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Biology subjects

de Oliveira, M. A.

Publications and source records attributed to de Oliveira, M. A..

4 recordsLinked to original sources

Bridging Gaps in Soil Ecology: Metagenomic Insights into Microbial Diversity and Functionality Across Brazil's Biomes.

Microorganisms participate in complex interactions involving different kingdoms, so rhizosphere biodiversity mapping is essential for understanding how microbes interact with each other in the soil and with roots. Although soil microbial communities are remarkably diverse and technological advances have provided a high capacity to acquire reliable sequence data, unique microbial taxa in soil, root and rhizosphere samples remain poorly described. For the first time, we organized a consortium to collect soil samples covering all Brazilian biomes, providing a comprehensive and unprecedented view of soil microbial diversity. This understanding is critical, especially within the context of climate change, which affects plant physiology, root exudation and, consequently, the composition and functionality of soil microbial communities. The interactions between soil, roots and rhizosphere are influenced by evolutionary and adaptive forces and shape the production of microbial natural products, which exhibit great therapeutic potential and Mapping and studying rhizosphere microbial biodiversity not only increases our knowledge of soil ecology but also offers valuable insights for developing sustainable practices. We employed both 16S/18S/ITS amplicon and metagenomic short-read shotgun sequencing methods to examine and catalogue the large-scale genomes of culture-independent rhizosphere microbes and their interactions with roots in six terrestrial Brazilian biomes, namely, the Amazon, Atlantic Forest, Cerrado, Caatinga, Pampa and Pantanal. Our results revealed the ubiquity of Proteobacteria, which reflects their adaptability to contrasting environments. Biomes with greater moisture availability, such as the Amazon and Pantanal, exhibited greater diversity and abundance of fast-growing bacteria, such as Proteobacteria, and nutrient cyclers, such as Thaumarchaeota. Arid and semiarid biomes, such as the Caatinga, were dominated by microorganisms tolerant to drought and nutrient-limited environments, such as Actinobacteria. Acidobacteria, which thrive in acidic, nutrient-poor soils, were very abundant in forest biomes. The Planctomycetes phylum also occurred more frequently in areas with a relatively high soil organic matter content, such as the Cerrado. Bacteroidetes was significantly more abundant in Pampa than in the other biomes. The results provide comprehensive insights into soil, root and rhizosphere biodiversity and not only enhance the knowledge of the fundamental biological processes sustaining plant life but also constitute a reliable sequencing databank to address present-day agricultural and environmental challenges.

microbiology↗

Human herpesvirus 1 associated with epizootics in Belo Horizonte, Minas Gerais, Brazil

Human activity in sylvatic environments and resulting contact with wildlife, such as non-human primates (NHP), can lead to pathogen spillover or spillback. Both NHPs and humans host a variety of herpesviruses. While these viruses typically cause asymptomatic infections in their natural hosts, they can lead to severe disease or even death when they move into novel hosts. In early 2024, deaths of Callithrix penicillata, the black-tufted marmoset, were reported in an urban park in Belo Horizonte, Minas Gerais, Brazil. The epizootic was investigated in collaboration with CETAS/IBAMA and the Zoonoses Department of Belo Horizonte. Nine marmoset carcasses, and 4 sick marmosets were found in the park; the latter exhibited severe neurological symptoms and systemic illness before succumbing within 48 hours. Carcasses were tested for rabies virus and were all negative, and necropsy findings revealed widespread organ damage. In addition, the samples were tested for yellow fever virus, with negative results. Finally, molecular testing, viral isolation and phylogenetic analysis demonstrated human herpesvirus 1 (HHV-1) as the causative agent. The likely source of infection was human-to-marmoset transmission, facilitated by close interactions such as feeding and handling. This study highlights the risks of pathogen spillover between humans and nonhuman primates, emphasizing the need for enhanced surveillance and public awareness to mitigate future epizootics.

microbiology↗

Cell-Free production of soybean leghemoglobins and non-symbiotic hemoglobin

Hemoglobins are heme proteins and are present in some microorganisms, higher plants and mammals. In legume nodules there are two types: leghemoglobin (LegH) or symbiotic and non-symbiotic (nsHb). LegHs are present in high amounts at legumes roots and are responsible together with bacteroides for the nitrogen fixation process. Non-symbiotic hemoglobins Class 1 protein have very high affinity for O2 and are found in monocotyledons and legumes. LegH has aroused great interest in the vegetable meat industry due to its organoleptic and nutritional properties. Here, we demonstrated that soybean LegH A, C1, C2, C3 and nsHb are produced by E. coli-based cell-free protein synthesis (CFPS) and correctly synthesized in its amino acids sequence. In addition, it was also possible to reproduce some post-translational modifications confirmed by LC/MS analysis. All LegHs produced in this system showed peroxidase activity and heme binding correlated with its concentration in the assays. Furthermore, all proteins were readily digested by pepsin within 1 minute in analog digestion conditions. Therefore, LegHs and nsHb proteins were synthesized using cell-free systems (CFSs), maintaining their functionality and being digestible. These findings suggest that they could serve as viable alternative food additives for plant-based meat. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=144 SRC="FIGDIR/small/643390v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@504374org.highwire.dtl.DTLVardef@17c8d73org.highwire.dtl.DTLVardef@2aad12org.highwire.dtl.DTLVardef@1c8a3e9_HPS_FORMAT_FIGEXP M_FIG C_FIG

synthetic biology↗

Development of Int-Plex@ binary memory switch system: plant genome modulation driven by large serine-integrases.

The comprehension of virus-host interactions has allowed numerous advances in developing biotechnological methodologies for plant genome editions, constituting a promising path for plant genetic engineering. Among these advancements, phage- encoded large serine-integrases have emerged as noteworthy tools to modulate plant metabolic pathways by inserting, excising, or inverting DNA stretches in a reversible and specific way. The present work shows the foundation of the Int-Plex@ (INTegrase PLant EXpression) binary memory switch system, which consists of the application of four distinct orthogonal prophage large serine-integrases (Int) (BxB1, phiC31, Int13, and Int9) as an input trigger mechanism for the inversion or excision of genomic DNA. The memory genetic switch is divided into the excision module and the inversion module. The excision module is activated by BxB1 or phiC31 enzymes (input). In this case, the DNA sequence flanked by its attachment sites is excised from the genome (output). The inversion module is activated by Int9 or Int13 (input). The inverted mgf gene sequence is flipped to its functional coding sequence, and the switch output is mGFP. Moreover, prokaryotic-based cell-free in vitro transcription-translation reactions (TxTl) were used as a fast platform for testing Ints attB/P in tandem site activity. Furthermore different plasmid delivery strategies for plant cell Int heterologous expression were tested: leaf tissue agroinfiltration of Agrobacterium tumefaciens transformed with binary plasmids and a biolistic system. After each treatment, the edited genomic DNA sequences were amplified and verified by Sanger and Nanopore sequencing. Despite the challenges of using Ints, the potential benefits are significant and deserve deeper exploration and development. The Int-Plex@ binary genome memory switch system can be applied to produce genetic circuits combined with omics tools and sgRNAs to engineer and modulate plant metabolic pathways temporally and reversibly.

synthetic biology↗