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1.
Data Brief ; 54: 110381, 2024 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-38665155

RESUMO

Microorganisms inhabiting caves exhibit medical or biotechnological promise, most of which have been attributed to factors such as antimicrobial activity or the induction of mineral precipitation. This dataset explored the shotgun metagenomic sequencing of the Cango cave microbial community in Oudtshoorn, South Africa. The aimed to elucidate both the structure and function of the microbial community linked to the cave. DNA sequencing was conducted using the Illumina NovaSeq platform, a next-generation sequencing. The data comprises 4,738,604 sequences, with a cumulative size of 1,180,744,252 base pairs and a GC content of 52%. Data derived from the metagenome sequences can be accessed through the bioproject number PRJNA982691 on NCBI. Using an online metagenome server, MG-RAST, the subsystem database revealed that bacteria displayed the highest taxonomical representation, constituting about 98.66%. Archaea accounted for 0.05%, Eukaryotes at 1.20%, viruses were 0.07%, while unclassified sequences had a representation of 0.02%. The most abundant phyla were Proteobacteria (81.74%), Bacteroidetes (10.57%), Actinobacteria (4.16%), Firmicutes (SK‒1.03%), Acidobacteria (0.20), and Planctomycetes (SK‒0.16%). Functional annotation using subsystem analysis revealed that clustering based on subsystems had 13.44%, while amino acids and derivatives comprised 11.41%. Carbohydrates sequences constituted 9.55%, along with other advantageous functional traits essential for growth promotion and plant management.

2.
Front Genet ; 14: 1276003, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-38028595

RESUMO

Legumes are highly nutritious in proteins and are good food for humans and animals because of their nutritional values. Plant growth-promoting bacteria (PGPR) are microbes dwelling in the rhizosphere soil of a plant contributing to the healthy status, growth promotion of crops, and preventing the invasion of diseases. Root exudates produced from the leguminous plants' roots can lure microbes to migrate to the rhizosphere region in other to carry out their potential activities which reveals the symbiotic association of the leguminous plant and the PGPR (rhizobia). To have a better cognition of the PGPR in the rhizosphere of leguminous plants, genomic analyses would be conducted employing various genomic sequences to observe the microbial community and their functions in the soil. Comparative genomic mechanism of plant growth-promoting rhizobacteria (PGPR) was discussed in this review which reveals the activities including plant growth promotion, phosphate solubilization, production of hormones, and plant growth-promoting genes required for plant development. Progress in genomics to improve the collection of genotyping data was revealed in this review. Furthermore, the review also revealed the significance of plant breeding and other analyses involving transcriptomics in bioeconomy promotion. This technological innovation improves abundant yield and nutritional requirements of the crops in unfavorable environmental conditions.

3.
Emerg Top Life Sci ; 7(2): 207-217, 2023 Dec 13.
Artigo em Inglês | MEDLINE | ID: mdl-37975608

RESUMO

Endophytic microbial communities have essential information for scientists based on their biological contribution to agricultural practices. In the external plant environment, biotic and abiotic factors affect microbial populations before getting into plant tissues. Endophytes are involved in mutualistic and antagonistic activities with the host plant. Microbial communities inhabiting the internal tissues of plant roots depend on their ability to live and contend with other plant microflora. The advantageous ones contribute to soil health and plant growth either directly or indirectly. The microbial communities move via soil-root environment into the endosphere of plants promoting plant growth features like antibiosis, induced systemic resistance, phytohormone synthesis, and bioremediation. Therefore, the existence of these microorganisms contributes to plant genomes, nutrient availability in the soil, the presence of pathogens, and abiotic factors. This review aims at how endophytic microorganisms have displayed great interest in contributing to abundant crop production and phytopathogen inhibition.


Assuntos
Microbiota , Raízes de Plantas , Rizosfera , Microbiologia do Solo , Agricultura , Plantas , Microbiota/fisiologia , Solo
4.
PeerJ ; 11: e15432, 2023.
Artigo em Inglês | MEDLINE | ID: mdl-37283894

RESUMO

The microbiomes living in the rhizosphere soil of the tomato plant contribute immensely to the state of health of the tomato plant alongside improving sustainable agriculture. With the aid of shotgun metagenomics sequencing, we characterized the putative functional genes (plant-growth-promoting and disease-resistant genes) produced by the microbial communities dwelling in the rhizosphere soil of healthy and powdery mildew-diseased tomato plants. The results identified twenty-one (21) plant growth promotion (PGP) genes in the microbiomes inhabiting the healthy rhizosphere (HR) which are more predomiant as compared to diseased rhizosphere (DR) that has nine (9) genes and four (4) genes in bulk soil (BR). Likewise, we identified some disease-resistant genes which include nucleotide binding genes and antimicrobial genes. Our study revealed fifteen (15) genes in HR which made it greater in comparison to DR that has three (3) genes and three (3) genes in bulk soil. Further studies should be conducted by isolating these microorganisms and introduce them to field experiments for cultivation of tomatoes.


