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Dilbaz, S.

Publications and source records attributed to Dilbaz, S..

3 recordsLinked to original sources

Exercise Engages Coordinated Neuron-Glia Signaling to Shape Spinal Cord Plasticity

Physical activity induces systemic benefits for brain and muscle function, but how the healthy spinal cord adapts to exercise remains largely unknown. Here, we combine bulk proteomics, single-nucleus RNA sequencing, and cellular communication inference to map exercise- induced molecular adaptations in the mouse lumbar spinal cord. Endurance training elicited robust baseline remodeling, dominated by glial transcriptional changes. Acute exhaustive exercise triggered biphasic responses: widespread metabolic and synaptic gene upregulation at 6 h followed by balanced suppression at 24 h, with trained animals exhibiting enhanced amplitude and faster resolution. Cell-cell communication analysis revealed that exercise reshaped signaling networks in both magnitude and composition. While glia emerged as primary transcriptional responders, cholinergic neurons--despite minimal transcriptional changes--were central signaling hubs, engaging various pathways with astrocytes, oligodendrocyte precursor cells, and oligodendrocytes in a training-dependent and temporally restricted manner. Glial-derived communication further diversified these responses, with astrocytes, oligodendrocytes, and microglia shifting toward pathways supporting synaptic remodeling, axon guidance, and growth factor signaling while dampening inflammatory cues. Together, these findings identify neuron-glia communication as potential driver of spinal cord adaptation to exercise, suggesting pathways through which glial plasticity may serve as a key mediator linking motor activity to spinal cord resilience. Significance StatementExercise confers broad benefits for neural and motor system health, yet how the healthy spinal cord adapts to physical activity is poorly understood. Using multi-omic profiling, we show that endurance training and acute exercise elicit coordinated transcriptional and signaling responses in spinal cord glia, with cholinergic neuron-glia communication emerging as a key upstream driver. These findings identify glial plasticity and neuron-glia crosstalk as a potential mechanism of spinal cord adaptation, providing a foundation for leveraging exercise-based strategies in neurological health and disease.

physiology↗

Muscle Fiber- and Cell Type-Specificity of Training Adaptation in Male Mice

Skeletal muscle possesses extraordinary plasticity of structure, metabolism, and function in response to repeated contractile activity. As a syncytium embedded within a complex microenvironment, muscle relies on the coordination of distinct myonuclear populations and diverse mononucleated cell types. Here, we present a high-resolution single-nucleus RNA-sequencing atlas of 550000 skeletal muscle nuclei, capturing the longitudinal transcriptional responses of 17 distinct myonuclear and 21 mononuclear cell populations at multiple time points after one bout of exhaustive exercise in trained and sedentary mice. The transcriptional programs of these populations are further shaped by training status into divergent adaptive trajectories. A subset of oxidative myonuclei enters a delayed regenerative state post-exercise, reflecting a bifurcated response to a disproportionate metabolic load on fibers during endurance exercise. Prior training accelerates homeostatic recovery and shields oxidative nuclei from exacerbated damage signatures. In parallel, mononucleated cells emerge as the primary mediators of intercellular communication during recovery. Together, this dataset establishes that training adaptation emerges through a coordinated interplay of intrinsic adaptive programs of multicellular remodeling, and provides a foundational resource for mechanistic insights into muscle plasticity.

physiology↗

Molecular control of endurance training adaptation in mouse skeletal muscle

Skeletal muscle has an enormous plastic potential to adapt to various external and internal perturbations. While morphological changes in endurance-trained muscles are well-described, the molecular underpinnings of training adaptation are poorly understood. We aimed at defining the molecular signature of a trained muscle and unraveling the training statusdependent responses to an acute bout of exercise. Our results reveal that even though at baseline, the transcriptomes of trained and untrained muscles are very similar, training status substantially affects the transcriptional response to an acute challenge, both quantitatively and qualitatively, in part mediated by epigenetic modifications. Second, proteomic changes were elicited by different transcriptional modalities. Finally, transiently activated factors such as the peroxisome proliferator-activated receptor {gamma} coactivator 1 (PGC-1) are indispensable for normal training adaptation. Together, these results provide a molecular framework of the temporal and training status-dependent exercise response that defines muscle plasticity in training. HIGHLIGHTSO_LIVery few persistent transcriptional events define the trained muscle. C_LIO_LIThe training status determines the acute exercise response. C_LIO_LIEpigenetic changes shape the transcriptional specification of trained muscle. C_LIO_LIAbsence of the key regulator PGC-1 causes suboptimal training adaptations. C_LI

physiology↗