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Biology subjects

Morris, A. M.

Publications and source records attributed to Morris, A. M..

3 recordsLinked to original sources

Drought drives reversible disengagement of root-mycorrhizal symbiosis

The increasing frequency and severity of droughts pose a major threat to agriculture, food security and ecosystems. Plants respond to water deficit by adjusting growth and metabolism to enhance survival; these adjustments impact the soil microorganisms interacting with plant roots. Plants establish symbiotic relationships with arbuscular mycorrhizal fungi which supply soil nutrients in exchange for carbon metabolites via an intricate dual-species interface within roots. These fungi are dependent upon host-derived photosynthates and are thus potentially vulnerable to plant perturbations during drought. Here, we demonstrate that the plant-mycorrhizal relationship is dynamic when water becomes limiting. During water deficit, rice de-prioritizes nutrient acquisition gene regulatory networks, including its AM symbiotic program, in a strategy conserved with tomato. The fungal symbiont correspondingly represses its growth, undergoing metabolic quiescence, coupled with decommissioning of hyphae within the hosts root. Following re-watering, the host re-engages with its partner fungus, re-invigorating fungal growth and arbuscule establishment. This coordinate, reversible and enduring inter-organismal association may aid host survival under transient stress, but suggests that mutualisms in native and crop plants are potentially fragile in increasingly erratic climates.

plant biology↗

Adolescent girls at familial risk for depression with more advanced adrenarche have altered gut microbiota

ObjectivesRates of adolescent depression are rising, especially among girls, with children of depressed parents facing a three times higher risk. Emerging evidence suggests a link between gut microbiota, neural function, and depression risk, possibly through pathways that involve brain-body interactions, including the vagus nerve. During adolescence, sex-specific changes in the microbiota align with pubertal development, although their connection to depression vulnerability remains unclear. We compared gut microbiota in adolescents at high and low familial risk for depression and explored whether differences are affected by vagal activity and pubertal stage. MethodsWe collected clinical assessments, physiological data, and stool samples from 52 adolescents (aged 9-15, including 31 females), consisting of 27 high-risk and 25 low-risk individuals. We used 16S rRNA marker gene sequencing to analyze the diversity, structure, composition, and predicted function of the microbial community. A laboratory stressor task was employed to examine changes in vagally mediated heart rate variability (stress reactivity). Regressions were used to assess the relationship between depression risk, gut microbiota, and cardiovascular stress reactivity indices. Exploratory analyses investigated the effects of sex, age, and pubertal stage (adrenarche and gonarche). ResultsHigh-risk adolescents exhibited a distinct gut microbiota profile compared to low-risk adolescents, with this effect primarily driven by female participants. This profile was characterized by a higher abundance of Prevotella, which was 2-fold higher in high-risk females, and lower levels of other beneficial genera. High-risk females were also significantly more advanced in adrenarcheal development; the link between depression risk and adrenarcheal development was mediated by gut microbiota in females. Cardiovascular stress reactivity did not differ between groups and was not linked to gut microbiota. ConclusionsOur results reveal sex-specific links between depression risk, adrenarcheal development, and gut microbiota in adolescence. The increase of Prevotella in high-risk females suggests inflammation-related pathways may connect familial vulnerability to mood disorders. Future long-term studies examining hormones, microbiota, and mood during pubertal changes are essential to determine causality and develop targeted treatments.

neuroscience↗

Incomplete remyelination via endogenous or therapeutically enhanced oligodendrogenesis is sufficient to recover visual cortical function

Myelin loss induces deficits in action potential propagation that result in neural dysfunction and contribute to the pathophysiology of neurodegenerative diseases, injury conditions, and aging. Because remyelination is often incomplete, better understanding endogenous remyelination and developing remyelination therapies that seek to restore neural function are clinical imperatives. Here, we used in vivo two-photon microscopy and electrophysiology to study the dynamics of endogenous and therapeutic-induced cortical remyelination and functional recovery after cuprizone-mediated demyelination in mice. We focused on the visual pathway, which is uniquely positioned to provide insights into structure-function relationships during de/remyelination. We show that endogenous remyelination is driven by recent oligodendrocyte loss and is highly efficacious following mild demyelination, but fails to restore the oligodendrocyte population when high rates of oligodendrocyte loss occur too quickly. Testing a novel thyromimetic compared to clemastine fumarate, we find it better enhances oligodendrocyte gain during remyelination and hastens recovery of neuronal function. Surprisingly, its therapeutic benefit was temporally restricted, and it acted exclusively following moderate to severe demyelination to eliminate endogenous remyelination deficits. However, complete remyelination is unnecessary as partial oligodendrocyte restoration was sufficient to recover visual neuronal function. These findings advance our understanding of remyelination and its impact on functional recovery to inform future therapeutic strategies.

neuroscience↗