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Ahtiainen, J. P.

Publications and source records attributed to Ahtiainen, J. P..

2 recordsLinked to original sources

Human skeletal muscle possesses both reversible proteomic signatures and a retained proteomic memory after repeated resistance training

Investigating repeated resistance training separated by a training break enables exploration of the potential for a proteomic memory of resistance training (RT)-induced skeletal muscle growth. Our aim was to examine skeletal muscle proteome response to 10-week RT (RT1) followed by 10-week training cessation (i.e. detraining, DT), and finally, 10-week retraining (RT2). Thirty healthy, untrained participants conducted either periodic RT (RT1-DT-RT2, n=17) or a 10-week no-training control period (n=13) followed by 20 weeks of RT (n=11). RT included twice-weekly supervised whole-body RT sessions, and resting vastus lateralis biopsies were obtained every ten weeks for proteomics analysis using high-end DIA-PASEFs mass spectrometry. The first RT period altered 150 proteins (93% increased) involved in e.g. energy metabolism and protein processing compared with minor changes during the no-training control period. The proteome adaptations were similar after the second RT compared to baseline demonstrating reproducibility in proteome adaptations to RT. Many of the proteins induced by RT1 were reversed towards baseline after detraining and increased again after retraining. These reversible proteins were especially involved in aerobic energy metabolism. Interestingly, several proteins increased after RT1 remain elevated after detraining, including carbonyl reductase 1 (CBR1) and proteins involved in muscle contraction, cytoskeleton and calcium-binding. Amongst the latter, calcium-activated protease calpain-2 (CAPN2) has been recently identified as an epigenetic muscle memory gene. We show that resistance training evokes retained protein levels even after 2.5 months of no training. This is the first study to demonstrate a potential proteomic memory of resistance training-induced muscle growth in human skeletal muscle. Key pointsO_LIRepeated resistance training in humans separated by a training break (i.e. detraining) enables the identification of temporal protein signatures over the training, detraining, and retraining periods as well as studying reproducibility of protein changes to resistance training. C_LIO_LIMuscle proteome adaptations were similar after a second period of resistance training when compared to baseline, demonstrating reproducibility in proteome adaptations to earlier resistance training. C_LIO_LIMany of the proteins induced by resistance training were reversed towards baseline after detraining and increased again after retraining. These reversible proteins were especially involved in aerobic energy metabolism. C_LIO_LISeveral proteins increased after resistance training remain elevated after detraining, including carbonyl reductase 1 (CBR1) and calcium-binding proteins such as calpain-2 (CAPN2), a recently identified epigenetic muscle memory gene. C_LIO_LIHuman skeletal muscle experiences retained protein changes following resistance training persisting over two months demonstrating a potential proteomic memory of resistance training-induced muscle growth. C_LI O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=139 SRC="FIGDIR/small/624068v3_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@1f0ae2corg.highwire.dtl.DTLVardef@3af3b4org.highwire.dtl.DTLVardef@55d064org.highwire.dtl.DTLVardef@1e46bf9_HPS_FORMAT_FIGEXP M_FIG Human skeletal muscle proteome response was investigated after 10-week resistance training (RT1) followed by 10-week training cessation (i.e. detraining, DT), and finally, 10-week retraining (RT2). Many of the proteins were reversed towards baseline after DT and increased again after RT2. These reversible proteins were especially involved in aerobic energy metabolism. However, several RT-induced proteins remain elevated after DT, including carbonyl reductase 1 (CBR1) and many proteins involved in muscle contraction or cytoskeleton and calcium-binding. Amongst the latter, calcium-activated protease calpain-2 (CAPN2) is a recently identified epigenetic muscle memory gene. This study shows that resistance training evokes retained protein levels even after 2.5 months of no training and demonstrates a potential proteomic memory of RT-induced muscle growth in human skeletal muscle. Created in BioRender.com. C_FIG

physiology↗

Age but not menopausal status is linked to lower resting energy expenditure

ContextIt remains uncertain whether aging before late adulthood and menopause are associated with fat-free mass and fat mass-adjusted resting energy expenditure (REEadj). ObjectivesWe investigated whether REEadj differs between middle-aged and younger women and between middle-aged women with different menopausal statuses. We repeated the age group comparison between middle-aged mothers and their daughters to partially control for genotype. We also explored whether serum estradiol and follicle-stimulating hormone concentrations explain REEadj in midlife. MethodsWe divided 120 women, including 16 mother-daughter pairs, into age groups; group I (n = 26) consisted of participants aged 17-21, group II (n = 35) of those aged 22-38 and group III (n = 59) of those aged 41-58 years. The women in group III were further categorized as pre- or perimenopausal (n = 19), postmenopausal (n = 30) or postmenopausal hormone therapy users (n = 10). REE was assessed using indirect calorimetry, body composition using dual-energy X-ray absorptiometry and hormones using immunoassays. ResultsThe REEadj of group I was 126 kcal/d (95% CI: 93-160) higher than that of group III, and the REEadj of group II was 88 kcal/d (95% CI: 49-127) higher. Furthermore, daughters had a 100 kcal/d (95% CI: 63-138 kcal/d) higher REEadj than their middle-aged mothers (all P < 0.001). In group III, REEadj was not lower in postmenopausal women and did not vary by sex hormone concentrations. ConclusionsWe demonstrated that REEadj declines with age in women before late adulthood, also when controlling partially for genetic background, and that menopause may not contribute to this decline.

physiology↗