Lee Sang-Moo, Thapa Magar Roniya, Jung Min Kyeong, Kong Hyun Gi, Song Ju Yeon, Kwon Joo Hwan, Choi Minseo, Lee Hyoung Ju, Lee Seung Yeup, Khan Raees, Kim Jihyun F, Lee Seon-Woo
Institute of Agricultural Life Sciences, Dong-A University, Busan 49315, Republic of Korea.
Department of Applied Bioscience, Dong-A University, Busan 49315, Republic of Korea.
ISME J. 2024 Jan 8;18(1). doi: 10.1093/ismejo/wrae120.
Microbial interactions impact the functioning of microbial communities. However, microbial interactions within host-associated communities remain poorly understood. Here, we report that the beneficiary rhizobacterium Niallia sp. RD1 requires the helper Pseudomonas putida H3 for bacterial growth and beneficial interactions with the plant host. In the absence of the helper H3 strain, the Niallia sp. RD1 strain exhibited weak respiration and elongated cell morphology without forming bacterial colonies. A transposon mutant of H3 in a gene encoding succinate-semialdehyde dehydrogenase displayed much attenuated support of RD1 colony formation. Through the subsequent addition of succinate to the media, we found that succinate serves as a public good that supports RD1 growth. Comparative genome analysis highlighted that RD1 lacked the gene for sufficient succinate, suggesting its evolution as a beneficiary of succinate biosynthesis. The syntrophic interaction between RD1 and H3 efficiently protected tomato plants from bacterial wilt and promoted tomato growth. The addition of succinate to the medium restored complex II-dependent respiration in RD1 and facilitated the cultivation of various bacterial isolates from the rhizosphere. Taken together, we delineate energy auxotrophic beneficiaries ubiquitous in the microbial community, and these beneficiaries could benefit host plants with the aid of helpers in the rhizosphere.
微生物相互作用影响微生物群落的功能。然而,宿主相关群落中的微生物相互作用仍知之甚少。在此,我们报告受益根际细菌Niallia sp. RD1的生长以及与植物宿主的有益相互作用需要辅助菌恶臭假单胞菌H3。在没有辅助菌H3菌株的情况下,Niallia sp. RD1菌株表现出微弱的呼吸作用和细长的细胞形态,且不形成菌落。H3在编码琥珀酸半醛脱氢酶的基因中的转座子突变体对RD1菌落形成的支持作用大大减弱。通过随后向培养基中添加琥珀酸,我们发现琥珀酸作为一种公共物品支持RD1的生长。比较基因组分析突出显示RD1缺乏足够合成琥珀酸的基因,表明其进化为琥珀酸生物合成的受益者。RD1与H3之间的互养相互作用有效地保护番茄植株免受青枯病侵害并促进番茄生长。向培养基中添加琥珀酸恢复了RD1中依赖于复合物II的呼吸作用,并促进了从根际分离的各种细菌的培养。综上所述,我们描绘了微生物群落中普遍存在的能量营养缺陷型受益者,这些受益者可以在根际辅助菌的帮助下使宿主植物受益。