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Latronico, N.

Publications and source records attributed to Latronico, N..

2 recordsLinked to original sources

Integrated Single-Fiber Multi-Omics Links an Inflammatory-Associated Myofiber State to Altered Myosin Dynamics in Patients with ICU-acquired weakness

Skeletal muscle dysfunction is a pervasive complication of critical illness that worsens survival and recovery, yet remains poorly explained by current clinical or molecular markers. To directly connect disease-associated molecular states to the contractile machinery, this study combined sequential functional, transcriptomic, and proteomic profiling of the same single human skeletal myofibers from critically ill patients in the intensive care unit with acquired weakness (ICU-AW) and controls. Despite marked donor-level heterogeneity, integrated analysis revealed a subtle yet conserved myofiber state enriched in ICU-AW, characterized by inflammatory and chemotactic gene programs, intracellular structural remodeling, and bioenergetic adaptation. Nineteen features were significantly altered at both RNA and protein levels from the same myofiber, linking an inflammatory transcriptional landscape to a proteomic shift toward mitochondrial and translational machinery and away from membrane-associated signaling. Functionally, fibers in this state displayed selectively disrupted myosin dynamics, evidenced by prolonged ATP turnover time of myosin heads in their super-relaxed conformation, implicating altered myosin energetics as a contributor to muscle dysfunction. These findings define a discrete, disease-associated myofiber state and establish an integrative single-fiber framework for connecting multi-omic heterogeneity to molecular motor function in complex human disease. Graphical AbstractSingle-fiber multi-omic and functional analysis reveals a stress-adapted myofiber state in ICU-AW. Specifically, for the present study, myofibers from ICU-AW donors and control donors were isolated and functionally profiled for myosin dynamics before being split for simultaneous transcriptomic and proteomic analysis. Integrated analysis then identified a reproducible fiber phenotype enriched in ICU-AW, characterized by inflammatory transcriptional signatures coordinated with mitochondrial proteomic remodeling and altered myosin super-relaxed state energetics. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=95 SRC="FIGDIR/small/706099v1_ufig1.gif" ALT="Figure 1"> View larger version (23K): org.highwire.dtl.DTLVardef@95715forg.highwire.dtl.DTLVardef@1462ff8org.highwire.dtl.DTLVardef@f74996org.highwire.dtl.DTLVardef@10055ec_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Biogenic nanoparticles from liquid and solid matrices: biochemical and biophysical properties of Extracellular Vesicles-enriched samples from human plasma and skeletal muscle tissue.

AimStudies on extracellular vesicles (EVs) focused on samples enriched from liquid matrices, such as cell culture media and blood. Recent research highlights the roles of EVs derived from the extracellular matrix of solid tissues, and how investigating these specific EVs offers insights into their microenvironment and potential biological influences on surrounding cells. This study presents a shared method to separate and compare EV enriched from solid (human skeletal muscle biopsy) and liquid (human plasma) matrices, addressing technical challenges and minimizing biases in separation techniques. MethodsPlasma and skeletal muscle-EVs were obtained combining serial centrifugation steps and discontinuous sucrose density gradient. EVs characterization employed advanced analytical techniques such as Western Blot, Colorimetric Nanoplasmonic assay, Atomic Force Miscoscopy, Nanoparticle Tracking Analysis and Dynamic Light Scattering to focus on biomolecular composition, nanomechanical properties, particle yield, size distribution, and colloidal stability. ResultsThe analysis revealed distinct differences between skeletal muscle-EVs and plasma-EVs including: molecular composition, physical and nanomechanical properties, as well as particle size distribution. Skeletal muscle-EVs exhibited unique colloidal behavior compared to their plasma counterparts, suggesting tissue-specific features that may influence their biological activity and stability. ConclusionsThe findings demonstrate that EVs from skeletal muscle tissue possess unique biochemical and biophysical characteristics when compared to those derived from plasma. These differences reflect their diverse biological origins and microenvironments. Understanding these distinctions could advance the development of EV-based diagnostic tools, particularly for muscular disorders, and broaden our knowledge of EV roles across various tissue contexts. HIGHLIGHTSO_LIShared protocol to enrich and compare extracellular vesicles (EVs) from both solid (skeletal muscle biopsy) and liquid (plasma) human samples, reducing methodological bias across matrices. C_LIO_LISkeletal muscle-derived EVs differ significantly from plasma EVs in biochemical and biophysical properties such as molecular composition, size distribution, nanomechanical properties, and colloidal stability. C_LIO_LIEV heterogeneity across microenvironments emerged as a key biological feature, highlighting their potential for specific diagnostic applications. C_LI

cell biology↗