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Wood, C. V.

Publications and source records attributed to Wood, C. V..

4 recordsLinked to original sources

Bacteroides fragilis modulates gut microbiome community composition, frontal cortex gene expression, and fecal and frontal cortex metabolites in a mouse model of Alzheimers disease pathologies

Alzheimers disease (AD) is a neurodegenerative disease and the leading cause of dementia among elderly. Gut microbiome alterations precede pathogenesis and may affect disease outcomes. We evaluated the role of Bacteroides fragilis in triple transgenic mice modeling AD pathologies (3xTg-AD) and wild-type controls (WT). Subsets of 3xTg-AD and WT mice were longitudinally treated with B. fragilis or sterile vehicle control for five consecutive days at 8 weeks of age and then monthly up to 52-56 weeks. Fecal samples were collected fortnightly from 8 through 52-56 weeks of age. Mice were sacrificed at 8 (baseline), 24 (amyloid-{beta} plaques modeled), and 52-56 (amyloid-{beta} plaques and neurofibrillary tangles modeled) weeks of age. Expression of genes involved in neuroinflammation and neurotransmission were quantified using reverse transcription quantitative polymerase chain reaction (RT-qPCR). Fecal bacterial microbiota were assessed by sequencing the V4 region of the 16S rRNA gene, and microbiome sequence data were analyzed using QIIME 2. Frontal cortex and fecal metabolomes were evaluated using LC-MS/MS. We observed that B. fragilis colonized the gut microbiota of 3xTg-AD mice earlier and more consistently than WT mice. 3xTg-AD mice treated with B. fragilis demonstrate lower gene expression of GFAP, SLC1A3, and FOXO3 in the frontal cortex. Consistent with this finding, treatment with B. fragilis restores levels of amino acid derivatives and neurotransmitters in 3xTg-AD mice to resemble levels in WT mice. These results highlight the role of the gut microbiome in AD-associated neuroinflammation and neurotransmission and the need for future studies to elucidate the mechanisms underlying these changes. ImportancePrevious studies in animals modeling Alzheimers disease pathologies and humans living with Alzheimers disease demonstrate shifts in the gut microbial community composition prior to and concomitant with pathological onset. The bacterial genus, Bacteroides, is commonly found differentially abundant in these studies but its effects on disease outcomes are poorly understood. In this study, we explore the effects of chronic exposure to Bacteroides fragilis in triple transgenic mice modeling Alzheimers disease pathologies and healthy, wild-type controls. We observed changes in microbial community composition in mice modeling Alzheimers disease when treated with B. fragilis, and associated changes in neuroinflammation, biomarkers of neurotransmission, and the brain metabolome. Taken together, these results suggest that Bacteroides fragilis exerts neuromodulatory effects that may be beneficial in Alzheimers disease.

microbiology↗

Becoming Biomedical Faculty: An Analysis of Credentials among Successful Academic Career Aspirants

Understanding what is requisite for attaining a biomedical faculty career is crucial for guiding trainees preparing for these roles. For nearly two decades, we have collected accounts of biomedical training and career transitions from a large cohort through annual in-depth interviews and tracking of competencies and achievements. This paper elucidates the common and varied credentials of 40 who entered research-intensive faculty careers (RIFCs). Participants completed PhDs and postdocs in a range of research-intensive institutional settings. Developing research independence and a niche were essential to RIFC attainment, and mentors played a crucial role in this development. Counter to common assumptions, high-prestige publications and grants were not in and of themselves necessary for RIFC attainment. Our findings can aid RIFC aspirants and mentors who guide them.

scientific communication and education↗

Becoming Biomedical Faculty: A Longitudinal Analysis of Successful Academic Career Aspirants Career Perspectives, Motivations, and Intentions

Seismic shifts within academia over the last several decades have seen the growth of biomedical PhD recipients alongside the relative stagnation of tenure-track research-intensive faculty careers (RIFCs). This hypercompetitive academic job market has prompted interest in the paths of those who attain RIFCs. Understanding what drives recent biomedical PhDs to make their career decisions and persist toward them requires a clear picture of how career perceptions, motivations, and intentions develop and crystallize over time. Using annual in-depth interviews across nearly two decades, this report explores the evolution of career thinking and differentiation among 40 who attained a RIFC from diverse starting points to their attainment of a RIFC. Participants strategies for navigating early scientific experiences were patterned by their varied educational and socioeconomic backgrounds. Nearly half of participants did not start with or maintain stable interest in RIFCs, exhibiting changes in both PhD and postdoctoral phases. Participants highlighted six drivers toward RIFCs including desire for independence/autonomy and contributing to knowledge/health. Our results are instructive for trainees and mentors guiding career exploration and differentiation.

scientific communication and education↗

Effects of arginine on the interfacial behavior of proteins

HypothesisProtein adsorption at fluid-fluid interfaces can induce conformational rearrangements and promote aggregation. Arginine, as an amino acid is known to attenuate protein-protein interactions and lower the viscosity of protein formulations. Given its surface-active properties, we hypothesize that arginine may be effective in limiting aggregation at fluid-fluid interfaces. ExperimentsInterfacial rheology of Etanercept (Enbrel), Immunoglobulin G1 (IgG1), and Bovine Serum Albumin (BSA) was characterized across a range of concentrations, with and without L-arginine Hydrochloride. The interfacial response was examined in both linear and nonlinear regimes.{zeta} -potential was also measured for selected formulations to evaluate the relationship between electrostatic characteristics and the rheological outcomes. FindingsBased on both linear and nonlinear interfacial rheology results, arginine generally weakened protein-protein interactions; however, the effect depends on protein identity and concentration. In arginine-containing formulations, Enbrel and BSA displayed only minor variation in interfacial viscoelasticity between 0.01 and 1 mg/mL, particularly during prolonged aging; in contrast, IgG1 showed larger concentration-dependent differences. These results strengthen predictive frameworks for interfacial stability and guide the rational design of protein-amino acid biopharmaceutical formulations. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=147 SRC="FIGDIR/small/674647v1_ufig1.gif" ALT="Figure 1"> View larger version (22K): org.highwire.dtl.DTLVardef@10a0bc8org.highwire.dtl.DTLVardef@8b9be7org.highwire.dtl.DTLVardef@1a88e43org.highwire.dtl.DTLVardef@113d5a9_HPS_FORMAT_FIGEXP M_FIG C_FIG

biophysics↗