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Rudolf, K.

Publications and source records attributed to Rudolf, K..

2 recordsLinked to original sources

Dynamic proteome profiling uncovers age-related impairments in proteostasis and the protective effects of resistance exercise in human skeletal muscle

A loss of proteostasis is a primary hallmark of ageing that has emerged from mechanistic studies in model organisms, but little is currently known about changes to proteostasis in the muscle of older humans. We used stable isotope labelling (deuterium oxide; D2O) in vivo, and peptide mass spectrometry of muscle samples to investigate differences in proteome dynamics between the muscle of younger (28 {+/-} 5 y; n=4) and older (69 {+/-} 3 y; n=4) men during either habitual activity or resistance exercise training. We quantified the abundance of 1787 proteins and the turnover rate of 1046 proteins in bi-lateral samples of vastus lateralis (n=32 samples total) taken before and after a 15-day program including 5 sessions of unilateral leg-press exercise (3 sets of 10 repetitions at 90% of 10 RM). Our protein abundance profiling revealed a stoichiometric imbalance within the proteostasis network in aged skeletal muscle, including subunits of eIF3, subunits of 40S and 60S ribosomal proteins. The rate of bulk, mixed-protein synthesis was not different between younger and older men, but most ribosomal proteins were less abundant in the muscle of older participants, suggesting ribosomes in older muscle may exhibit increased translational efficiency to maintain similar levels of protein turnover compared to ribosomes in younger muscle. Resistance exercise partially restored age-related disruptions to the proteostasis network. In older skeletal muscle, resistance exercise specifically increased the absolute turnover rate (ATR) of mixed mitochondrial proteins, with increased fractional turnover rate (FTR) of prohibitin 1 (PHB1) and profilin-1 (PROF1), and increased abundance of prohibitin 2 (PHB2). These adaptations may suggest resistance exercise promotes mitochondrial proteostasis by facilitating the synthesis and maintenance of key mitochondrial proteins. Thus, our Dynamic Proteome Profiling data provide an impetus for further exploration of the role of proteostasis in maintaining skeletal muscle quality and supports resistance exercise as a potential therapeutic strategy to promote healthy skeletal muscle ageing in humans. In BriefNishimura et al. used Dynamic Proteome Profiling to uncover whether the distorted proteomic landscape of ageing skeletal muscle is associated with altered turnover of specific proteins. Basal muscle from older men exhibits a divergence in protein abundance between subunits of eIF3 and subunits of 40S and 60S ribosomal proteins, whereas resistance exercise partially restored age-related disruptions in the muscle proteome. In older muscle, protein-specific turnover generally increases after resistance exercise, independent of changes in protein abundance, suggesting improved protein quality and renewal. Created in BioRender. Nishimura, Y. (2025) https://BioRender.com/p2a1aio HighlightsO_LIDynamic Proteome Profiling in human skeletal muscle ageing C_LIO_LIAgeing alters muscle proteostasis C_LIO_LIMixed-muscle protein synthesis does not differ between younger and older men C_LIO_LIResistance exercise increased mitochondrial protein turnover specifically in older muscle C_LIO_LIProtein-specific responses to resistance exercise differed between age groups C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/684531v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@11d0c8corg.highwire.dtl.DTLVardef@22f451org.highwire.dtl.DTLVardef@d62118org.highwire.dtl.DTLVardef@16eda9_HPS_FORMAT_FIGEXP M_FIG C_FIG

physiology↗

Canonical WNT signalling governs Echinococcus metacestode development

Alveolar echinococcosis (AE) is a lethal zoonosis caused by infiltrative growth of the metacestode larva of the tapeworm Echinococcus multilocularis in host organs. We previously showed that the Echinococcus metacestode is an evolutionarily unique, broadly posteriorized tissue, leading us to hypothesize that canonical WNT (cWNT) signalling--which patterns the body axis across metazoans--might be critical for metacestode formation. Here, we report effective RNAi-mediated knockdown of the E. multilocularis {beta}-catenin gene (bcat-1), the central effector of cWNT signalling, in a primary parasite cell culture system that produces metacestode vesicles. bcat-1(RNAi) cultures were markedly impaired in vesicle formation, exhibited stem-cell hyperproliferation, and displayed disrupted muscle-fibre organisation. Genome-wide transcriptomics revealed a general anteriorization of gene expression, and in situ hybridization showed an overproduction of cells expressing head-inducing factors such as sfrp upon bcat-1 knockdown. Conversely, metacestode-specific genes--including the tegumental factors muc-1, TNFR, and antigen B--as well as the posterior marker post2b were significantly downregulated, consistent with the observed vesicle-formation defects. In situ analyses further identified anterior markers--frizzled-10, nou-darake, notum, and follistatin--that were overexpressed in bcat-1(RNAi) cultures and localized to the future anterior pole at the earliest stages of protoscolex formation. Finally, pharmacological inhibition of WNT signalling with pyrvinium pamoate caused complete loss of posterior tissue in Echinococcus protoscoleces, killed metacestode vesicles, and reduced stem-cell proliferation at nanomolar concentrations. Together, these findings establish a central role for cWNT signalling in directing Echinococcus body-axis formation and the posteriorization events driving metacestode growth within the host, providing insight into asexual parasite proliferation mediated by this biologically unique larval stage and pointing to potential targets for chemotherapy against AE. Author SummaryAlveolar echinococcosis (AE) is a lethal disease caused by the cancer-like growth of the metacestode larva of the tapeworm Echinococcus multilocularis. From a developmental perspective, the Echinococcus metacestode is an unusual biological structure and even atypical among tapeworms. Previous work indicated that metacestode formation involves re-patterning of the body axis, eliminating head structures and producing broadly posteriorized tissue. How this is controlled at the molecular and cellular levels, however, was unknown. In this study, we perturbed expression of the {beta}-catenin gene (bcat-1), a central regulator of canonical WNT signalling, using RNA interference (RNAi). bcat-1(RNAi) parasite cultures failed to generate metacestode vesicles and instead showed stem-cell hyperproliferation and muscle-cell distortion. Genes required for posteriorized metacestode tissue were downregulated, whereas genes directing head formation in adult worms (follistatin, sfrp, fz10, ndk) were upregulated, indicating a general anteriorization of the culture system. Pharmacological inhibition of WNT signalling with pyrvinium pamoate caused complete loss of posterior structures in protoscoleces, reduced stem-cell proliferation, and killed metacestode tissue. These findings identify {beta}-catenin and the canonical WNT pathway as crucial regulators of the posteriorization that underlies metacestode formation. Given that WNT signalling is deregulated in many human cancers and that small-molecule inhibitors are available, our results suggest new avenues for anti-AE drug development.

developmental biology↗