key mechanisms underlying bacterial motility and discuss its role within the broader framework of microbial dispersal, highlighting how motility-mediated processes contribute to rhizosphere colonization. We propose that bacterial motility represents a key mechanistic determinant of biofertilizer efficacy. Its role extends beyond the ability of inoculant strains to physically reach the rhizosphere, encompassing competitive colonization on the root surface, long-term persistence, and the ability to respond to dynamic root-derived chemical gradients associated with newly developing root tissues. We argue that inoculant motility should be elevated from a passive descriptive trait to a core design parameter that can be systematically incorporated and regulated during the development and optimization of microbial inoculants. We outline a multi-tiered strategic framework for next-generation biofertilizer engineering that integrates strain selection, community design, motility regulation, and deployment strategies, thereby unlocking the full potential of synthetic microbial consortia for sustainable agriculture, ecosystem restoration, and climate change mitigation.
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