Assuntos
Microbiota , Solanum lycopersicum , Solanum lycopersicum/genética , Rizosfera , Microbiologia do Solo , Microbiota/genética , Solo/química , Plantas
5.
J Fungi (Basel) ; 9(2)2023 Feb 10.
Artigo em Inglês | MEDLINE | ID: mdl-36836352

RESUMO

The fungi species dwelling in the rhizosphere of crop plants, revealing functions that endeavor sustainability of the plants, are commonly referred to as 'plant-growth-promoting fungi' (PGPF). They are biotic inducers that provide benefits and carry out important functions in agricultural sustainability. The problem encountered in the agricultural system nowadays is how to meet population demand based on crop yield and protection without putting the environment and human and animal health at risk based on crop production. PGPF including Trichoderma spp., Gliocladium virens, Penicillium digitatum, Aspergillus flavus, Actinomucor elegans, Podospora bulbillosa, Arbuscular mycorrhizal fungi, etc., have proven their ecofriendly nature to ameliorate the production of crops by improving the growth of the shoots and roots of crop plants, the germination of seeds, the production of chlorophyll for photosynthesis, and the abundant production of crops. PGPF's potential mode of action is as follows: the mineralization of the major and minor elements required to support plants' growth and productivity. In addition, PGPF produce phytohormones, induced resistance, and defense-related enzymes to inhibit or eradicate the invasion of pathogenic microbes, in other words, to help the plants while encountering stress. This review portrays the potential of PGPF as an effective bioagent to facilitate and promote crop production, plant growth, resistance to disease invasion, and various abiotic stresses.

6.
Microorganisms ; 10(8)2022 Jul 28.
Artigo em Inglês | MEDLINE | ID: mdl-36013946

RESUMO

Crops aimed at feeding an exponentially growing population are often exposed to a variety of harsh environmental factors. Although plants have evolved ways of adjusting their metabolism and some have also been engineered to tolerate stressful environments, there is still a shortage of food supply. An alternative approach is to explore the possibility of using rhizosphere microorganisms in the mitigation of abiotic stress and hopefully improve food production. Several studies have shown that rhizobacteria and mycorrhizae organisms can help improve stress tolerance by enhancing plant growth; stimulating the production of phytohormones, siderophores, and solubilizing phosphates; lowering ethylene levels; and upregulating the expression of dehydration response and antioxidant genes. This article shows the secretion of secondary metabolites as an additional mechanism employed by microorganisms against abiotic stress. The understanding of these mechanisms will help improve the efficacy of plant-growth-promoting microorganisms.

7.
PeerJ ; 10: e13405, 2022.
Artigo em Inglês | MEDLINE | ID: mdl-35669957

RESUMO

Food safety is a significant challenge worldwide, from plantation to cultivation, especially for perishable products such as tomatoes. New eco-friendly strategies are needed, and beneficial microorganisms might be a sustainable solution. This study demonstrates bacteria activity in the tomato plant rhizosphere. Further, it investigates the rhizobacteria's structure, function, and diversity in soil. Rhizobacteria that promote the growth and development of tomato plants are referred to as plant growth-promoting bacteria (PGPR). They form a series of associations with plants and other organisms in the soil through a mutualistic relationship where both parties benefit from living together. It implies the antagonistic activities of the rhizobacteria to deter pathogens from invading tomato plants through their roots. Some PGPR are regarded as biological control agents that hinder the development of spoilage organisms and can act as an alternative for agricultural chemicals that may be detrimental to the health of humans, animals, and some of the beneficial microbes in the rhizosphere soil. These bacteria also help tomato plants acquire essential nutrients like potassium (K), magnesium (Mg), phosphorus (P), and nitrogen (N). Some rhizobacteria may offer a solution to low tomato production and help tackle food insecurity and farming problems. In this review, an overview of soil-inhabiting rhizobacteria focused on improving the sustainable production of Solanum lycopersicum.


Assuntos
Alphaproteobacteria , Solanum lycopersicum , Humanos , Animais , Agricultura , Desenvolvimento Vegetal , Plantas/microbiologia , Bactérias , Solo/química
8.
Microbiol Resour Announc ; 11(2): e0113121, 2022 Feb 17.
Artigo em Inglês | MEDLINE | ID: mdl-35112900

RESUMO

Food sustainability, e.g., fruit and vegetables, is a major agricultural problem that requires monitoring. Rhizosphere microbiomes' abundance and functionality are essential in promoting tomato plants' growth and health. We selected farms in South Africa's North West Province and present the metagenomes of their tomato rhizospheres and associated functional potentials.

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