重氮
微生物菌剂
生物
根际
操纵子
植物
固氮
细菌
微生物学
接种
园艺
基因
遗传学
大肠杆菌
作者
Gustavo L. Rodrigues,Filipe Pereira Matteoli,Rajesh Kumar Gazara,Pollyanna S. L. Rodrigues,Samuel T. dos Santos,Alice Ferreira Alves,Francisnei Pedrosa‐Silva,Isabella Oliveira-Pinheiro,Daniella Canedo-Alvarenga,Fábio Lopes Olivares,Thiago M. Venâncio
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2021-05-06
标识
DOI:10.1101/2021.05.06.442973
摘要
ABSTRACT Given their remarkable beneficial effects on plant growth, several Azospirillum isolates currently integrate the formulations of various commercial inoculants. Our research group isolated a new strain, Azospirillum sp. UENF-412522, from passion fruit rhizoplane. This isolate uses carbon sources that are partially distinct from closely-related Azospirillum isolates. Scanning electron microscopy analysis and population counts demonstrate the ability of Azospirillum sp. UENF-412522 to colonize the surface of passion fruit roots. In vitro assays demonstrate the ability of Azospirillum sp. UENF-412522 to fix atmospheric nitrogen, to solubilize phosphate and to produce indole-acetic acid. Passion fruit plantlets inoculated with Azospirillum sp. UENF-41255 showed increased shoot and root fresh matter, as well as root dry matter, further highlighting its biotechnological potential for agriculture. We sequenced the genome of Azospirillum sp. UENF-412522 to investigate the genetic basis of its plant-growth promotion properties. We identified the key nif genes for nitrogen fixation, the complete PQQ operon for phosphate solubilization, the acdS gene that alleviates ethylene effects on plant growth, and the napCAB operon, which produces nitrite under anoxic conditions. We also found several genes conferring resistance to common soil antibiotics, which are critical for Azospirillum sp. UENF-412522 survival in the rhizosphere. Finally, we also assessed the Azospirillum pangenome and highlighted key genes involved in plant growth promotion. A phylogenetic reconstruction of the genus was also conducted. Our results support Azospirillum sp. UENF-412522 as a good candidate for bioinoculant formulations focused on plant growth promotion in sustainable systems.
科研通智能强力驱动
Strongly Powered by AbleSci AI