Rhizospheric bacteria from the Atacama Desert hyper-arid core: cultured community dynamics and plant growth promotion

被引:0
|
作者
Castro-Severyn, Juan [1 ,2 ]
Fortt, Jonathan [1 ]
Sierralta, Mariela [1 ]
Alegria, Paola [1 ]
Donoso, Gabriel [1 ]
Choque, Alessandra [1 ]
Avellaneda, Andrea M. [1 ,2 ]
Pardo-Este, Coral [3 ]
Saavedra, Claudia P. [4 ]
Stoll, Alexandra [5 ,6 ]
Remonsellez, Francisco [1 ,2 ]
机构
[1] Univ Catolica Norte, Fac Ingn & Ciencias Geol, Dept Ingn Quim & Medio Ambiente, Lab Microbiol Aplicada & Extremofilos, Antofagasta, Chile
[2] Univ Catolica Norte, Ctr Invest Tecnol Agua & Sustentabil Desierto CEIT, Antofagasta, Chile
[3] Univ Catolica Norte, Fac Ciencias, Dept Ciencias Farmaceut, Lab Ecol Mol & Microbiol Aplicada, Antofagasta, Chile
[4] Univ Andres Bello, Fac Ciencias Vida, Dept Ciencias Biol, Lab Microbiol Mol, Santiago, Chile
[5] Ctr Estudios Avanzados Zonas Aridas CEAZA, Lab Microbiol Aplicada, La Serena, Chile
[6] Univ La Serena, Inst Invest Multidisciplinar Ciencia & Tecnol, La Serena, Chile
来源
MICROBIOLOGY SPECTRUM | 2024年 / 12卷 / 06期
关键词
D; spicata; S; foliosa; soil cultures; rhizobiome; amplicon sequencing; KLEBSIELLA-PNEUMONIAE; SALT-STRESS; SOIL; DIVERSITY; RHIZOBACTERIUM; BIOFERTILIZERS; ENDOPHYTES; TOLERANCE; SEQUENCES; CONSORTIA;
D O I
10.1128/spectrum.00056-24
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
The Atacama Desert is the oldest and driest desert on Earth, encompassing great temperature variations, high ultraviolet radiation, drought, and high salinity, making it ideal for studying the limits of life and resistance strategies. It is also known for harboring a great biodiversity of adapted life forms. While desertification is increasing as a result of climate change and human activities, it is necessary to optimize soil and water usage, where stress-resistant crops are possible solutions. As many studies have revealed the great impact of the rhizobiome on plant growth efficiency and resistance to abiotic stress, we set up to explore the rhizospheric soils of Suaeda foliosa and Distichlis spicata desert plants. By culturing these soils and using 16S rRNA amplicon sequencing, we address community taxonomy composition dynamics, stability through time, and the ability to promote lettuce plant growth. The rhizospheric soil communities were dominated by the families Pseudomonadaceae, Bacillaceae, and Planococcaceae for S. foliosa and Porphyromonadaceae and Haloferacaceae for D. spicata. Nonetheless, the cultures were completely dominated by the Enterobacteriaceae family (up to 98%). Effectively, lettuce plants supplemented with the cultures showed greater size and biomass accumulation. We identified 12 candidates that could be responsible for these outcomes, of which 5 (Enterococcus, Pseudomonas, Klebsiella, Paenisporosarcina, and Ammoniphilus) were part of the built co-occurrence network. We aim to contribute to the efforts to characterize the microbial communities as key for the plant's survival in extreme environments and as a possible source of consortia with plant growth promotion traits aimed at agricultural applications. IMPORTANCE The current scenario of climate change and desertification represents a series of incoming challenges for all living organisms. As the human population grows rapidly, so does the rising demand for food and natural resources; thus, it is necessary to make agriculture more efficient by optimizing soil and water usage, thus ensuring future food supplies. Particularly, the Atacama Desert (northern Chile) is considered the most arid place on Earth as a consequence of geological and climatic characteristics, such as the naturally low precipitation patterns and high temperatures, which makes it an ideal place to carry out research that seeks to aid agriculture in future conditions that are predicted to resemble these scenarios. Our main interest lies in utilizing microorganism consortia from plants thriving under extreme conditions, aiming to promote plant growth, improve crops, and render "unsuitable" soils farmable.
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页数:18
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