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Biology subjects

Lopez, E. M.

Publications and source records attributed to Lopez, E. M..

4 recordsLinked to original sources

Microbiota- and diet-specific T cells become Tregs by default

CD4+ T cells recognize antigens from microbiota, diet, and pathogens via T cell receptors (TCRs) and orchestrate immunity by differentiating into tolerogenic regulatory (Treg) or pro-inflammatory effector (Teff) lineages (e.g. TH1 or TH17) (1). Dysregulation of these responses underlies numerous gastrointestinal inflammatory and infectious diseases (2-6). The prevailing paradigm suggests that individual microbes and dietary antigens drive distinct cell fates (e.g., segmented filamentous bacteria [SFB] induce TH17 cells (7) whereas Helicobacter hepaticus (8) and diet (9) induce Tregs). However, the generality of this model is uncertain: several key organisms are atypical, and foundational studies often omitted a complex microbiome or a diverse polyclonal TCR repertoire. Here we develop a high-throughput pipeline to screen hundreds of TCRs from mice colonized from birth with a 116-strain human microbiota (hCom2v), demonstrating that TCRs recognizing microbiota or dietary antigens are overwhelmingly enriched in the induced Treg (iTreg) lineage. Endogenous CD4+ T cells specific for these antigens adopt a uniform iTreg phenotype in vivo, both in hCom2v-colonized and conventional mice. This baseline tolerance is robust to acute inflammation but breaks down following a 'two-hit' combination of inflammation and genetic susceptibility, allowing Teff to emerge against otherwise Treg-restricted antigens. These data support a revised paradigm in which antigen-specific Treg induction is the default response to foreign antigens in the healthy gut, and effector responses are an exception reflecting a perceived threat. Reframing gastrointestinal immunity as a tolerance-first system provides a framework for understanding inflammatory disease pathogenesis and suggests that therapeutic strategies should aim to restore a Treg-predominant baseline.

immunology↗

Ecology and engineering to modify the bile acid output of a defined microbial community

The bile acid pool, which is synthesized collaboratively by the host and its microbiome, impacts metabolism, immunity, and disease risk. Targeted microbiome interventions could in principle reshape the bile acid pool for therapeutic benefit, but practical strategies remain elusive. In the course of screening a complex defined community for metabolic phenotypes by dropping out individual strains, we observed that several of the single-strain dropout communities had markedly increased deoxycholic and lithocholic acid levels and a larger bile acid pool. In each of these communities, a second strain--Lactobacillus plantarum--had bloomed. The bile salt hydrolase activity of L. plantarum was necessary and sufficient to expand the size of the bile acid pool. An engineered community in which the bsh gene is overexpressed in multiple Lactobacillus strains confers on mice increased levels of secondary bile acid levels and a larger pool size. By overexpressing a different pair of bile acid metabolic genes in multiple strains of Lactobacillus--7- and 7{beta}-hydroxysteroid dehydrogenase--we changed the composition of the bile acid pool, enlarging it and redirecting it toward ursodeoxycholic acid. Together, these results demonstrate that fine details of the microbiomes strain composition can have a substantial effect on bile acid metabolism, and that rational manipulation of the microbiome can alter the size and composition of the bile acid pool.

microbiology↗

A single-strain dropout screen reveals mechanistic links between microbial ecology and metabolism

The complexity of the gut microbiome has made it challenging to define the role of individual species in community-level function. Here, we constructed 56 single-strain dropout variants of a defined 118-member community and used each one to colonize a group of germ-free mice. In many cases, removing a single strain triggered a large reordering of a small group of species, which in turn altered the communitys metabolic output. En bloc removal of the eight-strain acetogen compartment markedly reduced acetate production and caused intestinal H2 accumulation and bloating; a specific subset of four acetogens was sufficient to relieve bloating and restore acetate production. Together, these data show that small disturbances in community composition can trigger a confined ecological reorganization with a large chemical phenotype, and they reveal novel strategies for engineering communities with altered metabolic output.

microbiology↗

Human- and Rodent-derived Extracellular Vesicles Mediate the Spread of Pathology in MSA-like Models

Multiple system atrophy (MSA) is characterized by the presence of protein-rich inclusions mainly within oligodendrocytes, comprised primarily by the neuronal protein Synuclein and the oligodendroglial-specific phosphoprotein TPPP/p25. Mature oligodendrocytes do not normally express detectable Synuclein levels, suggesting that its oligodendroglial accumulation may arise from intercellular transfer, potentially via extracellular vesicles (EVs); however the precise role of oligodendroglial-derived EVs in MSA progression remains relatively understudied. Herein, we characterized the cargo/features and pathogenic potential of EVs released by oligodendrocytes treated with human Synuclein fibrils amplified from MSA or Parkinsons disease patient brains (or human recombinant Synuclein fibrils) and EVs isolated from murine and human MSA (or respective control) brains. Our findings reveal that both oligodendroglial cell- and brain-derived EVs harbor pathological Synuclein and TPPP/p25 conformations, similar to those accumulating in human MSA brains. These EVs are readily taken up by both neurons and oligodendrocytes, driving Synuclein propagation in vitro. Importantly, inoculation of these MSA-like EVs in animal models induce robust pSer129-Synuclein accumulation along the nigrostriatal axis, colocalizing with markers of mature oligodendrocytes and dopaminergic neurons. These findings underscore the pivotal role of oligodendroglial-derived EVs in pathology progression and neuronal-oligodendroglial communication, positioning them as promising targets for therapeutic strategies aimed at combating alpha-Synucleinopathies.

neuroscience↗