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Smythers, A. L.

Publications and source records attributed to Smythers, A. L..

4 recordsLinked to original sources

Fluorescence Shadow Imaging of Hypsibius exemplaris Reveals Morphological Differences Between Sucrose- and CaCl2-Induced Osmobiotes

Tardigrades are renowned for their ability to survive a wide array of environmental stressors. In particular, tardigrades can curl in on themselves while losing a significant proportion of their internal water content to form a structure referred to as a tun. In surviving varying conditions, tardigrades undergo distinct morphological transformations that could indicate different underlying mechanisms of stress sensing and tolerance specific to the stress condition. Presently, methods to effectively distinguish between morphological transformations, including between tuns induced by different stress conditions, are lacking. Herein, a new approach for discriminating between tardigrade morphological states is developed and utilized to compare sucrose- and CaCl2-induced tuns. A novel method of shadow imaging with confocal laser scanning microscopy enabled production of three-dimensional renderings of tardigrades in various physiological states resulting in tardigrade volume measurements. Combining these measurements with qualitative morphological analysis using scanning electron microscopy revealed that sucrose- and CaCl2-induced tuns have distinct morphologies, including differences in the amount of water expelled during tun formation. Further, varying the concentration of the applied stressor did not affect the amount of water lost, pointing towards water expulsion being a controlled process that is adapted to the specific stressors. Summary StatementA novel method for volume measurements of biological specimens was developed and paired with scanning electron microscopy to allow for morphological comparisons between tardigrade osmobiotes.

physiology↗

Cardiomyocyte PGC-1α enables physiological adaptations to endurance exercise through suppression of GDF15 and cardiac atrophy

Exercise training induces physiological cardiac hypertrophy, enhanced mitochondrial biogenesis and myocardial contractility. In skeletal muscle, the transcriptional coactivator PGC-1 is a key orchestrator of these responses. The heart expresses abundant and exercise-responsive PGC-1, but it is unclear whether cardiomyocyte PGC-1 is necessary for cardiac adaptation to endurance training. Here we demonstrate that cardiomyocyte PGC-1 is required for physiological cardiac hypertrophy during exercise training in mice. In the absence of cardiomyocyte PGC-1, voluntary wheel running does not improve exercise capacity and instead confers immune-fibrotic-atrophic heart failure after just 6 weeks of training. We identify cardiomyocyte PGC-1 as a negative regulator of stress-responsive senescence gene expression. The most enriched of these is the myomitokine GDF15. GDF15 is secreted locally but not systemically in PGC-1-deficient mouse hearts and reduces cardiomyocyte size. Cardiomyocyte-specific reduction of GDF15 expression preserves exercise tolerance and cardiac contractility in PGC-1-deficient mice during endurance training. Finally, we show that cardiomyocyte PPARGC1A expression correlates with cardiomyocyte number and negatively with GDF15 expression in human cardiomyopathies through single nucleus RNA sequencing. Our data implicate cardiomyocyte PGC-1 as a vital safeguard against stress-induced atrophy and local GDF15-induced dysfunction during exercise.

physiology↗

Chemobiosis reveals tardigrade tun formation is dependent on reversible cysteine oxidation

Tardigrades, commonly known as waterbears, are eight-legged microscopic invertebrates renowned for their ability to withstand extreme stressors, including high osmotic pressure, freezing temperatures, and complete desiccation. Limb retraction and expelling their internal water stores results in the tun state, greatly increasing their ability to survive. Emergence from the tun state and/or activity regain follows stress removal, where resumption of life cycle occurs as if stasis never occurred. However, the mechanism(s) through which tardigrades initiate tun formation is yet to be uncovered. Herein, we use chemobiosis to demonstrate that tardigrade tun formation is mediated by reactive oxygen species (ROS). We further reveal that tuns are dependent on reversible cysteine oxidation, and that this reversible cysteine oxidation is facilitated by the release of intracellular reactive oxygen species (ROS). We provide the first empirical evidence of chemobiosis and map the initiation and survival of tardigrades via osmobiosis, chemobiosis, and cryobiosis. In vivo electron paramagnetic spectrometry suggests an intracellular release of reactive oxygen species following stress induction; when this release is quenched through the application of exogenous antioxidants, the tardigrades can no longer survive osmotic stress. Together, this work suggests a conserved dependence of reversible cysteine oxidation across distinct tardigrade cryptobioses.

biochemistry↗

High throughput peptidomics elucidates immunoregulatory functions of plant thimet oligopeptidase-directed proteostasis

Targeted proteolysis activities activated during the plant immune response catalyze the synthesis of stable endogenous peptides. Little is known about their biogenesis and biological roles. Herein, we characterize an Arabidopsis thaliana mutant top1top2 in which targeted proteolysis of immune-active peptides is drastically impaired during effector-triggered immunity (ETI). For effective ETI, the redox-sensitive thimet oligopeptidases TOP1 and TOP2 are required. Quantitative mass spectrometry-based peptidomics allowed differential peptidome profiling of wild type (WT) and top1top2 mutant at the early ETI stages. Biological processes of energy-producing and redox homeostasis were enriched, and TOPs were necessary to maintain the dynamics of ATP and NADP(H) accumulation in the plant during ETI. Subsequently, a set of novel TOPs substrates validated in vitro enabled the definition of the TOP-specific cleavage motif and informed an in-silico model of TOP proteolysis to generate bioactive peptide candidates. Several candidates, including those derived from proteins associated with redox metabolism, were confirmed in planta. The top1top2 background rescued WTs ETI deficiency caused by treatment with peptides derived from targeted proteolysis of the negative immune regulator FBR12, the reductive enzyme APX1, the isoprenoid pathway enzyme DXR, and ATP-subunit {beta}. These results demonstrate TOPs role in orchestrating the production and degradation of phytocytokines.

plant biology↗